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memra_engine/
spec.rs

1//! Qwen3.5 MTP (NextN) greedy speculative decode (research/mtp/MTP-PLAN.md §A/§B/§C/§D).
2//!
3//! Greedy spec decode is MATHEMATICALLY EXACT: the accepted+bonus token stream is token-for-token
4//! identical to plain greedy `generate`. This module provides:
5//!   - `mtp_head_forward`  (§A, T=1): one NextN draft-token forward.
6//!   - `decode_step_t`     (§D.3, T=K+1): batched target verify forward, all-column logits.
7//!   - `generate_spec`     (§B): the draft/verify/accept/rollback orchestrator.
8//! Cache snapshot/rollback lives in cache.rs (§D.4). The MTP head uses its OWN scratch KV (§D.6),
9//! PERSISTENT over the committed sequence (see `MtpScratch`).
10
11use crate::Engine;
12use crate::cache::{Cache, KvLayer};
13use crate::forward::argmax;
14use crate::hybrid::{FullAttnLayer, HybridModel, LinearAttnLayer, Mixer, MtpHead};
15use cudarc::driver::CudaSlice;
16use std::sync::atomic::{AtomicU64, Ordering};
17
18/// Parse the documented `MEMRA_SPEC_REPLAY=1` rollback seam.
19///
20/// Keep this shared with serving admission so `=0` cannot select replay in one
21/// layer while another layer treats it as disabled.
22pub fn spec_replay_env_on(value: Option<&str>) -> bool {
23    value == Some("1")
24}
25
26pub fn spec_replay_env_enabled() -> bool {
27    let value = std::env::var("MEMRA_SPEC_REPLAY").ok();
28    spec_replay_env_on(value.as_deref())
29}
30
31fn parse_prime_trows_width(value: Option<&str>) -> Result<usize, String> {
32    let Some(raw) = value else {
33        return Ok(8);
34    };
35    let width = raw
36        .parse::<usize>()
37        .map_err(|_| format!("MEMRA_PRIME_TROWS_T must be an integer in 2..=8, got {raw:?}"))?;
38    if !(2..=8).contains(&width) {
39        return Err(format!("MEMRA_PRIME_TROWS_T must be in 2..=8, got {width}"));
40    }
41    Ok(width)
42}
43
44#[cfg(test)]
45mod prime_trows_width_tests {
46    #[test]
47    fn width_defaults_to_eight_and_refuses_invalid_operator_values() {
48        assert_eq!(super::parse_prime_trows_width(None), Ok(8));
49        assert_eq!(super::parse_prime_trows_width(Some("2")), Ok(2));
50        assert_eq!(super::parse_prime_trows_width(Some("8")), Ok(8));
51        for invalid in ["", "1", "9", "32", "wide"] {
52            let err = super::parse_prime_trows_width(Some(invalid)).unwrap_err();
53            assert!(err.contains("MEMRA_PRIME_TROWS_T"), "{err}");
54            assert!(err.contains("2..=8"), "{err}");
55        }
56    }
57}
58
59/// One compact, anchor-bounded DSpark supervision record. `tokens[0]` is the anchor at p and
60/// `hidden` is its predecessor carrier h[p-1], matching the live NextN/DSpark pairing. Target
61/// rows p..p+gamma-1 score tokens p+1..p+gamma. They are the full-target softmax's top-k
62/// entries; `target_tail_probs[j]` is the probability mass outside those rows. All flattened
63/// target arrays are `[gamma, top_k]` in row-major order.
64pub struct DsparkAnchorRecord {
65    pub position: usize,
66    pub hidden: Vec<f32>,
67    pub tokens: Vec<u32>,
68    pub target_top_ids: Vec<u32>,
69    pub target_top_logits: Vec<f32>,
70    pub target_top_probs: Vec<f32>,
71    pub target_tail_probs: Vec<f32>,
72}
73
74fn dspark_sparse_softmax_topk(
75    logits: &[f32],
76    top_k: usize,
77    temperature: f32,
78) -> Result<(Vec<u32>, Vec<f32>, Vec<f32>, f32), Box<dyn std::error::Error>> {
79    if logits.is_empty() || top_k == 0 || top_k > logits.len() || temperature <= 0.0 {
80        return Err("invalid DSpark sparse-softmax shape or temperature".into());
81    }
82    if logits.iter().any(|value| !value.is_finite()) {
83        return Err("DSpark target logits contain a non-finite value".into());
84    }
85    let mut ranked: Vec<(u32, f32)> = logits
86        .iter()
87        .copied()
88        .enumerate()
89        .map(|(index, value)| (index as u32, value))
90        .collect();
91    let compare = |left: &(u32, f32), right: &(u32, f32)| {
92        right.1.total_cmp(&left.1).then(left.0.cmp(&right.0))
93    };
94    ranked.select_nth_unstable_by(top_k - 1, compare);
95    ranked[..top_k].sort_unstable_by(compare);
96
97    let max_logit = logits.iter().copied().fold(f32::NEG_INFINITY, f32::max);
98    let inv_temperature = 1.0f64 / temperature as f64;
99    let denominator: f64 = logits
100        .iter()
101        .map(|value| (((*value - max_logit) as f64) * inv_temperature).exp())
102        .sum();
103    let ids: Vec<u32> = ranked[..top_k].iter().map(|(index, _)| *index).collect();
104    let top_logits: Vec<f32> = ranked[..top_k].iter().map(|(_, value)| *value).collect();
105    let top_probs: Vec<f32> = top_logits
106        .iter()
107        .map(|value| ((((value - max_logit) as f64) * inv_temperature).exp() / denominator) as f32)
108        .collect();
109    let top_mass: f64 = top_probs.iter().map(|value| *value as f64).sum();
110    let tail = (1.0f64 - top_mass).clamp(0.0, 1.0) as f32;
111    Ok((ids, top_logits, top_probs, tail))
112}
113
114fn flatten_dspark_rows<T>(
115    rows: Vec<Option<Vec<T>>>,
116    position: usize,
117    label: &str,
118) -> Result<Vec<T>, Box<dyn std::error::Error>> {
119    let mut flattened = Vec::new();
120    for (slot, row) in rows.into_iter().enumerate() {
121        flattened.extend(
122            row.ok_or_else(|| format!("missing DSpark {label} at {position} slot {slot}"))?,
123        );
124    }
125    Ok(flattened)
126}
127
128/// H-SEED CONVENTION (MEMRA_SPEC_HPOST=1): feed the MTP head the POST-norm hidden — trunk rows
129/// hand over `output_norm(x)` and the draft chain recurrence hands over `shared_head_norm(h_nextn)`
130/// (= final_h) — matching the reference engines: llama.cpp #24025 ("qwen35: use post-norm hidden
131/// state for MTP", t_h_nextn is taken AFTER the final norm in both trunk and MTP graphs) and
132/// SGLang's qwen3_5_mtp (spec_info.hidden_states = the target model's post-norm output). memra's
133/// historical convention (default, MTP-PLAN §A) is PRE-norm x. Draft-quality-only: exactness is
134/// the verify's job either way; acceptance arbitrates. OnceLock: read once, hot-loop safe.
135pub(crate) fn spec_hpost() -> bool {
136    static H: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
137    *H.get_or_init(|| {
138        std::env::var("MEMRA_SPEC_HPOST")
139            .map(|v| v != "0")
140            .unwrap_or(false)
141    })
142}
143
144/// LEAN VERIFY (default ON since 2026-07-08; MEMRA_SPEC_LEAN=0 reverts — close35 lane): the verify m-scaling
145/// probe + nsys diff showed the verify t-path pays ~1.0ms/call at m=1 over eager decode on the
146/// 35B, and the kernels are NOT the cause (dev-MoE identical, kernel-time delta only +179us).
147/// The overhead is (a) ~250 extra cuMemsetD8Async/call from `e.zeros()` on buffers every kernel
148/// fully overwrites (~0.9ms host issue + ~0.35ms GPU) and (b) the t=1 FA rows dispatch (rows_v2 +
149/// combine_rows, +50us vs the eager fa_decode pair). This flag switches (a) fully-overwritten
150/// verify buffers to `e.uninit` (identical bytes: every element is written before read) and
151/// (b) t==1 verify FA to the eager `fa_decode` entry (byte-identical: kernel-check pins the
152/// rows-vs-loop identity and the per-row loop at t=1 IS fa_decode on the same q). Gates arbitrate.
153pub(crate) fn spec_lean() -> bool {
154    static L: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
155    // DEFAULT ON since 2026-07-08 (MEMRA_SPEC_LEAN=0 reverts): bit-identical (buffers fully
156    // overwritten; gates green incl maxdiff-identical run-gen) and measured +2.4% e2e p3 /
157    // +1.5% p2 at the daily 35B config. m=1 verify now costs eager-decode parity.
158    *L.get_or_init(|| {
159        std::env::var("MEMRA_SPEC_LEAN")
160            .map(|v| v != "0")
161            .unwrap_or(true)
162    })
163}
164
165/// SMALL-M BATCHED VERIFY (default ON since 2026-07-09; MEMRA_SPEC_M2=0 reverts — lane/spec-m2): extend the
166/// batched linear-attn verify arm down to t=2 and batch the MoE dev token loop over a
167/// grid.z=token axis at every verify t. The close35 m-scaling probe put the m=2 verify tier at
168/// x1.54 of m=1 (llama x1.14); the per-column linear chain (t<3) and the serial MoE dev token
169/// loop are the two launch-structure causes. Both changes are LAUNCH-STRUCTURE ONLY:
170/// (a) the batched conv's t<pad ring update is pure copies (ssm_conv_ring_rebuild from a cloned
171///     ring — the ring stores raw input columns); every arithmetic kernel is the same one the
172///     t>=3 arm already runs (matmul_decode_exact bit-identical at m=2-4, gdn_scan's internal
173///     t-loop == chained T=1 steps);
174/// (b) the MoE dev-rows twins run the serial loop's per-token warp program with tok-offset
175///     pointers (same sel/w/aq/ad bytes, same dot order, same slot-ordered FMA chain).
176/// Gates arbitrate: run-spec K=1..8 self-consistency (35B+9B), kernel-check, run-gen argmax.
177pub(crate) fn spec_m2() -> bool {
178    static M: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
179    // DEFAULT ON since 2026-07-09 (MEMRA_SPEC_M2=0 reverts): launch-structure only — t=2
180    // batched linear arm (ring-roll copies, zero new FP order) + MoE dev-rows kernels
181    // (grid.z=token, 4 launches/layer at any verify t). Acceptance bit-identical at every K;
182    // 35B p2 +3.4% / p3 +3.6%; the profitable-K plateau widens (new optimum K=3 at 223).
183    *M.get_or_init(|| {
184        std::env::var("MEMRA_SPEC_M2")
185            .map(|v| v != "0")
186            .unwrap_or(true)
187    })
188}
189pub(crate) fn spec_stream() -> bool {
190    static ON: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
191    *ON.get_or_init(|| std::env::var("MEMRA_SPEC_STREAM").as_deref() == Ok("1"))
192}
193pub(crate) fn spec_stream_m() -> usize {
194    static M: std::sync::OnceLock<usize> = std::sync::OnceLock::new();
195    *M.get_or_init(|| {
196        std::env::var("MEMRA_SPEC_STREAM_M")
197            .ok()
198            .and_then(|v| v.parse().ok())
199            .unwrap_or(4)
200    })
201}
202pub(crate) fn spec_devacc() -> bool {
203    static ON: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
204    *ON.get_or_init(|| std::env::var("MEMRA_SPEC_DEVACC").as_deref() == Ok("1"))
205}
206/// Engine-bundle slice 2 (DSF-ROUNDCOST-20260820 §1.1 host/device round trips + §2 rows 2-3),
207/// DEFAULT ON (`MEMRA_DSPARK_DEFER_READBACK=0` reverts): the dspark round's draft-chain DtoH
208/// is DEFERRED past verify dispatch and merged with the verify-argmax readback into ONE host
209/// sync (2 blocking DtoH/round -> 1). Verify embeds DEVICE tokens (`chain_d`) through the
210/// resident embed table — `embed_gather_u32_t`, bit-identical rows to the host gather by its
211/// own pinned contract. The host therefore dispatches snap + the whole verify while the DRAFT
212/// is still executing, instead of blocking ~1.7 ms on the chain and letting the device drain.
213/// Ladder arm only: the confidence policies size vt from a pre-verify head readback (their
214/// chain readback merges into that same sync instead). Exactness unchanged BY CONSTRUCTION —
215/// same tokens, same kernels, same order; E2E + accept-bank gates arbitrate.
216pub(crate) fn dspark_defer_readback_on() -> bool {
217    static ON: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
218    *ON.get_or_init(|| {
219        std::env::var("MEMRA_DSPARK_DEFER_READBACK")
220            .map(|v| v != "0")
221            .unwrap_or(true)
222    })
223}
224/// Engine-bundle slice 1 (DSF-ROUNDCOST-20260820 §1.1, lane/dspark-engine-bundle-20260820),
225/// DEFAULT ON (`MEMRA_STATE_COPY_BATCH=0` reverts): batch the dspark round's GDN state
226/// snapshot and partial-accept restore into single `copy_batch_uniform_f32` launches
227/// instead of ~2 memcpy dispatches (+2 alloc_zeros on the snap side) per linear layer per
228/// round — measured 0.67 ms/round snap + 0.25 ms/round commit of pure dispatch on the q38
229/// route. Launch-structure only: bytes, buffers and stream order are unchanged, so
230/// acceptance and streams stay bit-identical (E2E-gated on the B1 packs).
231pub(crate) fn state_copy_batch_on() -> bool {
232    static ON: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
233    *ON.get_or_init(|| {
234        std::env::var("MEMRA_STATE_COPY_BATCH")
235            .map(|v| v != "0")
236            .unwrap_or(true)
237    })
238}
239/// Engine-bundle slice 3 + fa-execupdate slice 4c (DSF-ROUNDCOST-20260820 §5 rank 1),
240/// DEFAULT OFF — `MEMRA_DSPARK_VERIFY_GRAPH=1` opts in: per-(segment, vt) CUDA graphs
241/// for the LINEAR-layer runs, plus the full-verify single graph per (vt, rung) when a
242/// round's rows all ride one seqs rung — see [`DsparkVerifyGraphs`]. Requires the
243/// slice-2 deferred path (device tokens); the eager walk is the byte-identical fallback.
244///
245/// MEASURED disposition (box6 card0, agentic pack, 2026-08-20, both slices): exactness
246/// holds everywhere (ALL EXACT, accept lines byte-match the banks, ckpt-gate oracle
247/// green over the graph + slab-commit paths). Slice-3's AUTO_FREE launch-scan limiter
248/// (25.6 us x 16 launches ≈ 0.41 ms/round) is FIXED — the captured bodies' alloc nodes
249/// are balanced by in-graph frees (census 84/84 per segment, 1776/1776 full) so graphs
250/// instantiate USE_NODE_PRIORITY and the scan is gone. What remains at gate scale:
251/// segment graphs +0.1 tok/s over the batched-rows default (114.4 vs 114.3 x5
252/// interleaved — the linear launch overhead was only ~0.1 ms); the FULL-verify graph is
253/// NET NEGATIVE at gate scale (110.6 vs 114.2: ~14-21 (vt, rung) captures/process at
254/// 2 full-walk executions + ~2.9k-node instantiate each eat far more than the ~0.2-0.3
255/// ms/round of remaining launch overhead). The orchestration ceiling of §1.3 is spent —
256/// the fa/append recovery landed DEFAULT-ON as the batched rows arm
257/// (`dspark_fa_rows_on`), not as a graph. The serve-lifetime cell (DSF-ROUNDCOST §9,
258/// nj-ws-solo) measured the amortization: crossover K≈33 requests, steady −0.246
259/// ms/round, −1.25% session wall over 240 requests — and the graphs-serve lane wired
260/// the door into the session arm (`dspark_spec_session_burst`) as a model-owned
261/// capture pool shared across sessions. Stays opt-in pending the owner's default-ON
262/// ratification on the serve-surface battery.
263pub(crate) fn dspark_verify_graph_on() -> bool {
264    static ON: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
265    *ON.get_or_init(|| std::env::var("MEMRA_DSPARK_VERIFY_GRAPH").as_deref() == Ok("1"))
266}
267/// MTP-ROUTE verify graphs, DEFAULT ON for the GDN+MoE family since 2026-08-23
268/// (`MEMRA_SPEC_VERIFY_GRAPH=0` is the kill switch, `=1` opts other families in).
269///
270/// The slice-4c capture already lived inside `qwen35_verify_tparallel` and said so in its own
271/// comment — "stream rides the qwen35moe burst, graphs ride the dspark route" — with no caller
272/// on this route. The MTP spec round is that caller.
273///
274/// WHY it is worth a default (receipts: `research/orndecode-20260822/VGRAPH.md`). With
275/// `MEMRA_SPEC_PHASE=1` this route's round reads verify-ISSUE 44-58% and verify-WAIT **0.0%**:
276/// the host is never waiting for the device, it is spending its own time launching the trunk.
277/// Replay collapses that into one graph launch and the phase all but disappears (55-62 ms ->
278/// 8-10 ms per burst).
279///
280/// MEASURED, two host generations, forced ON/OFF, balanced 4+4 boots in both orders:
281///   * current-generation host (9950X, the serving class): OFF 266.0-266.5, ON 318.8-319.5
282///     tok/s — **+19.7%**, no overlap, sub-1% spread per arm; per-round 6.9 -> 5.7 ms.
283///   * Zen 3 host: +3-9% (that rig's own clock drift is wider than the effect, so the ratio
284///     comes from per-round phase totals, which are internal to each boot).
285/// The ON arm lands at ~320 tok/s on BOTH hosts while OFF tracks host speed — the arm moves
286/// the round off the host and onto the device, which is the whole point.
287///
288/// EXACTNESS is structural (same kernels, same order) and gated anyway: a fixed-seed SAMPLED
289/// completion hashes identically ON vs OFF **and across both hosts** (`08941d5bb9762b21`),
290/// greedy seed-pinned likewise, `run-spec` K=1..8 PASS on both arms with identical acceptance
291/// at every K, kernel-check ALL GREEN.
292///
293/// SCOPE, deliberately narrow: default ON only where it was measured — the GatedDeltaNet +
294/// MoE family (`vgraph_family_default`). Qwen3.8-27B is GDN + DENSE mlp and would otherwise
295/// inherit this default unmeasured, which is the family-by-family law this repo keeps; it can
296/// opt in with `=1` once it has its own interleave. Also never armed together with
297/// ROUND-STREAM, and a round wider than the pool declines it for the eager walk.
298pub(crate) fn spec_verify_graph_env() -> Option<bool> {
299    static ON: std::sync::OnceLock<Option<bool>> = std::sync::OnceLock::new();
300    *ON.get_or_init(
301        || match std::env::var("MEMRA_SPEC_VERIFY_GRAPH").as_deref() {
302            Ok("1") => Some(true),
303            Ok("0") => Some(false),
304            _ => None,
305        },
306    )
307}
308/// SERVE-ROUTE twin of [`dspark_verify_graph_on`], DEFAULT ON — owner-ratified
309/// 2026-08-22 on the §10 serve-lifetime battery (DSF-ROUNDCOST-20260820 §10.3:
310/// crossover K=36–43, steady −0.357 ms/round, session wall −1.55..−1.65%, byte-exact
311/// 240/240 ×3 pairs, pool bounded at 8,852 MiB under `MEMRA_DSPARK_VG_MAX`). The env
312/// stays as the kill-switch: `MEMRA_DSPARK_VERIFY_GRAPH=0` restores the eager walk
313/// (byte-identical body); `MEMRA_DSPARK_VG_MAX=0` is the finer freeze valve. The BIN
314/// arm keeps its own opt-in default (`dspark_verify_graph_on`): at gate scale the
315/// capture toll is never repaid (§8 measured disposition — 14–21 captures over a
316/// 256-token run vs the serve session's thousands of rounds), and the two
317/// instruments must keep their own measured dispositions rather than share one flag.
318pub(crate) fn dspark_verify_graph_serve_on() -> bool {
319    static ON: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
320    *ON.get_or_init(|| std::env::var("MEMRA_DSPARK_VERIFY_GRAPH").as_deref() != Ok("0"))
321}
322/// Capture-count ceiling for the dspark verify-graph pool (graphs-serve lane) — the
323/// pool's memory policy STATED instead of silently unbounded. The keyspace is
324/// intrinsically finite — segment keys (run_start, vt) ≤ 16 runs x 7 windows, full
325/// keys (vt, rung, hi) ≤ 7 windows x the split-rung ladder (8 rungs at 32k ctx), ~168
326/// on the q38 export — so the default (256) never engages there; the knob is the
327/// safety valve for a future export with a wider ladder. At the ceiling the pool
328/// FREEZES: existing keys keep replaying, rounds needing a new capture run the eager
329/// walk byte-identically (round-atomic — a partial refusal would mix slab- and
330/// cols-stashed layers inside one commit). No eviction by design: destroying a live
331/// exec graph re-opens the stale-address class the indirect tables exist to close,
332/// and the bounded keyspace makes reclaim worthless.
333pub(crate) fn dspark_vg_cap() -> usize {
334    static CAP: std::sync::OnceLock<usize> = std::sync::OnceLock::new();
335    *CAP.get_or_init(|| {
336        std::env::var("MEMRA_DSPARK_VG_MAX")
337            .ok()
338            .and_then(|v| v.parse().ok())
339            .unwrap_or(256)
340    })
341}
342
343/// PROJECTED REMAINING GROWTH of the verify-graph pool, in bytes (lane/hermes-perf-fixes,
344/// 2026-08-23 — the admission accounting the "pool dwarfs spec admission reserve" finding
345/// asks for). The pool was measured at 8,852 MiB at storm-complete on the q38 export while
346/// admission's transient floor (`SPEC_SHRINK_RESERVE`) is 1.5 GiB and never charged for it:
347/// sessions admitted while the pool is cold overcommit VRAM the pool WILL hold, because the
348/// pool grows monotonically (no eviction by design) and is model-owned across sessions.
349///
350/// SELF-MEASURING, no per-model constant (generic-model law — the 8,852 MiB is a q38 number
351/// and proves nothing about another export): the debt is remaining capture slots x the
352/// MARGINAL bytes a capture adds to this device's graph mem pool.
353///
354/// MARGINAL, NOT MEAN — measured correction (box9 on-box receipt, 2026-08-23). The first
355/// version of this used the mean (`reserved / captures`) and the live serve log showed why
356/// that is wrong: with the pool's reservation flat at ~33.6 MiB across captures 1..3, the
357/// mean-based debt printed **8,556 MB, then 4,261, then 2,830** — it extrapolated capture
358/// #1's ONE-TIME shared allocation (staging buffers, stash slabs, pointer tables: sized
359/// once per pool, shared by every key) across all 256 slots. An 8.5 GB phantom reserve at
360/// boot can refuse admissions that would have fit, which is a worse defect than the
361/// under-charge this accounting exists to remove. The marginal reading prices what an
362/// ADDITIONAL key actually costs: two observations `(captures, reserved)` give
363/// `(r1 - r0) / (c1 - c0)`, which is ~0 on an export whose pool does not grow per key and
364/// tracks real growth on one that does.
365///
366/// BOOTSTRAP (only one observation so far, so growth is unmeasurable): reserve one more
367/// pool's worth — `min(remaining x mean, reserved)`. "We have measured `reserved` bytes for
368/// `captures` keys; until growth is measurable, assume at most a doubling" is fail-safe in
369/// the same direction as the old rule without the 255x extrapolation.
370///
371/// Before the FIRST capture the debt is 0 (a single capture lands well inside the existing
372/// 1.5 GiB floor). `cap` is the intrinsic freeze ceiling (`MEMRA_DSPARK_VG_MAX`; =0 freeze
373/// valve => the pool cannot grow => debt 0); at or past the cap the pool FREEZES, so the
374/// debt is 0 there too.
375pub fn dspark_vg_debt_projection(
376    captures: usize,
377    cap: usize,
378    reserved_bytes: usize,
379    prev: Option<(usize, usize)>,
380) -> usize {
381    if captures == 0 || cap == 0 {
382        return 0;
383    }
384    let remaining = cap.saturating_sub(captures);
385    if remaining == 0 {
386        return 0;
387    }
388    match prev {
389        // marginal growth between two observations of the same pool
390        Some((c0, r0)) if captures > c0 => {
391            let marginal = reserved_bytes.saturating_sub(r0) / (captures - c0);
392            remaining.saturating_mul(marginal)
393        }
394        // bootstrap: at most one more pool's worth
395        _ => remaining
396            .saturating_mul(reserved_bytes / captures)
397            .min(reserved_bytes),
398    }
399}
400/// Engine-bundle slice 4 (fa-execupdate lane, DSF-ROUNDCOST-20260820 §6 close: "the
401/// residual gap lives in the FULL-ATTENTION per-row section"), DEFAULT ON —
402/// `MEMRA_DSPARK_FA_ROWS=0` reverts to the per-row loop: when every row of a verify
403/// round takes the v4-seqs arm on ONE `fa_split_keys` rung (the straddle law, evaluated
404/// at the round's first and last t_kv — both eligibility gates are intervals in t_kv),
405/// the qwen35 t-parallel verify's per-row KV-append + fa-decode loop collapses into the
406/// z-batched serving twins: ONE `append_quantize_kv_q8_0_q5_1_seqs` + ONE
407/// `fa_decode_vec_q_seqs_v4` + ONE combine per full-attention layer, replacing
408/// T x (4 dtod row copies + append + 3 memsets + main + combine) launches. Bytes are
409/// pinned by the batched-tick increment-2 kernel-check (seqs-vs-per-seq-loop bit
410/// identity: per-row T_kv derives in-kernel from pos_seq[z]; splits >= ns_eff write the
411/// empty partial the combine never reads, so the shared n_splits_max stride changes no
412/// bytes) and re-gated e2e by this lane's battery.
413pub(crate) fn dspark_fa_rows_on() -> bool {
414    static ON: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
415    *ON.get_or_init(|| {
416        std::env::var("MEMRA_DSPARK_FA_ROWS")
417            .map(|v| v != "0")
418            .unwrap_or(true)
419    })
420}
421
422/// `t_pred0` for the `MEMRA_DEBUG_SPEC` per-round print, sampled-safe.
423///
424/// `generate_spec_inner2` fills its `preds` vector ONLY on the greedy path (`if !sampled`), and
425/// the per-round debug print was the sole consumer in the sampled arm: `t_pred(0)` survives round
426/// 0 (`base == 0` returns `last_pred`) and from round 1 (`base == 1`, a pending bonus) indexes an
427/// EMPTY vector — `index out of bounds: the len is 0 but the index is 0`, in the GPU worker
428/// thread, which then respawns and reloads weights while the request dies. So any sampled spec
429/// request longer than one round used to kill the worker whenever `MEMRA_DEBUG_SPEC` was set:
430/// the flag crashed precisely the regime it exists to investigate.
431///
432/// Fixed at the print site, not inside the closure, so the greedy accept walk keeps its strict
433/// indexing (an out-of-range pred there is a real bug and must still be loud).
434fn debug_t_pred0(sampled: bool, base: usize, last_pred: u32, preds: &[u32]) -> String {
435    if base == 0 {
436        return last_pred.to_string();
437    }
438    match preds.get(base - 1) {
439        Some(p) => p.to_string(),
440        // sampled: the greedy per-column argmax was never run for this round.
441        None => {
442            debug_assert!(
443                sampled,
444                "greedy spec: preds[{}] missing at base {base}",
445                base - 1
446            );
447            "n/a".to_string()
448        }
449    }
450}
451
452/// `MEMRA_SKEY_PROBE=1` — sampled-draft-graph key probe (lane/graph-s-key-exactness-20260819).
453///
454/// Reports, per burst and per round, which draft chain the sampled arm chose and under which
455/// filter regime, plus the ONE observable that separates a legal filtered draft from a stale
456/// pure-temp graph replayed under filters: an accept test whose gathered `q` is exactly 0.
457/// A draft token sampled from the FILTERED softmax can never gather q=0 (it was drawn from the
458/// kept set), so `q=0` in the verify means the draft came from a distribution the verify does
459/// not believe in — and `u * 0 < p` then accepts it unconditionally.
460///
461/// Its own env var, deliberately NOT `MEMRA_DEBUG_SPEC`: that flag panicked the GPU worker on
462/// any sampled spec request past round 0 until this lane fixed it (§2 of the bank note).
463pub(crate) fn skey_probe() -> bool {
464    static ON: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
465    *ON.get_or_init(|| std::env::var("MEMRA_SKEY_PROBE").as_deref() == Ok("1"))
466}
467
468/// GRAMMAR HOOK for constrained spec decode (lane/constrained-full, 2026-08-03). The engine
469/// stays llguidance-agnostic: the server adapts its per-session grammar state behind this
470/// trait. CONTRACT (the verify-side truncation rule — token-identical to constrained plain
471/// greedy decode): the exactness walk runs UNMASKED first; the hook then (a) truncates
472/// acceptance at the first grammar-illegal accepted token, and (b) when the truncation fired
473/// or the bonus is illegal, the engine recomputes that slot as the MASKED argmax of the
474/// target's own verify column (an unmasked argmax that is grammar-legal IS the masked argmax
475/// — masking only removes tokens — so the common case pays nothing). `consume` advances the
476/// state with each EMITTED token in order; EOS handling is the implementor's job (skip).
477pub trait SpecConstraint {
478    /// -inf the current state's banned ids on a HOST logits row (prompt-tail / init-feed
479    /// masked argmax).
480    fn mask_logits(&mut self, logits: &mut [f32]) -> Result<(), String>;
481    /// Packed 32-bit bitset words of the CURRENT state's allowed set (device-mask form).
482    fn mask_words(&mut self) -> Result<Vec<u32>, String>;
483    /// Is `tok` consumable in the CURRENT state?
484    fn is_allowed(&mut self, tok: u32) -> Result<bool, String>;
485    /// Advance the state with an emitted token.
486    fn consume(&mut self, tok: u32) -> Result<(), String>;
487
488    // --- DRAFT-SIDE MASKING (lane/draft-mask, 2026-08-04) ---
489    // The drafter proposed grammar-illegal tokens under tight schemas, so verify-side
490    // truncation cut nearly every round (measured acceptance 0.467-0.513 tight vs 0.62-0.82
491    // loose, research/constrained-full-20260803). These three methods let the engine mask the
492    // DRAFT model's own sampling with the grammar's legal set, so proposals are legal by
493    // construction. The state they walk is a SPECULATIVE CLONE of the session matcher — the
494    // real state is advanced only by `consume` (emitted tokens), so verify-side truncation
495    // stays the correctness backstop and the emitted stream is unchanged by construction
496    // (an accepted draft is the target's unmasked argmax AND grammar-legal, hence the masked
497    // argmax; a cut slot is recomputed as the masked argmax either way).
498    // Default impls = feature OFF (pre-lane behaviour: unmasked drafts).
499
500    /// Is draft-side masking available on this hook? Probed ONCE per burst, before the draft
501    /// graph is captured (the mask is an in-graph node — its presence is a capture-time shape).
502    fn draft_mask_enabled(&self) -> bool {
503        false
504    }
505    /// Start a draft chain: clone the CURRENT (committed) grammar state into the speculative
506    /// slot. Called once per spec round, before the first draft position.
507    fn draft_begin(&mut self) -> Result<(), String> {
508        Ok(())
509    }
510    /// Packed 32-bit bitset words of the SPECULATIVE state's allowed set (target-vocab ids),
511    /// for the draft position about to be sampled. `None` = draft masking off (no-op).
512    fn draft_mask_words(&mut self) -> Result<Option<Vec<u32>>, String> {
513        Ok(None)
514    }
515    /// Advance the SPECULATIVE state with a PROPOSED draft token. `false` = the chain cannot
516    /// continue (EOS proposed, or an unmasked position proposed something illegal) — the
517    /// engine stops drafting; the token already pushed still goes through verify.
518    fn draft_advance(&mut self, _tok: u32) -> Result<bool, String> {
519        Ok(false)
520    }
521}
522
523/// DRAFT-MASK UPLOAD (lane/draft-mask): pull the speculative state's allowed set (TARGET-id
524/// space) from the hook, project it into the DRAFT head's vocab space, and upload it into the
525/// stable device buffer the draft chain reads. Returns false when the chain must stop drafting:
526/// the hook handed out no mask, or NO draft-vocab row is grammar-legal at this position (a
527/// trimmed FR-Spec head genuinely cannot propose a legal token there — masking it would leave
528/// a fully-banned row whose argmax is meaningless, so the round drafts fewer tokens and the
529/// verify emits the masked argmax as usual).
530fn upload_draft_mask(
531    e: &Engine,
532    c: &mut dyn SpecConstraint,
533    dst: &mut CudaSlice<u32>,
534    d2t: Option<&Vec<u32>>,
535    d_vocab: usize,
536    words: usize,
537) -> Result<bool, Box<dyn std::error::Error>> {
538    let Some(tw) = c
539        .draft_mask_words()
540        .map_err(|e2| format!("constraint: {e2}"))?
541    else {
542        return Ok(false);
543    };
544    let bit = |t: usize| -> bool {
545        let w = t >> 5;
546        w < tw.len() && (tw[w] >> (t & 31)) & 1 == 1
547    };
548    let mut buf = vec![0u32; words];
549    match d2t {
550        // TRIMMED draft head: row i proposes target id d2t[i] — permute the mask accordingly.
551        Some(map) => {
552            for (i, &t) in map.iter().enumerate().take(d_vocab) {
553                if bit(t as usize) {
554                    buf[i >> 5] |= 1u32 << (i & 31);
555                }
556            }
557        }
558        // UNTRIMMED: draft ids ARE target ids; the packed words transfer verbatim (a short
559        // mask leaves the padded tail zeroed == banned, same rule as constrained::apply_mask).
560        None => {
561            let n = tw.len().min(words);
562            buf[..n].copy_from_slice(&tw[..n]);
563        }
564    }
565    if buf.iter().all(|w| *w == 0) {
566        return Ok(false);
567    }
568    e.htod_u32_into(dst, &buf)?;
569    Ok(true)
570}
571
572/// Keep the full token-embedding table in host memory and upload only the rows needed by each
573/// MTP/verify step. This is an exact memory-capacity seam for very large BF16 vocab tables: host
574/// gather expands the same source bits to f32, and only O(T*n_embd) bytes cross PCIe per step.
575/// CUDA-graph/round-stream draft paths require device token ids and therefore stay disabled.
576pub(crate) fn spec_host_embd() -> bool {
577    static ON: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
578    *ON.get_or_init(|| std::env::var("MEMRA_SPEC_HOST_EMBD").as_deref() == Ok("1"))
579}
580
581/// VERIFY-TIER TRUNK LAUNCH-FUSION (default ON since 2026-07-09; MEMRA_SPEC_FUSED_T=0 reverts — lane/close35b): extend
582/// the t=1 fused2/fused3 Q8_0 trunk launches to the batched verify tier (t=2-4, the K=1..3
583/// verify shapes). At t>1 the trunk pairs/triples (35B wqkv+wqkv_gate, wq/wk/wv,
584/// gate_shexp+up_shexp) each run a separate `matmul_decode_exact` — one q8_1 re-quantize of the
585/// SAME activation plus one _b2/_b4 launch per tensor. The fused twins share ONE quantize and
586/// ONE launch per group; per (tensor,token,row) the kernel body is q8_0_mmvq_batched verbatim
587/// with the identical row mapping -> BIT-IDENTICAL by construction (kernel-check pins it,
588/// run-spec K=1..8 + acceptance identity arbitrate e2e).
589pub(crate) fn spec_fused_t() -> bool {
590    static F: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
591    // DEFAULT ON since 2026-07-09 (MEMRA_SPEC_FUSED_T=0 reverts): verify t=2-4 trunk launch-fusion
592    // (fused2/fused3 Q8_0 batched twins, bit-identical by construction — m=1 block-offset split on
593    // the batched body). m=2 marginal token 2117->1762us; 35B daily: p3 +3.7% (crosses llama), p2 +5%.
594    *F.get_or_init(|| {
595        std::env::var("MEMRA_SPEC_FUSED_T")
596            .map(|v| v != "0")
597            .unwrap_or(true)
598    })
599}
600
601/// zeros/uninit switch for verify-path buffers that are FULLY OVERWRITTEN before any read.
602/// Only call this on such buffers — the lean contract is "identical bytes by construction".
603fn vbuf(e: &Engine, n: usize) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
604    if spec_lean() { e.uninit(n) } else { e.zeros(n) }
605}
606
607/// Scratch KV for the MTP block (one full-attn layer).
608///
609/// PERSISTENT MODE (default, 2026-07-03 — the acceptance lever): sized cap = max_ctx and kept in
610/// sync with the COMMITTED sequence — slot p holds the MTP block's K/V for committed token p
611/// (roped p+1, the chain's rope convention), so the draft chain's self-attention sees the FULL
612/// committed history instead of only the current round's 1..K+1 chain tokens (the reference
613/// engine's "mtp_update" design). Entries come from two sources:
614///   - chain appends: accepted positions KEEP their chain-computed entries (embedding exact,
615///     hidden chain-approximate — the reference engine accepts the same);
616///   - `mtp_kv_fill` batches: prompt positions + the last-draft position on full accept, computed
617///     from EXACT trunk hiddens (K/V-only MTP-block pass, no attention/FFN/lm_head).
618/// Rejected drafts / p-min extras / pseudo-seed appends are all discarded by the round-start
619/// `set_len` truncation (the KvLayer len mechanism — §C rollback for the draft side).
620/// Multi-turn spec-decode session (2026-07-05): trunk Cache + persistent MTP draft scratch +
621/// the committed token list, alive across generate_spec_session calls. Turn N+1 primes ONLY its
622/// suffix (chunked continuation prime over the quantized past) and mtp_kv_fill's its suffix rows,
623/// then the round loop runs unchanged. `last_h` carries the pre-output_norm hidden of the last
624/// committed row across turns (the predecessor-pairing seed + fill anchor).
625/// Per-request sampling config for the sampled-spec serve path.
626#[derive(Clone, Copy, Debug)]
627pub struct SpecSampling {
628    pub temp: f32,
629    pub seed: u64,
630    pub top_k: i32,            // 0 = off
631    pub top_p: f32,            // 1.0 = off
632    pub min_p: f32,            // 0.0 = off
633    pub penalty_last_n: usize, // 0 = penalties off
634    pub penalty_repeat: f32,
635    pub penalty_freq: f32,
636    pub penalty_present: f32,
637}
638
639impl SpecSampling {
640    /// Non-identity penalties requested — THE `pen_on` predicate (one definition; the
641    /// same group-off rule `SamplerIdentity::of` canonicalizes: a window with neutral
642    /// coefficients is penalties-absent). Both spec routes and the dspark accept walk
643    /// key their penalty arms off this.
644    pub fn pen_on(&self) -> bool {
645        self.penalty_last_n > 0
646            && (self.penalty_repeat != 1.0
647                || self.penalty_freq != 0.0
648                || self.penalty_present != 0.0)
649    }
650}
651
652/// Host Philox4x32-10 uniform in (0,1) — mirrors spec_sample.cu's `philox4`/`u01` with the
653/// ctr_lo tag 0xFFFF_FFFE, so the host accept-test stream never collides with any device
654/// sampling event (device Gumbel uses (i>>2, stream_pos); device residual uses 0xFFFF_FFFD).
655/// One value per (seed, ctr) EVENT; callers own the counter discipline. Extracted verbatim
656/// from generate_spec_inner2's closure for the dspark sampled-admission walk (the two paths
657/// MUST consume the identical stream construction — two ad-hoc Philox copies drifting apart
658/// is a distributional bug, not a style problem).
659pub(crate) fn host_u01(seed: u64, ctr: u32) -> f32 {
660    let (m0, m1) = (0xD2511F53u32, 0xCD9E8D57u32);
661    let (mut c0, mut c1, mut c2, mut c3) = (0xFFFF_FFFEu32, ctr, 0u32, 0u32);
662    let (mut k0, mut k1) = ((seed & 0xFFFF_FFFF) as u32, (seed >> 32) as u32);
663    for _ in 0..10 {
664        let (h0, l0) = (((m0 as u64 * c0 as u64) >> 32) as u32, m0.wrapping_mul(c0));
665        let (h1, l1) = (((m1 as u64 * c2 as u64) >> 32) as u32, m1.wrapping_mul(c2));
666        let (n0, n1, n2, n3) = (h1 ^ c1 ^ k0, l1, h0 ^ c3 ^ k1, l0);
667        c0 = n0;
668        c1 = n1;
669        c2 = n2;
670        c3 = n3;
671        k0 = k0.wrapping_add(0x9E3779B9);
672        k1 = k1.wrapping_add(0xBB67AE85);
673    }
674    (c0 as f32 + 1.0) * (1.0 / 4294967296.0)
675}
676
677/// Tracked draft positions for [`SpecTelemetry`] (serve K defaults to 3; the run-spec gate
678/// sweeps K=1..8, and MEMRA_SPEC_CAPMAX defaults to 7 — 8 covers every tuned config).
679pub const SPEC_TELEM_POS: usize = 8;
680
681/// Always-on per-draft-position acceptance telemetry (lane/accept-telemetry, 2026-08-05 —
682/// the llama.cpp #26389 / vLLM spec-decode counter schema, upstream-sweeps 2026-08-05).
683/// Lives on the [`SpecSession`] and accumulates across bursts; the serve worker diffs a
684/// stashed copy per burst for its per-model /metrics aggregation and per-request usage.
685/// Same normalization as the `[spec-stats]` line: p-min-discarded chain tokens are counted
686/// in NEITHER drafted nor accepted.
687#[derive(Clone, Copy, Default, Debug)]
688pub struct SpecTelemetry {
689    /// verify rounds completed (a round-stream burst counts each of its M rounds).
690    pub rounds: u64,
691    /// tokens drafted / accepted across all rounds.
692    pub drafted: u64,
693    pub accepted: u64,
694    /// how often draft position j (0-based within a round's chain) was offered / accepted.
695    /// Positions >= SPEC_TELEM_POS are untracked (totals still count them). The opt-in
696    /// round-stream arm (MEMRA_SPEC_STREAM=1) reads back only totals, so under it these
697    /// arrays cover the standard-path rounds only and their sums may undercount the totals.
698    pub pos_drafted: [u64; SPEC_TELEM_POS],
699    pub pos_accepted: [u64; SPEC_TELEM_POS],
700}
701
702impl SpecTelemetry {
703    /// Fieldwise `self - prev` — the worker's per-burst delta off a copy stashed before the
704    /// burst call. Saturating: a caller diffing against the wrong snapshot gets zeros, not
705    /// a wrapped counter.
706    pub fn delta_since(&self, prev: &SpecTelemetry) -> SpecTelemetry {
707        let mut d = SpecTelemetry {
708            rounds: self.rounds.saturating_sub(prev.rounds),
709            drafted: self.drafted.saturating_sub(prev.drafted),
710            accepted: self.accepted.saturating_sub(prev.accepted),
711            ..Default::default()
712        };
713        for j in 0..SPEC_TELEM_POS {
714            d.pos_drafted[j] = self.pos_drafted[j].saturating_sub(prev.pos_drafted[j]);
715            d.pos_accepted[j] = self.pos_accepted[j].saturating_sub(prev.pos_accepted[j]);
716        }
717        d
718    }
719    /// Fieldwise `self += d` — the worker's per-model aggregation.
720    pub fn merge(&mut self, d: &SpecTelemetry) {
721        self.rounds += d.rounds;
722        self.drafted += d.drafted;
723        self.accepted += d.accepted;
724        for j in 0..SPEC_TELEM_POS {
725            self.pos_drafted[j] += d.pos_drafted[j];
726            self.pos_accepted[j] += d.pos_accepted[j];
727        }
728    }
729
730    /// Mean accepted draft-prefix length per verify round (tau).
731    pub fn tau(&self) -> f64 {
732        if self.rounds > 0 {
733            self.accepted as f64 / self.rounds as f64
734        } else {
735            0.0
736        }
737    }
738}
739
740/// Session-lifetime atomic acceptance counters. The verifier records only after the greedy or
741/// rejection-sampling walk has resolved on the host, so these relaxed increments add no GPU
742/// launch, synchronization, allocation, or ordering dependency to the numeric path.
743struct SpecTelemetryCounters {
744    rounds: AtomicU64,
745    drafted: AtomicU64,
746    accepted: AtomicU64,
747    pos_drafted: [AtomicU64; SPEC_TELEM_POS],
748    pos_accepted: [AtomicU64; SPEC_TELEM_POS],
749}
750
751impl Default for SpecTelemetryCounters {
752    fn default() -> Self {
753        Self {
754            rounds: AtomicU64::new(0),
755            drafted: AtomicU64::new(0),
756            accepted: AtomicU64::new(0),
757            pos_drafted: std::array::from_fn(|_| AtomicU64::new(0)),
758            pos_accepted: std::array::from_fn(|_| AtomicU64::new(0)),
759        }
760    }
761}
762
763impl SpecTelemetryCounters {
764    fn record_round(&self, drafted: usize, accepted: usize) {
765        debug_assert!(accepted <= drafted);
766        self.rounds.fetch_add(1, Ordering::Relaxed);
767        self.drafted.fetch_add(drafted as u64, Ordering::Relaxed);
768        self.accepted.fetch_add(accepted as u64, Ordering::Relaxed);
769        for counter in self.pos_drafted.iter().take(drafted) {
770            counter.fetch_add(1, Ordering::Relaxed);
771        }
772        for counter in self.pos_accepted.iter().take(accepted) {
773            counter.fetch_add(1, Ordering::Relaxed);
774        }
775    }
776
777    /// Round-stream keeps each round's accept length on device; retain exact scalar totals while
778    /// leaving the per-position arrays untouched, matching the pre-existing telemetry contract.
779    fn record_totals(&self, rounds: usize, drafted: usize, accepted: usize) {
780        self.rounds.fetch_add(rounds as u64, Ordering::Relaxed);
781        self.drafted.fetch_add(drafted as u64, Ordering::Relaxed);
782        self.accepted.fetch_add(accepted as u64, Ordering::Relaxed);
783    }
784
785    fn snapshot(&self) -> SpecTelemetry {
786        SpecTelemetry {
787            rounds: self.rounds.load(Ordering::Relaxed),
788            drafted: self.drafted.load(Ordering::Relaxed),
789            accepted: self.accepted.load(Ordering::Relaxed),
790            pos_drafted: std::array::from_fn(|j| self.pos_drafted[j].load(Ordering::Relaxed)),
791            pos_accepted: std::array::from_fn(|j| self.pos_accepted[j].load(Ordering::Relaxed)),
792        }
793    }
794}
795
796pub struct SpecSession {
797    pub(crate) cache: Cache,
798    pub(crate) scratch: MtpScratch,
799    /// Every token whose state the caches hold, in order (prompt turns + generated), INCLUDING
800    /// overshoot: spec commits accepted drafts past max_new; those rows are in the caches, so the
801    /// session must count them. Callers render output from this, not from their own echo.
802    pub committed: Vec<u32>,
803    /// Pre-output_norm hidden of the LAST committed row (device). None before the first turn.
804    pub(crate) last_h: Option<CudaSlice<f32>>,
805    /// Greedy argmax predicting the token AFTER committed.last() (from the last turn's final
806    /// logits). Fuels empty-suffix continuation bursts (serve): the next turn emits this token
807    /// first, feeds it, and the round loop resumes without any prime. None before the first turn.
808    pub next_pred: Option<u32>,
809    /// SAMPLED-SPEC stream continuity across bursts: Philox event counters persist here so a
810    /// session's randomness never repeats between generate_spec_session calls. (0,0) at admit.
811    pub sctr: u32,
812    pub uctr: u32,
813    /// PERSISTENT DRAFT-GRAPH CONTEXT (2026-08-01, the serve-burst fixed-cost fix): the captured
814    /// draft graph(s) + every device I/O buffer they bake, carried ACROSS generate_spec_session
815    /// calls. Before this, every serve burst re-captured the draft graph (2 warmup forwards +
816    /// instantiate) — measured ~16ms/burst on H100 q27 (MEMRA_SPEC_BURST sweep,
817    /// research/spec-serving-20260801). None before the first turn; error paths drop it
818    /// (next burst recaptures — serve retires errored sessions anyway).
819    pub(crate) draft_ctx: Option<DraftGraphCtx>,
820    /// PENDING-CARRY across bursts (2026-08-01, the serve burst-boundary fix): the bonus token
821    /// emitted by the last round but NOT committed to the caches. The old tail committed it with
822    /// a solo T=1 trunk pass (+ draft fill), and the next burst's setup fed the stashed next_pred
823    /// with ANOTHER solo pass — 2x ~11.5ms/burst measured on H100 q27 ([spec-setup] trace).
824    /// Carrying it lets the next empty-suffix greedy burst consume it as round-0 verify col 0,
825    /// exactly like a mid-burst full-accept boundary (no solo passes). INVARIANT: when set,
826    /// `committed` (== cache rows) EXCLUDES this token although it was already emitted in the
827    /// last burst's output, and `last_h` holds the hidden of the last COMMITTED row (its
828    /// predecessor — the chain-seed/fill anchor). `next_pred` is None (unknown without the
829    /// commit pass). Non-empty-suffix or sampled turns must flush first (spec_flush_pending);
830    /// generate_spec_session_sampled does this at entry, and serve parks only flushed sessions.
831    pub pending_tok: Option<u32>,
832    /// SESSION-AFFINITY TURN CHECKPOINT (lane/session-affinity, 2026-08-05): the state at this
833    /// turn's PROMPT-END boundary, retained so a later turn can REWIND here. See
834    /// [`SpecCheckpoint`]. Refreshed by every non-empty prime; None until the first one, and on
835    /// a rig too tight to hold it (a failed capture is silent — resume just isn't available).
836    pub(crate) turn_ckpt: Option<SpecCheckpoint>,
837    /// Session-lifetime acceptance telemetry. Relaxed atomics update at the host-side round
838    /// accounting the loop already does — no syncs, no allocation. NOTE a
839    /// pool-resumed session carries the PREVIOUS requests' counts; per-request consumers
840    /// diff with [`SpecTelemetry::delta_since`] around each burst.
841    telem: SpecTelemetryCounters,
842    /// PREFIX-CACHE publication request (lane/spec-prefix-cache): worker sets this to the
843    /// miss-LCP boundary before a cold burst; the prime captures at exactly that split (it must
844    /// coincide with the burst's `prime_split` or no capture happens). One-shot: consumed by the
845    /// prime, result lands in `boundary_captures`.
846    pub capture_at: Option<usize>,
847    /// The captures the last prime produced (see [`SpecBoundaryCapture`]). Worker drains them
848    /// post-burst to assemble prefix entries. A failed capture is silent, like `turn_ckpt` —
849    /// publication just isn't available for that request. Plural since
850    /// lane/frspec-multiturn-cache (2026-08-21): a cold burst can capture BOTH the miss-LCP
851    /// split (the shared-prefix class) and the stable pre-generation boundary (the
852    /// next-turn re-render class) — one entry per stop, exactly the boundary set the plain
853    /// prefill tick publishes/checkpoints.
854    pub boundary_captures: Vec<SpecBoundaryCapture>,
855    /// STABLE-BOUNDARY TURN CHECKPOINT REQUEST (lane/frspec-multiturn-cache, 2026-08-21): the
856    /// ABSOLUTE committed-length position the next non-empty prime should capture `turn_ckpt`
857    /// at, instead of prompt-end. The worker sets it to the STABLE PRE-GENERATION boundary
858    /// (`plain_checkpoint_boundary` — before the live generation header the client rewrites),
859    /// porting the 2026-08-09 plain-tier fix: a prompt-end spec checkpoint includes the
860    /// template's live assistant-generation header (`<|im_start|>assistant\n<think>\n`), which
861    /// the NEXT turn's re-render replaces, so `affinity_match` diverged a couple tokens below
862    /// the checkpoint and the spec pool declined 100% of multi-turn agent traffic (measured:
863    /// `spec-affinity: declined (history diverged at 6811 of checkpoint 6813)`,
864    /// research/multiturn-cache-20260821 B4). One-shot, `capture_at` convention; None = legacy
865    /// prompt-end capture.
866    pub ckpt_at: Option<usize>,
867}
868impl SpecSession {
869    /// Context capacity of the session's caches (the server's ContextFull guard).
870    pub fn cache_max_ctx(&self) -> usize {
871        self.cache.max_ctx
872    }
873    /// Read access to the live trunk cache (lane/spec-prefix-cache): the worker slices
874    /// full-attn KV rows `[0..capture.pos)` out of it when publishing a boundary capture —
875    /// those rows are append-only for the session's lifetime (rollbacks never truncate below
876    /// the prime boundary), so no copy was taken at prime time.
877    pub fn cache_ref(&self) -> &Cache {
878        &self.cache
879    }
880    /// Read access to the persistent draft-scratch plane (lane/spec-on-cache-hit): the
881    /// worker slices rows `[0..capture.pos)` when publishing a boundary capture, exactly
882    /// like the trunk KV — draft rows below the prompt end are append-only for the
883    /// session's lifetime (the prime fill wrote them once; rollbacks reset `len_d` to the
884    /// committed length, never below the prime boundary, and the true-hidden refresh
885    /// rewrites generated positions only). Returns `(k, v, k_tok_bytes, v_tok_bytes)`.
886    /// None when the scratch is ring-backed (Step35 SWA — physical rows are not
887    /// prefix-addressable; the prefix cache already refuses that class end to end).
888    pub fn draft_plane_ref(&self) -> Option<(&CudaSlice<u8>, &CudaSlice<u8>, usize, usize)> {
889        if self.scratch.kv.ring.is_some() {
890            return None;
891        }
892        Some((
893            &self.scratch.kv.k,
894            &self.scratch.kv.v,
895            self.scratch.kv.k_tok_bytes,
896            self.scratch.kv.v_tok_bytes,
897        ))
898    }
899    /// Snapshot the session's process-local acceptance counters for per-burst diffing.
900    pub fn telemetry(&self) -> SpecTelemetry {
901        self.telem.snapshot()
902    }
903    /// Committed position this session can REWIND to (its retained prompt-end boundary), if any.
904    /// A request whose prompt matches `committed[..pos]` exactly can resume from here — see
905    /// `spec_rewind_to_checkpoint`.
906    pub fn rewind_pos(&self) -> Option<usize> {
907        self.turn_ckpt.as_ref().map(|c| c.pos)
908    }
909    /// Whether every ring-backed trunk/draft row needed by the retained checkpoint is resident.
910    pub fn rewind_is_resident(&self) -> bool {
911        self.turn_ckpt.as_ref().is_some_and(|ckpt| {
912            self.cache.can_rollback(&ckpt.snap, 0) && self.scratch.can_rewind_to(ckpt.pos)
913        })
914    }
915    /// Is this session in the DEMOTION-READY shape (see [`SpecSession::into_demoted`])?
916    /// `false` means a carried pending must be flushed first (`spec_flush_pending`), or the
917    /// session has never run a turn and has no prediction to hand over.
918    pub fn demote_ready(&self) -> bool {
919        self.pending_tok.is_none() && self.next_pred.is_some()
920    }
921    /// Does this session hold a carried pending bonus (flush required before a handoff/park)?
922    pub fn has_pending(&self) -> bool {
923        self.pending_tok.is_some()
924    }
925    /// Committed row count == cache rows (the session invariant), for the caller's own
926    /// `fed`-length cross-check at a handoff boundary.
927    pub fn committed_len(&self) -> usize {
928        self.committed.len()
929    }
930    /// DEMOTION HANDOFF (lane/spec-gate, 2026-08-07): consume this session and hand its trunk
931    /// cache + next-token prediction to the plain batched-decode path.
932    ///
933    /// WHY THIS IS EXACT (greedy). The invariant at a burst boundary is `cache.pos ==
934    /// committed.len()`: every committed row has trunk KV + recurrent state, exactly as a plain
935    /// tokenwise prime of the same `committed` sequence would have left it (that is the
936    /// session-tail contract, and the same property `spec_rewind_to_checkpoint` and the reuse
937    /// pool already rely on). `next_pred` is the argmax of the verify's logits for the LAST
938    /// committed row — and verify-column logits are bit-identical to plain decode's logits at
939    /// that position, because `matmul_decode_exact` bit-identity IS the basis of the greedy
940    /// accept walk. So handing (cache, next_pred) to the batched path continues the stream from
941    /// a state indistinguishable from one the batched path produced itself: the batched tick
942    /// emits `next_pred`, feeds it into this same cache, and decodes on.
943    ///
944    /// `None` when the session is not in the handoff shape — a carried pending (its bonus row is
945    /// NOT in the cache, so `spec_flush_pending` must commit it first) or no `next_pred` yet
946    /// (never bursted). Callers must not force it: a half-committed cache handed to the batched
947    /// path would silently skip a token.
948    ///
949    /// The MTP draft scratch, the persistent draft-graph context and the turn checkpoint are
950    /// DROPPED here (freeing their VRAM): the batched path never drafts, and this handoff is
951    /// one-way by design — there is no cheap symmetric re-promotion (rebuilding the draft KV
952    /// would mean an `mtp_kv_fill` over the whole committed history).
953    pub fn into_demoted(self) -> Option<(Cache, u32)> {
954        if self.pending_tok.is_some() {
955            return None;
956        }
957        let np = self.next_pred?;
958        debug_assert_eq!(
959            self.cache.pos,
960            self.committed.len(),
961            "demotion handoff: cache rows != committed tokens"
962        );
963        Some((self.cache, np))
964    }
965    /// Pool-resume hook (audit Q2): clear the parked draft-graph failure memoization so a
966    /// NEW request resuming this session gets one fresh capture chance — a transient-pressure
967    /// capture failure must not persist for the pool's whole lifetime (the TRT #16072 class).
968    /// Logs once iff a flag was actually set; a no-fallback resume is silent and free.
969    pub fn reset_graph_fallback_on_resume(&mut self) {
970        if let Some(line) = self
971            .draft_ctx
972            .as_mut()
973            .and_then(|c| c.failed.reset_on_resume())
974        {
975            eprintln!("{line}");
976        }
977    }
978}
979
980/// A session's PROMPT-END boundary state, the rewind target for session-affinity resume.
981///
982/// WHY THIS BOUNDARY, AND WHY IT IS THE ONLY ONE WORTH KEEPING. The rewrite class this lane
983/// exists for (a client that strips `<think>` blocks out of prior assistant turns) mutates the
984/// text the session GENERATED, never the prompt it was given. So turn N's prompt agrees with
985/// turn N-1's committed tokens up to almost exactly where turn N-1's generation began — the
986/// prompt-end boundary. Keeping a checkpoint there means the next turn re-primes only its own
987/// delta (the rewritten answer + the new user turn) instead of the whole conversation.
988///
989/// WHAT IT MUST HOLD. Full-attn KV is append-only and position-addressed, so rewinding it is a
990/// `len` truncation (no data). Linear-attn (GDN) conv/ssm state is mutated IN PLACE with no
991/// position index, so it must be a real device COPY — that copy is the entire reason a spec
992/// session could not previously rewind. The MTP draft scratch needs no copy either: its rows
993/// below the boundary were written by this turn's fill and are never revisited (the per-round
994/// true-hidden refresh only rewrites the CURRENT burst's committed positions), so rewinding it
995/// is also just a `len` reset. `last_h` is the hidden of the last row below the boundary — the
996/// predecessor-pairing anchor the next prime's fill reads for its first row.
997///
998/// COST: one `Cache::snapshot` per TURN, on a code path that already takes one per ROUND.
999pub(crate) struct SpecCheckpoint {
1000    snap: crate::cache::CacheSnapshot,
1001    /// Committed length at the boundary (== cache.pos there, the session invariant).
1002    pos: usize,
1003    /// Pre-output_norm hidden of row `pos - 1`.
1004    last_h: CudaSlice<f32>,
1005}
1006
1007/// PREFIX-CACHE BOUNDARY CAPTURE (lane/spec-prefix-cache, 2026-08-14): the state a spec session
1008/// records at its cold-prime split so the WORKER can publish a cross-request prefix entry —
1009/// the commit-gated-publication port (research/cache-spec-design-20260814/PORT-PLAN.md item 1).
1010/// Only the pieces that are DESTROYED by continuing the prime need copies here: the in-place
1011/// GDN conv/ssm states (via `Cache::snapshot`, same mechanism as [`SpecCheckpoint`]) and the
1012/// boundary logits. Full-attn KV rows `[0..pos)` and draft-scratch rows `[0..pos)` are
1013/// append-only for the session's lifetime (rollbacks never truncate below the prime boundary),
1014/// so the worker slices those from the live caches post-burst instead of copying at prime time.
1015pub struct SpecBoundaryCapture {
1016    pub snap: crate::cache::CacheSnapshot,
1017    /// Token boundary (== cache.pos at capture; == the worker's miss-LCP split).
1018    pub pos: usize,
1019    /// Full-vocab logits after the prefix prime — the entry's boundary logits.
1020    pub logits: Vec<f32>,
1021    /// Pre-output_norm trunk hidden of row `pos - 1` (lane/spec-on-cache-hit): the
1022    /// predecessor-pairing anchor a RESTORED spec session's first suffix-fill row reads
1023    /// (the `SpecSession::last_h` convention). Empty = unavailable (capture stays valid;
1024    /// the fill's zeros row-0 fallback covers it at a bounded acceptance cost).
1025    pub last_h: Vec<f32>,
1026}
1027
1028/// D2H one hidden row out of a `[T, n_embd]` prime hidden stack — the boundary anchor a
1029/// spec boundary capture carries for later restored-session fills. Failure is silent
1030/// (`turn_ckpt` convention): the capture publishes without an anchor.
1031fn capture_boundary_hidden(
1032    e: &Engine,
1033    h_rows: &CudaSlice<f32>,
1034    pos: usize,
1035    n_embd: usize,
1036) -> Vec<f32> {
1037    if pos == 0 || h_rows.len() < pos * n_embd {
1038        return Vec::new();
1039    }
1040    let Ok(mut row) = e.uninit(n_embd) else {
1041        return Vec::new();
1042    };
1043    if e.copy_view_into(
1044        &mut row,
1045        0,
1046        &h_rows.slice((pos - 1) * n_embd..pos * n_embd),
1047        n_embd,
1048    )
1049    .is_err()
1050    {
1051        return Vec::new();
1052    }
1053    e.dtoh(&row).unwrap_or_default()
1054}
1055
1056/// ROLLBACK DOOR for sampled BOUNDARY tokens (lane/sampled-spec-quality, 2026-08-19).
1057/// Default ON: the token a burst emits at its own boundary is drawn from the request's
1058/// sampler. `MEMRA_SPEC_SAMPLED_BOUNDARY=0` restores the pre-lane posture (an ARGMAX at
1059/// every boundary) without touching greedy, which is byte-unaffected either way.
1060pub fn spec_sampled_boundary_on() -> bool {
1061    static ON: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
1062    *ON.get_or_init(|| std::env::var("MEMRA_SPEC_SAMPLED_BOUNDARY").as_deref() != Ok("0"))
1063}
1064
1065/// ROLLBACK DOOR for SESSION-SPANNING penalty history (lane/sampled-spec-quality).
1066/// Default ON: `pen_hist` is seeded from the session's committed tail, so repetition /
1067/// frequency / presence penalties see the whole stream. `MEMRA_SPEC_PEN_SESSION=0`
1068/// restores the pre-lane posture (each burst restarts the window from its own prompt
1069/// slice, i.e. from NOTHING on a continuation burst) — and with the door shut the worker
1070/// must keep refusing penalized sampled prefix-cache restores, because the restored
1071/// session's continuation burst is handed no prompt slice at all.
1072pub fn spec_pen_session_on() -> bool {
1073    static ON: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
1074    *ON.get_or_init(|| std::env::var("MEMRA_SPEC_PEN_SESSION").as_deref() != Ok("0"))
1075}
1076
1077/// ROLLBACK DOOR for extended-entry publication from a RESTORED session
1078/// (lane/sampled-spec-quality, Item 3). Default ON: a converted prefix-cache hit that fed a
1079/// suffix captures its own prompt-end boundary so the NEXT turn can hit a longer prefix.
1080/// `MEMRA_SPEC_RESTORE_REPUBLISH=0` restores the pre-lane posture (a namespace learns exactly
1081/// one boundary and never advances it). Whole-entry semantics only — the boundary is the
1082/// restored session's own prompt end, so `entry_pos != fed_len` still refuses on the way in.
1083pub fn spec_restore_republish_on() -> bool {
1084    static ON: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
1085    *ON.get_or_init(|| std::env::var("MEMRA_SPEC_RESTORE_REPUBLISH").as_deref() != Ok("0"))
1086}
1087
1088/// Diagnostics: name every boundary token on stderr (`MEMRA_SPEC_BOUNDARY_TRACE=1`), with
1089/// the argmax the pre-lane code would have emitted from the same row. This is how the
1090/// lane MEASURES the boundary rate and the deviation rate instead of estimating them.
1091fn spec_boundary_trace() -> bool {
1092    static ON: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
1093    *ON.get_or_init(|| std::env::var("MEMRA_SPEC_BOUNDARY_TRACE").as_deref() == Ok("1"))
1094}
1095
1096/// llama-parity floor for the penalty window when the request does not ask for a bigger
1097/// one (`repeat_last_n` default). The serve API arms `penalty_last_n = PEN_WINDOW_MAX` for any
1098/// non-identity penalty, so this floor only matters to explicit small windows and to the
1099/// CLI env path.
1100const PEN_WINDOW_FLOOR: usize = 64;
1101
1102/// CEILING on the penalty window, and it is a COST bound, not a semantic preference.
1103/// `penalize_logits_f32` (cu/spec_sample.cu) dedups on device by having thread `i` scan
1104/// `hist[0..i]`, so a pass is O(n_hist²) and it runs ~3x per verify round (the q rows, the
1105/// p column, the bonus column). The serve API uses this same bound for every non-identity
1106/// penalty so host/plain, sparse-device, and speculative sampling cannot change logits on
1107/// admission demotion. An uncapped 128k-token history would put ~1.7e10
1108/// comparisons per pass, tens of ms per round, i.e. penalties would silently destroy decode
1109/// throughput on exactly the long-context requests that most want them. 8192 keeps a pass
1110/// at ~7e7 comparisons (tens of microseconds) while still being **128x wider than the
1111/// pre-lane effective window** (64 prompt-tail tokens + whatever the current burst had
1112/// generated). A request that genuinely needs a window beyond this wants host-side dedup +
1113/// counts through a new kernel signature — a follow-up lane, named here rather than hidden.
1114/// `pub` since lane/dspark-penalized-sampled-20260821: the dspark route's accept walk and
1115/// the dspark_sample_gate binary trim their uploads with the SAME cap — a second constant
1116/// is a second thing to drift.
1117pub const PEN_WINDOW_MAX: usize = 8192;
1118
1119/// Seed a penalty window over the SESSION, not the burst (lane/sampled-spec-quality,
1120/// Item 2). The window is the last `max(penalty_last_n, 64)` tokens of
1121/// `session_committed ++ burst_prompt` — for a cold turn-1 burst (`session_committed`
1122/// empty, default `penalty_last_n`) that is byte-identically the pre-lane
1123/// `prompt.iter().rev().take(64).rev()`; for a continuation burst it is the stream the
1124/// client actually asked us to penalize, where the pre-lane code had NOTHING.
1125/// `pub` since lane/dspark-penalized-sampled-20260821: the dspark route seeds its session
1126/// window through the SAME function (one definition of "the window" across both spec
1127/// routes and the gate binary's trunk-only reference arm).
1128pub fn pen_window_seed(
1129    session_committed: &[u32],
1130    burst_prompt: &[u32],
1131    penalty_last_n: usize,
1132) -> Vec<u32> {
1133    let win = penalty_last_n.clamp(PEN_WINDOW_FLOOR, PEN_WINDOW_MAX);
1134    let take_prompt = burst_prompt.len().min(win);
1135    let take_sess = (win - take_prompt).min(session_committed.len());
1136    let mut hist = Vec::with_capacity(take_sess + take_prompt);
1137    hist.extend_from_slice(&session_committed[session_committed.len() - take_sess..]);
1138    hist.extend_from_slice(&burst_prompt[burst_prompt.len() - take_prompt..]);
1139    hist
1140}
1141
1142/// Draw a BOUNDARY token from the target distribution the request asked for
1143/// (lane/sampled-spec-quality, Item 1) — the fix for "sampled spec emits an ARGMAX token at
1144/// every burst boundary".
1145///
1146/// WHY THIS EXISTS. A spec burst's first emitted token is not produced by the accept walk:
1147/// it comes off a logits row that already exists (the prime's last row on a cold burst; the
1148/// row after the last committed token on a continuation burst; the prefix-cache entry's
1149/// boundary row on a restored one). Pre-lane that token was `argmax` in BOTH sampling
1150/// regimes, so a sampled stream took a greedy token once per burst — measured, not
1151/// estimated, in research/spec-cache-20260818/SAMPLED-QUALITY.md. At temperature > 0 the
1152/// customer asked for a sampled token, so this draws one.
1153///
1154/// THE PROGRAM IS THE FULL-ACCEPT BONUS'S PROGRAM, deliberately: penalize the row (over the
1155/// session's window), take this row's OWN filter stats (the sampfix-20260805 law — stats
1156/// from a neighbour row mis-scale every `e0` and can wipe the row to token 0), gumbel-perturb
1157/// with the session's Philox stream at `*sctr`, argmax the perturbed row. Reusing the bonus's
1158/// composition means `sample_check`'s distributional oracle covers this draw too, and the
1159/// boundary token is drawn from the same filtered/penalized `p` the accept walk targets.
1160///
1161/// THE STREAM IS THE SESSION'S, NOT A FRESH ONE. `sctr` is the caller's live counter and is
1162/// advanced by exactly one, so a boundary draw consumes the next value in the same Philox
1163/// stream the accept walk uses — never a second, independently seeded stream (which would be
1164/// a new distributional bug: two streams from one seed correlate wherever their counters
1165/// collide). That also makes a restored session's boundary draw at `sctr == 0` bit-identical
1166/// to the cold session's own first draw from the same logits row, which is what preserves the
1167/// sampled-hit lane's per-seed hit==cold byte identity.
1168#[allow(clippy::too_many_arguments)]
1169pub fn sample_boundary_token_dev(
1170    e: &Engine,
1171    logits: &CudaSlice<f32>,
1172    n_vocab: usize,
1173    sp: &SpecSampling,
1174    pen_hist: &[u32],
1175    sctr: &mut u32,
1176    site: &str,
1177) -> Result<u32, Box<dyn std::error::Error>> {
1178    debug_assert!(
1179        sp.temp > 0.0,
1180        "boundary sampling is the sampled regime only"
1181    );
1182    // Own copy: penalize_logits mutates in place and the caller's row is live state
1183    // (prime_logits back the constrained recompute; last_col_logits backs round 0's accept).
1184    let mut col = e.zeros(n_vocab)?;
1185    e.copy_into(&mut col, 0, logits, n_vocab)?;
1186    let pen_on = sp.penalty_last_n > 0
1187        && (sp.penalty_repeat != 1.0 || sp.penalty_freq != 0.0 || sp.penalty_present != 0.0);
1188    if pen_on && !pen_hist.is_empty() {
1189        // window trim mirrors the round loop's own upload (`pen_hist[w0..]`), cap included.
1190        let w0 = pen_hist
1191            .len()
1192            .saturating_sub(sp.penalty_last_n.min(PEN_WINDOW_MAX));
1193        let hist = &pen_hist[w0..];
1194        let hd = e.htod_u32_v(hist)?;
1195        e.penalize_logits(
1196            &mut col,
1197            &hd,
1198            hist.len(),
1199            sp.penalty_repeat,
1200            sp.penalty_freq,
1201            sp.penalty_present,
1202            n_vocab,
1203        )?;
1204    }
1205    let rows0 = e.htod_i32(&[0])?;
1206    let (mut th_d, mut z_d, mut mx_d) = (e.zeros(1)?, e.zeros(1)?, e.zeros(1)?);
1207    e.filter_stats(
1208        &col, n_vocab, &rows0, &mut th_d, &mut z_d, &mut mx_d, n_vocab, 1, sp.temp, sp.top_k,
1209        sp.top_p, sp.min_p,
1210    )?;
1211    let (th, mx) = (e.dtoh(&th_d)?[0], e.dtoh(&mx_d)?[0]);
1212    let mut perturb = e.zeros(n_vocab)?;
1213    e.gumbel_perturb_filtered(&col, &mut perturb, n_vocab, sp.seed, *sctr, sp.temp, mx, th)?;
1214    *sctr = sctr.wrapping_add(1);
1215    let td = e.argmax_token_device(&perturb, n_vocab)?;
1216    let tok = e.dtoh_u32_one(&td)?;
1217    if spec_boundary_trace() {
1218        // the pre-lane token, from the SAME row, so the deviation rate is measurable.
1219        let raw = e.argmax_token_device(logits, n_vocab)?;
1220        let greedy = e.dtoh_u32_one(&raw)?;
1221        eprintln!(
1222            "[spec-boundary] site={site} sampled={tok} argmax={greedy} \
1223             deviates={} temp={} sctr={}",
1224            (tok != greedy) as u8,
1225            sp.temp,
1226            sctr.wrapping_sub(1),
1227        );
1228    }
1229    Ok(tok)
1230}
1231
1232/// Host-row twin of [`sample_boundary_token_dev`] (the prime / feed / entry rows arrive as
1233/// host `Vec<f32>`).
1234#[allow(clippy::too_many_arguments)]
1235pub fn sample_boundary_token(
1236    e: &Engine,
1237    logits: &[f32],
1238    sp: &SpecSampling,
1239    pen_hist: &[u32],
1240    sctr: &mut u32,
1241    site: &str,
1242) -> Result<u32, Box<dyn std::error::Error>> {
1243    let n_vocab = logits.len();
1244    let d = e.htod(logits)?;
1245    sample_boundary_token_dev(e, &d, n_vocab, sp, pen_hist, sctr, site)
1246}
1247
1248struct SpecPipeTraceClock {
1249    pair: usize,
1250    started: std::time::Instant,
1251}
1252
1253#[derive(Clone)]
1254struct SpecPipeTraceCtx {
1255    clock: std::sync::Arc<SpecPipeTraceClock>,
1256    round: usize,
1257    lane: usize,
1258}
1259
1260struct SpecPipeTraceMarker {
1261    trace: SpecPipeTraceCtx,
1262    phase: &'static str,
1263    edge: &'static str,
1264    slot: Option<usize>,
1265}
1266
1267unsafe extern "C" fn spec_pipe_trace_marker(raw: *mut std::ffi::c_void) {
1268    let marker = unsafe { Box::from_raw(raw.cast::<SpecPipeTraceMarker>()) };
1269    let lane = if marker.trace.lane == 0 { "A" } else { "B" };
1270    let slot = marker
1271        .slot
1272        .map(|v| v.to_string())
1273        .unwrap_or_else(|| "-".into());
1274    let t_ms = marker.trace.clock.started.elapsed().as_secs_f64() * 1e3;
1275    use std::io::Write as _;
1276    let stderr = std::io::stderr();
1277    let mut stderr = stderr.lock();
1278    let _ = writeln!(
1279        stderr,
1280        "[spec-pipe-timeline] pair={} round={} lane={lane} phase={} edge={} \
1281         slot={slot} t_ms={t_ms:.3}",
1282        marker.trace.clock.pair, marker.trace.round, marker.phase, marker.edge,
1283    );
1284}
1285
1286fn enqueue_spec_pipe_trace_marker(
1287    stream: &cudarc::driver::CudaStream,
1288    trace: Option<&SpecPipeTraceCtx>,
1289    phase: &'static str,
1290    edge: &'static str,
1291    slot: Option<usize>,
1292) -> Result<(), Box<dyn std::error::Error>> {
1293    let Some(trace) = trace else {
1294        return Ok(());
1295    };
1296    let marker = Box::new(SpecPipeTraceMarker {
1297        trace: trace.clone(),
1298        phase,
1299        edge,
1300        slot,
1301    });
1302    let raw = Box::into_raw(marker);
1303    let result = unsafe {
1304        cudarc::driver::result::stream::launch_host_function(
1305            stream.cu_stream(),
1306            spec_pipe_trace_marker,
1307            raw.cast(),
1308        )
1309    };
1310    if let Err(err) = result {
1311        unsafe {
1312            drop(Box::from_raw(raw));
1313        }
1314        return Err(err.into());
1315    }
1316    Ok(())
1317}
1318
1319#[derive(Default)]
1320struct SpecPipeProgress {
1321    setup_done: [bool; 2],
1322    draft_done: [usize; 2],
1323    stage0_done: [usize; 2],
1324    verify_done: [usize; 2],
1325    accept_done: [usize; 2],
1326    finished: [bool; 2],
1327    aborted: bool,
1328}
1329
1330/// Host-side issue coordinator for the reduced two-session speculative pipeline. Each session
1331/// keeps its existing call stack and round locals; this object only orders phase entry. The
1332/// primary mutex spans whole draft/accept/tail issue regions so Engine's single-stream scratch
1333/// cannot be interleaved by the two host threads.
1334struct SpecPipeSync {
1335    progress: std::sync::Mutex<SpecPipeProgress>,
1336    changed: std::sync::Condvar,
1337    primary: std::sync::Mutex<()>,
1338    trace: Option<std::sync::Arc<SpecPipeTraceClock>>,
1339}
1340
1341impl SpecPipeSync {
1342    fn new() -> Self {
1343        static TRACE_PAIR: std::sync::atomic::AtomicUsize = std::sync::atomic::AtomicUsize::new(0);
1344        let trace = (std::env::var("MEMRA_SPEC_PIPE_TRACE").as_deref() == Ok("1")).then(|| {
1345            std::sync::Arc::new(SpecPipeTraceClock {
1346                pair: TRACE_PAIR.fetch_add(1, std::sync::atomic::Ordering::Relaxed) + 1,
1347                started: std::time::Instant::now(),
1348            })
1349        });
1350        Self {
1351            progress: std::sync::Mutex::new(SpecPipeProgress::default()),
1352            changed: std::sync::Condvar::new(),
1353            primary: std::sync::Mutex::new(()),
1354            trace,
1355        }
1356    }
1357}
1358
1359#[derive(Clone)]
1360struct SpecPipeLane {
1361    sync: std::sync::Arc<SpecPipeSync>,
1362    lane: usize,
1363}
1364
1365impl SpecPipeLane {
1366    fn peer(&self) -> usize {
1367        1 - self.lane
1368    }
1369
1370    fn aborted() -> Box<dyn std::error::Error> {
1371        "paired speculative peer aborted".into()
1372    }
1373
1374    fn trace(&self, round: usize) -> Option<SpecPipeTraceCtx> {
1375        self.sync.trace.as_ref().map(|clock| SpecPipeTraceCtx {
1376            clock: clock.clone(),
1377            round,
1378            lane: self.lane,
1379        })
1380    }
1381
1382    fn setup_begin(&self) -> Result<(), Box<dyn std::error::Error>> {
1383        let mut p = self.sync.progress.lock().unwrap();
1384        while !p.aborted && self.lane == 1 && !p.setup_done[0] && !p.finished[0] {
1385            p = self.sync.changed.wait(p).unwrap();
1386        }
1387        if p.aborted {
1388            Err(Self::aborted())
1389        } else {
1390            Ok(())
1391        }
1392    }
1393
1394    fn setup_end(&self) {
1395        let mut p = self.sync.progress.lock().unwrap();
1396        p.setup_done[self.lane] = true;
1397        self.sync.changed.notify_all();
1398    }
1399
1400    fn draft_begin(
1401        &self,
1402        round: usize,
1403    ) -> Result<std::sync::MutexGuard<'_, ()>, Box<dyn std::error::Error>> {
1404        let peer = self.peer();
1405        let mut p = self.sync.progress.lock().unwrap();
1406        loop {
1407            if p.aborted {
1408                return Err(Self::aborted());
1409            }
1410            let setup_ready =
1411                (p.setup_done[0] || p.finished[0]) && (p.setup_done[1] || p.finished[1]);
1412            let prior_ready = p.accept_done[self.lane] >= round
1413                && (p.accept_done[peer] >= round || p.finished[peer]);
1414            let turn_ready = if self.lane == 0 {
1415                true
1416            } else {
1417                p.draft_done[0] > round || p.finished[0]
1418            };
1419            if setup_ready && prior_ready && turn_ready {
1420                break;
1421            }
1422            p = self.sync.changed.wait(p).unwrap();
1423        }
1424        drop(p);
1425        Ok(self.sync.primary.lock().unwrap())
1426    }
1427
1428    fn draft_end(&self, round: usize) {
1429        let mut p = self.sync.progress.lock().unwrap();
1430        p.draft_done[self.lane] = round + 1;
1431        self.sync.changed.notify_all();
1432    }
1433
1434    /// Admit stage 0 and return whether this lane owns the interval's one reverse fence.
1435    /// Lane B releases as soon as lane A has issued its boundary TX, not after A's full body.
1436    fn stage0_begin(&self, round: usize) -> Result<bool, Box<dyn std::error::Error>> {
1437        let peer = self.peer();
1438        let mut p = self.sync.progress.lock().unwrap();
1439        loop {
1440            if p.aborted {
1441                return Err(Self::aborted());
1442            }
1443            let ready = if self.lane == 0 {
1444                p.draft_done[0] > round && (p.draft_done[1] > round || p.finished[1])
1445            } else {
1446                p.draft_done[1] > round && (p.stage0_done[0] > round || p.finished[0])
1447            };
1448            if ready {
1449                return Ok(self.lane == 0 || p.finished[peer]);
1450            }
1451            p = self.sync.changed.wait(p).unwrap();
1452        }
1453    }
1454
1455    fn stage0_end(&self, round: usize) {
1456        let mut p = self.sync.progress.lock().unwrap();
1457        p.stage0_done[self.lane] = round + 1;
1458        self.sync.changed.notify_all();
1459    }
1460
1461    /// Stage 1 is single-owner per engine. A proceeds immediately after its own ticket; B waits
1462    /// for A's full stage1/head issue so only A.S1 and B.S0 can overlap.
1463    fn stage1_begin(&self, round: usize) -> Result<(), Box<dyn std::error::Error>> {
1464        let mut p = self.sync.progress.lock().unwrap();
1465        while !p.aborted
1466            && !(p.stage0_done[self.lane] > round
1467                && (self.lane == 0 || p.verify_done[0] > round || p.finished[0]))
1468        {
1469            p = self.sync.changed.wait(p).unwrap();
1470        }
1471        if p.aborted {
1472            Err(Self::aborted())
1473        } else {
1474            Ok(())
1475        }
1476    }
1477
1478    fn verify_end(&self, round: usize) {
1479        let mut p = self.sync.progress.lock().unwrap();
1480        p.verify_done[self.lane] = round + 1;
1481        self.sync.changed.notify_all();
1482    }
1483
1484    fn accept_begin(
1485        &self,
1486        round: usize,
1487    ) -> Result<std::sync::MutexGuard<'_, ()>, Box<dyn std::error::Error>> {
1488        let mut p = self.sync.progress.lock().unwrap();
1489        loop {
1490            if p.aborted {
1491                return Err(Self::aborted());
1492            }
1493            let ready = if self.lane == 0 {
1494                p.verify_done[0] > round && (p.verify_done[1] > round || p.finished[1])
1495            } else {
1496                p.verify_done[1] > round && (p.accept_done[0] > round || p.finished[0])
1497            };
1498            if ready {
1499                break;
1500            }
1501            p = self.sync.changed.wait(p).unwrap();
1502        }
1503        drop(p);
1504        Ok(self.sync.primary.lock().unwrap())
1505    }
1506
1507    fn accept_end(&self, round: usize) {
1508        let mut p = self.sync.progress.lock().unwrap();
1509        p.accept_done[self.lane] = round + 1;
1510        self.sync.changed.notify_all();
1511    }
1512
1513    fn primary(&self) -> std::sync::MutexGuard<'_, ()> {
1514        self.sync.primary.lock().unwrap()
1515    }
1516
1517    fn finish(&self, failed: bool) {
1518        let mut p = self.sync.progress.lock().unwrap();
1519        p.finished[self.lane] = true;
1520        p.aborted |= failed;
1521        self.sync.changed.notify_all();
1522    }
1523}
1524
1525struct SpecPipeFinish<'a> {
1526    lane: &'a SpecPipeLane,
1527    closed: bool,
1528}
1529
1530impl<'a> SpecPipeFinish<'a> {
1531    fn new(lane: &'a SpecPipeLane) -> Self {
1532        Self {
1533            lane,
1534            closed: false,
1535        }
1536    }
1537
1538    fn close(&mut self, failed: bool) {
1539        self.lane.finish(failed);
1540        self.closed = true;
1541    }
1542}
1543
1544impl Drop for SpecPipeFinish<'_> {
1545    fn drop(&mut self) {
1546        if !self.closed {
1547            self.lane.finish(true);
1548        }
1549    }
1550}
1551
1552/// Scoped transfer of one exclusively-borrowed session to the second host issue thread.
1553/// `CudaGraph` is not marked Send by cudarc because its raw driver handles carry no automatic
1554/// trait. CUDA driver graph handles are context-scoped rather than OS-thread-affine; the caller
1555/// binds that context before touching the session, joins before returning, and never aliases the
1556/// pointer. Keep this exception local to the experimental pair call instead of marking the public
1557/// session type Send.
1558struct SpecPipeSessionPtr(*mut SpecSession);
1559
1560unsafe impl Send for SpecPipeSessionPtr {}
1561
1562impl SpecPipeSessionPtr {
1563    unsafe fn get_mut(&mut self) -> &mut SpecSession {
1564        unsafe { &mut *self.0 }
1565    }
1566}
1567
1568/// Per-session persistent draft-graph context: the captured CUDA graph(s) plus the device
1569/// buffers whose POINTERS the capture bakes. Reuse legality: the greedy capture bakes only
1570/// session-stable pointers (the session's own MtpScratch KV — allocated once, never realloc'd;
1571/// the model's resident embedding; the process-wide OnceLock p_min) and the g_* buffers held
1572/// HERE — so one capture serves the session's whole lifetime. The sampled capture additionally
1573/// bakes (seed, temp) as capture-time constants and needs k q-slots — keyed by `s_key`, dropped
1574/// and recaptured when a pool-resumed request changes them. `*_failed` memoizes a failed capture
1575/// so the eager fallback doesn't pay a doomed capture attempt every burst.
1576/// Capture identity of the parked SAMPLED draft graph (`DraftGraphCtx::graph_s`).
1577///
1578/// EXACTNESS, not perf (lane/graph-s-key-exactness-20260819; receipts
1579/// `research/spec-cache-20260818/GRAPH-S-KEY.md`). Two classes of field live here, both
1580/// load-bearing:
1581///
1582/// - **Baked constants.** `seed` and `temp` are capture-time constants INSIDE the graph and `k`
1583///   sizes the q slots its replays write. A resumed request changing any of them must recapture.
1584///   This is all the key used to carry.
1585/// - **Regime fields.** `top_k`/`top_p`/`min_p`/`pen_on` are not baked, but they decide whether
1586///   the captured graph is a legal draft chain AT ALL. The in-graph draw is one gumbel-max over
1587///   the RAW softmax (`gumbel_perturb_ctr`, unfiltered by construction), while the verify builds
1588///   the accept test's `q` from `filter_stats(q_slots, top_k, top_p, min_p)`. If those disagree
1589///   the accept test evaluates a distribution the draft was never sampled from: a draft token
1590///   below the filter threshold gathers `q = 0` (`softmax_gather_filtered_f32`,
1591///   `cu/spec_sample.cu`) and `u * 0 < p` accepts it UNCONDITIONALLY.
1592///
1593/// Omitting the regime fields was reachable — not through the prefix-cache spec restore (that
1594/// path is greedy-only, `memra-server` `spec_restore_convertible`), but through WHOLE-SESSION
1595/// spec reuse: a parked `SpecSession` carries this `DraftGraphCtx`, and the pool-resume probe
1596/// applies no sampler predicate at all. Turn 1 pure-temp parks a graph; turn 2 of the same
1597/// conversation, same explicit seed and temperature, adds `top_p`/`top_k` and inherits it.
1598#[derive(Clone, Copy, PartialEq, Eq, Debug)]
1599pub(crate) struct SampledGraphKey {
1600    seed: u64,
1601    temp_bits: u32,
1602    k: usize,
1603    top_k: i32,
1604    top_p_bits: u32,
1605    min_p_bits: u32,
1606    pen_on: bool,
1607}
1608
1609impl SampledGraphKey {
1610    pub(crate) fn new(
1611        seed: u64,
1612        temp: f32,
1613        k: usize,
1614        top_k: i32,
1615        top_p: f32,
1616        min_p: f32,
1617        pen_on: bool,
1618    ) -> Self {
1619        SampledGraphKey {
1620            seed,
1621            temp_bits: temp.to_bits(),
1622            k,
1623            top_k,
1624            top_p_bits: top_p.to_bits(),
1625            min_p_bits: min_p.to_bits(),
1626            pen_on,
1627        }
1628    }
1629
1630    /// The one regime the in-graph sampled chain may stand in for the eager one: nothing but
1631    /// temperature shapes `q`. Computed FROM THE KEY so the capture guard, the launch guard and
1632    /// the key can never drift apart (they were three separate expressions before this lane, and
1633    /// the launch site simply forgot to ask).
1634    pub(crate) fn pure_temp(&self) -> bool {
1635        self.top_k == 0
1636            && f32::from_bits(self.top_p_bits) >= 1.0
1637            && f32::from_bits(self.min_p_bits) <= 0.0
1638            && !self.pen_on
1639    }
1640}
1641
1642pub(crate) struct DraftGraphCtx {
1643    g_tok: CudaSlice<u32>,
1644    g_pos: CudaSlice<i32>,
1645    g_seed: CudaSlice<f32>,
1646    g_p: CudaSlice<f32>,
1647    g_ctr: CudaSlice<u32>,
1648    g_q: CudaSlice<f32>,
1649    g_perturb: CudaSlice<f32>,
1650    q_slots: Vec<CudaSlice<f32>>,
1651    /// DRAFT-SIDE GRAMMAR MASK (lane/draft-mask): packed allowed-set words over the DRAFT
1652    /// head's vocab, at a STABLE address so the captured draft graph's mask node reads the
1653    /// per-position contents the host re-uploads before each replay (the graph-promote
1654    /// pattern from decode.rs). Empty unless the session drafts under a grammar.
1655    g_dmask: CudaSlice<u32>,
1656    /// was `graph` captured WITH the mask node? A parked graph of the wrong shape is dropped.
1657    graph_masked: bool,
1658    graph: Option<cudarc::driver::CudaGraph>,
1659    graph_s: Option<cudarc::driver::CudaGraph>,
1660    /// Failed-capture memoization for both graphs — LOUD on flip, cleared on pool resume
1661    /// (audit Q2, the TRT #16072 silent-permanent-coverage-loss class).
1662    failed: DraftGraphFallback,
1663    /// Capture identity of `graph_s` — see [`SampledGraphKey`]. `None` iff no sampled graph is
1664    /// parked; a request whose key differs drops the parked graph (and its q slots/keeper).
1665    s_key: Option<SampledGraphKey>,
1666    /// CAPTURE-RETAIN keepers (#68 root cause, 2026-08-04): the warmup-run transients whose
1667    /// pool addresses the captured graph(s) bake. Without these, the transients return to the
1668    /// pool at capture-body exit and later work (burst-boundary prime/fill/commit passes, or a
1669    /// co-served session in the worker) reuses those addresses — the persisted graph's replay
1670    /// then reads/writes live unrelated buffers (exactness corruption, first seen as the ST
1671    /// serve-spec 4B graph-arm corruption; one-shot CLI calls never re-shuffled the pool, which
1672    /// is why run-spec K=1..8 passed on the same checkpoint). Same fix class as
1673    /// capture_graph_retained's gemma/decode.rs sites — hold as long as the graph replays.
1674    keeper: Vec<Box<dyn std::any::Any + Send>>,
1675    keeper_s: Vec<Box<dyn std::any::Any + Send>>,
1676}
1677
1678/// Failed-capture memoization for the two draft graphs (audit Q2, 2026-08-05 — the
1679/// TRT #16072 trap class: pressure-triggered, silent, long-lived coverage loss).
1680///
1681/// Three contracts:
1682/// - LOUD FLIP: `mark_*` returns the warn line exactly on the false→true transition
1683///   (returned, not printed, so the once-per-flip contract is unit-testable); the caller
1684///   `eprintln!`s it UNCONDITIONALLY — a dropped draft graph is never silent. Re-marking
1685///   an already-failed graph returns None (the per-burst memoization that keeps the eager
1686///   fallback from paying a doomed capture attempt every burst).
1687/// - RESET ON RESUME: `reset_on_resume` clears both flags — a parked session resumed by a
1688///   NEW request gets one fresh capture chance instead of carrying a transient-pressure
1689///   failure for the pool's whole lifetime. Returns the note line only when a flag was
1690///   actually set (quiet on the common clean-resume path).
1691/// - Shape-change clears (`clear_*`) stay silent, exactly as before: they precede a fresh
1692///   capture attempt whose own failure would re-flip loudly.
1693#[derive(Default)]
1694pub(crate) struct DraftGraphFallback {
1695    greedy: bool,
1696    sampled: bool,
1697}
1698impl DraftGraphFallback {
1699    fn mark_greedy(&mut self, reason: &str) -> Option<String> {
1700        if self.greedy {
1701            return None;
1702        }
1703        self.greedy = true;
1704        Some(format!(
1705            "[spec] WARN: draft-graph capture failed ({reason}); eager fallback until session resume"
1706        ))
1707    }
1708    fn mark_sampled(&mut self, reason: &str) -> Option<String> {
1709        if self.sampled {
1710            return None;
1711        }
1712        self.sampled = true;
1713        Some(format!(
1714            "[spec] WARN: sampled draft-graph capture failed ({reason}); eager fallback until session resume"
1715        ))
1716    }
1717    fn greedy_failed(&self) -> bool {
1718        self.greedy
1719    }
1720    fn sampled_failed(&self) -> bool {
1721        self.sampled
1722    }
1723    fn clear_greedy(&mut self) {
1724        self.greedy = false;
1725    }
1726    fn clear_sampled(&mut self) {
1727        self.sampled = false;
1728    }
1729    /// Pool-resume reset: both graphs get a fresh capture chance. Some(note) iff any flag
1730    /// was set (so clean resumes stay quiet).
1731    pub(crate) fn reset_on_resume(&mut self) -> Option<String> {
1732        if !self.greedy && !self.sampled {
1733            return None;
1734        }
1735        let which = match (self.greedy, self.sampled) {
1736            (true, true) => "greedy+sampled",
1737            (true, false) => "greedy",
1738            _ => "sampled",
1739        };
1740        self.greedy = false;
1741        self.sampled = false;
1742        Some(format!(
1743            "[spec] draft-graph fallback reset on session resume ({which}); recapture eligible"
1744        ))
1745    }
1746}
1747
1748impl DraftGraphCtx {
1749    fn new(e: &Engine, n_embd: usize, qlen: usize) -> Result<Self, Box<dyn std::error::Error>> {
1750        Ok(DraftGraphCtx {
1751            g_tok: e.alloc_u32_zeroed(1)?,
1752            g_pos: e.htod_i32(&[0])?,
1753            g_seed: e.zeros(n_embd)?,
1754            g_p: e.zeros(1)?,
1755            g_ctr: e.alloc_u32_zeroed(1)?,
1756            g_q: e.zeros(qlen)?,
1757            g_perturb: e.zeros(qlen)?,
1758            q_slots: Vec::new(),
1759            g_dmask: e.alloc_u32_zeroed(1)?,
1760            graph_masked: false,
1761            graph: None,
1762            graph_s: None,
1763            failed: DraftGraphFallback::default(),
1764            s_key: None,
1765            keeper: Vec::new(),
1766            keeper_s: Vec::new(),
1767        })
1768    }
1769}
1770
1771pub(crate) struct MtpScratch {
1772    kv: KvLayer,
1773    /// Logical row capacity. On the graph/DC draft path it also doubles as fa_decode_dc's
1774    /// bucket_max: n_splits is sized from it ONCE, so the graph captured at round 0 stays valid
1775    /// for every later t_kv. Step35 refuses that path and may back this logical extent with the
1776    /// smaller host-indexed SWA ring instead.
1777    cap: usize,
1778    extra: Vec<MtpScratchPlane>,
1779}
1780
1781struct MtpScratchPlane {
1782    kv: KvLayer,
1783    cap: usize,
1784}
1785
1786fn mtp_scratch_layout(
1787    cfg: &memra_gguf::config::ModelConfig,
1788    geom: Option<&crate::hybrid::DraftGeom>,
1789) -> (usize, usize, usize, usize) {
1790    // Student draft heads carry fewer KV heads (head_dim unchanged) -> smaller scratch rows.
1791    let n_head_kv = geom.map(|g| g.n_head_kv).unwrap_or(cfg.n_head_kv as usize);
1792    let head_dim_k = cfg.head_dim_k as usize;
1793    let head_dim_v = cfg.head_dim_v as usize;
1794    assert!(
1795        head_dim_k % 32 == 0 && head_dim_v % 32 == 0,
1796        "KVQUANT requires head_dim%32==0 (MTP scratch)"
1797    );
1798    let kv_dim_k = head_dim_k * n_head_kv;
1799    let kv_dim_v = head_dim_v * n_head_kv;
1800    // The fp8-KV arm deliberately does not reach the draft scratch; keep the exact format
1801    // policy shared with `MtpScratch::new` so admission scales the same allocation.
1802    let (kbb, vbb) = crate::kv_blk_bytes();
1803    let k_tok_bytes = (kv_dim_k / 32) * kbb;
1804    let v_tok_bytes = (kv_dim_v / 32) * vbb;
1805    (kv_dim_k, kv_dim_v, k_tok_bytes, v_tok_bytes)
1806}
1807
1808fn mtp_chain_head_index(step: usize, head_count: usize) -> usize {
1809    assert!(head_count > 0, "MTP chain requires at least one head");
1810    step % head_count
1811}
1812
1813impl MtpScratch {
1814    fn alloc_plane(
1815        e: &Engine,
1816        cfg: &memra_gguf::config::ModelConfig,
1817        plan: &memra_gguf::model_plan::ModelPlan,
1818        cap: usize,
1819        geom: Option<&crate::hybrid::DraftGeom>,
1820    ) -> Result<MtpScratchPlane, Box<dyn std::error::Error>> {
1821        let (kv_dim_k, kv_dim_v, k_tok_bytes, v_tok_bytes) = mtp_scratch_layout(cfg, geom);
1822        let ring = if crate::cache::swa_ring_on()
1823            && crate::plan_backend::decode_batch_program(plan)
1824                == crate::plan_backend::DecodeBatchProgram::SlidingGatedMoe
1825        {
1826            let window = plan
1827                .layers
1828                .iter()
1829                .find_map(|layer| match layer.attention {
1830                    memra_gguf::model_plan::AttentionPlan::SlidingWindow { window, .. } => {
1831                        Some(window as usize)
1832                    }
1833                    _ => None,
1834                })
1835                .ok_or("sliding-gated-MoE draft scratch has no sliding-window layer")?;
1836            Some(crate::cache::KvRing::new(
1837                crate::cache::swa_ring_rows(window, cap),
1838                window,
1839            ))
1840        } else {
1841            None
1842        };
1843        let alloc_rows = ring.as_ref().map(crate::cache::KvRing::rows).unwrap_or(cap);
1844        Ok(MtpScratchPlane {
1845            kv: KvLayer {
1846                k: e.alloc_u8(alloc_rows * k_tok_bytes)?,
1847                v: e.alloc_u8(alloc_rows * v_tok_bytes)?,
1848                kv_dim_k,
1849                kv_dim_v,
1850                k_tok_bytes,
1851                v_tok_bytes,
1852                len: 0,
1853                ring,
1854                len_d: e.htod_i32(&[0])?,
1855            },
1856            cap,
1857        })
1858    }
1859
1860    fn new(
1861        e: &Engine,
1862        cfg: &memra_gguf::config::ModelConfig,
1863        plan: &memra_gguf::model_plan::ModelPlan,
1864        cap: usize,
1865        geom: Option<&crate::hybrid::DraftGeom>,
1866    ) -> Result<Self, Box<dyn std::error::Error>> {
1867        // env-selected KV formats (default 34/24). The fp8-KV arm (MEMRA_KV_FP8) deliberately
1868        // does NOT reach the draft scratch: fp8 drafts drifted acceptance 69-88% -> 46%
1869        // (2026-07-12 A/B); the scratch is tiny, so it keeps baseline q8_0/q5_1 numerics
1870        // while the TRUNK cache carries the fp8 depth win. Scratch append/fa pass g=false.
1871        let primary = Self::alloc_plane(e, cfg, plan, cap, geom)?;
1872        Ok(MtpScratch {
1873            kv: primary.kv,
1874            cap: primary.cap,
1875            extra: Vec::new(),
1876        })
1877    }
1878
1879    fn push_plane(
1880        &mut self,
1881        e: &Engine,
1882        cfg: &memra_gguf::config::ModelConfig,
1883        plan: &memra_gguf::model_plan::ModelPlan,
1884        geom: Option<&crate::hybrid::DraftGeom>,
1885    ) -> Result<(), Box<dyn std::error::Error>> {
1886        self.extra
1887            .push(Self::alloc_plane(e, cfg, plan, self.cap, geom)?);
1888        Ok(())
1889    }
1890
1891    fn plane_count(&self) -> usize {
1892        1 + self.extra.len()
1893    }
1894
1895    fn plane(&self, index: usize) -> (&KvLayer, usize) {
1896        if index == 0 {
1897            (&self.kv, self.cap)
1898        } else {
1899            let plane = &self.extra[index - 1];
1900            (&plane.kv, plane.cap)
1901        }
1902    }
1903
1904    fn plane_mut(&mut self, index: usize) -> (&mut KvLayer, usize) {
1905        if index == 0 {
1906            (&mut self.kv, self.cap)
1907        } else {
1908            let plane = &mut self.extra[index - 1];
1909            (&mut plane.kv, plane.cap)
1910        }
1911    }
1912
1913    fn set_plane_len(
1914        &mut self,
1915        e: &Engine,
1916        index: usize,
1917        n: usize,
1918    ) -> Result<(), Box<dyn std::error::Error>> {
1919        let (kv, _) = self.plane_mut(index);
1920        if kv.ring.as_ref().is_some_and(|ring| !ring.can_rewind_to(n)) {
1921            return Err("SWA ring MTP checkpoint has been lapped; full re-prime required".into());
1922        }
1923        kv.len = n;
1924        e.set_i32_one(&mut kv.len_d, n as i32)
1925    }
1926
1927    /// Set BOTH length counters: the host mirror AND the device len_d the captured append/fa read
1928    /// (a 4-byte in-place htod — the counter pointer is baked into the graph, never realloc'd).
1929    /// This is the ONLY truncation/rollback mechanism the persistent draft KV needs.
1930    fn set_len(&mut self, e: &Engine, n: usize) -> Result<(), Box<dyn std::error::Error>> {
1931        if !self.can_rewind_to(n) {
1932            return Err("SWA ring MTP checkpoint has been lapped; full re-prime required".into());
1933        }
1934        for index in 0..self.plane_count() {
1935            self.set_plane_len(e, index, n)?;
1936        }
1937        Ok(())
1938    }
1939
1940    fn can_rewind_to(&self, n: usize) -> bool {
1941        (0..self.plane_count()).all(|index| {
1942            self.plane(index)
1943                .0
1944                .ring
1945                .as_ref()
1946                .is_none_or(|ring| ring.can_rewind_to(n))
1947        })
1948    }
1949}
1950
1951/// Retained verify intermediates for the REPLAY-FREE partial accept (2026-07-03, the profiled
1952/// #1 spec cost at long ctx: the partial-accept replay was a DUPLICATE trunk pass — ~0.54 extra
1953/// full weight reads per round — recomputing columns the verify had already produced
1954/// bit-identically). Holds, per linear layer, everything needed to rebuild its recurrent state
1955/// to "after the first j verify columns" WITHOUT re-running the trunk:
1956/// - BATCHED-path layers (`gdn`): the exact token-major inputs the round's ONE gdn_scan
1957///   consumed. A prefix re-run of the SAME kernel (t=j) from the snapshot state is bit-identical
1958///   to the first j iterations of the verify's scan — the kernel's t-loop carries state in
1959///   registers and iteration t never depends on T. `qkv_mixed` (the conv input) feeds the
1960///   pure-copy ring rebuild.
1961/// - PER-COLUMN-path layers (`cols`): dtod clones of (conv_state, ssm_state) taken after each
1962///   column 0..t-2 — pure copies of the actual chain states (the last column is never a rebuild
1963///   target: j <= t-1).
1964/// Full-attn layers need nothing: their verify KV rows are bit-identical to eager's (the
1965/// decode-exact contract; verify-probe pins it), so rollback = len truncation.
1966struct GdnStash {
1967    qkv_mixed: CudaSlice<f32>, // [t, conv_dim] token-major (conv input)
1968    q_l2: CudaSlice<f32>,
1969    k_l2: CudaSlice<f32>,
1970    v_g: CudaSlice<f32>, // [t, num_v, d_state]
1971    g_log: CudaSlice<f32>,
1972    beta: CudaSlice<f32>, // [t, num_v]
1973}
1974pub(crate) struct VerifyCkpt {
1975    gdn: Vec<Option<GdnStash>>, // [n_layer], Some iff batched linear path ran
1976    cols: Vec<Option<Vec<(CudaSlice<f32>, CudaSlice<f32>)>>>, // [n_layer][col] = (conv, ssm) after col
1977}
1978/// Opaque handle for the dspark round (dflash.rs) — VerifyCkpt stays spec-private.
1979pub(crate) struct DsparkVerifyCkpt(VerifyCkpt);
1980
1981/// Engine-bundle slice 3 (DSF-ROUNDCOST-20260820 §2 row 4 / §5 rank 1): bucketed CUDA
1982/// graphs for the dspark verify's LINEAR-layer segments. The measured verify is ~2,800
1983/// eager launches whose residual cost is DEVICE-side per-launch overhead (slice 2 proved
1984/// host dispatch is not the binder: fully-deferred dispatch bought ~0 wall). The 48 GDN
1985/// layers between full-attention layers are shape-static given vt — no positions, no
1986/// t_kv, state addressed through pointer tables — so runs of them capture per
1987/// (segment, vt) and replay as ONE graph launch each. Full-attention layers stay eager
1988/// (their per-row append/fa arm picks are t_kv-driven — the exec-update extension).
1989///
1990/// Per round out-of-graph: one pointer-table refresh (gdn ping-pong moves the canonical
1991/// handles), one input-staging copy per segment, host parity bookkeeping. Captured via
1992/// `capture_graph_retained` (2 warmups + capture, keeper retains warmup transients so
1993/// pool addresses stay stable); the warmups EXECUTE, so segment conv/ssm state is saved
1994/// before and restored after — the graph's first real launch starts from the exact
1995/// pre-round state. The ckpt column stash rides persistent slabs (written inside the
1996/// graph as memcpy nodes); commit reads them via `dspark_commit_prefix_slab`.
1997/// `MEMRA_DSPARK_VERIFY_GRAPH=0` reverts to the eager walk (byte-identical body).
1998pub(crate) struct DsparkVerifyGraphs {
1999    /// Linear-attention layer indices ascending; `lin_pos[il]` = index into the vecs.
2000    lin: Vec<usize>,
2001    lin_pos: std::collections::HashMap<usize, usize>,
2002    /// [n_lin x 6] pointer table (conv, s0, s1, conv, s1, s0 per layer), refreshed per
2003    /// verify from the live handles; layer il's slice starts at lin_pos[il]*6.
2004    table_all: CudaSlice<u64>,
2005    host_table: Vec<u64>,
2006    /// Persistent per-layer ckpt stash slabs: row r of the verify at slab offset
2007    /// r*words. Shared by every (segment, vt) bucket — one verify runs at a time.
2008    stash_conv: Vec<CudaSlice<f32>>,
2009    stash_ssm: Vec<CudaSlice<f32>>,
2010    conv_words: usize,
2011    ssm_words: usize,
2012    /// Per-vt input/output staging (stable addresses the graphs bake).
2013    stage: std::collections::HashMap<usize, (CudaSlice<f32>, CudaSlice<f32>)>,
2014    /// Per-vt dflash tap-sink buffers — the captured segments bake the tap dst address,
2015    /// so the sink buffer must live (and persist) with the graphs, not with the round.
2016    pub(crate) tap_bufs: std::collections::HashMap<usize, CudaSlice<f32>>,
2017    graphs: std::collections::HashMap<(usize, usize), DsparkSegGraph>,
2018    /// Warmup-corruption guard scratch: pre-capture conv/ssm of every linear layer
2019    /// (sized n_lin — the slice-4c full-verify warmups execute the whole walk).
2020    save_conv: CudaSlice<f32>,
2021    save_ssm: CudaSlice<f32>,
2022    max_run: usize,
2023    n_embd: usize,
2024    /// Set by the verify walk: this round's linear ckpt lives in the slabs (the caller
2025    /// commits through `dspark_commit_prefix_slab` instead of the cols arm).
2026    pub(crate) round_slab: bool,
2027    // ---- slice 4c: full-verify single graph per (vt, rung) ----
2028    /// Full-attention layer indices ascending; `fa_pos[il]` = index into the vec.
2029    fa: Vec<usize>,
2030    fa_pos: std::collections::HashMap<usize, usize>,
2031    /// [n_fa x 2 x t_cap] interleaved (k,v) base-pointer pairs, refreshed per verify;
2032    /// layer il's slice starts at `fa_pos[il] * 2 * t_cap` (the seqs twins read pairs
2033    /// [2z], z < t <= t_cap, so one t_cap-sized table serves every vt).
2034    fa_table: CudaSlice<u64>,
2035    fa_host_table: Vec<u64>,
2036    t_cap: usize,
2037    /// Per-vt position staging for the captured bodies — contents refreshed per round
2038    /// (rope reads row r; the seqs twins derive append slot and T_kv per z from it).
2039    pos_stage: std::collections::HashMap<usize, CudaSlice<i32>>,
2040    /// Full-verify graphs keyed (vt, rung_end, hi).
2041    full: std::collections::HashMap<(usize, usize, usize), DsparkSegGraph>,
2042    /// Largest n with every layer in [0, n) linear or full-attention (walk coverage).
2043    covered: usize,
2044    /// Every layer in [0, n) is linear or full-attention (no MLA/unknown mixers) — the
2045    /// full-verify capture walks all of them.
2046    walk_uniform: bool,
2047    /// Last `(captures, device graph-mem reserved bytes)` reading taken by
2048    /// `HybridModel::dspark_vg_admission_debt` — the two-point base of the MARGINAL debt
2049    /// projection (see `dspark_vg_debt_projection`; a mean-based reading extrapolated the
2050    /// pool's one-time shared allocation and reserved 8.5 GB of phantom VRAM).
2051    debt_obs: Option<(usize, usize)>,
2052}
2053
2054struct DsparkSegGraph {
2055    graph: cudarc::driver::CudaGraph,
2056    _keeper: Vec<Box<dyn std::any::Any + Send>>,
2057}
2058
2059/// Per-call arguments of [`HybridModel::qwen35_tparallel_fa_layer`] — one struct so the
2060/// eager walk and the slice-4c captured full-verify graphs hand the SAME body its two
2061/// modes without a second copy of the math.
2062pub(crate) struct FaLayerArgs<'a> {
2063    /// [T] per-row positions (device): rope reads them row-indexed; the seqs twins read
2064    /// them per-z (append slot = pos, T_kv = pos + 1).
2065    pub pos_d: &'a CudaSlice<i32>,
2066    /// Verify-level lazy per-row 1-element position buffers — only the per-row fallback
2067    /// arm builds/uses them (graph mode refuses that arm).
2068    pub pos_rows: &'a mut Option<Vec<CudaSlice<i32>>>,
2069    pub pos0: usize,
2070    pub seqs_append: bool,
2071    pub batch_fa_on: bool,
2072    /// Some((kv pointer table, offset-in-u64s, rung_end)) = captured-graph mode.
2073    pub graph_cap: Option<(&'a CudaSlice<u64>, usize, usize)>,
2074    /// ROUND-STREAM (lane/draftcost-moe, v0.100 train merge): Some((token stream, device
2075    /// round counter)) routes the FA attend through the dc rows kernels and the Linear
2076    /// mixer through `linear_attn_verify_t` (the stream arms the old inline body carried).
2077    /// Never armed together with `graph_cap` (the verify-level merge guard refuses).
2078    pub stream: Option<(&'a CudaSlice<u32>, &'a CudaSlice<i32>)>,
2079    /// VerifyCkpt for the stream-Linear arm's GdnStash install; None in graph mode and
2080    /// for FA layers that never touch it.
2081    pub ckpt: Option<&'a mut VerifyCkpt>,
2082}
2083
2084// SAFETY: `CudaGraph` is not marked Send by cudarc because its raw driver handles carry
2085// no automatic trait; CUDA driver graph handles are context-scoped rather than
2086// OS-thread-affine (the SpecPipeSessionPtr precedent above). The ctx lives in
2087// `HybridModel::dspark_vgraphs` behind a Mutex and every touch happens on the engine's
2088// single decode-stream thread.
2089unsafe impl Send for DsparkVerifyGraphs {}
2090
2091impl DsparkVerifyGraphs {
2092    /// Live capture count (segment + full graphs) — the denominator of
2093    /// [`dspark_vg_debt_projection`]'s observed bytes/capture mean.
2094    pub(crate) fn captures(&self) -> usize {
2095        self.graphs.len() + self.full.len()
2096    }
2097
2098    /// Take the marginal-growth debt reading and record this observation for the next one.
2099    /// Called under the pool mutex by `HybridModel::dspark_vg_admission_debt`.
2100    pub(crate) fn admission_debt(&mut self, reserved_bytes: usize) -> usize {
2101        let captures = self.captures();
2102        let debt =
2103            dspark_vg_debt_projection(captures, dspark_vg_cap(), reserved_bytes, self.debt_obs);
2104        if captures > 0 {
2105            match self.debt_obs {
2106                Some((c0, _)) if captures <= c0 => {}
2107                _ => self.debt_obs = Some((captures, reserved_bytes)),
2108            }
2109        }
2110        debt
2111    }
2112
2113    /// Build for this cache's shape. None when there are no linear layers, sizes are
2114    /// non-uniform, or the trunk keeps a gemma4 config (never on the qwen35 family).
2115    pub(crate) fn new(
2116        e: &Engine,
2117        cache: &Cache,
2118        t_max: usize,
2119        n_embd: usize,
2120    ) -> Result<Option<Self>, Box<dyn std::error::Error>> {
2121        let lin: Vec<usize> = (0..cache.recur.len())
2122            .filter(|&il| cache.recur[il].is_some())
2123            .collect();
2124        if lin.is_empty() || t_max < 2 {
2125            return Ok(None);
2126        }
2127        let first = cache.recur[lin[0]].as_ref().unwrap();
2128        let (conv_words, ssm_words) = (first.conv_state.len(), first.ssm_state.len());
2129        for &il in &lin {
2130            let rl = cache.recur[il].as_ref().unwrap();
2131            if rl.conv_state.len() != conv_words || rl.ssm_state.len() != ssm_words {
2132                return Ok(None);
2133            }
2134        }
2135        let n = lin.len();
2136        let mut lin_pos = std::collections::HashMap::with_capacity(n);
2137        for (k, &il) in lin.iter().enumerate() {
2138            lin_pos.insert(il, k);
2139        }
2140        // longest run of consecutive linear layers (save-scratch sizing)
2141        let mut max_run = 1usize;
2142        let mut run = 1usize;
2143        for w in lin.windows(2) {
2144            if w[1] == w[0] + 1 {
2145                run += 1;
2146                max_run = max_run.max(run);
2147            } else {
2148                run = 1;
2149            }
2150        }
2151        let rows = t_max - 1;
2152        let mut stash_conv = Vec::with_capacity(n);
2153        let mut stash_ssm = Vec::with_capacity(n);
2154        for _ in 0..n {
2155            stash_conv.push(e.uninit(rows * conv_words)?);
2156            stash_ssm.push(e.uninit(rows * ssm_words)?);
2157        }
2158        let host_table = vec![0u64; n * 6];
2159        let table_all = e.htod_u64(&host_table)?;
2160        // slice 4c: full-attention census for the full-verify graphs.
2161        let fa: Vec<usize> = (0..cache.kv.len())
2162            .filter(|&il| cache.kv[il].is_some())
2163            .collect();
2164        let mut fa_pos = std::collections::HashMap::with_capacity(fa.len());
2165        for (k, &il) in fa.iter().enumerate() {
2166            fa_pos.insert(il, k);
2167        }
2168        let n_layers = cache.kv.len().max(cache.recur.len());
2169        // exactly one of (linear state, kv cache) per layer — no MLA/unknown mixers.
2170        let walk_uniform = (0..n_layers).all(|il| {
2171            cache.recur.get(il).is_some_and(|r| r.is_some())
2172                != cache.kv.get(il).is_some_and(|k| k.is_some())
2173        });
2174        // Contiguous covered prefix: the largest n such that every layer in [0, n) is
2175        // linear or full-attention. The TRUNK walk is [0, layers.len()) and the cache
2176        // vecs can carry EXTRA state slots past it (the q38 export keeps the MTP head
2177        // layer's kv at the tail — hi == lin+fa never held, the s4c battery's zero
2178        // 'full' captures). The full-graph guard is walk coverage, not slot arithmetic.
2179        let covered = (0..n_layers)
2180            .take_while(|il| lin_pos.contains_key(il) || fa_pos.contains_key(il))
2181            .count();
2182        let t_cap = t_max;
2183        let fa_host_table = vec![0u64; fa.len() * 2 * t_cap];
2184        let fa_table = e.htod_u64(&fa_host_table)?;
2185        Ok(Some(Self {
2186            lin,
2187            lin_pos,
2188            table_all,
2189            host_table,
2190            stash_conv,
2191            stash_ssm,
2192            conv_words,
2193            ssm_words,
2194            stage: std::collections::HashMap::new(),
2195            tap_bufs: std::collections::HashMap::new(),
2196            graphs: std::collections::HashMap::new(),
2197            save_conv: e.uninit(n * conv_words)?,
2198            save_ssm: e.uninit(n * ssm_words)?,
2199            max_run,
2200            n_embd,
2201            round_slab: false,
2202            fa,
2203            fa_pos,
2204            fa_table,
2205            fa_host_table,
2206            t_cap,
2207            pos_stage: std::collections::HashMap::new(),
2208            full: std::collections::HashMap::new(),
2209            covered,
2210            walk_uniform,
2211            debt_obs: None,
2212        }))
2213    }
2214
2215    /// Rebuild the pointer tables from the live handles (once per verify — the gdn
2216    /// ping-pong swaps the canonical/alt handles between rounds; a fresh generation's
2217    /// cache buffers land at new addresses; a stale table would read the wrong state).
2218    pub(crate) fn refresh_tables(
2219        &mut self,
2220        e: &Engine,
2221        cache: &Cache,
2222    ) -> Result<(), Box<dyn std::error::Error>> {
2223        use cudarc::driver::DevicePtr;
2224        {
2225            let s = &e.gpu.stream();
2226            for (k, &il) in self.lin.iter().enumerate() {
2227                let rl = cache.recur[il].as_ref().unwrap();
2228                let (pc, _g0) = rl.conv_state.device_ptr(s);
2229                let (p0, _g1) = rl.ssm_state.device_ptr(s);
2230                let (p1, _g2) = rl.ssm_state_alt.device_ptr(s);
2231                let o = k * 6;
2232                self.host_table[o] = pc as u64;
2233                self.host_table[o + 1] = p0 as u64;
2234                self.host_table[o + 2] = p1 as u64;
2235                self.host_table[o + 3] = pc as u64;
2236                self.host_table[o + 4] = p1 as u64;
2237                self.host_table[o + 5] = p0 as u64;
2238            }
2239            for (k, &il) in self.fa.iter().enumerate() {
2240                let kvl = cache.kv[il].as_ref().unwrap();
2241                let (pk, _g0) = kvl.k.device_ptr(s);
2242                let (pv, _g1) = kvl.v.device_ptr(s);
2243                let o = k * 2 * self.t_cap;
2244                for z in 0..self.t_cap {
2245                    self.fa_host_table[o + 2 * z] = pk as u64;
2246                    self.fa_host_table[o + 2 * z + 1] = pv as u64;
2247                }
2248            }
2249        }
2250        e.htod_u64_into(&self.host_table, &mut self.table_all)?;
2251        if !self.fa_host_table.is_empty() {
2252            e.htod_u64_into(&self.fa_host_table, &mut self.fa_table)?;
2253        }
2254        Ok(())
2255    }
2256
2257    /// Slice 4c eligibility: Some(rung_end) when this round can replay (or capture) a
2258    /// full-verify graph — the whole walk [lo, hi) is covered, every layer is linear or
2259    /// full-attention, and ALL of the round's per-row t_kv values take the v4-seqs arm
2260    /// on ONE `fa_split_keys` ladder step that the rung also sits on (the straddle law;
2261    /// both gates are t_kv intervals, so ends-inside means all-inside). The rung is the
2262    /// round's next power of two — grid/partial sizing only (`n_splits_max` is pure
2263    /// stride; splits >= ns_eff write the empty partial the combine never reads), so one
2264    /// captured graph is bit-identical for every round the rung covers.
2265    #[allow(clippy::too_many_arguments)]
2266    pub(crate) fn full_rung(
2267        &self,
2268        model: &crate::hybrid::HybridModel,
2269        cache: &Cache,
2270        lo: usize,
2271        hi: usize,
2272        t: usize,
2273        seqs_arms_on: bool,
2274    ) -> Option<usize> {
2275        if std::env::var("MEMRA_DSPARK_FULLG_DEBUG").as_deref() == Ok("1") {
2276            static ONCE: std::sync::Once = std::sync::Once::new();
2277            let len0 = self
2278                .fa
2279                .first()
2280                .and_then(|&il| cache.kv[il].as_ref())
2281                .map(|k| k.len);
2282            ONCE.call_once(|| {
2283                eprintln!(
2284                    "[fullg-debug] walk_uniform={} covered={} seqs_arms_on={} fa_rows_on={} t={} lo={} hi={} lin={} fa={} t_cap={} len0={:?}",
2285                    self.walk_uniform, self.covered, seqs_arms_on, dspark_fa_rows_on(), t, lo, hi,
2286                    self.lin.len(), self.fa.len(), self.t_cap, len0
2287                );
2288            });
2289        }
2290        if !self.walk_uniform
2291            || !seqs_arms_on
2292            || !dspark_fa_rows_on()
2293            || t < 2
2294            || lo != 0
2295            || hi > self.covered
2296            || t > self.t_cap
2297            || self.fa.is_empty()
2298        {
2299            return None;
2300        }
2301        let cfg = &model.cfg;
2302        let head_dim_global = cfg.head_dim_k as usize;
2303        let nkv = cfg.n_head_kv as usize;
2304        let kvl0 = cache.kv[self.fa[0]].as_ref().unwrap();
2305        // the z-batched twins read stacked rows at the cache's kv dims — must equal the
2306        // projection stride (the body's guard, hoisted so ineligible models fall back
2307        // instead of refusing mid-capture).
2308        let geom = cfg.full_attention_geometry_at(self.fa[0] as u32);
2309        let kv_dim = geom.n_head_kv as usize * geom.head_dim_k as usize;
2310        if kvl0.kv_dim_k != kv_dim || kvl0.kv_dim_v != kv_dim {
2311            return None;
2312        }
2313        let len0 = kvl0.len;
2314        let (t_kv_first, t_kv_last) = (len0 + 1, len0 + t);
2315        if !crate::fa_seqs_eligible(t_kv_first, head_dim_global)
2316            || !crate::fa_seqs_eligible(t_kv_last, head_dim_global)
2317            || crate::fa_split_keys(t_kv_first, nkv) != crate::fa_split_keys(t_kv_last, nkv)
2318        {
2319            return None;
2320        }
2321        let rung = t_kv_last.next_power_of_two().max(256);
2322        if crate::fa_split_keys(rung, nkv) != crate::fa_split_keys(t_kv_last, nkv) {
2323            return None;
2324        }
2325        Some(rung)
2326    }
2327
2328    /// Run the WHOLE verify walk [lo, hi) as one captured graph at (vt=t, rung): stage
2329    /// the residual + refresh the per-vt position staging, capture on first encounter
2330    /// (2 executing warmups bracketed by a full linear-state save/restore; KV warmup
2331    /// appends write the exact slots the replay writes — idempotent), launch, then apply
2332    /// the host bookkeeping the captured body skipped (per-linear-layer parity swap for
2333    /// odd t, per-fa-layer len bump). Returns the fresh residual.
2334    #[allow(clippy::too_many_arguments)]
2335    pub(crate) fn run_full(
2336        &mut self,
2337        model: &crate::hybrid::HybridModel,
2338        e: &Engine,
2339        lo: usize,
2340        hi: usize,
2341        x: &CudaSlice<f32>,
2342        t: usize,
2343        pos0: usize,
2344        rung: usize,
2345        cache: &mut Cache,
2346    ) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
2347        let n_embd = self.n_embd;
2348        if !self.stage.contains_key(&t) {
2349            let xin = e.uninit(t * n_embd)?;
2350            let xout = e.uninit(t * n_embd)?;
2351            self.stage.insert(t, (xin, xout));
2352        }
2353        if !self.pos_stage.contains_key(&t) {
2354            self.pos_stage.insert(t, e.htod_i32(&vec![0i32; t])?);
2355        }
2356        // Per-round refresh: position contents + input staging (both addresses are baked
2357        // by the captured bodies; only their CONTENTS change round to round).
2358        {
2359            let pos_host: Vec<i32> = (0..t).map(|r| (pos0 + r) as i32).collect();
2360            let pb = self.pos_stage.get_mut(&t).unwrap();
2361            e.htod_i32_into(pb, &pos_host)?;
2362            let (xin, _) = self.stage.get_mut(&t).unwrap();
2363            e.copy_into(xin, 0, x, t * n_embd)?;
2364        }
2365        let key = (t, rung, hi);
2366        if !self.full.contains_key(&key) {
2367            // The warmups EXECUTE the whole walk on live state — save every linear
2368            // layer's conv + canonical ssm first, restore after (KV needs no restore:
2369            // graph mode never bumps host lens and the appends write this round's own
2370            // slots).
2371            for (k, &il) in self.lin.iter().enumerate() {
2372                let rl = cache.recur[il].as_ref().unwrap();
2373                e.copy_into(
2374                    &mut self.save_conv,
2375                    k * self.conv_words,
2376                    &rl.conv_state,
2377                    self.conv_words,
2378                )?;
2379                e.copy_into(
2380                    &mut self.save_ssm,
2381                    k * self.ssm_words,
2382                    &rl.ssm_state,
2383                    self.ssm_words,
2384                )?;
2385            }
2386            let (graph, keeper) = {
2387                let table_all = &self.table_all;
2388                let lin_pos = &self.lin_pos;
2389                let fa_pos = &self.fa_pos;
2390                let fa_table = &self.fa_table;
2391                let t_cap = self.t_cap;
2392                let stash_conv = &mut self.stash_conv;
2393                let stash_ssm = &mut self.stash_ssm;
2394                let pos_d: &CudaSlice<i32> = &self.pos_stage[&t];
2395                let (xin, xout) = self
2396                    .stage
2397                    .get_mut(&t)
2398                    .map(|(a, b)| (&*a, b))
2399                    .expect("stage bucket created above");
2400                let cache_ref: &mut Cache = cache;
2401                let iflag = if std::env::var("MEMRA_DSPARK_VG_AUTOFREE").as_deref() == Ok("1") {
2402                    cudarc::driver::sys::CUgraphInstantiate_flags::CUDA_GRAPH_INSTANTIATE_FLAG_AUTO_FREE_ON_LAUNCH
2403                } else {
2404                    cudarc::driver::sys::CUgraphInstantiate_flags::CUDA_GRAPH_INSTANTIATE_FLAG_USE_NODE_PRIORITY
2405                };
2406                e.capture_graph_retained_flags(iflag, move |e| {
2407                    let mut xc: Option<CudaSlice<f32>> = None;
2408                    for il in lo..hi {
2409                        let xr: &CudaSlice<f32> = xc.as_ref().unwrap_or(xin);
2410                        let nx = if let Some(&k) = lin_pos.get(&il) {
2411                            model.qwen35_tparallel_linear_layer(
2412                                e,
2413                                il,
2414                                xr,
2415                                t,
2416                                cache_ref,
2417                                None,
2418                                Some((&mut stash_conv[k], &mut stash_ssm[k])),
2419                                Some((table_all, k * 6)),
2420                            )?
2421                        } else if let Some(&kf) = fa_pos.get(&il) {
2422                            let mut no_rows: Option<Vec<CudaSlice<i32>>> = None;
2423                            model.qwen35_tparallel_fa_layer(
2424                                e,
2425                                il,
2426                                xr,
2427                                t,
2428                                cache_ref,
2429                                FaLayerArgs {
2430                                    pos_d,
2431                                    pos_rows: &mut no_rows,
2432                                    pos0,
2433                                    seqs_append: true,
2434                                    batch_fa_on: true,
2435                                    graph_cap: Some((fa_table, kf * 2 * t_cap, rung)),
2436                                    stream: None,
2437                                    ckpt: None,
2438                                },
2439                            )?
2440                        } else {
2441                            return Err(format!(
2442                                "run_full: layer {il} is neither linear nor full-attention"
2443                            )
2444                            .into());
2445                        };
2446                        xc = Some(nx);
2447                    }
2448                    e.copy_into(xout, 0, xc.as_ref().unwrap(), t * n_embd)?;
2449                    Ok(())
2450                })?
2451            };
2452            // Undo the net host parity motion of the 3 body runs (each run swaps iff t
2453            // is odd -> 3 runs = net one swap), then restore the device state the
2454            // warmups consumed (walk scope only — layers past hi never executed). The
2455            // launch below then behaves exactly like one run.
2456            if t % 2 == 1 {
2457                for &il in &self.lin {
2458                    if il < lo || il >= hi {
2459                        continue;
2460                    }
2461                    let rl = cache.recur[il].as_mut().unwrap();
2462                    std::mem::swap(&mut rl.ssm_state, &mut rl.ssm_state_alt);
2463                }
2464            }
2465            for (k, &il) in self.lin.iter().enumerate() {
2466                if il < lo || il >= hi {
2467                    continue;
2468                }
2469                let rl = cache.recur[il].as_mut().unwrap();
2470                let (cw, sw) = (self.conv_words, self.ssm_words);
2471                {
2472                    let sv = e.view(&self.save_conv, self.lin.len() * cw);
2473                    let win = sv.slice(k * cw..(k + 1) * cw);
2474                    e.copy_view_into(&mut rl.conv_state, 0, &win, cw)?;
2475                }
2476                {
2477                    let sv = e.view(&self.save_ssm, self.lin.len() * sw);
2478                    let win = sv.slice(k * sw..(k + 1) * sw);
2479                    e.copy_view_into(&mut rl.ssm_state, 0, &win, sw)?;
2480                }
2481            }
2482            if std::env::var("MEMRA_GRAPH_CENSUS").as_deref() == Ok("1") {
2483                if let Ok(c) = crate::graph_update::node_census(&graph) {
2484                    eprintln!("[dspark-vg-census] full vt={t} rung={rung} {c:?}");
2485                }
2486            }
2487            self.full.insert(
2488                key,
2489                DsparkSegGraph {
2490                    graph,
2491                    _keeper: keeper,
2492                },
2493            );
2494        }
2495        self.full[&key].graph.launch()?;
2496        // Host bookkeeping for the replayed body (captured host code does not re-run):
2497        // gdn parity swap per linear layer (t odd), kv len bump per fa layer — scoped
2498        // to the WALK [lo, hi): the cache can carry extra state slots past it (the MTP
2499        // head layer's kv) that the walk never touches.
2500        if t % 2 == 1 {
2501            for &il in &self.lin {
2502                if il < lo || il >= hi {
2503                    continue;
2504                }
2505                let rl = cache.recur[il].as_mut().unwrap();
2506                std::mem::swap(&mut rl.ssm_state, &mut rl.ssm_state_alt);
2507            }
2508        }
2509        for &il in &self.fa {
2510            if il < lo || il >= hi {
2511                continue;
2512            }
2513            cache.kv[il].as_mut().unwrap().len += t;
2514        }
2515        let (_, xout) = self.stage.get(&t).unwrap();
2516        let mut out = e.uninit(t * n_embd)?;
2517        e.copy_into(&mut out, 0, xout, t * n_embd)?;
2518        Ok(out)
2519    }
2520
2521    /// Run layers [start, end) (all linear) as one captured graph at this vt: stage the
2522    /// residual into the bucket's x_in, capture on first encounter (2 executing warmups
2523    /// bracketed by a segment state save/restore), launch, then apply the host parity
2524    /// bookkeeping the captured body would have done. Returns the fresh residual.
2525    #[allow(clippy::too_many_arguments)]
2526    fn run_segment(
2527        &mut self,
2528        model: &crate::hybrid::HybridModel,
2529        e: &Engine,
2530        start: usize,
2531        end: usize,
2532        x: &CudaSlice<f32>,
2533        t: usize,
2534        cache: &mut Cache,
2535    ) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
2536        let n_embd = self.n_embd;
2537        debug_assert!(end - start <= self.max_run);
2538        if !self.stage.contains_key(&t) {
2539            let xin = e.uninit(t * n_embd)?;
2540            let xout = e.uninit(t * n_embd)?;
2541            self.stage.insert(t, (xin, xout));
2542        }
2543        // Stage the residual at the bucket's baked input address.
2544        {
2545            let (xin, _) = self.stage.get_mut(&t).unwrap();
2546            e.copy_into(xin, 0, x, t * n_embd)?;
2547        }
2548        let key = (start, t);
2549        if !self.graphs.contains_key(&key) {
2550            // The 2 warmups EXECUTE the segment on live state — save conv + the canonical
2551            // ssm of every segment layer first, restore after, so the graph's first real
2552            // launch starts from the exact pre-round state (bytes gated e2e).
2553            for (k, il) in (start..end).enumerate() {
2554                let rl = cache.recur[il].as_ref().unwrap();
2555                e.copy_into(
2556                    &mut self.save_conv,
2557                    k * self.conv_words,
2558                    &rl.conv_state,
2559                    self.conv_words,
2560                )?;
2561                e.copy_into(
2562                    &mut self.save_ssm,
2563                    k * self.ssm_words,
2564                    &rl.ssm_state,
2565                    self.ssm_words,
2566                )?;
2567            }
2568            let (graph, keeper) = {
2569                let table_all = &self.table_all;
2570                let lin_pos = &self.lin_pos;
2571                let stash_conv = &mut self.stash_conv;
2572                let stash_ssm = &mut self.stash_ssm;
2573                let (xin, xout) = self
2574                    .stage
2575                    .get_mut(&t)
2576                    .map(|(a, b)| (&*a, b))
2577                    .expect("stage bucket created above");
2578                let cache_ref: &mut Cache = cache;
2579                // Slice 4 (fa-execupdate lane): USE_NODE_PRIORITY instead of
2580                // AUTO_FREE_ON_LAUNCH. The slice-3 measured limiter was AUTO_FREE's
2581                // launch-time mem-pool scan — 25.6 us per cuGraphLaunch x 16 segments
2582                // = ~0.41 ms/round, most of the eager-launch savings. The captured
2583                // body's cuMemAllocAsync transients are BALANCED by in-graph frees
2584                // (every transient drops inside the capture region — the generic
2585                // capture path's census precedent, 1589/1589), so AUTO_FREE has
2586                // nothing to reclaim and the graph is legal to instantiate without
2587                // it; PRIORITY is the flag the gemma slotted door ships for exactly
2588                // this reason (both alternatives drop the scan; UPLOAD via
2589                // cuGraphInstantiateWithFlags is WithParams-only and refused).
2590                // MEMRA_DSPARK_VG_AUTOFREE=1 reverts; MEMRA_GRAPH_CENSUS=1 prints
2591                // the node census at capture (the ALLOC==FREE receipt).
2592                let iflag = if std::env::var("MEMRA_DSPARK_VG_AUTOFREE").as_deref() == Ok("1") {
2593                    cudarc::driver::sys::CUgraphInstantiate_flags::CUDA_GRAPH_INSTANTIATE_FLAG_AUTO_FREE_ON_LAUNCH
2594                } else {
2595                    cudarc::driver::sys::CUgraphInstantiate_flags::CUDA_GRAPH_INSTANTIATE_FLAG_USE_NODE_PRIORITY
2596                };
2597                e.capture_graph_retained_flags(iflag, move |e| {
2598                    let mut xc: Option<CudaSlice<f32>> = None;
2599                    for il in start..end {
2600                        let k = lin_pos[&il];
2601                        let xr: &CudaSlice<f32> = xc.as_ref().unwrap_or(xin);
2602                        let nx = model.qwen35_tparallel_linear_layer(
2603                            e,
2604                            il,
2605                            xr,
2606                            t,
2607                            cache_ref,
2608                            None,
2609                            Some((&mut stash_conv[k], &mut stash_ssm[k])),
2610                            Some((table_all, k * 6)),
2611                        )?;
2612                        xc = Some(nx);
2613                    }
2614                    e.copy_into(xout, 0, xc.as_ref().unwrap(), t * n_embd)?;
2615                    Ok(())
2616                })?
2617            };
2618            // Undo the net host parity motion of the 3 body runs (each run swaps iff t
2619            // is odd -> 3 runs = net one swap), then restore the device state the
2620            // warmups consumed. The launch below then behaves exactly like one run.
2621            if t % 2 == 1 {
2622                for il in start..end {
2623                    let rl = cache.recur[il].as_mut().unwrap();
2624                    std::mem::swap(&mut rl.ssm_state, &mut rl.ssm_state_alt);
2625                }
2626            }
2627            for (k, il) in (start..end).enumerate() {
2628                let rl = cache.recur[il].as_mut().unwrap();
2629                let (cw, sw) = (self.conv_words, self.ssm_words);
2630                {
2631                    let sv = e.view(&self.save_conv, self.lin.len() * cw);
2632                    let win = sv.slice(k * cw..(k + 1) * cw);
2633                    e.copy_view_into(&mut rl.conv_state, 0, &win, cw)?;
2634                }
2635                {
2636                    let sv = e.view(&self.save_ssm, self.lin.len() * sw);
2637                    let win = sv.slice(k * sw..(k + 1) * sw);
2638                    e.copy_view_into(&mut rl.ssm_state, 0, &win, sw)?;
2639                }
2640            }
2641            if std::env::var("MEMRA_GRAPH_CENSUS").as_deref() == Ok("1") {
2642                if let Ok(c) = crate::graph_update::node_census(&graph) {
2643                    eprintln!("[dspark-vg-census] seg={start}..{end} vt={t} {c:?}");
2644                }
2645            }
2646            self.graphs.insert(
2647                key,
2648                DsparkSegGraph {
2649                    graph,
2650                    _keeper: keeper,
2651                },
2652            );
2653        }
2654        self.graphs[&key].graph.launch()?;
2655        // Host parity bookkeeping for the replayed body (the captured host swaps do not
2656        // re-run at replay).
2657        if t % 2 == 1 {
2658            for il in start..end {
2659                let rl = cache.recur[il].as_mut().unwrap();
2660                std::mem::swap(&mut rl.ssm_state, &mut rl.ssm_state_alt);
2661            }
2662        }
2663        let (_, xout) = self.stage.get(&t).unwrap();
2664        let mut out = e.uninit(t * n_embd)?;
2665        e.copy_into(&mut out, 0, xout, t * n_embd)?;
2666        Ok(out)
2667    }
2668
2669    /// Pool freeze check (`dspark_vg_cap`): below the ceiling new keys may capture.
2670    fn can_capture(&self) -> bool {
2671        self.graphs.len() + self.full.len() < dspark_vg_cap()
2672    }
2673
2674    /// Round-atomic segment-door readiness: TRUE when this round's walk can ride the
2675    /// per-(segment, vt) graphs without a NEW capture past the pool ceiling — every
2676    /// linear run in [lo, hi) already has its (run_start, t) key, or capture is still
2677    /// allowed. FALSE sends the WHOLE round down the eager cols-ckpt walk: a partial
2678    /// refusal would stash some layers in the ctx slabs and others in the round's cols
2679    /// while one commit reads only one of them.
2680    pub(crate) fn segments_ready(
2681        &self,
2682        model: &crate::hybrid::HybridModel,
2683        lo: usize,
2684        hi: usize,
2685        t: usize,
2686    ) -> bool {
2687        if self.can_capture() {
2688            return true;
2689        }
2690        let mut il = lo;
2691        while il < hi {
2692            if matches!(model.layers[il].mixer, Mixer::Linear(_)) {
2693                let start = il;
2694                while il < hi && matches!(model.layers[il].mixer, Mixer::Linear(_)) {
2695                    il += 1;
2696                }
2697                if !self.graphs.contains_key(&(start, t)) {
2698                    return false;
2699                }
2700            } else {
2701                il += 1;
2702            }
2703        }
2704        true
2705    }
2706
2707    /// Widest verify window this pool was built for. A caller whose round exceeds it must
2708    /// take the eager walk: the stash slabs hold `t_capacity() - 1` column rows, and slicing
2709    /// past them is a panic rather than a refusal.
2710    pub(crate) fn t_capacity(&self) -> usize {
2711        self.t_cap
2712    }
2713
2714    /// Slab row (conv, ssm) device pointers + lengths for the commit restore of column
2715    /// `row` (0-based) of layer `il`. None for non-linear layers.
2716    pub(crate) fn slab_row(
2717        &self,
2718        e: &Engine,
2719        il: usize,
2720        row: usize,
2721    ) -> Option<(u64, u64, usize, usize)> {
2722        use cudarc::driver::DevicePtr;
2723        let k = *self.lin_pos.get(&il)?;
2724        let s = &e.gpu.stream();
2725        let (pc, _g0) = self.stash_conv[k].device_ptr(s);
2726        let (ps, _g1) = self.stash_ssm[k].device_ptr(s);
2727        Some((
2728            pc as u64 + (row * self.conv_words * 4) as u64,
2729            ps as u64 + (row * self.ssm_words * 4) as u64,
2730            self.conv_words,
2731            self.ssm_words,
2732        ))
2733    }
2734}
2735
2736impl VerifyCkpt {
2737    fn new(n_layer: usize) -> Self {
2738        VerifyCkpt {
2739            gdn: (0..n_layer).map(|_| None).collect(),
2740            cols: (0..n_layer).map(|_| None).collect(),
2741        }
2742    }
2743}
2744
2745/// The stage-0/TX half of one PP verify. The boundary slot is the ownership token: stage 1
2746/// consumes exactly the slot selected by `tx()` / `tx_pipelined()`, never a slot inferred from
2747/// a logical round number.
2748struct VerifyBoundaryTicket {
2749    rt: &'static crate::pp::PpNRt,
2750    caller_stream: std::sync::Arc<cudarc::driver::CudaStream>,
2751    slot: usize,
2752    pos0: usize,
2753    t: usize,
2754    payload: usize,
2755    n_st: usize,
2756    pipelined: bool,
2757    pp_anatomy: bool,
2758    pp_started: std::time::Instant,
2759    reverse_ms: f64,
2760    stage0_ms: f64,
2761    tx_ms: f64,
2762    trace: Option<SpecPipeTraceCtx>,
2763}
2764
2765/// Explicit OPTIPIPE diagnostic control. Forced modes are set only by `optipipe-gate`; the
2766/// increment-2 controller can also be armed by the server's fresh-process research door.
2767#[derive(Clone, Copy, Debug, PartialEq, Eq)]
2768pub enum OptiForkGateMode {
2769    Disabled,
2770    Hit,
2771    Miss,
2772    Alternate,
2773    Abort,
2774    Controller,
2775}
2776
2777static OPTI_FORK_GATE_MODE: std::sync::atomic::AtomicU8 = std::sync::atomic::AtomicU8::new(0);
2778static OPTI_CONTROLLER_THRESHOLD: std::sync::atomic::AtomicU32 =
2779    std::sync::atomic::AtomicU32::new(0);
2780static OPTI_FORK_ATTEMPTS: std::sync::atomic::AtomicU64 = std::sync::atomic::AtomicU64::new(0);
2781static OPTI_FORK_HITS: std::sync::atomic::AtomicU64 = std::sync::atomic::AtomicU64::new(0);
2782static OPTI_FORK_MISSES: std::sync::atomic::AtomicU64 = std::sync::atomic::AtomicU64::new(0);
2783static OPTI_FORK_ABORT_DRAINS: std::sync::atomic::AtomicU64 = std::sync::atomic::AtomicU64::new(0);
2784static OPTI_FORK_REFUSALS: std::sync::atomic::AtomicU64 = std::sync::atomic::AtomicU64::new(0);
2785static OPTI_GATE_CHECKS: std::sync::atomic::AtomicU64 = std::sync::atomic::AtomicU64::new(0);
2786static OPTI_GATE_ADMITS: std::sync::atomic::AtomicU64 = std::sync::atomic::AtomicU64::new(0);
2787static OPTI_GATE_REJECTS: std::sync::atomic::AtomicU64 = std::sync::atomic::AtomicU64::new(0);
2788static OPTI_RECONCILES: std::sync::atomic::AtomicU64 = std::sync::atomic::AtomicU64::new(0);
2789static OPTI_WASTED_DRAFT_TOKENS: std::sync::atomic::AtomicU64 =
2790    std::sync::atomic::AtomicU64::new(0);
2791static OPTI_SHADOW_DRAFT_TOKENS: std::sync::atomic::AtomicU64 =
2792    std::sync::atomic::AtomicU64::new(0);
2793static OPTI_BREAKER_TRIPS: std::sync::atomic::AtomicU64 = std::sync::atomic::AtomicU64::new(0);
2794
2795impl OptiForkGateMode {
2796    fn code(self) -> u8 {
2797        match self {
2798            Self::Disabled => 0,
2799            Self::Hit => 1,
2800            Self::Miss => 2,
2801            Self::Alternate => 3,
2802            Self::Abort => 4,
2803            Self::Controller => 5,
2804        }
2805    }
2806
2807    fn configured() -> Self {
2808        match OPTI_FORK_GATE_MODE.load(std::sync::atomic::Ordering::Relaxed) {
2809            1 => Self::Hit,
2810            2 => Self::Miss,
2811            3 => Self::Alternate,
2812            4 => Self::Abort,
2813            5 => Self::Controller,
2814            _ => Self::Disabled,
2815        }
2816    }
2817
2818    fn action(self, generation: u64) -> OptiForkAction {
2819        match self {
2820            Self::Hit => OptiForkAction::Hit,
2821            Self::Miss => OptiForkAction::Miss,
2822            Self::Alternate if generation & 1 == 0 => OptiForkAction::Hit,
2823            Self::Alternate => OptiForkAction::Miss,
2824            Self::Abort => OptiForkAction::Abort,
2825            Self::Disabled | Self::Controller => {
2826                unreachable!("non-forced mode cannot choose a forced fork action")
2827            }
2828        }
2829    }
2830
2831    fn is_forced(self) -> bool {
2832        matches!(self, Self::Hit | Self::Miss | Self::Alternate | Self::Abort)
2833    }
2834}
2835
2836/// Arm or disarm the forced harness. Serving uses only `set_optipipe_controller_threshold`.
2837pub fn set_optipipe_gate_mode(mode: OptiForkGateMode) {
2838    OPTI_FORK_GATE_MODE.store(mode.code(), std::sync::atomic::Ordering::Relaxed);
2839}
2840
2841/// Arm the increment-2 diagnostic controller. The threshold applies to the uncalibrated
2842/// two-token draft-probability product. Serving can call this only through its explicit
2843/// fresh-process research door; the absent-door default remains byte-for-byte disabled.
2844pub fn set_optipipe_controller_threshold(threshold: f32) {
2845    assert!(threshold.is_finite() && (0.0..=1.0).contains(&threshold));
2846    OPTI_CONTROLLER_THRESHOLD.store(threshold.to_bits(), std::sync::atomic::Ordering::Relaxed);
2847    set_optipipe_gate_mode(OptiForkGateMode::Controller);
2848}
2849
2850#[derive(Clone, Copy, Debug, Default, PartialEq, Eq)]
2851pub struct OptiForkGateStats {
2852    pub attempts: u64,
2853    pub hits: u64,
2854    pub misses: u64,
2855    pub abort_drains: u64,
2856    pub refusals: u64,
2857    pub gate_checks: u64,
2858    pub gate_admits: u64,
2859    pub gate_rejects: u64,
2860    pub reconciles: u64,
2861    pub wasted_draft_tokens: u64,
2862    pub shadow_draft_tokens: u64,
2863    pub breaker_trips: u64,
2864}
2865
2866#[derive(Clone, Copy, Debug, Default, PartialEq, Eq)]
2867pub struct OptiForkStateIdentity {
2868    pub trunk_kv_bytes: usize,
2869    pub recurrent_bytes: usize,
2870    pub scratch_kv_bytes: usize,
2871    pub hidden_bytes: usize,
2872}
2873
2874pub fn reset_optipipe_gate_stats() {
2875    for counter in [
2876        &OPTI_FORK_ATTEMPTS,
2877        &OPTI_FORK_HITS,
2878        &OPTI_FORK_MISSES,
2879        &OPTI_FORK_ABORT_DRAINS,
2880        &OPTI_FORK_REFUSALS,
2881        &OPTI_GATE_CHECKS,
2882        &OPTI_GATE_ADMITS,
2883        &OPTI_GATE_REJECTS,
2884        &OPTI_RECONCILES,
2885        &OPTI_WASTED_DRAFT_TOKENS,
2886        &OPTI_SHADOW_DRAFT_TOKENS,
2887        &OPTI_BREAKER_TRIPS,
2888    ] {
2889        counter.store(0, std::sync::atomic::Ordering::Relaxed);
2890    }
2891}
2892
2893pub fn optipipe_gate_stats() -> OptiForkGateStats {
2894    let load = |v: &std::sync::atomic::AtomicU64| v.load(std::sync::atomic::Ordering::Relaxed);
2895    OptiForkGateStats {
2896        attempts: load(&OPTI_FORK_ATTEMPTS),
2897        hits: load(&OPTI_FORK_HITS),
2898        misses: load(&OPTI_FORK_MISSES),
2899        abort_drains: load(&OPTI_FORK_ABORT_DRAINS),
2900        refusals: load(&OPTI_FORK_REFUSALS),
2901        gate_checks: load(&OPTI_GATE_CHECKS),
2902        gate_admits: load(&OPTI_GATE_ADMITS),
2903        gate_rejects: load(&OPTI_GATE_REJECTS),
2904        reconciles: load(&OPTI_RECONCILES),
2905        wasted_draft_tokens: load(&OPTI_WASTED_DRAFT_TOKENS),
2906        shadow_draft_tokens: load(&OPTI_SHADOW_DRAFT_TOKENS),
2907        breaker_trips: load(&OPTI_BREAKER_TRIPS),
2908    }
2909}
2910
2911#[derive(Clone, Copy, Debug)]
2912struct OptiControllerPolicy {
2913    threshold: f32,
2914    consecutive_misses: u8,
2915    breaker_tripped: bool,
2916}
2917
2918impl OptiControllerPolicy {
2919    fn configured() -> Self {
2920        Self {
2921            threshold: f32::from_bits(
2922                OPTI_CONTROLLER_THRESHOLD.load(std::sync::atomic::Ordering::Relaxed),
2923            ),
2924            consecutive_misses: 0,
2925            breaker_tripped: false,
2926        }
2927    }
2928
2929    fn admit(&self, q_proxy: f32) -> bool {
2930        q_proxy.is_finite()
2931            && (0.0..=1.0).contains(&q_proxy)
2932            && (self.threshold == 0.0 || (!self.breaker_tripped && q_proxy >= self.threshold))
2933    }
2934
2935    /// Returns true exactly when this resolution newly trips the three-miss breaker.
2936    fn resolve(&mut self, hit: bool) -> bool {
2937        // q*=0 is the lane's explicit unconditional measurement arm. Its purpose is to price
2938        // every optimistic opportunity, so the safety breaker is measured separately and must
2939        // not silently turn this arm into "three attempts then serial".
2940        if self.threshold == 0.0 {
2941            self.consecutive_misses = 0;
2942            return false;
2943        }
2944        if hit {
2945            self.consecutive_misses = 0;
2946            return false;
2947        }
2948        self.consecutive_misses = self.consecutive_misses.saturating_add(1);
2949        if !self.breaker_tripped && self.consecutive_misses >= 3 {
2950            self.breaker_tripped = true;
2951            return true;
2952        }
2953        false
2954    }
2955}
2956
2957#[derive(Clone, Copy, Debug, PartialEq, Eq)]
2958enum OptiForkAction {
2959    Hit,
2960    Miss,
2961    Abort,
2962}
2963
2964#[derive(Clone, Copy, Debug, PartialEq, Eq)]
2965struct OptiForkGeneration {
2966    id: u64,
2967    slot: usize,
2968}
2969
2970#[derive(Default)]
2971struct OptiForkGenerationTracker {
2972    next: u64,
2973    live: [Option<u64>; 2],
2974}
2975
2976impl OptiForkGenerationTracker {
2977    fn reserve(&mut self) -> Result<OptiForkGeneration, Box<dyn std::error::Error>> {
2978        let generation = OptiForkGeneration {
2979            id: self.next,
2980            slot: (self.next & 1) as usize,
2981        };
2982        if let Some(live) = self.live[generation.slot] {
2983            return Err(format!(
2984                "optipipe snapshot slot {} still owns generation {live}; refusing to overwrite it",
2985                generation.slot,
2986            )
2987            .into());
2988        }
2989        self.next += 1;
2990        self.live[generation.slot] = Some(generation.id);
2991        Ok(generation)
2992    }
2993
2994    fn retire(&mut self, generation: OptiForkGeneration) -> Result<(), Box<dyn std::error::Error>> {
2995        match self.live[generation.slot] {
2996            Some(id) if id == generation.id => {
2997                self.live[generation.slot] = None;
2998                Ok(())
2999            }
3000            other => Err(format!(
3001                "optipipe generation teardown mismatch: ticket={} slot={} live={other:?}",
3002                generation.id, generation.slot,
3003            )
3004            .into()),
3005        }
3006    }
3007}
3008
3009struct OptiForkSeedGeneration {
3010    h_seed: CudaSlice<f32>,
3011    fill_prev: CudaSlice<f32>,
3012    scratch_len: usize,
3013}
3014
3015/// Allocate or refresh one full checkpoint through the engine that owns each PP stage. The
3016/// generic cache helper accepts one device and therefore cannot copy GDN state split across
3017/// devices. KV lengths and position stay host metadata; only recurrent buffers need stage-local
3018/// device ownership.
3019fn opti_snapshot_stage_owned(
3020    e: &Engine,
3021    cache: &Cache,
3022    rt: &'static crate::pp::PpNRt,
3023    fence: &[usize],
3024) -> Result<crate::cache::CacheSnapshot, Box<dyn std::error::Error>> {
3025    let n = cache.kv.len();
3026    let mut snapshot = crate::cache::CacheSnapshot {
3027        kv_len: vec![None; n],
3028        tp_kv_len: vec![None; n],
3029        conv: (0..n).map(|_| None).collect(),
3030        ssm: (0..n).map(|_| None).collect(),
3031        pos: cache.pos,
3032    };
3033    opti_snapshot_stage_owned_into(e, cache, rt, fence, &mut snapshot)?;
3034    Ok(snapshot)
3035}
3036
3037fn opti_snapshot_stage_owned_into(
3038    e: &Engine,
3039    cache: &Cache,
3040    rt: &'static crate::pp::PpNRt,
3041    fence: &[usize],
3042    snapshot: &mut crate::cache::CacheSnapshot,
3043) -> Result<(), Box<dyn std::error::Error>> {
3044    if fence.len() != rt.n_stages() + 1
3045        || snapshot.kv_len.len() != cache.kv.len()
3046        || snapshot.tp_kv_len.len() != cache.tp_kv.len()
3047    {
3048        return Err("optipipe stage-owned snapshot shape mismatch".into());
3049    }
3050    for stage in 0..rt.n_stages() {
3051        opti_snapshot_one_stage_owned_into(e, cache, rt, fence, stage, snapshot)?;
3052    }
3053    snapshot.pos = cache.pos;
3054    Ok(())
3055}
3056
3057/// Refresh one PP stage of a checkpoint. Increment 2 uses this split form so stage 0's
3058/// optimistic post-N state is captured before N+1 stage 0 is queued, while stage 1's matching
3059/// post-N state is captured only after N stage 1 is enqueued. Calling the all-stage helper at
3060/// either point would capture one side of the fork at the wrong generation.
3061fn opti_snapshot_one_stage_owned_into(
3062    e: &Engine,
3063    cache: &Cache,
3064    rt: &'static crate::pp::PpNRt,
3065    fence: &[usize],
3066    stage: usize,
3067    snapshot: &mut crate::cache::CacheSnapshot,
3068) -> Result<(), Box<dyn std::error::Error>> {
3069    if fence.len() != rt.n_stages() + 1
3070        || snapshot.kv_len.len() != cache.kv.len()
3071        || snapshot.tp_kv_len.len() != cache.tp_kv.len()
3072        || stage >= rt.n_stages()
3073    {
3074        return Err("optipipe single-stage snapshot shape mismatch".into());
3075    }
3076    let _scope = rt.enter(stage);
3077    let owner = rt.engine(stage, e);
3078    for il in fence[stage]..fence[stage + 1] {
3079        snapshot.kv_len[il] = cache.kv[il].as_ref().map(|kv| kv.len);
3080        snapshot.tp_kv_len[il] = cache.tp_kv[il]
3081            .as_ref()
3082            .map(crate::tp::ResidentTpKvCache::committed_len);
3083        match &cache.recur[il] {
3084            Some(recur) => {
3085                match snapshot.conv[il].as_mut() {
3086                    Some(dst) => {
3087                        owner.copy_into(dst, 0, &recur.conv_state, recur.conv_state.len())?
3088                    }
3089                    None => snapshot.conv[il] = Some(owner.clone_dtod(&recur.conv_state)?),
3090                }
3091                match snapshot.ssm[il].as_mut() {
3092                    Some(dst) => {
3093                        owner.copy_into(dst, 0, &recur.ssm_state, recur.ssm_state.len())?
3094                    }
3095                    None => snapshot.ssm[il] = Some(owner.clone_dtod(&recur.ssm_state)?),
3096                }
3097            }
3098            None if snapshot.conv[il].is_some() || snapshot.ssm[il].is_some() => {
3099                return Err(
3100                    format!("optipipe stage-owned snapshot layer {il} changed shape").into(),
3101                );
3102            }
3103            None => {}
3104        }
3105    }
3106    snapshot.pos = cache.pos;
3107    Ok(())
3108}
3109
3110/// Increment-1 persistent fork state. Exactly two snapshot/seed slots alternate; a live ticket
3111/// names its generation and keeps teardown fail-closed. Only stage 0 is allowed to mutate before
3112/// resolve, so the reconcile tables and conditional restores are stage-local.
3113struct OptiForkState {
3114    mode: OptiForkGateMode,
3115    controller: Option<OptiControllerPolicy>,
3116    generations: OptiForkGenerationTracker,
3117    active_snapshot_slot: usize,
3118    alternate_snapshot: crate::cache::CacheSnapshot,
3119    seeds: [OptiForkSeedGeneration; 2],
3120    rt: &'static crate::pp::PpNRt,
3121    fence: [usize; 3],
3122    split: usize,
3123    len_ptrs: CudaSlice<u64>,
3124    saved_lens: CudaSlice<i32>,
3125    forced_acc: CudaSlice<u32>,
3126    valid: CudaSlice<u32>,
3127    stage0_stream: std::sync::Arc<cudarc::driver::CudaStream>,
3128    logical_payload_bytes: [usize; 2],
3129}
3130
3131struct OptiForkTicket {
3132    generation: OptiForkGeneration,
3133    boundary: Option<VerifyBoundaryTicket>,
3134    drain: std::sync::Arc<cudarc::driver::CudaStream>,
3135    settled: bool,
3136}
3137
3138struct OptiControllerTicket {
3139    generation: OptiForkGeneration,
3140    boundary: Option<VerifyBoundaryTicket>,
3141    ckpt: Option<VerifyCkpt>,
3142    verify_tokens: [u32; 2],
3143    draft_prob: f32,
3144    eager_seed: Option<CudaSlice<f32>>,
3145    q_proxy: f32,
3146    scratch_len: usize,
3147    issued_at: std::time::Instant,
3148    drain: std::sync::Arc<cudarc::driver::CudaStream>,
3149    settled: bool,
3150}
3151
3152struct OptiControllerPrepared {
3153    verify_tokens: [u32; 2],
3154    draft_prob: f32,
3155    eager_seed: Option<CudaSlice<f32>>,
3156    q_proxy: f32,
3157    scratch_len: usize,
3158}
3159
3160impl OptiControllerTicket {
3161    fn take_boundary(&mut self) -> VerifyBoundaryTicket {
3162        self.boundary
3163            .take()
3164            .expect("controller boundary ticket already consumed")
3165    }
3166
3167    fn take_ckpt(&mut self) -> VerifyCkpt {
3168        self.ckpt
3169            .take()
3170            .expect("controller verify checkpoint already consumed")
3171    }
3172
3173    fn take_eager_seed(&mut self) -> Option<CudaSlice<f32>> {
3174        self.eager_seed.take()
3175    }
3176
3177    fn settle(&mut self) {
3178        self.settled = true;
3179    }
3180}
3181
3182impl Drop for OptiControllerTicket {
3183    fn drop(&mut self) {
3184        if !self.settled {
3185            let _ = self.drain.synchronize();
3186            OPTI_FORK_ABORT_DRAINS.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
3187        }
3188    }
3189}
3190
3191impl OptiForkTicket {
3192    fn take_boundary(&mut self) -> VerifyBoundaryTicket {
3193        self.boundary
3194            .take()
3195            .expect("fork ticket boundary already consumed")
3196    }
3197
3198    fn settle(&mut self) {
3199        self.settled = true;
3200    }
3201}
3202
3203impl Drop for OptiForkTicket {
3204    fn drop(&mut self) {
3205        if !self.settled {
3206            let _ = self.drain.synchronize();
3207            OPTI_FORK_ABORT_DRAINS.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
3208        }
3209    }
3210}
3211
3212impl OptiForkState {
3213    #[allow(clippy::too_many_arguments)]
3214    fn new(
3215        e: &Engine,
3216        cache: &Cache,
3217        mode: OptiForkGateMode,
3218        alternate_snapshot: crate::cache::CacheSnapshot,
3219        h_seed: &CudaSlice<f32>,
3220        fill_prev: &CudaSlice<f32>,
3221        rt: &'static crate::pp::PpNRt,
3222        split: usize,
3223        n_layer: usize,
3224    ) -> Result<Self, Box<dyn std::error::Error>> {
3225        let fence = [0, split, n_layer];
3226        let mut logical_payload_bytes = [0usize; 2];
3227        for stage in 0..2 {
3228            for il in fence[stage]..fence[stage + 1] {
3229                logical_payload_bytes[stage] += alternate_snapshot.conv[il]
3230                    .as_ref()
3231                    .map_or(0, |v| v.len() * std::mem::size_of::<f32>());
3232                logical_payload_bytes[stage] += alternate_snapshot.ssm[il]
3233                    .as_ref()
3234                    .map_or(0, |v| v.len() * std::mem::size_of::<f32>());
3235            }
3236        }
3237        let seeds = [
3238            OptiForkSeedGeneration {
3239                h_seed: e.clone_dtod(h_seed)?,
3240                fill_prev: e.clone_dtod(fill_prev)?,
3241                scratch_len: 0,
3242            },
3243            OptiForkSeedGeneration {
3244                h_seed: e.clone_dtod(h_seed)?,
3245                fill_prev: e.clone_dtod(fill_prev)?,
3246                scratch_len: 0,
3247            },
3248        ];
3249        let (len_ptrs, saved_lens, forced_acc, valid, stage0_stream) = {
3250            let _stage = rt.enter(0);
3251            let e0 = rt.engine(0, e);
3252            (
3253                crate::round_stream::kv_len_ptr_table_range(e0, cache, 0..split, None)?,
3254                e0.htod_i32(&vec![0; split])?,
3255                e0.alloc_u32_zeroed(2)?,
3256                e0.alloc_u32_zeroed(1)?,
3257                e0.stream(),
3258            )
3259        };
3260        logical_payload_bytes[0] += seeds
3261            .iter()
3262            .map(|seed| (seed.h_seed.len() + seed.fill_prev.len()) * std::mem::size_of::<f32>())
3263            .sum::<usize>();
3264        logical_payload_bytes[0] += len_ptrs.len() * std::mem::size_of::<u64>()
3265            + saved_lens.len() * std::mem::size_of::<i32>()
3266            + forced_acc.len() * std::mem::size_of::<u32>()
3267            + valid.len() * std::mem::size_of::<u32>();
3268        Ok(Self {
3269            mode,
3270            controller: (mode == OptiForkGateMode::Controller)
3271                .then(OptiControllerPolicy::configured),
3272            generations: OptiForkGenerationTracker::default(),
3273            active_snapshot_slot: 0,
3274            alternate_snapshot,
3275            seeds,
3276            rt,
3277            fence,
3278            split,
3279            len_ptrs,
3280            saved_lens,
3281            forced_acc,
3282            valid,
3283            stage0_stream,
3284            logical_payload_bytes,
3285        })
3286    }
3287
3288    fn reserve(
3289        &mut self,
3290        current_snapshot: &mut crate::cache::CacheSnapshot,
3291    ) -> Result<OptiForkGeneration, Box<dyn std::error::Error>> {
3292        let generation = self.generations.reserve()?;
3293        if generation.slot != self.active_snapshot_slot {
3294            std::mem::swap(current_snapshot, &mut self.alternate_snapshot);
3295            self.active_snapshot_slot = generation.slot;
3296        }
3297        Ok(generation)
3298    }
3299
3300    fn capture_seed(
3301        &mut self,
3302        e: &Engine,
3303        generation: OptiForkGeneration,
3304        h_seed: &CudaSlice<f32>,
3305        fill_prev: &CudaSlice<f32>,
3306        scratch_len: usize,
3307    ) -> Result<(), Box<dyn std::error::Error>> {
3308        let seed = &mut self.seeds[generation.slot];
3309        e.copy_into(&mut seed.h_seed, 0, h_seed, h_seed.len())?;
3310        e.copy_into(&mut seed.fill_prev, 0, fill_prev, fill_prev.len())?;
3311        seed.scratch_len = scratch_len;
3312        Ok(())
3313    }
3314
3315    fn ticket(
3316        &self,
3317        generation: OptiForkGeneration,
3318        boundary: VerifyBoundaryTicket,
3319    ) -> OptiForkTicket {
3320        OptiForkTicket {
3321            generation,
3322            boundary: Some(boundary),
3323            drain: self.stage0_stream.clone(),
3324            settled: false,
3325        }
3326    }
3327
3328    #[allow(clippy::too_many_arguments)]
3329    fn controller_ticket(
3330        &self,
3331        generation: OptiForkGeneration,
3332        boundary: VerifyBoundaryTicket,
3333        ckpt: VerifyCkpt,
3334        verify_tokens: [u32; 2],
3335        draft_prob: f32,
3336        eager_seed: Option<CudaSlice<f32>>,
3337        q_proxy: f32,
3338        scratch_len: usize,
3339    ) -> OptiControllerTicket {
3340        OptiControllerTicket {
3341            generation,
3342            boundary: Some(boundary),
3343            ckpt: Some(ckpt),
3344            verify_tokens,
3345            draft_prob,
3346            eager_seed,
3347            q_proxy,
3348            scratch_len,
3349            issued_at: std::time::Instant::now(),
3350            drain: self.stage0_stream.clone(),
3351            settled: false,
3352        }
3353    }
3354
3355    fn reserve_successor(&mut self) -> Result<OptiForkGeneration, Box<dyn std::error::Error>> {
3356        self.generations.reserve()
3357    }
3358
3359    fn successor_snapshot_mut(&mut self) -> &mut crate::cache::CacheSnapshot {
3360        &mut self.alternate_snapshot
3361    }
3362
3363    fn promote_successor_snapshot(
3364        &mut self,
3365        current_snapshot: &mut crate::cache::CacheSnapshot,
3366        generation: OptiForkGeneration,
3367    ) {
3368        std::mem::swap(current_snapshot, &mut self.alternate_snapshot);
3369        self.active_snapshot_slot = generation.slot;
3370    }
3371
3372    fn queue_actual_reconcile(
3373        &mut self,
3374        e: &Engine,
3375        snapshot: &crate::cache::CacheSnapshot,
3376        acc: &CudaSlice<u32>,
3377        optimistic_pending: u32,
3378        base: usize,
3379    ) -> Result<(), Box<dyn std::error::Error>> {
3380        let saved: Vec<i32> = (0..self.split)
3381            .map(|il| snapshot.kv_len[il].map(|v| v as i32).unwrap_or(0))
3382            .collect();
3383        // Serving keeps the caller/accept walk on the head (stage-1) device. Record the accept
3384        // decision point there and append a wait to stage 0 after its optimistic successor/TX;
3385        // the validity/reconcile kernels must never peer-read acc before it is written. The
3386        // increment-1 harness uses primary stage 0, where stream order already provides this.
3387        if self.rt.engine(0, e).ctx().ordinal() != e.ctx().ordinal() {
3388            self.rt.fence_stages_behind(&e.stream())?;
3389        }
3390        let _stage = self.rt.enter(0);
3391        let e0 = self.rt.engine(0, e);
3392        e0.htod_i32_into(&mut self.saved_lens, &saved)?;
3393        e0.spec_fork_valid(acc, optimistic_pending, &mut self.valid)?;
3394        e0.spec_fork_reconcile_kv(
3395            &self.len_ptrs,
3396            &self.saved_lens,
3397            acc,
3398            &self.valid,
3399            base,
3400            self.split,
3401        )
3402    }
3403
3404    fn finish_actual_reconcile(
3405        &mut self,
3406        e: &Engine,
3407        cache: &mut Cache,
3408        snapshot: &crate::cache::CacheSnapshot,
3409        n_acc: usize,
3410        base: usize,
3411        hit: bool,
3412    ) -> Result<(), Box<dyn std::error::Error>> {
3413        if hit {
3414            return Ok(());
3415        }
3416        let len_delta = base + n_acc;
3417        for il in 0..self.split {
3418            if let (Some(kv), Some(saved)) = (cache.kv[il].as_mut(), snapshot.kv_len[il]) {
3419                kv.len = saved + len_delta;
3420            }
3421        }
3422        {
3423            let _stage = self.rt.enter(1);
3424            let e1 = self.rt.engine(1, e);
3425            for il in self.split..self.fence[2] {
3426                if let (Some(kv), Some(saved)) = (cache.kv[il].as_mut(), snapshot.kv_len[il]) {
3427                    kv.len = saved + len_delta;
3428                    e1.set_i32_one(&mut kv.len_d, kv.len as i32)?;
3429                }
3430            }
3431        }
3432        self.rt.publish_to(0, &e.stream())?;
3433        Ok(())
3434    }
3435
3436    fn cancel_controller_ticket(
3437        &mut self,
3438        e: &Engine,
3439        cache: &mut Cache,
3440        scratch: &mut MtpScratch,
3441        snapshot: &crate::cache::CacheSnapshot,
3442        ticket: &mut OptiControllerTicket,
3443    ) -> Result<(), Box<dyn std::error::Error>> {
3444        {
3445            let _stage = self.rt.enter(0);
3446            let e0 = self.rt.engine(0, e);
3447            for il in 0..self.split {
3448                if let (Some(kv), Some(saved)) = (cache.kv[il].as_mut(), snapshot.kv_len[il]) {
3449                    kv.len = saved;
3450                    e0.set_i32_one(&mut kv.len_d, saved as i32)?;
3451                }
3452            }
3453        }
3454        scratch.set_len(e, snapshot.pos)?;
3455        ticket.settle();
3456        self.generations.retire(ticket.generation)?;
3457        OPTI_FORK_ABORT_DRAINS.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
3458        OPTI_WASTED_DRAFT_TOKENS.fetch_add(2, std::sync::atomic::Ordering::Relaxed);
3459        eprintln!(
3460            "[opti-controller] tail-drain generation={} slot={}",
3461            ticket.generation.id, ticket.generation.slot,
3462        );
3463        Ok(())
3464    }
3465
3466    #[allow(clippy::too_many_arguments)]
3467    fn reconcile(
3468        &mut self,
3469        e: &Engine,
3470        cache: &mut Cache,
3471        scratch: &mut MtpScratch,
3472        snapshot: &crate::cache::CacheSnapshot,
3473        h_seed: &mut CudaSlice<f32>,
3474        fill_prev: &mut CudaSlice<f32>,
3475        generation: OptiForkGeneration,
3476        action: OptiForkAction,
3477        optimistic_pending: u32,
3478    ) -> Result<(), Box<dyn std::error::Error>> {
3479        debug_assert!(action != OptiForkAction::Abort);
3480        let miss_started = std::time::Instant::now();
3481        let keep = action == OptiForkAction::Hit;
3482        let saved: Vec<i32> = (0..self.split)
3483            .map(|il| snapshot.kv_len[il].map(|v| v as i32).unwrap_or(0))
3484            .collect();
3485        let seed = &self.seeds[generation.slot];
3486        {
3487            let _stage = self.rt.enter(0);
3488            let e0 = self.rt.engine(0, e);
3489            e0.htod_i32_into(&mut self.saved_lens, &saved)?;
3490            let forced = if keep {
3491                [1u32, optimistic_pending]
3492            } else {
3493                [0u32, optimistic_pending]
3494            };
3495            e0.htod_u32_into(&mut self.forced_acc, &forced)?;
3496            e0.spec_fork_valid(&self.forced_acc, optimistic_pending, &mut self.valid)?;
3497            e0.spec_fork_reconcile_kv(
3498                &self.len_ptrs,
3499                &self.saved_lens,
3500                &self.forced_acc,
3501                &self.valid,
3502                0,
3503                self.split,
3504            )?;
3505            for il in 0..self.split {
3506                if let Some(recur) = cache.recur[il].as_mut() {
3507                    let conv = snapshot.conv[il]
3508                        .as_ref()
3509                        .ok_or("optipipe stage0 snapshot missing conv state")?;
3510                    let ssm = snapshot.ssm[il]
3511                        .as_ref()
3512                        .ok_or("optipipe stage0 snapshot missing ssm state")?;
3513                    e0.spec_fork_restore_f32(conv, &mut recur.conv_state, &self.valid)?;
3514                    e0.spec_fork_restore_f32(ssm, &mut recur.ssm_state, &self.valid)?;
3515                }
3516            }
3517            e0.spec_fork_restore_f32(&seed.h_seed, h_seed, &self.valid)?;
3518            e0.spec_fork_restore_f32(&seed.fill_prev, fill_prev, &self.valid)?;
3519        }
3520
3521        if keep {
3522            OPTI_FORK_HITS.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
3523            return Ok(());
3524        }
3525
3526        for il in 0..self.split {
3527            if let (Some(kv), Some(saved)) = (cache.kv[il].as_mut(), snapshot.kv_len[il]) {
3528                kv.len = saved;
3529            }
3530        }
3531        scratch.set_len(e, seed.scratch_len)?;
3532        // Targeted E_restart: publish only stage 0's reconcile to the caller, then bound the
3533        // forced diagnostic so the retained number is the actual miss cost, not enqueue time.
3534        let caller = e.stream();
3535        self.rt.publish_to(0, &caller)?;
3536        caller.synchronize()?;
3537        let miss_ms = miss_started.elapsed().as_secs_f64() * 1e3;
3538        eprintln!(
3539            "[opti-fork-reconcile] generation={} slot={} miss_ms={miss_ms:.3}",
3540            generation.id, generation.slot,
3541        );
3542        OPTI_FORK_MISSES.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
3543        Ok(())
3544    }
3545
3546    fn retire(&mut self, generation: OptiForkGeneration) -> Result<(), Box<dyn std::error::Error>> {
3547        self.generations.retire(generation)
3548    }
3549}
3550
3551fn rewind_tp_kv_verified_prefix(
3552    tp_kv: &mut [Option<crate::tp::ResidentTpKvCache>],
3553    saved_lens: &[Option<usize>],
3554    accepted: usize,
3555) -> Result<(), Box<dyn std::error::Error>> {
3556    if tp_kv.len() != saved_lens.len() {
3557        return Err("spec TP KV snapshot shape mismatch".into());
3558    }
3559    for (layer, (cache, saved)) in tp_kv.iter_mut().zip(saved_lens).enumerate() {
3560        match (cache.as_mut(), *saved) {
3561            (Some(cache), Some(saved)) => {
3562                let target = saved
3563                    .checked_add(accepted)
3564                    .ok_or("spec TP KV committed length overflow")?;
3565                cache.rewind_to(target)?;
3566            }
3567            (None, None) => {}
3568            _ => {
3569                return Err(
3570                    format!("spec TP KV layer {layer} changed shape since its snapshot").into(),
3571                );
3572            }
3573        }
3574    }
3575    Ok(())
3576}
3577
3578impl HybridModel {
3579    fn mtp_head_count(&self) -> usize {
3580        usize::from(self.mtp.is_some()) + self.mtp_extra.len()
3581    }
3582
3583    fn mtp_head_at(&self, index: usize) -> &MtpHead {
3584        if index == 0 {
3585            self.mtp.as_ref().expect("MTP head 0 is unavailable")
3586        } else {
3587            &self.mtp_extra[index - 1]
3588        }
3589    }
3590
3591    fn new_mtp_scratch(
3592        &self,
3593        e: &Engine,
3594        cap: usize,
3595    ) -> Result<MtpScratch, Box<dyn std::error::Error>> {
3596        let mut scratch = MtpScratch::new(
3597            e,
3598            &self.cfg,
3599            &self.plan,
3600            cap,
3601            self.mtp.as_ref().and_then(|head| head.geom.as_ref()),
3602        )?;
3603        for head in &self.mtp_extra {
3604            scratch.push_plane(e, &self.cfg, &self.plan, head.geom.as_ref())?;
3605        }
3606        Ok(scratch)
3607    }
3608
3609    fn opti_graph_draft_step(
3610        &self,
3611        e: &Engine,
3612        mtp: &MtpHead,
3613        dctx: &mut DraftGraphCtx,
3614        scratch: &mut MtpScratch,
3615        d_vocab: usize,
3616    ) -> Result<(u32, f32), Box<dyn std::error::Error>> {
3617        dctx.graph
3618            .as_ref()
3619            .ok_or("optipipe controller requires the greedy draft graph")?
3620            .launch()?;
3621        scratch.kv.len += 1;
3622        let idx = e.dtoh_u32_one(&dctx.g_tok)?;
3623        if (idx as usize) >= d_vocab {
3624            return Err(
3625                format!("optipipe draft argmax sentinel 0x{idx:08x} >= d_vocab {d_vocab}").into(),
3626            );
3627        }
3628        let probability = e.dtoh(&dctx.g_p)?[0];
3629        if !probability.is_finite() || !(0.0..=1.0).contains(&probability) {
3630            return Err(format!("optipipe draft probability is invalid: {probability}").into());
3631        }
3632        let token = match &mtp.d2t {
3633            Some(map) => map[idx as usize],
3634            None => idx,
3635        };
3636        if token != idx {
3637            e.set_u32_one(&mut dctx.g_tok, token)?;
3638        }
3639        Ok((token, probability))
3640    }
3641
3642    #[allow(clippy::too_many_arguments)]
3643    fn opti_controller_draft_step(
3644        &self,
3645        e: &Engine,
3646        mtp: &MtpHead,
3647        dctx: &mut DraftGraphCtx,
3648        scratch: &mut MtpScratch,
3649        d_vocab: usize,
3650        eager_state: &mut Option<(u32, CudaSlice<f32>)>,
3651        eager_pos: usize,
3652        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
3653    ) -> Result<(u32, f32), Box<dyn std::error::Error>> {
3654        if dctx.graph.is_some() {
3655            return self.opti_graph_draft_step(e, mtp, dctx, scratch, d_vocab);
3656        }
3657        let (input_token, input_seed) = eager_state
3658            .take()
3659            .ok_or("optipipe eager continuation seed is unavailable")?;
3660        let (logits, next_seed) = self.mtp_head_forward_dev(
3661            e,
3662            mtp,
3663            input_token,
3664            &input_seed,
3665            scratch,
3666            eager_pos,
3667            embd_dev,
3668            None,
3669        )?;
3670        let token_d = e.argmax_token_device(&logits, d_vocab)?;
3671        let idx = e.dtoh_u32_one(&token_d)?;
3672        if (idx as usize) >= d_vocab {
3673            return Err(format!(
3674                "optipipe eager draft argmax sentinel 0x{idx:08x} >= d_vocab {d_vocab}"
3675            )
3676            .into());
3677        }
3678        let probability_d = e.prob_of_token_device(&logits, &token_d, d_vocab)?;
3679        let probability = e.dtoh(&probability_d)?[0];
3680        if !probability.is_finite() || !(0.0..=1.0).contains(&probability) {
3681            return Err(
3682                format!("optipipe eager draft probability is invalid: {probability}").into(),
3683            );
3684        }
3685        let token = match &mtp.d2t {
3686            Some(map) => map[idx as usize],
3687            None => idx,
3688        };
3689        *eager_state = Some((token, next_seed));
3690        Ok((token, probability))
3691    }
3692
3693    /// NextN head forward for ONE draft token (§A ops 1-13, T=1).
3694    /// Inputs: `e_tok` = the token to predict FROM (last committed / previous draft); `h_seed` =
3695    /// the trunk's pre-output_norm hidden of that token (§A op 2 input). `mtp_pos` = absolute
3696    /// position of the token being predicted from. Returns (draft_logits[n_vocab] host, h_nextn dev).
3697    /// `h_nextn` (§A op 10) becomes `h_seed` for the next autoregressive draft step.
3698    /// Device-resident: returns draft logits ON DEVICE (no [n_vocab] dtoh). The greedy draft
3699    /// loop only needs argmax — paired with `argmax_token_device` this cuts the ~600KB logits
3700    /// transfer + host argmax per draft token from the K-token draft chain.
3701    #[allow(clippy::too_many_arguments)]
3702    fn mtp_head_forward_dev(
3703        &self,
3704        e: &Engine,
3705        mtp: &MtpHead,
3706        e_tok: u32,
3707        h_seed: &CudaSlice<f32>,
3708        scratch: &mut MtpScratch,
3709        mtp_pos: usize,
3710        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
3711        mask: Option<(&CudaSlice<u32>, usize)>,
3712    ) -> Result<(CudaSlice<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
3713        self.mtp_head_forward_dev_at(e, mtp, e_tok, h_seed, scratch, 0, mtp_pos, embd_dev, mask)
3714    }
3715
3716    #[allow(clippy::too_many_arguments)]
3717    fn mtp_head_forward_dev_at(
3718        &self,
3719        e: &Engine,
3720        mtp: &MtpHead,
3721        e_tok: u32,
3722        h_seed: &CudaSlice<f32>,
3723        scratch: &mut MtpScratch,
3724        scratch_index: usize,
3725        mtp_pos: usize,
3726        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
3727        // DRAFT-SIDE GRAMMAR MASK (lane/draft-mask): (packed draft-vocab allowed set, words).
3728        // Applied to the head logits BEFORE they are returned, so every consumer (argmax,
3729        // gumbel draw, p-min prob) sees the grammar-legal row. None = unmasked (pre-lane).
3730        mask: Option<(&CudaSlice<u32>, usize)>,
3731    ) -> Result<(CudaSlice<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
3732        // MEMRA_SPEC_ANATOMY=1 — eager-step phase timers (diagnostic only). Phase boundaries
3733        // sync the stream, so absolute time inflates; the BREAKDOWN is the signal. Cumulative
3734        // summary on stderr every 128 steps: glue (embed..attn_norm), attn, ffn, head.
3735        use std::sync::atomic::{AtomicU64, Ordering::Relaxed};
3736        static ANAT_NS: [AtomicU64; 5] = [
3737            AtomicU64::new(0),
3738            AtomicU64::new(0),
3739            AtomicU64::new(0),
3740            AtomicU64::new(0),
3741            AtomicU64::new(0),
3742        ];
3743        static ANAT_STEPS: AtomicU64 = AtomicU64::new(0);
3744        let anat = {
3745            static ON: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
3746            *ON.get_or_init(|| std::env::var("MEMRA_SPEC_ANATOMY").as_deref() == Ok("1"))
3747        };
3748        if anat {
3749            e.stream().synchronize()?; // drain prior queue so phase 0 starts clean
3750        }
3751        let t_all = std::time::Instant::now();
3752        let mut t_ph = std::time::Instant::now();
3753        let mut anat_mark = |i: usize,
3754                             e: &Engine,
3755                             t: &mut std::time::Instant|
3756         -> Result<(), Box<dyn std::error::Error>> {
3757            if anat {
3758                e.stream().synchronize()?;
3759                ANAT_NS[i].fetch_add(t.elapsed().as_nanos() as u64, Relaxed);
3760                *t = std::time::Instant::now();
3761            }
3762            Ok(())
3763        };
3764        let cfg = &self.cfg;
3765        let n_embd = cfg.n_embd as usize;
3766        // Distilled-student geometry: the block runs at the INNER width `di` (eh_proj out /
3767        // attn / ffn); the n_embd interface (embed, norms in, carrier out, head in) is unchanged.
3768        let di = mtp.geom.as_ref().map(|g| g.d_inner).unwrap_or(n_embd);
3769        let eps = cfg.rms_eps;
3770        let pos_d = e.htod_i32(&[mtp_pos as i32])?;
3771
3772        // op A: a resident table transfers one 4B token id. The exact host-row capacity path
3773        // expands this one row on CPU and transfers n_embd f32 values instead.
3774        let e_emb = match embd_dev {
3775            Some((g, qt, rb)) => e.embed_gather_device_t(g, &[e_tok], n_embd, qt, rb)?,
3776            None => e.htod(&self.embd.gather(n_embd, &[e_tok]))?,
3777        };
3778
3779        // op 1/2: e_norm = RMSNorm(e, enorm); h_norm = RMSNorm(h_seed, hnorm)
3780        let mut e_norm = e.zeros(n_embd)?;
3781        e.rms_norm(&e_emb, mtp.enorm.float_data(), &mut e_norm, n_embd, 1, eps)?;
3782        let mut h_norm = e.zeros(n_embd)?;
3783        e.rms_norm(h_seed, mtp.hnorm.float_data(), &mut h_norm, n_embd, 1, eps)?;
3784
3785        // op 3: concat = [e_norm ; h_norm] -> [2*n_embd], e_norm in [0,n_embd), h_norm in [n_embd,2n_embd)
3786        let mut concat = e.zeros(2 * n_embd)?;
3787        e.copy_into(&mut concat, 0, &e_norm, n_embd)?;
3788        e.copy_into(&mut concat, n_embd, &h_norm, n_embd)?;
3789
3790        // op 4: inpSA = eh_proj @ concat  (eh_proj [2*n_embd, n_embd]) -> [n_embd]
3791        let inp_sa = e.matmul(&mtp.eh_proj, &concat, 1)?;
3792
3793        // op 5: a_norm = RMSNorm(inpSA, attn_norm)
3794        let mut a_norm = e.zeros(di)?;
3795        e.rms_norm(&inp_sa, mtp.attn_norm.float_data(), &mut a_norm, di, 1, eps)?;
3796        anat_mark(0, e, &mut t_ph)?;
3797
3798        // op 6: attention on the scratch KV. SAME dc launcher as the graph path (bucket_max =
3799        // scratch.cap, length from the device len_d) so eager drafts match graph drafts
3800        // bit-for-bit at any t_kv (the parity gate). Host len mirrored here (the dc append
3801        // advances only the device counter).
3802        let attn_out = match (&mtp.mixer, mtp.step35.as_ref()) {
3803            // step35 MTP block: PER-LAYER geometry + a separate head-wise gate + an SWA window,
3804            // none of which the dc launcher can express (see `mtp_step35_attn`). Host-len arm.
3805            // Advances BOTH the host len and the device counter itself (unlike the dc arm,
3806            // whose host-side mirror the caller does).
3807            (Mixer::Full(fa), Some(g)) => {
3808                self.mtp_step35_attn(e, fa, g, &a_norm, &pos_d, scratch, scratch_index)?
3809            }
3810            (Mixer::Full(fa), None) => {
3811                let out = self.mtp_full_attn_dc(
3812                    e,
3813                    fa,
3814                    &a_norm,
3815                    &pos_d,
3816                    scratch,
3817                    scratch_index,
3818                    mtp.geom.as_ref(),
3819                )?;
3820                scratch.plane_mut(scratch_index).0.len += 1;
3821                out
3822            }
3823            (Mixer::Linear(_), _) => {
3824                panic!("MTP block is full-attn in qwen35; linear MTP not supported")
3825            }
3826            (Mixer::Mla(_), _) => crate::hybrid::mla_forward_unimplemented(),
3827        };
3828        anat_mark(1, e, &mut t_ph)?;
3829
3830        // op 7: x1 = inpSA + attn_out
3831        let mut x1 = e.zeros(di)?;
3832        e.add(&inp_sa, &attn_out, &mut x1, di)?;
3833
3834        // op 8: z = RMSNorm(x1, post_attn_norm)  (pre-FFN norm)
3835        let mut z = e.zeros(di)?;
3836        e.rms_norm(&x1, mtp.post_attn_norm.float_data(), &mut z, di, 1, eps)?;
3837
3838        // op 9: FFN (Dense or MoE) — same as the trunk decode FFN
3839        let ffn_out = match &mtp.ffn {
3840            crate::hybrid::Ffn::Dense {
3841                ffn_gate,
3842                ffn_up,
3843                ffn_down,
3844            } => {
3845                let n_ff = ffn_gate.out_features();
3846                let (gate, up) = if e.uses_q8_1_fast(ffn_gate) && e.uses_q8_1_fast(ffn_up) {
3847                    let (zq, zd) = e.quantize_q8_1(&z, 1, di)?;
3848                    (
3849                        e.matmul_pre(ffn_gate, &zq, &zd, &z, 1)?,
3850                        e.matmul_pre(ffn_up, &zq, &zd, &z, 1)?,
3851                    )
3852                } else {
3853                    (e.matmul(ffn_gate, &z, 1)?, e.matmul(ffn_up, &z, 1)?)
3854                };
3855                let mut act = e.zeros(n_ff)?;
3856                // step35: a DENSE FFN reads the per-layer SHEXP clamp (upstream's one `build_ffn`
3857                // serves the dense MLP and the shared expert off `swiglu_clamp_shexp` —
3858                // llama-graph.cpp:1751), resolved for the MTP block's OWN index. Every other arch
3859                // passes None, which is `ffn_act`'s dispatch verbatim.
3860                Self::ffn_act_lim(
3861                    e,
3862                    &self.cfg,
3863                    &gate,
3864                    &up,
3865                    1.0,
3866                    1.0,
3867                    mtp.step35.as_ref().and_then(|s| s.clamp_shexp),
3868                    &mut act,
3869                    n_ff,
3870                )?;
3871                e.matmul(ffn_down, &act, 1)?
3872            }
3873            // MTP head is a distinct block — key its experts under a separate layer index (u16::MAX)
3874            // so they never alias trunk layer 0's cache keys.
3875            crate::hybrid::Ffn::Moe(m) => self.moe_ffn_il(e, m, &z, 1, u16::MAX)?,
3876        };
3877        anat_mark(2, e, &mut t_ph)?;
3878
3879        // op 10: h_nextn = x1 + ffn_out (at di)
3880        let mut h_inner = e.zeros(di)?;
3881        e.add(&x1, &ffn_out, &mut h_inner, di)?;
3882
3883        // op 10.5 (student): up-project the inner hidden back to n_embd — training semantics:
3884        // the chain carrier AND the head input are out_up(h_inner) (pre-final-norm).
3885        let h_nextn = match mtp.geom.as_ref() {
3886            Some(g) => e.matmul(&g.out_up, &h_inner, 1)?,
3887            None => h_inner,
3888        };
3889
3890        // op 11: final = RMSNorm(h_nextn, shared_head_norm OR output_norm)
3891        let final_norm = mtp.shared_head_norm.as_ref().unwrap_or(&self.output_norm);
3892        let mut final_h = e.zeros(n_embd)?;
3893        e.rms_norm(
3894            &h_nextn,
3895            final_norm.float_data(),
3896            &mut final_h,
3897            n_embd,
3898            1,
3899            eps,
3900        )?;
3901
3902        // op 12: draft_logits = (shared_head_head OR output) @ final — stays ON DEVICE.
3903        let head = mtp.shared_head_head.as_ref().unwrap_or(&self.output);
3904        let mut logits = e.matmul(head, &final_h, 1)?;
3905        // op 12b (lane/draft-mask): grammar mask over the DRAFT vocab, applied here so the
3906        // caller's argmax / gumbel draw / p-min prob all read the grammar-legal row.
3907        if let Some((mask_d, mw)) = mask {
3908            let d_vocab = head.out_features();
3909            e.mask_logits_col(&mut logits, mask_d, 0, d_vocab, mw)?;
3910        }
3911        anat_mark(3, e, &mut t_ph)?;
3912        if anat {
3913            ANAT_NS[4].fetch_add(t_all.elapsed().as_nanos() as u64, Relaxed);
3914            let n = ANAT_STEPS.fetch_add(1, Relaxed) + 1;
3915            if n % 128 == 0 {
3916                let us = |i: usize| ANAT_NS[i].load(Relaxed) / n / 1000;
3917                eprintln!(
3918                    "[spec-anatomy] steps={n} avg us/step: glue={} attn={} ffn={} head={} total={}",
3919                    us(0),
3920                    us(1),
3921                    us(2),
3922                    us(3),
3923                    us(4)
3924                );
3925            }
3926        }
3927        // Chain recurrence hand-over: pre-norm h_nextn (default) or post-norm final_h
3928        // (MEMRA_SPEC_HPOST — llama.cpp #24025's t_h_nextn is taken AFTER the head norm).
3929        Ok((logits, if spec_hpost() { final_h } else { h_nextn }))
3930    }
3931
3932    #[allow(clippy::too_many_arguments)]
3933    fn mtp_chain_forward_dev(
3934        &self,
3935        e: &Engine,
3936        tokens: &[u32],
3937        seeds: &[CudaSlice<f32>],
3938        scratch: &mut MtpScratch,
3939        committed_scratch_len: usize,
3940        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
3941        mask: Option<(&CudaSlice<u32>, usize)>,
3942    ) -> Result<(CudaSlice<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
3943        if tokens.is_empty() || tokens.len() != seeds.len() {
3944            return Err("multi-head MTP prefix tokens/seeds are malformed".into());
3945        }
3946        let index = mtp_chain_head_index(tokens.len() - 1, self.mtp_head_count());
3947        let head = self.mtp_head_at(index);
3948        scratch.set_plane_len(e, index, committed_scratch_len)?;
3949
3950        let mut last = None;
3951        for row in 0..tokens.len() {
3952            let is_last = row + 1 == tokens.len();
3953            last = Some(self.mtp_head_forward_dev_at(
3954                e,
3955                head,
3956                tokens[row],
3957                &seeds[row],
3958                scratch,
3959                index,
3960                committed_scratch_len + row + 1,
3961                embd_dev,
3962                if is_last { mask } else { None },
3963            )?);
3964        }
3965        Ok(last.expect("non-empty MTP prefix produced no row"))
3966    }
3967
3968    /// step35 MTP-block attention, T=1, on the scratch KV — the EAGER-ONLY twin of
3969    /// `mtp_full_attn_dc`. Three things force a separate arm rather than a geometry parameter on
3970    /// the dc path, and all three are properties of this arch's MTP block:
3971    ///
3972    /// 1. **The SWA window.** Block 45 is an SWA-type block (`sliding_window_pattern[45]=true`,
3973    ///    window 512). Windowed decode in memra is a token-aligned VIEW OFFSET into the quantized
3974    ///    cache (the gemma4 R6 / `step35_decode_attn` pattern: keys carry absolute rope and the
3975    ///    mask is purely positional, so one query at `len-1` attending the last `win` rows IS the
3976    ///    windowed result). `fa_decode_dc` takes the key count from a DEVICE counter and always
3977    ///    starts at row 0 — it cannot express a nonzero offset, so a windowed dc arm would need a
3978    ///    new kernel. That is deliberately not built here: see the CUDA-graph note below.
3979    /// 2. **Per-layer head count.** 96 q heads over 8 KV (GQA 12) at this block, vs the trunk's 64
3980    ///    on its full-attn layers. The trunk cfg's `n_head` scalar is the MAX over layers, and the
3981    ///    trunk ARTIFACT's per-layer arrays stop at index 44 — so the count must come from the
3982    ///    resolved `Step35MtpGeom`, never from `cfg`.
3983    /// 3. **The separate head-wise gate.** `blk.45.attn_gate.weight [n_embd, 96]` produces one
3984    ///    sigmoid scalar per head (broadcast over head_dim) — `attn_head_gate`, not the qwen35
3985    ///    fused-into-wq `q_gate_split` form the dc arm handles.
3986    ///
3987    /// WHY EAGER-ONLY IS NOT A GAP TODAY: `mtp_head_forward_cap` refuses step35 heads
3988    /// explicitly (the SWA-window refusal below), so the graph draft never engages for step35
3989    /// models regardless of eligibility — the eager chain IS the served path. `mtp_head_forward_cap` refuses step35 explicitly rather
3990    /// than silently capturing a window-less (wrong past `win` draft rows) graph.
3991    ///
3992    /// Unlike the dc arm this advances BOTH the host `kv.len` and the device counter, so the
3993    /// caller must not mirror.
3994    fn mtp_step35_attn(
3995        &self,
3996        e: &Engine,
3997        fa: &FullAttnLayer,
3998        g: &crate::hybrid::Step35MtpGeom,
3999        h: &CudaSlice<f32>,
4000        pos_d: &CudaSlice<i32>,
4001        scratch: &mut MtpScratch,
4002        scratch_index: usize,
4003    ) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
4004        let (nh, nkv, hd) = (g.n_head, g.n_head_kv, self.cfg.head_dim_k as usize);
4005        let eps = self.cfg.rms_eps;
4006        let scale = 1.0 / (hd as f32).sqrt(); // step35.cpp:255 kq_scale
4007        let n_embd = self.cfg.n_embd as usize;
4008        let gw = fa
4009            .attn_gate
4010            .as_ref()
4011            .ok_or("step35 MTP block is missing attn_gate.weight (head-wise attention gate)")?;
4012
4013        let (q0, k0, v0, gt) = if e.uses_q8_1_fast(&fa.wq)
4014            && e.uses_q8_1_fast(&fa.wk)
4015            && e.uses_q8_1_fast(&fa.wv)
4016            && e.uses_q8_1_fast(gw)
4017        {
4018            let (hq, hdq) = e.quantize_q8_1(h, 1, n_embd)?;
4019            let (a, b, c) = match e.matmul_q8_fused3(&fa.wq, &fa.wk, &fa.wv, &hq, &hdq)? {
4020                Some(t3) => t3,
4021                None => (
4022                    e.matmul_pre(&fa.wq, &hq, &hdq, h, 1)?,
4023                    e.matmul_pre(&fa.wk, &hq, &hdq, h, 1)?,
4024                    e.matmul_pre(&fa.wv, &hq, &hdq, h, 1)?,
4025                ),
4026            };
4027            (a, b, c, e.matmul_pre(gw, &hq, &hdq, h, 1)?)
4028        } else {
4029            (
4030                e.matmul(&fa.wq, h, 1)?,
4031                e.matmul(&fa.wk, h, 1)?,
4032                e.matmul(&fa.wv, h, 1)?,
4033                e.matmul(gw, h, 1)?,
4034            )
4035        };
4036
4037        let mut q = e.uninit(nh * hd)?;
4038        e.rms_norm(&q0, fa.q_norm.float_data(), &mut q, hd, nh, eps)?;
4039        let mut k = e.uninit(nkv * hd)?;
4040        e.rms_norm(&k0, fa.k_norm.float_data(), &mut k, hd, nkv, eps)?;
4041        // `rope_freqs.weight` (llama3 factors) applies to the FULL-attn layers ONLY; SWA passes
4042        // null (llama-hparams / step35.cpp). Block 45 is SWA, so `ff` is None there — but read
4043        // the resolved flag, not the constant, so an all-full sibling stays correct.
4044        let ff = if g.swa {
4045            None
4046        } else {
4047            self.step35_aux.as_ref().and_then(|a| a.rope_freqs(e))
4048        };
4049        #[cfg(debug_assertions)]
4050        if let Some(ff) = ff {
4051            crate::debug_assert_tensor_stream_device(ff, &e.stream(), "mtp_step35_attn.rope_freqs");
4052        }
4053        e.rope_neox2(
4054            &mut q,
4055            &mut k,
4056            pos_d,
4057            hd,
4058            g.n_rot,
4059            nh,
4060            nkv,
4061            1,
4062            g.rope_base,
4063            1.0,
4064            ff,
4065        )?;
4066
4067        // Append at the HOST slot, then re-stamp the device counter: the eager chain has the
4068        // length on the host anyway, and the windowed view below needs it there to compute the
4069        // offset. The device counter is kept in lockstep so `mtp_kv_fill`'s `set_i32_one` and any
4070        // dc-family consumer of this scratch still agree.
4071        let (kv, scratch_cap) = scratch.plane_mut(scratch_index);
4072        assert!(
4073            kv.len < scratch_cap,
4074            "step35 MTP scratch overflow ({} >= {})",
4075            kv.len,
4076            scratch_cap
4077        );
4078        let next_len = kv.len + 1;
4079        let (off, t_kv) = if g.swa && next_len > g.window {
4080            (next_len - g.window, g.window)
4081        } else {
4082            (0, next_len)
4083        };
4084        let write_row = e.prepare_kv_append(kv, off & !31usize, 1)?;
4085        e.append_kv_quantized(
4086            &k,
4087            &v0,
4088            &mut kv.k,
4089            &mut kv.v,
4090            write_row,
4091            kv.kv_dim_k,
4092            kv.kv_dim_v,
4093            kv.k_tok_bytes,
4094            kv.v_tok_bytes,
4095            false,
4096        )?;
4097        kv.len = next_len;
4098        e.set_i32_one(&mut kv.len_d, kv.len as i32)?;
4099        // SWA view offset (see note 1). The draft chain is short (k+2 rows), but the scratch is
4100        // PERSISTENT across rounds — `mtp_kv_fill` leaves one row per committed token behind, so
4101        // `kv.len` tracks absolute position and crosses 512 in any real generation. The window is
4102        // therefore live, not theoretical.
4103        let physical = kv.physical_rows(off, off + t_kv)?;
4104        let k_view = e.view_u8_range(
4105            &kv.k,
4106            physical.start * kv.k_tok_bytes,
4107            physical.end * kv.k_tok_bytes,
4108        );
4109        let v_view = e.view_u8_range(
4110            &kv.v,
4111            physical.start * kv.v_tok_bytes,
4112            physical.end * kv.v_tok_bytes,
4113        );
4114        let mut attn = e.uninit(nh * hd)?;
4115        e.fa_decode_kvmod(
4116            &q,
4117            &k_view,
4118            &v_view,
4119            &mut attn,
4120            hd,
4121            nh,
4122            nkv,
4123            t_kv,
4124            scale,
4125            kv.k_tok_bytes,
4126            kv.v_tok_bytes,
4127            false,
4128        )?;
4129
4130        let mut ag = e.uninit(nh * hd)?;
4131        e.attn_head_gate(&attn, &gt, &mut ag, None, hd, nh, 1)?;
4132        Ok(e.matmul(&fa.wo, &ag, 1)?)
4133    }
4134
4135    /// MTP-block full attention, T=1, on the scratch KV (BOTH draft paths — eager and graph):
4136    /// the scratch write slot and the attention bound come from `scratch.kv.len_d` (device i32[1])
4137    /// so the launch args are FIXED across draft steps — ONE captured graph serves the whole
4138    /// chain, and replays keep seeing KV growth through the device counter (no recapture).
4139    /// Geometry contract: n_splits is sized from `scratch.cap` (the persistent capacity); splits
4140    /// whose key range lies beyond the device t_kv exit empty and the shared combine skips them
4141    /// (fa_decode_dc bit-correct-for-any-t_kv<=bucket_max contract). The eager path uses the SAME
4142    /// launcher with the SAME bucket_max -> identical dispatch -> bit-identical draft tokens (the
4143    /// graph-vs-eager parity gate). Host len is NOT advanced here (graph contract); callers mirror.
4144    fn mtp_full_attn_dc(
4145        &self,
4146        e: &Engine,
4147        fa: &FullAttnLayer,
4148        h: &CudaSlice<f32>,
4149        pos_d: &CudaSlice<i32>,
4150        scratch: &mut MtpScratch,
4151        scratch_index: usize,
4152        geom: Option<&crate::hybrid::DraftGeom>,
4153    ) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
4154        let cfg = &self.cfg;
4155        let mtp_il = cfg.n_layer.saturating_sub(cfg.nextn_predict_layers);
4156        let geometry = cfg.full_attention_geometry_at(mtp_il);
4157        let n_head = geom.map(|g| g.n_head).unwrap_or(geometry.n_head as usize);
4158        let n_head_kv = geom
4159            .map(|g| g.n_head_kv)
4160            .unwrap_or(geometry.n_head_kv as usize);
4161        let head_dim = geometry.head_dim_k as usize;
4162        let eps = cfg.rms_eps;
4163        let scale = geometry.attention_scale();
4164        let n_embd = geom.map(|g| g.d_inner).unwrap_or(cfg.n_embd as usize);
4165        let bucket_max = scratch.plane(scratch_index).1;
4166
4167        let (qf, mut k, v) =
4168            if e.uses_q8_1_fast(&fa.wq) && e.uses_q8_1_fast(&fa.wk) && e.uses_q8_1_fast(&fa.wv) {
4169                let (hq, hd) = e.quantize_q8_1(h, 1, n_embd)?;
4170                (
4171                    e.matmul_pre(&fa.wq, &hq, &hd, h, 1)?,
4172                    e.matmul_pre(&fa.wk, &hq, &hd, h, 1)?,
4173                    e.matmul_pre(&fa.wv, &hq, &hd, h, 1)?,
4174                )
4175            } else {
4176                (
4177                    e.matmul(&fa.wq, h, 1)?,
4178                    e.matmul(&fa.wk, h, 1)?,
4179                    e.matmul(&fa.wv, h, 1)?,
4180                )
4181            };
4182        // M3/Hy3 have no attention output gate — wq out is exactly q; skip the split.
4183        let gated = geometry.attention_gate == memra_gguf::config::AttentionGateKind::FusedQ;
4184        let (mut q, gate) = if gated {
4185            let mut q = e.zeros(n_head * head_dim)?;
4186            let mut gate = e.zeros(n_head * head_dim)?;
4187            e.q_gate_split(&qf, &mut q, &mut gate, head_dim, n_head, 1)?;
4188            (q, Some(gate))
4189        } else {
4190            (qf, None)
4191        };
4192
4193        let mut qn = e.zeros(n_head * head_dim)?;
4194        e.rms_norm(&q, fa.q_norm.float_data(), &mut qn, head_dim, n_head, eps)?;
4195        q = qn;
4196        let mut kn = e.zeros(n_head_kv * head_dim)?;
4197        e.rms_norm(
4198            &k,
4199            fa.k_norm.float_data(),
4200            &mut kn,
4201            head_dim,
4202            n_head_kv,
4203            eps,
4204        )?;
4205        k = kn;
4206        let rope_dims = geometry.n_rot as usize;
4207        e.rope_neox(
4208            &mut q,
4209            pos_d,
4210            head_dim,
4211            rope_dims,
4212            n_head,
4213            1,
4214            geometry.rope_base,
4215            1.0,
4216        )?;
4217        e.rope_neox(
4218            &mut k,
4219            pos_d,
4220            head_dim,
4221            rope_dims,
4222            n_head_kv,
4223            1,
4224            geometry.rope_base,
4225            1.0,
4226        )?;
4227
4228        let kv = scratch.plane_mut(scratch_index).0;
4229        // append at the DEVICE slot (kv.len_d == old len), then advance the counter in-graph.
4230        e.append_kv_quantized_dc(
4231            &k,
4232            &v,
4233            &mut kv.k,
4234            &mut kv.v,
4235            &kv.len_d,
4236            kv.kv_dim_k,
4237            kv.kv_dim_v,
4238            kv.k_tok_bytes,
4239            kv.v_tok_bytes,
4240            false,
4241        )?;
4242        e.inc_seqlen(&mut kv.len_d)?;
4243        // full-buffer views (any in-round t_kv stays in range on replay); the kernel bounds the
4244        // key range from the device counter.
4245        let k_view = e.view_u8(&kv.k, kv.k.len());
4246        let v_view = e.view_u8(&kv.v, kv.v.len());
4247        let (ktb, vtb) = (kv.k_tok_bytes, kv.v_tok_bytes);
4248        let mut attn = e.zeros(n_head * head_dim)?;
4249        e.fa_decode_dc(
4250            &q, &k_view, &v_view, &mut attn, head_dim, n_head, n_head_kv, &kv.len_d, bucket_max,
4251            scale, ktb, vtb, false,
4252        )?;
4253
4254        let attn_g = match &gate {
4255            Some(gate) => {
4256                let mut gsig = e.zeros(n_head * head_dim)?;
4257                e.sigmoid(gate, &mut gsig, n_head * head_dim)?;
4258                let mut ag = e.zeros(n_head * head_dim)?;
4259                e.mul(&attn, &gsig, &mut ag, n_head * head_dim)?;
4260                ag
4261            }
4262            None => attn,
4263        };
4264        Ok(e.matmul(&fa.wo, &attn_g, 1)?)
4265    }
4266
4267    /// PERSISTENT-DRAFT-KV fill (the reference engine's "mtp_update" analogue): compute the MTP
4268    /// block's K/V for `tokens` (committed tokens at positions pos0..pos0+T) from their EXACT
4269    /// trunk hiddens `h` ([T, n_embd] token-major, pre-output_norm) and append at slots pos0.. of
4270    /// the scratch KV. K/V-ONLY — ops A/1-5 plus the K-side of op 6 (wk/wv + k_norm + rope +
4271    /// quantized append); no wq/attention/FFN/lm_head, so per-token cost ~= eh_proj + wk/wv (a
4272    /// small fraction of one trunk layer), T-batched. Rope follows the chain convention
4273    /// rope(token@p) = p+1. Runs at round boundaries OUTSIDE the captured graph in BOTH draft
4274    /// modes -> draft parity by construction. Caller must have scratch.kv.len == pos0.
4275    #[allow(clippy::too_many_arguments)]
4276    fn mtp_kv_fill_at(
4277        &self,
4278        e: &Engine,
4279        mtp: &MtpHead,
4280        tokens: &[u32],
4281        h: &CudaSlice<f32>,
4282        pos0: usize,
4283        scratch: &mut MtpScratch,
4284        scratch_index: usize,
4285        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
4286    ) -> Result<(), Box<dyn std::error::Error>> {
4287        let cfg = &self.cfg;
4288        let n_embd = cfg.n_embd as usize;
4289        let eps = cfg.rms_eps;
4290        let t = tokens.len();
4291        let (scratch_kv, scratch_cap) = scratch.plane(scratch_index);
4292        assert_eq!(scratch_kv.len, pos0, "mtp_kv_fill: append slot mismatch");
4293        assert!(pos0 + t <= scratch_cap, "mtp_kv_fill: scratch overflow");
4294        let Mixer::Full(fa) = &mtp.mixer else {
4295            panic!("MTP block is full-attn in qwen35; linear MTP not supported")
4296        };
4297        let pos_vec: Vec<i32> = (0..t).map(|i| (pos0 + i + 1) as i32).collect();
4298        let pos_d = e.htod_i32(&pos_vec)?;
4299
4300        // ops A/1/2: embed + the two input norms, T-wide.
4301        let e_emb = match embd_dev {
4302            Some((g, qt, rb)) => e.embed_gather_device_t(g, tokens, n_embd, qt, rb)?,
4303            None => e.htod(&self.embd.gather(n_embd, tokens))?,
4304        };
4305        let mut e_norm = e.zeros(t * n_embd)?;
4306        e.rms_norm(&e_emb, mtp.enorm.float_data(), &mut e_norm, n_embd, t, eps)?;
4307        let mut h_norm = e.zeros(t * n_embd)?;
4308        e.rms_norm(h, mtp.hnorm.float_data(), &mut h_norm, n_embd, t, eps)?;
4309
4310        // op 3: per-row [e_norm ; h_norm] concat, token-major [T, 2*n_embd].
4311        let mut concat = e.zeros(t * 2 * n_embd)?;
4312        for i in 0..t {
4313            e.copy_view_into(
4314                &mut concat,
4315                i * 2 * n_embd,
4316                &e_norm.slice(i * n_embd..(i + 1) * n_embd),
4317                n_embd,
4318            )?;
4319            e.copy_view_into(
4320                &mut concat,
4321                i * 2 * n_embd + n_embd,
4322                &h_norm.slice(i * n_embd..(i + 1) * n_embd),
4323                n_embd,
4324            )?;
4325        }
4326
4327        // ops 4/5: eh_proj + attn_norm, T-wide (at the student inner width when geom is set).
4328        let di = mtp.geom.as_ref().map(|g| g.d_inner).unwrap_or(n_embd);
4329        let inp_sa = e.matmul(&mtp.eh_proj, &concat, t)?;
4330        let mut a_norm = e.zeros(t * di)?;
4331        e.rms_norm(&inp_sa, mtp.attn_norm.float_data(), &mut a_norm, di, t, eps)?;
4332
4333        // op 6 (K/V half): wk/wv + k_norm + rope + per-row quantized append. No wq/attention —
4334        // the fill only has to leave correct K/V rows behind for later chains to attend over.
4335        let n_head_kv = mtp
4336            .geom
4337            .as_ref()
4338            .map(|g| g.n_head_kv)
4339            .or(mtp.step35.as_ref().map(|s| s.n_head_kv))
4340            .unwrap_or_else(|| {
4341                let mtp_il = cfg.n_layer.saturating_sub(cfg.nextn_predict_layers);
4342                cfg.full_attention_geometry_at(mtp_il).n_head_kv as usize
4343            });
4344        let mtp_il = cfg.n_layer.saturating_sub(cfg.nextn_predict_layers);
4345        let geometry = cfg.full_attention_geometry_at(mtp_il);
4346        let head_dim = geometry.head_dim_k as usize;
4347        let mut k = e.matmul(&fa.wk, &a_norm, t)?;
4348        let v = e.matmul(&fa.wv, &a_norm, t)?;
4349        let mut kn = e.zeros(t * n_head_kv * head_dim)?;
4350        e.rms_norm(
4351            &k,
4352            fa.k_norm.float_data(),
4353            &mut kn,
4354            head_dim,
4355            n_head_kv * t,
4356            eps,
4357        )?;
4358        k = kn;
4359        // step35: rotary width AND base are per-layer, and the MTP block's values come from the
4360        // resolved `Step35MtpGeom` — NOT from `cfg.rope_dim_count`/`cfg.rope_freq_base`, which
4361        // carry the arch defaults (128 / 5e6, i.e. the FULL-attn layers' base). Getting this wrong
4362        // writes K rows the attention arm then re-derives at a different theta: correct-looking
4363        // output with dead acceptance, invisible to the exactness gates.
4364        let (rope_dims, rope_base, ff) = match mtp.step35.as_ref() {
4365            Some(s) => (
4366                s.n_rot,
4367                s.rope_base,
4368                if s.swa {
4369                    None
4370                } else {
4371                    self.step35_aux.as_ref().and_then(|a| a.rope_freqs(e))
4372                },
4373            ),
4374            None => (geometry.n_rot as usize, geometry.rope_base, None),
4375        };
4376        #[cfg(debug_assertions)]
4377        if let Some(ff) = ff {
4378            crate::debug_assert_tensor_stream_device(ff, &e.stream(), "mtp_kv_fill.rope_freqs");
4379        }
4380        match ff {
4381            Some(f) => e.rope_neox_ff(
4382                &mut k, &pos_d, head_dim, rope_dims, n_head_kv, t, rope_base, 1.0, f,
4383            )?,
4384            None => e.rope_neox(
4385                &mut k, &pos_d, head_dim, rope_dims, n_head_kv, t, rope_base, 1.0,
4386            )?,
4387        }
4388
4389        let kv = scratch.plane_mut(scratch_index).0;
4390        // Match the trunk prime contract: a chunk may need the aligned window immediately before
4391        // its first row, so preserve that prefix when the physical tail rebases at wrap.
4392        let retain_from = kv
4393            .ring
4394            .as_ref()
4395            .map(|ring| pos0.saturating_sub(ring.window() - 1) & !31usize)
4396            .unwrap_or(0);
4397        let write_row = e.prepare_kv_append(kv, retain_from, t)?;
4398        for i in 0..t {
4399            let k_row = k.slice(i * kv.kv_dim_k..(i + 1) * kv.kv_dim_k);
4400            let v_row = v.slice(i * kv.kv_dim_v..(i + 1) * kv.kv_dim_v);
4401            e.append_kv_quantized_view(
4402                &k_row,
4403                &v_row,
4404                &mut kv.k,
4405                &mut kv.v,
4406                write_row + i,
4407                kv.kv_dim_k,
4408                kv.kv_dim_v,
4409                kv.k_tok_bytes,
4410                kv.v_tok_bytes,
4411                false,
4412            )?;
4413        }
4414        kv.len = pos0 + t;
4415        e.set_i32_one(&mut kv.len_d, kv.len as i32)?;
4416        Ok(())
4417    }
4418
4419    #[allow(clippy::too_many_arguments)]
4420    fn mtp_kv_fill_all(
4421        &self,
4422        e: &Engine,
4423        tokens: &[u32],
4424        h: &CudaSlice<f32>,
4425        pos0: usize,
4426        scratch: &mut MtpScratch,
4427        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
4428    ) -> Result<(), Box<dyn std::error::Error>> {
4429        debug_assert_eq!(self.mtp_head_count(), scratch.plane_count());
4430        for index in 0..self.mtp_head_count() {
4431            self.mtp_kv_fill_at(
4432                e,
4433                self.mtp_head_at(index),
4434                tokens,
4435                h,
4436                pos0,
4437                scratch,
4438                index,
4439                embd_dev,
4440            )?;
4441        }
4442        Ok(())
4443    }
4444
4445    /// CAPTURE body for the GRAPH DRAFT (stage 2 of graph-grade spec): ONE MTP head forward with
4446    /// every varying input device-resident —
4447    ///   - token id from the persistent `tok_d` (the previous replay's in-graph argmax wrote it,
4448    ///     so the chain feeds itself; the host reads the same 4 bytes for the draft list),
4449    ///   - h_seed from the persistent `h_seed_d` (h_nextn is copied BACK into it at the end),
4450    ///   - rope pos from the persistent `pos_d` counter (inc'd in-graph),
4451    ///   - scratch KV slot/bound from `scratch.kv.len_d` (see mtp_full_attn_dc).
4452    /// The p-min confidence lands in the persistent `p_d` iff `with_prob` (env is fixed per run).
4453    /// Same kernels, same dispatch as the eager mtp_head_forward_dev chain -> same draft tokens
4454    /// (exactness never depends on drafts — the verify arbitrates — but acceptance parity does).
4455    /// `with_head=false` captures the HEAD-LESS twin for the pseudo-seed replay (2026-07-03):
4456    /// the pseudo pass only needs h_nextn (op 10) + the scratch append — the lm_head read
4457    /// (~1.06ms q6_K on the 9B), argmax and prob are dead weight there. h_nextn's inputs are
4458    /// untouched, so the seed value is identical; round-start resets overwrite tok_d/p_d anyway.
4459    /// `sampled_cap` = Some((ctr_d, perturb_d, q_out_d, seed, temp)) captures the SAMPLED twin
4460    /// (step 3 of the sampled-spec arc): head logits are retained in the persistent `q_out_d`
4461    /// (host D2Ds them to the round's q slot after each replay), the DEVICE event counter is
4462    /// bumped in-graph, and the argmax reads GUMBEL-PERTURBED logits — one categorical draw per
4463    /// replay, bit-identical to the eager arm's gumbel_perturb at the same (seed, sctr, temp).
4464    /// seed/temp are capture-time constants (fixed per generate call, like p_min).
4465    #[allow(clippy::too_many_arguments)]
4466    fn mtp_head_forward_cap(
4467        &self,
4468        e: &Engine,
4469        mtp: &MtpHead,
4470        tok_d: &mut CudaSlice<u32>,
4471        pos_d: &mut CudaSlice<i32>,
4472        h_seed_d: &mut CudaSlice<f32>,
4473        p_d: &mut CudaSlice<f32>,
4474        scratch: &mut MtpScratch,
4475        with_prob: bool,
4476        with_head: bool,
4477        embd_gpu: &CudaSlice<u8>,
4478        embd_qt: i32,
4479        embd_rb: usize,
4480        d_vocab: usize,
4481        sampled_cap: Option<(
4482            &mut CudaSlice<u32>,
4483            &mut CudaSlice<f32>,
4484            &mut CudaSlice<f32>,
4485            u64,
4486            f32,
4487        )>,
4488        stream_pack: Option<(&mut CudaSlice<u32>, usize, Option<&CudaSlice<u32>>)>,
4489        // DRAFT-SIDE GRAMMAR MASK (lane/draft-mask): (packed draft-vocab allowed-set buffer,
4490        // word count). Captured as ONE mask_logits_f32 node between the head matmul and the
4491        // in-graph argmax; the buffer address is baked, its CONTENTS are re-uploaded by the
4492        // host before every replay (the decode.rs graph-mask pattern). All-ones contents = a
4493        // no-op ban, so a position the grammar cannot constrain costs one pass over the row.
4494        mask_cap: Option<(&CudaSlice<u32>, usize)>,
4495    ) -> Result<(), Box<dyn std::error::Error>> {
4496        let cfg = &self.cfg;
4497        let n_embd = cfg.n_embd as usize;
4498        // step35 REFUSAL (deliberate, named): the graph body's attention is `mtp_full_attn_dc`,
4499        // whose device-counter key bound always starts at row 0 — it cannot express this block's
4500        // SWA view offset, so a captured chain would silently attend OUTSIDE the window once the
4501        // persistent scratch passes 512 rows. Nothing is lost today: `mtp_head_forward_cap`
4502        // refuses step35 heads explicitly (SWA refusal), so the eager chain
4503        // (`mtp_head_forward_dev` -> `mtp_step35_attn`) is the served path. Returning Err (not a
4504        // panic) is what the two capture sites and the round-stream capture already handle by
4505        // degrading to eager / stream-off.
4506        if mtp.step35.is_some() {
4507            return Err(
4508                "step35 has no captured draft chain (fa_decode_dc cannot express the MTP \
4509                        block's SWA view offset; same root cause as the dc decode refusal) — the \
4510                        eager draft chain serves this arch"
4511                    .into(),
4512            );
4513        }
4514        // student inner width (see mtp_head_forward_dev) — interface dims stay n_embd.
4515        let di = mtp.geom.as_ref().map(|g| g.d_inner).unwrap_or(n_embd);
4516        let eps = cfg.rms_eps;
4517        let e_emb = e.embed_gather_device(embd_gpu, tok_d, n_embd, embd_qt, embd_rb)?;
4518        let mut e_norm = e.zeros(n_embd)?;
4519        e.rms_norm(&e_emb, mtp.enorm.float_data(), &mut e_norm, n_embd, 1, eps)?;
4520        let mut h_norm = e.zeros(n_embd)?;
4521        e.rms_norm(
4522            &*h_seed_d,
4523            mtp.hnorm.float_data(),
4524            &mut h_norm,
4525            n_embd,
4526            1,
4527            eps,
4528        )?;
4529        let mut concat = e.zeros(2 * n_embd)?;
4530        e.copy_into(&mut concat, 0, &e_norm, n_embd)?;
4531        e.copy_into(&mut concat, n_embd, &h_norm, n_embd)?;
4532        let inp_sa = e.matmul(&mtp.eh_proj, &concat, 1)?;
4533        let mut a_norm = e.zeros(di)?;
4534        e.rms_norm(&inp_sa, mtp.attn_norm.float_data(), &mut a_norm, di, 1, eps)?;
4535        let attn_out = match &mtp.mixer {
4536            Mixer::Full(fa) => {
4537                self.mtp_full_attn_dc(e, fa, &a_norm, pos_d, scratch, 0, mtp.geom.as_ref())?
4538            }
4539            Mixer::Linear(_) => {
4540                panic!("MTP block is full-attn in qwen35; linear MTP not supported")
4541            }
4542            Mixer::Mla(_) => crate::hybrid::mla_forward_unimplemented(),
4543        };
4544        let mut x1 = e.zeros(di)?;
4545        e.add(&inp_sa, &attn_out, &mut x1, di)?;
4546        let mut z = e.zeros(di)?;
4547        e.rms_norm(&x1, mtp.post_attn_norm.float_data(), &mut z, di, 1, eps)?;
4548        let ffn_out = match &mtp.ffn {
4549            crate::hybrid::Ffn::Dense {
4550                ffn_gate,
4551                ffn_up,
4552                ffn_down,
4553            } => {
4554                let n_ff = ffn_gate.out_features();
4555                let (gate, up) = if e.uses_q8_1_fast(ffn_gate) && e.uses_q8_1_fast(ffn_up) {
4556                    let (zq, zd) = e.quantize_q8_1(&z, 1, di)?;
4557                    (
4558                        e.matmul_pre(ffn_gate, &zq, &zd, &z, 1)?,
4559                        e.matmul_pre(ffn_up, &zq, &zd, &z, 1)?,
4560                    )
4561                } else {
4562                    (e.matmul(ffn_gate, &z, 1)?, e.matmul(ffn_up, &z, 1)?)
4563                };
4564                let mut act = e.zeros(n_ff)?;
4565                Self::ffn_act(e, &self.cfg, &gate, &up, &mut act, n_ff)?;
4566                e.matmul(ffn_down, &act, 1)?
4567            }
4568            // ROUND-STREAM: the 35B NextN block carries a MoE FFN. With RESIDENT experts the
4569            // dev path is pure device launches (device top-k + rows kernels, ZERO-DtoH by
4570            // design) — capture-legal. Non-resident (SLRU-lock) stays rejected: the capture
4571            // error arm degrades the caller to eager/stream-off.
4572            crate::hybrid::Ffn::Moe(m) if m.dev_exps.is_some() => {
4573                self.moe_ffn_il(e, m, &z, 1, u16::MAX)?
4574            }
4575            crate::hybrid::Ffn::Moe(_) => {
4576                return Err("graph draft requires a Dense (or resident-MoE) MTP FFN".into());
4577            }
4578        };
4579        let mut h_inner = e.zeros(di)?;
4580        e.add(&x1, &ffn_out, &mut h_inner, di)?;
4581        // student: up-project back to n_embd (carrier + head input; see mtp_head_forward_dev).
4582        let h_nextn = match mtp.geom.as_ref() {
4583            Some(g) => e.matmul(&g.out_up, &h_inner, 1)?,
4584            None => h_inner,
4585        };
4586        // MEMRA_SPEC_HPOST needs final_h even head-less (it IS the next seed under that convention).
4587        let final_h = if with_head || spec_hpost() {
4588            let final_norm = mtp.shared_head_norm.as_ref().unwrap_or(&self.output_norm);
4589            let mut fh = e.zeros(n_embd)?;
4590            e.rms_norm(&h_nextn, final_norm.float_data(), &mut fh, n_embd, 1, eps)?;
4591            Some(fh)
4592        } else {
4593            None
4594        };
4595        if with_head {
4596            let head = mtp.shared_head_head.as_ref().unwrap_or(&self.output);
4597            let mut logits = e.matmul(head, final_h.as_ref().unwrap(), 1)?;
4598            // DRAFT-SIDE GRAMMAR MASK: ban the grammar-illegal draft ids IN the captured chain,
4599            // before the argmax — proposals become legal by construction. Contents-only
4600            // per-replay upload keeps the capture valid.
4601            if let Some((mask_d, mw)) = mask_cap {
4602                e.mask_logits_col(&mut logits, mask_d, 0, d_vocab, mw)?;
4603            }
4604            if let Some((ctr_d, perturb_d, q_out_d, seed, temp)) = sampled_cap {
4605                // SAMPLED chain: retain q (raw head logits -> persistent q_out_d; the matmul's
4606                // own buffer is pool-recycled after the capture body returns, so it can't be the
4607                // retention target), bump the device event counter, gumbel-perturb reading it,
4608                // and argmax the PERTURBED logits into tok_d — the in-graph categorical draw.
4609                e.copy_into(q_out_d, 0, &logits, d_vocab)?;
4610                e.sctr_inc(ctr_d)?;
4611                e.gumbel_perturb_ctr(&logits, perturb_d, d_vocab, seed, ctr_d, temp)?;
4612                e.argmax_token_device_into(perturb_d, tok_d, d_vocab)?;
4613                // p-min prob = the head's RAW softmax confidence in the SAMPLED pick — same
4614                // semantics as the eager sampled arm's prob_of_token_device(dl_d, tok_d).
4615                if with_prob {
4616                    e.prob_of_token_device_into(&logits, tok_d, p_d, d_vocab)?;
4617                }
4618            } else {
4619                // draft token -> persistent tok_d (next replay's embed reads it; host reads the 4 bytes).
4620                e.argmax_token_device_into(&logits, tok_d, d_vocab)?;
4621                // p-min under a draft mask reads the MASKED row: confidence relative to the
4622                // grammar-LEGAL alternatives (illegal ids leave the softmax denominator), which
4623                // is the right semantics for "does the drafter know what comes next here" and
4624                // the same row the pick came from. Draft-quality only — verify arbitrates.
4625                if with_prob {
4626                    e.prob_of_token_device_into(&logits, tok_d, p_d, d_vocab)?;
4627                }
4628            }
4629        }
4630        // ROUND-STREAM K-chain: pack (tok, p) into slot j, then remap tok through d2t so the
4631        // NEXT chained body's embed reads the TARGET id — zero host involvement per step.
4632        if let Some((out, slot, d2t)) = stream_pack {
4633            e.pack_tok_p(tok_d, p_d, out, slot)?;
4634            if let Some(map) = d2t {
4635                e.tok_map_u32(tok_d, map)?;
4636            }
4637        }
4638        // Next draft step's h_seed: pre-norm h_nextn (default) or post-norm final_h (HPOST).
4639        if spec_hpost() {
4640            e.copy_into(h_seed_d, 0, final_h.as_ref().unwrap(), n_embd)?;
4641        } else {
4642            e.copy_into(h_seed_d, 0, &h_nextn, n_embd)?;
4643        }
4644        // advance the draft rope position in-graph.
4645        e.inc_seqlen(pos_d)?;
4646        Ok(())
4647    }
4648
4649    /// Batched target verify forward over `tokens` at positions `pos0..pos0+T` (§D.3, T=K+1).
4650    /// Returns ALL T logit columns (host f32, [T*n_vocab]); appends T cols to every full-attn KV
4651    /// and advances every linear-attn recur state by T steps (the recur steps are SEQUENTIAL T=1).
4652    /// Advances `cache.pos` by T.
4653    pub fn decode_step_t(
4654        &self,
4655        e: &Engine,
4656        tokens: &[u32],
4657        pos0: usize,
4658        cache: &mut Cache,
4659    ) -> Result<Vec<f32>, Box<dyn std::error::Error>> {
4660        if self.is_gemma4_e4b() {
4661            return Ok(self.gemma4_e4b_decode_step_t_h(e, tokens, pos0, cache)?.0);
4662        }
4663        if self.gemma_batch_program() {
4664            return self.gemma4_decode_step_t(e, tokens, pos0, cache);
4665        }
4666        Ok(self.decode_step_t_h(e, tokens, pos0, cache)?.0)
4667    }
4668
4669    /// Like `decode_step_t` but ALSO returns the LAST column's pre-output_norm hidden (h_seed for
4670    /// the next draft round). This lets partial-accept replay run as ONE batched T=(n_acc+1) forward
4671    /// (single weight read) instead of n_acc+1 separate T=1 decode_steps (n_acc+1 weight reads).
4672    /// At batch=1 decode is bandwidth-bound, so batching the replay is THE MTP profitability lever.
4673    pub fn decode_step_t_h(
4674        &self,
4675        e: &Engine,
4676        tokens: &[u32],
4677        pos0: usize,
4678        cache: &mut Cache,
4679    ) -> Result<(Vec<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
4680        self.decode_step_t_h_emb(e, tokens, pos0, cache, None)
4681    }
4682
4683    /// Like `decode_step_t_h` with an optional RESIDENT embed table (spec hot loop): device
4684    /// gather instead of host dequant + [T, n_embd] f32 htod. Bit-identical rows.
4685    pub fn decode_step_t_h_emb(
4686        &self,
4687        e: &Engine,
4688        tokens: &[u32],
4689        pos0: usize,
4690        cache: &mut Cache,
4691        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
4692    ) -> Result<(Vec<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
4693        let (logits_d, h_seed) = self.decode_step_t_h_emb_dev(e, tokens, pos0, cache, embd_dev)?;
4694        Ok((e.dtoh(&logits_d)?, h_seed))
4695    }
4696
4697    /// DEVICE-LOGITS verify forward (spec device-argmax lever): identical kernel chain to
4698    /// `decode_step_t_h_emb` but returns the [T, n_vocab] logits ON DEVICE — the accept walk
4699    /// argmaxes each column on-device and reads back ONE [T] u32 instead of dtoh'ing the full
4700    /// T x n_vocab f32 block (~1-4 MB + T host argmaxes, every round). Kernel dispatch is
4701    /// UNCHANGED (same decode-exact kernels); only the post-logits transfer moves.
4702    pub fn decode_step_t_h_emb_dev(
4703        &self,
4704        e: &Engine,
4705        tokens: &[u32],
4706        pos0: usize,
4707        cache: &mut Cache,
4708        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
4709    ) -> Result<(CudaSlice<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
4710        let n_embd = self.cfg.n_embd as usize;
4711        let t = tokens.len();
4712        let (logits, x) = self.decode_step_t_core(e, tokens, pos0, cache, embd_dev, None)?;
4713        // h_seed for the next round = LAST column's pre-output_norm hidden ([n_embd]).
4714        let mut hs = vbuf(e, n_embd)?; // fully written by copy_view_into below
4715        e.copy_view_into(&mut hs, 0, &x.slice((t - 1) * n_embd..t * n_embd), n_embd)?;
4716        Ok((logits, hs))
4717    }
4718
4719    /// CORE verify forward: the `decode_step_t_h_emb_dev` kernel chain, returning the FULL
4720    /// pre-output_norm hidden stack x ([T, n_embd], any column extractable) and optionally
4721    /// filling a `VerifyCkpt` (retained per-layer state-rebuild inputs) for the REPLAY-FREE
4722    /// partial accept. `ckpt: None` => byte-for-byte the old behavior (the ckpt writes are pure
4723    /// retains/copies — they never change what any kernel computes).
4724    fn decode_step_t_core(
4725        &self,
4726        e: &Engine,
4727        tokens: &[u32],
4728        pos0: usize,
4729        cache: &mut Cache,
4730        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
4731        mut ckpt: Option<&mut VerifyCkpt>,
4732    ) -> Result<(CudaSlice<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
4733        self.decode_step_t_core_stream(
4734            e,
4735            tokens,
4736            pos0,
4737            cache,
4738            embd_dev,
4739            ckpt.take(),
4740            None,
4741            None,
4742            None,
4743            None,
4744        )
4745    }
4746
4747    /// [`Self::decode_step_t_core`] with the MTP route's verify-graph pool armed
4748    /// (`MEMRA_SPEC_VERIFY_GRAPH`). `graphs: None` reproduces `decode_step_t_core`
4749    /// argument-for-argument, so the eager walk stays the byte-identical fallback.
4750    fn decode_step_t_core_vg(
4751        &self,
4752        e: &Engine,
4753        tokens: &[u32],
4754        pos0: usize,
4755        cache: &mut Cache,
4756        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
4757        mut ckpt: Option<&mut VerifyCkpt>,
4758        graphs: Option<&mut DsparkVerifyGraphs>,
4759    ) -> Result<(CudaSlice<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
4760        self.decode_step_t_core_stream(
4761            e,
4762            tokens,
4763            pos0,
4764            cache,
4765            embd_dev,
4766            ckpt.take(),
4767            None,
4768            None,
4769            None,
4770            graphs,
4771        )
4772    }
4773
4774    /// Increment-0 two-session PP seam: release the peer after this lane's stage-0 boundary TX.
4775    /// The two independent sessions keep their own cache/checkpoint state; only issue order moves.
4776    fn decode_step_t_core_pipelined(
4777        &self,
4778        e: &Engine,
4779        tokens: &[u32],
4780        pos0: usize,
4781        cache: &mut Cache,
4782        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
4783        mut ckpt: Option<&mut VerifyCkpt>,
4784        pipe: &SpecPipeLane,
4785        round: usize,
4786    ) -> Result<(CudaSlice<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
4787        let fence = crate::pp::pp_cuts(self.layers.len())
4788            .ok_or("two-session speculative pipeline requires a PP stage cut")?;
4789        if crate::pp::pp2_streams_off() || !crate::pp::spec_pp_on() {
4790            return Err("two-session speculative pipeline requires the PP verify split".into());
4791        }
4792        let interval_fence = pipe.stage0_begin(round)?;
4793        let ticket = self.verify_stage0_issue(
4794            e,
4795            tokens,
4796            pos0,
4797            cache,
4798            embd_dev,
4799            ckpt.as_deref_mut(),
4800            None,
4801            &fence,
4802            Some(interval_fence),
4803            pipe.trace(round),
4804        )?;
4805        pipe.stage0_end(round);
4806        pipe.stage1_begin(round)?;
4807        let result = self.verify_stage1_finish(e, ticket, cache, ckpt, None, &fence, true)?;
4808        pipe.verify_end(round);
4809        Ok(result)
4810    }
4811
4812    /// ROUND-STREAM stage (c) 4: `stream` = (device verify tokens [t], device pos counter) —
4813    /// when Some, rope positions come from pos_iota over the counter, the embed gathers the
4814    /// device tokens, and full_attn_verify routes appends/FA through the _dc twins reading the
4815    /// SAME counter (every layer's kvl.len == cache.pos, one counter drives all three). The
4816    /// host `tokens`/`pos0` args still size buffers (t is FIXED K+1 in stream mode).
4817    /// `vtok_dev` (engine-bundle slice 2): device verify tokens for the EMBED only —
4818    /// unlike `stream` mode it changes nothing else (host pos iota, host-len KV appends).
4819    /// `tokens` then only sizes buffers (the dummy-slice pattern the round-stream arm uses).
4820    #[allow(clippy::too_many_arguments)]
4821    fn decode_step_t_core_stream(
4822        &self,
4823        e: &Engine,
4824        tokens: &[u32],
4825        pos0: usize,
4826        cache: &mut Cache,
4827        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
4828        mut ckpt: Option<&mut VerifyCkpt>,
4829        stream: Option<(&CudaSlice<u32>, &CudaSlice<i32>)>,
4830        pp_pipe: Option<bool>,
4831        vtok_dev: Option<&CudaSlice<u32>>,
4832        graphs: Option<&mut DsparkVerifyGraphs>,
4833    ) -> Result<(CudaSlice<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
4834        // PP DOOR (lane/pp2-spec 2026-08-06): the verify trunk now takes its OWN stage split,
4835        // exactly as the eager and batched steps do. This is the single funnel every verify
4836        // forward reaches (decode_step_t / _h / _h_emb / _h_emb_dev / _core all land here), so
4837        // wiring it here wires the whole spec surface — the draft/accept/commit machinery above
4838        // is untouched.
4839        //
4840        // History: pp2-hardening (2026-08-06) made this funnel FAIL CLOSED, because its trunk
4841        // walk was unsplit on one stream and a sharded cross-device placement peer-read every
4842        // remote layer's weights on every spec round (measured 13.9-28x on the batched twin).
4843        // The refusal below survives to cover the residue — MEMRA_SPEC_PP=0, MEMRA_PP_STREAMS=0,
4844        // or a placement whose PpNRt fails to build — so a config that would still walk the
4845        // whole trunk on one stream refuses instead of regressing 28x.
4846        if let Some(fence) = crate::pp::pp_cuts(self.layers.len()) {
4847            if !crate::pp::pp2_streams_off() && crate::pp::spec_pp_on() {
4848                if vtok_dev.is_some() {
4849                    return Err(
4850                        "device-token dspark verify (slice-2 deferred readback) has no PP \
4851                         stage-split arm; set MEMRA_DSPARK_DEFER_READBACK=0 or run the dspark \
4852                         route on one device"
4853                            .into(),
4854                    );
4855                }
4856                return self.decode_step_t_core_ppn(
4857                    e,
4858                    tokens,
4859                    pos0,
4860                    cache,
4861                    embd_dev,
4862                    ckpt.take(),
4863                    stream,
4864                    &fence,
4865                    pp_pipe,
4866                );
4867            }
4868        }
4869        crate::pp::refuse_unsplit_if_remote(
4870            "decode_step_t (spec verify)",
4871            "drop MEMRA_SPEC_PP=0 / MEMRA_PP_STREAMS=0 so the verify trunk takes its OWN stage \
4872             split (decode_step_t_core_ppn); or run spec on one device",
4873        )?;
4874        let cfg = &self.cfg;
4875        let n_embd = cfg.n_embd as usize;
4876        let eps = cfg.rms_eps;
4877        let t = tokens.len();
4878        let pos_d = match stream {
4879            Some((_, ctr)) => {
4880                let mut p = e.alloc_uninit::<i32>(t)?;
4881                e.pos_iota(ctr, &mut p, t)?;
4882                p
4883            }
4884            None => {
4885                let pos_vec: Vec<i32> = (0..t).map(|i| (pos0 + i) as i32).collect();
4886                e.htod_i32(&pos_vec)?
4887            }
4888        };
4889
4890        // embed T tokens -> [T, n_embd] token-major (device gather on the spec hot loop)
4891        let x = match (stream, embd_dev) {
4892            (Some((vtok, _)), Some((g, qt, rb))) => {
4893                e.embed_gather_device_td(g, vtok, t, n_embd, qt, rb)?
4894            }
4895            (None, Some((g, qt, rb))) => match vtok_dev {
4896                // slice 2: device verify tokens, same embed_gather_u32_t kernel —
4897                // bit-identical rows to the host-token arm (same per-dtype deq).
4898                Some(vt_d) => e.embed_gather_device_td(g, vt_d, t, n_embd, qt, rb)?,
4899                None => e.embed_gather_device_t(g, tokens, n_embd, qt, rb)?,
4900            },
4901            _ => {
4902                assert!(
4903                    vtok_dev.is_none(),
4904                    "device-token verify requires the resident embed table (embd_dev)"
4905                );
4906                e.htod(&self.embd.gather(n_embd, tokens))?
4907            }
4908        };
4909
4910        // TRUNK WALK: layers [0, n_layers) through the SAME range-scoped subgraph the PP-N
4911        // stage split calls per stage (`verify_layers`) — one code path, so the split cannot
4912        // drift from the unsplit dispatch mirroring. lane/pp2-spec 2026-08-06.
4913        let x = self.verify_layers(
4914            e,
4915            x,
4916            0,
4917            self.layers.len(),
4918            &pos_d,
4919            pos0,
4920            t,
4921            cache,
4922            ckpt.take(),
4923            stream,
4924            graphs,
4925        )?;
4926
4927        let mut hn = vbuf(e, t * n_embd)?;
4928        // Stage-A door: with the serving-class row-outer verify walk, the TAIL must be the
4929        // t=1 decode program per row too (rms_norm t=1 + the single-row bf16 head — the
4930        // split head's concat is receipted bit-identical to it). The batched cuBLASLt head
4931        // is a different ULP class and flips near-tie argmaxes off the greedy tape.
4932        let eager_tail = self.sliding_gated_moe_batch_program()
4933            && std::env::var("MEMRA_SPEC_VERIFY_EAGER").as_deref() == Ok("1");
4934        if eager_tail {
4935            let n_vocab = self.cfg.n_vocab as usize;
4936            let mut logits = vbuf(e, t * n_vocab)?;
4937            for r in 0..t {
4938                let mut row = e.uninit(n_embd)?;
4939                e.dtod_copy_view(&x.slice(r * n_embd..(r + 1) * n_embd), &mut row)?;
4940                let mut hr = e.uninit(n_embd)?;
4941                e.rms_norm(&row, self.output_norm.float_data(), &mut hr, n_embd, 1, eps)?;
4942                let lr = e.matmul(&self.output, &hr, 1)?;
4943                e.dtod_copy_into(&lr, &mut logits, r * n_vocab)?;
4944                e.dtod_copy_into(&hr, &mut hn, r * n_embd)?;
4945            }
4946            if stream.is_none() {
4947                cache.pos += t;
4948            }
4949            return Ok((logits, if spec_hpost() { hn } else { x }));
4950        }
4951        let serving_head =
4952            self.sliding_gated_moe_batch_program() || self.batched_serving_numeric_class();
4953        let logits = if serving_head {
4954            // Step35 and the qwen35 family (MoE 2026-08-14 AM, dense-hybrid same day PM — the
4955            // Q3.8 bring-up reproduced the identical near-tie class on dense: eager-class verify
4956            // vs batched-class live serving, ULP drift amplified through the GDN recurrence)
4957            // serve one batched numeric class at every live width, including B=1. Keep the
4958            // verify head in that same class; other generic families retain the decode-exact
4959            // head that their run-spec contract pins.
4960            e.rms_norm(&x, self.output_norm.float_data(), &mut hn, n_embd, t, eps)?;
4961            e.matmul(&self.output, &hn, t)?
4962        } else {
4963            e.rms_norm_decode(&x, self.output_norm.float_data(), &mut hn, n_embd, t, eps)?;
4964            e.matmul_decode_exact(&self.output, &hn, t)?
4965        };
4966        // stream: the device pos counter owns position; host mirror reconciles at drain.
4967        if stream.is_none() {
4968            cache.pos += t;
4969        }
4970        // Hidden stack for seeds/refresh-fills: pre-norm x (default) or post-norm hn (HPOST).
4971        Ok((logits, if spec_hpost() { hn } else { x }))
4972    }
4973
4974    /// THE VERIFY TRUNK OVER PP-N (lane/pp2-spec 2026-08-06): `decode_step_t_core_stream`'s walk
4975    /// as N stage subgraphs, each on its own engine/stream (and, under `MEMRA_PP_DEVICES`, its own
4976    /// device), with a `[T, n_embd]` boundary transfer between them. T = K+1 (the verify batch),
4977    /// so this is the batched-boundary shape the pp2-batch lane's grow-only slots already handle
4978    /// (`tx(b, x, t*n_embd)`; the slot grows to the high-water T and the transport moves exactly
4979    /// the payload).
4980    ///
4981    /// Structure is `decode_step_batch_ppn`'s, which is `decode_step_h_ppn`'s. FOUR THINGS ARE
4982    /// PER-STAGE and each for a measured reason (see `decode_step_batch_ppn`'s header for the
4983    /// receipts):
4984    ///
4985    /// 1. THE ENGINE (`rt.engine(s, e)`) — `Engine` owns lazily-grown stable-pointer scratch
4986    ///    (`fa_part_pool`, `fa_vf16_scratch`, `argmax_partials`) that is single-stream-safe BY
4987    ///    DESIGN. Two stage streams through one Engine is the 2026-08-02 shared-scratch race
4988    ///    (35% flake, nondeterministic all-logits divergence). `PpNRt::build` gives every stage
4989    ///    s>0 its own Engine even on the primary device; honouring it here is what scopes the
4990    ///    pools. The verify path allocates MORE of that scratch than eager decode does (FA at
4991    ///    m=T, and the per-layer `GdnStash` retains), so this is load-bearing, not inherited.
4992    ///
4993    /// 2. `pos_d` — each stage uploads its OWN copy of the T rope positions on ITS stream, so the
4994    ///    buffer is allocated, consumed and freed on one stream. In `stream` mode that means each
4995    ///    stage runs its own `pos_iota` over the SHARED device counter (`pos_ctr`): the counter is
4996    ///    read-only during the forward (the round's `inc`/`copy_add` happen outside it), so every
4997    ///    stage derives the identical iota, and each stage's own output buffer is stream-local.
4998    ///
4999    /// 3. THE EMBED lives with stage 0 (`self.embd` / `embd_gpu` are host/primary-side; the
5000    ///    sharded loader leaves the table with stage 0 by construction).
5001    ///
5002    /// 4. THE HEAD (`output_norm` + `output`) runs on the LAST stage — the sharded loader uploaded
5003    ///    both through that stage's engine (`hybrid.rs`: `e_head = layer_engine(e, n_trunk,
5004    ///    n_trunk-1)`), so reading them anywhere else is a peer read of the biggest tensor in the
5005    ///    model, every round.
5006    ///
5007    /// WHAT STAYS ON THE PRIMARY, deliberately: the returned logits and hidden stack `x`. Both are
5008    /// last-stage-allocated device buffers, and every consumer (the device argmax walk, the accept
5009    /// kernels, `spec_seed_gather`, the ckpt rebuild in `commit_verified_prefix`) reads them
5010    /// through the primary context by UVA — the same read the batched serving epilogue's
5011    /// `last_logits_dev` park does. Those consumers are per-round O(T x n_vocab) and O(n_embd),
5012    /// not per-layer, so they are not the 28x class; splitting them is a separate lane.
5013    ///
5014    /// The MTP HEAD (draft side) is NOT split: it is one block, it lives wherever the loader put
5015    /// it (`load_mtp` uses the primary engine), and it is ~1-2 GB against the trunk's tens. Draft
5016    /// placement is measured, not assumed — see `research/pp2-spec-20260806`.
5017    ///
5018    /// EXACTNESS: PP-N adds ZERO deviation. Each stage runs the SAME kernels on the SAME bytes in
5019    /// the same order via the SAME `verify_layers` the unsplit body calls; the only change is
5020    /// where the residual is materialized, and the boundary is a straight f32 copy (dtod
5021    /// same-device / `cudaMemcpyPeerAsync` cross-device, no conversion). So the split MUST be
5022    /// BIT-IDENTICAL to the unsplit verify at the same T, in both placement orders. Gate:
5023    /// `decode-batch-gate --mode ppspec`. Acceptance counts are a DERIVED consequence — greedy
5024    /// accept argmaxes these logits, so bit-identical logits force identical accept walks; the
5025    /// `run-spec` K=1..8 arm checks that end-to-end rather than trusting the implication.
5026    #[allow(clippy::too_many_arguments)]
5027    fn decode_step_t_core_ppn(
5028        &self,
5029        e: &Engine,
5030        tokens: &[u32],
5031        pos0: usize,
5032        cache: &mut Cache,
5033        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
5034        mut ckpt: Option<&mut VerifyCkpt>,
5035        stream: Option<(&CudaSlice<u32>, &CudaSlice<i32>)>,
5036        fence: &[usize],
5037        pp_pipe: Option<bool>,
5038    ) -> Result<(CudaSlice<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
5039        let ticket = self.verify_stage0_issue(
5040            e,
5041            tokens,
5042            pos0,
5043            cache,
5044            embd_dev,
5045            ckpt.as_deref_mut(),
5046            stream,
5047            fence,
5048            pp_pipe,
5049            None,
5050        )?;
5051        self.verify_stage1_finish(e, ticket, cache, ckpt, stream, fence, true)
5052    }
5053
5054    /// Enqueue embed, stage 0, and the first boundary TX, then return the actual boundary slot.
5055    /// The ordinary PP verify wrapper calls `verify_stage1_finish` immediately after this return.
5056    #[allow(clippy::too_many_arguments)]
5057    fn verify_stage0_issue(
5058        &self,
5059        e: &Engine,
5060        tokens: &[u32],
5061        pos0: usize,
5062        cache: &mut Cache,
5063        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
5064        mut ckpt: Option<&mut VerifyCkpt>,
5065        stream: Option<(&CudaSlice<u32>, &CudaSlice<i32>)>,
5066        fence: &[usize],
5067        pp_pipe: Option<bool>,
5068        trace: Option<SpecPipeTraceCtx>,
5069    ) -> Result<VerifyBoundaryTicket, Box<dyn std::error::Error>> {
5070        assert!(
5071            !self.is_gemma4_e4b() && !self.gemma_batch_program(),
5072            "decode_step_t_core_ppn covers the hybrid non-gemma4 verify trunk only \
5073             (the gemma4 arms have their own decode_step_t twins)"
5074        );
5075        if crate::pp::pp_host_bounce_active() && (stream.is_some() || embd_dev.is_some()) {
5076            return Err(
5077                "decode_step_t_core_ppn: refused with MEMRA_PP_HOST_BOUNCE=1 — the trunk \
5078                 boundary itself is host-staged, but device-resident verify still peer-reads \
5079                 primary-device token/position/embedding buffers from stage 0. Run plain PP \
5080                 serving on this host class; spec requires local per-stage inputs first."
5081                    .into(),
5082            );
5083        }
5084        let rt = crate::pp::PpNRt::get(e)?;
5085        let n_st = fence.len() - 1;
5086        assert_eq!(
5087            rt.n_stages(),
5088            n_st,
5089            "PpNRt stage count {} != fence stages {n_st}",
5090            rt.n_stages()
5091        );
5092        let n_embd = self.cfg.n_embd as usize;
5093        let t = tokens.len();
5094        let payload = t * n_embd;
5095        if pp_pipe.is_some() {
5096            assert_eq!(n_st, 2, "spec pipeline requires exactly two PP stages");
5097        }
5098        // One-shot lane diagnostic: force natural PP-2 boundaries to completion so the server
5099        // log can price stage 0, the peer hop, the RX copy, and stage 1 + head separately without
5100        // nsys. The ordinary path keeps every enqueue asynchronous. N>2 is deliberately excluded:
5101        // the report below names exactly two stages and must never imply it measured middle ones.
5102        let pp_anatomy = n_st == 2 && std::env::var("MEMRA_SPEC_PP_ANATOMY").as_deref() == Ok("1");
5103        let pp_started = std::time::Instant::now();
5104        let (mut reverse_ms, mut stage0_ms, mut tx_ms) = (0.0f64, 0.0f64, 0.0f64);
5105        // The CALLER's ambient stream, captured BEFORE any `rt.enter()` pushes a stage stream:
5106        // this body returns DEVICE-RESIDENT buffers (the device-argmax accept walk's contract),
5107        // so the exit needs the same publication the boundaries get — see `PpNRt::publish_to`.
5108        // Taken here, not at the end, because inside the last-stage scope `e.stream()` IS the
5109        // stage stream and the wait would self-order into a no-op.
5110        let caller_stream = e.stream();
5111        // #87 ROOT-CAUSE FENCE (lane/pp2spec-crash): the PREVIOUS round's stage-allocated
5112        // outputs (logits/hidden/ckpt stashes) freed stream-ordered on the STAGE streams while
5113        // the primary stream still holds queued reads of them — with event tracking elided,
5114        // nothing stops the pool from reusing those blocks for THIS round's stage allocations,
5115        // whose writes then race the queued reads (measured: 13/4096-NaN random-bits garbage in
5116        // the spec round seed; the full anatomy is on `PpNRt::fence_stages_behind`). Order every
5117        // stage stream behind the caller before enqueueing new stage work.
5118        let reverse_started = std::time::Instant::now();
5119        if pp_pipe != Some(false) {
5120            rt.fence_stages_behind(&caller_stream)?;
5121        }
5122        if pp_pipe == Some(true) {
5123            // Both session verifies must alternate boundary slots even when the ordinary
5124            // decode overlap experiment is off. Prewarm before A's stage 0 so B cannot grow
5125            // slot 1 by synchronizing the RX stream while A's stage 1 is in flight.
5126            rt.prepare_overlap_slots(0, payload)?;
5127        }
5128        if pp_anatomy {
5129            // Drain the reverse-publication dependency before timing stage 0 itself. At c=1 this
5130            // prices any primary-stream rollback/refresh tail inherited from the prior round.
5131            for s in 0..n_st {
5132                let _st = rt.enter(s);
5133                rt.engine(s, e).stream().synchronize()?;
5134            }
5135            reverse_ms = reverse_started.elapsed().as_secs_f64() * 1e3;
5136        }
5137
5138        // Per-stage rope positions: in host mode the same [T] iota each stage uploads itself; in
5139        // stream mode each stage's own `pos_iota` over the shared read-only device counter.
5140        let stage_pos = |es: &Engine| -> Result<CudaSlice<i32>, Box<dyn std::error::Error>> {
5141            match stream {
5142                Some((_, ctr)) => {
5143                    let mut p = es.alloc_uninit::<i32>(t)?;
5144                    es.pos_iota(ctr, &mut p, t)?;
5145                    Ok(p)
5146                }
5147                None => {
5148                    let pos_vec: Vec<i32> = (0..t).map(|i| (pos0 + i) as i32).collect();
5149                    es.htod_i32(&pos_vec)
5150                }
5151            }
5152        };
5153
5154        // ---- STAGE 0: embed (the table lives with stage 0) + layers [0, fence[1]) + TX ----
5155        let slot = {
5156            let _st0 = rt.enter(0);
5157            let e0 = rt.engine(0, e);
5158            enqueue_spec_pipe_trace_marker(&e0.stream(), trace.as_ref(), "S0", "start", None)?;
5159            let stage0_started = std::time::Instant::now();
5160            let pos_d = stage_pos(e0)?;
5161            let x = match (stream, embd_dev) {
5162                (Some((vtok, _)), Some((g, qt, rb))) => {
5163                    e0.embed_gather_device_td(g, vtok, t, n_embd, qt, rb)?
5164                }
5165                (None, Some((g, qt, rb))) => e0.embed_gather_device_t(g, tokens, n_embd, qt, rb)?,
5166                _ => e0.htod(&self.embd.gather(n_embd, tokens))?,
5167            };
5168            let x = self.verify_layers(
5169                e0,
5170                x,
5171                fence[0],
5172                fence[1],
5173                &pos_d,
5174                pos0,
5175                t,
5176                cache,
5177                ckpt.as_deref_mut(),
5178                stream,
5179                None,
5180            )?;
5181            if pp_anatomy {
5182                e0.stream().synchronize()?;
5183                stage0_ms = stage0_started.elapsed().as_secs_f64() * 1e3;
5184            }
5185            let tx_started = std::time::Instant::now();
5186            let slot = if pp_pipe.is_some() {
5187                rt.tx_pipelined(0, &x, payload)?
5188            } else {
5189                rt.tx(0, &x, payload)?
5190            };
5191            enqueue_spec_pipe_trace_marker(&e0.stream(), trace.as_ref(), "S0", "end", Some(slot))?;
5192            if pp_anatomy {
5193                e0.stream().synchronize()?;
5194                tx_ms = tx_started.elapsed().as_secs_f64() * 1e3;
5195            }
5196            slot
5197            // x + pos_d drop here: freed stream-ordered on stage-0's stream after use.
5198        };
5199
5200        Ok(VerifyBoundaryTicket {
5201            rt,
5202            caller_stream,
5203            slot,
5204            pos0,
5205            t,
5206            payload,
5207            n_st,
5208            pipelined: pp_pipe.is_some(),
5209            pp_anatomy,
5210            pp_started,
5211            reverse_ms,
5212            stage0_ms,
5213            tx_ms,
5214            trace,
5215        })
5216    }
5217
5218    /// Consume a stage-0 boundary ticket and enqueue the remaining PP stages plus the head.
5219    /// On PP-2 this is exactly stage 1; PP-N keeps its pre-existing middle-stage walk here.
5220    #[allow(clippy::too_many_arguments)]
5221    fn verify_stage1_finish(
5222        &self,
5223        e: &Engine,
5224        ticket: VerifyBoundaryTicket,
5225        cache: &mut Cache,
5226        mut ckpt: Option<&mut VerifyCkpt>,
5227        stream: Option<(&CudaSlice<u32>, &CudaSlice<i32>)>,
5228        fence: &[usize],
5229        publish_to_caller: bool,
5230    ) -> Result<(CudaSlice<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
5231        let VerifyBoundaryTicket {
5232            rt,
5233            caller_stream,
5234            slot,
5235            pos0,
5236            t,
5237            payload,
5238            n_st,
5239            pipelined,
5240            pp_anatomy,
5241            pp_started,
5242            reverse_ms,
5243            stage0_ms,
5244            tx_ms,
5245            trace,
5246        } = ticket;
5247        let n_embd = self.cfg.n_embd as usize;
5248        let eps = self.cfg.rms_eps;
5249        let mut slot = slot;
5250        let (mut rx_ms, mut stage1_ms) = (0.0f64, 0.0f64);
5251        let stage_pos = |es: &Engine| -> Result<CudaSlice<i32>, Box<dyn std::error::Error>> {
5252            match stream {
5253                Some((_, ctr)) => {
5254                    let mut p = es.alloc_uninit::<i32>(t)?;
5255                    es.pos_iota(ctr, &mut p, t)?;
5256                    Ok(p)
5257                }
5258                None => {
5259                    let pos_vec: Vec<i32> = (0..t).map(|i| (pos0 + i) as i32).collect();
5260                    es.htod_i32(&pos_vec)
5261                }
5262            }
5263        };
5264
5265        // ---- MIDDLE STAGES: RX boundary s-1 -> range -> TX boundary s ----
5266        for s in 1..n_st - 1 {
5267            let _st = rt.enter(s);
5268            let es = rt.engine(s, e);
5269            let pos_d = stage_pos(es)?;
5270            let x = rt.rx(s - 1, slot, payload)?;
5271            let x = self.verify_layers(
5272                es,
5273                x,
5274                fence[s],
5275                fence[s + 1],
5276                &pos_d,
5277                pos0,
5278                t,
5279                cache,
5280                ckpt.as_deref_mut(),
5281                stream,
5282                None,
5283            )?;
5284            slot = if pipelined {
5285                rt.tx_pipelined(s, &x, payload)?
5286            } else {
5287                rt.tx(s, &x, payload)?
5288            };
5289        }
5290
5291        // ---- LAST STAGE: RX + final range + output_norm + lm head ----
5292        let _stl = rt.enter(n_st - 1);
5293        let el = rt.engine(n_st - 1, e);
5294        let pos_d = stage_pos(el)?;
5295        let rx_started = std::time::Instant::now();
5296        let x = rt.rx(n_st - 2, slot, payload)?;
5297        if pp_anatomy {
5298            el.stream().synchronize()?;
5299            rx_ms = rx_started.elapsed().as_secs_f64() * 1e3;
5300        }
5301        enqueue_spec_pipe_trace_marker(&el.stream(), trace.as_ref(), "S1", "start", Some(slot))?;
5302        let stage1_started = std::time::Instant::now();
5303        let x = self.verify_layers(
5304            el,
5305            x,
5306            fence[n_st - 1],
5307            fence[n_st],
5308            &pos_d,
5309            pos0,
5310            t,
5311            cache,
5312            ckpt.as_deref_mut(),
5313            stream,
5314            None,
5315        )?;
5316
5317        let mut hn = vbuf(el, payload)?;
5318        let logits = if self.sliding_gated_moe_batch_program() {
5319            // The PP Step35 serving path uses rms_norm + matmul for B=1 as well as B>1.
5320            // Verify must not switch numeric class merely because the same session speculates.
5321            el.rms_norm(&x, self.output_norm.float_data(), &mut hn, n_embd, t, eps)?;
5322            el.matmul(&self.output, &hn, t)?
5323        } else {
5324            el.rms_norm_decode(&x, self.output_norm.float_data(), &mut hn, n_embd, t, eps)?;
5325            el.matmul_decode_exact(&self.output, &hn, t)?
5326        };
5327        enqueue_spec_pipe_trace_marker(&el.stream(), trace.as_ref(), "S1", "end", Some(slot))?;
5328        if pp_anatomy {
5329            el.stream().synchronize()?;
5330            stage1_ms = stage1_started.elapsed().as_secs_f64() * 1e3;
5331        }
5332        // EXIT PUBLICATION: both returned buffers are still being produced on the last stage's
5333        // stream. Order the caller's stream behind that work before the buffers escape this
5334        // scope (the 2026-08-06 same-device ppspec find: without it the caller's primary-stream
5335        // consumer read unwritten logits — nondeterministic, one-device-only, and it poisoned
5336        // the following arm's KV in the same process).
5337        if publish_to_caller {
5338            rt.publish_to(n_st - 1, &caller_stream)?;
5339        }
5340        if pp_anatomy {
5341            if publish_to_caller {
5342                caller_stream.synchronize()?;
5343            }
5344            eprintln!(
5345                "[spec-pp-anatomy] t={t} reverse={reverse_ms:.3}ms stage0={stage0_ms:.3}ms \
5346                 tx={tx_ms:.3}ms rx={rx_ms:.3}ms stage1-head={stage1_ms:.3}ms total={:.3}ms",
5347                pp_started.elapsed().as_secs_f64() * 1e3,
5348            );
5349        }
5350        // stream: the device pos counter owns position; host mirror reconciles at drain.
5351        if stream.is_none() {
5352            cache.pos += t;
5353        }
5354        Ok((logits, if spec_hpost() { hn } else { x }))
5355    }
5356
5357    /// Step3.5/Step3.7 verify trunk in the serving batched numeric class.
5358    ///
5359    /// `step35_decode_batch_layers` is now authoritative at every live serving width, including
5360    /// B=1 (lane/cx-b1fix). The older verify walk deliberately mirrored the eager T=1 class:
5361    /// it replayed `step35_decode_attn` per row and used the eager/decode-exact FFN dispatch.
5362    /// Those classes are individually stable, but a near-tie prompt can choose different greedy
5363    /// bytes when a request moves from batched plain serving into speculative verify. Run the
5364    /// same authoritative B=1 stage subgraph for each verify row here. Rows still advance
5365    /// layer-by-layer, so every layer sees the preceding verify rows in its attention cache while
5366    /// every norm/projection/FFN uses exactly the live serving dispatch.
5367    #[allow(clippy::too_many_arguments)]
5368    /// PRIME-BY-T-ROWS (MEMRA_PRIME_TROWS=1): prefill the prompt through the same-session
5369    /// t-row walk in 32-row chunks — every row runs the t=1 decode program bit-for-bit
5370    /// (the TOKENWISE-prime ORACLE class), so this door is exact against the exactness
5371    /// reference while replacing the host-canonical per-token prime. Requires the walk
5372    /// doors (MEMRA_SPEC_VERIFY_EAGER/TCOL); returns the prime contract trio.
5373    #[allow(clippy::type_complexity)]
5374    pub(crate) fn step35_prime_trows(
5375        &self,
5376        e: &Engine,
5377        tokens: &[u32],
5378        cache: &mut Cache,
5379    ) -> Result<Option<(Vec<f32>, CudaSlice<f32>, CudaSlice<f32>)>, Box<dyn std::error::Error>>
5380    {
5381        let dbg = std::env::var("MEMRA_SPEC_FA2_DEBUG").as_deref() == Ok("1");
5382        if std::env::var("MEMRA_PRIME_TROWS").as_deref() != Ok("1") {
5383            return Ok(None);
5384        }
5385        if !self.uses_sliding_gated_moe_program()
5386            || cache.pos != 0
5387            || cache.dflash_taps.is_some()
5388            || std::env::var("MEMRA_SPEC_VERIFY_EAGER").as_deref() != Ok("1")
5389            || std::env::var("MEMRA_SPEC_VERIFY_TCOL").as_deref() != Ok("1")
5390        {
5391            if dbg {
5392                eprintln!(
5393                    "[prime-trows] refuse: program={} pos={} taps={} eager={:?} tcol={:?}",
5394                    self.uses_sliding_gated_moe_program(),
5395                    cache.pos,
5396                    cache.dflash_taps.is_some(),
5397                    std::env::var("MEMRA_SPEC_VERIFY_EAGER").ok(),
5398                    std::env::var("MEMRA_SPEC_VERIFY_TCOL").ok()
5399                );
5400            }
5401            return Ok(None);
5402        }
5403        let n_embd = self.cfg.n_embd as usize;
5404        let n_layers = self.layers.len();
5405        let t_total = tokens.len();
5406        let Some(embd_gpu) = self.embd_gpu_try(e) else {
5407            if dbg {
5408                eprintln!("[prime-trows] refuse: no device embed table");
5409            }
5410            return Ok(None);
5411        };
5412        let embd_qtype = match self.embd.ggml_type {
5413            memra_gguf::GgmlType::BF16 => crate::QT_BF16,
5414            memra_gguf::GgmlType::Q8_0 => crate::QT_Q8_0,
5415            other => {
5416                if dbg {
5417                    eprintln!("[prime-trows] refuse: embed dtype {other:?}");
5418                }
5419                return Ok(None);
5420            }
5421        };
5422        let embd_row_bytes = self.embd.raw.len() / self.cfg.n_vocab as usize;
5423        // Chunk plan: 32-row chunks; a 1-token tail folds into the previous chunk
5424        // (the walk floor is t >= 2).
5425        let mut bounds = Vec::new();
5426        let mut start = 0usize;
5427        while start < t_total {
5428            let mut end = (start + 32).min(t_total);
5429            if t_total - end == 1 {
5430                end -= 1;
5431            }
5432            bounds.push((start, end));
5433            start = end;
5434        }
5435        if bounds.iter().any(|(a, b)| b - a < 2) {
5436            return Ok(None); // degenerate short prompt keeps the ordinary prime
5437        }
5438        let mut hiddens = e.uninit(t_total * n_embd)?;
5439        let mut last: Option<CudaSlice<f32>> = None;
5440        for &(a, b) in &bounds {
5441            let tc = b - a;
5442            let tok_d = e.stream().clone_htod(&tokens[a..b])?;
5443            let x =
5444                e.embed_gather_device_td(embd_gpu, &tok_d, tc, n_embd, embd_qtype, embd_row_bytes)?;
5445            let out = self.step35_verify_batch_layers(e, x, 0, n_layers, a, tc, cache)?;
5446            e.copy_into(&mut hiddens, a * n_embd, &out, tc * n_embd)?;
5447            if b == t_total {
5448                let mut h = e.uninit(n_embd)?;
5449                e.dtod_copy_view(&out.slice((tc - 1) * n_embd..tc * n_embd), &mut h)?;
5450                last = Some(h);
5451            }
5452        }
5453        let h_seed = last.expect("last chunk produced the seed row");
5454        let mut hn = e.uninit(n_embd)?;
5455        e.rms_norm_decode(
5456            &h_seed,
5457            self.output_norm.float_data(),
5458            &mut hn,
5459            n_embd,
5460            1,
5461            self.cfg.rms_eps,
5462        )?;
5463        let logits_d = e.matmul_decode_exact(&self.output, &hn, 1)?;
5464        let logits = e.dtoh(&logits_d)?;
5465        cache.pos = t_total;
5466        Ok(Some((logits, h_seed, hiddens)))
5467    }
5468
5469    fn step35_verify_batch_layers(
5470        &self,
5471        e: &Engine,
5472        mut x: CudaSlice<f32>,
5473        lo: usize,
5474        hi: usize,
5475        pos0: usize,
5476        t: usize,
5477        cache: &mut Cache,
5478    ) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
5479        let n_embd = self.cfg.n_embd as usize;
5480        if !self.uses_sliding_gated_moe_program() {
5481            return Err(
5482                "serving-class verify requires sliding-gated-MoE canonical operations".into(),
5483            );
5484        }
5485        // SERVING-CLASS VERIFY (MEMRA_SPEC_VERIFY_EAGER=1, step37 MTP bring-up): each verify
5486        // column rides decode_layers_eager — the EXACT t=1 program live serving runs (all TP2
5487        // doors) — row-outer, so row r's appends land before row r+1 attends: bit-equal to
5488        // plain greedy by construction. Only the unsplit full-range walk qualifies; PP splits
5489        // and the tap path keep the batch-layer class.
5490        static VE: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
5491        let eager_verify = *VE
5492            .get_or_init(|| std::env::var("MEMRA_SPEC_VERIFY_EAGER").as_deref() == Ok("1"))
5493            && lo == 0
5494            && hi == self.layers.len();
5495        if eager_verify {
5496            // T-COLUMN LAYER-OUTER WALK (MEMRA_SPEC_VERIFY_TCOL=1): per layer, one t-grid
5497            // attn norm + ONE weight-amortized QKV(+gate) over all T columns, then each
5498            // column runs the UNMODIFIED t=1 attention program via the col-select door and
5499            // the ordinary residual/FFN body. Values per column are bit-equal to the
5500            // row-outer walk: rms over the materialized residual == the fused add+norm
5501            // (kernel_check identity), the tcol kernel's per-column FP order == the t=1
5502            // kernel, and every downstream op IS the t=1 program.
5503            static TCOL: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
5504            let tcol =
5505                *TCOL.get_or_init(|| std::env::var("MEMRA_SPEC_VERIFY_TCOL").as_deref() == Ok("1"));
5506            // T > 32 (prefill-class): run the SAME walk in 32-row chunks — each chunk's
5507            // rows are the t=1 program bit-for-bit and the rope pass advances the cache,
5508            // so a chunked call is value-identical to the row-outer loop it replaces.
5509            static TROWS_PREFILL: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
5510            let trows_prefill = *TROWS_PREFILL
5511                .get_or_init(|| std::env::var("MEMRA_PRIME_TROWS").as_deref() == Ok("1"));
5512            // MEMRA_PRIME_TROWS_T=<w>: chunk width, default 8 = the REAL cap of this walk.
5513            // The workspace slabs go to 32 rows, but `matvec_bf16_qkvg_tcol_into` refuses
5514            // t > 8 (compile-time-T twins exist for 2/4/8 only; the runtime-t kernel spills
5515            // its accumulators to local memory), so a wider chunk fails the request with
5516            // "matvec_bf16_qkvg_tcol geometry" — which is exactly how the first server-path
5517            // TROWS arm died. Measured at 193 tokens: w=8 2.459 s, w=4 2.574 s.
5518            static TROWS_W: std::sync::OnceLock<Result<usize, String>> = std::sync::OnceLock::new();
5519            let trows_w = match TROWS_W.get_or_init(|| {
5520                let value = std::env::var("MEMRA_PRIME_TROWS_T").ok();
5521                parse_prime_trows_width(value.as_deref())
5522            }) {
5523                Ok(width) => *width,
5524                Err(err) => return Err(err.clone().into()),
5525            };
5526            if tcol && trows_prefill && t > trows_w {
5527                // One-time engagement receipt: without it a prefill gate cannot tell a
5528                // chunked walk from the row-outer fallback it is supposed to replace
5529                // (the first PRIME_TROWS gate passed vacuously on exactly that).
5530                static SEEN: std::sync::atomic::AtomicBool =
5531                    std::sync::atomic::AtomicBool::new(false);
5532                if !SEEN.swap(true, std::sync::atomic::Ordering::Relaxed) {
5533                    eprintln!(
5534                        "[prime-trows] ENGAGED t={t} width={trows_w} chunks={} layers={}..{}",
5535                        t.div_ceil(trows_w),
5536                        lo,
5537                        hi
5538                    );
5539                }
5540                let mut out = e.uninit(t * n_embd)?;
5541                let mut start = 0usize;
5542                while start < t {
5543                    let mut end = (start + trows_w).min(t);
5544                    if t - end == 1 {
5545                        end -= 1;
5546                    }
5547                    let tc = end - start;
5548                    let mut xc = e.uninit(tc * n_embd)?;
5549                    e.dtod_copy_view(&x.slice(start * n_embd..end * n_embd), &mut xc)?;
5550                    let oc =
5551                        self.step35_verify_batch_layers(e, xc, lo, hi, pos0 + start, tc, cache)?;
5552                    e.copy_into(&mut out, start * n_embd, &oc, tc * n_embd)?;
5553                    start = end;
5554                }
5555                return Ok(out);
5556            }
5557            if tcol && t >= 2 && t <= 32 {
5558                // MEMRA_TCOL_PROF=1: synchronized per-segment wall profile of the walk
5559                // (norm+QKV precompute / per-col attention / per-col residual+FFN). The
5560                // syncs serialize the stream, so the split is for TARGETING amortization
5561                // work only — never a perf claim.
5562                static PROF: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
5563                let prof =
5564                    *PROF.get_or_init(|| std::env::var("MEMRA_TCOL_PROF").as_deref() == Ok("1"));
5565                let mut prof_ms = [0f64; 3];
5566                let eps = self.cfg.rms_eps;
5567                let mut x_t = x;
5568                let mut h_t = e.uninit(t * n_embd)?;
5569                let mut h_row = e.uninit(n_embd)?; // real row: the non-dcw fallback reads it
5570                // Per-column pos buffers hoisted out of the layer loop (a per-col-per-layer
5571                // pageable htod was an in-stream engine turnaround x t x 45).
5572                let mut pos_rows = Vec::with_capacity(t);
5573                for r in 0..t {
5574                    pos_rows.push(e.htod_i32(&[(pos0 + r) as i32])?);
5575                }
5576                let mut ok = true;
5577                // MEMRA_TCOL_OPROJ=1: defer each column's o_proj — the finish seam
5578                // stashes `gated` instead of joining per column; one b4_tcol per rank +
5579                // one slab join produce every column's `mixed` after the attention pass.
5580                // Bit-exact per column (t=1 b4 program per column; elementwise join).
5581                // MEMRA_TCOL_FFN=1 (implies the o_proj defer): when every column of a
5582                // MoE layer deferred, the residual norm runs as one t-grid launch
5583                // (per-row program == t=1) and the FFN as ONE two-column device-routed
5584                // sweep + per-column shexp — the two columns' expert weights dedup
5585                // through L2 instead of reading HBM twice.
5586                static FFN2: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
5587                let ffn_batch =
5588                    *FFN2.get_or_init(|| std::env::var("MEMRA_TCOL_FFN").as_deref() == Ok("1"));
5589                let oproj_batch = crate::tp::tcol_oproj_on() || ffn_batch;
5590                // MEMRA_SPEC_FA2=1 (T=2 only): eligible layers defer BOTH columns' fa —
5591                // the per-column pass norms/ropes/appends and stashes q+gate, then one
5592                // shared-KV fa_decode_dcw2 per rank + the o_proj join produce the
5593                // [2, o_out] mixed slab. The precheck runs before arming (stashing is
5594                // unrecoverable); ineligible/boundary layers run the ordinary program.
5595                let fa2 = crate::tp::spec_fa2_on() && t <= 32;
5596                let mut mixed_row = e.uninit(n_embd)?;
5597                let mut pos_staged = false;
5598                for il in lo..hi {
5599                    let layer = &self.layers[il];
5600                    let fa2_layer = fa2 && self.step35_fa_rows_precheck(cache, il, pos0, t)?;
5601                    let mut seg = std::time::Instant::now();
5602                    e.rms_norm(&x_t, layer.attn_norm.float_data(), &mut h_t, n_embd, t, eps)?;
5603                    if !self.step35_verify_qkv_precompute(e, il, &h_t, t)? {
5604                        ok = false;
5605                        break;
5606                    }
5607                    // FULL t-row attention pass (rope/append + fa + combine + o_proj in
5608                    // 3 launches/rank): same-session rows, slot = len-base+r, one len
5609                    // advance by t. Host cache bookkeeping mirrors the per-column tail.
5610                    if fa2_layer {
5611                        if let Some(mixed_t) =
5612                            self.step35_verify_rope_fa_pass(e, il, cache, pos0, t, !pos_staged)?
5613                        {
5614                            pos_staged = true;
5615                            {
5616                                let tp_kv = cache.tp_kv[il]
5617                                    .as_mut()
5618                                    .expect("precheck verified the distributed cache");
5619                                let transaction = tp_kv.begin_transaction()?;
5620                                let crate::hybrid::Mixer::Full(fa) = &layer.mixer else {
5621                                    return Err("verify rope pass expects full attention".into());
5622                                };
5623                                let tp = fa
5624                                    .step_tp_qkv
5625                                    .as_ref()
5626                                    .ok_or("verify rope pass lost its TP state")?;
5627                                let empty: [CudaSlice<f32>; 0] = [];
5628                                tp.runtime.append_tp_kv_transaction_inner(
5629                                    tp_kv,
5630                                    transaction,
5631                                    &empty,
5632                                    &empty,
5633                                    t,
5634                                    true,
5635                                )?;
5636                                tp.runtime.commit_tp_kv_transaction_external(
5637                                    tp_kv,
5638                                    transaction,
5639                                    t,
5640                                )?;
5641                                if let Some(local) = cache.kv[il].as_mut() {
5642                                    local.len = pos0 + t;
5643                                    if !crate::tp::len_mirror_lazy_on() {
5644                                        e.set_i32_one(&mut local.len_d, local.len as i32)?;
5645                                    }
5646                                }
5647                            }
5648                            if prof {
5649                                e.stream().synchronize()?;
5650                                prof_ms[1] += seg.elapsed().as_secs_f64() * 1e3;
5651                                seg = std::time::Instant::now();
5652                            }
5653                            let o_out = mixed_t.len() / t;
5654                            let mut next = e.uninit(t * n_embd)?;
5655                            let mut batched = false;
5656                            if ffn_batch && o_out == n_embd {
5657                                let mut x1_t = e.uninit(t * n_embd)?;
5658                                let mut z_t = e.uninit(t * n_embd)?;
5659                                e.add_rms_norm(
5660                                    &x_t,
5661                                    &mixed_t,
5662                                    layer.post_attn_norm.float_data(),
5663                                    &mut x1_t,
5664                                    &mut z_t,
5665                                    n_embd,
5666                                    t,
5667                                    eps,
5668                                )?;
5669                                if let Some(ffn_t) = self.step35_verify_moe_tn(e, il, &z_t, t)? {
5670                                    let mut x2_t = e.uninit(t * n_embd)?;
5671                                    e.add(&x1_t, &ffn_t, &mut x2_t, t * n_embd)?;
5672                                    next = x2_t;
5673                                    batched = true;
5674                                }
5675                            }
5676                            if !batched {
5677                                for r in 0..t {
5678                                    e.dtod_copy_view(
5679                                        &mixed_t.slice(r * o_out..(r + 1) * o_out),
5680                                        &mut mixed_row,
5681                                    )?;
5682                                    let mut x_row = e.uninit(n_embd)?;
5683                                    e.dtod_copy_view(
5684                                        &x_t.slice(r * n_embd..(r + 1) * n_embd),
5685                                        &mut x_row,
5686                                    )?;
5687                                    let (x1, ffn_out) = self.residual_norm_ffn(
5688                                        e, layer, &x_row, &mixed_row, n_embd, il, eps,
5689                                    )?;
5690                                    let mut x2 = e.uninit(n_embd)?;
5691                                    e.add(&x1, &ffn_out, &mut x2, n_embd)?;
5692                                    e.dtod_copy_into(&x2, &mut next, r * n_embd)?;
5693                                }
5694                            }
5695                            if prof {
5696                                e.stream().synchronize()?;
5697                                prof_ms[2] += seg.elapsed().as_secs_f64() * 1e3;
5698                            }
5699                            x_t = next;
5700                            continue;
5701                        }
5702                    }
5703                    if prof {
5704                        e.stream().synchronize()?;
5705                        prof_ms[0] += seg.elapsed().as_secs_f64() * 1e3;
5706                        seg = std::time::Instant::now();
5707                    }
5708                    let mut next = e.uninit(t * n_embd)?;
5709                    // Columns whose o_proj was deferred (their FFN runs after the join).
5710                    // A NON-deferred column's FFN must run INSIDE the column loop: the
5711                    // oproj-tail handoff is a single cell that the same column's
5712                    // residual_norm_ffn consumes before the next column's finish.
5713                    let mut deferred: Vec<usize> = Vec::new();
5714                    let mut fa2_deferred: Vec<usize> = Vec::new();
5715                    let mut ffn_col =
5716                        |r: usize,
5717                         mixed: &CudaSlice<f32>,
5718                         next: &mut CudaSlice<f32>|
5719                         -> Result<(), Box<dyn std::error::Error>> {
5720                            let mut x_row = e.uninit(n_embd)?;
5721                            e.dtod_copy_view(&x_t.slice(r * n_embd..(r + 1) * n_embd), &mut x_row)?;
5722                            let (x1, ffn_out) =
5723                                self.residual_norm_ffn(e, layer, &x_row, mixed, n_embd, il, eps)?;
5724                            let mut x2 = e.uninit(n_embd)?;
5725                            e.add(&x1, &ffn_out, &mut x2, n_embd)?;
5726                            e.dtod_copy_into(&x2, next, r * n_embd)?;
5727                            Ok(())
5728                        };
5729                    for r in 0..t {
5730                        e.dtod_copy_view(&h_t.slice(r * n_embd..(r + 1) * n_embd), &mut h_row)?;
5731                        let row_pos = &pos_rows[r];
5732                        crate::tp::set_verify_tcol(Some(r));
5733                        if fa2_layer {
5734                            crate::tp::set_spec_fa2_defer(Some(r));
5735                        } else if oproj_batch {
5736                            crate::tp::set_tcol_oproj_defer(Some(r));
5737                        }
5738                        let mixed = match &layer.mixer {
5739                            crate::hybrid::Mixer::Full(fa) => {
5740                                self.full_attn_decode(e, fa, &h_row, row_pos, pos0 + r, cache, il)
5741                            }
5742                            _ => Err("step35 verify expects full attention".into()),
5743                        };
5744                        crate::tp::set_verify_tcol(None);
5745                        crate::tp::set_spec_fa2_defer(None);
5746                        crate::tp::set_tcol_oproj_defer(None);
5747                        let mixed = mixed?;
5748                        if fa2_layer && crate::tp::take_spec_fa2_stashed() {
5749                            fa2_deferred.push(r);
5750                        } else if oproj_batch && crate::tp::take_tcol_oproj_stashed() {
5751                            deferred.push(r);
5752                        } else {
5753                            ffn_col(r, &mixed, &mut next)?;
5754                        }
5755                    }
5756                    if !fa2_deferred.is_empty() && fa2_deferred.len() != t {
5757                        // The precheck guarantees both columns stash or neither; a strict
5758                        // subset means a column's output was never produced anywhere.
5759                        return Err("spec fa2 stash engaged for a subset of columns".into());
5760                    }
5761                    if prof {
5762                        e.stream().synchronize()?;
5763                        prof_ms[1] += seg.elapsed().as_secs_f64() * 1e3;
5764                        seg = std::time::Instant::now();
5765                    }
5766                    if !fa2_deferred.is_empty() {
5767                        deferred = fa2_deferred;
5768                    }
5769                    if !deferred.is_empty() {
5770                        let mixed_t = if fa2_layer {
5771                            self.step35_verify_fa_rows_join(e, il, cache, pos0, t)?
5772                        } else {
5773                            self.step35_verify_oproj_tcol(e, il, t)?
5774                        };
5775                        let o_out = mixed_t.len() / t;
5776                        // Batched t=2 residual+MoE: one t-grid add_rms_norm (per-row
5777                        // program == t=1; bit-identical to the oproj-tail join per the
5778                        // M2 verbatim-program contract) feeding the two-column routed
5779                        // sweep. Ineligible layers (dense FFN, non-nvfp4) fall through
5780                        // to the per-column body.
5781                        let mut batched = false;
5782                        if ffn_batch && deferred.len() == t && o_out == n_embd {
5783                            let mut x1_t = e.uninit(t * n_embd)?;
5784                            let mut z_t = e.uninit(t * n_embd)?;
5785                            e.add_rms_norm(
5786                                &x_t,
5787                                &mixed_t,
5788                                layer.post_attn_norm.float_data(),
5789                                &mut x1_t,
5790                                &mut z_t,
5791                                n_embd,
5792                                t,
5793                                eps,
5794                            )?;
5795                            if let Some(ffn_t) = self.step35_verify_moe_tn(e, il, &z_t, t)? {
5796                                let mut x2_t = e.uninit(t * n_embd)?;
5797                                e.add(&x1_t, &ffn_t, &mut x2_t, t * n_embd)?;
5798                                next = x2_t;
5799                                batched = true;
5800                            }
5801                        }
5802                        if !batched {
5803                            for &r in &deferred {
5804                                e.dtod_copy_view(
5805                                    &mixed_t.slice(r * o_out..(r + 1) * o_out),
5806                                    &mut mixed_row,
5807                                )?;
5808                                ffn_col(r, &mixed_row, &mut next)?;
5809                            }
5810                        }
5811                    }
5812                    if prof {
5813                        e.stream().synchronize()?;
5814                        prof_ms[2] += seg.elapsed().as_secs_f64() * 1e3;
5815                    }
5816                    drop(ffn_col);
5817                    x_t = next;
5818                }
5819                if prof {
5820                    eprintln!(
5821                        "[tcol-prof] t={t} norm+qkv={:.3}ms attn={:.3}ms ffn={:.3}ms",
5822                        prof_ms[0], prof_ms[1], prof_ms[2]
5823                    );
5824                }
5825                if ok {
5826                    return Ok(x_t);
5827                }
5828                // fall through to the row-outer walk on ineligible layers
5829                x = x_t;
5830            }
5831            let mut next = e.uninit(t * n_embd)?;
5832            for r in 0..t {
5833                let mut row = e.uninit(n_embd)?;
5834                e.dtod_copy_view(&x.slice(r * n_embd..(r + 1) * n_embd), &mut row)?;
5835                let row_pos = e.htod_i32(&[(pos0 + r) as i32])?;
5836                let out = self.decode_layers_eager(e, row, lo, hi, &row_pos, pos0 + r, cache)?;
5837                e.dtod_copy_into(&out, &mut next, r * n_embd)?;
5838            }
5839            // dflash taps are NOT produced on this arm (they need per-layer hiddens the
5840            // row-outer walk does not materialize); the door is a step37 MTP bring-up
5841            // surface where taps are unused.
5842            return Ok(next);
5843        }
5844        let mut ph_last = std::time::Instant::now();
5845        for il in lo..hi {
5846            let mut next = e.uninit(t * n_embd)?;
5847            for r in 0..t {
5848                let mut row = e.uninit(n_embd)?;
5849                e.dtod_copy_view(&x.slice(r * n_embd..(r + 1) * n_embd), &mut row)?;
5850                // The caller owns this verify's position. During controller overlap, cache.pos
5851                // still describes generation N while this stage-0 walk belongs to N+1.
5852                let row_pos = e.htod_i32(&[(pos0 + r) as i32])?;
5853                let mut one = [&mut *cache];
5854                let out = self.step35_decode_batch_layers(
5855                    e,
5856                    row,
5857                    &mut one,
5858                    &[(pos0 + r) as i32],
5859                    &row_pos,
5860                    il,
5861                    il + 1,
5862                    &mut ph_last,
5863                )?;
5864                e.dtod_copy_into(&out, &mut next, r * n_embd)?;
5865            }
5866            self.dflash_tap(e, cache, il, &next, t)?;
5867            x = next;
5868        }
5869        Ok(x)
5870    }
5871
5872    /// DSpark drafter verify (lane/dspark-q38-recover): one t-row forward through the
5873    /// SERVING-CLASS verify funnel (`decode_step_t_core_stream` — the same numeric class
5874    /// MTP verify rides, GDN state advanced in place), returning per-row argmax tokens.
5875    /// Advances `cache.pos += t`; the caller owns snapshot/rollback (block acceptance is
5876    /// prefix-keep, not all-or-nothing).
5877    pub(crate) fn dspark_verify_t_am(
5878        &self,
5879        e: &Engine,
5880        tokens: &[u32],
5881        pos0: usize,
5882        cache: &mut Cache,
5883    ) -> Result<Vec<u32>, Box<dyn std::error::Error>> {
5884        let (logits, _hn) = self.decode_step_t_core_stream(
5885            e, tokens, pos0, cache, None, None, None, None, None, None,
5886        )?;
5887        let t = tokens.len();
5888        let v = self.output.out_features();
5889        let mut am_d = e.stream().alloc_zeros::<u32>(t)?;
5890        for r in 0..t {
5891            e.argmax_token_device_col(&logits, r, v, &mut am_d, r)?;
5892        }
5893        Ok(e.dtoh_u32(&am_d)?)
5894    }
5895
5896    /// DSpark verify returning the RAW verify logits [t, n_vocab] (device-resident) instead
5897    /// of per-row argmaxes — the sampled-admission arm's input (rejection-sampling accept
5898    /// gathers filtered p from these columns; lane/dspark-sampled-admission-20260820). Same
5899    /// forward as `dspark_verify_t_am`; the greedy arm keeps its argmax wrapper untouched.
5900    pub(crate) fn dspark_verify_t_logits(
5901        &self,
5902        e: &Engine,
5903        tokens: &[u32],
5904        pos0: usize,
5905        cache: &mut Cache,
5906    ) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
5907        let (logits, _hn) = self.decode_step_t_core_stream(
5908            e, tokens, pos0, cache, None, None, None, None, None, None,
5909        )?;
5910        Ok(logits)
5911    }
5912
5913    /// DSpark verify with the MTP column-stash armed: identical forward to
5914    /// `dspark_verify_t_am`, but fills a `VerifyCkpt` so a partial accept can restore
5915    /// column state directly (`dspark_commit_prefix`) instead of snapshot-replay.
5916    /// The ckpt type is opaque outside spec.rs (newtype) — dflash.rs threads it through.
5917    pub(crate) fn dspark_verify_t_am_ckpt(
5918        &self,
5919        e: &Engine,
5920        tokens: &[u32],
5921        pos0: usize,
5922        cache: &mut Cache,
5923    ) -> Result<(Vec<u32>, DsparkVerifyCkpt), Box<dyn std::error::Error>> {
5924        let mut ck = VerifyCkpt::new(self.layers.len());
5925        let (logits, _hn) = self.decode_step_t_core_stream(
5926            e,
5927            tokens,
5928            pos0,
5929            cache,
5930            None,
5931            Some(&mut ck),
5932            None,
5933            None,
5934            None,
5935            None,
5936        )?;
5937        let t = tokens.len();
5938        let v = self.output.out_features();
5939        let mut am_d = e.stream().alloc_zeros::<u32>(t)?;
5940        for r in 0..t {
5941            e.argmax_token_device_col(&logits, r, v, &mut am_d, r)?;
5942        }
5943        Ok((e.dtoh_u32(&am_d)?, DsparkVerifyCkpt(ck)))
5944    }
5945
5946    /// Engine-bundle slice 2: `dspark_verify_t_am_ckpt` with DEVICE tokens and NO readback.
5947    /// The verify tokens are the round's `chain_d` (cand layout: [anchor, drafts...]); the
5948    /// embed gathers its first `t` entries on-device (`embed_gather_u32_t` — bit-identical
5949    /// rows to the host arm), so the host never blocks on the draft chain before dispatching
5950    /// verify. Returns the device per-row argmax buffer; the caller merges its readback with
5951    /// the chain's into ONE sync. Forward, ckpt fill and argmax walk are `_ckpt` verbatim.
5952    pub(crate) fn dspark_verify_t_am_ckpt_dev(
5953        &self,
5954        e: &Engine,
5955        vtok: &CudaSlice<u32>,
5956        t: usize,
5957        pos0: usize,
5958        cache: &mut Cache,
5959        embd_dev: (&CudaSlice<u8>, i32, usize),
5960        graphs: Option<&mut DsparkVerifyGraphs>,
5961    ) -> Result<(CudaSlice<u32>, DsparkVerifyCkpt), Box<dyn std::error::Error>> {
5962        debug_assert!(
5963            vtok.len() >= t,
5964            "verify window exceeds the device token buffer"
5965        );
5966        // The slab flag is a per-round statement: clear it here so a verify that never
5967        // reaches the graphs door (rowwise env, a non-tparallel arm) cannot leave a
5968        // stale `true` steering the commit at slabs the round never wrote.
5969        let mut graphs = graphs;
5970        if let Some(g) = graphs.as_deref_mut() {
5971            g.round_slab = false;
5972        }
5973        let mut ck = VerifyCkpt::new(self.layers.len());
5974        // Dummy host tokens size the funnel; the embed reads `vtok` (the round-stream
5975        // arm's established pattern — spec.rs stream-mode verify does the same).
5976        let dummy = vec![0u32; t];
5977        let (logits, _hn) = self.decode_step_t_core_stream(
5978            e,
5979            &dummy,
5980            pos0,
5981            cache,
5982            Some(embd_dev),
5983            Some(&mut ck),
5984            None,
5985            None,
5986            Some(vtok),
5987            graphs,
5988        )?;
5989        let v = self.output.out_features();
5990        let mut am_d = e.stream().alloc_zeros::<u32>(t)?;
5991        for r in 0..t {
5992            e.argmax_token_device_col(&logits, r, v, &mut am_d, r)?;
5993        }
5994        Ok((am_d, DsparkVerifyCkpt(ck)))
5995    }
5996
5997    /// Ckpt-armed twin of [`Self::dspark_verify_t_logits`] (sampled-admission arm).
5998    pub(crate) fn dspark_verify_t_logits_ckpt(
5999        &self,
6000        e: &Engine,
6001        tokens: &[u32],
6002        pos0: usize,
6003        cache: &mut Cache,
6004    ) -> Result<(CudaSlice<f32>, DsparkVerifyCkpt), Box<dyn std::error::Error>> {
6005        let mut ck = VerifyCkpt::new(self.layers.len());
6006        let (logits, _hn) = self.decode_step_t_core_stream(
6007            e,
6008            tokens,
6009            pos0,
6010            cache,
6011            None,
6012            Some(&mut ck),
6013            None,
6014            None,
6015            None,
6016            None,
6017        )?;
6018        Ok((logits, DsparkVerifyCkpt(ck)))
6019    }
6020
6021    /// Restore the round to `keep` accepted columns from the verify stash: KV lens and
6022    /// pos from the pre-verify snapshot + keep, GDN conv/ssm from the stashed column
6023    /// state — no replay forward. The exact `commit_verified_prefix` the MTP path ships.
6024    pub(crate) fn dspark_commit_prefix(
6025        &self,
6026        e: &Engine,
6027        cache: &mut Cache,
6028        snap: &crate::cache::CacheSnapshot,
6029        ckpt: &DsparkVerifyCkpt,
6030        keep: usize,
6031    ) -> Result<(), Box<dyn std::error::Error>> {
6032        self.commit_verified_prefix(e, cache, snap, &ckpt.0, keep, false, None)
6033    }
6034
6035    /// Slice-3 commit twin: restore to `keep` accepted columns when the round's linear
6036    /// column stash lives in the graphs ctx's persistent slabs (`DsparkVerifyGraphs`) —
6037    /// the cols arm's exact semantics (KV lens + pos from the snapshot, GDN conv/ssm
6038    /// from the stash of column keep-1), slab-addressed and batched into two copy
6039    /// launches. `MEMRA_STATE_COPY_BATCH=0` falls back to per-layer view copies.
6040    pub(crate) fn dspark_commit_prefix_slab(
6041        &self,
6042        e: &Engine,
6043        cache: &mut Cache,
6044        snap: &crate::cache::CacheSnapshot,
6045        ctx: &DsparkVerifyGraphs,
6046        keep: usize,
6047    ) -> Result<(), Box<dyn std::error::Error>> {
6048        use cudarc::driver::DevicePtr;
6049        debug_assert!(keep >= 1, "keep==0 rounds take the legacy rollback");
6050        let mut conv_src: Vec<u64> = Vec::new();
6051        let mut ssm_src: Vec<u64> = Vec::new();
6052        let mut conv_dst: Vec<u64> = Vec::new();
6053        let mut ssm_dst: Vec<u64> = Vec::new();
6054        for il in 0..self.layers.len() {
6055            if let (Some(kvl), Some(saved)) = (cache.kv[il].as_mut(), snap.kv_len[il]) {
6056                kvl.len = saved + keep;
6057                e.set_i32_one(&mut kvl.len_d, kvl.len as i32)?;
6058            }
6059            if let Some(rl) = cache.recur[il].as_ref() {
6060                let (pc, ps, _cw, _sw) = ctx
6061                    .slab_row(e, il, keep - 1)
6062                    .ok_or("slab commit: linear layer missing from the graphs ctx")?;
6063                conv_src.push(pc);
6064                ssm_src.push(ps);
6065                let st = &e.gpu.stream();
6066                let (dc, _g0) = rl.conv_state.device_ptr(st);
6067                let (ds, _g1) = rl.ssm_state.device_ptr(st);
6068                conv_dst.push(dc as u64);
6069                ssm_dst.push(ds as u64);
6070            }
6071        }
6072        let n = conv_src.len();
6073        if n > 0 {
6074            if state_copy_batch_on() {
6075                let mut tt = vec![0u64; 2 * n];
6076                tt[..n].copy_from_slice(&conv_src);
6077                tt[n..].copy_from_slice(&conv_dst);
6078                let ct = e.htod_u64(&tt)?;
6079                tt[..n].copy_from_slice(&ssm_src);
6080                tt[n..].copy_from_slice(&ssm_dst);
6081                let st = e.htod_u64(&tt)?;
6082                e.copy_batch_uniform_f32(&ct, n, ctx.conv_words)?;
6083                e.copy_batch_uniform_f32(&st, n, ctx.ssm_words)?;
6084            } else {
6085                let (cw, sw) = (ctx.conv_words, ctx.ssm_words);
6086                let row = keep - 1;
6087                for il in 0..self.layers.len() {
6088                    let Some(rl) = cache.recur[il].as_mut() else {
6089                        continue;
6090                    };
6091                    let k = ctx.lin_pos[&il];
6092                    {
6093                        let sv = e.view(&ctx.stash_conv[k], (row + 1) * cw);
6094                        let win = sv.slice(row * cw..(row + 1) * cw);
6095                        e.copy_view_into(&mut rl.conv_state, 0, &win, cw)?;
6096                    }
6097                    {
6098                        let sv = e.view(&ctx.stash_ssm[k], (row + 1) * sw);
6099                        let win = sv.slice(row * sw..(row + 1) * sw);
6100                        e.copy_view_into(&mut rl.ssm_state, 0, &win, sw)?;
6101                    }
6102                }
6103            }
6104        }
6105        cache.pos = snap.pos + keep;
6106        Ok(())
6107    }
6108
6109    /// Qwen35-family verify trunk in the live serving numeric class.
6110    ///
6111    /// Serving intentionally keeps this architecture in the generic batched program even at
6112    /// B=1. The older verify walk used its own mirrored dispatch and can flip near-tie argmaxes.
6113    ///
6114    /// Two arms, one numeric class:
6115    /// - DENSE GDN (`DenseMlp`, t<=16): `qwen35_verify_tparallel` — the weight ops (norms,
6116    ///   projections, FFN) hoist to m=T through the exact-tier batched kernels whose per-row
6117    ///   program IS the m=1 program (`matmul_pre == fused2 per (tensor,row); _bN mmvq per-row
6118    ///   == m=1` — decode_batch.rs v2 note), while the state ops (conv ring, gdn scan, KV
6119    ///   append, fa decode) stay a per-row loop running the b_n=1 serving kernels with each
6120    ///   row's own t_kv-driven arm pick (the straddle law: every row executes the exact
6121    ///   program its isolated serving step would). One weight read per layer per round
6122    ///   instead of T — this is what makes MTP profitable in the exact class (the per-row
6123    ///   walk measured verify(K+1) ~= (K+1) plain steps: 69 -> 44 tok/s served, 2026-08-15).
6124    /// - MoE / t>16 / `MEMRA_SPEC_VERIFY_ROWWISE=1`: the per-row replay of the authoritative
6125    ///   serving layer body, preserving single-session autoregressive cache order (the
6126    ///   correctness reference; also the rollback seam for the t-parallel arm).
6127    ///
6128    /// Bit-identity of the t-parallel arm vs the rowwise arm is gated by spec-serve-gate
6129    /// (zero differing logits at T=1..4, K arms) + the 8-prompt ON/OFF canary before ship.
6130    #[allow(clippy::too_many_arguments)]
6131    fn qwen35_verify_batch_layers(
6132        &self,
6133        e: &Engine,
6134        x: CudaSlice<f32>,
6135        lo: usize,
6136        hi: usize,
6137        pos0: usize,
6138        t: usize,
6139        cache: &mut Cache,
6140        ckpt: Option<&mut VerifyCkpt>,
6141        stream: Option<(&CudaSlice<u32>, &CudaSlice<i32>)>,
6142        graphs: Option<&mut DsparkVerifyGraphs>,
6143    ) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
6144        // Qwen35Moe admitted 2026-08-20 (lane/draftcost-moe): the t-parallel arm already
6145        // carries the MoE FFN (`moe_ffn_il_zq8` at m=T) and the GDN per-row state loop; the
6146        // arch fence was a qualification gate, not a mechanism gap. Measured disease on the
6147        // 35B-A3B class: rowwise verify ~= 5.6 ms per drafted token (one full trunk step
6148        // each) — the same (K+1)-plain-steps wall the dense admission fixed on 2026-08-15.
6149        // Rollback seam unchanged: MEMRA_SPEC_VERIFY_ROWWISE=1.
6150        let rowwise = std::env::var("MEMRA_SPEC_VERIFY_ROWWISE").as_deref() == Ok("1")
6151            || !self.batched_serving_numeric_class()
6152            || t > 16;
6153        if rowwise {
6154            if stream.is_some() {
6155                // rowwise replays per row with host cache.pos — irreconcilable with a
6156                // device position counter. Burst callers must keep t <= 16 and the
6157                // ROWWISE env unset; refusing beats silently mispositioned rows.
6158                return Err("qwen35 rowwise verify has no ROUND-STREAM arm \
6159                            (t > 16 or MEMRA_SPEC_VERIFY_ROWWISE=1)"
6160                    .into());
6161            }
6162            self.qwen35_verify_rowwise(e, x, lo, hi, pos0, t, cache, ckpt)
6163        } else {
6164            self.qwen35_verify_tparallel(e, x, lo, hi, pos0, t, cache, ckpt, stream, graphs)
6165        }
6166    }
6167
6168    /// The per-row correctness reference: replay each verify row through the authoritative
6169    /// serving layer body (`decode_batch_layers` at b_n=1). T full weight reads per layer.
6170    #[allow(clippy::too_many_arguments)]
6171    fn qwen35_verify_rowwise(
6172        &self,
6173        e: &Engine,
6174        mut x: CudaSlice<f32>,
6175        lo: usize,
6176        hi: usize,
6177        pos0: usize,
6178        t: usize,
6179        cache: &mut Cache,
6180        mut ckpt: Option<&mut VerifyCkpt>,
6181    ) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
6182        let n_embd = self.cfg.n_embd as usize;
6183        let saved_pos = cache.pos;
6184        let mut ph_last = std::time::Instant::now();
6185        for il in lo..hi {
6186            let mut next = e.uninit(t * n_embd)?;
6187            let mut col_states: Option<Vec<(CudaSlice<f32>, CudaSlice<f32>)>> =
6188                if ckpt.is_some() && t >= 2 && matches!(self.layers[il].mixer, Mixer::Linear(_)) {
6189                    Some(Vec::with_capacity(t - 1))
6190                } else {
6191                    None
6192                };
6193            for r in 0..t {
6194                cache.pos = pos0 + r;
6195                let mut row = e.uninit(n_embd)?;
6196                e.dtod_copy_view(&x.slice(r * n_embd..(r + 1) * n_embd), &mut row)?;
6197                let row_pos = e.htod_i32(&[(pos0 + r) as i32])?;
6198                let mut one = [&mut *cache];
6199                let ctx = self.batch_layer_ctx(e, &one, il, il + 1)?;
6200                let out = match self.decode_batch_layers(
6201                    e,
6202                    row,
6203                    &mut one,
6204                    &ctx,
6205                    &row_pos,
6206                    &mut ph_last,
6207                ) {
6208                    Ok(out) => out,
6209                    Err(error) => {
6210                        cache.pos = saved_pos;
6211                        return Err(error);
6212                    }
6213                };
6214                e.dtod_copy_into(&out, &mut next, r * n_embd)?;
6215                if r + 1 < t {
6216                    if let Some(states) = col_states.as_mut() {
6217                        let recur = cache.recur[il]
6218                            .as_ref()
6219                            .ok_or("Qwen35-MoE linear verify layer has no recurrent state")?;
6220                        states.push((
6221                            e.clone_dtod(&recur.conv_state)?,
6222                            e.clone_dtod(&recur.ssm_state)?,
6223                        ));
6224                    }
6225                }
6226            }
6227            if let (Some(checkpoint), Some(states)) = (ckpt.as_deref_mut(), col_states) {
6228                checkpoint.cols[il] = Some(states);
6229            }
6230            x = next;
6231        }
6232        cache.pos = saved_pos;
6233        Ok(x)
6234    }
6235
6236    /// T-PARALLEL VERIFY IN THE SERVING NUMERIC CLASS (lane/tparallel-verify, 2026-08-15).
6237    ///
6238    /// The weight ops run ONCE per layer at m=T; the state ops run per row through the same
6239    /// b_n=1 serving kernels the rowwise replay uses. Per-row bit-identity rests on the two
6240    /// pins the serving batch tier already carries:
6241    ///   * `matmul_pre` / `_bN` mmvq: per-row program == m=1 program (decode_batch.rs v2 note,
6242    ///     kernel-check pinned) — so a [T, n_embd] projection row equals the row projected
6243    ///     alone;
6244    ///   * row-indexed norms/elementwise (`rms_norm`, `quantize_q8_1`, `add_rms_norm`,
6245    ///     `gated_rmsnorm[_q8_1]`, `silu_mul`, `rope_neox` with per-row positions): the T-row
6246    ///     launch is the per-row program (same pin the generic verify's fused norms rely on).
6247    /// The sequential dependencies keep their exact serving order: the conv ring / gdn scan
6248    /// chain state row -> row through the `_b` kernels at b_n=1 (ping-pong via a 6-entry
6249    /// alternating pointer table, host handles swapped per row so VerifyCkpt clones the
6250    /// canonical state exactly as the rowwise arm does), and each row's KV append + fa decode
6251    /// picks its arm from ITS OWN t_kv (append: format-only; fa: `fa_seqs_eligible` + its own
6252    /// `fa_split_keys` rung at b_n=1) — the straddle law per row, so every row executes the
6253    /// program its isolated B=1 serving step would.
6254    ///
6255    /// Cost: 1 weight read per layer per round + T state micro-launches, vs the rowwise arm's
6256    /// T weight reads. Gated bit-identical vs the rowwise arm by spec-serve-gate + canary.
6257    #[allow(clippy::too_many_arguments)]
6258    fn qwen35_verify_tparallel(
6259        &self,
6260        e: &Engine,
6261        mut x: CudaSlice<f32>,
6262        lo: usize,
6263        hi: usize,
6264        pos0: usize,
6265        t: usize,
6266        cache: &mut Cache,
6267        mut ckpt: Option<&mut VerifyCkpt>,
6268        stream: Option<(&CudaSlice<u32>, &CudaSlice<i32>)>,
6269        mut graphs: Option<&mut DsparkVerifyGraphs>,
6270    ) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
6271        let seqs_append =
6272            std::env::var("MEMRA_BATCH_APPEND").as_deref() != Ok("0") && !Engine::kv_fp8_on();
6273        let batch_fa_on = std::env::var("MEMRA_BATCH_FA").as_deref() != Ok("0");
6274
6275        // Merge guard (v0.98 train, re-affirmed on the v0.100 train over slice 4c): the
6276        // ROUND-STREAM arm (lane/draftcost-moe, device position counter) and the dspark
6277        // verify graphs (engine-bundle slice 3 / trunk slice 4c) have no common caller —
6278        // stream rides the qwen35moe burst, graphs ride the dspark route. If a future
6279        // caller arms both, refuse loudly instead of silently dropping the graphs ctx
6280        // (the stream linear arm takes linear_attn_verify_t, not the graphed segment or
6281        // full-verify bodies).
6282        if stream.is_some() && graphs.is_some() {
6283            return Err(
6284                "qwen35 tparallel verify: ROUND-STREAM and dspark verify graphs \
6285                        cannot arm together"
6286                    .into(),
6287            );
6288        }
6289        // Engine-bundle slice 3 + slice 4c: with a graphs ctx armed, pointer tables are
6290        // refreshed once per verify (the gdn ping-pong moves handles; a fresh generation
6291        // moves the kv caches). Then:
6292        //  - slice 4c: when the WHOLE round rides one seqs rung (every row batchable, one
6293        //    split-ladder step, rung covers the round), the ENTIRE walk replays as ONE
6294        //    full-verify graph per (vt, rung) — linear layers through the shared
6295        //    `qwen35_tparallel_linear_layer` body, full-attention layers through the
6296        //    shared `qwen35_tparallel_fa_layer` body in graph mode.
6297        //  - fallback (straddle rounds, below the vec floor, partial walks): runs of
6298        //    consecutive LINEAR layers replay the slice-3 per-(segment, vt) graphs and
6299        //    the full-attention layers run eager (batched rows when eligible).
6300        if let Some(g) = graphs.as_deref_mut() {
6301            g.refresh_tables(e, cache)?;
6302            g.round_slab = false;
6303            if let Some(rung) = g.full_rung(self, cache, lo, hi, t, seqs_append && batch_fa_on) {
6304                // Pool ceiling (dspark_vg_cap): an existing key always replays; a NEW
6305                // full capture past the ceiling falls through to the segment/eager arms.
6306                if g.full.contains_key(&(t, rung, hi)) || g.can_capture() {
6307                    let out = g.run_full(self, e, lo, hi, &x, t, pos0, rung, cache)?;
6308                    g.round_slab = true;
6309                    return Ok(out);
6310                }
6311            }
6312            // Round-atomic ceiling check for the segment door: if any linear run in this
6313            // walk would need a NEW capture past the ceiling, the whole round runs the
6314            // eager cols-ckpt walk (mixing slab- and cols-stashed layers in one round
6315            // would corrupt the commit).
6316            if !g.segments_ready(self, lo, hi, t) {
6317                graphs = None;
6318            }
6319        }
6320        // STREAM (2b, lane/draftcost-moe): positions come from the device round counter
6321        // (pos_iota / i32_copy_add) so a burst round needs no host position knowledge.
6322        let pos_d = match stream {
6323            Some((_, ctr)) => {
6324                let mut p = e.alloc_uninit::<i32>(t)?;
6325                e.pos_iota(ctr, &mut p, t)?;
6326                p
6327            }
6328            None => {
6329                let pos_host: Vec<i32> = (0..t).map(|r| (pos0 + r) as i32).collect();
6330                e.htod_i32(&pos_host)?
6331            }
6332        };
6333        // Per-row 1-element position buffers, built ONCE per verify (the append/fa wrappers
6334        // take owned pos slices; building these inside the layer x row loops cost 16xT H2Ds).
6335        // LAZY since slice 4: the batched fa/append arm never touches them — they are built
6336        // on the first per-row fallback layer only (stream-aware there; the stream FA arm
6337        // rides the dc rows kernels and never reaches the fallback).
6338        let mut pos_rows: Option<Vec<CudaSlice<i32>>> = None;
6339        let mut il = lo;
6340        while il < hi {
6341            if graphs.is_some() && matches!(self.layers[il].mixer, Mixer::Linear(_)) {
6342                let mut end = il;
6343                while end < hi && matches!(self.layers[end].mixer, Mixer::Linear(_)) {
6344                    end += 1;
6345                }
6346                let g = graphs.as_deref_mut().expect("checked above");
6347                x = g.run_segment(self, e, il, end, &x, t, cache)?;
6348                g.round_slab = true;
6349                il = end;
6350                continue;
6351            }
6352            let layer = &self.layers[il];
6353            if stream.is_none() && matches!(layer.mixer, Mixer::Linear(_)) {
6354                // Eager linear layer (no graphs ctx): the shared body, legacy cols-ckpt arm.
6355                // Under ROUND-STREAM the linear layers ride the fa-body match's stream arm
6356                // below (linear_attn_verify_t — the stream COMMIT needs its GdnStash).
6357                x = self.qwen35_tparallel_linear_layer(
6358                    e,
6359                    il,
6360                    &x,
6361                    t,
6362                    cache,
6363                    ckpt.as_deref_mut(),
6364                    None,
6365                    None,
6366                )?;
6367                il += 1;
6368                continue;
6369            }
6370            // Full-attention (or stream-Linear, or MLA-refusing) layer: the extracted
6371            // shared body — eager arm (fresh per-verify pos/table, exact t_kv sizing,
6372            // in-body len bump). The slice-4c captured full-verify graphs run the SAME
6373            // body in graph mode; under ROUND-STREAM the body's dc-rows / GDN stream arms
6374            // run (lane/draftcost-moe).
6375            x = self.qwen35_tparallel_fa_layer(
6376                e,
6377                il,
6378                &x,
6379                t,
6380                cache,
6381                FaLayerArgs {
6382                    pos_d: &pos_d,
6383                    pos_rows: &mut pos_rows,
6384                    pos0,
6385                    seqs_append,
6386                    batch_fa_on,
6387                    graph_cap: None,
6388                    stream,
6389                    ckpt: ckpt.as_deref_mut(),
6390                },
6391            )?;
6392            il += 1;
6393        }
6394        Ok(x)
6395    }
6396
6397    /// SHARED dense-FFN body for the qwen35 t-parallel layers (trunk-kernels slice B) —
6398    /// ONE copy for the fa and linear layer bodies (the verify_layers extraction lesson).
6399    /// Dual arm (MEMRA_TK_FFN_DUAL, default on): gate+up in ONE dual launch from the
6400    /// pre-quantized activation with macro-scales DEFERRED into the fused SwiGLU+q8_1
6401    /// epilogue, then ffn_down from the fused (aq, ad) — the q27 verify chain verbatim.
6402    /// Every door is the bit-identical proven one: `matmul_decode_exact_dual_pre` (per
6403    /// (tensor,token,row) == the two singles), `silu_mul_scaled_q8_1` (y*s inline == the
6404    /// scale_inplace store, value-exact; fused quantize == quantize_q8_1 bytes),
6405    /// `matmul_decode_exact_pre` (dispatch mirror of the singles' q8_1-fast tail).
6406    /// Dual-refused (t outside 2..=7, non-NVFP4, layout mismatch) or seam off -> the
6407    /// original singles chain, byte-for-byte.
6408    #[allow(clippy::too_many_arguments)]
6409    fn qwen35_tparallel_dense_ffn(
6410        &self,
6411        e: &Engine,
6412        ffn_gate: &crate::model::GpuTensor,
6413        ffn_up: &crate::model::GpuTensor,
6414        ffn_down: &crate::model::GpuTensor,
6415        zn: &CudaSlice<f32>,
6416        t: usize,
6417        n_embd: usize,
6418    ) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
6419        let n_ff = ffn_gate.out_features();
6420        let (zq, zd) = e.quantize_q8_1(zn, t, n_embd)?;
6421        if Engine::tk_ffn_dual_on() {
6422            if let Some(((g, gs), (u, us))) =
6423                e.matmul_decode_exact_dual_pre(ffn_gate, ffn_up, &zq, &zd, t)?
6424            {
6425                if e.uses_q8_1_fast(ffn_down) {
6426                    let (aq, ad) = e.silu_mul_scaled_q8_1(&g, &u, gs, us, t * n_ff)?;
6427                    return e.matmul_decode_exact_pre(ffn_down, &aq, &ad, t);
6428                }
6429                let mut act = e.uninit(t * n_ff)?;
6430                e.silu_mul_scaled(&g, &u, gs, us, &mut act, t * n_ff)?;
6431                let (aq, ad) = e.quantize_q8_1(&act, t, n_ff)?;
6432                return e.matmul_pre(ffn_down, &aq, &ad, &act, t);
6433            }
6434        }
6435        // v1 singles chain (seam off or dual-refused) — the pre-slice-B body verbatim.
6436        let g = e.matmul_pre(ffn_gate, &zq, &zd, zn, t)?;
6437        let u = e.matmul_pre(ffn_up, &zq, &zd, zn, t)?;
6438        let mut act = e.uninit(t * n_ff)?;
6439        e.silu_mul(&g, &u, &mut act, t * n_ff)?;
6440        let (aq, ad) = e.quantize_q8_1(&act, t, n_ff)?;
6441        e.matmul_pre(ffn_down, &aq, &ad, &act, t)
6442    }
6443
6444    /// ONE t-parallel FULL-ATTENTION layer (attn_norm + fa mixer + post_attn_norm + FFN +
6445    /// tap) — extracted from the walk exactly like `qwen35_tparallel_linear_layer` so the
6446    /// eager walk and the slice-4c captured full-verify graphs execute the SAME body (a
6447    /// second copy is how dispatch mirrors drift — the verify_layers extraction lesson).
6448    ///
6449    /// `args.graph_cap = Some((table, off, rung_end))` is the captured-graph mode:
6450    /// - kv base-pointer pairs come from the ctx-owned persistent table at `off` (a fresh
6451    ///   generation's cache lands at new addresses that only the per-verify table refresh
6452    ///   knows — the slice-3 baked-address lesson);
6453    /// - the seqs twins size partials/grid at `rung_end` and pin `split_keys` to the
6454    ///   rung's ladder value: `n_splits_max` is pure stride, splits >= ns_eff write the
6455    ///   EMPTY partial the combine never reads, and every per-row T_kv derives in-kernel
6456    ///   from `pos_seq[z]` — so one captured launch replays bit-identically for every
6457    ///   round whose rows all sit inside the rung;
6458    /// - the host len bump moves to the replay caller (captured host code does not
6459    ///   re-run at replay).
6460    /// Graph mode REFUSES any round the batched arm cannot take: the per-row fallback
6461    /// host-branches on t_kv and must never be captured.
6462    #[allow(clippy::too_many_arguments)]
6463    fn qwen35_tparallel_fa_layer(
6464        &self,
6465        e: &Engine,
6466        il: usize,
6467        x: &CudaSlice<f32>,
6468        t: usize,
6469        cache: &mut Cache,
6470        args: FaLayerArgs<'_>,
6471    ) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
6472        use cudarc::driver::DevicePtr;
6473        let cfg = &self.cfg;
6474        let n_embd = cfg.n_embd as usize;
6475        let eps = cfg.rms_eps;
6476        let head_dim_global = cfg.head_dim_k as usize;
6477        let layer = &self.layers[il];
6478        let FaLayerArgs {
6479            pos_d,
6480            pos_rows,
6481            pos0,
6482            seqs_append,
6483            batch_fa_on,
6484            graph_cap,
6485            stream,
6486            mut ckpt,
6487        } = args;
6488
6489        // ---- attn_norm + q8_1 quantize at m=T (row-indexed == per-row) ----
6490        let anorm = layer.attn_norm.float_data();
6491        let mut xn = e.uninit(t * n_embd)?;
6492        e.rms_norm(x, anorm, &mut xn, n_embd, t, eps)?;
6493        let (hq, hd) = e.quantize_q8_1(&xn, t, n_embd)?;
6494
6495        let mixed: CudaSlice<f32> = match &layer.mixer {
6496            Mixer::Mla(_) => crate::hybrid::mla_forward_unimplemented(),
6497            // STREAM ARM (2b, lane/draftcost-moe): under a device position counter the
6498            // per-row serving-kernel chain cannot run (host state swaps keyed on host
6499            // row index are fine, but the stream COMMIT needs the GdnStash for its _dc
6500            // rebuild — the per-row chain only produces per-column clones). GDN rides
6501            // `linear_attn_verify_t`: batched q8_1-class projections, stash-producing,
6502            // and its one-scan recurrence is pinned bit-identical to T chained T=1
6503            // steps (its header + kernel-check). Position-independent, so no counter
6504            // plumbing is needed. Guards mirror the generic call site exactly.
6505            Mixer::Linear(la) if stream.is_some() => {
6506                if !(t >= 3 || (t == 2 && spec_m2()))
6507                    || !self.mixer_in_q8_1_fast(e, &layer.mixer)
6508                    || !e.uses_q8_1_fast(&la.ssm_out)
6509                {
6510                    return Err("qwen35 stream verify: GDN batched arm requires t>=3 \
6511                                (or MEMRA_SPEC_M2 at t=2) and q8_1-fast projections"
6512                        .into());
6513                }
6514                let want = ckpt.is_some();
6515                let (out, stash) =
6516                    self.linear_attn_verify_t(e, la, &xn, Some((&hq, &hd)), t, cache, il, want)?;
6517                if let (Some(ck), Some(st)) = (ckpt.as_deref_mut(), stash) {
6518                    ck.gdn[il] = Some(st);
6519                }
6520                out
6521            }
6522            Mixer::Linear(_) => {
6523                unreachable!("linear layers ride qwen35_tparallel_linear_layer")
6524            }
6525            Mixer::Full(fa) => {
6526                let geometry = cfg.full_attention_geometry_at(il as u32);
6527                let n_head = geometry.n_head as usize;
6528                let n_head_kv = geometry.n_head_kv as usize;
6529                let head_dim = geometry.head_dim_k as usize;
6530                let rope_dims = geometry.n_rot as usize;
6531                let rope_base = geometry.rope_base;
6532                let scale = geometry.attention_scale();
6533                // Batched projections: one weight read serves all T rows.
6534                // GROUP-3 twin (trunk-kernels slice D): q/k/v in ONE launch — the group4
6535                // kernel with n3=0, bit-identical per (tensor, token, row) to the three
6536                // singles; refused or MEMRA_TK_FA_GROUP=0 -> singles byte-for-byte.
6537                let (qf, mut k, v) = match e.matmul_decode_exact_group3_pre(
6538                    [&fa.wq, &fa.wk, &fa.wv],
6539                    &hq,
6540                    &hd,
6541                    t,
6542                )? {
6543                    Some(mut g3) => {
6544                        let v = g3.pop().unwrap();
6545                        let k = g3.pop().unwrap();
6546                        let qf = g3.pop().unwrap();
6547                        (qf, k, v)
6548                    }
6549                    None => (
6550                        e.matmul_pre(&fa.wq, &hq, &hd, &xn, t)?,
6551                        e.matmul_pre(&fa.wk, &hq, &hd, &xn, t)?,
6552                        e.matmul_pre(&fa.wv, &hq, &hd, &xn, t)?,
6553                    ),
6554                };
6555                let gated =
6556                    geometry.attention_gate == memra_gguf::config::AttentionGateKind::FusedQ;
6557                let (mut q, gate) = if gated {
6558                    let mut qs = e.uninit(t * n_head * head_dim)?;
6559                    let mut gs = e.uninit(t * n_head * head_dim)?;
6560                    e.q_gate_split(&qf, &mut qs, &mut gs, head_dim, n_head, t)?;
6561                    (qs, Some(gs))
6562                } else {
6563                    (qf, None)
6564                };
6565                let mut qn = e.uninit(t * n_head * head_dim)?;
6566                e.rms_norm(
6567                    &q,
6568                    fa.q_norm.float_data(),
6569                    &mut qn,
6570                    head_dim,
6571                    t * n_head,
6572                    eps,
6573                )?;
6574                q = qn;
6575                let mut kn = e.uninit(t * n_head_kv * head_dim)?;
6576                e.rms_norm(
6577                    &k,
6578                    fa.k_norm.float_data(),
6579                    &mut kn,
6580                    head_dim,
6581                    t * n_head_kv,
6582                    eps,
6583                )?;
6584                k = kn;
6585                e.rope_neox(
6586                    &mut q, pos_d, head_dim, rope_dims, n_head, t, rope_base, 1.0,
6587                )?;
6588                e.rope_neox(
6589                    &mut k, pos_d, head_dim, rope_dims, n_head_kv, t, rope_base, 1.0,
6590                )?;
6591
6592                // Per-row append + attend: row r sees rows 0..r in KV (causal within the
6593                // draft), each through the b_n=1 serving kernels at its own t_kv.
6594                let q_dim = n_head * head_dim;
6595                let kv_dim = n_head_kv * head_dim;
6596                let mut attn = e.uninit(t * q_dim)?;
6597                let (kdk, kdv, ktb, vtb, len0, kv_local) = {
6598                    let kvl = cache.kv[il].as_ref().unwrap();
6599                    // [2T] interleaved k,v base pointers: entry pair z serves row z of
6600                    // the batched twins; the per-row fallback reads pair 0 (same cache
6601                    // for every row of one layer). Graph mode reads the ctx table.
6602                    let local: Option<CudaSlice<u64>> = match graph_cap {
6603                        Some(_) => None,
6604                        None => {
6605                            let s = &e.gpu.stream();
6606                            let (pk, _g) = kvl.k.device_ptr(s);
6607                            let (pv, _g2) = kvl.v.device_ptr(s);
6608                            let mut tbl = Vec::with_capacity(2 * t);
6609                            for _ in 0..t {
6610                                tbl.push(pk as u64);
6611                                tbl.push(pv as u64);
6612                            }
6613                            Some(e.htod_u64(&tbl)?)
6614                        }
6615                    };
6616                    (
6617                        kvl.kv_dim_k,
6618                        kvl.kv_dim_v,
6619                        kvl.k_tok_bytes,
6620                        kvl.v_tok_bytes,
6621                        kvl.len,
6622                        local,
6623                    )
6624                };
6625                let (kv_tbl, kv_off): (&CudaSlice<u64>, usize) = match graph_cap {
6626                    Some((tb, off, _)) => (tb, off),
6627                    None => (kv_local.as_ref().expect("built above"), 0),
6628                };
6629                // Slice 4 (fa/append rows — see dspark_fa_rows_on): the whole per-row
6630                // section batches into the z-batched serving twins when every row of
6631                // this round takes the v4-seqs arm on ONE fa_split_keys rung. Both
6632                // guards are evaluated at the round's FIRST and LAST t_kv — the
6633                // eligibility window (vec floor .. v4 max) and each split-ladder rung
6634                // are intervals in t_kv, so ends-inside means all-inside (the straddle
6635                // law). Appending all T rows before any attend is read-equivalent to
6636                // the interleaved order: row r's walk reads keys 0..len0+r only, and
6637                // rows > r land at slots it never touches; every written cache row is
6638                // the per-token appender's exact warp program (kernel-check pinned).
6639                let t_kv_first = len0 + 1;
6640                let t_kv_last = len0 + t;
6641                let rows_batched = t >= 2
6642                    && seqs_append
6643                    && batch_fa_on
6644                    && dspark_fa_rows_on()
6645                    // the z-batched twins read stacked rows at the CACHE's kv dims;
6646                    // the projection stack is [T, n_head_kv*head_dim] — they must be
6647                    // the same stride or row z misaligns (true for this family; the
6648                    // guard keeps any asymmetric-kv model on the per-row loop).
6649                    && kdk == kv_dim
6650                    && kdv == kv_dim
6651                    && crate::fa_seqs_eligible(t_kv_first, head_dim_global)
6652                    && crate::fa_seqs_eligible(t_kv_last, head_dim_global)
6653                    && crate::fa_split_keys(t_kv_first, cfg.n_head_kv as usize)
6654                        == crate::fa_split_keys(t_kv_last, cfg.n_head_kv as usize);
6655                // Sizing: eager = exact round bound; graph mode = the rung end (stride +
6656                // grid only — bytes proven equal above). Capture-time invariants refuse
6657                // loudly rather than bake a divergent body.
6658                let (size_kv_max, sp) = match graph_cap {
6659                    Some((_, _, rung)) => {
6660                        if !rows_batched {
6661                            return Err(format!(
6662                                "fa graph capture: layer {il} round is not batchable \
6663                                 (t_kv {t_kv_first}..{t_kv_last}) — the per-row fallback \
6664                                 must never be captured"
6665                            )
6666                            .into());
6667                        }
6668                        let sp_r = crate::fa_split_keys(rung, cfg.n_head_kv as usize);
6669                        if t_kv_last > rung
6670                            || sp_r != crate::fa_split_keys(t_kv_last, cfg.n_head_kv as usize)
6671                        {
6672                            return Err(format!(
6673                                "fa graph capture: rung {rung} does not cover round \
6674                                 t_kv {t_kv_first}..{t_kv_last} on one split ladder step"
6675                            )
6676                            .into());
6677                        }
6678                        (rung, sp_r)
6679                    }
6680                    None => (
6681                        t_kv_last,
6682                        crate::fa_split_keys(t_kv_last, cfg.n_head_kv as usize),
6683                    ),
6684                };
6685                if let Some((_, ctr)) = stream {
6686                    // STREAM ARM (2b): one batched dc append + the multi-row dc attention
6687                    // — the generic stream arm's exact shape (rows kernels are pinned
6688                    // byte-identical to the per-row programs by kernel-check). Host len
6689                    // stays a stale lower bound; the burst drain reconciles it.
6690                    let kvl = cache.kv[il].as_mut().unwrap();
6691                    e.append_kv_quantized_rows_dc(
6692                        &k,
6693                        &v,
6694                        &mut kvl.k,
6695                        &mut kvl.v,
6696                        ctr,
6697                        t,
6698                        kdk,
6699                        kdv,
6700                        ktb,
6701                        vtb,
6702                        Engine::kv_fp8_on(),
6703                    )?;
6704                    let upper = (kvl.len + t + 64).min(cache.max_ctx);
6705                    let k_view = e.view_u8(&kvl.k, upper * ktb);
6706                    let v_view = e.view_u8(&kvl.v, upper * vtb);
6707                    e.fa_decode_rows_dc(
6708                        &q, &k_view, &v_view, &mut attn, head_dim, n_head, n_head_kv, ctr, upper,
6709                        t, scale, ktb, vtb, 0, false,
6710                    )?;
6711                } else if rows_batched {
6712                    e.append_kv_quantized_seqs(
6713                        &k,
6714                        &v,
6715                        &kv_tbl.slice(kv_off..kv_off + 2 * t),
6716                        pos_d,
6717                        t,
6718                        kdk,
6719                        kdv,
6720                        ktb,
6721                        vtb,
6722                    )?;
6723                    if graph_cap.is_none() {
6724                        cache.kv[il].as_mut().unwrap().len += t;
6725                    }
6726                    e.fa_decode_batch_seqs_v4(
6727                        &q,
6728                        &kv_tbl.slice(kv_off..kv_off + 2 * t),
6729                        pos_d,
6730                        &mut attn,
6731                        head_dim,
6732                        n_head,
6733                        n_head_kv,
6734                        t,
6735                        size_kv_max,
6736                        scale,
6737                        sp,
6738                        ktb,
6739                        vtb,
6740                    )?;
6741                } else {
6742                    if pos_rows.is_none() {
6743                        // Stream-aware for symmetry with pos_d (the stream FA arm rides
6744                        // the dc rows kernels above and never reaches this fallback).
6745                        *pos_rows = Some(match stream {
6746                            Some((_, ctr)) => (0..t)
6747                                .map(|r| {
6748                                    let mut b = e.alloc_uninit::<i32>(1)?;
6749                                    e.i32_copy_add(ctr, &mut b, r as i32)?;
6750                                    Ok(b)
6751                                })
6752                                .collect::<Result<_, Box<dyn std::error::Error>>>()?,
6753                            None => (0..t)
6754                                .map(|r| e.htod_i32(&[(pos0 + r) as i32]))
6755                                .collect::<Result<_, _>>()?,
6756                        });
6757                    }
6758                    let pos_rows = pos_rows.as_ref().unwrap();
6759                    for r in 0..t {
6760                        // Owned per-row scratch: the b_n=1 kernels take packed batch buffers
6761                        // whose row 0 is this row (arithmetic-free materialization copies,
6762                        // same as decode's per-seq fallback arm).
6763                        let mut k_row = e.uninit(kv_dim)?;
6764                        e.dtod_copy_view(&k.slice(r * kv_dim..(r + 1) * kv_dim), &mut k_row)?;
6765                        let mut v_row = e.uninit(kv_dim)?;
6766                        e.dtod_copy_view(&v.slice(r * kv_dim..(r + 1) * kv_dim), &mut v_row)?;
6767                        let pos_row = &pos_rows[r];
6768                        let kvl = cache.kv[il].as_mut().unwrap();
6769                        if seqs_append {
6770                            e.append_kv_quantized_seqs(
6771                                &k_row,
6772                                &v_row,
6773                                &kv_tbl.slice(kv_off..kv_off + 2),
6774                                pos_row,
6775                                1,
6776                                kdk,
6777                                kdv,
6778                                ktb,
6779                                vtb,
6780                            )?;
6781                            kvl.len += 1;
6782                        } else {
6783                            e.append_kv_quantized_view(
6784                                &k_row.slice(0..kv_dim),
6785                                &v_row.slice(0..kv_dim),
6786                                &mut kvl.k,
6787                                &mut kvl.v,
6788                                kvl.len,
6789                                kvl.kv_dim_k,
6790                                kvl.kv_dim_v,
6791                                kvl.k_tok_bytes,
6792                                kvl.v_tok_bytes,
6793                                Engine::kv_fp8_on(),
6794                            )?;
6795                            kvl.len += 1;
6796                        }
6797                        let t_kv = kvl.len;
6798                        let mut q_row = e.uninit(q_dim)?;
6799                        e.dtod_copy_view(&q.slice(r * q_dim..(r + 1) * q_dim), &mut q_row)?;
6800                        let mut a_row = e.uninit(q_dim)?;
6801                        if batch_fa_on && crate::fa_seqs_eligible(t_kv, head_dim_global) {
6802                            let sp0_r = crate::fa_split_keys(t_kv, cfg.n_head_kv as usize);
6803                            e.fa_decode_batch_seqs_v4(
6804                                &q_row,
6805                                &kv_tbl.slice(kv_off..kv_off + 2),
6806                                pos_row,
6807                                &mut a_row,
6808                                head_dim,
6809                                n_head,
6810                                n_head_kv,
6811                                1,
6812                                t_kv,
6813                                scale,
6814                                sp0_r,
6815                                ktb,
6816                                vtb,
6817                            )?;
6818                        } else {
6819                            let k_view = e.view_u8(&kvl.k, t_kv * kvl.k_tok_bytes);
6820                            let v_view = e.view_u8(&kvl.v, t_kv * kvl.v_tok_bytes);
6821                            let mut a_view = a_row.slice_mut(0..q_dim);
6822                            e.fa_decode_kvmod_view(
6823                                &q_row.slice(0..q_dim),
6824                                &k_view,
6825                                &v_view,
6826                                &mut a_view,
6827                                head_dim,
6828                                n_head,
6829                                n_head_kv,
6830                                t_kv,
6831                                scale,
6832                                kvl.k_tok_bytes,
6833                                kvl.v_tok_bytes,
6834                                Engine::kv_fp8_on(),
6835                            )?;
6836                        }
6837                        e.dtod_copy_into(&a_row, &mut attn, r * q_dim)?;
6838                    }
6839                }
6840
6841                // Output gate (element-wise) + o-proj at m=T.
6842                let attn_g = match &gate {
6843                    Some(g) => {
6844                        let n = t * q_dim;
6845                        let mut gsig = e.uninit(n)?;
6846                        e.sigmoid(g, &mut gsig, n)?;
6847                        let mut ag = e.uninit(n)?;
6848                        e.mul(&attn, &gsig, &mut ag, n)?;
6849                        ag
6850                    }
6851                    None => attn,
6852                };
6853                e.matmul(&fa.wo, &attn_g, t)?
6854            }
6855        };
6856
6857        // ---- residual add + post_attn_norm + FFN at m=T (serving dispatch verbatim) ----
6858        let pnorm = layer.post_attn_norm.float_data();
6859        let mut x1 = e.uninit(t * n_embd)?;
6860        let mut zn = e.uninit(t * n_embd)?;
6861        e.add_rms_norm(x, &mixed, pnorm, &mut x1, &mut zn, n_embd, t, eps)?;
6862        let ffn_out = match &layer.ffn {
6863            crate::hybrid::Ffn::Dense {
6864                ffn_gate,
6865                ffn_up,
6866                ffn_down,
6867            } => {
6868                assert!(
6869                    self.cfg.m3.is_none(),
6870                    "qwen35 t-parallel verify: M3 swigluoai FFN not yet batched"
6871                );
6872                self.qwen35_tparallel_dense_ffn(e, ffn_gate, ffn_up, ffn_down, &zn, t, n_embd)?
6873            }
6874            crate::hybrid::Ffn::Moe(m) => self.moe_ffn_il_zq8(e, m, &zn, None, t, il as u16)?,
6875        };
6876        let mut x2 = e.uninit(t * n_embd)?;
6877        e.add(&x1, &ffn_out, &mut x2, t * n_embd)?;
6878        // dspark drafter tap (no-op when no sink armed): post-layer residual verify rows
6879        self.dflash_tap(e, cache, il, &x2, t)?;
6880        Ok(x2)
6881    }
6882
6883    /// ONE t-parallel LINEAR layer (attn_norm + gdn mixer + post_attn_norm + FFN + tap) —
6884    /// the exact body the old in-loop Linear arm ran, extracted so the eager walk and the
6885    /// slice-3 captured segments execute the SAME code (a second copy is how dispatch
6886    /// mirrors drift — the verify_layers extraction lesson). Two deliberate changes, both
6887    /// bit-identical by construction:
6888    /// - the gdn ping-pong host swap moves from per-row to ONE end-of-body swap (t odd):
6889    ///   the device sequence is driven entirely by the 6-entry pointer table, which
6890    ///   already encodes both parities; the ckpt stash reads name row r's out buffer
6891    ///   directly (r even -> alt handle, odd -> canonical) — the same physical bytes the
6892    ///   legacy post-swap clone read.
6893    /// - `stash` (slice-3 ctx): persistent per-layer slabs written by copy_into instead of
6894    ///   per-row clone_dtod allocs — same bytes, capture-legal (no per-round host objects).
6895    /// `table_src` = (persistent pointer table, offset) when the ctx owns the tables;
6896    /// None builds the per-verify table exactly as before.
6897    #[allow(clippy::too_many_arguments)]
6898    fn qwen35_tparallel_linear_layer(
6899        &self,
6900        e: &Engine,
6901        il: usize,
6902        x: &CudaSlice<f32>,
6903        t: usize,
6904        cache: &mut Cache,
6905        mut ckpt: Option<&mut VerifyCkpt>,
6906        stash: Option<(&mut CudaSlice<f32>, &mut CudaSlice<f32>)>,
6907        table_src: Option<(&CudaSlice<u64>, usize)>,
6908    ) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
6909        use cudarc::driver::DevicePtr;
6910        let cfg = &self.cfg;
6911        let n_embd = cfg.n_embd as usize;
6912        let eps = cfg.rms_eps;
6913        let layer = &self.layers[il];
6914        let Mixer::Linear(la) = &layer.mixer else {
6915            return Err("qwen35_tparallel_linear_layer on a non-linear layer".into());
6916        };
6917        // ---- attn_norm + q8_1 quantize at m=T (row-indexed == per-row) ----
6918        let anorm = layer.attn_norm.float_data();
6919        let mut xn = e.uninit(t * n_embd)?;
6920        e.rms_norm(x, anorm, &mut xn, n_embd, t, eps)?;
6921        let (hq, hd) = e.quantize_q8_1(&xn, t, n_embd)?;
6922
6923        let geometry = la.geometry;
6924        let d_state = geometry.key_head_dim as usize;
6925        let num_k = geometry.key_heads as usize;
6926        let num_v = geometry.value_heads as usize;
6927        let d_conv = geometry.conv_kernel as usize;
6928        let key_dim = d_state * num_k;
6929        let value_dim = geometry.value_head_dim as usize * num_v;
6930        let conv_dim = key_dim * 2 + value_dim;
6931        let gdn_scale = 1.0 / (d_state as f32).sqrt();
6932
6933        // ---- batched projections: one weight read for all T rows ----
6934        // GROUP-4 twin (trunk-kernels slice C): the whole 4-tuple in ONE launch, bit-identical
6935        // per (tensor, token, row) to the four singles; refused (layout/tier) or
6936        // MEMRA_TK_GDN_GROUP=0 -> the singles chain byte-for-byte.
6937        let (qkv_mixed, z, beta_raw, alpha) = match e.matmul_decode_exact_group4_pre(
6938            [&la.wqkv, &la.wqkv_gate, &la.ssm_beta, &la.ssm_alpha],
6939            &hq,
6940            &hd,
6941            t,
6942        )? {
6943            Some(mut g4) => {
6944                let alpha = g4.pop().unwrap();
6945                let beta_raw = g4.pop().unwrap();
6946                let z = g4.pop().unwrap();
6947                let qkv_mixed = g4.pop().unwrap();
6948                (qkv_mixed, z, beta_raw, alpha)
6949            }
6950            None => (
6951                e.matmul_pre(&la.wqkv, &hq, &hd, &xn, t)?,
6952                e.matmul_pre(&la.wqkv_gate, &hq, &hd, &xn, t)?,
6953                e.matmul_pre(&la.ssm_beta, &hq, &hd, &xn, t)?,
6954                e.matmul_pre(&la.ssm_alpha, &hq, &hd, &xn, t)?,
6955            ),
6956        };
6957        let beta_w = la.ssm_beta.out_features();
6958        let alpha_w = la.ssm_alpha.out_features();
6959        let qkv_w = la.wqkv.out_features();
6960
6961        // ---- per-row state chain through the b_n=1 serving kernels ----
6962        // 6-entry alternating pointer table expresses the ping-pong without a rebuild per
6963        // row: even rows scan s0 -> s1, odd rows s1 -> s0.
6964        let table_local: Option<CudaSlice<u64>> = match table_src {
6965            Some(_) => None,
6966            None => {
6967                let rl = cache.recur[il].as_ref().unwrap();
6968                let s = &e.gpu.stream();
6969                let (pc, _g0) = rl.conv_state.device_ptr(s);
6970                let (p0, _g1) = rl.ssm_state.device_ptr(s);
6971                let (p1, _g2) = rl.ssm_state_alt.device_ptr(s);
6972                Some(e.htod_u64(&[
6973                    pc as u64, p0 as u64, p1 as u64, pc as u64, p1 as u64, p0 as u64,
6974                ])?)
6975            }
6976        };
6977        let (table, toff): (&CudaSlice<u64>, usize) = match table_src {
6978            Some((tb, off)) => (tb, off),
6979            None => (table_local.as_ref().unwrap(), 0),
6980        };
6981        let mut o_all = e.uninit(t * value_dim)?;
6982        let mut col_states: Option<Vec<(CudaSlice<f32>, CudaSlice<f32>)>> =
6983            if ckpt.is_some() && stash.is_none() && t >= 2 {
6984                Some(Vec::with_capacity(t - 1))
6985            } else {
6986                None
6987            };
6988        let mut stash = stash;
6989        // Per-row scratch reused across rows (uninit is cheap but not free at
6990        // 48 layers x T rows); row inputs/outputs pass as VIEWS into the packed
6991        // [T, ...] buffers — zero arithmetic-free copies in this loop.
6992        let mut conv_out = e.uninit(conv_dim)?;
6993        let mut q_l2 = e.uninit(value_dim)?;
6994        let mut k_l2 = e.uninit(value_dim)?;
6995        let mut v_gd = e.uninit(value_dim)?;
6996        let mut beta_b = e.uninit(num_v)?;
6997        let mut g_log = e.uninit(num_v)?;
6998        for r in 0..t {
6999            let base = toff + if r % 2 == 0 { 0 } else { 3 };
7000            let conv_view = table.slice(base..base + 1);
7001            let in_view = table.slice(base + 1..base + 2);
7002            let out_view = table.slice(base + 2..base + 3);
7003            e.ssm_conv1d_fused_decode_b_view(
7004                &qkv_mixed.slice(r * qkv_w..(r + 1) * qkv_w),
7005                &conv_view,
7006                la.ssm_conv1d.float_data(),
7007                &mut conv_out,
7008                conv_dim,
7009                d_conv,
7010                1,
7011            )?;
7012            e.gdn_prep_decode_b_view(
7013                &conv_out,
7014                &beta_raw.slice(r * beta_w..(r + 1) * beta_w),
7015                &alpha.slice(r * alpha_w..(r + 1) * alpha_w),
7016                la.ssm_dt.float_data(),
7017                la.ssm_a.float_data(),
7018                &mut q_l2,
7019                &mut k_l2,
7020                &mut v_gd,
7021                &mut beta_b,
7022                &mut g_log,
7023                d_state,
7024                num_v,
7025                num_k,
7026                key_dim,
7027                eps,
7028                conv_dim,
7029                1,
7030            )?;
7031            let mut o_row = o_all.slice_mut(r * value_dim..(r + 1) * value_dim);
7032            e.gdn_scan_s128_batched_view(
7033                &q_l2, &k_l2, &v_gd, &g_log, &beta_b, &in_view, &out_view, &mut o_row, num_v, 1,
7034                gdn_scale,
7035            )?;
7036            if r + 1 < t {
7037                // Row r's out buffer: even rows write s1 (the alt handle — no swaps ran),
7038                // odd rows write s0 — the same physical state the legacy post-swap
7039                // canonical clone read.
7040                let rl = cache.recur[il]
7041                    .as_ref()
7042                    .ok_or("qwen35 linear verify layer has no recurrent state")?;
7043                let ssm_src = if r % 2 == 0 {
7044                    &rl.ssm_state_alt
7045                } else {
7046                    &rl.ssm_state
7047                };
7048                match stash.as_mut() {
7049                    Some((conv_slab, ssm_slab)) => {
7050                        // BOTH stash reads go through the pointer table at run time: the
7051                        // ssm handles ping-pong between rounds, and the ctx (with its
7052                        // captured graphs) outlives the Cache — a fresh generation's
7053                        // conv/ssm buffers land at new addresses that only the per-round
7054                        // table refresh knows. A baked direct copy would read freed
7055                        // memory (parity was the slice-3 smoke divergence; cache
7056                        // lifetime is the cross-generation twin).
7057                        e.copy_indirect_src_f32(
7058                            &conv_view,
7059                            conv_slab,
7060                            r * conv_dim * (d_conv - 1),
7061                            conv_dim * (d_conv - 1),
7062                        )?;
7063                        // The ssm handles PING-PONG between rounds: a captured direct
7064                        // copy would bake the capture-time physical buffer and read the
7065                        // wrong parity after any odd-vt round (the slice-3 smoke
7066                        // divergence). Read the src address from row r's OUT table
7067                        // entry at run time — the same entry the scan just wrote.
7068                        e.copy_indirect_src_f32(
7069                            &out_view,
7070                            ssm_slab,
7071                            r * d_state * d_state * num_v,
7072                            d_state * d_state * num_v,
7073                        )?;
7074                    }
7075                    None => {
7076                        if let Some(states) = col_states.as_mut() {
7077                            states.push((e.clone_dtod(&rl.conv_state)?, e.clone_dtod(ssm_src)?));
7078                        }
7079                    }
7080                }
7081            }
7082        }
7083        // ONE end-of-body parity swap (t odd) — the legacy loop swapped per row; the net
7084        // handle motion is identical and the device sequence never read the handles.
7085        if t % 2 == 1 {
7086            let rl = cache.recur[il].as_mut().unwrap();
7087            std::mem::swap(&mut rl.ssm_state, &mut rl.ssm_state_alt);
7088        }
7089        if let (Some(checkpoint), Some(states)) = (ckpt.as_deref_mut(), col_states) {
7090            checkpoint.cols[il] = Some(states);
7091        }
7092
7093        // ---- batched gated norm + out-projection at m=T ----
7094        let mixed = if e.uses_q8_1_fast(&la.ssm_out) {
7095            let (gq, gd) = e.gated_rmsnorm_q8_1(
7096                &o_all,
7097                la.ssm_norm.float_data(),
7098                &z,
7099                d_state,
7100                t * num_v,
7101                eps,
7102            )?;
7103            let g0 = e.zeros(0)?;
7104            e.matmul_pre(&la.ssm_out, &gq, &gd, &g0, t)?
7105        } else {
7106            let mut gn = e.uninit(t * value_dim)?;
7107            e.gated_rmsnorm(
7108                &o_all,
7109                la.ssm_norm.float_data(),
7110                &z,
7111                &mut gn,
7112                d_state,
7113                t * num_v,
7114                eps,
7115            )?;
7116            e.matmul(&la.ssm_out, &gn, t)?
7117        };
7118
7119        // ---- residual add + post_attn_norm + FFN at m=T (serving dispatch verbatim) ----
7120        let pnorm = layer.post_attn_norm.float_data();
7121        let mut x1 = e.uninit(t * n_embd)?;
7122        let mut zn = e.uninit(t * n_embd)?;
7123        e.add_rms_norm(x, &mixed, pnorm, &mut x1, &mut zn, n_embd, t, eps)?;
7124        let ffn_out = match &layer.ffn {
7125            crate::hybrid::Ffn::Dense {
7126                ffn_gate,
7127                ffn_up,
7128                ffn_down,
7129            } => {
7130                assert!(
7131                    self.cfg.m3.is_none(),
7132                    "qwen35 t-parallel verify: M3 swigluoai FFN not yet batched"
7133                );
7134                self.qwen35_tparallel_dense_ffn(e, ffn_gate, ffn_up, ffn_down, &zn, t, n_embd)?
7135            }
7136            crate::hybrid::Ffn::Moe(m) => self.moe_ffn_il_zq8(e, m, &zn, None, t, il as u16)?,
7137        };
7138        let mut x2 = e.uninit(t * n_embd)?;
7139        e.add(&x1, &ffn_out, &mut x2, t * n_embd)?;
7140        // dspark drafter tap (no-op when no sink armed): post-layer residual verify rows
7141        self.dflash_tap(e, cache, il, &x2, t)?;
7142        Ok(x2)
7143    }
7144
7145    /// PP-N STAGE SUBGRAPH of the verify trunk: layers `[lo, hi)` of `decode_step_t_core_stream`'s
7146    /// walk, verbatim. Enters with a MATERIALIZED `[T, n_embd]` residual (no pending fusion pair
7147    /// carried in from outside the range) and exits with the range's final residual materialized
7148    /// (the trailing add executed) — exactly the `decode_layers_eager(lo, hi)` contract, T rows
7149    /// instead of one.
7150    ///
7151    /// EXTRACTED (lane/pp2-spec 2026-08-06) rather than duplicated: `decode_step_t_core_stream` IS
7152    /// the single funnel every verify forward reaches, and its per-layer dispatch MIRRORING (norm
7153    /// fusion per layer, the t>=3/spec_m2 batched-linear window, the fused-q8 FFN chain, the
7154    /// decode-exact projections) is what makes verify bit-identical to eager decode. A second copy
7155    /// for the split arm is how those mirrors drift apart on the next lever. The unsplit body now
7156    /// calls this with `(0, n_layers)`, so the whole-trunk path and every stage range run the SAME
7157    /// code — there is no "split version" of the verify math.
7158    ///
7159    /// Bit-identity of a cut rests on the same kernel-check-pinned identity the eager arm's cut
7160    /// does — `add_rms_norm_q8_1 == add then rms_norm_q8_1` at nrows=T — because the ONLY thing a
7161    /// fence changes is that the cross-layer fusion carry breaks at `hi-1` and is re-materialized
7162    /// as an explicit `add`. `decode-batch-gate --mode ppspec` verifies end-to-end on real weights.
7163    #[allow(clippy::too_many_arguments)]
7164    fn verify_layers(
7165        &self,
7166        e: &Engine,
7167        mut x: CudaSlice<f32>,
7168        lo: usize,
7169        hi: usize,
7170        pos_d: &CudaSlice<i32>,
7171        pos0: usize,
7172        t: usize,
7173        cache: &mut Cache,
7174        mut ckpt: Option<&mut VerifyCkpt>,
7175        stream: Option<(&CudaSlice<u32>, &CudaSlice<i32>)>,
7176        graphs: Option<&mut DsparkVerifyGraphs>,
7177    ) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
7178        if self.sliding_gated_moe_batch_program() {
7179            if stream.is_some() {
7180                return Err(
7181                    "step35 has no ROUND-STREAM verify arm (the device-counter _dc twins \
7182                            cannot express the SWA offset KV view)"
7183                        .into(),
7184                );
7185            }
7186            return self.step35_verify_batch_layers(e, x, lo, hi, pos0, t, cache);
7187        }
7188        if self.batched_serving_numeric_class() {
7189            return self.qwen35_verify_batch_layers(
7190                e,
7191                x,
7192                lo,
7193                hi,
7194                pos0,
7195                t,
7196                cache,
7197                ckpt.take(),
7198                stream,
7199                graphs,
7200            );
7201        }
7202        let n_embd = self.cfg.n_embd as usize;
7203        let eps = self.cfg.rms_eps;
7204        // CROSS-LAYER ADD+NORM FUSION (lane/vt-fixes fix 2, mirroring decode_step_h's
7205        // launch-arc form): layer il's post-FFN residual add (x2 = x1 + ffn_out) and layer
7206        // il+1's attn_norm(+quantize) are consecutive row-wise ops — ONE add_rms_norm_q8_1
7207        // launch at nrows=t does all three (bit-identity pinned by the T-row kernel-check
7208        // arms). Carry the un-added (x1, ffn_out) pair; the fused launch materializes x2 (the
7209        // residual the next layer needs) as its `res` output. Falls back to the separate add
7210        // when the next layer is off the fused-q8 path.
7211        let mut pending: Option<(CudaSlice<f32>, CudaSlice<f32>)> = None;
7212        for il in lo..hi {
7213            let layer = &self.layers[il];
7214            // DISPATCH-MIRRORED attn-input RMSNorm (FP-order lesson #8): eager decode fuses the
7215            // 1024-thread rms_norm_q8_1 ONLY when every mixer projection is q8_1-fast; layers with
7216            // Float projections (ssm_beta/ssm_alpha on layers 1/2/4 of the 9B NVFP4 GGUF) take the
7217            // UNFUSED 256-thread rms_norm. The verify norm must mirror that PER-LAYER choice —
7218            // blockDim changes the sum-of-squares reduce order, and the ULP shift amplifies through
7219            // the GDN recurrence into argmax flips (measured: 9B text prompt, 1 ULP at layer 2 ->
7220            // 2.3e-1 logit maxdiff at the head -> K=1..8 divergence at a 0.03-margin token).
7221            let mixer_fast = self.mixer_in_q8_1_fast(e, &layer.mixer);
7222            let norm_fused = std::env::var("MEMRA_NO_FUSE_NORMQ").is_err() && mixer_fast;
7223            // BATCHED EPILOGUE RE-FUSE (lane/vt-fixes fix 2, 2026-08-03): when the norm is
7224            // dispatch-fused AND every consumer of `h` reads only its q8_1 form (Full mixer:
7225            // projections only; Linear mixer: the batched arm — the per-column fallback needs
7226            // f32 h), emit the attn-input norm DIRECTLY as q8_1 via `rms_norm_q8_1` at nrows=t
7227            // (row-indexed kernel — the T-row launch is the per-row m=1 program, kernel-check
7228            // pins bit-identity vs rms_norm_decode -> quantize_q8_1). Kills the standalone
7229            // quantize launch(es) + the f32 h HBM round-trip that decode never pays.
7230            // step35 (Full mixer) is the third case that needs f32 `h`: its verify arm is a
7231            // per-ROW replay of the eager decode mixer, whose `pre_q` contract is a single row —
7232            // a T-row q8_1 pair cannot be handed to it, and re-deriving per-row q8_1 from the f32
7233            // rows is exactly the dispatch being mirrored. Keep step35 on the unfused arm.
7234            let lin_q8_only = match &layer.mixer {
7235                Mixer::Linear(la) => {
7236                    (t >= 3 || (t == 2 && spec_m2())) && e.uses_q8_1_fast(&la.ssm_out)
7237                }
7238                Mixer::Full(_) if self.sliding_gated_moe_batch_program() => false,
7239                _ => true,
7240            };
7241            // NOTE decode.rs's take()-first lesson: take the pending pair BEFORE branching so
7242            // a non-fused layer still performs the residual add.
7243            let taken = pending.take();
7244            let (h, h_q8) = if norm_fused && lin_q8_only {
7245                let pair = match taken {
7246                    // fused add + attn_norm + q8_1: ONE launch resolves the carried residual
7247                    // AND emits this layer's mixer input pre-quantized. res -> x2 (= new x).
7248                    Some((x1p, f1p)) => {
7249                        let mut x2 = vbuf(e, t * n_embd)?; // fully written (res output)
7250                        let p = e.add_rms_norm_q8_1(
7251                            &x1p,
7252                            &f1p,
7253                            layer.attn_norm.float_data(),
7254                            &mut x2,
7255                            n_embd,
7256                            t,
7257                            eps,
7258                        )?;
7259                        x = x2;
7260                        p
7261                    }
7262                    None => e.rms_norm_q8_1(&x, layer.attn_norm.float_data(), n_embd, t, eps)?,
7263                };
7264                (e.zeros(0)?, Some(pair)) // h unused on this path (q8-only consumers)
7265            } else {
7266                if let Some((x1p, f1p)) = taken {
7267                    let mut x2 = vbuf(e, t * n_embd)?; // fully written by add
7268                    e.add(&x1p, &f1p, &mut x2, t * n_embd)?;
7269                    x = x2;
7270                }
7271                let mut h = vbuf(e, t * n_embd)?; // fully written by either rms_norm arm
7272                if norm_fused {
7273                    e.rms_norm_decode(&x, layer.attn_norm.float_data(), &mut h, n_embd, t, eps)?;
7274                } else {
7275                    e.rms_norm(&x, layer.attn_norm.float_data(), &mut h, n_embd, t, eps)?;
7276                }
7277                (h, None)
7278            };
7279            let h_q8_ref = h_q8.as_ref().map(|(q, d)| (q, d));
7280
7281            let mixed = match &layer.mixer {
7282                Mixer::Full(fa) => self.full_attn_verify(
7283                    e,
7284                    fa,
7285                    &h,
7286                    h_q8_ref,
7287                    pos_d,
7288                    t,
7289                    cache,
7290                    il,
7291                    stream.map(|(_, c)| c),
7292                )?,
7293                Mixer::Mla(_) => crate::hybrid::mla_forward_unimplemented(),
7294                Mixer::Linear(la) => {
7295                    // BATCHED linear verify (2026-07-03, the MTP-profit lever): one T-token pass —
7296                    // batched projections (weight read ONCE, hits the m=2-4 weight-resident matvec),
7297                    // carried-state conv (ssm_conv1d_tm_state), GDN prep on the prefill kernels, and
7298                    // ONE gdn_scan whose internal sequential t-loop is the SAME recurrence as T
7299                    // chained T=1 steps (bit-identical). Falls back to the sequential per-column
7300                    // chain when T < d_conv-1 (conv ring update needs T >= pad) — or when ANY
7301                    // projection is off the q8_1 fast path: matmul_decode_exact would route a Float
7302                    // tensor to cuBLAS at m=t (different FP accumulation than eager's per-token
7303                    // GEMV), so mixed-dtype layers stay on the eager-identical per-column chain.
7304                    // MEMRA_SPEC_M2 (lane/spec-m2): the t==2 batch rides the same arm — the conv
7305                    // wrapper handles t<pad with a pure-copy ring rebuild; see spec_m2() header.
7306                    if (t >= 3 || (t == 2 && spec_m2()))
7307                        && mixer_fast
7308                        && e.uses_q8_1_fast(&la.ssm_out)
7309                    {
7310                        let want = ckpt.is_some();
7311                        let (out, stash) =
7312                            self.linear_attn_verify_t(e, la, &h, h_q8_ref, t, cache, il, want)?;
7313                        if let (Some(ck), Some(st)) = (ckpt.as_deref_mut(), stash) {
7314                            ck.gdn[il] = Some(st);
7315                        }
7316                        out
7317                    } else {
7318                        let mut out = vbuf(e, t * n_embd)?; // every col written by copy_into
7319                        let mut col_states: Option<Vec<(CudaSlice<f32>, CudaSlice<f32>)>> =
7320                            if ckpt.is_some() && t >= 2 {
7321                                Some(Vec::with_capacity(t - 1))
7322                            } else {
7323                                None
7324                            };
7325                        for col in 0..t {
7326                            let mut h_col = vbuf(e, n_embd)?; // fully written by copy_view_into
7327                            let src = h.slice(col * n_embd..(col + 1) * n_embd);
7328                            e.copy_view_into(&mut h_col, 0, &src, n_embd)?;
7329                            let m_col = self.linear_attn_decode(e, la, &h_col, cache, il)?;
7330                            e.copy_into(&mut out, col * n_embd, &m_col, n_embd)?;
7331                            // REPLAY-FREE ckpt: clone the chain's ACTUAL state after this column
7332                            // (pure dtod — cannot change any computed value). Last column skipped:
7333                            // rebuild targets are j <= t-1 columns.
7334                            if let Some(cs) = col_states.as_mut() {
7335                                if col + 1 < t {
7336                                    let rl = cache.recur[il].as_ref().unwrap();
7337                                    cs.push((
7338                                        e.clone_dtod(&rl.conv_state)?,
7339                                        e.clone_dtod(&rl.ssm_state)?,
7340                                    ));
7341                                }
7342                            }
7343                        }
7344                        if let (Some(ck), Some(cs)) = (ckpt.as_deref_mut(), col_states) {
7345                            // ReplaySSM-assessment instrumentation (2026-07-30): the
7346                            // per-column clones are the only true state snapshots left in
7347                            // the verify (the batched path stashes INPUTS and replays).
7348                            if std::env::var("MEMRA_SPEC_STATS").as_deref() == Ok("1") {
7349                                static ONCE: std::sync::Once = std::sync::Once::new();
7350                                let bytes: usize =
7351                                    cs.iter().map(|(c, s)| (c.len() + s.len()) * 4).sum();
7352                                ONCE.call_once(|| eprintln!(
7353                                    "[verify-ckpt] per-column layer il={il}: {} clones, {:.2} MB/layer/round",
7354                                    cs.len(), bytes as f64 / 1e6));
7355                            }
7356                            ck.cols[il] = Some(cs);
7357                        }
7358                        out
7359                    }
7360                }
7361            };
7362
7363            // DISPATCH-MIRRORED post-attn norm: eager residual_norm_ffn fuses add+norm+quant
7364            // (1024-thread add_rms_norm_q8_1) only for Dense FFNs whose gate+up are q8_1-fast;
7365            // otherwise (and for MoE) it runs the 256-thread fused add_rms_norm. Mirror per layer.
7366            let ffn_fuse = match &layer.ffn {
7367                crate::hybrid::Ffn::Dense {
7368                    ffn_gate, ffn_up, ..
7369                } => {
7370                    std::env::var("MEMRA_NO_FUSE_NORMQ").is_err()
7371                        && e.uses_q8_1_fast(ffn_gate)
7372                        && e.uses_q8_1_fast(ffn_up)
7373                }
7374                crate::hybrid::Ffn::Moe(_) => false,
7375            };
7376            // BATCHED EPILOGUE RE-FUSE (lane/vt-fixes fix 2): on the ffn_fuse path (Dense,
7377            // gate+up q8_1-fast, non-M3) the FFN input is emitted DIRECTLY as q8_1 by ONE
7378            // add_rms_norm_q8_1 launch at nrows=t (row-indexed kernel: the T-row launch is the
7379            // per-row m=1 program; kernel-check pins bit-identity vs the unfused
7380            // add_f32 -> rms_norm_decode -> quantize_q8_1 chain at T=2/4/5/8) — replacing the
7381            // add + rms_norm_decode launches AND the dual/singles' internal re-quantize.
7382            // M3's swigluoai must keep the f32 chain (the fused SwiGLU epilogue encodes plain
7383            // SiLU), mirroring residual_norm_ffn's m3 guard on the decode path.
7384            // step35: same guard per LAYER. A dense FFN's clamp is the SHEXP array (upstream's
7385            // one build_ffn serves dense + shared expert, llama-graph.cpp:1751), and verify MUST
7386            // mirror decode's dispatch or spec self-consistency fails.
7387            let dense_lim = self.cfg.clamp_shexp_at(il as u32);
7388            let fuse_q8 = ffn_fuse && self.cfg.m3.is_none() && dense_lim.is_none();
7389            let mut x1 = vbuf(e, t * n_embd)?; // fully written by add / add_rms_norm*
7390            let mut z = e.zeros(0)?; // replaced below on the unfused arms
7391            let z_q8 = if fuse_q8 {
7392                Some(e.add_rms_norm_q8_1(
7393                    &x,
7394                    &mixed,
7395                    layer.post_attn_norm.float_data(),
7396                    &mut x1,
7397                    n_embd,
7398                    t,
7399                    eps,
7400                )?)
7401            } else {
7402                let mut zf = vbuf(e, t * n_embd)?; // fully written by rms_norm_decode / add_rms_norm
7403                if ffn_fuse {
7404                    e.add(&x, &mixed, &mut x1, t * n_embd)?;
7405                    e.rms_norm_decode(
7406                        &x1,
7407                        layer.post_attn_norm.float_data(),
7408                        &mut zf,
7409                        n_embd,
7410                        t,
7411                        eps,
7412                    )?;
7413                } else {
7414                    e.add_rms_norm(
7415                        &x,
7416                        &mixed,
7417                        layer.post_attn_norm.float_data(),
7418                        &mut x1,
7419                        &mut zf,
7420                        n_embd,
7421                        t,
7422                        eps,
7423                    )?;
7424                }
7425                z = zf;
7426                None
7427            };
7428            // DECODE-EXACT FFN projections: force MMVQ for gate/up/down at any T to match the
7429            // T=1 decode FP accumulation order. At T>=5 the generic matmul/matmul_pre falls to dp4a
7430            // (128-thread, different FP sum order). At T=2-4 the batched MMVQ is already bit-identical.
7431            let ffn_out = match &layer.ffn {
7432                crate::hybrid::Ffn::Dense {
7433                    ffn_gate,
7434                    ffn_up,
7435                    ffn_down,
7436                } => {
7437                    let n_ff = ffn_gate.out_features();
7438                    if let Some((zq, zd)) = z_q8.as_ref() {
7439                        // FUSED CHAIN (fix 2): pre-quantized z feeds the projections; the SwiGLU
7440                        // epilogue emits act pre-quantized for ffn_down (silu_mul_scaled_q8_1,
7441                        // bit-identical to silu_mul + quantize — kernel-check-pinned) with the
7442                        // NVFP4 macro-scales folded (deferred-scale dual: y*s inline == the
7443                        // scale_inplace store, value-exact) — the exact m=1 decode epilogue
7444                        // structure at nrows=t.
7445                        let pair =
7446                            match e.matmul_decode_exact_dual_pre(ffn_gate, ffn_up, zq, zd, t)? {
7447                                Some(((g, gs), (u, us))) => Some((g, gs, u, us)),
7448                                None => None,
7449                            };
7450                        let (gate, gs, up, us) = match pair {
7451                            Some(x4) => x4,
7452                            None => (
7453                                e.matmul_decode_exact_pre(ffn_gate, zq, zd, t)?,
7454                                1.0, // scale already applied inside _pre
7455                                e.matmul_decode_exact_pre(ffn_up, zq, zd, t)?,
7456                                1.0,
7457                            ),
7458                        };
7459                        if e.uses_q8_1_fast(ffn_down) {
7460                            let (aq, ad) = e.silu_mul_scaled_q8_1(&gate, &up, gs, us, t * n_ff)?;
7461                            e.matmul_decode_exact_pre(ffn_down, &aq, &ad, t)?
7462                        } else {
7463                            let mut act = vbuf(e, t * n_ff)?;
7464                            e.silu_mul_scaled(&gate, &up, gs, us, &mut act, t * n_ff)?;
7465                            e.matmul_decode_exact(ffn_down, &act, t)?
7466                        }
7467                    } else {
7468                        // UNFUSED (pre-fix) chain — MoE-adjacent/M3/off-fast layers, unchanged.
7469                        // DUAL gate+up batched twin (lane/verify-economics, 2026-08-02): one launch
7470                        // for the pair at t=2..8 — bit-identical per (tensor,token,row) to the two
7471                        // singles (kernel-check pins bitwise; MEMRA_SPEC_DUAL_T=0 reverts). None
7472                        // (non-NVFP4 / t outside the tier / seam off) -> the two singles, unchanged.
7473                        let (gate, up) =
7474                            match e.matmul_decode_exact_dual(ffn_gate, ffn_up, &z, t)? {
7475                                Some(pair) => pair,
7476                                None => (
7477                                    e.matmul_decode_exact(ffn_gate, &z, t)?,
7478                                    e.matmul_decode_exact(ffn_up, &z, t)?,
7479                                ),
7480                            };
7481                        let mut act = vbuf(e, t * n_ff)?; // fully written by ffn_act_lim
7482                        Self::ffn_act_lim(
7483                            e,
7484                            &self.cfg,
7485                            &gate,
7486                            &up,
7487                            1.0,
7488                            1.0,
7489                            dense_lim,
7490                            &mut act,
7491                            t * n_ff,
7492                        )?;
7493                        e.matmul_decode_exact(ffn_down, &act, t)?
7494                    }
7495                }
7496                crate::hybrid::Ffn::Moe(m) => self.moe_ffn_il(e, m, &z, t, il as u16)?,
7497            };
7498            // CROSS-LAYER fusion: defer this layer's post-FFN residual add — the next layer's
7499            // fused-q8 attn norm folds it in (add_rms_norm_q8_1 == add; rms_norm; quantize,
7500            // kernel-check-pinned at nrows=T). Non-fused next layers add explicitly above.
7501            pending = Some((x1, ffn_out));
7502        }
7503        // RANGE's final add (no next norm INSIDE the range to fuse with; for the
7504        // whole-trunk call that is the last layer, whose next norm is output_norm — f32-out).
7505        if let Some((x1p, f1p)) = pending.take() {
7506            let mut x2 = vbuf(e, t * n_embd)?; // fully written by add
7507            e.add(&x1p, &f1p, &mut x2, t * n_embd)?;
7508            x = x2;
7509        }
7510        Ok(x)
7511    }
7512    /// BATCHED linear-attn verify (T=K+1): the whole layer in ~10 launches instead of T x the
7513    /// T=1 decode chain (T x ~12 launches + T weight reads of the four projections). The GDN
7514    /// recurrence itself is inherently sequential — gdn_scan_s128 runs its internal t-loop with
7515    /// the SAME per-token math as chained T=1 calls (bit-identical state evolution); everything
7516    /// around it (projections, conv, prep, gated norm, out-proj) batches. Advances conv ring +
7517    /// ssm state exactly like T sequential decode steps.
7518    /// `want_stash`: additionally RETAIN the gdn-scan inputs (pure buffer keep-alives, zero extra
7519    /// kernels) so a partial accept can rebuild the state after any column prefix (REPLAY-FREE).
7520    #[allow(clippy::too_many_arguments)]
7521    fn linear_attn_verify_t(
7522        &self,
7523        e: &Engine,
7524        la: &LinearAttnLayer,
7525        h: &CudaSlice<f32>,
7526        h_q8: Option<(&CudaSlice<i8>, &CudaSlice<f32>)>,
7527        t: usize,
7528        cache: &mut Cache,
7529        il: usize,
7530        want_stash: bool,
7531    ) -> Result<(CudaSlice<f32>, Option<GdnStash>), Box<dyn std::error::Error>> {
7532        let cfg = &self.cfg;
7533        let geometry = la.geometry;
7534        let d_state = geometry.key_head_dim as usize;
7535        let num_k = geometry.key_heads as usize;
7536        let num_v = geometry.value_heads as usize;
7537        let d_conv = geometry.conv_kernel as usize;
7538        let key_dim = d_state * num_k;
7539        let conv_dim = key_dim * 2 + geometry.value_head_dim as usize * num_v;
7540        let eps = cfg.rms_eps;
7541        let scale = 1.0 / (d_state as f32).sqrt();
7542
7543        // DECODE-EXACT projections: matmul_decode_exact forces the MMVQ (warp-per-row, 32-thread)
7544        // accumulation order for EVERY m, matching the T=1 decode path bit-for-bit. The generic
7545        // `matmul` at m>=5 falls to dp4a (128-thread, two-level reduce) which has a different FP
7546        // sum order — ULP differences propagate through gdn_scan and flip argmax on the 27B.
7547        // Q8 TRUNK-FUSION at T=1 (35B: wqkv+wqkv_gate both Q8_0): one fused2 launch, bit-identical
7548        // per (tensor,row) to the two m=1 MMVQ dispatches below — decode-exact contract holds.
7549        // VERIFY-TIER TRUNK FUSION (MEMRA_SPEC_FUSED_T, t=2-4): quantize h ONCE for every
7550        // fused-eligible same-input Q8_0 pair of this layer (35B wqkv+wqkv_gate; 9B
7551        // ssm_beta+ssm_alpha) — each fused2 batched launch then replaces two decode-exact
7552        // calls (each of which re-quantizes the same h + runs its own _b2/_b4 launch).
7553        // Bit-identical per (tensor,token,row) — see spec_fused_t().
7554        // BATCHED EPILOGUE RE-FUSE (lane/vt-fixes fix 2): `h_q8` = the attn-input norm emitted
7555        // directly as q8_1 by the caller's fused rms_norm_q8_1 (bit-identical to the unfused
7556        // chain, kernel-check-pinned). When present it REPLACES the standalone quantize below
7557        // and feeds every projection; the caller guaranteed all four input projections are
7558        // q8_1-fast. When absent, the old shared-quantize (fused-t window) stands.
7559        let h_q8_t = if h_q8.is_none()
7560            && spec_fused_t()
7561            && (2..=4).contains(&t)
7562            && ((e.uses_q8_1_fast(&la.wqkv) && e.uses_q8_1_fast(&la.wqkv_gate))
7563                || (e.uses_q8_1_fast(&la.ssm_beta) && e.uses_q8_1_fast(&la.ssm_alpha)))
7564        {
7565            Some(e.quantize_q8_1(h, t, cfg.n_embd as usize)?)
7566        } else {
7567            None
7568        };
7569        // one view: the caller's fused-norm q8 or this fn's own shared quantize.
7570        let hq8_any: Option<(&CudaSlice<i8>, &CudaSlice<f32>)> =
7571            h_q8.or(h_q8_t.as_ref().map(|(q, d)| (q, d)));
7572        let (qkv_mixed, z) = {
7573            let mut fused = None;
7574            if t == 1 && e.uses_q8_1_fast(&la.wqkv) && e.uses_q8_1_fast(&la.wqkv_gate) {
7575                let (hq, hd) = e.quantize_q8_1(h, 1, cfg.n_embd as usize)?;
7576                fused = e.matmul_q8_fused2(&la.wqkv, &la.wqkv_gate, &hq, &hd)?;
7577            } else if let Some((hq, hd)) = hq8_any {
7578                if spec_fused_t() && (2..=4).contains(&t) {
7579                    fused = e.matmul_q8_fused2_t(&la.wqkv, &la.wqkv_gate, hq, hd, t)?;
7580                }
7581            }
7582            match (fused, hq8_any) {
7583                (Some(pair), _) => pair,
7584                (None, Some((hq, hd))) if h_q8.is_some() => (
7585                    e.matmul_decode_exact_pre(&la.wqkv, hq, hd, t)?,
7586                    e.matmul_decode_exact_pre(&la.wqkv_gate, hq, hd, t)?,
7587                ),
7588                (None, _) => (
7589                    e.matmul_decode_exact(&la.wqkv, h, t)?,
7590                    e.matmul_decode_exact(&la.wqkv_gate, h, t)?,
7591                ),
7592            }
7593        };
7594        // beta+alpha DUAL at T=1 (75% of p3 rounds run T=1 verify — p-min chain cuts): the dual
7595        // mr2 kernel is bit-identical per element to the m=1 MMVQ matmul_decode_exact dispatches
7596        // (same warp-per-row body, blockIdx.y picks the weight), so the decode-exact contract
7597        // holds; the run-spec battery is the arbiter. T>1 keeps the per-tensor decode-exact path.
7598        let (beta_raw, alpha) = if t == 1 {
7599            let (hq, hd) = e.quantize_q8_1(h, 1, cfg.n_embd as usize)?;
7600            match e.matmul_pre_dual_noscale(&la.ssm_beta, &la.ssm_alpha, &hq, &hd, 1)? {
7601                Some(((mut b, bs), (mut a, as_))) => {
7602                    if bs != 1.0 {
7603                        e.scale_inplace(&mut b, bs, la.ssm_beta.out_features())?;
7604                    }
7605                    if as_ != 1.0 {
7606                        e.scale_inplace(&mut a, as_, la.ssm_alpha.out_features())?;
7607                    }
7608                    (b, a)
7609                }
7610                // Q8_0 fused2 twin (9B stores beta/alpha as Q8_0): DISPATCH-MIRRORS the eager
7611                // decode's beta_alpha closure — the fused body is qmatvec_q8_0_mmvq verbatim,
7612                // bit-identical per row (kernel-check rel=0.00e0 gate), so decode==verify holds.
7613                None => match e.matmul_q8_fused2(&la.ssm_beta, &la.ssm_alpha, &hq, &hd)? {
7614                    Some((b, a)) => (b, a),
7615                    None => (
7616                        e.matmul_decode_exact(&la.ssm_beta, h, 1)?,
7617                        e.matmul_decode_exact(&la.ssm_alpha, h, 1)?,
7618                    ),
7619                },
7620            }
7621        } else {
7622            // fused-t twin (9B stores beta/alpha as Q8_0): same shared-quantize + one launch
7623            // contract as the wqkv pair above; 35B beta/alpha are Float -> None -> fallback.
7624            let mut nvfp4_fused = None;
7625            let mut q8_fused = None;
7626            if let Some((hq, hd)) = hq8_any {
7627                if t == 3 && std::env::var("MEMRA_NVFP4_AUX_DUAL").as_deref() != Ok("0") {
7628                    nvfp4_fused =
7629                        e.matmul_decode_exact_dual_pre(&la.ssm_beta, &la.ssm_alpha, hq, hd, t)?;
7630                    if nvfp4_fused.is_some() && std::env::var("MEMRA_DEBUG").is_ok() {
7631                        static ONCE: std::sync::Once = std::sync::Once::new();
7632                        ONCE.call_once(|| {
7633                            eprintln!("[memra] NVFP4 beta+alpha batched aux dual ENGAGED (t={t})")
7634                        });
7635                    }
7636                }
7637                if nvfp4_fused.is_none() && spec_fused_t() && (2..=4).contains(&t) {
7638                    q8_fused = e.matmul_q8_fused2_t(&la.ssm_beta, &la.ssm_alpha, hq, hd, t)?;
7639                }
7640            }
7641            if let Some(((mut b, bs), (mut a, as_))) = nvfp4_fused {
7642                if bs != 1.0 {
7643                    e.scale_inplace(&mut b, bs, t * la.ssm_beta.out_features())?;
7644                }
7645                if as_ != 1.0 {
7646                    e.scale_inplace(&mut a, as_, t * la.ssm_alpha.out_features())?;
7647                }
7648                (b, a)
7649            } else if let Some(pair) = q8_fused {
7650                pair
7651            } else {
7652                match hq8_any {
7653                    Some((hq, hd)) if h_q8.is_some() => (
7654                        e.matmul_decode_exact_pre(&la.ssm_beta, hq, hd, t)?,
7655                        e.matmul_decode_exact_pre(&la.ssm_alpha, hq, hd, t)?,
7656                    ),
7657                    _ => (
7658                        e.matmul_decode_exact(&la.ssm_beta, h, t)?,
7659                        e.matmul_decode_exact(&la.ssm_alpha, h, t)?,
7660                    ),
7661                }
7662            }
7663        };
7664
7665        // conv with CARRIED state + ring roll (T >= pad rides the input-column update kernel;
7666        // T < pad — the MEMRA_SPEC_M2 t=2 arm — rolls via the pure-copy ring rebuild).
7667        let rl = cache.recur[il].as_mut().unwrap();
7668        let mut conv_out = e.uninit(conv_dim * t)?;
7669        e.ssm_conv1d_tm_state(
7670            &qkv_mixed,
7671            &mut rl.conv_state,
7672            la.ssm_conv1d.float_data(),
7673            &mut conv_out,
7674            conv_dim,
7675            t,
7676            d_conv,
7677        )?;
7678
7679        // GDN prep via the prefill kernels (repack + L2 + sigmoid + glog), T-wide.
7680        let mut q_g = e.uninit(d_state * num_v * t)?;
7681        let mut k_g = e.uninit(d_state * num_v * t)?;
7682        let mut v_g = e.uninit(d_state * num_v * t)?;
7683        e.qkv_to_gdn_repack(
7684            &conv_out, &mut q_g, &mut k_g, &mut v_g, d_state, num_v, num_k, key_dim, t,
7685        )?;
7686        let mut q_l2 = e.uninit(d_state * num_v * t)?;
7687        e.l2_norm_decode(&q_g, &mut q_l2, d_state, num_v * t, eps)?;
7688        let mut k_l2 = e.uninit(d_state * num_v * t)?;
7689        e.l2_norm_decode(&k_g, &mut k_l2, d_state, num_v * t, eps)?;
7690        let mut beta = e.uninit(t * num_v)?;
7691        e.sigmoid(&beta_raw, &mut beta, t * num_v)?;
7692        let mut g_log = e.uninit(t * num_v)?;
7693        e.gdn_glog(
7694            &alpha,
7695            la.ssm_dt.float_data(),
7696            la.ssm_a.float_data(),
7697            &mut g_log,
7698            num_v,
7699            t,
7700        )?;
7701
7702        // ONE gdn_scan over T tokens from the carried state (internal sequential loop ==
7703        // T chained T=1 steps). Ping-pong the resident buffers like eager decode.
7704        let mut o = e.uninit(d_state * num_v * t)?;
7705        {
7706            let crate::cache::RecurLayer {
7707                ssm_state,
7708                ssm_state_alt,
7709                ..
7710            } = rl;
7711            e.gdn_scan_s128(
7712                &q_l2,
7713                &k_l2,
7714                &v_g,
7715                &g_log,
7716                &beta,
7717                ssm_state,
7718                ssm_state_alt,
7719                &mut o,
7720                num_v,
7721                t,
7722                scale,
7723            )?;
7724        }
7725        std::mem::swap(&mut rl.ssm_state, &mut rl.ssm_state_alt);
7726
7727        // gated RMSNorm + out projection, T-wide. FUSED-QUANTIZE ARM (lane/vt-fixes fix 2,
7728        // mirroring the T=1 decode's launch-arc form): when ssm_out rides the q8_1 fast path,
7729        // emit q8_1 straight from the gated norm at nrows=num_v*t (row-indexed kernel, the
7730        // T-wide launch is the per-row program; kernel-check pins bit-identity vs
7731        // gated_rmsnorm -> quantize_q8_1 at T=1 and T=5) and feed the decode-exact dispatch
7732        // pre-quantized — one launch replaces norm + quantize. Fallback = the f32 chain.
7733        let out = if e.uses_q8_1_fast(&la.ssm_out) {
7734            let (gq, gd) =
7735                e.gated_rmsnorm_q8_1(&o, la.ssm_norm.float_data(), &z, d_state, num_v * t, eps)?;
7736            e.matmul_decode_exact_pre(&la.ssm_out, &gq, &gd, t)?
7737        } else {
7738            let mut gn = e.uninit(d_state * num_v * t)?;
7739            e.gated_rmsnorm(
7740                &o,
7741                la.ssm_norm.float_data(),
7742                &z,
7743                &mut gn,
7744                d_state,
7745                num_v * t,
7746                eps,
7747            )?;
7748            // DECODE-EXACT out-projection: same MMVQ path as the T=1 decode (ssm_out at m>=5
7749            // would fall to dp4a with a different FP reduction order — same class of bug as
7750            // the input projs).
7751            e.matmul_decode_exact(&la.ssm_out, &gn, t)?
7752        };
7753        let stash = if want_stash {
7754            Some(GdnStash {
7755                qkv_mixed,
7756                q_l2,
7757                k_l2,
7758                v_g,
7759                g_log,
7760                beta,
7761            })
7762        } else {
7763            None
7764        };
7765        Ok((out, stash))
7766    }
7767
7768    /// REPLAY-FREE partial-accept commit (2026-07-03): make the cache state == "committed through
7769    /// the first `j` verify columns" WITHOUT the legacy rollback + duplicate trunk replay.
7770    /// - Full-attn KV: truncate both the owning-stage shadow and every TP rank to snapshot + j.
7771    ///   The verify's appended rows for those columns are bit-identical to what an eager T=1
7772    ///   chain writes (the decode-exact contract the verify-probe gates), so keeping them ==
7773    ///   replaying them.
7774    /// - Linear layers, batched path: rebuild the conv ring by PURE COPIES (ring holds raw input
7775    ///   columns) and the ssm state by a prefix re-run of the SAME gdn_scan kernel (t=j) from the
7776    ///   snapshot state over the stash's identical inputs — the kernel's t-loop carries state in
7777    ///   registers and writes it once at the end, so iterations 0..j-1 are independent of T:
7778    ///   bit-identical to the verify's own state after j tokens == the eager chain state.
7779    /// - Linear layers, per-column path: restore the cloned actual state after column j-1.
7780    /// Caller guarantees 1 <= j <= t-1 (j==0 rounds take the legacy rollback; j==t is full accept).
7781    fn commit_verified_prefix(
7782        &self,
7783        e: &Engine,
7784        cache: &mut Cache,
7785        snap: &crate::cache::CacheSnapshot,
7786        ckpt: &VerifyCkpt,
7787        j: usize,
7788        kv_lens_done: bool,
7789        dev_j: Option<(&CudaSlice<u32>, usize, usize)>,
7790    ) -> Result<(), Box<dyn std::error::Error>> {
7791        // GDN geometry derives lazily inside recurrent-layer arms. Full-attention plans carry no
7792        // recurrent state and must never be forced through a synthetic SSM geometry.
7793        // Engine-bundle slice 1 (DSF-ROUNDCOST-20260820 §1.1): the per-column-arm restores
7794        // are 2 tiny D2D copies per linear layer (~96 dispatches/partial round on the q38
7795        // route). When every cols-arm layer shares uniform state sizes (single ssm cfg —
7796        // always true today), batch them into two `copy_batch_uniform_f32` launches. Bytes,
7797        // buffers and stream order are identical to the per-layer memcpy sequence; the
7798        // kernel-rebuild (gdn-stash) arm below is untouched. MEMRA_STATE_COPY_BATCH=0 reverts.
7799        let mut batched_cols = false;
7800        if state_copy_batch_on() && dev_j.is_none() {
7801            use cudarc::driver::DevicePtr;
7802            let s = &e.gpu.stream();
7803            let mut conv_pairs: Vec<(u64, u64)> = Vec::new();
7804            let mut ssm_pairs: Vec<(u64, u64)> = Vec::new();
7805            let (mut conv_words, mut ssm_words) = (0usize, 0usize);
7806            let mut uniform = true;
7807            for il in 0..self.layers.len() {
7808                let Some(rl) = cache.recur[il].as_ref() else {
7809                    continue;
7810                };
7811                if ckpt.gdn[il].is_some() {
7812                    continue; // kernel-rebuild arm restores below, per layer
7813                }
7814                let Some(cols) = &ckpt.cols[il] else {
7815                    continue; // missing-ckpt error surfaces in the main loop
7816                };
7817                let (c, st) = &cols[j - 1];
7818                if conv_pairs.is_empty() {
7819                    conv_words = c.len();
7820                    ssm_words = st.len();
7821                } else if c.len() != conv_words || st.len() != ssm_words {
7822                    uniform = false;
7823                    break;
7824                }
7825                let (pc, _g0) = c.device_ptr(s);
7826                let (dc, _g1) = rl.conv_state.device_ptr(s);
7827                let (ps, _g2) = st.device_ptr(s);
7828                let (ds, _g3) = rl.ssm_state.device_ptr(s);
7829                conv_pairs.push((pc as u64, dc as u64));
7830                ssm_pairs.push((ps as u64, ds as u64));
7831            }
7832            if uniform && !conv_pairs.is_empty() {
7833                let n = conv_pairs.len();
7834                let mut t = vec![0u64; 2 * n];
7835                for (k, &(src, dst)) in conv_pairs.iter().enumerate() {
7836                    t[k] = src;
7837                    t[n + k] = dst;
7838                }
7839                let conv_t = e.htod_u64(&t)?;
7840                for (k, &(src, dst)) in ssm_pairs.iter().enumerate() {
7841                    t[k] = src;
7842                    t[n + k] = dst;
7843                }
7844                let ssm_t = e.htod_u64(&t)?;
7845                e.copy_batch_uniform_f32(&conv_t, n, conv_words)?;
7846                e.copy_batch_uniform_f32(&ssm_t, n, ssm_words)?;
7847                batched_cols = true;
7848            }
7849        }
7850        rewind_tp_kv_verified_prefix(&mut cache.tp_kv, &snap.tp_kv_len, j)?;
7851        for il in 0..self.layers.len() {
7852            if let (Some(kvl), Some(saved)) = (cache.kv[il].as_mut(), snap.kv_len[il]) {
7853                kvl.len = saved + j;
7854                // devacc 3a: spec_rollback_kv already wrote len_d on-device (same value).
7855                if !kv_lens_done {
7856                    e.set_i32_one(&mut kvl.len_d, kvl.len as i32)?;
7857                }
7858            }
7859            if let Some(rl) = cache.recur[il].as_mut() {
7860                let Mixer::Linear(linear) = &self.layers[il].mixer else {
7861                    return Err(format!("recurrent cache layer {il} has no GDN plan").into());
7862                };
7863                let geometry = linear.geometry;
7864                let d_state = geometry.key_head_dim as usize;
7865                let num_k = geometry.key_heads as usize;
7866                let num_v = geometry.value_heads as usize;
7867                let d_conv = geometry.conv_kernel as usize;
7868                let conv_dim = d_state * num_k * 2 + geometry.value_head_dim as usize * num_v;
7869                let scale = 1.0 / (d_state as f32).sqrt();
7870                if let Some(st) = &ckpt.gdn[il] {
7871                    let ring_old = snap.conv[il].as_ref().expect("snapshot missing conv");
7872                    let state_in = snap.ssm[il].as_ref().expect("snapshot missing ssm");
7873                    if let Some((acc, base, t_v)) = dev_j {
7874                        // 3b: j read on-device (_dc twins, same bodies; full accept early-exits).
7875                        e.ssm_conv_ring_rebuild_dc(
7876                            &st.qkv_mixed,
7877                            ring_old,
7878                            &mut rl.conv_state,
7879                            conv_dim,
7880                            acc,
7881                            base,
7882                            t_v,
7883                            d_conv,
7884                        )?;
7885                        let mut o = e.uninit(d_state * num_v * j.max(1))?;
7886                        e.gdn_scan_s128_dc(
7887                            &st.q_l2,
7888                            &st.k_l2,
7889                            &st.v_g,
7890                            &st.g_log,
7891                            &st.beta,
7892                            state_in,
7893                            &mut rl.ssm_state,
7894                            &mut o,
7895                            num_v,
7896                            acc,
7897                            base,
7898                            t_v,
7899                            scale,
7900                        )?;
7901                    } else {
7902                        e.ssm_conv_ring_rebuild(
7903                            &st.qkv_mixed,
7904                            ring_old,
7905                            &mut rl.conv_state,
7906                            conv_dim,
7907                            j,
7908                            d_conv,
7909                        )?;
7910                        let mut o = e.uninit(d_state * num_v * j)?; // scan output, discarded
7911                        e.gdn_scan_s128(
7912                            &st.q_l2,
7913                            &st.k_l2,
7914                            &st.v_g,
7915                            &st.g_log,
7916                            &st.beta,
7917                            state_in,
7918                            &mut rl.ssm_state,
7919                            &mut o,
7920                            num_v,
7921                            j,
7922                            scale,
7923                        )?;
7924                    }
7925                } else if let Some(cols) = &ckpt.cols[il] {
7926                    if !batched_cols {
7927                        let (c, s) = &cols[j - 1];
7928                        e.copy_into(&mut rl.conv_state, 0, c, c.len())?;
7929                        e.copy_into(&mut rl.ssm_state, 0, s, s.len())?;
7930                    }
7931                } else {
7932                    return Err(
7933                        "commit_verified_prefix: verify ckpt missing for linear layer".into(),
7934                    );
7935                }
7936            }
7937        }
7938        cache.pos = snap.pos + j;
7939        Ok(())
7940    }
7941
7942    /// ROUND-STREAM: recur restore with device-j (the _dc twins; full accept early-exits
7943    /// in-kernel). Requires the batched-linear stash on every linear layer (stream gate).
7944    fn commit_verified_prefix_stream(
7945        &self,
7946        e: &Engine,
7947        cache: &mut Cache,
7948        snap: &crate::cache::CacheSnapshot,
7949        ckpt: &VerifyCkpt,
7950        acc: &CudaSlice<u32>,
7951        base: usize,
7952        t_v: usize,
7953    ) -> Result<(), Box<dyn std::error::Error>> {
7954        for il in 0..self.layers.len() {
7955            if let Some(rl) = cache.recur[il].as_mut() {
7956                let Mixer::Linear(linear) = &self.layers[il].mixer else {
7957                    return Err(format!("recurrent cache layer {il} has no GDN plan").into());
7958                };
7959                let geometry = linear.geometry;
7960                let d_state = geometry.key_head_dim as usize;
7961                let num_k = geometry.key_heads as usize;
7962                let num_v = geometry.value_heads as usize;
7963                let d_conv = geometry.conv_kernel as usize;
7964                let conv_dim = d_state * num_k * 2 + geometry.value_head_dim as usize * num_v;
7965                let scale = 1.0 / (d_state as f32).sqrt();
7966                let st = ckpt.gdn[il]
7967                    .as_ref()
7968                    .ok_or("stream restore: batched-linear stash missing")?;
7969                let ring_old = snap.conv[il].as_ref().expect("snapshot missing conv");
7970                let state_in = snap.ssm[il].as_ref().expect("snapshot missing ssm");
7971                e.ssm_conv_ring_rebuild_dc(
7972                    &st.qkv_mixed,
7973                    ring_old,
7974                    &mut rl.conv_state,
7975                    conv_dim,
7976                    acc,
7977                    base,
7978                    t_v,
7979                    d_conv,
7980                )?;
7981                let mut o = e.uninit(d_state * num_v * t_v)?;
7982                e.gdn_scan_s128_dc(
7983                    &st.q_l2,
7984                    &st.k_l2,
7985                    &st.v_g,
7986                    &st.g_log,
7987                    &st.beta,
7988                    state_in,
7989                    &mut rl.ssm_state,
7990                    &mut o,
7991                    num_v,
7992                    acc,
7993                    base,
7994                    t_v,
7995                    scale,
7996                )?;
7997            }
7998        }
7999        Ok(())
8000    }
8001
8002    /// EAGLE3 aux-capturing verify forward over `tokens` (T) — mirrors `decode_step_t_h` exactly
8003    /// (same KV append, same causal verify, same recur advance) but ALSO clones the aux residual-
8004    /// stream hiddens (blocks in `aux_layers`) for TWO columns: the LAST column (always) and the
8005    /// optional `pred_col` (the EAGLE seed = bonus's predecessor). Returns
8006    /// (all_T_logits host, last_col_aux, pred_col_aux?). Used by the EAGLE3 orchestrator's commit.
8007    pub fn decode_step_t_aux2(
8008        &self,
8009        e: &Engine,
8010        tokens: &[u32],
8011        pos0: usize,
8012        cache: &mut Cache,
8013        aux_layers: &[usize],
8014        pred_col: Option<usize>,
8015    ) -> Result<
8016        (Vec<f32>, Vec<CudaSlice<f32>>, Option<Vec<CudaSlice<f32>>>),
8017        Box<dyn std::error::Error>,
8018    > {
8019        let cfg = &self.cfg;
8020        let n_embd = cfg.n_embd as usize;
8021        let eps = cfg.rms_eps;
8022        let t = tokens.len();
8023        let pos_vec: Vec<i32> = (0..t).map(|i| (pos0 + i) as i32).collect();
8024        let pos_d = e.htod_i32(&pos_vec)?;
8025        let mut x = e.htod(&self.embd.gather(n_embd, tokens))?;
8026        let mut aux_last: Vec<CudaSlice<f32>> = Vec::with_capacity(aux_layers.len());
8027        let mut aux_pred: Vec<CudaSlice<f32>> = Vec::new();
8028        let want_pred = pred_col.is_some();
8029
8030        for (il, layer) in self.layers.iter().enumerate() {
8031            // DISPATCH-MIRRORED norms (FP-order lesson #8) — see decode_step_t_h_emb.
8032            let mixer_fast = self.mixer_in_q8_1_fast(e, &layer.mixer);
8033            let norm_fused = std::env::var("MEMRA_NO_FUSE_NORMQ").is_err() && mixer_fast;
8034            let mut h = vbuf(e, t * n_embd)?; // fully written by either rms_norm arm
8035            if norm_fused {
8036                e.rms_norm_decode(&x, layer.attn_norm.float_data(), &mut h, n_embd, t, eps)?;
8037            } else {
8038                e.rms_norm(&x, layer.attn_norm.float_data(), &mut h, n_embd, t, eps)?;
8039            }
8040            let mixed = match &layer.mixer {
8041                Mixer::Full(fa) => {
8042                    self.full_attn_verify(e, fa, &h, None, &pos_d, t, cache, il, None)?
8043                }
8044                Mixer::Mla(_) => crate::hybrid::mla_forward_unimplemented(),
8045                Mixer::Linear(la) => {
8046                    let mut out = e.zeros(t * n_embd)?;
8047                    for col in 0..t {
8048                        let mut h_col = e.zeros(n_embd)?;
8049                        let src = h.slice(col * n_embd..(col + 1) * n_embd);
8050                        e.copy_view_into(&mut h_col, 0, &src, n_embd)?;
8051                        let m_col = self.linear_attn_decode(e, la, &h_col, cache, il)?;
8052                        e.copy_into(&mut out, col * n_embd, &m_col, n_embd)?;
8053                    }
8054                    out
8055                }
8056            };
8057            let ffn_fuse = match &layer.ffn {
8058                crate::hybrid::Ffn::Dense {
8059                    ffn_gate, ffn_up, ..
8060                } => {
8061                    std::env::var("MEMRA_NO_FUSE_NORMQ").is_err()
8062                        && e.uses_q8_1_fast(ffn_gate)
8063                        && e.uses_q8_1_fast(ffn_up)
8064                }
8065                crate::hybrid::Ffn::Moe(_) => false,
8066            };
8067            let mut x1 = vbuf(e, t * n_embd)?; // fully written by add / add_rms_norm
8068            let mut z = vbuf(e, t * n_embd)?; // fully written by rms_norm_decode / add_rms_norm
8069            if ffn_fuse {
8070                e.add(&x, &mixed, &mut x1, t * n_embd)?;
8071                e.rms_norm_decode(
8072                    &x1,
8073                    layer.post_attn_norm.float_data(),
8074                    &mut z,
8075                    n_embd,
8076                    t,
8077                    eps,
8078                )?;
8079            } else {
8080                e.add_rms_norm(
8081                    &x,
8082                    &mixed,
8083                    layer.post_attn_norm.float_data(),
8084                    &mut x1,
8085                    &mut z,
8086                    n_embd,
8087                    t,
8088                    eps,
8089                )?;
8090            }
8091            let ffn_out = match &layer.ffn {
8092                crate::hybrid::Ffn::Dense {
8093                    ffn_gate,
8094                    ffn_up,
8095                    ffn_down,
8096                } => {
8097                    let n_ff = ffn_gate.out_features();
8098                    let gate = e.matmul_decode_exact(ffn_gate, &z, t)?;
8099                    let up = e.matmul_decode_exact(ffn_up, &z, t)?;
8100                    let mut act = vbuf(e, t * n_ff)?; // fully written by ffn_act_lim
8101                    // dense FFN clamp = the SHEXP array (upstream build_ffn serves both).
8102                    Self::ffn_act_lim(
8103                        e,
8104                        &self.cfg,
8105                        &gate,
8106                        &up,
8107                        1.0,
8108                        1.0,
8109                        self.cfg.clamp_shexp_at(il as u32),
8110                        &mut act,
8111                        t * n_ff,
8112                    )?;
8113                    e.matmul_decode_exact(ffn_down, &act, t)?
8114                }
8115                crate::hybrid::Ffn::Moe(m) => self.moe_ffn_il(e, m, &z, t, il as u16)?,
8116            };
8117            let mut x2 = vbuf(e, t * n_embd)?; // fully written by add
8118            e.add(&x1, &ffn_out, &mut x2, t * n_embd)?;
8119            if aux_layers.contains(&il) {
8120                let mut a = e.zeros(n_embd)?;
8121                e.copy_view_into(&mut a, 0, &x2.slice((t - 1) * n_embd..t * n_embd), n_embd)?;
8122                aux_last.push(a);
8123                if let Some(pc) = pred_col {
8124                    let mut ap = e.zeros(n_embd)?;
8125                    e.copy_view_into(
8126                        &mut ap,
8127                        0,
8128                        &x2.slice(pc * n_embd..(pc + 1) * n_embd),
8129                        n_embd,
8130                    )?;
8131                    aux_pred.push(ap);
8132                }
8133            }
8134            x = x2;
8135        }
8136        let mut hn = vbuf(e, t * n_embd)?; // fully written by rms_norm_decode
8137        e.rms_norm_decode(&x, self.output_norm.float_data(), &mut hn, n_embd, t, eps)?;
8138        let logits = e.matmul_decode_exact(&self.output, &hn, t)?;
8139        let host = e.dtoh(&logits)?;
8140        cache.pos += t;
8141        Ok((
8142            host,
8143            aux_last,
8144            if want_pred { Some(aux_pred) } else { None },
8145        ))
8146    }
8147
8148    /// step35 SPEC-VERIFY attention over T query tokens — a per-row REPLAY of the eager
8149    /// `step35_decode_attn`.
8150    ///
8151    /// WHY A REPLAY AND NOT A BATCHED TWIN. The verify's whole job is to be bit-identical to what
8152    /// the eager decode would have computed for the same tokens; that is what makes greedy spec
8153    /// decode exact (run-spec asserts token identity for K=1..8). Every other verify arm in this
8154    /// file earns that identity by carefully mirroring dispatch (`matmul_decode_exact` to force
8155    /// MMVQ at any m, per-layer `ffn_fuse` mirroring, per-row `fa_decode` key bounds). step35
8156    /// stacks FOUR more per-layer degrees of freedom on top of that — per-layer `n_head`
8157    /// (64 full / 96 SWA), per-layer rotary width (64 full / 128 SWA), per-layer rope base, and a
8158    /// SEPARATE `attn_gate` tensor whose projection shares the attn-normed input — and its SWA
8159    /// layers attend through a token-OFFSET view whose offset is a function of the ABSOLUTE
8160    /// position of each query row. A batched twin would have to reproduce all of that AND the
8161    /// per-row offset in one launch; the offset alone rules out the existing rows kernels (they
8162    /// take one `base_len`, not a per-row offset).
8163    ///
8164    /// So this arm calls the eager path itself, once per row, on the same cache. Identity is then
8165    /// true BY CONSTRUCTION rather than by mirroring: row r runs exactly the kernel sequence that
8166    /// eager decode step r runs (same projections, same q8_1 fusion decision, same append, same
8167    /// view arithmetic, same `fa_decode_kvmod`, same gate), because it IS that code. Cost: T x the
8168    /// eager decode mixer instead of one batched pass — the same trade the generic arm's `else`
8169    /// per-row loop already accepts when `fa_rows_eligible` says no. Correctness first; a batched
8170    /// step35 twin is a perf lane's job and must be gated against this arm.
8171    ///
8172    /// The `h_q8` pre-quantized pair from the caller's fused norm is NOT forwarded: it is a
8173    /// T-row buffer and `step35_decode_attn`'s `pre_q` contract is one row. Instead each row's
8174    /// f32 `h` slice is handed over and the callee re-derives its own q8_1 exactly as eager decode
8175    /// does (`quantize_q8_1(h, 1, n_embd)`) — which is the dispatch being mirrored. Callers that
8176    /// took the fused arm therefore MUST still pass a live `h`; `step35_verify` asserts that.
8177    #[allow(clippy::too_many_arguments)]
8178    fn step35_verify(
8179        &self,
8180        e: &Engine,
8181        fa: &FullAttnLayer,
8182        h: &CudaSlice<f32>,
8183        h_q8: Option<(&CudaSlice<i8>, &CudaSlice<f32>)>,
8184        t: usize,
8185        cache: &mut Cache,
8186        il: usize,
8187    ) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
8188        let n_embd = self.cfg.n_embd as usize;
8189        // The fused (h-less) attn-norm arm hands `h` as a zero-length placeholder. This arm needs
8190        // the f32 rows, so the caller must not take that lever for step35 — enforced at the call
8191        // site by the sliding-gated-MoE `Mixer::Full(_) => false` arm of
8192        // `lin_q8_only` in `decode_step_t_core_stream`, and asserted here so a future caller
8193        // cannot regress it into silently reading an empty buffer.
8194        assert_eq!(
8195            h.len(),
8196            t * n_embd,
8197            "step35_verify needs the f32 attn-normed rows ([t*n_embd]); the caller took the \
8198             fused q8-only norm arm (h_q8={}) — step35 must stay on the unfused arm",
8199            h_q8.is_some()
8200        );
8201        // ROW WIDTH IS n_embd, NOT n_head*head_dim: `step35_decode_attn` returns the mixer output
8202        // AFTER `wo`, so a row is [n_embd] — the same contract the generic arm's
8203        // `matmul_decode_exact(&fa.wo, &attn_g, t)` return has. Sizing this buffer from the
8204        // per-layer head geometry (8192 on full-attn, 12288 on SWA) instead overran the row on the
8205        // FIRST copy and panicked inside `copy_into`'s `CudaView::slice` unwrap
8206        // (raw/mtp-bt-20260806T212127Z.log frames 12-13).
8207        let mut out = vbuf(e, t * n_embd)?; // each row fully written by the copy below
8208        for r in 0..t {
8209            // Absolute position of this query row. `cache.pos` is the committed length at round
8210            // start and every row before r has already been appended by this loop, so the r-th
8211            // verify token sits at cache.pos + r — the same position eager decode would give it.
8212            let pos_d = e.htod_i32(&[(cache.pos + r) as i32])?;
8213            let mut h_row = vbuf(e, n_embd)?; // fully written by copy_view_into
8214            e.copy_view_into(
8215                &mut h_row,
8216                0,
8217                &h.slice(r * n_embd..(r + 1) * n_embd),
8218                n_embd,
8219            )?;
8220            // THE eager decode mixer: appends this row's K/V at kvl.len, advances it, then
8221            // attends over the (SWA-offset) view. Post-`wo`, same contract as this fn returns.
8222            let o = self.step35_decode_attn(e, fa, il, &h_row, None, &pos_d, cache)?;
8223            debug_assert_eq!(
8224                o.len(),
8225                n_embd,
8226                "step35_decode_attn returns post-wo [n_embd]"
8227            );
8228            e.copy_into(&mut out, r * n_embd, &o, n_embd)?;
8229        }
8230        Ok(out)
8231    }
8232
8233    /// Full-attention mixer over T query tokens with a GROWING resident KV (verify path, §D.3).
8234    /// Appends the T new K/V columns to cache.kv[il] then attends causally over [0..len) via
8235    /// fa_prefill. Token-major [T, kv_dim] projection layout == cache row layout (single copy).
8236    #[allow(clippy::too_many_arguments)]
8237    fn full_attn_verify(
8238        &self,
8239        e: &Engine,
8240        fa: &FullAttnLayer,
8241        h: &CudaSlice<f32>,
8242        h_q8: Option<(&CudaSlice<i8>, &CudaSlice<f32>)>,
8243        pos_d: &CudaSlice<i32>,
8244        t: usize,
8245        cache: &mut Cache,
8246        il: usize,
8247        stream_ctr: Option<&CudaSlice<i32>>,
8248    ) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
8249        // step35: the generic geometry below is wrong for this arch (per-layer n_head, partial
8250        // per-layer rope, the SWA offset view, and a SEPARATE head-wise gate tensor), so it takes
8251        // its own arm. A verify that silently computes different attention than decode defeats the
8252        // whole self-consistency gate, so the arm is a per-row REPLAY of `step35_decode_attn`
8253        // rather than a batched twin — see `step35_verify` for why that is the exactness-correct
8254        // shape and not laziness.
8255        if self.sliding_gated_moe_batch_program() {
8256            if stream_ctr.is_some() {
8257                return Err(
8258                    "step35 has no ROUND-STREAM verify arm (the device-counter _dc twins \
8259                            cannot express the SWA offset KV view; same root cause as the dc \
8260                            decode refusal) — run spec without the stream arm"
8261                        .into(),
8262                );
8263            }
8264            return self.step35_verify(e, fa, h, h_q8, t, cache, il);
8265        }
8266        let cfg = &self.cfg;
8267        let geometry = cfg.full_attention_geometry_at(il as u32);
8268        let n_head = geometry.n_head as usize;
8269        let n_head_kv = geometry.n_head_kv as usize;
8270        let head_dim = geometry.head_dim_k as usize;
8271        let eps = cfg.rms_eps;
8272        let scale = geometry.attention_scale();
8273        let n_embd = cfg.n_embd as usize;
8274
8275        // DECODE-EXACT Q/K/V projections: matmul_decode_exact forces the MMVQ (warp-per-row) path
8276        // for every m, matching the T=1 decode's FP accumulation order. matmul_pre at m>=5 would
8277        // fall to dp4a (128-thread, two-level reduce) with a different FP sum order.
8278        // Q8 TRUNK-FUSION at T=1: DISPATCH-MIRRORS the eager decode's fused3 (bit-identical body).
8279        // BATCHED EPILOGUE RE-FUSE (lane/vt-fixes fix 2): `h_q8` = the attn-input norm's q8_1
8280        // form emitted by the fused rms_norm_q8_1 (bit-identical to rms_norm_decode ->
8281        // quantize_q8_1, kernel-check-pinned). When present (caller checked mixer q8_1-fast),
8282        // every projection consumes it — `h` may be a zero-len placeholder and must not be read.
8283        let (qf, mut k, v) = {
8284            let mut fused = None;
8285            let qkv_fast =
8286                e.uses_q8_1_fast(&fa.wq) && e.uses_q8_1_fast(&fa.wk) && e.uses_q8_1_fast(&fa.wv);
8287            if t == 1 && qkv_fast {
8288                let (hq_o, hd_o);
8289                let (hq, hd): (&CudaSlice<i8>, &CudaSlice<f32>) = match h_q8 {
8290                    Some(p) => p,
8291                    None => {
8292                        (hq_o, hd_o) = e.quantize_q8_1(h, 1, n_embd)?;
8293                        (&hq_o, &hd_o)
8294                    }
8295                };
8296                fused = e.matmul_q8_fused3(&fa.wq, &fa.wk, &fa.wv, hq, hd)?;
8297            } else if spec_fused_t() && (2..=4).contains(&t) && qkv_fast {
8298                // VERIFY-TIER TRUNK FUSION (MEMRA_SPEC_FUSED_T): one shared quantize + one
8299                // fused3 batched launch replaces three decode-exact calls (3 re-quantizes of
8300                // the same h + 3 _b2/_b4 launches). Bit-identical per (tensor,token,row).
8301                let (hq_o, hd_o);
8302                let (hq, hd): (&CudaSlice<i8>, &CudaSlice<f32>) = match h_q8 {
8303                    Some(p) => p,
8304                    None => {
8305                        (hq_o, hd_o) = e.quantize_q8_1(h, t, n_embd)?;
8306                        (&hq_o, &hd_o)
8307                    }
8308                };
8309                fused = e.matmul_q8_fused3_t(&fa.wq, &fa.wk, &fa.wv, hq, hd, t)?;
8310            }
8311            match (fused, h_q8) {
8312                (Some(triple), _) => triple,
8313                // shared pre-quantized activation (q8_1-fast guaranteed by the caller): the
8314                // decode-exact dispatch consumes (hq, hd) instead of re-quantizing 3x.
8315                (None, Some((hq, hd))) if qkv_fast => (
8316                    e.matmul_decode_exact_pre(&fa.wq, hq, hd, t)?,
8317                    e.matmul_decode_exact_pre(&fa.wk, hq, hd, t)?,
8318                    e.matmul_decode_exact_pre(&fa.wv, hq, hd, t)?,
8319                ),
8320                (None, _) => (
8321                    e.matmul_decode_exact(&fa.wq, h, t)?,
8322                    e.matmul_decode_exact(&fa.wk, h, t)?,
8323                    e.matmul_decode_exact(&fa.wv, h, t)?,
8324                ),
8325            }
8326        };
8327        // M3/Hy3 have no attention output gate — wq out is exactly q; skip the split.
8328        let gated = geometry.attention_gate == memra_gguf::config::AttentionGateKind::FusedQ;
8329        let (mut q, gate) = if gated {
8330            let mut q = vbuf(e, t * n_head * head_dim)?; // fully written by q_gate_split
8331            let mut gate = vbuf(e, t * n_head * head_dim)?; // fully written by q_gate_split
8332            e.q_gate_split(&qf, &mut q, &mut gate, head_dim, n_head, t)?;
8333            (q, Some(gate))
8334        } else {
8335            (qf, None)
8336        };
8337
8338        let mut qn = vbuf(e, t * n_head * head_dim)?; // fully written by rms_norm
8339        e.rms_norm(
8340            &q,
8341            fa.q_norm.float_data(),
8342            &mut qn,
8343            head_dim,
8344            n_head * t,
8345            eps,
8346        )?;
8347        q = qn;
8348        let mut kn = vbuf(e, t * n_head_kv * head_dim)?; // fully written by rms_norm
8349        e.rms_norm(
8350            &k,
8351            fa.k_norm.float_data(),
8352            &mut kn,
8353            head_dim,
8354            n_head_kv * t,
8355            eps,
8356        )?;
8357        k = kn;
8358        let rope_dims = geometry.n_rot as usize;
8359        e.rope_neox(
8360            &mut q,
8361            pos_d,
8362            head_dim,
8363            rope_dims,
8364            n_head,
8365            t,
8366            geometry.rope_base,
8367            1.0,
8368        )?;
8369        e.rope_neox(
8370            &mut k,
8371            pos_d,
8372            head_dim,
8373            rope_dims,
8374            n_head_kv,
8375            t,
8376            geometry.rope_base,
8377            1.0,
8378        )?;
8379
8380        // append T new K/V columns to the resident QUANTIZED cache. k/v are token-major [T, kv_dim]
8381        // f32; append-quantize each of the T token rows into the byte cache (q8_0 K / q5_1 V).
8382        let kvl = cache.kv[il].as_mut().unwrap();
8383        let (kv_dim_k, kv_dim_v, ktb, vtb) =
8384            (kvl.kv_dim_k, kvl.kv_dim_v, kvl.k_tok_bytes, kvl.v_tok_bytes);
8385        if let Some(ctr) = stream_ctr {
8386            // stream: ONE batched append at the device counter (rows kernel = the per-view warp
8387            // math on a (block, token) grid, documented byte-identical); host len is a stale
8388            // LOWER BOUND under pre-issue (drain reconciles it).
8389            e.append_kv_quantized_rows_dc(
8390                &k,
8391                &v,
8392                &mut kvl.k,
8393                &mut kvl.v,
8394                ctr,
8395                t,
8396                kv_dim_k,
8397                kv_dim_v,
8398                ktb,
8399                vtb,
8400                crate::Engine::kv_fp8_on(),
8401            )?;
8402        } else {
8403            for i in 0..t {
8404                let k_row = k.slice(i * kv_dim_k..(i + 1) * kv_dim_k);
8405                let v_row = v.slice(i * kv_dim_v..(i + 1) * kv_dim_v);
8406                e.append_kv_quantized_view(
8407                    &k_row,
8408                    &v_row,
8409                    &mut kvl.k,
8410                    &mut kvl.v,
8411                    kvl.len + i,
8412                    kv_dim_k,
8413                    kv_dim_v,
8414                    ktb,
8415                    vtb,
8416                    crate::Engine::kv_fp8_on(),
8417                )?;
8418            }
8419            kvl.len += t;
8420        }
8421
8422        // BIT-IDENTICAL VERIFY ATTENTION (spec-exactness fix): the FP accumulation order must be
8423        // byte-for-byte identical to the eager decode path. fa_prefill uses a different tile size
8424        // (BLOCK_Q=64, BK=32) and online-softmax structure than fa_decode's split-K + combine,
8425        // which changes FP summation order and can flip argmax at tight logit margins. Query row r
8426        // attends to keys [0..base_len+r+1) — each successive row sees one more key (the causal
8427        // property). This matches eager: decode appends k at len, then fa_decode sees t_kv = len+1
8428        // keys. The verify appends all T tokens first but bounds the key range per row.
8429        //
8430        // MULTI-ROW FUSED PATH (the long-ctx spec fix, 2026-07-03): when every row takes the vec
8431        // kernel (base_len+1 >= FA_VEC_MIN_TKV), ONE fa_decode_rows launch executes the exact
8432        // per-row program for all T rows (grid.z = row, per-row n_splits from the same
8433        // fa_split_keys formula) — replacing T x (2 launches + 2 dtod copies + 5 partial allocs)
8434        // and multiplying resident CTAs by T on a latency-bound kernel. Bit-identical per row by
8435        // construction; kernel-check pins rows-vs-loop byte identity, run-spec is the end gate.
8436        // Short ctx (any row below the vec crossover) and MEMRA_NO_FA_VEC/MEMRA_FA_ROWS_OFF keep the
8437        // per-row loop (whose fa_decode picks scalar/vec per row exactly like eager decode).
8438        let mut attn = vbuf(e, t * n_head * head_dim)?; // fully written by every FA arm below
8439        let base_len = kvl.len - t; // KV len BEFORE this round's T tokens were appended
8440        // T=1 INCLUDED (2026-07-05): p-min cuts the draft to 1 in ~75% of rounds on hard
8441        // (agentic) content — the old t>1 gate sent those rounds to the per-row loop (262us/row
8442        // + q-row copy + per-row allocs vs 93us/row through the fused kernel at grid.z=1, same
8443        // program). nsys accounting: 1088 of 1456 verify FA launches were T=1 escapees.
8444        // LEAN T=1 ARM (MEMRA_SPEC_LEAN, close35): at t==1, q IS one row and fa_decode on it is
8445        // the EXACT eager decode dispatch (vec_q_v2 + combine_f32; the rows pair measured +50us
8446        // at m=1). Byte-identical: kernel-check pins rows-vs-loop identity, and the per-row loop
8447        // at t=1 is fa_decode on the same q with zero-offset copies. Gates arbitrate.
8448        if let Some(ctr) = stream_ctr {
8449            // STREAM ARM: causal base from the device counter; host kvl.len is a stale lower
8450            // bound used only for the split-sizing upper bound (+64 slack covers M pre-issued
8451            // rounds at K<=8). Views span the bound; per-row limits derive in-kernel.
8452            let upper = kvl.len + t + 64;
8453            let k_view = e.view_u8(&kvl.k, (upper.min(cache.max_ctx)) * ktb);
8454            let v_view = e.view_u8(&kvl.v, (upper.min(cache.max_ctx)) * vtb);
8455            e.fa_decode_rows_dc(
8456                &q,
8457                &k_view,
8458                &v_view,
8459                &mut attn,
8460                head_dim,
8461                n_head,
8462                n_head_kv,
8463                ctr,
8464                upper.min(cache.max_ctx),
8465                t,
8466                scale,
8467                ktb,
8468                vtb,
8469                0,
8470                false,
8471            )?;
8472        } else if spec_lean() && t == 1 {
8473            let t_kv = base_len + 1;
8474            let k_view = e.view_u8(&kvl.k, t_kv * ktb);
8475            let v_view = e.view_u8(&kvl.v, t_kv * vtb);
8476            e.fa_decode_kvmod(
8477                &q,
8478                &k_view,
8479                &v_view,
8480                &mut attn,
8481                head_dim,
8482                n_head,
8483                n_head_kv,
8484                t_kv,
8485                scale,
8486                ktb,
8487                vtb,
8488                crate::Engine::kv_fp8_on(),
8489            )?;
8490        } else if e.fa_rows_eligible(base_len, head_dim) {
8491            let k_view = e.view_u8(&kvl.k, (base_len + t) * ktb);
8492            let v_view = e.view_u8(&kvl.v, (base_len + t) * vtb);
8493            e.fa_decode_rows(
8494                &q,
8495                &k_view,
8496                &v_view,
8497                &mut attn,
8498                head_dim,
8499                n_head,
8500                n_head_kv,
8501                base_len,
8502                t,
8503                scale,
8504                ktb,
8505                vtb,
8506                None,
8507                false,
8508                crate::Engine::kv_fp8_on(),
8509                None,
8510            )?;
8511        } else {
8512            for r in 0..t {
8513                let t_kv_r = base_len + r + 1; // this row sees keys [0..t_kv_r)
8514                let k_view_r = e.view_u8(&kvl.k, t_kv_r * ktb);
8515                let v_view_r = e.view_u8(&kvl.v, t_kv_r * vtb);
8516                // copy q row into an owned buffer (fa_decode takes &CudaSlice, not CudaView)
8517                let mut q_row = vbuf(e, n_head * head_dim)?; // fully written by copy_view_into
8518                let q_src = q.slice(r * n_head * head_dim..(r + 1) * n_head * head_dim);
8519                e.copy_view_into(&mut q_row, 0, &q_src, n_head * head_dim)?;
8520                let mut attn_row = vbuf(e, n_head * head_dim)?; // fully written by fa_decode
8521                e.fa_decode_kvmod(
8522                    &q_row,
8523                    &k_view_r,
8524                    &v_view_r,
8525                    &mut attn_row,
8526                    head_dim,
8527                    n_head,
8528                    n_head_kv,
8529                    t_kv_r,
8530                    scale,
8531                    ktb,
8532                    vtb,
8533                    crate::Engine::kv_fp8_on(),
8534                )?;
8535                e.copy_into(
8536                    &mut attn,
8537                    r * n_head * head_dim,
8538                    &attn_row,
8539                    n_head * head_dim,
8540                )?;
8541            }
8542        }
8543
8544        let attn_g = match &gate {
8545            Some(gate) => {
8546                let mut gsig = vbuf(e, t * n_head * head_dim)?; // fully written by sigmoid
8547                e.sigmoid(gate, &mut gsig, t * n_head * head_dim)?;
8548                let mut ag = vbuf(e, t * n_head * head_dim)?; // fully written by mul
8549                e.mul(&attn, &gsig, &mut ag, t * n_head * head_dim)?;
8550                ag
8551            }
8552            None => attn,
8553        };
8554        // DECODE-EXACT wo projection: at m>=5 (K=4+ with pending) the generic matmul would use dp4a
8555        // (128-thread, different FP sum order than MMVQ). Force MMVQ for bit-identity with decode.
8556        Ok(e.matmul_decode_exact(&fa.wo, &attn_g, t)?)
8557    }
8558
8559    /// Context-linear bytes for a plain serving session's trunk cache.
8560    pub fn plain_session_kv_bytes_per_token(&self) -> usize {
8561        crate::cache::cache_bytes_per_token_for_plan(
8562            &self.cfg,
8563            &self.plan,
8564            0,
8565            self.plan.layers.len(),
8566        )
8567    }
8568
8569    /// `(logical bytes/token, ring-capped bytes/token, ring row cap)` for exact admission.
8570    pub fn plain_session_kv_shape(&self) -> (usize, usize, usize) {
8571        (
8572            self.plain_session_kv_bytes_per_token(),
8573            crate::cache::cache_ring_bytes_per_token_for_plan(
8574                &self.cfg,
8575                &self.plan,
8576                0,
8577                self.plan.layers.len(),
8578            ),
8579            crate::cache::cache_ring_row_cap_for_plan(&self.plan),
8580        )
8581    }
8582
8583    /// Context-linear bytes for a speculative serving session: trunk cache plus persistent MTP
8584    /// scratch. With no MTP head this equals the plain coefficient.
8585    pub fn spec_session_kv_bytes_per_token(&self) -> usize {
8586        let scratch = self
8587            .mtp
8588            .iter()
8589            .chain(self.mtp_extra.iter())
8590            .map(|mtp| {
8591                let (_, _, k, v) = mtp_scratch_layout(&self.cfg, mtp.geom.as_ref());
8592                k + v
8593            })
8594            .sum::<usize>();
8595        self.plain_session_kv_bytes_per_token()
8596            .saturating_add(scratch)
8597    }
8598
8599    /// Spec twin of [`HybridModel::plain_session_kv_shape`]; Step35's persistent MTP scratch is
8600    /// capped by the same SWA ring rows as the trunk.
8601    pub fn spec_session_kv_shape(&self) -> (usize, usize, usize) {
8602        let total = self.spec_session_kv_bytes_per_token();
8603        let (_, mut ring, rows) = self.plain_session_kv_shape();
8604        if rows > 0 {
8605            ring = ring.saturating_add(
8606                self.mtp
8607                    .iter()
8608                    .chain(self.mtp_extra.iter())
8609                    .map(|mtp| {
8610                        let (_, _, k, v) = mtp_scratch_layout(&self.cfg, mtp.geom.as_ref());
8611                        k + v
8612                    })
8613                    .sum::<usize>(),
8614            );
8615        }
8616        (total, ring, rows)
8617    }
8618
8619    /// Greedy MTP speculative decode (§B). Token-identical to `generate(prompt, max_new)` but uses
8620    /// the NextN head to draft K tokens then verifies them in one batched target forward.
8621    /// Returns (generated tokens, total_drafted, total_accepted) so the caller can report
8622    /// acceptance rate. `k` = draft length per round.
8623    ///
8624    /// GRAPH DRAFT (stage 2 of graph-grade spec): when the model is all-Dense and the MTP head is
8625    /// Dense (no MoE host readbacks), the fixed-shape T=1 MTP forward is CUDA-graph-captured ONCE
8626    /// and replayed per draft step — the ~40 eager launches per drafted token collapse into one
8627    /// graph dispatch; only the 4-byte token id (and 4-byte p-min confidence) round-trip per step.
8628    /// Event tracking is disabled for the whole call (generate_graph pattern) so every buffer the
8629    /// captured graph references is event-free; the spec loop is strictly single-stream.
8630    /// MEMRA_SPEC_NOGRAPH=1 forces the eager draft chain.
8631    /// SAMPLED mode (MEMRA_SPEC_TEMP>0) has its OWN capture (gumbel-perturbed in-graph argmax,
8632    /// device Philox event counter, persistent q retention) — graph-vs-eager sampled streams are
8633    /// bit-identical for the same (seed, prompt, K, temp); see the sampled-graph setup in
8634    /// generate_spec_inner2.
8635    /// Multi-turn session: trunk cache + MTP draft scratch persist across generate calls, so
8636    /// turn N+1 primes ONLY its new suffix (the 124k-conversation daily pattern — re-priming a
8637    /// 32k history costs ~54s; a suffix prime costs seconds). APPEND-ONLY by construction: the
8638    /// hybrid linear-attn states are in-place (no position index), so a session can extend but
8639    /// never rewind — `committed` is the exact token list whose state the caches hold (includes
8640    /// any overshoot tokens past max_new; the caller renders from `committed`, not its own echo).
8641    pub fn new_session(
8642        &self,
8643        e: &Engine,
8644        max_ctx: usize,
8645    ) -> Result<SpecSession, Box<dyn std::error::Error>> {
8646        Ok(SpecSession {
8647            // STAGE-OWNED KV (lane/pp2-spec 2026-08-06): `pp::new_cache`, not `Cache::new`. This
8648            // is the SERVING spec-session path, and with the ppN door open across two cards a
8649            // primary-homed cache makes every remote stage peer-read its OWN KV on every verify
8650            // round — the wrong-card class already fixed on the two batched serving paths
8651            // (worker.rs 2483 / 2837). With the door shut `new_cache` IS `Cache::new` (same
8652            // branch, same allocations), so single-device behavior is byte-unchanged.
8653            cache: crate::pp::new_cache_planned(e, &self.cfg, &self.plan, max_ctx)?,
8654            scratch: self.new_mtp_scratch(e, max_ctx)?,
8655            committed: Vec::new(),
8656            last_h: None,
8657            next_pred: None,
8658            sctr: 0,
8659            uctr: 0,
8660            draft_ctx: None,
8661            pending_tok: None,
8662            turn_ckpt: None,
8663            telem: SpecTelemetryCounters::default(),
8664            capture_at: None,
8665            boundary_captures: Vec::new(),
8666            ckpt_at: None,
8667        })
8668    }
8669
8670    /// SPEC-ON-CACHE-HIT restore (lane/spec-on-cache-hit, 2026-08-18 — PORT-PLAN item 3,
8671    /// research/cache-spec-design-20260814, scoped to WHOLE-ENTRY restores only): build a
8672    /// SpecSession around a trunk cache the worker already restored from a prefix-cache
8673    /// entry, re-installing the entry's published draft plane as the MTP scratch rows
8674    /// `[0..prefix.len())` and the entry's boundary hidden as `last_h`, then feeding the
8675    /// prompt SUFFIX here — through EXACTLY the plain path's program selection — so the
8676    /// worker always receives a fully-warm continuation session (committed = whole
8677    /// prompt, `next_pred` + `last_h` set; caller sets `next_pred` from the entry's
8678    /// boundary logits on the empty-suffix shape).
8679    ///
8680    /// PROGRAM LAW (the splitiso two-programs class, learned AGAIN in this lane's own
8681    /// gate): the identity target for a converted hit is the PLAIN hit serving the same
8682    /// request, and plain feeds a carried suffix via eager `decode_step` below
8683    /// PRIME_MIN_T and via `prime_cache` at/above it (prefill_tick's arms). The generate
8684    /// path's tokenwise arm routes qwen35-class through the BATCHED T=1 program
8685    /// (`spec_target_step_h`) instead — ULP-different suffix rows, and the gate measured
8686    /// the near-tie flip at generated token ~8 (research/spec-cache-20260818, qwen r3).
8687    /// So the suffix is fed HERE, mirroring prefill_tick arm-for-arm, not handed to the
8688    /// burst prime.
8689    ///
8690    /// SEED RULE (both sampling regimes; lane/sampled-hit-spec 2026-08-19, sampled draw
8691    /// added by lane/sampled-spec-quality 2026-08-19). The boundary token is produced by
8692    /// EXACTLY the rule the cold burst entry applies to its own first token from the same
8693    /// logits row: `argmax` when greedy, and a `sample_boundary_token` draw at Philox
8694    /// counter 0 when sampled. Both shapes are covered — the entry's boundary logits on a
8695    /// full-cover (empty-suffix) hit, this feed's own boundary logits on a suffix hit.
8696    /// That is what keeps a restored session seed-identical to a cold one PER SEED: the
8697    /// cold session draws from the identical row at counter 0 and then runs its rounds from
8698    /// counter 1, so the restored session admits with `sctr = 1` after its own draw.
8699    /// The WORKER owns the one refusal this constructor cannot see — a constrained request.
8700    /// (The penalized-sampled refusal was LIFTED once the burst's penalty window learned to
8701    /// span the session: `committed` here is the WHOLE prompt, so the restored session's
8702    /// window is the cold session's window. It comes back if `MEMRA_SPEC_PEN_SESSION=0`.)
8703    ///
8704    /// NOT the rolled-back partial-restore hazard: the caller restores at exactly the
8705    /// entry's captured endpoint (`e.pos`) through the shipping whole-entry path;
8706    /// mid-entry (`at < e.pos`) trunk restores stay behind MEMRA_PREFIX_PARTIAL_RESTORE
8707    /// and are never routed here.
8708    ///
8709    /// Failure contract: `Err((Some(cache), why))` before any trunk mutation — the
8710    /// worker rebuilds the plain carrier and the hit serves plain, byte-unchanged.
8711    /// `Err((None, why))` after the suffix feed began — the carrier is part-fed and
8712    /// UNUSABLE; the worker serves the request cold-plain (correct, slower) and the
8713    /// entry stays published for the next request.
8714    #[allow(clippy::too_many_arguments)]
8715    pub fn spec_session_from_restored(
8716        &self,
8717        e: &Engine,
8718        mut cache: Cache,
8719        prefix: Vec<u32>,
8720        suffix: &[u32],
8721        draft_k: &CudaSlice<u8>,
8722        draft_v: &CudaSlice<u8>,
8723        draft_k_tok_bytes: usize,
8724        draft_v_tok_bytes: usize,
8725        draft_len: usize,
8726        last_h: &[f32],
8727        // The ENTRY's boundary logits row (the full-cover shape's seed source). May be empty
8728        // when a suffix follows — the feed's own logits are the boundary then.
8729        boundary_logits: &[f32],
8730        // The request's sampler, or None for greedy. Owned here so the seed rule lives in
8731        // ONE place instead of being half-applied by the worker.
8732        sampling: Option<SpecSampling>,
8733        require_anchor: bool,
8734        max_ctx: usize,
8735        // STABLE-BOUNDARY REPUBLICATION (lane/frspec-multiturn-cache, 2026-08-21): ABSOLUTE
8736        // prompt position to split the suffix feed at and capture the extended-entry
8737        // publication + this session's `turn_ckpt` — the worker's stable pre-generation
8738        // boundary (`plain_checkpoint_boundary`). None = legacy prompt-end republication.
8739        // WHY: the prompt-end capture below includes the template's live generation header
8740        // (`<|im_start|>assistant\n<think>\n`), which the next turn's re-render replaces, so
8741        // for a hybrid (whole-entry restores only) every extended entry's last ~2 tokens
8742        // diverged from every future prompt and the hit boundary FROZE at the first
8743        // lcp-split entry forever (measured: cached 6811 of 38228 by turn 8, B4).
8744        republish_at: Option<usize>,
8745    ) -> Result<SpecSession, (Option<Cache>, String)> {
8746        let pos = prefix.len();
8747        let fail = |cache: Cache, msg: String| -> Result<SpecSession, (Option<Cache>, String)> {
8748            Err((Some(cache), msg))
8749        };
8750        if self.mtp.is_none() {
8751            return fail(cache, "no MTP head attached (nothing to draft with)".into());
8752        }
8753        if pos == 0 {
8754            return fail(cache, "empty committed prefix".into());
8755        }
8756        if cache.pos != pos {
8757            let msg = format!(
8758                "restored cache pos {} != restored prefix len {pos}",
8759                cache.pos
8760            );
8761            return fail(cache, msg);
8762        }
8763        if draft_len != pos {
8764            return fail(
8765                cache,
8766                format!("draft plane len {draft_len} != restored prefix len {pos}"),
8767            );
8768        }
8769        if pos + suffix.len() >= max_ctx {
8770            return fail(
8771                cache,
8772                format!(
8773                    "prompt {} + suffix would not leave generation room in ctx {max_ctx}",
8774                    pos + suffix.len(),
8775                ),
8776            );
8777        }
8778        let mut scratch = match MtpScratch::new(
8779            e,
8780            &self.cfg,
8781            &self.plan,
8782            max_ctx,
8783            self.mtp.as_ref().and_then(|m| m.geom.as_ref()),
8784        ) {
8785            Ok(s) => s,
8786            Err(err) => return fail(cache, format!("draft scratch alloc failed: {err}")),
8787        };
8788        if scratch.kv.ring.is_some() {
8789            return fail(
8790                cache,
8791                "ring-backed draft scratch (Step35 SWA) cannot take a flat prefix restore".into(),
8792            );
8793        }
8794        if scratch.kv.k_tok_bytes != draft_k_tok_bytes
8795            || scratch.kv.v_tok_bytes != draft_v_tok_bytes
8796        {
8797            return fail(
8798                cache,
8799                format!(
8800                    "draft plane layout {draft_k_tok_bytes}/{draft_v_tok_bytes} != scratch \
8801                     {}/{} bytes/token (stale entry across a format change)",
8802                    scratch.kv.k_tok_bytes, scratch.kv.v_tok_bytes,
8803                ),
8804            );
8805        }
8806        if pos > scratch.cap {
8807            return fail(
8808                cache,
8809                format!(
8810                    "draft plane rows {pos} exceed scratch capacity {}",
8811                    scratch.cap
8812                ),
8813            );
8814        }
8815        let kb = pos * draft_k_tok_bytes;
8816        let vb = pos * draft_v_tok_bytes;
8817        if draft_k.len() < kb || draft_v.len() < vb {
8818            return fail(
8819                cache,
8820                format!(
8821                    "truncated draft plane: K {} < {kb} or V {} < {vb} bytes",
8822                    draft_k.len(),
8823                    draft_v.len(),
8824                ),
8825            );
8826        }
8827        if kb > 0 {
8828            if let Err(err) = e.copy_u8_into(&mut scratch.kv.k, 0, draft_k, kb) {
8829                return fail(cache, format!("draft K restore copy failed: {err}"));
8830            }
8831        }
8832        if vb > 0 {
8833            if let Err(err) = e.copy_u8_into(&mut scratch.kv.v, 0, draft_v, vb) {
8834                return fail(cache, format!("draft V restore copy failed: {err}"));
8835            }
8836        }
8837        if let Err(err) = scratch.set_len(e, pos) {
8838            return fail(cache, format!("draft scratch len set failed: {err}"));
8839        }
8840        let mut last_h_dev = if last_h.len() == self.cfg.n_embd as usize {
8841            // anchor upload failure is acceptance-only when a suffix feed follows (fill
8842            // row-0 falls back to zeros) but FATAL for an empty-suffix continuation (the
8843            // burst entry asserts committed + last_h + next_pred) — the caller says which.
8844            e.htod(last_h).ok()
8845        } else {
8846            None
8847        };
8848        if require_anchor && last_h_dev.is_none() {
8849            return fail(
8850                cache,
8851                "empty-suffix continuation requires the entry's boundary hidden anchor".into(),
8852            );
8853        }
8854        let mut committed = prefix;
8855        // Set on BOTH shapes below (suffix-fed and full-cover) — never left None, which is
8856        // what the empty-suffix continuation assert in the burst entry requires.
8857        let next_pred;
8858        // Philox: (0,0) at admit exactly like a fresh session; a sampled boundary draw below
8859        // consumes counter 0 and leaves 1, which is the state a cold session reaches after
8860        // drawing its own first token from the same row.
8861        let mut sctr = 0u32;
8862        let sampled = sampling.is_some_and(|s| s.temp > 0.0) && spec_sampled_boundary_on();
8863        // Penalty window for the boundary draw: the last `penalty_last_n` tokens of the WHOLE
8864        // prompt, which is what the cold session's own burst sees (Item 2's window). Built
8865        // after the suffix joins `committed` below.
8866        let mut boundary_captures: Vec<SpecBoundaryCapture> = Vec::new();
8867        let mut restored_turn_ckpt: Option<SpecCheckpoint> = None;
8868        if !suffix.is_empty() {
8869            // ---- SUFFIX FEED, mirroring prefill_tick's program selection exactly ----
8870            // From here on the trunk cache mutates: failures return Err((None, _)) and
8871            // the worker serves the request cold-plain instead of reusing the carrier.
8872            let dirty =
8873                |msg: String| -> Result<SpecSession, (Option<Cache>, String)> { Err((None, msg)) };
8874            let n_embd = self.cfg.n_embd as usize;
8875            let t = suffix.len();
8876            let mut h_rows = match e.uninit(t * n_embd) {
8877                Ok(b) => b,
8878                Err(err) => return fail(cache, format!("suffix hidden buffer alloc: {err}")),
8879            };
8880            // STABLE-BOUNDARY split (see `republish_at`): feed stops at the boundary so the
8881            // in-place GDN conv/ssm state can be snapshotted there — the only moment it
8882            // exists (the cold prime-split law). suffix-relative; None = one-segment legacy.
8883            let b_rel = republish_at
8884                .and_then(|abs| abs.checked_sub(pos))
8885                .filter(|&r| r > 0 && r < t);
8886            let mut feed_logits = Vec::new();
8887            let tokenwise_env = std::env::var("MEMRA_PRIME_TOKENWISE").is_ok()
8888                || e.frozen_cpu_experts_prefer_tokenwise_prime();
8889            let mut fed = 0usize;
8890            for seg_end in [b_rel, Some(t)].into_iter().flatten() {
8891                if seg_end <= fed {
8892                    continue;
8893                }
8894                let seg = &suffix[fed..seg_end];
8895                let batched = seg.len() >= crate::hybrid_forward::PRIME_MIN_T && !tokenwise_env;
8896                if batched {
8897                    // prefill_tick's prime arm: request-level prime_cache call; tokens still
8898                    // queued after this segment ride `queued_after` so Step35 arm selection
8899                    // stays keyed to the request's end (tick-seg law).
8900                    match self.prime_cache(e, seg, &mut cache, t - seg_end) {
8901                        Ok((l, _h_seed, hiddens)) => {
8902                            if let Err(err) =
8903                                e.copy_into(&mut h_rows, fed * n_embd, &hiddens, seg.len() * n_embd)
8904                            {
8905                                return dirty(format!("suffix hidden copy: {err}"));
8906                            }
8907                            feed_logits = l;
8908                        }
8909                        Err(err) => return dirty(format!("suffix prime failed: {err}")),
8910                    }
8911                } else {
8912                    // prefill_tick's tokenwise arm: eager decode_step, one token at a time.
8913                    for (i, &tok) in seg.iter().enumerate() {
8914                        match self.decode_step_h(e, tok, &mut cache) {
8915                            Ok((l, h)) => {
8916                                if let Err(err) =
8917                                    e.copy_into(&mut h_rows, (fed + i) * n_embd, &h, n_embd)
8918                                {
8919                                    return dirty(format!("suffix hidden copy: {err}"));
8920                                }
8921                                feed_logits = l;
8922                            }
8923                            Err(err) => return dirty(format!("suffix decode_step failed: {err}")),
8924                        }
8925                    }
8926                }
8927                fed = seg_end;
8928                if Some(seg_end) == b_rel {
8929                    // The stable pre-generation boundary: capture the extended-entry
8930                    // publication AND this session's own turn checkpoint here instead of at
8931                    // prompt-end (both would otherwise carry the volatile live-header tail
8932                    // the next re-render replaces). Failure silent, turn_ckpt convention.
8933                    debug_assert_eq!(
8934                        cache.pos,
8935                        pos + seg_end,
8936                        "stable-boundary capture off the feed split"
8937                    );
8938                    if spec_restore_republish_on() {
8939                        if let Ok(snap) = cache.snapshot(e) {
8940                            boundary_captures.push(SpecBoundaryCapture {
8941                                snap,
8942                                pos: pos + seg_end,
8943                                logits: feed_logits.clone(),
8944                                last_h: capture_boundary_hidden(e, &h_rows, seg_end, n_embd),
8945                            });
8946                        }
8947                    }
8948                    let anchor: Result<CudaSlice<f32>, Box<dyn std::error::Error>> =
8949                        e.uninit(n_embd).and_then(|mut a| {
8950                            e.copy_view_into(
8951                                &mut a,
8952                                0,
8953                                &h_rows.slice((seg_end - 1) * n_embd..seg_end * n_embd),
8954                                n_embd,
8955                            )?;
8956                            Ok(a)
8957                        });
8958                    if let (Ok(snap), Ok(last_h)) = (cache.snapshot(e), anchor) {
8959                        restored_turn_ckpt = Some(SpecCheckpoint {
8960                            snap,
8961                            pos: pos + seg_end,
8962                            last_h,
8963                        });
8964                    }
8965                }
8966            }
8967            // Draft-scratch fill for the suffix rows, predecessor-paired: row `pos` reads
8968            // the entry's boundary anchor (zeros fallback — acceptance-only), row `pos+i`
8969            // reads h_rows[i-1]. Chunked like the generate path's fill (transients scale
8970            // with T). Fill failures are acceptance-only — truncate to the restored rows
8971            // and continue; the burst's own set_len keeps the invariant.
8972            let mtp = self.mtp.as_ref().expect("mtp checked above");
8973            let (embd_qt, embd_rb) = self.embd.qt_and_row_bytes(n_embd);
8974            let embd_gpu = if spec_host_embd() {
8975                None
8976            } else {
8977                Some(
8978                    self.embd_gpu
8979                        .get_or_init(|| e.upload_u8(&self.embd.raw).expect("embed table upload")),
8980                )
8981            };
8982            let embd_dev = embd_gpu.map(|g| (g, embd_qt, embd_rb));
8983            let fill_chunk = 4096usize;
8984            let mut filled = true;
8985            let mut start = 0usize;
8986            'fill: while start < t {
8987                let end = (start + fill_chunk).min(t);
8988                let tc = end - start;
8989                let Ok(mut phs) = e.zeros(tc * n_embd) else {
8990                    filled = false;
8991                    break 'fill;
8992                };
8993                let (src_lo, dst_off, n_copy) = if start == 0 {
8994                    (0, n_embd, (tc - 1) * n_embd)
8995                } else {
8996                    ((start - 1) * n_embd, 0, tc * n_embd)
8997                };
8998                if start == 0 {
8999                    if let Some(lh) = last_h_dev.as_ref() {
9000                        if e.copy_into(&mut phs, 0, lh, n_embd).is_err() {
9001                            filled = false;
9002                            break 'fill;
9003                        }
9004                    }
9005                }
9006                if n_copy > 0
9007                    && e.copy_view_into(
9008                        &mut phs,
9009                        dst_off,
9010                        &h_rows.slice(src_lo..src_lo + n_copy),
9011                        n_copy,
9012                    )
9013                    .is_err()
9014                {
9015                    filled = false;
9016                    break 'fill;
9017                }
9018                if self
9019                    .mtp_kv_fill_all(
9020                        e,
9021                        &suffix[start..end],
9022                        &phs,
9023                        pos + start,
9024                        &mut scratch,
9025                        embd_dev,
9026                    )
9027                    .is_err()
9028                {
9029                    filled = false;
9030                    break 'fill;
9031                }
9032                start = end;
9033            }
9034            if !filled {
9035                // acceptance-only: drafts over missing suffix rows are cheap and wrong,
9036                // so keep only the restored rows resident and let verify arbitrate.
9037                if let Err(err) = scratch.set_len(e, pos) {
9038                    return dirty(format!("scratch truncation after failed fill: {err}"));
9039                }
9040            }
9041            // EXTENDED-ENTRY PUBLICATION (lane/sampled-spec-quality, Item 3 — the fix for
9042            // "a restored spec session never publishes an extended entry", SAMPLED-HIT.md
9043            // finding (d)). Pre-lane, publication was armed only for COLD sessions
9044            // (`spec_resumed == 0` in the worker) and both engine capture sites require a
9045            // non-continuation burst — but a converted hit's first burst IS a continuation,
9046            // so a growing conversation learned exactly ONE boundary and turn 3 could never
9047            // hit a longer prefix than turn 2 did.
9048            //
9049            // WHERE, and why it is safe here: `cache.pos == prefix + suffix` at this exact
9050            // line — the trunk is primed over the whole prompt, nothing is generated, and the
9051            // draft plane rows [0..prompt) are filled just above. That is a complete
9052            // whole-entry boundary (`pos == fed_len`), the same shape the cold seed capture
9053            // publishes; the worker's existing publication sweep picks it up because it is
9054            // keyed on non-empty `boundary_captures` and is sampler- and resume-independent.
9055            // NOT the partial-restore hazard: the boundary is this session's own prompt END,
9056            // never mid-entry, so `entry_pos != fed_len` still refuses on the way back in.
9057            // Failure is SILENT by design (the turn_ckpt / boundary-capture convention):
9058            // publication is an optimization, never a correctness dependency.
9059            //
9060            // SUPERSEDED WHEN `republish_at` FIRED (lane/frspec-multiturn-cache): a prompt-end
9061            // entry's tail is the live generation header the next re-render replaces, so on a
9062            // hybrid (whole-entry restores) it can never serve the conversation's next turn —
9063            // the stable-boundary capture above IS this publication, minus the poisoned tail.
9064            if spec_restore_republish_on() && boundary_captures.is_empty() {
9065                debug_assert_eq!(
9066                    cache.pos,
9067                    pos + t,
9068                    "extended-entry capture must sit at the restored session's prompt end",
9069                );
9070                if let Ok(snap) = cache.snapshot(e) {
9071                    boundary_captures.push(SpecBoundaryCapture {
9072                        snap,
9073                        pos: pos + t,
9074                        logits: feed_logits.clone(),
9075                        last_h: capture_boundary_hidden(e, &h_rows, t, n_embd),
9076                    });
9077                }
9078            }
9079            // continuation seed: the feed's boundary logits ARE the plain path's boundary
9080            // logits (same program), so greedy's argmax here is plain's first emitted token,
9081            // and the sampled draw is the cold sampled session's own first token.
9082            next_pred = Some(if sampled {
9083                let sp = sampling.expect("sampled implies a sampler");
9084                // `committed` is still the restored prefix here; the suffix joins it below —
9085                // so this is the last-N window over the WHOLE prompt, exactly the cold
9086                // session's own window at its first token.
9087                let hist = pen_window_seed(&committed, suffix, sp.penalty_last_n);
9088                match sample_boundary_token(
9089                    e,
9090                    &feed_logits,
9091                    &sp,
9092                    &hist,
9093                    &mut sctr,
9094                    "restore-suffix-feed",
9095                ) {
9096                    Ok(t) => t,
9097                    // the trunk is already fed: hand nothing back, the worker serves the
9098                    // request cold-plain. Never fall back to an argmax — that would put a
9099                    // greedy token in a sampled stream to save a slow path.
9100                    Err(err) => {
9101                        return dirty(format!("boundary token draw failed: {err}"));
9102                    }
9103                }
9104            } else {
9105                argmax(&feed_logits) as u32
9106            });
9107            let mut lh = match e.uninit(n_embd) {
9108                Ok(b) => b,
9109                Err(err) => return dirty(format!("boundary hidden alloc: {err}")),
9110            };
9111            if let Err(err) = e.copy_view_into(
9112                &mut lh,
9113                0,
9114                &h_rows.slice((t - 1) * n_embd..t * n_embd),
9115                n_embd,
9116            ) {
9117                return dirty(format!("boundary hidden copy: {err}"));
9118            }
9119            last_h_dev = Some(lh);
9120            committed.extend_from_slice(suffix);
9121        } else {
9122            // FULL-COVER shape (empty suffix — the identical-repeat / agent-loop shape): the
9123            // ENTRY's boundary logits are the boundary row, and this is the token the cold
9124            // session emits from that same row. Owned here rather than in the worker so the
9125            // sampled draw cannot be half-applied on one shape (the worker used to argmax it).
9126            if boundary_logits.is_empty() {
9127                return fail(
9128                    cache,
9129                    "full-cover restore without the entry's boundary logits".into(),
9130                );
9131            }
9132            next_pred = Some(if sampled {
9133                let sp = sampling.expect("sampled implies a sampler");
9134                let hist = pen_window_seed(&committed, &[], sp.penalty_last_n);
9135                match sample_boundary_token(
9136                    e,
9137                    boundary_logits,
9138                    &sp,
9139                    &hist,
9140                    &mut sctr,
9141                    "restore-full-cover",
9142                ) {
9143                    Ok(t) => t,
9144                    // nothing has been mutated on this shape — hand the carrier back and let
9145                    // the hit serve PLAIN (the banked pre-lane path).
9146                    Err(err) => {
9147                        return fail(cache, format!("boundary token draw failed: {err}"));
9148                    }
9149                }
9150            } else {
9151                argmax(boundary_logits) as u32
9152            });
9153        }
9154        Ok(SpecSession {
9155            cache,
9156            scratch,
9157            committed,
9158            last_h: last_h_dev,
9159            next_pred,
9160            sctr,
9161            uctr: 0,
9162            draft_ctx: None,
9163            pending_tok: None,
9164            // Stable-boundary capture from the split feed above (None on the legacy shape):
9165            // a restored session previously parked WITHOUT a checkpoint, so the next turn's
9166            // affinity probe declined ("no turn checkpoint retained") and the conversation
9167            // fell back to the frozen prefix entry forever.
9168            turn_ckpt: restored_turn_ckpt,
9169            telem: SpecTelemetryCounters::default(),
9170            capture_at: None,
9171            boundary_captures,
9172            ckpt_at: None,
9173        })
9174    }
9175
9176    /// Forced-gate exact state comparison. This intentionally reads the real live prefixes from
9177    /// their owning PP devices: matching emitted ids alone would miss a stale `len_d`, recurrent
9178    /// snapshot, or draft-KV row that only corrupts the following round.
9179    pub fn optipipe_compare_session_state(
9180        &self,
9181        e: &Engine,
9182        reference: &SpecSession,
9183        candidate: &SpecSession,
9184    ) -> Result<OptiForkStateIdentity, Box<dyn std::error::Error>> {
9185        fn fail(what: &str) -> Box<dyn std::error::Error> {
9186            format!("optipipe state mismatch: {what}").into()
9187        }
9188        fn same_f32(a: &[f32], b: &[f32]) -> bool {
9189            a.len() == b.len() && a.iter().zip(b).all(|(x, y)| x.to_bits() == y.to_bits())
9190        }
9191        fn compare_layers(
9192            es: &Engine,
9193            range: std::ops::Range<usize>,
9194            reference: &SpecSession,
9195            candidate: &SpecSession,
9196            report: &mut OptiForkStateIdentity,
9197        ) -> Result<(), Box<dyn std::error::Error>> {
9198            for il in range {
9199                match (&reference.cache.kv[il], &candidate.cache.kv[il]) {
9200                    (Some(a), Some(b)) => {
9201                        if a.len != b.len {
9202                            return Err(fail(&format!(
9203                                "layer {il} host KV len {} != {}",
9204                                a.len, b.len
9205                            )));
9206                        }
9207                        let ad = es.dtoh_i32(&a.len_d)?;
9208                        let bd = es.dtoh_i32(&b.len_d)?;
9209                        if ad != bd || ad.first().copied() != Some(a.len as i32) {
9210                            return Err(fail(&format!(
9211                                "layer {il} device KV len {ad:?} != {bd:?} (host={})",
9212                                a.len,
9213                            )));
9214                        }
9215                        let kb = a.len * a.k_tok_bytes;
9216                        let vb = a.len * a.v_tok_bytes;
9217                        if kb > 0 {
9218                            let ak = es.dtoh_u8_view(&a.k.slice(0..kb))?;
9219                            let bk = es.dtoh_u8_view(&b.k.slice(0..kb))?;
9220                            if ak != bk {
9221                                let at = ak.iter().zip(&bk).position(|(x, y)| x != y).unwrap();
9222                                return Err(fail(&format!(
9223                                    "layer {il} K bytes at byte {at} row {} offset {}: {} != {}",
9224                                    at / a.k_tok_bytes,
9225                                    at % a.k_tok_bytes,
9226                                    ak[at],
9227                                    bk[at],
9228                                )));
9229                            }
9230                        }
9231                        if vb > 0 {
9232                            let av = es.dtoh_u8_view(&a.v.slice(0..vb))?;
9233                            let bv = es.dtoh_u8_view(&b.v.slice(0..vb))?;
9234                            if av != bv {
9235                                let at = av.iter().zip(&bv).position(|(x, y)| x != y).unwrap();
9236                                return Err(fail(&format!(
9237                                    "layer {il} V bytes at byte {at} row {} offset {}: {} != {}",
9238                                    at / a.v_tok_bytes,
9239                                    at % a.v_tok_bytes,
9240                                    av[at],
9241                                    bv[at],
9242                                )));
9243                            }
9244                        }
9245                        report.trunk_kv_bytes += kb + vb;
9246                    }
9247                    (None, None) => {}
9248                    _ => return Err(fail(&format!("layer {il} KV presence"))),
9249                }
9250                match (&reference.cache.recur[il], &candidate.cache.recur[il]) {
9251                    (Some(a), Some(b)) => {
9252                        let ac = es.dtoh(&a.conv_state)?;
9253                        let bc = es.dtoh(&b.conv_state)?;
9254                        if !same_f32(&ac, &bc) {
9255                            return Err(fail(&format!("layer {il} conv state")));
9256                        }
9257                        let as_ = es.dtoh(&a.ssm_state)?;
9258                        let bs = es.dtoh(&b.ssm_state)?;
9259                        if !same_f32(&as_, &bs) {
9260                            return Err(fail(&format!("layer {il} SSM state")));
9261                        }
9262                        report.recurrent_bytes += (ac.len() + as_.len()) * 4;
9263                    }
9264                    (None, None) => {}
9265                    _ => return Err(fail(&format!("layer {il} recurrent presence"))),
9266                }
9267            }
9268            Ok(())
9269        }
9270
9271        if reference.committed != candidate.committed {
9272            return Err(fail("committed token ids"));
9273        }
9274        if reference.cache.pos != candidate.cache.pos
9275            || reference.cache.max_ctx != candidate.cache.max_ctx
9276        {
9277            return Err(fail("cache pos/capacity"));
9278        }
9279        if reference.pending_tok != candidate.pending_tok
9280            || reference.next_pred != candidate.next_pred
9281            || reference.sctr != candidate.sctr
9282            || reference.uctr != candidate.uctr
9283        {
9284            return Err(fail("pending/prediction/counter tail"));
9285        }
9286
9287        let mut report = OptiForkStateIdentity::default();
9288        if let Some(fence) = crate::pp::pp_cuts(self.layers.len()) {
9289            let rt = crate::pp::PpNRt::get(e)?;
9290            for stage in 0..rt.n_stages() {
9291                let _scope = rt.enter(stage);
9292                compare_layers(
9293                    rt.engine(stage, e),
9294                    fence[stage]..fence[stage + 1],
9295                    reference,
9296                    candidate,
9297                    &mut report,
9298                )?;
9299            }
9300        } else {
9301            compare_layers(e, 0..self.layers.len(), reference, candidate, &mut report)?;
9302        }
9303
9304        if reference.scratch.plane_count() != candidate.scratch.plane_count() {
9305            return Err(fail("draft scratch plane count"));
9306        }
9307        for index in 0..reference.scratch.plane_count() {
9308            let (a, _) = reference.scratch.plane(index);
9309            let (b, _) = candidate.scratch.plane(index);
9310            if a.len != b.len
9311                || a.kv_dim_k != b.kv_dim_k
9312                || a.kv_dim_v != b.kv_dim_v
9313                || a.k_tok_bytes != b.k_tok_bytes
9314                || a.v_tok_bytes != b.v_tok_bytes
9315                || e.dtoh_i32(&a.len_d)? != e.dtoh_i32(&b.len_d)?
9316            {
9317                return Err(fail(&format!("draft scratch plane {index} length/layout")));
9318            }
9319            let kb = a.len * a.k_tok_bytes;
9320            let vb = a.len * a.v_tok_bytes;
9321            if kb > 0 && e.dtoh_u8_view(&a.k.slice(0..kb))? != e.dtoh_u8_view(&b.k.slice(0..kb))? {
9322                return Err(fail(&format!("draft scratch plane {index} K bytes")));
9323            }
9324            if vb > 0 && e.dtoh_u8_view(&a.v.slice(0..vb))? != e.dtoh_u8_view(&b.v.slice(0..vb))? {
9325                return Err(fail(&format!("draft scratch plane {index} V bytes")));
9326            }
9327            report.scratch_kv_bytes += kb + vb;
9328        }
9329
9330        match (&reference.last_h, &candidate.last_h) {
9331            (Some(a), Some(b)) => {
9332                let ah = e.dtoh(a)?;
9333                let bh = e.dtoh(b)?;
9334                if !same_f32(&ah, &bh) {
9335                    return Err(fail("last hidden/seed bytes"));
9336                }
9337                report.hidden_bytes = ah.len() * 4;
9338            }
9339            (None, None) => {}
9340            _ => return Err(fail("last hidden/seed presence")),
9341        }
9342        Ok(report)
9343    }
9344
9345    /// SESSION-AFFINITY REWIND (lane/session-affinity, 2026-08-05): roll `sess` back to its
9346    /// retained prompt-end checkpoint, so a request whose prompt matches
9347    /// `committed[..rewind_pos()]` exactly can resume there and prime only its own delta.
9348    ///
9349    /// EXACTNESS. After this returns, the session is byte-for-byte the state it was in AT that
9350    /// boundary: full-attn KV truncated to it (append-only, position-addressed), GDN conv/ssm
9351    /// restored from the device copy taken there, draft scratch length reset, `committed`
9352    /// truncated, `last_h` = the boundary's predecessor anchor. That is precisely the state a
9353    /// fresh prime of `committed[..pos]` would have produced, so the following suffix prime and
9354    /// every burst after it are identical to a cold run of the same token stream — the
9355    /// committed-tokens-authoritative contract.
9356    ///
9357    /// `next_pred` and `pending_tok` are CLEARED: both describe generation past the boundary,
9358    /// which the rewind discards. The caller therefore must supply a non-empty suffix (a
9359    /// rewound session cannot serve an empty-suffix continuation burst — there is nothing to
9360    /// continue). The persistent draft graph survives: it bakes only session-stable pointers
9361    /// (the scratch KV, the resident embedding), none of which the rewind moves.
9362    ///
9363    /// The checkpoint is CONSUMED (`turn_ckpt` taken): its snapshot buffers are freed here, and
9364    /// this turn's own prime installs a fresh one at the new prompt end. Returns the position
9365    /// rewound to, or `None` when the session holds no checkpoint (caller: full re-prime).
9366    pub fn spec_rewind_to_checkpoint(
9367        &self,
9368        e: &Engine,
9369        sess: &mut SpecSession,
9370    ) -> Result<Option<usize>, Box<dyn std::error::Error>> {
9371        if sess.turn_ckpt.as_ref().is_some_and(|ckpt| {
9372            !sess.cache.can_rollback(&ckpt.snap, 0) || !sess.scratch.can_rewind_to(ckpt.pos)
9373        }) {
9374            return Err(
9375                "SWA ring rewind checkpoint has been lapped; full re-prime required".into(),
9376            );
9377        }
9378        let Some(ckpt) = sess.turn_ckpt.take() else {
9379            return Ok(None);
9380        };
9381        assert!(
9382            ckpt.pos <= sess.committed.len(),
9383            "checkpoint past committed ({} > {})",
9384            ckpt.pos,
9385            sess.committed.len()
9386        );
9387        // Restore through each layer's owning engine. A single primary-engine rollback is not
9388        // sufficient when the serving cache is stage-owned under cross-device PP.
9389        crate::pp::restore_cache_checkpoint(e, self, None, &mut sess.cache, &ckpt.snap)?;
9390        debug_assert_eq!(
9391            sess.cache.pos, ckpt.pos,
9392            "rollback landed off the checkpoint"
9393        );
9394        sess.scratch.set_len(e, ckpt.pos)?;
9395        sess.committed.truncate(ckpt.pos);
9396        sess.last_h = Some(ckpt.last_h);
9397        sess.next_pred = None;
9398        sess.pending_tok = None;
9399        Ok(Some(ckpt.pos))
9400    }
9401
9402    /// Grow a parked speculative session to `target_cap` and rewind it to its retained turn
9403    /// checkpoint without re-priming the checkpoint prefix.
9404    ///
9405    /// The trunk cache is restored exactly like a plain grown cache: append-only full-attention
9406    /// KV rows come from the parked cache, while recurrent state comes from the checkpoint's
9407    /// owned snapshot. The MTP scratch is also context-linear and its rows below the checkpoint
9408    /// remain authoritative, so they are copied into a fresh larger scratch before its length is
9409    /// truncated. Pointer-baking draft graphs are dropped and recaptured on the next burst.
9410    ///
9411    /// All fallible work completes before `sess` is mutated. A failed allocation or copy leaves
9412    /// the parked session intact, allowing the caller one reclaim-and-retry attempt.
9413    pub fn spec_grow_and_rewind_to_checkpoint(
9414        &self,
9415        e: &Engine,
9416        sess: &mut SpecSession,
9417        target_cap: usize,
9418    ) -> Result<Option<usize>, Box<dyn std::error::Error>> {
9419        if target_cap <= sess.cache.max_ctx {
9420            return self.spec_rewind_to_checkpoint(e, sess);
9421        }
9422        let Some(ckpt) = sess.turn_ckpt.as_ref() else {
9423            return Ok(None);
9424        };
9425        if ckpt.pos == 0 || ckpt.pos > sess.committed.len() {
9426            return Err(format!(
9427                "checkpoint pos {} outside committed length {}",
9428                ckpt.pos,
9429                sess.committed.len(),
9430            )
9431            .into());
9432        }
9433        if ckpt.pos > target_cap {
9434            return Err(format!(
9435                "checkpoint pos {} exceeds grown capacity {target_cap}",
9436                ckpt.pos,
9437            )
9438            .into());
9439        }
9440
9441        let mut grown_cache = crate::pp::new_cache_planned(e, &self.cfg, &self.plan, target_cap)?;
9442        let mut grown_scratch = self.new_mtp_scratch(e, target_cap)?;
9443        crate::pp::restore_cache_checkpoint(
9444            e,
9445            self,
9446            Some(&sess.cache),
9447            &mut grown_cache,
9448            &ckpt.snap,
9449        )?;
9450
9451        if sess.scratch.plane_count() != grown_scratch.plane_count() {
9452            return Err("checkpoint draft plane count mismatch".into());
9453        }
9454        for index in 0..sess.scratch.plane_count() {
9455            let (src, _) = sess.scratch.plane(index);
9456            let (dst, _) = grown_scratch.plane_mut(index);
9457            if ckpt.pos > src.len
9458                || src.kv_dim_k != dst.kv_dim_k
9459                || src.kv_dim_v != dst.kv_dim_v
9460                || src.k_tok_bytes != dst.k_tok_bytes
9461                || src.v_tok_bytes != dst.v_tok_bytes
9462            {
9463                return Err(format!(
9464                    "checkpoint draft plane {index} layout mismatch (pos {}, source len {})",
9465                    ckpt.pos, src.len,
9466                )
9467                .into());
9468            }
9469            let kb = ckpt.pos * src.k_tok_bytes;
9470            let vb = ckpt.pos * src.v_tok_bytes;
9471            if kb > 0 {
9472                e.copy_u8_into(&mut dst.k, 0, &src.k, kb)?;
9473            }
9474            if vb > 0 {
9475                e.copy_u8_into(&mut dst.v, 0, &src.v, vb)?;
9476            }
9477        }
9478        grown_scratch.set_len(e, ckpt.pos)?;
9479        // The old scratch is dropped immediately after publication below. Bound its D2D reads
9480        // first; growth happens once per rewritten turn, outside the decode hot loop.
9481        e.stream().synchronize()?;
9482
9483        let ckpt = sess
9484            .turn_ckpt
9485            .take()
9486            .expect("checkpoint remained present through transactional grow");
9487        let pos = ckpt.pos;
9488        sess.cache = grown_cache;
9489        sess.scratch = grown_scratch;
9490        sess.committed.truncate(pos);
9491        sess.last_h = Some(ckpt.last_h);
9492        sess.next_pred = None;
9493        sess.pending_tok = None;
9494        sess.draft_ctx = None;
9495        debug_assert_eq!(sess.cache.pos, pos, "grown rewind landed off checkpoint");
9496        debug_assert!(
9497            (0..sess.scratch.plane_count()).all(|index| sess.scratch.plane(index).0.len == pos),
9498            "grown draft rewind landed off checkpoint"
9499        );
9500        Ok(Some(pos))
9501    }
9502
9503    /// Commit a carried pending bonus (see SpecSession::pending_tok): one T=1 trunk pass
9504    /// (its logits' argmax becomes next_pred) + the draft-KV fill at the carried anchor —
9505    /// byte-identical to the pre-carry session tail. Required before a non-empty-suffix
9506    /// prime, a sampled turn, or parking a session for pool reuse. No-op without a pending.
9507    /// `sampling` is the sampler of the request that will CONSUME the resulting `next_pred`
9508    /// (lane/sampled-spec-quality): this is a boundary site like any other, so a sampled
9509    /// consumer must get a DRAWN token, not an argmax. Pass `None` from the park/demote
9510    /// callers — a pending only ever exists on the GREEDY tail, and the consumer of a
9511    /// park-time flush is a future request whose sampler is not knowable here (residual
9512    /// named at the pool-resume probe in worker.rs and in SAMPLED-QUALITY.md).
9513    pub fn spec_flush_pending(
9514        &self,
9515        e: &Engine,
9516        sess: &mut SpecSession,
9517        sampling: Option<SpecSampling>,
9518    ) -> Result<(), Box<dyn std::error::Error>> {
9519        let Some(b) = sess.pending_tok.take() else {
9520            return Ok(());
9521        };
9522        if self.mtp.is_none() {
9523            return Err("pending carry requires an MTP head".into());
9524        }
9525        let n_embd = self.cfg.n_embd as usize;
9526        let (embd_qt, embd_rb) = self.embd.qt_and_row_bytes(n_embd);
9527        let embd_gpu = if spec_host_embd() {
9528            None
9529        } else {
9530            Some(
9531                self.embd_gpu
9532                    .get_or_init(|| e.upload_u8(&self.embd.raw).expect("embed table upload")),
9533            )
9534        };
9535        let embd_dev = embd_gpu.map(|g| (g, embd_qt, embd_rb));
9536        let pos_b = sess.cache.pos;
9537        sess.scratch.set_len(e, pos_b)?;
9538        let (lg_b, hb) = self.spec_target_step_h(e, b, &mut sess.cache)?;
9539        sess.next_pred = Some(match sampling {
9540            Some(sp) if sp.temp > 0.0 && spec_sampled_boundary_on() => {
9541                // window includes `b` itself: it is committed by this pass, and the pre-lane
9542                // code never counted a boundary token in the penalty history at all.
9543                let hist = pen_window_seed(&sess.committed, &[b], sp.penalty_last_n);
9544                sample_boundary_token(e, &lg_b, &sp, &hist, &mut sess.sctr, "flush-pending")?
9545            }
9546            _ => argmax(&lg_b) as u32,
9547        });
9548        let anchor = sess
9549            .last_h
9550            .as_ref()
9551            .expect("pending carry requires last_h (the predecessor-row anchor)");
9552        self.mtp_kv_fill_all(e, &[b], anchor, pos_b, &mut sess.scratch, embd_dev)?;
9553        sess.last_h = Some(hb);
9554        sess.committed.push(b);
9555        Ok(())
9556    }
9557
9558    /// Solo target feed used only at speculative round boundaries. Step35 serving made its
9559    /// staged batched B=1 graph authoritative, so a speculative session must enter and leave
9560    /// rounds through that same graph. Other model families keep their eager T=1 contract.
9561    fn spec_target_step_h(
9562        &self,
9563        e: &Engine,
9564        token: u32,
9565        cache: &mut Cache,
9566    ) -> Result<(Vec<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
9567        if !self.sliding_gated_moe_batch_program() && !self.batched_serving_numeric_class() {
9568            return self.decode_step_h(e, token, cache);
9569        }
9570        let pos0 = cache.pos;
9571        let (logits, hidden) = self.decode_step_t_core(e, &[token], pos0, cache, None, None)?;
9572        Ok((e.dtoh(&logits)?, hidden))
9573    }
9574
9575    /// The archs whose LIVE B=1 serving runs the generic BATCHED numeric class (decode_step_batch
9576    /// walk + batched head), so their spec verify must run the SAME class. MoE learned this
9577    /// 2026-08-14 AM (4b777ccc5); the dense hybrid reproduced the identical near-tie flip class
9578    /// the same day on Qwen3.8-27B — eager-class verify logits drift from batched-class serving
9579    /// logits ("1 ULP at layer 2 → 2.3e-1 logit maxdiff at the head"), and the GDN recurrence
9580    /// carries the drift until a near-tie flips deep in generation. One predicate so the five
9581    /// dispatch sites cannot drift apart again.
9582    /// Draft-graph head admissibility (lane/draftcost-moe, 2026-08-20): the capture body
9583    /// (`mtp_head_forward_cap`) supports Dense heads AND resident-MoE heads
9584    /// (`Ffn::Moe(m) if m.dev_exps.is_some()`); non-resident MoE still refuses inside the
9585    /// capture and the caller falls back to the eager chain by design. Trunk FFN class is
9586    /// irrelevant — the graph body is the HEAD forward only. One predicate for all three
9587    /// eligibility sites so they cannot drift (the serving numeric-class lesson).
9588    fn mtp_graph_capturable(&self) -> bool {
9589        self.mtp
9590            .as_ref()
9591            .map(|m| match &m.ffn {
9592                crate::hybrid::Ffn::Dense { .. } => true,
9593                crate::hybrid::Ffn::Moe(mo) => mo.dev_exps.is_some(),
9594            })
9595            .unwrap_or(false)
9596    }
9597
9598    fn batched_serving_numeric_class(&self) -> bool {
9599        self.plan
9600            .trunk_operations()
9601            .contains(&memra_gguf::model_plan::OperationKind::GatedDeltaNet)
9602    }
9603
9604    /// The family the MTP verify-graph default was measured on: GatedDeltaNet state layers
9605    /// (a `recur` mixer) together with a routed-MoE FFN — Ornith-1.5-35B-A3B and its kin. The
9606    /// server-side twin of this test is `model_forces_spec_replay` (GatedDeltaNet + MoeMlp);
9607    /// keeping the engine's own version structural rather than name-based means a new
9608    /// checkpoint of the same shape inherits the default, and a different shape does not.
9609    fn vgraph_family_default(&self) -> bool {
9610        let has_linear = self
9611            .layers
9612            .iter()
9613            .any(|l| matches!(l.mixer, Mixer::Linear(_)));
9614        let has_moe = self
9615            .layers
9616            .iter()
9617            .any(|l| matches!(l.ffn, crate::hybrid::Ffn::Moe(_)));
9618        has_linear && has_moe
9619    }
9620
9621    fn sliding_gated_moe_batch_program(&self) -> bool {
9622        self.uses_sliding_gated_moe_program()
9623    }
9624
9625    fn gemma_batch_program(&self) -> bool {
9626        self.uses_gemma_program()
9627    }
9628
9629    /// Reduced-matrix admission for increment 1. This deliberately does not change the PP-2
9630    /// serving policy: the worker calls it only after `MEMRA_SPEC_PIPE=1` and an explicit spec
9631    /// session already exist.
9632    pub fn spec_pipe_available(&self, e: &Engine) -> bool {
9633        if std::env::var("MEMRA_SPEC_PIPE").as_deref() != Ok("1")
9634            || !spec_devacc()
9635            || spec_replay_env_enabled()
9636            || spec_stream()
9637            || std::env::var("MEMRA_SPEC_ADAPT").as_deref() == Ok("1")
9638            || std::env::var("MEMRA_SPEC_PMIN0").as_deref() == Ok("1")
9639            || std::env::var("MEMRA_SPEC_PP_ANATOMY").as_deref() == Ok("1")
9640            || std::env::var("MEMRA_SPEC_PMIN")
9641                .ok()
9642                .and_then(|v| v.parse::<f32>().ok())
9643                .unwrap_or(0.0)
9644                > 0.0
9645            || self.is_gemma4_e4b()
9646            || self.gemma_batch_program()
9647            || self.mtp.is_none()
9648            || !self.mtp_extra.is_empty()
9649        {
9650            return false;
9651        }
9652        let Some(cuts) = crate::pp::pp_cuts(self.layers.len()) else {
9653            return false;
9654        };
9655        if cuts.len() != 3 || crate::pp::pp2_streams_off() || !crate::pp::spec_pp_on() {
9656            return false;
9657        }
9658        crate::pp::PpNRt::get(e)
9659            .map(|rt| rt.n_stages() == 2 && rt.cross_device())
9660            .unwrap_or(false)
9661    }
9662
9663    /// Two warm greedy continuation bursts over one PP-2 interval coordinator. The two existing
9664    /// `generate_spec_inner2` call stacks own all per-session round locals; only phase issue order
9665    /// changes. No callback is accepted in increment 1 — the worker publishes each completed burst.
9666    #[allow(clippy::too_many_arguments)]
9667    pub fn generate_spec_session_pair(
9668        &self,
9669        e: &Engine,
9670        sess_a: &mut SpecSession,
9671        max_new_a: usize,
9672        k_a: usize,
9673        sess_b: &mut SpecSession,
9674        max_new_b: usize,
9675        k_b: usize,
9676    ) -> Result<((Vec<u32>, usize, usize), (Vec<u32>, usize, usize)), Box<dyn std::error::Error>>
9677    {
9678        if !self.spec_pipe_available(e) {
9679            return Err("two-session speculative pipeline is outside its reduced matrix".into());
9680        }
9681        if max_new_a == 0 || max_new_b == 0 || k_a == 0 || k_b == 0 {
9682            return Err(
9683                "two-session speculative pipeline requires non-empty positive-K bursts".into(),
9684            );
9685        }
9686        for sess in [&*sess_a, &*sess_b] {
9687            if sess.committed.is_empty()
9688                || sess.last_h.is_none()
9689                || (sess.next_pred.is_none() && sess.pending_tok.is_none())
9690            {
9691                return Err("two-session speculative pipeline requires warm continuations".into());
9692            }
9693        }
9694
9695        let graph_ok = std::env::var("MEMRA_SPEC_NOGRAPH").is_err()
9696            && !spec_host_embd()
9697            && self.mtp_graph_capturable()
9698            && self.mtp_extra.is_empty()
9699            && !crate::model::full_prec_enabled();
9700        let graph_a = graph_ok && k_a + 2 < 96;
9701        let graph_b = graph_ok && k_b + 2 < 96;
9702        let was_tracking = e.ctx().is_event_tracking();
9703        if (graph_a || graph_b) && was_tracking {
9704            unsafe {
9705                e.ctx().disable_event_tracking();
9706            }
9707        }
9708
9709        static LOGGED: std::sync::Once = std::sync::Once::new();
9710        LOGGED.call_once(|| {
9711            eprintln!("[spec-pipe] two-session PP-2 continuation pipeline engaged");
9712        });
9713        let sync = std::sync::Arc::new(SpecPipeSync::new());
9714        let lane_a = SpecPipeLane {
9715            sync: sync.clone(),
9716            lane: 0,
9717        };
9718        let lane_b = SpecPipeLane { sync, lane: 1 };
9719        let mut sess_b_ptr = SpecPipeSessionPtr(sess_b as *mut SpecSession);
9720        let (result_a, result_b) = std::thread::scope(|scope| {
9721            let b = scope.spawn(move || {
9722                let mut finish = SpecPipeFinish::new(&lane_b);
9723                let sess_b = unsafe { sess_b_ptr.get_mut() };
9724                let result = e
9725                    .ctx()
9726                    .bind_to_thread()
9727                    .map_err(|err| err.to_string())
9728                    .and_then(|_| {
9729                        self.generate_spec_inner2(
9730                            e,
9731                            &[],
9732                            max_new_b,
9733                            k_b,
9734                            graph_b,
9735                            Some(sess_b),
9736                            None,
9737                            None,
9738                            None,
9739                            None,
9740                            Some(&lane_b),
9741                        )
9742                        .map_err(|err| err.to_string())
9743                    });
9744                finish.close(result.is_err());
9745                result
9746            });
9747            let mut finish = SpecPipeFinish::new(&lane_a);
9748            let result_a = self.generate_spec_inner2(
9749                e,
9750                &[],
9751                max_new_a,
9752                k_a,
9753                graph_a,
9754                Some(sess_a),
9755                None,
9756                None,
9757                None,
9758                None,
9759                Some(&lane_a),
9760            );
9761            finish.close(result_a.is_err());
9762            let result_b = b
9763                .join()
9764                .map_err(|_| "paired speculative session B panicked".to_string())
9765                .and_then(|r| r);
9766            (result_a, result_b)
9767        });
9768
9769        if (graph_a || graph_b) && was_tracking {
9770            unsafe {
9771                e.ctx().enable_event_tracking();
9772            }
9773        }
9774        let result_a = result_a?;
9775        let result_b = result_b.map_err(|err| -> Box<dyn std::error::Error> { err.into() })?;
9776        Ok((result_a, result_b))
9777    }
9778
9779    /// One spec-decode turn on a live session. `suffix` = the NEW tokens only (turn N+1's user
9780    /// message rendered through the chat template continuation). Returns (new tokens emitted,
9781    /// drafted, accepted); session.committed grows by suffix + emitted.
9782    pub fn generate_spec_session(
9783        &self,
9784        e: &Engine,
9785        sess: &mut SpecSession,
9786        suffix: &[u32],
9787        max_new: usize,
9788        k: usize,
9789    ) -> Result<(Vec<u32>, usize, usize), Box<dyn std::error::Error>> {
9790        self.generate_spec_session_sampled(e, sess, suffix, max_new, k, None, None)
9791    }
9792
9793    /// Serve-path sampled spec: routes the burst through the rejection-sampling verify with
9794    /// per-SESSION Philox continuity (sess.sctr/uctr). None = env-driven (CLI) or greedy.
9795    /// Filters (top-k/p/min-p) apply SYMMETRICALLY to draft q and verify p — distribution-exact
9796    /// for the filtered target (feat/filtered-spec).
9797    ///
9798    /// `on_commit` (sse-cadence, 2026-08-05): called with each newly-emitted slice of the
9799    /// output — once right after the prime's first token, then once per round commit — so a
9800    /// streaming caller can flush text at round cadence instead of once per burst. The slices
9801    /// are disjoint, in order, and concatenate to exactly the returned token vec. Emission-
9802    /// timing only: token bytes, session state, and exactness are untouched.
9803    ///
9804    /// The returned bool is a CONTINUE-VERDICT (admission yield, 2026-08-06): `false` ends
9805    /// the burst at the current round boundary, exactly as if `max_new` had been reached —
9806    /// the caller's scheduler regains control without waiting the burst out. Burst size is
9807    /// content-neutral (spec-levers battery), so an early exit moves WHEN the burst returns,
9808    /// never what tokens say. The slice may be EMPTY (a poll-only boundary — round-stream
9809    /// drains and the defensive tail flush can land with nothing new committed).
9810    #[allow(clippy::too_many_arguments)]
9811    pub fn generate_spec_session_sampled(
9812        &self,
9813        e: &Engine,
9814        sess: &mut SpecSession,
9815        suffix: &[u32],
9816        max_new: usize,
9817        k: usize,
9818        sampling: Option<SpecSampling>,
9819        on_commit: Option<&mut dyn FnMut(&[u32]) -> bool>,
9820    ) -> Result<(Vec<u32>, usize, usize), Box<dyn std::error::Error>> {
9821        self.generate_spec_session_sampled_prime_split(
9822            e, sess, suffix, max_new, k, sampling, None, on_commit,
9823        )
9824    }
9825
9826    /// Serve-only cold-prime segmentation twin. `prime_split` is the same stable boundary the
9827    /// plain worker would honor before entering its sub-floor tokenwise tail; warm continuations
9828    /// pass `None` and stay on the existing zero-prime path.
9829    #[allow(clippy::too_many_arguments)]
9830    pub fn generate_spec_session_sampled_prime_split(
9831        &self,
9832        e: &Engine,
9833        sess: &mut SpecSession,
9834        suffix: &[u32],
9835        max_new: usize,
9836        k: usize,
9837        sampling: Option<SpecSampling>,
9838        prime_split: Option<usize>,
9839        on_commit: Option<&mut dyn FnMut(&[u32]) -> bool>,
9840    ) -> Result<(Vec<u32>, usize, usize), Box<dyn std::error::Error>> {
9841        self.generate_spec_session_constrained_prime_split(
9842            e,
9843            sess,
9844            suffix,
9845            max_new,
9846            k,
9847            sampling,
9848            None,
9849            prime_split,
9850            on_commit,
9851        )
9852    }
9853
9854    /// `generate_spec_session_sampled` + GRAMMAR (constrained decoding, 2026-08-03): the
9855    /// hook truncates acceptance at the first grammar-illegal token AFTER the exactness
9856    /// verify (grammar is an extra rejection rule, ordering like the batched-verify twins)
9857    /// and replaces an illegal bonus with the MASKED argmax of the target's own verify
9858    /// column — token-identical to constrained plain greedy decode. GREEDY only (the
9859    /// worker routes sampled constrained to plain decode). Acceptance under tight grammars
9860    /// may drop (drafter is unconstrained); that is measured, not hidden.
9861    #[allow(clippy::too_many_arguments)]
9862    pub fn generate_spec_session_constrained(
9863        &self,
9864        e: &Engine,
9865        sess: &mut SpecSession,
9866        suffix: &[u32],
9867        max_new: usize,
9868        k: usize,
9869        sampling: Option<SpecSampling>,
9870        constraint: Option<&mut dyn SpecConstraint>,
9871        on_commit: Option<&mut dyn FnMut(&[u32]) -> bool>,
9872    ) -> Result<(Vec<u32>, usize, usize), Box<dyn std::error::Error>> {
9873        self.generate_spec_session_constrained_prime_split(
9874            e, sess, suffix, max_new, k, sampling, constraint, None, on_commit,
9875        )
9876    }
9877
9878    #[allow(clippy::too_many_arguments)]
9879    pub fn generate_spec_session_constrained_prime_split(
9880        &self,
9881        e: &Engine,
9882        sess: &mut SpecSession,
9883        suffix: &[u32],
9884        max_new: usize,
9885        k: usize,
9886        sampling: Option<SpecSampling>,
9887        constraint: Option<&mut dyn SpecConstraint>,
9888        prime_split: Option<usize>,
9889        on_commit: Option<&mut dyn FnMut(&[u32]) -> bool>,
9890    ) -> Result<(Vec<u32>, usize, usize), Box<dyn std::error::Error>> {
9891        if constraint.is_some() && sampling.is_some_and(|s| s.temp > 0.0) {
9892            return Err(
9893                "constrained spec decode is greedy-only (worker routes sampled \
9894                        constrained to plain decode)"
9895                    .into(),
9896            );
9897        }
9898        // PENDING-CARRY entry flush: a carried bonus precedes any new suffix in the sequence,
9899        // so it must commit BEFORE the suffix primes; the sampled path doesn't carry (its
9900        // round-0 accept needs the commit pass's logits). Empty-suffix greedy bursts — the
9901        // serve continuation case — consume the carry in-loop with zero solo passes.
9902        if sess.pending_tok.is_some()
9903            && (!suffix.is_empty() || sampling.map_or(false, |s| s.temp > 0.0))
9904        {
9905            self.spec_flush_pending(e, sess, sampling)?;
9906        }
9907
9908        // FULL_PREC forces the EAGER draft: the graph capture would enclose cuBLASLt f32 GEMV
9909        // (the FloatBf16 else-branches) and a bf16_to_f32 dequant alloc — neither is stream-capture
9910        // safe. Eager rides matmul/matmul_decode_exact, which dequant FloatBf16 on use. (§item 2.)
9911        let graph_draft = std::env::var("MEMRA_SPEC_NOGRAPH").is_err()
9912            && !spec_host_embd()
9913            && self.mtp_graph_capturable()
9914            && self.mtp_extra.is_empty()
9915            && k + 2 < 96
9916            && !crate::model::full_prec_enabled();
9917        let was_tracking = e.ctx().is_event_tracking();
9918        if graph_draft && was_tracking {
9919            unsafe {
9920                e.ctx().disable_event_tracking();
9921            }
9922        }
9923        let r = self.generate_spec_inner2(
9924            e,
9925            suffix,
9926            max_new,
9927            k,
9928            graph_draft,
9929            Some(sess),
9930            sampling,
9931            constraint,
9932            on_commit,
9933            prime_split,
9934            None,
9935        );
9936        if graph_draft && was_tracking {
9937            unsafe {
9938                e.ctx().enable_event_tracking();
9939            }
9940        }
9941        let (out, d, a) = r?;
9942        Ok((out, d, a))
9943    }
9944
9945    pub fn generate_spec(
9946        &self,
9947        e: &Engine,
9948        prompt: &[u32],
9949        max_new: usize,
9950        k: usize,
9951    ) -> Result<(Vec<u32>, usize, usize), Box<dyn std::error::Error>> {
9952        if crate::pp::pp_cuts(self.layers.len()).is_some()
9953            && !self.rewrite_allowed(memra_gguf::execution_manifest::RewriteSurface::Pipeline)
9954        {
9955            return Err("pipeline rewrite is not qualified for speculative decode".into());
9956        }
9957        if !self.rewrite_allowed(memra_gguf::execution_manifest::RewriteSurface::MtpSpec) {
9958            return Err("speculative rewrite is not qualified for this ModelPlan".into());
9959        }
9960        // FULL_PREC forces eager (see generate_spec_session note): CUDA graph capture cannot
9961        // enclose cuBLASLt f32 GEMV or the bf16_to_f32 dequant alloc the FloatBf16 path needs.
9962        let graph_draft = std::env::var("MEMRA_SPEC_NOGRAPH").is_err()
9963            && !spec_host_embd()
9964            && self.mtp_graph_capturable()
9965            && self.mtp_extra.is_empty()
9966            && k + 2 < 96
9967            && !crate::model::full_prec_enabled();
9968        if !graph_draft {
9969            return self.generate_spec_inner2(
9970                e, prompt, max_new, k, false, None, None, None, None, None, None,
9971            );
9972        }
9973        let was_tracking = e.ctx().is_event_tracking();
9974        if was_tracking {
9975            unsafe {
9976                e.ctx().disable_event_tracking();
9977            }
9978        }
9979        let r = self.generate_spec_inner2(
9980            e, prompt, max_new, k, true, None, None, None, None, None, None,
9981        );
9982        if was_tracking {
9983            unsafe {
9984                e.ctx().enable_event_tracking();
9985            }
9986        }
9987        r
9988    }
9989
9990    fn generate_spec_inner2(
9991        &self,
9992        e: &Engine,
9993        prompt: &[u32],
9994        max_new: usize,
9995        k: usize,
9996        graph_draft: bool,
9997        mut sess: Option<&mut SpecSession>,
9998        sampling: Option<SpecSampling>,
9999        mut constraint: Option<&mut dyn SpecConstraint>,
10000        mut on_commit: Option<&mut dyn FnMut(&[u32]) -> bool>,
10001        prime_split: Option<usize>,
10002        pipe: Option<&SpecPipeLane>,
10003    ) -> Result<(Vec<u32>, usize, usize), Box<dyn std::error::Error>> {
10004        assert!(k >= 1, "k must be >= 1");
10005        if let Some(p) = pipe {
10006            p.setup_begin()?;
10007        }
10008        // sse-cadence flush cursor: everything in out[..flushed] has been handed to on_commit.
10009        let mut flushed = 0usize;
10010        // admission yield (2026-08-06): on_commit's continue-verdict; false = end the burst
10011        // at the next round boundary (same exit as max_new reached — the session tail runs).
10012        // Initialized by the unconditional post-prime flush below.
10013        let mut keep_going;
10014        let mtp = self
10015            .mtp
10016            .as_ref()
10017            .expect("generate_spec requires an MTP head (nextn_predict_layers>0)");
10018        let n_vocab = self.output.out_features();
10019        // FR-Spec: the draft head may be TRIMMED (fewer rows than n_vocab); the draft argmax runs
10020        // over the draft vocab and the winning index maps through d2t to a TARGET token id.
10021        // Everything downstream (verify/accept/commit) sees target ids only — exactness unchanged.
10022        let d_vocab = mtp
10023            .shared_head_head
10024            .as_ref()
10025            .unwrap_or(&self.output)
10026            .out_features();
10027        if !self.mtp_extra.is_empty() {
10028            if self.plan.draft_source != memra_gguf::model_plan::DraftSourcePlan::Embedded
10029                || self.plan.mtp_blocks.len() != self.mtp_head_count()
10030                || mtp.d2t.is_some()
10031            {
10032                return Err(
10033                    "multi-head MTP requires one embedded canonical block per loaded head".into(),
10034                );
10035            }
10036            for (offset, head) in self.mtp_extra.iter().enumerate() {
10037                if head.d2t.is_some()
10038                    || head
10039                        .shared_head_head
10040                        .as_ref()
10041                        .unwrap_or(&self.output)
10042                        .out_features()
10043                        != d_vocab
10044                {
10045                    return Err(format!(
10046                        "embedded MTP head {} has incompatible draft vocabulary",
10047                        offset + 1
10048                    )
10049                    .into());
10050                }
10051            }
10052            eprintln!(
10053                "[mtp-chain] heads={} policy=step-modulo prefix-replay kv=per-head",
10054                self.mtp_head_count()
10055            );
10056        }
10057        let n_embd = self.cfg.n_embd as usize;
10058        // SESSION MODE: reuse the live cache/scratch, prime only the suffix. `base` = tokens
10059        // already committed (their state is in the caches); 0 = fresh single-shot call.
10060        let session_mode = sess.is_some();
10061        let max_ctx = match sess.as_ref() {
10062            Some(s) => s.cache.max_ctx,
10063            None => prompt.len() + max_new + k + 8,
10064        };
10065        let mut own_cache;
10066        let mut own_scratch;
10067        // PREFIX-CACHE capture request threaded out of the session (lane/spec-prefix-cache):
10068        // (requested split, destination list). Single-shot per burst; fresh calls have none.
10069        let mut sess_capture: Option<(Option<usize>, &mut Vec<SpecBoundaryCapture>)> = None;
10070        // STABLE-BOUNDARY turn-checkpoint request (lane/frspec-multiturn-cache): ABSOLUTE
10071        // committed-length position; consumed one-shot like `capture_at`. None = legacy
10072        // prompt-end capture below.
10073        let mut ckpt_req: Option<usize> = None;
10074        let (
10075            cache,
10076            scratch,
10077            mut sess_tail,
10078            mut sess_draft_slot,
10079            mut sess_pending_slot,
10080            sess_ckpt_slot,
10081            sess_telem,
10082        ): (
10083            &mut Cache,
10084            &mut MtpScratch,
10085            Option<(
10086                &mut Vec<u32>,
10087                &mut Option<CudaSlice<f32>>,
10088                &mut Option<u32>,
10089                &mut u32,
10090                &mut u32,
10091            )>,
10092            Option<&mut Option<DraftGraphCtx>>,
10093            Option<&mut Option<u32>>,
10094            Option<&mut Option<SpecCheckpoint>>,
10095            Option<&SpecTelemetryCounters>,
10096        ) = match sess.take() {
10097            Some(sr) => {
10098                let SpecSession {
10099                    cache,
10100                    scratch,
10101                    committed,
10102                    last_h,
10103                    next_pred,
10104                    sctr: s_sctr,
10105                    uctr: s_uctr,
10106                    draft_ctx,
10107                    pending_tok,
10108                    turn_ckpt,
10109                    telem,
10110                    capture_at,
10111                    boundary_captures,
10112                    ckpt_at,
10113                } = sr;
10114                sess_capture = Some((capture_at.take(), boundary_captures));
10115                ckpt_req = ckpt_at.take();
10116                (
10117                    cache,
10118                    scratch,
10119                    Some((committed, last_h, next_pred, s_sctr, s_uctr)),
10120                    Some(draft_ctx),
10121                    Some(pending_tok),
10122                    Some(turn_ckpt),
10123                    Some(telem),
10124                )
10125            }
10126            None => {
10127                // STAGE-OWNED KV (lane/pp2-spec 2026-08-06) — see `new_session`. Door shut =
10128                // `Cache::new` verbatim.
10129                own_cache = crate::pp::new_cache_planned(e, &self.cfg, &self.plan, max_ctx)?;
10130                // Persistent scratch = max_ctx rows (~2KB/token quantized).
10131                own_scratch = self.new_mtp_scratch(e, max_ctx)?;
10132                (
10133                    &mut own_cache,
10134                    &mut own_scratch,
10135                    None,
10136                    None,
10137                    None,
10138                    None,
10139                    None,
10140                )
10141            }
10142        };
10143        if scratch.plane_count() != self.mtp_head_count() {
10144            return Err(format!(
10145                "MTP scratch/head count mismatch ({}/{})",
10146                scratch.plane_count(),
10147                self.mtp_head_count()
10148            )
10149            .into());
10150        }
10151        let base = cache.pos;
10152        // PENDING-CARRY consume (2026-08-01): a carried bonus reaches here only on the
10153        // empty-suffix GREEDY continuation path (generate_spec_session_sampled flushed every
10154        // other case). It enters the round loop as round-0's pending — verify col 0 — exactly
10155        // like a mid-burst full-accept boundary: no init feed, no tail commit pass.
10156        let carried_pending: Option<u32> = sess_pending_slot.as_mut().and_then(|s| s.take());
10157        // PERSISTENT DRAFT KV (the only mode since 2026-07-08 — the legacy round-local scratch,
10158        // MEMRA_SPEC_KVLOCAL, measured -35 acceptance pts on the 27B p3 sweep and was removed;
10159        // acceptance-only — exactness is verify's job either way).
10160        // HIDDEN-PAIRING CONVENTION (DEFAULT = predecessor-row, 2026-07-04 — the 27B acceptance
10161        // unlock, +16pts): the MTP head is TRAINED on rows pairing token x_p with the trunk
10162        // hidden of its PREDECESSOR h_{p-1} (the reference engine's mtp_update shifts the target
10163        // hiddens right by one; its draft step 0 feeds (id_last, TRUE hidden of the row id_last
10164        // was sampled from)). memra's historical convention paired SAME-ROW (x_p, h_p) in the fill
10165        // and seeded chain step 0 through an extra MTP pass on a duplicated token (the
10166        // pseudo-seed) — measured 27B p2 K=3 acceptance 0.569 vs 0.731, p3 0.445 vs 0.63+, and
10167        // the chain steps j>=1 were already predecessor-shaped, so ONLY the fill + step-0 seed
10168        // move. The fill shifts by one and the chain seeds from the predecessor's true hidden
10169        // DIRECTLY (vh_seed / vx[j-1]) — the pseudo pass disappears (one MTP-block pass saved
10170        // per round on top of the acceptance win). Draft-quality-only: exactness stays the
10171        // verify's job either way. (The legacy same-row pairing seam, MEMRA_SPEC_HSAME, and its
10172        // pseudo-seed passes were removed 2026-07-08 — predecessor pairing won by +16 acc pts;
10173        // the legacy round-local scratch, MEMRA_SPEC_KVLOCAL, went with it.)
10174        // REPLAY-FREE PARTIAL ACCEPT (default, 2026-07-03): partial rounds keep the verify's own
10175        // bit-identical committed-prefix state (KV truncate + recur rebuild from the VerifyCkpt)
10176        // and leave the bonus PENDING — no duplicate trunk pass (profiled ~0.54 extra full weight
10177        // reads/round at long ctx). MEMRA_SPEC_REPLAY=1 restores the legacy rollback+replay (A/B
10178        // + fallback seam).
10179        // Qwen35-MoE replay pin LIFTED (lane/draftcost-moe, 2026-08-20). The pin's stated
10180        // bar — the retained verify-state commit proven equivalent to sequential serving —
10181        // was waiting on this arch running the serving batched verify class, which the
10182        // t-parallel admission (this lane, increment 1) provided: the VerifyCkpt the
10183        // replay-free commit consumes is now produced by the SAME serving-class verify that
10184        // qualified dense qwen35 on 2026-08-15 (where the per-round duplicate replay
10185        // measured 69 -> 30 tok/s). Qualification receipts (run-spec K=1..8 both arms,
10186        // 8-prompt replay-vs-replay-free canary, long-prompt cell):
10187        // research/draftcost-moe-20260820/RECEIPTS.md. MEMRA_SPEC_REPLAY=1 stays the
10188        // rollback + A/B seam.
10189        let spec_replay = spec_replay_env_enabled();
10190        if constraint.is_some() && spec_replay {
10191            return Err(
10192                "constrained spec decode does not support MEMRA_SPEC_REPLAY=1 \
10193                        (legacy replay commits an unmasked bonus)"
10194                    .into(),
10195            );
10196        }
10197        // TRUE-HIDDEN REFRESH (default in persistent-draft-KV mode): every round overwrites the
10198        // committed positions' scratch entries from the verify's exact hiddens (mtp_kv_fill batch)
10199        // instead of keeping chain-approximate entries. MEMRA_SPEC_NOREFRESH=1 = legacy (A/B seam).
10200        let refresh = std::env::var("MEMRA_SPEC_NOREFRESH").is_err();
10201        if !refresh && !self.mtp_extra.is_empty() {
10202            return Err("multi-head MTP requires exact accepted-prefix refresh".into());
10203        }
10204
10205        // prime: BATCHED cache prime (prime_cache — the measured #1 e2e gap: tokenwise primed at
10206        // ~102/38 tok/s vs the engine's ~2000-5900 tok/s batched prefill). prime_cache returns the
10207        // full pre-output_norm hidden stack [T, n_embd], which IS prompt_h (the persistent-draft-KV
10208        // mtp_kv_fill input) — no per-token collection needed. Prompts below PRIME_MIN_T, and
10209        // MEMRA_PRIME_TOKENWISE=1, and frozen Hy3 CPU/GPU expert splits take the tokenwise
10210        // decode_step_h loop. The latter avoids transient GPU staging of the spilled expert bank.
10211        // EMPTY-SUFFIX CONTINUATION (serve bursts): a session turn with NO new tokens resumes
10212        // generation exactly where the last turn stopped — no prime at all. The stashed
10213        // `next_pred` plays prime_logits' role: it is the token produced from the logits after
10214        // committed.last() by the same rule this entry applies to a cold prime's last row —
10215        // an argmax when greedy, a `sample_boundary_token` draw when sampled (the burst tail,
10216        // or `spec_session_from_restored` for a converted prefix-cache hit, did the drawing
10217        // where the sampler and the session's Philox counters were live). `last_h` seeds the
10218        // predecessor pairing below. Fresh calls and non-empty suffixes take the normal path.
10219        let continuation = prompt.is_empty();
10220        if continuation {
10221            assert!(session_mode, "empty prompt requires a session");
10222            assert!(
10223                sess_tail
10224                    .as_ref()
10225                    .map_or(false, |(c, lh, np, _, _)| !c.is_empty()
10226                        && lh.is_some()
10227                        && (np.is_some() || carried_pending.is_some())),
10228                "empty-suffix continuation needs a primed session (committed + last_h + next_pred|pending)"
10229            );
10230        }
10231        let mut prime_logits;
10232        let mut prompt_h: Option<CudaSlice<f32>> = None;
10233        let t_prime = std::time::Instant::now();
10234        let batched_prime = !continuation
10235            && prompt.len() >= crate::hybrid_forward::PRIME_MIN_T
10236            && std::env::var("MEMRA_PRIME_TOKENWISE").is_err()
10237            && !e.frozen_cpu_experts_prefer_tokenwise_prime();
10238        let prime_split = prime_split.filter(|&split| split > 0 && split < prompt.len());
10239        if prime_split.is_some() && continuation {
10240            return Err("spec prime split requires a non-empty prime".into());
10241        }
10242        // STABLE-BOUNDARY TURN CHECKPOINT stop (lane/frspec-multiturn-cache, 2026-08-21):
10243        // the worker's `ckpt_at` request, ABSOLUTE -> prompt-relative. On WARM bursts
10244        // (base != 0, an affinity-rewound or pool-resumed session priming its own delta)
10245        // this is the only stop; on COLD bursts it usually coincides with `prime_split`
10246        // (both are the plain tier's stable pre-generation boundary). A boundary the prime
10247        // cannot honor (outside this prime's range) silently drops the capture — the
10248        // turn_ckpt convention: the next turn re-primes in full, never a wrong resume.
10249        let ckpt_rel = if continuation {
10250            None
10251        } else {
10252            ckpt_req
10253                .and_then(|abs| abs.checked_sub(base))
10254                .filter(|&r| r > 0 && r < prompt.len())
10255        };
10256        // Prime stops, ordered: each is a boundary the prime halts at so the in-place GDN
10257        // conv/ssm state can be snapshotted there (the only moment it exists). One stop =
10258        // the legacy single-split program, byte-for-byte.
10259        let mut stops: Vec<usize> = Vec::new();
10260        for b in [prime_split, ckpt_rel].into_iter().flatten() {
10261            if !stops.contains(&b) {
10262                stops.push(b);
10263            }
10264        }
10265        stops.sort_unstable();
10266        // Captured at the ckpt stop, installed into the session slot post-prime (replacing
10267        // the legacy prompt-end capture). Some(None) = capture attempted and failed -> the
10268        // slot is cleared (a stale checkpoint would rewind to the WRONG boundary).
10269        let mut ckpt_early: Option<Option<SpecCheckpoint>> = None;
10270        if continuation {
10271            prime_logits = Vec::new();
10272        } else if !stops.is_empty() {
10273            if let Some(&first) = stops.first() {
10274                if prime_split == Some(first) && first < crate::hybrid_forward::PRIME_MIN_T {
10275                    return Err(format!(
10276                        "spec prime split {first} is below PRIME_MIN_T {}",
10277                        crate::hybrid_forward::PRIME_MIN_T,
10278                    )
10279                    .into());
10280                }
10281            }
10282            // Mirror the plain worker's boundary stops exactly. Each segment is a
10283            // request-level prime (`queued_after` keeps Step35 arm selection independent of
10284            // the stops — tick-seg law); a segment below PRIME_MIN_T (and the final tail
10285            // under MEMRA_PRIME_TOKENWISE) takes the same eager tokenwise continuation as
10286            // prefill_tick. Retain every hidden row so the draft scratch fill remains one
10287            // coherent prompt.
10288            let mut h_all = e.uninit(prompt.len() * n_embd)?;
10289            prime_logits = Vec::new();
10290            let mut prev = 0usize;
10291            for seg_end in stops.iter().copied().chain(std::iter::once(prompt.len())) {
10292                if seg_end <= prev {
10293                    continue;
10294                }
10295                let seg = &prompt[prev..seg_end];
10296                let is_final = seg_end == prompt.len();
10297                let batched_seg = seg.len() >= crate::hybrid_forward::PRIME_MIN_T
10298                    && (!is_final
10299                        || (std::env::var("MEMRA_PRIME_TOKENWISE").is_err()
10300                            && !e.frozen_cpu_experts_prefer_tokenwise_prime()));
10301                if batched_seg {
10302                    let (l, _, h_seg) =
10303                        self.prime_cache(e, seg, &mut *cache, prompt.len() - seg_end)?;
10304                    e.copy_into(&mut h_all, prev * n_embd, &h_seg, seg.len() * n_embd)?;
10305                    prime_logits = l;
10306                } else {
10307                    for (i, &tok) in seg.iter().enumerate() {
10308                        let (l, h) = self.decode_step_h(e, tok, &mut *cache)?;
10309                        e.copy_into(&mut h_all, (prev + i) * n_embd, &h, n_embd)?;
10310                        prime_logits = l;
10311                    }
10312                }
10313                prev = seg_end;
10314                if is_final {
10315                    break;
10316                }
10317                debug_assert_eq!(cache.pos, base + seg_end, "prime stop landed off boundary");
10318                // PREFIX-CACHE BOUNDARY CAPTURE (lane/spec-prefix-cache): the GDN conv/ssm
10319                // states are about to be advanced in place by the next segment, so this is
10320                // the ONLY moment the boundary's recurrent state exists. Capture iff the
10321                // worker requested exactly this stop (cold sessions only — `capture_at` is
10322                // never armed warm). A failed snapshot is silent (turn_ckpt convention) —
10323                // publication is an optimization, never a correctness dependency.
10324                if base == 0 {
10325                    if let Some((requested, slot)) = sess_capture.as_mut() {
10326                        // Publish at the requested miss-LCP stop (the shared-prefix class)
10327                        // AND at the stable-boundary stop (the next-turn re-render class,
10328                        // lane/frspec-multiturn-cache) — the same boundary set the plain
10329                        // prefill tick learns. Without the second entry, the turn after a
10330                        // cold re-park could only hit the OLDER lcp entry (the measured
10331                        // one-turn transient: t3 restored 607 of 24122 while the plain arm
10332                        // rewound to 15222). Dedupe is the worker sweep's has_key.
10333                        if *requested == Some(seg_end) || ckpt_rel == Some(seg_end) {
10334                            if let Ok(snap) = cache.snapshot(e) {
10335                                slot.push(SpecBoundaryCapture {
10336                                    snap,
10337                                    pos: seg_end,
10338                                    logits: prime_logits.clone(),
10339                                    // rows [0..seg_end) of h_all are primed — the following
10340                                    // segments append, never overwrite.
10341                                    last_h: capture_boundary_hidden(e, &h_all, seg_end, n_embd),
10342                                });
10343                            }
10344                        }
10345                    }
10346                }
10347                // SESSION-AFFINITY TURN CHECKPOINT at the STABLE boundary (see `ckpt_at`):
10348                // same snapshot mechanics, installed post-prime in place of the prompt-end
10349                // capture the re-render class always diverged below.
10350                if ckpt_rel == Some(seg_end) {
10351                    let anchor: Result<CudaSlice<f32>, Box<dyn std::error::Error>> =
10352                        e.uninit(n_embd).and_then(|mut a| {
10353                            e.copy_view_into(
10354                                &mut a,
10355                                0,
10356                                &h_all.slice((seg_end - 1) * n_embd..seg_end * n_embd),
10357                                n_embd,
10358                            )?;
10359                            Ok(a)
10360                        });
10361                    ckpt_early = Some(match (cache.snapshot(e), anchor) {
10362                        (Ok(snap), Ok(last_h)) => Some(SpecCheckpoint {
10363                            snap,
10364                            pos: base + seg_end,
10365                            last_h,
10366                        }),
10367                        _ => None,
10368                    });
10369                }
10370            }
10371            if std::env::var("MEMRA_SPEC_STATS").as_deref() == Ok("1") {
10372                eprintln!(
10373                    "[spec-prime] stops={stops:?} tail={}",
10374                    prompt.len() - stops.last().copied().unwrap_or(0)
10375                );
10376            }
10377            prompt_h = Some(h_all);
10378        } else if batched_prime {
10379            let (l, _h_seed, hiddens) = self.prime_cache(e, prompt, &mut *cache, 0)?;
10380            prime_logits = l;
10381            prompt_h = Some(hiddens);
10382        } else {
10383            prime_logits = Vec::new();
10384            prompt_h = Some(e.uninit(prompt.len() * n_embd)?);
10385            for (i, &tok) in prompt.iter().enumerate() {
10386                let (l, h) = self.spec_target_step_h(e, tok, &mut *cache)?;
10387                if let Some(ph) = prompt_h.as_mut() {
10388                    e.copy_into(ph, i * n_embd, &h, n_embd)?;
10389                }
10390                prime_logits = l;
10391            }
10392        }
10393        e.stream().synchronize()?;
10394        // PREFIX-CACHE SEED CAPTURE (lane/spec-prefix-cache): boundary == prompt end (the seed
10395        // case — no shared-prefix split, publish the whole prompt). The prime just finished, so
10396        // cache.pos == base + prompt.len() and the recurrent state IS the boundary state;
10397        // prime_logits are the boundary logits. Cold sessions only (base == 0) — same law as
10398        // prime_split. The mid-prompt capture above already consumed the request if it matched.
10399        if !continuation && base == 0 {
10400            if let Some((requested, slot)) = sess_capture.as_mut() {
10401                if *requested == Some(prompt.len()) && slot.is_empty() {
10402                    debug_assert_eq!(cache.pos, prompt.len(), "seed capture off prompt end");
10403                    if let Ok(snap) = cache.snapshot(e) {
10404                        slot.push(SpecBoundaryCapture {
10405                            snap,
10406                            pos: prompt.len(),
10407                            logits: prime_logits.clone(),
10408                            last_h: prompt_h
10409                                .as_ref()
10410                                .map(|ph| capture_boundary_hidden(e, ph, prompt.len(), n_embd))
10411                                .unwrap_or_default(),
10412                        });
10413                    }
10414                }
10415            }
10416        }
10417        // Harness timing contract (see crate::PRIME_NANOS): gen-only throughput without the
10418        // prime-subtraction hack.
10419        crate::PRIME_NANOS.store(
10420            t_prime.elapsed().as_nanos() as u64,
10421            std::sync::atomic::Ordering::Relaxed,
10422        );
10423
10424        let (embd_qt, embd_rb) = self.embd.qt_and_row_bytes(n_embd);
10425        // Resident table is fastest when it fits. Large spill deployments can preserve that HBM
10426        // for expert-cache slots and gather only the exact rows needed by MTP/verify from host.
10427        let host_embd = spec_host_embd();
10428        let embd_gpu = if host_embd {
10429            None
10430        } else {
10431            Some(
10432                self.embd_gpu
10433                    .get_or_init(|| e.upload_u8(&self.embd.raw).expect("embed table upload")),
10434            )
10435        };
10436        let embd_dev = embd_gpu.map(|g| (g, embd_qt, embd_rb));
10437        if host_embd {
10438            eprintln!(
10439                "[spec] host-row embedding: {} bytes kept off HBM",
10440                self.embd.raw.len()
10441            );
10442        }
10443        let mut out: Vec<u32> = Vec::with_capacity(max_new);
10444        let mut total_drafted = 0usize;
10445        let mut total_accepted = 0usize;
10446
10447        // --- SAMPLER FIRST (lane/sampled-spec-quality, 2026-08-19) ---
10448        // The sampler config, the session's Philox counters and the penalty window are parsed
10449        // HERE, above the boundary-token selection, because the boundary token must be drawn
10450        // from the sampler the request asked for. Pre-lane this block sat ~50 lines BELOW the
10451        // selection, which is the whole mechanical reason the boundary token was an argmax:
10452        // the sampler state was not in scope yet. Nothing here depends on the round loop, so
10453        // moving it up is a pure reordering for greedy (`sampled == false` ⇒ every branch
10454        // below takes the argmax path it always took).
10455        // --- SAMPLED SPEC (MEMRA_SPEC_TEMP>0, research/sampled-spec-impl-map.md): rejection-
10456        // sampling verify (Leviathan/Chen) — accept draft x at u < p(x)/q(x), resample from
10457        // norm(max(0,p-q)) on reject, bonus sampled from p on full accept. Counter-based Philox
10458        // everywhere (seed, event) -> reproducible. temp==0/unset = the greedy path, untouched.
10459        let sp = sampling.unwrap_or_else(|| SpecSampling {
10460            temp: std::env::var("MEMRA_SPEC_TEMP")
10461                .ok()
10462                .and_then(|v| v.parse().ok())
10463                .unwrap_or(0.0),
10464            seed: std::env::var("MEMRA_SEED")
10465                .ok()
10466                .and_then(|v| v.parse().ok())
10467                .unwrap_or(42),
10468            top_k: std::env::var("MEMRA_TOP_K")
10469                .ok()
10470                .and_then(|v| v.parse().ok())
10471                .unwrap_or(0),
10472            top_p: std::env::var("MEMRA_TOP_P")
10473                .ok()
10474                .and_then(|v| v.parse().ok())
10475                .unwrap_or(1.0),
10476            min_p: std::env::var("MEMRA_MIN_P")
10477                .ok()
10478                .and_then(|v| v.parse().ok())
10479                .unwrap_or(0.0),
10480            penalty_last_n: std::env::var("MEMRA_PENALTY_LAST_N")
10481                .ok()
10482                .and_then(|v| v.parse().ok())
10483                .unwrap_or(0),
10484            penalty_repeat: std::env::var("MEMRA_PENALTY_REPEAT")
10485                .ok()
10486                .and_then(|v| v.parse().ok())
10487                .unwrap_or(1.0),
10488            penalty_freq: std::env::var("MEMRA_PENALTY_FREQ")
10489                .ok()
10490                .and_then(|v| v.parse().ok())
10491                .unwrap_or(0.0),
10492            penalty_present: std::env::var("MEMRA_PENALTY_PRESENT")
10493                .ok()
10494                .and_then(|v| v.parse().ok())
10495                .unwrap_or(0.0),
10496        });
10497        let (sp_temp, sp_seed) = (sp.temp, sp.seed);
10498        let sampled = sp_temp > 0.0;
10499        // Counters resume from the session (burst continuity: randomness must never repeat
10500        // across generate_spec_session calls); one-shot callers start at (0,0). Read through
10501        // sess_tail — `sess` was take()n into it above, so sess.as_ref() here is always None.
10502        let mut sctr: u32 = sess_tail.as_ref().map(|(_, _, _, s, _)| **s).unwrap_or(0);
10503        let mut uctr: u32 = sess_tail.as_ref().map(|(_, _, _, _, u)| **u).unwrap_or(0);
10504        // Penalties (v2.1): applied to COPIES of q rows and p columns symmetrically (exactness
10505        // for the penalized+filtered target). History = generated tokens, host-tracked window.
10506        let pen_on = sampled
10507            && sp.penalty_last_n > 0
10508            && (sp.penalty_repeat != 1.0 || sp.penalty_freq != 0.0 || sp.penalty_present != 0.0);
10509        // SESSION-SPANNING PENALTY WINDOW (Item 2). Pre-lane this was
10510        // `prompt.iter().rev().take(64).rev()` — the BURST's suffix slice — so a continuation
10511        // burst (the majority of a stream's tokens, and ALL of a converted cache hit's) started
10512        // with an EMPTY penalty history and the client's repetition/frequency/presence penalties
10513        // silently reset at every burst boundary. The window now spans `committed ++ prompt`,
10514        // which is what the API contract says and what the plain sampler's own `history` does.
10515        // Byte-identical to the pre-lane seed for a cold turn-1 burst at the default window.
10516        let mut pen_hist: Vec<u32> = if pen_on {
10517            let sess_hist: &[u32] = if spec_pen_session_on() {
10518                sess_tail
10519                    .as_ref()
10520                    .map(|(c, ..)| c.as_slice())
10521                    .unwrap_or(&[])
10522            } else {
10523                &[] // MEMRA_SPEC_PEN_SESSION=0: pre-lane burst-local window
10524            };
10525            pen_window_seed(sess_hist, prompt, sp.penalty_last_n)
10526        } else {
10527            Vec::new()
10528        };
10529        // First generated token = the BOUNDARY token: greedy takes the argmax of the prompt's
10530        // last logits (== greedy's first token, byte-contract); SAMPLED draws it from the
10531        // request's own filtered/penalized target through the session's Philox stream
10532        // (`sample_boundary_token`, lane/sampled-spec-quality Item 1 — pre-lane this was an
10533        // argmax in both regimes, so ~1 token per burst of a sampled stream was greedy).
10534        // Emit it, then FEED it to establish the loop invariant below.
10535        // PENDING-CARRY: the carried bonus was already emitted by the LAST burst — it becomes
10536        // last_token WITHOUT re-emission, and round 0 consumes it as pending (no init feed).
10537        // CONSTRAINED entry rules: the first emitted token is the MASKED argmax of the
10538        // prompt's last logits (plain constrained-greedy identity); a continuation without
10539        // a carried pending would emit an UNMASKED stashed next_pred — refused loudly (the
10540        // worker never resumes constrained sessions from the pool, so this cannot fire).
10541        if let Some(c) = constraint.as_deref_mut() {
10542            if continuation && carried_pending.is_none() {
10543                return Err("constrained spec continuation requires a carried pending \
10544                            (pool resume is unconstrained-only)"
10545                    .into());
10546            }
10547            if !continuation {
10548                c.mask_logits(&mut prime_logits)
10549                    .map_err(|e2| format!("constraint: {e2}"))?;
10550            }
10551        }
10552        let mut last_token = if let Some(b) = carried_pending {
10553            b
10554        } else if continuation {
10555            // A continuation's boundary token was DRAWN by the burst that stashed it (the
10556            // session tail below), or by `spec_session_from_restored` for a converted
10557            // prefix-cache hit — in both cases from the correct logits row with this same
10558            // session's Philox stream, which is why it can be consumed here as-is.
10559            sess_tail.as_ref().unwrap().2.unwrap()
10560        } else if sampled && constraint.is_none() && spec_sampled_boundary_on() {
10561            sample_boundary_token(e, &prime_logits, &sp, &pen_hist, &mut sctr, "cold-prime")?
10562        } else {
10563            // greedy (byte contract), the rollback door, or constrained (masked-argmax
10564            // identity — the worker routes sampled+constrained to the plain path, and this
10565            // function refuses the combination outright above).
10566            argmax(&prime_logits) as u32
10567        };
10568        if pen_on {
10569            // The boundary token is a GENERATED token: the plain sampler `accept()`s every
10570            // emitted token into its penalty history, and pre-lane the burst's first token
10571            // was invisible to penalties forever (never pushed, and never in `committed`
10572            // until this burst's tail). Covers the carry/continuation seeds too — neither is
10573            // in `committed` yet.
10574            pen_hist.push(last_token);
10575        }
10576        if carried_pending.is_none() {
10577            out.push(last_token);
10578            // grammar advances with every emitted token (carried pendings were consumed
10579            // by the burst that emitted them).
10580            if let Some(c) = constraint.as_deref_mut() {
10581                c.consume(last_token)
10582                    .map_err(|e2| format!("constraint: {e2}"))?;
10583            }
10584        }
10585        if continuation {
10586            // draft-KV invariant: entries [0..base) are the session's exact fills; truncate any
10587            // overhang so the chain's first append lands at slot base (== committed.len()).
10588            scratch.set_len(e, base)?;
10589        }
10590        // sse-cadence: hand the caller every not-yet-flushed token (disjoint in-order slices
10591        // concatenating to the full `out`). Called after the prime's first token and after each
10592        // round commit — emission timing only, token bytes untouched. The slice may be EMPTY
10593        // (poll-only boundary: zero-round folds commit nothing new); returns the caller's
10594        // continue-verdict (admission yield, 2026-08-06) — false ends the burst at this round.
10595        fn flush_commit(
10596            cb: &mut Option<&mut dyn FnMut(&[u32]) -> bool>,
10597            out: &[u32],
10598            flushed: &mut usize,
10599        ) -> bool {
10600            if let Some(f) = cb.as_mut() {
10601                let keep = f(&out[*flushed..]);
10602                *flushed = out.len();
10603                keep
10604            } else {
10605                true
10606            }
10607        }
10608        keep_going = flush_commit(&mut on_commit, &out, &mut flushed);
10609        // INVARIANT at loop top: `last_token` is the most-recently-committed/emitted token, its
10610        // KV+recur state IS in `cache` (cache.pos = position right AFTER last_token), `last_pred`
10611        // is the greedy ARGMAX of the logits that predict the token FOLLOWING last_token, and
10612        // `h_seed` = last_token's pre-output_norm hidden. Establish it by feeding last_token once
10613        // (mirrors plain greedy). DEVICE-ARGMAX lever: the accept walk only ever consumes the
10614        // argmax of those logits — never the full vector — so a host u32 replaces the Vec<f32>.
10615        // Trimmed heads: q lives on the trimmed vocab; accept gathers use the TRIMMED index and
10616        // the residual scatters q into target-id space (q=-inf off-trim — the head cannot propose
10617        // those, so their residual mass is p(x), correct by construction).
10618        let d2t_dev: Option<CudaSlice<u32>> = if sampled || crate::spec::spec_stream() {
10619            match &mtp.d2t {
10620                Some(map) => Some(e.htod_u32_v(map)?),
10621                None => None,
10622            }
10623        } else {
10624            None
10625        };
10626        let mut q_full_buf: Option<CudaSlice<f32>> = None;
10627        // host Philox4x32-10 accept-test uniforms: module fn `host_u01` (shared with the
10628        // dspark sampled-admission walk); byte-identical to the closure it replaces.
10629        let mut draft_logits: Vec<CudaSlice<f32>> = Vec::new(); // retained head logits (q), per slot
10630        let mut draft_stats: Vec<(f32, f32, f32)> = Vec::new(); // (row_max, th_e, z_e) per slot
10631        let mut perturb_buf: Option<CudaSlice<f32>> = None; // gumbel scratch (max(n_vocab,d_vocab))
10632        let mut sample_tok = e.alloc_u32_zeroed(1)?; // residual/bonus sample out
10633        let mut col_buf: Option<CudaSlice<f32>> = None; // materialized verify column
10634        let mut pen_hist_d: Option<CudaSlice<u32>> = None;
10635        let mut pcol_buf: Option<CudaSlice<f32>> = None; // penalized p-column scratch
10636        // MEMRA_SPEC_SETUP_TRACE=1 (diagnostics): per-call wall decomposition of the burst
10637        // SETUP + TAIL segments (the round loop's internals are MEMRA_SPEC_PHASE's job) —
10638        // built to pin the serve per-burst fixed cost (research/spec-serving-20260801).
10639        let setup_trace = std::env::var("MEMRA_SPEC_SETUP_TRACE").as_deref() == Ok("1");
10640        let t_ent = std::time::Instant::now();
10641
10642        // SESSION-AFFINITY TURN CHECKPOINT (lane/session-affinity, 2026-08-05): capture the
10643        // PROMPT-END boundary state so a LATER turn can rewind here and re-prime only its own
10644        // delta instead of the whole conversation. See `SpecCheckpoint` for why this boundary is
10645        // the one that matters (a history-rewriting client mutates what the session GENERATED,
10646        // so the next turn's prompt agrees with this one up to exactly here).
10647        //
10648        // WHERE — AND WHY THIS EXACT LINE. Right after the trunk prime, BEFORE the init feed
10649        // (`decode_step_h(last_token)`) and before round 0: the last instant at which the caches
10650        // hold exactly `base + prompt.len()` rows and nothing generated.
10651        //
10652        // This was WRONG in the first cut of this lane: the capture sat after the draft-KV fill,
10653        // which is also after the init feed, so `cache.pos` was `base + prompt.len() + 1` — the
10654        // boundary included the FIRST GENERATED TOKEN. That token is the first thing inside the
10655        // `<think>` block the client strips, so every later turn's diff diverged exactly one
10656        // token below the checkpoint and affinity declined 100% of the time. Measured on the
10657        // owner regime: "history diverged at 12233 of checkpoint 12234". The off-by-one made the
10658        // whole mechanism inert while looking, from the outside, like a working
10659        // correctness-declines-safely path — hence the decline log carries the offsets.
10660        //
10661        // The full-attn planes are `len`-truncatable so the snapshot copies only the GDN conv/ssm
10662        // state (the reason a spec session could not rewind before). The draft scratch needs no
10663        // copy: rows below the boundary are rewritten by the next turn's own fill.
10664        //
10665        // WHEN: non-empty prime only. An empty-suffix continuation burst adds no prompt boundary
10666        // (its "prompt end" IS the previous checkpoint's, already held), so it keeps the existing
10667        // checkpoint rather than replacing it with a strictly worse one.
10668        //
10669        // FAILURE IS SILENT BY DESIGN: on a VRAM-tight rig the snapshot alloc can fail. That
10670        // costs the NEXT turn its rewind (it re-primes fully, today's behavior) and must never
10671        // fail the burst that is already running — so the error is swallowed, loud only under
10672        // MEMRA_DEBUG_SPEC.
10673        //
10674        // STABLE-BOUNDARY OVERRIDE (lane/frspec-multiturn-cache, 2026-08-21): the prompt-end
10675        // posture above was DISPROVED for the think-posture template class — the prompt's own
10676        // tail is the live generation header (`<|im_start|>assistant\n<think>\n`) that the
10677        // next turn's re-render replaces, so the diff diverged a couple tokens BELOW the
10678        // checkpoint and affinity declined 100% of multi-turn agent traffic (the same class
10679        // the plain tier fixed on 2026-08-09 via `plain_checkpoint_boundary`; the port to the
10680        // spec tier is this lane). When the worker armed `ckpt_at`, the capture happened at
10681        // that stop inside the prime above (`ckpt_early`) and is installed here instead;
10682        // capture-attempted-but-failed clears the slot exactly like the legacy arm.
10683        if let Some(slot) = sess_ckpt_slot {
10684            if let Some(early) = ckpt_early {
10685                if early.is_none() && std::env::var("MEMRA_DEBUG_SPEC").is_ok() {
10686                    eprintln!(
10687                        "[spec] stable-boundary turn checkpoint skipped; \
10688                               next turn re-primes in full"
10689                    );
10690                }
10691                *slot = early;
10692            } else if !continuation {
10693                let pos = cache.pos;
10694                debug_assert_eq!(
10695                    pos,
10696                    base + prompt.len(),
10697                    "turn checkpoint must sit at the prompt end, before the init feed"
10698                );
10699                let anchor: Result<CudaSlice<f32>, Box<dyn std::error::Error>> =
10700                    if let Some(ph) = &prompt_h {
10701                        // hidden of the LAST primed row = the predecessor anchor at this
10702                        // boundary (exactly what a fresh prime of committed[..pos] leaves in
10703                        // last_h, and what the next prime's fill reads for its first row).
10704                        let np = prompt.len();
10705                        e.uninit(n_embd).and_then(|mut a| {
10706                            e.copy_view_into(
10707                                &mut a,
10708                                0,
10709                                &ph.slice((np - 1) * n_embd..np * n_embd),
10710                                n_embd,
10711                            )?;
10712                            Ok(a)
10713                        })
10714                    } else {
10715                        Err("no prompt hiddens".into())
10716                    };
10717                match (cache.snapshot(e), anchor) {
10718                    (Ok(snap), Ok(last_h)) => {
10719                        *slot = Some(SpecCheckpoint { snap, pos, last_h });
10720                    }
10721                    (s, a) => {
10722                        *slot = None; // a stale checkpoint would rewind to the WRONG boundary
10723                        if std::env::var("MEMRA_DEBUG_SPEC").is_ok() {
10724                            let err = s
10725                                .err()
10726                                .map(|e| e.to_string())
10727                                .or_else(|| a.err().map(|e| e.to_string()))
10728                                .unwrap_or_default();
10729                            eprintln!(
10730                                "[spec] turn checkpoint skipped ({err}); \
10731                                       next turn re-primes in full"
10732                            );
10733                        }
10734                    }
10735                }
10736            }
10737        }
10738        // INIT FEED — skipped on a pending carry: last_token (the carried bonus) is NOT in the
10739        // caches and must NOT be fed solo; round 0's batched verify commits it as col 0. Its
10740        // seed/anchor hidden is the carried last_h (copied below); last_pred is dead in the
10741        // pending path (t_pred reads verify col 0 — the accept walk overwrites it).
10742        let mut last_pred = 0u32;
10743        let mut last_col_logits: Option<CudaSlice<f32>> = None;
10744        // CONSTRAINED: the init feed's logits back the (n_acc==0, base==0) masked-argmax
10745        // recompute in the grammar-truncation walk — retained host-side, round 0 only.
10746        let mut init_logits_host: Option<Vec<f32>> = None;
10747        let h_seed0: CudaSlice<f32> = if carried_pending.is_none() {
10748            let (init_logits, h) = self.spec_target_step_h(e, last_token, &mut *cache)?;
10749            last_pred = argmax(&init_logits) as u32;
10750            if constraint.is_some() {
10751                init_logits_host = Some(init_logits.clone());
10752            }
10753            // sampled mode: p-distribution after last_token, for the j==0/base==0 accept test.
10754            if sampled {
10755                last_col_logits = Some(e.htod(&init_logits)?);
10756            }
10757            h
10758        } else {
10759            // predecessor-row anchor: hidden of the last COMMITTED row (the carry contract).
10760            let lh = sess_tail
10761                .as_ref()
10762                .unwrap()
10763                .1
10764                .as_ref()
10765                .expect("pending carry requires last_h");
10766            e.clone_dtod(lh)?
10767        };
10768        let t_init = t_ent.elapsed();
10769        let mut last_col_stats: Option<(f32, f32, f32)> = None;
10770        // PERSISTENT h_seed buffer (allocated BEFORE any graph capture so no captured scratch can
10771        // alias it): every path that updates the round seed copies INTO it — no per-round allocs,
10772        // stable pointer for the graph-draft round-start copy.
10773        let mut h_seed_buf = e.clone_dtod(&h_seed0)?;
10774        // Predecessor-pairing trackers: `fill_prev` = trunk hidden AT the last COMMITTED row (the
10775        // predecessor of the next verify's col 0 — the reference's carried pending-h analogue;
10776        // also the predecessor-row hidden for the round-0 legacy-replay seed). At round 0 that
10777        // row is last_token's own (h_seed0). The chain step-0 seed under the pairing default =
10778        // hidden of the row BEFORE last_token = the prompt's last row at round 0 (h_seed_buf
10779        // overwritten below).
10780        let mut fill_prev = e.clone_dtod(&h_seed0)?;
10781        {
10782            if let Some(ph) = &prompt_h {
10783                let np = prompt.len();
10784                e.copy_view_into(
10785                    &mut h_seed_buf,
10786                    0,
10787                    &ph.slice((np - 1) * n_embd..np * n_embd),
10788                    n_embd,
10789                )?;
10790            } else if continuation {
10791                if let Some((_, lh, _, _, _)) = sess_tail.as_ref() {
10792                    if let Some(lh) = lh.as_ref() {
10793                        e.copy_into(&mut h_seed_buf, 0, lh, n_embd)?;
10794                    }
10795                }
10796            }
10797        }
10798        // Persistent device prediction slots for the accept walk (max k+1 verify columns).
10799        let mut preds_d = e.alloc_u32_zeroed(k + 2)?;
10800
10801        let debug_spec = std::env::var("MEMRA_DEBUG_SPEC").is_ok();
10802        let fork_mode = OptiForkGateMode::configured();
10803        // MEMRA_SPEC_STATS=1: per-slot accept histogram + draft-length histogram, printed once at
10804        // the end. Metric normalization vs the reference engine: BOTH engines count
10805        // accepted/drafted where the chain stopped at p-min and the sub-threshold token is
10806        // discarded uncounted — per-slot decay + chain-length mix are the extra dimensions.
10807        let spec_stats = std::env::var("MEMRA_SPEC_STATS").is_ok();
10808        let mut st_drafted = vec![0usize; k];
10809        let mut st_accepted = vec![0usize; k];
10810        let mut st_len_hist = vec![0usize; k + 1];
10811        let mut st_full = 0usize;
10812        // P-MIN CONFIDENCE GATE (MEMRA_SPEC_PMIN, the serve script's --spec-draft-p-min mechanism):
10813        // stop the draft chain early when the head's softmax confidence in its own pick drops
10814        // below p_min. Hoisted above the loop: the graph capture bakes the prob kernels iff on.
10815        static PMIN: std::sync::OnceLock<f32> = std::sync::OnceLock::new();
10816        let p_min = *PMIN.get_or_init(|| {
10817            std::env::var("MEMRA_SPEC_PMIN")
10818                .ok()
10819                .and_then(|v| v.parse().ok())
10820                .unwrap_or(0.0)
10821        });
10822        // ZERO-DRAFT ROUNDS (MEMRA_SPEC_PMIN0=1, vendored from llama.cpp's draft gating): let the
10823        // p-min gate apply at j==0 too, so a low-confidence round drafts NOTHING and the verify
10824        // batch is just the pending bonus (m=1 = a plain decode step). llama's 35B win rides
10825        // exactly this — draft acceptance 76% at mean len 2.5 because unpredictable stretches
10826        // never pay draft+verify overhead. Only legal when a pending bonus exists (an empty
10827        // verify batch is not); the j==0 exemption stays for pending-less rounds.
10828        let pmin0 = std::env::var("MEMRA_SPEC_PMIN0")
10829            .map(|v| v == "1")
10830            .unwrap_or(false);
10831
10832        // --- GRAPH DRAFT setup: persistent I/O buffers + ONE capture (2 warmups inside). The
10833        // warmups mutate scratch len_d / pos / tok / seed — all reset at every round start, so the
10834        // only restore needed is the scratch counter. Capture failure (e.g. a non-capturable
10835        // cuBLAS path in an exotic head) falls back to the eager draft chain.
10836        // PER-SESSION PERSISTENCE (2026-08-01): session calls reuse the DraftGraphCtx parked on
10837        // the SpecSession — the capture (2 warmup head forwards + instantiate) ran ONCE at the
10838        // session's first burst, not per burst (measured ~16ms/burst fixed cost on H100 q27,
10839        // research/spec-serving-20260801). Reuse is pointer-exact: the graph bakes the session's
10840        // own scratch KV (never realloc'd), the model's resident embedding, the OnceLock p_min,
10841        // and the g_* buffers carried in the ctx — replay dispatch is identical to a fresh
10842        // capture, so draft tokens are bit-identical (drafts never decide exactness anyway; the
10843        // verify arbitrates). Single-shot calls (sess=None) build a fresh ctx and drop it.
10844        let mut dctx: DraftGraphCtx = match sess_draft_slot.as_mut().and_then(|s| s.take()) {
10845            Some(c) => c,
10846            None => DraftGraphCtx::new(e, n_embd, if sampled { d_vocab } else { 1 })?,
10847        };
10848        // A session that ran greedy bursts first sized g_q/g_perturb at 1; a sampled resume
10849        // needs d_vocab. Realloc is legal exactly while graph_s is None (nothing baked them).
10850        if sampled && dctx.g_q.len() < d_vocab {
10851            dctx.g_q = e.zeros(d_vocab)?;
10852            dctx.g_perturb = e.zeros(d_vocab)?;
10853        }
10854        // DRAFT-SIDE GRAMMAR MASK (lane/draft-mask, 2026-08-04): the drafter samples the
10855        // grammar's legal set, so proposals are legal BY CONSTRUCTION and the verify-side
10856        // truncation (the correctness backstop) stops cutting every tight-schema round.
10857        // The mask is one node inside the captured draft chain — presence is a CAPTURE-TIME
10858        // shape, so a parked graph of the other shape is dropped and recaptured.
10859        let dmask_on = constraint
10860            .as_deref()
10861            .is_some_and(|c| c.draft_mask_enabled());
10862        let dmask_words = if dmask_on { d_vocab.div_ceil(32) } else { 0 };
10863        if dmask_on && dctx.g_dmask.len() < dmask_words {
10864            dctx.g_dmask = e.alloc_u32_zeroed(dmask_words)?;
10865            dctx.graph = None; // the old capture baked the old (or no) mask pointer
10866            dctx.failed.clear_greedy();
10867            dctx.keeper.clear();
10868        }
10869        if dctx.graph.is_some() && dctx.graph_masked != dmask_on {
10870            dctx.graph = None;
10871            dctx.failed.clear_greedy();
10872            dctx.keeper.clear();
10873        }
10874        if graph_draft && !sampled && dctx.graph.is_none() && !dctx.failed.greedy_failed() {
10875            let DraftGraphCtx {
10876                g_tok,
10877                g_pos,
10878                g_seed,
10879                g_p,
10880                g_dmask,
10881                ..
10882            } = &mut dctx;
10883            // capture-time contents: ALL-ONES (ban nothing). A replay only ever runs after the
10884            // host uploads the position's real words, so the warmups stay grammar-free.
10885            if dmask_on {
10886                e.htod_u32_into(g_dmask, &vec![u32::MAX; dmask_words])?;
10887            }
10888            let g_dmask_ro: &CudaSlice<u32> = &*g_dmask;
10889            // CAPTURE-RETAIN (#68 fix): the warmup transients' pool addresses are baked into the
10890            // captured graph; the keeper pins them for the graph's lifetime. capture_graph (non-
10891            // retained) freed them at exit — safe for one-shot generate_spec (nothing else touches
10892            // the pool between replays) but WRONG for sessions: burst-boundary prime/fill/commit
10893            // passes (and, in serve, other sessions) recycle those addresses and the replay then
10894            // clobbers live buffers — the ST serve-spec corruption (research/serve-st-20260803).
10895            let cap_res = e.capture_graph_retained(|e| {
10896                self.mtp_head_forward_cap(
10897                    e,
10898                    mtp,
10899                    g_tok,
10900                    g_pos,
10901                    g_seed,
10902                    g_p,
10903                    &mut *scratch,
10904                    p_min > 0.0 || fork_mode == OptiForkGateMode::Controller,
10905                    true,
10906                    embd_gpu.expect("graph draft requires resident embedding"),
10907                    embd_qt,
10908                    embd_rb,
10909                    d_vocab,
10910                    None,
10911                    None,
10912                    if dmask_on {
10913                        Some((g_dmask_ro, dmask_words))
10914                    } else {
10915                        None
10916                    },
10917                )
10918            });
10919            match cap_res {
10920                Ok((g, keep)) => {
10921                    scratch.set_len(e, base)?;
10922                    dctx.graph = Some(g);
10923                    dctx.graph_masked = dmask_on;
10924                    dctx.keeper = keep;
10925                }
10926                Err(err) => {
10927                    scratch.set_len(e, base)?;
10928                    // LOUD flip (audit Q2): a dropped draft graph is a coverage loss, never
10929                    // silent. Once per flip — mark returns None on an already-failed ctx.
10930                    if let Some(line) = dctx.failed.mark_greedy(&err.to_string()) {
10931                        eprintln!("{line}");
10932                    }
10933                }
10934            }
10935        }
10936        // --- SAMPLED GRAPH DRAFT setup (step 3 of the sampled-spec arc): a SECOND capture, own
10937        // graph object, built only when sampled && graph-eligible — the greedy capture above is
10938        // untouched (and skipped when sampled: its graph would never be launched). Same head
10939        // forward, but the in-graph argmax reads GUMBEL-PERTURBED logits; the Philox event
10940        // counter lives in the persistent device g_ctr (bumped in-graph, host-seeded from sctr
10941        // once per round); the raw head logits land in the persistent g_q for the host's
10942        // per-replay async D2D into the round's q slot (q_slots, K x d_vocab, allocated once).
10943        // seed/temp are capture-time constants — baked into graph_s, so a pool-resumed request
10944        // with a different (seed, temp, k) drops the parked sampled graph and recaptures.
10945        // COST OF THE FRESH-SEED SERVE DEFAULT (dogfood F4, 2026-08-04): omitting `seed` on a
10946        // serve request now draws fresh per-request entropy (it used to default to a pinned 0),
10947        // so a seed-omitting request that RESUMES a parked spec session finds an s_key baked
10948        // with the PREVIOUS request's seed and pays one recapture. Bounded, and it does not
10949        // reopen the ~16ms/burst regression the persistent ctx exists to fix: a session's seed
10950        // is fixed for its whole lifetime (worker.rs reads s.sampler.seed() per burst), so
10951        // this compare misses at most ONCE per resumed request — the first burst recaptures
10952        // and every later burst in that request replays. A client that wants the parked graph
10953        // AND reproducibility supplies an explicit `seed`, honored exactly, which keeps s_key
10954        // stable across its whole conversation.
10955        // COMPOSITION RULE (fspec x gsd merge): the in-graph chain samples from the RAW
10956        // softmax — it can hold neither per-row filter stats nor the varying penalty history.
10957        // The sampled graph therefore engages only in the PURE-TEMP regime; filters/penalties
10958        // force the eager draft (which computes stats/penalties per row).
10959        // KEY THE WHOLE REGIME, not just the baked constants (lane/graph-s-key-exactness-
10960        // 20260819). `s_key` used to be `(seed, temp, k)`; the filters and penalties were left
10961        // out, so a filtered request resuming a session that parked a PURE-TEMP graph kept it —
10962        // and the launch site never re-asked `pure_temp`. See [`SampledGraphKey`] for what that
10963        // costs (an unconditional accept of out-of-head draft tokens, i.e. an exactness bug on
10964        // the request shape the vendor-default flip makes the majority).
10965        let s_key = SampledGraphKey::new(sp_seed, sp_temp, k, sp.top_k, sp.top_p, sp.min_p, pen_on);
10966        let pure_temp = s_key.pure_temp();
10967        if sampled && dctx.s_key.is_some_and(|old| old != s_key) {
10968            dctx.graph_s = None;
10969            dctx.failed.clear_sampled();
10970            dctx.s_key = None;
10971            dctx.q_slots.clear();
10972            dctx.keeper_s.clear();
10973        }
10974        if graph_draft
10975            && sampled
10976            && pure_temp
10977            && dctx.graph_s.is_none()
10978            && !dctx.failed.sampled_failed()
10979        {
10980            let DraftGraphCtx {
10981                g_tok,
10982                g_pos,
10983                g_seed,
10984                g_p,
10985                g_ctr,
10986                g_perturb,
10987                g_q,
10988                ..
10989            } = &mut dctx;
10990            // CAPTURE-RETAIN (#68 fix): same keeper contract as the greedy capture above.
10991            let cap_res = e.capture_graph_retained(|e| {
10992                self.mtp_head_forward_cap(
10993                    e,
10994                    mtp,
10995                    g_tok,
10996                    g_pos,
10997                    g_seed,
10998                    g_p,
10999                    &mut *scratch,
11000                    p_min > 0.0,
11001                    true,
11002                    embd_gpu.expect("graph draft requires resident embedding"),
11003                    embd_qt,
11004                    embd_rb,
11005                    d_vocab,
11006                    Some((g_ctr, g_perturb, g_q, sp_seed, sp_temp)),
11007                    None,
11008                    None, // constrained spec is greedy-only — sampled never carries a hook
11009                )
11010            });
11011            match cap_res {
11012                Ok((g, keep)) => {
11013                    scratch.set_len(e, base)?;
11014                    for _ in 0..k {
11015                        dctx.q_slots.push(e.zeros(d_vocab)?);
11016                    }
11017                    dctx.graph_s = Some(g);
11018                    dctx.s_key = Some(s_key);
11019                    dctx.keeper_s = keep;
11020                }
11021                Err(err) => {
11022                    scratch.set_len(e, base)?;
11023                    // LOUD flip (audit Q2): same contract as the greedy capture above.
11024                    if let Some(line) = dctx.failed.mark_sampled(&err.to_string()) {
11025                        eprintln!("{line}");
11026                    }
11027                }
11028            }
11029        }
11030        // ---- EXACTNESS GUARD, the enforceable half (lane/graph-s-key-exactness-20260819) ----
11031        // With the filters and penalties in `s_key`, a graph that SURVIVED the drop above was
11032        // captured under this request's exact regime, and capture requires `pure_temp` — so a
11033        // parked graph implies `pure_temp`. That implication is the whole exactness argument for
11034        // the graph arm, so it is asserted here rather than assumed: a future change that widens
11035        // the capture condition, narrows the key, or copies a `DraftGraphCtx` across regimes
11036        // fails LOUDLY at this line instead of silently drafting from the raw softmax while the
11037        // verify applies filter stats. Release builds refuse the graph (drop it, draft eager)
11038        // rather than launching it; the launch site re-tests `pure_temp` independently.
11039        if sampled && !pure_temp && dctx.graph_s.is_some() {
11040            debug_assert!(
11041                false,
11042                "sampled draft graph parked under {:?} survived into a FILTERED request \
11043                 (top_k={} top_p={} min_p={} pen_on={}): the in-graph chain draws from the RAW \
11044                 softmax, so the verify's filtered q would test a distribution the draft was \
11045                 never sampled from",
11046                dctx.s_key, sp.top_k, sp.top_p, sp.min_p, pen_on,
11047            );
11048            eprintln!(
11049                "[spec] BUG: dropping a parked sampled draft graph that outlived its capture \
11050                 regime (s_key={:?}, request top_k={} top_p={} min_p={} pen_on={}); drafting \
11051                 EAGER — the key must carry every field that shapes q",
11052                dctx.s_key, sp.top_k, sp.top_p, sp.min_p, pen_on,
11053            );
11054            dctx.graph_s = None;
11055            dctx.s_key = None;
11056            dctx.q_slots.clear();
11057            dctx.keeper_s.clear();
11058        }
11059        // SKEY PROBE (MEMRA_SKEY_PROBE=1): the burst-entry facts the reachability question turns
11060        // on — is this request sampled, is it in the pure-temp regime the sampled graph is only
11061        // legal in, and is a graph PARKED from an earlier request of the same session? The launch
11062        // arms below print which chain actually ran, so the probe never restates the condition.
11063        if skey_probe() {
11064            eprintln!(
11065                "[skey] burst sampled={} pure_temp={} temp={} top_k={} top_p={} min_p={} \
11066                 pen_on={} k={} graph_draft={} graph_s_parked={} s_key_parked={:?}",
11067                sampled as u8,
11068                pure_temp as u8,
11069                sp_temp,
11070                sp.top_k,
11071                sp.top_p,
11072                sp.min_p,
11073                pen_on as u8,
11074                k,
11075                graph_draft as u8,
11076                dctx.graph_s.is_some() as u8,
11077                dctx.s_key,
11078            );
11079        }
11080        let t_cap = t_ent.elapsed();
11081        // PERSISTENT DRAFT KV: fill the MTP block's K/V for every prompt position from the exact
11082        // trunk hiddens collected during prime — ONE batched K/V-only pass (overwrites any
11083        // capture-warmup garbage; capture left len at 0). last_token (the init feed) needs no
11084        // fill: the first chain step processes it and appends its entry at slot prompt.len().
11085        if let Some(ph) = &prompt_h {
11086            // SESSION: rows [0..base) are the previous turns' exact fills (refresh overwrote them
11087            // with true verify hiddens) — truncate any draft overhang, fill ONLY the suffix at
11088            // global positions [base..base+tp). Fresh call: base==0, identical to before.
11089            scratch.set_len(e, base)?;
11090            // CHUNKED FILL (long-ctx OOM fix, 2026-07-05): mtp_kv_fill's transients scale with its
11091            // T (concat = T*2*n_embd*4B — 1.5GB at 40k) and its concat loop is 2*T launches. The
11092            // fill is a pure sequential append, so chunking is exact: each chunk appends its rows
11093            // at pos0=base+start with the identical per-row math. Same knob as the trunk prime.
11094            let tp = prompt.len();
11095            let fill_chunk: usize = if crate::cache::swa_ring_on() {
11096                crate::hybrid_forward::prime_chunk_tokens(tp, self.layers.len())
11097            } else {
11098                // Preserve the flag-OFF schedule byte-for-byte, including the legacy zero value
11099                // meaning one monolithic fill.
11100                std::env::var("MEMRA_PRIME_CHUNK")
11101                    .ok()
11102                    .and_then(|v| v.parse().ok())
11103                    .unwrap_or(4096)
11104            };
11105            let fill_chunk = if fill_chunk == 0 { tp } else { fill_chunk };
11106            let mut start = 0usize;
11107            while start < tp {
11108                let end = (start + fill_chunk).min(tp);
11109                let tc = end - start;
11110                {
11111                    // PREDECESSOR pairing: row i gets h[i-1]; global row 0 a zeros row (the
11112                    // reference engine's initial pending-h is zeroed too); a session turn's row 0
11113                    // gets the PREVIOUS turn's last committed hidden (sess.last_h). Per chunk:
11114                    // rows start..end read h[start-1..end-1] — one dtod into a chunk buffer.
11115                    let mut phs = e.zeros(tc * n_embd)?;
11116                    let (src_lo, dst_off) = if start == 0 {
11117                        (0, n_embd)
11118                    } else {
11119                        ((start - 1) * n_embd, 0)
11120                    };
11121                    let n_copy = if start == 0 {
11122                        (tc - 1) * n_embd
11123                    } else {
11124                        tc * n_embd
11125                    };
11126                    if start == 0 {
11127                        if let Some((_, lh, _, _, _)) = sess_tail.as_ref() {
11128                            if let Some(lh) = lh.as_ref() {
11129                                e.copy_into(&mut phs, 0, lh, n_embd)?;
11130                            }
11131                        }
11132                    }
11133                    if n_copy > 0 {
11134                        e.copy_view_into(
11135                            &mut phs,
11136                            dst_off,
11137                            &ph.slice(src_lo..src_lo + n_copy),
11138                            n_copy,
11139                        )?;
11140                    }
11141                    self.mtp_kv_fill_all(
11142                        e,
11143                        &prompt[start..end],
11144                        &phs,
11145                        base + start,
11146                        &mut *scratch,
11147                        embd_dev,
11148                    )?;
11149                }
11150                start = end;
11151            }
11152        }
11153        // MEMRA_PROFILE_SPEC=2: profiler capture starts HERE — after the prime, so an
11154        // `nsys -c cudaProfilerApi` capture contains ONLY the round loop (draft/verify/commit).
11155        // (=1 brackets the whole call in run_spec.rs, prime included.)
11156        if std::env::var("MEMRA_PROFILE_SPEC").as_deref() == Ok("2") {
11157            unsafe extern "C" {
11158                fn cudaProfilerStart() -> i32;
11159            }
11160            unsafe {
11161                cudaProfilerStart();
11162            }
11163        }
11164        // ROUND-STREAM stage (c) 4 (MEMRA_SPEC_STREAM=1, experimental): pre-issued M-round
11165        // bursts with ZERO per-round host readbacks — the accept/seed/rollback/ring kernels
11166        // consume each other's device outputs; the host drains the ring every M rounds. v1
11167        // constraints: greedy, !spec_replay, single-shot, batched-linear layers, no refresh
11168        // fills (acceptance effect A/B-arbitrated), enters from round 1 (pending guaranteed).
11169        // NOTE: not gated on the caller's graph_draft (its trunk_dense conjunct turns the 35B
11170        // MoE off) — the stream capture encloses ONLY the dense MTP head; the head-dense /
11171        // full-prec / k gates are re-derived here and a failed capture degrades to stream-off.
11172        let stream_on = crate::spec::spec_stream()
11173            && !sampled
11174            && !spec_replay
11175            && self.mtp_extra.is_empty()
11176            && constraint.is_none()
11177            && !session_mode
11178            && embd_gpu.is_some()
11179            && !crate::model::full_prec_enabled()
11180            && k + 2 < 96;
11181        let mut stream_graph: Option<cudarc::driver::CudaGraph> = None;
11182        let mut g_tokp2k = e.alloc_u32_zeroed(2 * k.max(1))?;
11183        if stream_on {
11184            let cap = e.capture_graph(|e| {
11185                for j in 0..k.max(1) {
11186                    self.mtp_head_forward_cap(
11187                        e,
11188                        mtp,
11189                        &mut dctx.g_tok,
11190                        &mut dctx.g_pos,
11191                        &mut dctx.g_seed,
11192                        &mut dctx.g_p,
11193                        &mut *scratch,
11194                        true,
11195                        true,
11196                        embd_gpu.expect("round stream requires resident embedding"),
11197                        embd_qt,
11198                        embd_rb,
11199                        d_vocab,
11200                        None,
11201                        Some((&mut g_tokp2k, j, d2t_dev.as_ref())),
11202                        None, // round-stream requires constraint.is_none() (see stream_on)
11203                    )?;
11204                }
11205                Ok(())
11206            });
11207            match cap {
11208                Ok(g) => {
11209                    scratch.set_len(e, 0)?;
11210                    stream_graph = Some(g);
11211                }
11212                Err(err) => {
11213                    scratch.set_len(e, 0)?;
11214                    if debug_spec {
11215                        eprintln!("[spec] stream-graph capture failed ({err}); stream off");
11216                    }
11217                }
11218            }
11219        }
11220        let stream_active = stream_on && stream_graph.is_some();
11221        if debug_spec {
11222            eprintln!(
11223                "[spec] stream_on={stream_on} env={} samp={sampled} dg={} captured={} active={stream_active} session={session_mode} replay={spec_replay}",
11224                crate::spec::spec_stream(),
11225                dctx.graph.is_some(),
11226                stream_graph.is_some()
11227            );
11228        }
11229        let t_v_s = k + 1;
11230        // ROUND-STREAM buffers + ptr tables now live in the model-generic round_stream
11231        // module (extracted 2026-07-12; the gemma burst reuses them).
11232        let sb = crate::round_stream::StreamBufs::new(e, k, crate::spec::spec_stream_m())?;
11233        let crate::round_stream::StreamBufs {
11234            mut vtok_d,
11235            mut brk_d,
11236            mut pend_d,
11237            last_pred_d,
11238            mut pos_ctr,
11239            mut pos_start_d,
11240            mut ring_d,
11241            acc_d: mut stream_acc,
11242            m_rounds,
11243            k: _,
11244        } = sb;
11245        let stream_ptrs: Option<CudaSlice<u64>> = if stream_active {
11246            Some(crate::round_stream::kv_len_ptr_table(
11247                e,
11248                cache,
11249                Some(&pos_ctr),
11250            )?)
11251        } else {
11252            None
11253        };
11254
11255        let t_fill = t_ent.elapsed();
11256        let mut round = 0usize;
11257        // ADAPTIVE DRAFT LENGTH (MEMRA_SPEC_ADAPT=1, opt-in — the gemma_spec accepted-run law,
11258        // ported 2026-08-01): next round's draft depth = last round's accepted run + 1, clamped
11259        // to [floor(pos), k_cap] — a miss shrinks the next draft to the miss point + 1,
11260        // full-accept streaks re-deepen one step per round. NOT the 2026-07-07 acceptance-EMA
11261        // (that arm measured an HONEST LOSS to static per-class optima — 115.0/85.8/73.4 vs
11262        // 121.6/92.7/75.6, EMA lag — and was removed 2026-07-08; rig5090.jsonl has the record).
11263        // The gemma law has no lag class: it reacts within one round, and was worth +7-20% on
11264        // the gemma cells at unchanged exactness (2026-07-10 flip; floor sweep 2026-07-25;
11265        // position key 2026-07-26). Signal = n_acc from the round's EXISTING accept readback —
11266        // zero new syncs; the draft graph is a SINGLE-STEP capture replayed per drafted token,
11267        // so a per-round depth needs no re-capture (unlike gemma's whole-chain graphs). qwen's
11268        // in-round p-min cut already shortens chains mid-round, so gemma's one-round-late p-min
11269        // fold into kc is unnecessary here — the accepted-run law sees the cut via n_acc.
11270        // Exactness is the verify's job at ANY depth (same contract as p-min variable rounds).
11271        // DEFAULT OFF on the qwen path until its cells gate a flip (gemma's is default-on).
11272        // MEASURED 2026-08-01 (H100 GPU-3, interleaved x3, NGEN=256, same-invocation plain
11273        // denominators; research/qwen-adaptive-k-20260801/): REFUTED on the tuned qwen configs.
11274        // q27 K=3+HPOST+PMIN=0.3: short +0.8% (noise; law ~idles, len_hist identical), board
11275        // -1.9%, agentic -0.5%; board PMIN=0 -2.1% (not p-min shadowing — the law itself);
11276        // floor=1 -2.8% (gemma's floor-collapse, reproduced). q35 K=2 board: -6.4% (52/136
11277        // rounds shrink to depth 1; no depth to reclaim at K=2). The gemma direction DOES
11278        // appear at untuned depth-K — q27 K=6 floor=4 +1.5% over fixed K=6 — but stays -3.7%
11279        // below fixed K=3: same verdict class as the retired EMA arm (honest loss to static
11280        // per-class optima). Acceptance-rate rises under the law while tokens/round falls —
11281        // it buys accept-% by adding rounds, and a round's fixed draft+verify cost wins.
11282        // K=1..8 self-consistency PASS both models with the law ON (exactness held).
11283        let adapt = std::env::var("MEMRA_SPEC_ADAPT").as_deref() == Ok("1");
11284        // floor: per-model default keyed on n_embd (gemma's tiering — models with an expensive
11285        // verify keep deep drafts after a miss); MEMRA_SPEC_ADAPT_FLOOR pins it everywhere.
11286        let adapt_floor_env: Option<usize> = std::env::var("MEMRA_SPEC_ADAPT_FLOOR")
11287            .ok()
11288            .and_then(|v| v.parse().ok());
11289        let adapt_floor_default: usize = if self.cfg.n_embd as usize >= 3500 {
11290            4
11291        } else if self.cfg.n_embd as usize >= 2500 {
11292            2
11293        } else {
11294            1
11295        };
11296        let adapt_floor: usize = adapt_floor_env.unwrap_or(adapt_floor_default);
11297        // position key: past floor_ctx a HIGH floor (>=4) relaxes to 1 — forced-deep drafts
11298        // turn net-negative at depth (gemma 31B d1736 evidence); MEMRA_SPEC_FLOOR_CTX moves
11299        // the boundary, an explicit MEMRA_SPEC_ADAPT_FLOOR pins the floor everywhere.
11300        let floor_ctx: usize = std::env::var("MEMRA_SPEC_FLOOR_CTX")
11301            .ok()
11302            .and_then(|v| v.parse().ok())
11303            .unwrap_or(1024);
11304        let floor_at = |pos: usize| -> usize {
11305            if adapt_floor_env.is_some() || pos < floor_ctx {
11306                adapt_floor
11307            } else if adapt_floor >= 4 {
11308                1
11309            } else {
11310                adapt_floor
11311            }
11312        };
11313        // cap: MEMRA_SPEC_CAPMAX (gemma semantics, default 7). Binds only under adapt — the
11314        // fixed-K default path is untouched by this whole block.
11315        let cap_max: usize = std::env::var("MEMRA_SPEC_CAPMAX")
11316            .ok()
11317            .and_then(|v| v.parse().ok())
11318            .unwrap_or(7);
11319        let k_cap = k.min(cap_max).max(1);
11320        let mut kc = k_cap;
11321        let mut opti_fork: Option<OptiForkState> = None;
11322        let mut fork_snapshot: Option<crate::cache::CacheSnapshot> = None;
11323        if fork_mode != OptiForkGateMode::Disabled {
11324            let fence = crate::pp::pp_cuts(self.layers.len());
11325            let refusal = if !session_mode {
11326                Some("not-session")
11327            } else if k != 1 || adapt {
11328                Some("requires-fixed-k1")
11329            } else if sampled || constraint.is_some() || spec_replay {
11330                Some("sampled-constrained-or-replay")
11331            } else if pipe.is_some() {
11332                Some("two-session-pipeline")
11333            } else if !spec_devacc() {
11334                Some("requires-device-accept")
11335            } else if stream_active || crate::spec::spec_stream() {
11336                Some("round-stream")
11337            } else if !self.mtp_extra.is_empty() {
11338                Some("multi-head-mtp")
11339            } else if crate::cache::swa_ring_on() || cache.has_swa_ring() {
11340                Some("swa-ring")
11341            } else if crate::pp::pp_host_bounce_active() {
11342                Some("host-bounce")
11343            } else if fork_mode == OptiForkGateMode::Controller
11344                && cache.recur.iter().any(Option::is_some)
11345            {
11346                Some("controller-requires-zero-recurrent-state")
11347            } else if fence.as_ref().is_none_or(|f| f.len() != 3) {
11348                Some("requires-pp2")
11349            } else {
11350                None
11351            };
11352            if let Some(reason) = refusal {
11353                OPTI_FORK_REFUSALS.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
11354                eprintln!("[opti-fork] refused reason={reason}");
11355            } else {
11356                let fence = fence.expect("validated PP-2 fence");
11357                let rt = crate::pp::PpNRt::get(e)?;
11358                let primary_stage0 = rt.engine(0, e).ctx().ordinal() == e.ctx().ordinal();
11359                let primary_stage1 = rt.engine(1, e).ctx().ordinal() == e.ctx().ordinal();
11360                let primary_supported =
11361                    primary_stage0 || (fork_mode == OptiForkGateMode::Controller && primary_stage1);
11362                if !rt.cross_device() || !primary_supported {
11363                    OPTI_FORK_REFUSALS.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
11364                    eprintln!("[opti-fork] refused reason=requires-supported-primary-cross-device");
11365                } else {
11366                    // Both recurrent snapshots and both seed generations are allocated before
11367                    // the first fork, each through its owning PP stage. Allocation failure
11368                    // therefore happens before any optimistic state mutation can occur.
11369                    let current_snapshot = opti_snapshot_stage_owned(e, cache, rt, &fence)?;
11370                    let alternate_snapshot = opti_snapshot_stage_owned(e, cache, rt, &fence)?;
11371                    let fork = OptiForkState::new(
11372                        e,
11373                        cache,
11374                        fork_mode,
11375                        alternate_snapshot,
11376                        &h_seed_buf,
11377                        &fill_prev,
11378                        rt,
11379                        fence[1],
11380                        self.layers.len(),
11381                    )?;
11382                    eprintln!(
11383                        "[opti-fork] armed mode={fork_mode:?} snapshots=2 seeds=2 split={} \
11384                         payload_dev0={} payload_dev1={} q_threshold={:.3}",
11385                        fence[1],
11386                        fork.logical_payload_bytes[0],
11387                        fork.logical_payload_bytes[1],
11388                        fork.controller.map_or(0.0, |policy| policy.threshold),
11389                    );
11390                    fork_snapshot = Some(current_snapshot);
11391                    opti_fork = Some(fork);
11392                }
11393            }
11394        }
11395        // Persistent snapshot buffers are allocated once and refreshed in place. The fork arm
11396        // uses stage-owned snapshots; refused/disabled arms retain the existing generic helper.
11397        let mut snap = match fork_snapshot {
11398            Some(snapshot) => snapshot,
11399            None => cache.snapshot(e)?,
11400        };
11401        let mut carried_opti: Option<OptiControllerTicket> = None;
11402        // ROUND-STREAM stage (b) 3a: device table of per-layer kvl.len_d pointers (stable — the
11403        // cache never reallocates len_d; see cache.rs "stable pointer" note). 0 = no KV layer.
11404        let kv_len_ptrs: Option<CudaSlice<u64>> = if spec_devacc() && !spec_replay {
11405            Some(crate::round_stream::kv_len_ptr_table(e, cache, None)?)
11406        } else {
11407            None
11408        };
11409        // BONUS FOLD (2026-07-04): after a FULL accept the bonus token is NOT committed with a
11410        // separate T=1 trunk pass (a full weight read per round). It stays PENDING and rides as
11411        // column 0 of the NEXT round's verify batch. Under predecessor pairing the next chain
11412        // seeds from the bonus's predecessor's TRUE verify hidden (free — no extra
11413        // pass of any kind). Verify still
11414        // checks every emitted token against the target -> exactness holds by construction; only
11415        // DRAFT QUALITY can shift, which the acceptance numbers arbitrate.
11416        // bonus emitted but not yet committed to cache. A carried pending (see SpecSession::
11417        // pending_tok) enters round 0 directly — the burst boundary becomes a plain round edge.
11418        let mut pending: Option<u32> = carried_pending;
11419        // MEMRA_SPEC_PHASE=1: per-round wall decomposition (draft / verify / accept+commit) —
11420        // no tracing, no extra syncs (each phase is naturally sync-bounded: draft readbacks,
11421        // the verify accept readback). Printed once at loop end via spec-stats.
11422        let anatomy_on = std::env::var("MEMRA_SPEC_PP_ANATOMY").as_deref() == Ok("1");
11423        let phase_on = anatomy_on || std::env::var("MEMRA_SPEC_PHASE").as_deref() == Ok("1");
11424        // DRAFT-MASK receipt (lane/draft-mask): speculative-clone wall + rounds, printed with
11425        // spec-stats. The clone is the one cost the design adds per round — measured, not assumed.
11426        let (mut dm_clone_ns, mut dm_rounds) = (0u128, 0usize);
11427        // grammar-truncation counters: how many rounds the verify-side cut fired and how many
11428        // already-verified tokens it threw away. THIS is the quantity draft masking targets.
11429        let (mut dm_cuts, mut dm_cut_tokens) = (0usize, 0usize);
11430        let (mut ph_draft, mut ph_verify, mut ph_rest) = (0f64, 0f64, 0f64);
11431        let mut ph_wait = 0f64;
11432        let mut ph_commit = 0f64;
11433        let mut ph_t = std::time::Instant::now();
11434        let mut ph_mark = |acc: &mut f64, on: bool| {
11435            if on {
11436                let now = std::time::Instant::now();
11437                *acc += (now - ph_t).as_secs_f64();
11438                ph_t = now;
11439            }
11440        };
11441        // MTP-ROUTE VERIFY GRAPHS (`MEMRA_SPEC_VERIFY_GRAPH`, see the flag doc): the
11442        // model-owned capture pool, locked for the whole burst exactly as the dspark serve
11443        // arm holds it — the slab stash is live verify -> commit inside a round, and the
11444        // worker drives rounds from one scheduler thread. PERSISTENT across generations on
11445        // the model (rebuilding per call re-captures the pool per prompt, which is the
11446        // measured way to lose more than the launches cost); the captured bodies are
11447        // cache-independent, every state read going through per-round refreshed pointer
11448        // tables. None = the eager walk, byte-identical.
11449        //
11450        // Never armed together with ROUND-STREAM: the tparallel verify refuses that pair
11451        // loudly, and `stream_active` owns the burst arm above, so the door stays shut
11452        // whenever the stream is live rather than relying on that refusal.
11453        // The lock is taken ONLY when the door is armed: with the flag off this whole block
11454        // is inert, so the default path cannot serialize two spec generations behind a mutex
11455        // it never reads.
11456        let vg_armed =
11457            crate::spec::spec_verify_graph_env().unwrap_or_else(|| self.vgraph_family_default());
11458        let mut vg_guard = if vg_armed && !stream_active {
11459            let mut g = self.dspark_vgraphs.lock().unwrap();
11460            if g.is_none() {
11461                // Size by the WIDEST verify this run can present, which is k+1 and NOT
11462                // k_cap+1: the sampled arm's own window is `t_v_s = k + 1`, so a pool built
11463                // from a smaller adaptive cap gets sliced past its stash rows (a `slice_mut`
11464                // panic in the sampled ON arm, measured before this line said k+1).
11465                let vt_cap = (k.max(k_cap) + 1).max(2);
11466                *g = DsparkVerifyGraphs::new(e, cache, vt_cap, n_embd)?;
11467                if g.is_some() {
11468                    // Engagement receipt (the dead-arm lesson): prove the door is LIVE rather
11469                    // than trusting that a flag set means a pool built.
11470                    eprintln!("[spec-vg] MTP verify-graph pool ENGAGED (vt_cap={vt_cap})");
11471                } else {
11472                    eprintln!(
11473                        "[spec-vg] MTP verify-graph pool declined (no linear layers, \
11474                         non-uniform state, or vt_cap < 2) — eager walk"
11475                    );
11476                }
11477            }
11478            Some(g)
11479        } else {
11480            None
11481        };
11482        // Capacity fail-safe: a round wider than the pool was built for must take the eager
11483        // walk, not slice the stash past its rows. The sizing above already covers every
11484        // round this run can present; this keeps a future caller (or a k that grows behind
11485        // the pool's back) on the byte-identical fallback instead of a panic.
11486        let vg_t_cap = vg_guard
11487            .as_ref()
11488            .and_then(|g| g.as_ref())
11489            .map(|g| g.t_capacity())
11490            .unwrap_or(0);
11491        if let Some(p) = pipe {
11492            p.setup_end();
11493        }
11494        while keep_going && out.len() < max_new {
11495            // ROUND-STREAM BURST: from round 1 (pending guaranteed by every non-replay arm),
11496            // issue M rounds with zero readbacks, then drain the ring + reconcile mirrors.
11497            if let (true, Some(sg), Some(ptrs)) = (
11498                stream_active && round >= 1 && pending.is_some(),
11499                &stream_graph,
11500                &stream_ptrs,
11501            ) {
11502                if debug_spec {
11503                    static ONCE: std::sync::Once = std::sync::Once::new();
11504                    ONCE.call_once(|| {
11505                        eprintln!("[memra] ROUND-STREAM burst engaged (M={m_rounds} k={k})")
11506                    });
11507                }
11508                e.set_i32_one(&mut pos_ctr, cache.pos as i32)?;
11509                e.set_u32_one(&mut pend_d, pending.unwrap())?;
11510                e.set_u32_one(&mut ring_d, 0)?; // ring count = 0 (writes element 0)
11511                for _mi in 0..m_rounds {
11512                    e.i32_copy_add(&pos_ctr, &mut pos_start_d, 0)?;
11513                    cache.snapshot_into(e, &mut snap)?; // device D2Ds, stream-ordered
11514                    e.i32_copy_add(&pos_ctr, &mut scratch.kv.len_d, 0)?; // draft-KV rollback
11515                    e.i32_copy_add(&pos_ctr, &mut dctx.g_pos, 1)?; // rope pos = pos + base
11516                    e.u32_copy(&pend_d, &mut dctx.g_tok)?;
11517                    e.copy_into(&mut dctx.g_seed, 0, &h_seed_buf, n_embd)?;
11518                    sg.launch()?;
11519                    e.spec_assemble_verify(
11520                        &g_tokp2k,
11521                        &pend_d,
11522                        d2t_dev.as_ref(),
11523                        &mut vtok_d,
11524                        &mut brk_d,
11525                        p_min,
11526                        k,
11527                        pmin0,
11528                    )?;
11529                    let mut ck = VerifyCkpt::new(self.layers.len());
11530                    let dummy = vec![0u32; t_v_s];
11531                    let (tl_d, vx) = self.decode_step_t_core_stream(
11532                        e,
11533                        &dummy,
11534                        0,
11535                        &mut *cache,
11536                        embd_dev,
11537                        Some(&mut ck),
11538                        Some((&vtok_d, &pos_ctr)),
11539                        None,
11540                        None,
11541                        None,
11542                    )?;
11543                    for j in 0..t_v_s {
11544                        e.argmax_token_device_col(&tl_d, j, n_vocab, &mut preds_d, j)?;
11545                    }
11546                    e.spec_accept_greedy_dc(
11547                        &preds_d,
11548                        &vtok_d,
11549                        &last_pred_d,
11550                        &brk_d,
11551                        &mut stream_acc,
11552                    )?;
11553                    e.spec_seed_gather(&vx, &fill_prev, &stream_acc, &mut h_seed_buf, 1, n_embd)?;
11554                    e.copy_into(&mut fill_prev, 0, &h_seed_buf, n_embd)?;
11555                    self.commit_verified_prefix_stream(
11556                        e,
11557                        &mut *cache,
11558                        &snap,
11559                        &ck,
11560                        &stream_acc,
11561                        1,
11562                        t_v_s,
11563                    )?;
11564                    e.spec_rollback_stream(
11565                        ptrs,
11566                        &pos_start_d,
11567                        &stream_acc,
11568                        1,
11569                        self.layers.len() + 1,
11570                    )?;
11571                    e.spec_ring_commit(&vtok_d, &stream_acc, &brk_d, &mut ring_d, &mut pend_d)?;
11572                }
11573                e.stream().synchronize()?;
11574                let ring_h = e.dtoh_u32(&ring_d)?;
11575                let cnt = ring_h[0] as usize;
11576                for i in 0..cnt {
11577                    if out.len() < max_new {
11578                        out.push(ring_h[1 + i]);
11579                    }
11580                }
11581                let pos_h = e.dtoh_i32(&pos_ctr)?[0] as usize;
11582                for il in 0..self.layers.len() {
11583                    if let Some(kvl) = cache.kv[il].as_mut() {
11584                        kvl.len = pos_h;
11585                    }
11586                }
11587                cache.pos = pos_h;
11588                scratch.kv.len = pos_h;
11589                pending = Some(ring_h[cnt]); // last drained token = the live bonus
11590                last_token = ring_h[cnt];
11591                total_drafted += k * m_rounds; // upper bound (p-min breaks uncounted)
11592                total_accepted += cnt.saturating_sub(m_rounds);
11593                if let Some(t) = sess_telem {
11594                    // totals only — the burst's per-round accept counts stayed on device
11595                    // (that is the point of the round-stream arm). pos_* untouched.
11596                    t.record_totals(m_rounds, k * m_rounds, cnt.saturating_sub(m_rounds));
11597                }
11598                round += m_rounds;
11599                // sse-cadence: the drained ring is committed — flush it at burst-drain cadence.
11600                keep_going = flush_commit(&mut on_commit, &out, &mut flushed);
11601                continue;
11602            }
11603            let pipe_draft = match pipe {
11604                Some(p) => Some(p.draft_begin(round)?),
11605                None => None,
11606            };
11607            let pos = cache.pos; // #tokens committed (EXCLUDES a pending bonus)
11608            let mut current_opti = carried_opti.take();
11609            let mut fork_generation = if current_opti.is_none() && pending.is_some() {
11610                match opti_fork.as_mut() {
11611                    Some(fork) if fork.mode.is_forced() => Some(fork.reserve(&mut snap)?),
11612                    None => None,
11613                    Some(_) => None,
11614                }
11615            } else {
11616                None
11617            };
11618            if current_opti.is_none() {
11619                if let Some(fork) = opti_fork.as_ref() {
11620                    opti_snapshot_stage_owned_into(e, cache, fork.rt, &fork.fence, &mut snap)?;
11621                } else {
11622                    cache.snapshot_into(e, &mut snap)?;
11623                }
11624            } else if snap.pos != pos {
11625                return Err(format!(
11626                    "optipipe carried snapshot pos {} != current pos {pos}",
11627                    snap.pos
11628                )
11629                .into());
11630            } // §C: snapshot BEFORE draft+verify (already retained for a carried successor)
11631            ph_mark(&mut ph_rest, phase_on);
11632
11633            // --- 1. DRAFT k tokens with the NextN head (autoregressive, T=1 each) ---
11634            // p-min semantics (both paths): stop the chain early when the head's confidence in
11635            // its own pick drops below p_min — the just-drafted token is DISCARDED, but its
11636            // scratch append stands (identical to the eager chain's ordering). j==0 always drafts.
11637            let base0 = if pending.is_some() { 1usize } else { 0usize };
11638            // fixed draft length by default; MEMRA_SPEC_ADAPT=1 drafts at last round's
11639            // accepted run + 1 (the gemma law — see the setup block above the loop).
11640            let k_this = if adapt { kc } else { k };
11641            let mut draft: Vec<u32> = Vec::with_capacity(k);
11642            let mut draft_idx: Vec<u32> = Vec::with_capacity(k); // trimmed-vocab ids (== draft when untrimmed)
11643            let mut controller_draft_prob: Option<f32> = None;
11644            let mut controller_eager_state: Option<(u32, CudaSlice<f32>)> = None;
11645            if let Some(ticket) = current_opti.as_mut() {
11646                let carried_pending = pending.ok_or("optipipe carried successor lost pending")?;
11647                if ticket.verify_tokens[0] != carried_pending {
11648                    return Err(format!(
11649                        "optipipe carried pending mismatch: ticket={} live={carried_pending}",
11650                        ticket.verify_tokens[0],
11651                    )
11652                    .into());
11653                }
11654                draft.push(ticket.verify_tokens[1]);
11655                controller_draft_prob = Some(ticket.draft_prob);
11656                controller_eager_state = ticket
11657                    .take_eager_seed()
11658                    .map(|seed| (ticket.verify_tokens[1], seed));
11659            } else {
11660                // Round-start draft-KV sync (BOTH paths). Persistent: truncate/align to the committed
11661                // history — slots 0..P hold entries for the tokens before last_token@P (P = pos +
11662                // base0 - 1); this single set_len IS the draft-side rollback (drops last round's
11663                // rejected drafts and p-min extras via the len mechanism).
11664                scratch.set_len(e, pos + base0 - 1)?;
11665                if pen_on {
11666                    // PEN_WINDOW_MAX also bounds the per-round upload and the O(n_hist^2)
11667                    // device dedup: the serve window is already PEN_WINDOW_MAX, and this
11668                    // defensive min also bounds non-server callers.
11669                    let win = sp.penalty_last_n.min(PEN_WINDOW_MAX);
11670                    let w0 = pen_hist.len().saturating_sub(win);
11671                    pen_hist_d = Some(e.htod_u32_v(&pen_hist[w0..])?);
11672                }
11673                if sampled {
11674                    draft_logits.clear();
11675                    draft_stats.clear();
11676                }
11677                // DRAFT-SIDE GRAMMAR MASK: clone the committed grammar state ONCE per round; each
11678                // position's mask is computed on that clone and advanced by the PROPOSED token. The
11679                // real state moves only on emission (verify's job), so the emitted stream is
11680                // unchanged — the mask only removes tokens the verify would have truncated anyway.
11681                let mut dmask_live = dmask_on;
11682                if dmask_live {
11683                    let t_c = std::time::Instant::now();
11684                    constraint
11685                        .as_deref_mut()
11686                        .unwrap()
11687                        .draft_begin()
11688                        .map_err(|e2| format!("constraint: {e2}"))?;
11689                    dm_clone_ns += t_c.elapsed().as_nanos();
11690                    dm_rounds += 1;
11691                }
11692                if let (false, Some(gr)) = (sampled || pen_on, &dctx.graph) {
11693                    // GRAPH DRAFT: one dispatch per drafted token. The chain feeds itself on-device
11694                    // (in-graph argmax -> tok_d -> next replay's embed; h_nextn -> h_seed_d; pos_d
11695                    // inc'd in-graph); the host only reads 4B token (+4B p) and decides the break.
11696                    e.set_i32_one(&mut dctx.g_pos, (pos + base0) as i32)?;
11697                    e.set_u32_one(&mut dctx.g_tok, last_token)?;
11698                    e.copy_into(&mut dctx.g_seed, 0, &h_seed_buf, n_embd)?;
11699                    for j in 0..k_this {
11700                        // per-position mask upload (contents only — the graph's baked pointer is
11701                        // dctx.g_dmask). All-ones once masking goes dead mid-chain, so the captured
11702                        // mask node degrades to a no-op ban instead of needing a second graph.
11703                        if dmask_live
11704                            && !upload_draft_mask(
11705                                e,
11706                                constraint.as_deref_mut().unwrap(),
11707                                &mut dctx.g_dmask,
11708                                mtp.d2t.as_ref(),
11709                                d_vocab,
11710                                dmask_words,
11711                            )?
11712                        {
11713                            // no draft-vocab row is grammar-legal here (a trimmed FR-Spec head can
11714                            // genuinely miss the legal set): neutralize the captured mask node and
11715                            // finish the chain UNMASKED — exactly pre-lane behaviour, never worse.
11716                            e.htod_u32_into(&mut dctx.g_dmask, &vec![u32::MAX; dmask_words])?;
11717                            dmask_live = false;
11718                        }
11719                        gr.launch()?;
11720                        scratch.kv.len += 1; // host mirror (len_d advanced in-graph)
11721                        let idx = e.dtoh_u32_one(&dctx.g_tok)?;
11722                        // #87 SENTINEL TRAP: an all-NaN head-logits row leaves the device argmax's
11723                        // init sentinel (0x7FFFFFFF) in g_tok — feeding it onward dereferences
11724                        // embed_row(sentinel) = table + ~4.6TB (never mapped) inside the NEXT graph
11725                        // replay's embed node, and the MMU fault kills the CUDA context for the
11726                        // whole process (research/pp2spec-crash-20260807: 3 coredumps, byte-exact
11727                        // VA arithmetic). Refuse loudly instead; the diagnostics name the first-NaN
11728                        // buffer (g_seed = the verify-side handoff vs head-side compute).
11729                        if (idx as usize) >= d_vocab {
11730                            // g_seed is SELF-FED (the replay writes h_nextn back into it), so it
11731                            // reads as the head's OUTPUT at j; h_seed_buf is the round's INPUT
11732                            // seed, untouched since the round-start copy — the pair discriminates
11733                            // "seed arrived poisoned" from "head forward produced NaN".
11734                            let seed_h = e.dtoh(&dctx.g_seed)?;
11735                            let seed_nan = seed_h.iter().filter(|v| v.is_nan()).count();
11736                            let in_h = e.dtoh(&h_seed_buf)?;
11737                            let in_nan = in_h.iter().filter(|v| v.is_nan()).count();
11738                            return Err(format!(
11739                                "draft(graph) argmax sentinel 0x{idx:08x} >= d_vocab {d_vocab} at \
11740                             round {round} j={j} pos={pos}: head-out NaN {seed_nan}/{n_embd}, \
11741                             round-input-seed NaN {in_nan}/{n_embd} — refusing to dereference \
11742                             the embed row (#87 trap)"
11743                            )
11744                            .into());
11745                        }
11746                        // trimmed draft vocab -> target token id (identity when no d2t map)
11747                        let d = match &mtp.d2t {
11748                            Some(map) => map[idx as usize],
11749                            None => idx,
11750                        };
11751                        let draft_p = if p_min > 0.0
11752                            || opti_fork
11753                                .as_ref()
11754                                .is_some_and(|fork| fork.controller.is_some())
11755                        {
11756                            Some(e.dtoh(&dctx.g_p)?[0])
11757                        } else {
11758                            None
11759                        };
11760                        if j == 0 {
11761                            controller_draft_prob = draft_p;
11762                        }
11763                        if let Some(p) = draft_p.filter(|_| p_min > 0.0) {
11764                            if p < p_min && (j > 0 || (pmin0 && base0 == 1)) {
11765                                break;
11766                            }
11767                        }
11768                        draft.push(d);
11769                        // with a trimmed head the NEXT embed must read the TARGET id, not the draft
11770                        // index the argmax wrote — patch the persistent token buffer (4B htod).
11771                        if d != idx {
11772                            e.set_u32_one(&mut dctx.g_tok, d)?;
11773                        }
11774                        // advance the SPECULATIVE state with the proposal; a dead chain drops to
11775                        // unmasked drafting for the remaining positions (verify still arbitrates).
11776                        // speculative advance; a chain the grammar can no longer follow (EOS
11777                        // proposed) ends here. The captured mask node always runs, so a dead chain
11778                        // leaves the buffer NEUTRAL (all-ones = ban nothing) before it exits.
11779                        if dmask_live
11780                            && !constraint
11781                                .as_deref_mut()
11782                                .unwrap()
11783                                .draft_advance(d)
11784                                .map_err(|e2| format!("constraint: {e2}"))?
11785                        {
11786                            e.htod_u32_into(&mut dctx.g_dmask, &vec![u32::MAX; dmask_words])?;
11787                            break;
11788                        }
11789                    }
11790                // PURE-TEMP RE-TEST (lane/graph-s-key-exactness-20260819): the sampled graph is
11791                // legal ONLY in the regime it was captured in. The condition used to read
11792                // `(sampled, &dctx.graph_s)` and trusted `s_key` to have dropped anything else —
11793                // which it could not, because the key omitted the filters. Both halves are now
11794                // enforced: the key drops a stale graph, and this site refuses to launch one.
11795                } else if let (true, Some(gr)) = (sampled && pure_temp, &dctx.graph_s) {
11796                    if skey_probe() {
11797                        eprintln!(
11798                            "[skey] chain=graph_s round={round} pure_temp={} top_k={} \
11799                             top_p={} min_p={} s_key_parked={:?}",
11800                            pure_temp as u8, sp.top_k, sp.top_p, sp.min_p, dctx.s_key,
11801                        );
11802                    }
11803                    // SAMPLED GRAPH DRAFT: one replay per drafted token — head forward + gumbel +
11804                    // argmax in ONE dispatch; the host reads 4B token (+4B p), D2Ds q into slot j,
11805                    // and decides the break. Event-counter continuity: g_ctr is host-seeded to
11806                    // sctr-1 ONCE per round (outside the graph); the in-graph bump runs BEFORE the
11807                    // perturb, so replay j consumes counter sctr+j — exactly the eager arm's Philox
11808                    // stream. Host sctr advances in lockstep (computed, no readback needed).
11809                    e.set_i32_one(&mut dctx.g_pos, (pos + base0) as i32)?;
11810                    e.set_u32_one(&mut dctx.g_tok, last_token)?;
11811                    e.copy_into(&mut dctx.g_seed, 0, &h_seed_buf, n_embd)?;
11812                    e.set_u32_one(&mut dctx.g_ctr, sctr.wrapping_sub(1))?;
11813                    for j in 0..k_this {
11814                        gr.launch()?;
11815                        scratch.kv.len += 1; // host mirror (len_d advanced in-graph)
11816                        sctr += 1; // mirrors the in-graph g_ctr bump (eager parity:
11817                        // counts the p-min-discarded token too)
11818                        // q retention: ONE async D2D of the persistent head-logits buffer into this
11819                        // round's slot j (stream-ordered after the replay, before the next one).
11820                        e.copy_into(&mut dctx.q_slots[j], 0, &dctx.g_q, d_vocab)?;
11821                        let idx = e.dtoh_u32_one(&dctx.g_tok)?;
11822                        // #87 SENTINEL TRAP (see the greedy graph arm above).
11823                        if (idx as usize) >= d_vocab {
11824                            let seed_h = e.dtoh(&dctx.g_seed)?;
11825                            let seed_nan = seed_h.iter().filter(|v| v.is_nan()).count();
11826                            return Err(format!(
11827                                "draft(graph-sampled) argmax sentinel 0x{idx:08x} >= d_vocab \
11828                             {d_vocab} at round {round} j={j} pos={pos}: round-seed NaN \
11829                             {seed_nan}/{n_embd} — refusing to dereference the embed row \
11830                             (#87 trap)"
11831                            )
11832                            .into());
11833                        }
11834                        let d = match &mtp.d2t {
11835                            Some(map) => map[idx as usize],
11836                            None => idx,
11837                        };
11838                        draft_idx.push(idx);
11839                        if p_min > 0.0 {
11840                            let p = e.dtoh(&dctx.g_p)?[0];
11841                            if p < p_min && (j > 0 || (pmin0 && base0 == 1)) {
11842                                break;
11843                            }
11844                        }
11845                        draft.push(d);
11846                        // trimmed head: the NEXT embed must read the TARGET id (see the greedy arm).
11847                        if d != idx {
11848                            e.set_u32_one(&mut dctx.g_tok, d)?;
11849                        }
11850                    }
11851                    // uniform accept path: fill draft_stats per used slot (pure-temp regime — the
11852                    // stats degenerate to th=0 / full-Z; one filter_stats launch per slot, tiny).
11853                    for j in 0..draft.len().max(draft_idx.len()) {
11854                        let rows0 = e.htod_i32(&[0])?;
11855                        let (mut th_d, mut z_d, mut mx_d) = (e.zeros(1)?, e.zeros(1)?, e.zeros(1)?);
11856                        e.filter_stats(
11857                            &dctx.q_slots[j],
11858                            d_vocab,
11859                            &rows0,
11860                            &mut th_d,
11861                            &mut z_d,
11862                            &mut mx_d,
11863                            d_vocab,
11864                            1,
11865                            sp_temp,
11866                            sp.top_k,
11867                            sp.top_p,
11868                            sp.min_p,
11869                        )?;
11870                        draft_stats.push((e.dtoh(&mx_d)?[0], e.dtoh(&th_d)?[0], e.dtoh(&z_d)?[0]));
11871                    }
11872                } else {
11873                    if skey_probe() && sampled {
11874                        eprintln!(
11875                            "[skey] chain=eager round={round} pure_temp={} top_k={} \
11876                             top_p={} min_p={} s_key_parked={:?}",
11877                            pure_temp as u8, sp.top_k, sp.top_p, sp.min_p, dctx.s_key,
11878                        );
11879                    }
11880                    // EAGER DRAFT (fallback: MoE head/trunk, huge k, MEMRA_SPEC_NOGRAPH, capture fail).
11881                    let chain_heads = !self.mtp_extra.is_empty();
11882                    let mut e_tok = last_token;
11883                    let mut d_seed = e.clone_dtod(&h_seed_buf)?;
11884                    let mut chain_tokens = if chain_heads {
11885                        vec![last_token]
11886                    } else {
11887                        Vec::new()
11888                    };
11889                    let mut chain_seeds = if chain_heads {
11890                        vec![e.clone_dtod(&h_seed_buf)?]
11891                    } else {
11892                        Vec::new()
11893                    };
11894                    for j in 0..k_this {
11895                        // GPU-ARGMAX DRAFT (2026-07-03): device logits + device argmax + 4-byte token
11896                        // read instead of the ~600KB full-vocab dtoh + host argmax per draft token.
11897                        let mtp_pos = pos + base0 + j;
11898                        // draft-side grammar mask (eager twin of the graph arm's in-graph node).
11899                        // A position with no legal draft-vocab row drops to unmasked drafting for
11900                        // the rest of the chain (pre-lane behaviour; verify still arbitrates).
11901                        if dmask_live {
11902                            dmask_live = upload_draft_mask(
11903                                e,
11904                                constraint.as_deref_mut().unwrap(),
11905                                &mut dctx.g_dmask,
11906                                mtp.d2t.as_ref(),
11907                                d_vocab,
11908                                dmask_words,
11909                            )?;
11910                        }
11911                        let mask = if dmask_live {
11912                            Some((&dctx.g_dmask, dmask_words))
11913                        } else {
11914                            None
11915                        };
11916                        let (dl_d, h_nextn) = if chain_heads {
11917                            if debug_spec {
11918                                eprintln!(
11919                                    "[mtp-chain-step] round={round} j={j} head={} replay_rows={}",
11920                                    mtp_chain_head_index(j, self.mtp_head_count()),
11921                                    chain_tokens.len(),
11922                                );
11923                            }
11924                            self.mtp_chain_forward_dev(
11925                                e,
11926                                &chain_tokens,
11927                                &chain_seeds,
11928                                &mut *scratch,
11929                                pos + base0 - 1,
11930                                embd_dev,
11931                                mask,
11932                            )?
11933                        } else {
11934                            self.mtp_head_forward_dev(
11935                                e,
11936                                mtp,
11937                                e_tok,
11938                                &d_seed,
11939                                &mut *scratch,
11940                                mtp_pos,
11941                                embd_dev,
11942                                mask,
11943                            )?
11944                        };
11945                        let tok_d = if sampled {
11946                            // FILTERED Gumbel-max: stats -> masked perturb -> argmax = one draw from
11947                            // the filtered softmax (filters off => th=0, exact v1 semantics).
11948                            if perturb_buf.is_none() {
11949                                perturb_buf = Some(e.zeros(d_vocab.max(n_vocab))?);
11950                            }
11951                            let mut q_row = e.clone_dtod(&dl_d)?; // retained q (penalized when on)
11952                            if pen_on {
11953                                let h = pen_hist_d.as_ref().unwrap();
11954                                let nh = h.len();
11955                                e.penalize_logits(
11956                                    &mut q_row,
11957                                    h,
11958                                    nh,
11959                                    sp.penalty_repeat,
11960                                    sp.penalty_freq,
11961                                    sp.penalty_present,
11962                                    d_vocab,
11963                                )?;
11964                            }
11965                            let rows0 = e.htod_i32(&[0])?;
11966                            let (mut th_d, mut z_d, mut mx_d) =
11967                                (e.zeros(1)?, e.zeros(1)?, e.zeros(1)?);
11968                            e.filter_stats(
11969                                &q_row, d_vocab, &rows0, &mut th_d, &mut z_d, &mut mx_d, d_vocab,
11970                                1, sp_temp, sp.top_k, sp.top_p, sp.min_p,
11971                            )?;
11972                            let (th, z, mx) =
11973                                (e.dtoh(&th_d)?[0], e.dtoh(&z_d)?[0], e.dtoh(&mx_d)?[0]);
11974                            let pb = perturb_buf.as_mut().unwrap();
11975                            e.gumbel_perturb_filtered(
11976                                &q_row, pb, d_vocab, sp_seed, sctr, sp_temp, mx, th,
11977                            )?;
11978                            sctr += 1;
11979                            draft_logits.push(q_row);
11980                            draft_stats.push((mx, th, z));
11981                            e.argmax_token_device(pb, d_vocab)?
11982                        } else {
11983                            e.argmax_token_device(&dl_d, d_vocab)?
11984                        };
11985                        let idx = e.dtoh_u32_one(&tok_d)?;
11986                        // #87 SENTINEL TRAP (eager twin — see the graph arm). Extra diagnostics
11987                        // here because the eager chain's operands are all readable: dl_d (the head
11988                        // logits row) and d_seed (this step's h_seed) name the first-NaN buffer.
11989                        if (idx as usize) >= d_vocab {
11990                            let dl_h = e.dtoh(&dl_d)?;
11991                            let dl_nan = dl_h.iter().filter(|v| v.is_nan()).count();
11992                            let seed_h = if chain_heads {
11993                                e.dtoh(chain_seeds.last().unwrap())?
11994                            } else {
11995                                e.dtoh(&d_seed)?
11996                            };
11997                            let seed_nan = seed_h.iter().filter(|v| v.is_nan()).count();
11998                            return Err(format!(
11999                                "draft(eager) argmax sentinel 0x{idx:08x} >= d_vocab {d_vocab} at \
12000                             round {round} j={j} pos={pos}: head-logits NaN {dl_nan}/{d_vocab}, \
12001                             step-seed NaN {seed_nan}/{n_embd} — refusing to dereference the \
12002                             embed row (#87 trap)"
12003                            )
12004                            .into());
12005                        }
12006                        let d = match &mtp.d2t {
12007                            Some(map) => map[idx as usize],
12008                            None => idx,
12009                        };
12010                        if sampled {
12011                            draft_idx.push(idx);
12012                        }
12013                        let draft_p = if p_min > 0.0
12014                            || opti_fork
12015                                .as_ref()
12016                                .is_some_and(|fork| fork.controller.is_some())
12017                        {
12018                            let p_d = e.prob_of_token_device(&dl_d, &tok_d, d_vocab)?;
12019                            Some(e.dtoh(&p_d)?[0])
12020                        } else {
12021                            None
12022                        };
12023                        if j == 0 {
12024                            controller_draft_prob = draft_p;
12025                        }
12026                        if let Some(p) = draft_p.filter(|_| p_min > 0.0) {
12027                            if p < p_min && (j > 0 || (pmin0 && base0 == 1)) {
12028                                break;
12029                            }
12030                        }
12031                        draft.push(d);
12032                        if chain_heads {
12033                            chain_tokens.push(d);
12034                            chain_seeds.push(h_nextn);
12035                        } else {
12036                            e_tok = d;
12037                            d_seed = h_nextn;
12038                        }
12039                        // speculative advance; a chain the grammar can no longer follow (EOS
12040                        // proposed) ends here — the prefix already proposed still rides verify.
12041                        if dmask_live
12042                            && !constraint
12043                                .as_deref_mut()
12044                                .unwrap()
12045                                .draft_advance(d)
12046                                .map_err(|e2| format!("constraint: {e2}"))?
12047                        {
12048                            break;
12049                        }
12050                    }
12051                    if !chain_heads
12052                        && opti_fork
12053                            .as_ref()
12054                            .is_some_and(|fork| fork.controller.is_some())
12055                    {
12056                        controller_eager_state = Some((e_tok, d_seed));
12057                    }
12058                }
12059            }
12060            let k_round = draft.len();
12061            if let Some(p) = pipe {
12062                p.draft_end(round);
12063            }
12064            drop(pipe_draft);
12065
12066            ph_mark(&mut ph_draft, phase_on);
12067            // --- 2. VERIFY: one batched target forward. With a pending bonus, it rides as col 0
12068            //         (committing its KV/recur inside the SAME weight read); drafts follow. ---
12069            let verify_tokens: Vec<u32> = match pending {
12070                Some(b) => {
12071                    let mut v = Vec::with_capacity(k_round + 1);
12072                    v.push(b);
12073                    v.extend_from_slice(&draft);
12074                    v
12075                }
12076                None => draft.clone(),
12077            };
12078            let base = if pending.is_some() { 1 } else { 0 };
12079            // ckpt (REPLAY-FREE partial accept): retain per-layer state-rebuild inputs alongside
12080            // the verify. Pure buffer keep-alives + dtod clones — kernel work is unchanged.
12081            let mut ckpt = if let Some(ticket) = current_opti.as_mut() {
12082                Some(ticket.take_ckpt())
12083            } else if spec_replay {
12084                None
12085            } else {
12086                Some(VerifyCkpt::new(self.layers.len()))
12087            };
12088            let controller_can_probe = base == 1
12089                && k_round == 1
12090                && out.len().saturating_add(2) < max_new
12091                && controller_draft_prob.is_some()
12092                && opti_fork
12093                    .as_ref()
12094                    .and_then(|fork| fork.controller.as_ref())
12095                    .is_some_and(|policy| !policy.breaker_tripped);
12096            let mut successor_attempt: Option<OptiControllerTicket> = None;
12097            let mut rejected_probe: Option<(f32, u32)> = None;
12098            let mut controller_prepared: Option<OptiControllerPrepared> = None;
12099            if controller_can_probe {
12100                // Prepare d2/q and, on admission, d3 before either current verify half is
12101                // issued. N stage 0 can then be followed immediately by N+1 stage 0; once N's
12102                // boundary fires, those dev0 launches overlap N stage 1 on dev1. Preparing on
12103                // the primary stream after N stage 1 would serialize the supposed pipeline.
12104                let eager_pos = scratch.kv.len + 1;
12105                let (optimistic_pending, pending_probability) = self.opti_controller_draft_step(
12106                    e,
12107                    mtp,
12108                    &mut dctx,
12109                    &mut *scratch,
12110                    d_vocab,
12111                    &mut controller_eager_state,
12112                    eager_pos,
12113                    embd_dev,
12114                )?;
12115                let first_probability = controller_draft_prob
12116                    .ok_or("optipipe controller probe lost first-token probability")?;
12117                let q_proxy = first_probability * pending_probability;
12118                OPTI_GATE_CHECKS.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
12119                OPTI_SHADOW_DRAFT_TOKENS.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
12120                let admitted = opti_fork
12121                    .as_ref()
12122                    .and_then(|fork| fork.controller.as_ref())
12123                    .ok_or("optipipe controller policy disappeared")?
12124                    .admit(q_proxy);
12125                if admitted {
12126                    OPTI_GATE_ADMITS.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
12127                    let eager_pos = scratch.kv.len + 1;
12128                    let (optimistic_draft, optimistic_draft_probability) = self
12129                        .opti_controller_draft_step(
12130                            e,
12131                            mtp,
12132                            &mut dctx,
12133                            &mut *scratch,
12134                            d_vocab,
12135                            &mut controller_eager_state,
12136                            eager_pos,
12137                            embd_dev,
12138                        )?;
12139                    OPTI_SHADOW_DRAFT_TOKENS.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
12140                    let eager_seed = controller_eager_state.take().map(|(token, seed)| {
12141                        debug_assert_eq!(token, optimistic_draft);
12142                        seed
12143                    });
12144                    controller_prepared = Some(OptiControllerPrepared {
12145                        verify_tokens: [optimistic_pending, optimistic_draft],
12146                        draft_prob: optimistic_draft_probability,
12147                        eager_seed,
12148                        q_proxy,
12149                        scratch_len: scratch.kv.len,
12150                    });
12151                } else {
12152                    OPTI_GATE_REJECTS.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
12153                    OPTI_WASTED_DRAFT_TOKENS.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
12154                    rejected_probe = Some((q_proxy, optimistic_pending));
12155                    eprintln!(
12156                        "[opti-controller] reject q={q_proxy:.6} threshold={:.3}",
12157                        opti_fork
12158                            .as_ref()
12159                            .and_then(|fork| fork.controller.as_ref())
12160                            .expect("controller policy")
12161                            .threshold,
12162                    );
12163                }
12164            }
12165            let fork_attempt = match fork_generation.take() {
12166                Some(generation) if base == 1 && k_round == 1 => Some(generation),
12167                Some(generation) => {
12168                    opti_fork
12169                        .as_mut()
12170                        .expect("fork generation without fork state")
12171                        .retire(generation)?;
12172                    None
12173                }
12174                None => None,
12175            };
12176            let (tlogits_d, vx) = if let Some(p) = pipe {
12177                self.decode_step_t_core_pipelined(
12178                    e,
12179                    &verify_tokens,
12180                    pos,
12181                    &mut *cache,
12182                    embd_dev,
12183                    ckpt.as_mut(),
12184                    p,
12185                    round,
12186                )?
12187            } else if controller_can_probe {
12188                let fence = opti_fork
12189                    .as_ref()
12190                    .ok_or("optipipe controller probe lost fork state")?
12191                    .fence;
12192                let boundary = match current_opti.as_mut() {
12193                    Some(ticket) => ticket.take_boundary(),
12194                    None => self.verify_stage0_issue(
12195                        e,
12196                        &verify_tokens,
12197                        pos,
12198                        &mut *cache,
12199                        embd_dev,
12200                        ckpt.as_mut(),
12201                        None,
12202                        &fence,
12203                        Some(true),
12204                        None,
12205                    )?,
12206                };
12207                if let Some(prepared) = controller_prepared.take() {
12208                    let generation = {
12209                        let fork = opti_fork
12210                            .as_mut()
12211                            .ok_or("optipipe controller admission lost fork state")?;
12212                        let generation = fork.reserve_successor()?;
12213                        let rt = fork.rt;
12214                        let snapshot_fence = fork.fence;
12215                        opti_snapshot_one_stage_owned_into(
12216                            e,
12217                            cache,
12218                            rt,
12219                            &snapshot_fence,
12220                            0,
12221                            fork.successor_snapshot_mut(),
12222                        )?;
12223                        generation
12224                    };
12225                    let mut successor_ckpt = VerifyCkpt::new(self.layers.len());
12226                    let successor_boundary = self.verify_stage0_issue(
12227                        e,
12228                        &prepared.verify_tokens,
12229                        pos + verify_tokens.len(),
12230                        &mut *cache,
12231                        embd_dev,
12232                        Some(&mut successor_ckpt),
12233                        None,
12234                        &fence,
12235                        Some(false),
12236                        None,
12237                    )?;
12238                    OPTI_FORK_ATTEMPTS.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
12239                    let fork = opti_fork
12240                        .as_ref()
12241                        .ok_or("optipipe controller ticket lost fork state")?;
12242                    successor_attempt = Some(fork.controller_ticket(
12243                        generation,
12244                        successor_boundary,
12245                        successor_ckpt,
12246                        prepared.verify_tokens,
12247                        prepared.draft_prob,
12248                        prepared.eager_seed,
12249                        prepared.q_proxy,
12250                        prepared.scratch_len,
12251                    ));
12252                    eprintln!(
12253                        "[opti-controller] issue generation={} q={:.6} threshold={:.3} \
12254                         verify={:?}",
12255                        generation.id,
12256                        prepared.q_proxy,
12257                        fork.controller.expect("controller policy").threshold,
12258                        prepared.verify_tokens,
12259                    );
12260                }
12261                let result = self.verify_stage1_finish(
12262                    e,
12263                    boundary,
12264                    &mut *cache,
12265                    ckpt.as_mut(),
12266                    None,
12267                    &fence,
12268                    successor_attempt.is_none(),
12269                )?;
12270                if let Some(ticket) = current_opti.as_mut() {
12271                    ticket.settle();
12272                }
12273                if successor_attempt.is_some() {
12274                    let fork = opti_fork
12275                        .as_mut()
12276                        .ok_or("optipipe successor snapshot lost fork state")?;
12277                    let rt = fork.rt;
12278                    let snapshot_fence = fork.fence;
12279                    opti_snapshot_one_stage_owned_into(
12280                        e,
12281                        cache,
12282                        rt,
12283                        &snapshot_fence,
12284                        1,
12285                        fork.successor_snapshot_mut(),
12286                    )?;
12287                    // Publish N only after both independent successor-state queues are complete.
12288                    fork.rt.publish_to(1, &e.stream())?;
12289                }
12290                result
12291            } else if let Some(ticket) = current_opti.as_mut() {
12292                let fork = opti_fork
12293                    .as_mut()
12294                    .ok_or("optipipe carried controller ticket lost fork state")?;
12295                let boundary = ticket.take_boundary();
12296                let result = self.verify_stage1_finish(
12297                    e,
12298                    boundary,
12299                    &mut *cache,
12300                    ckpt.as_mut(),
12301                    None,
12302                    &fork.fence,
12303                    true,
12304                )?;
12305                ticket.settle();
12306                result
12307            } else if let Some(generation) = fork_attempt {
12308                let fork = opti_fork
12309                    .as_mut()
12310                    .expect("fork generation without fork state");
12311                fork.capture_seed(e, generation, &h_seed_buf, &fill_prev, scratch.kv.len)?;
12312                let action = fork.mode.action(generation.id);
12313                let boundary = self.verify_stage0_issue(
12314                    e,
12315                    &verify_tokens,
12316                    pos,
12317                    &mut *cache,
12318                    embd_dev,
12319                    ckpt.as_mut(),
12320                    None,
12321                    &fork.fence,
12322                    Some(true),
12323                    None,
12324                )?;
12325                OPTI_FORK_ATTEMPTS.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
12326                let mut ticket = fork.ticket(generation, boundary);
12327                if action == OptiForkAction::Abort {
12328                    return Err(format!(
12329                        "optipipe forced abort with generation {} stage0 in flight",
12330                        generation.id,
12331                    )
12332                    .into());
12333                }
12334                fork.reconcile(
12335                    e,
12336                    &mut *cache,
12337                    &mut *scratch,
12338                    &snap,
12339                    &mut h_seed_buf,
12340                    &mut fill_prev,
12341                    generation,
12342                    action,
12343                    verify_tokens[0],
12344                )?;
12345                let result = if action == OptiForkAction::Hit {
12346                    let boundary = ticket.take_boundary();
12347                    self.verify_stage1_finish(
12348                        e,
12349                        boundary,
12350                        &mut *cache,
12351                        ckpt.as_mut(),
12352                        None,
12353                        &fork.fence,
12354                        true,
12355                    )?
12356                } else {
12357                    // The optimistic boundary slot has no reader. Re-run the unchanged serial
12358                    // verify only after E_restart published the restored stage-0 state.
12359                    self.decode_step_t_core(
12360                        e,
12361                        &verify_tokens,
12362                        pos,
12363                        &mut *cache,
12364                        embd_dev,
12365                        ckpt.as_mut(),
12366                    )?
12367                };
12368                ticket.settle();
12369                debug_assert_eq!(ticket.generation, generation);
12370                fork.retire(generation)?;
12371                result
12372            } else {
12373                // The serial verify every non-fork round takes — the MTP route's
12374                // verify-graph door. The pool is None unless MEMRA_SPEC_VERIFY_GRAPH armed
12375                // a pool above, and then the walk replays the captured trunk instead of
12376                // re-issuing it launch by launch.
12377                let vg_round = if verify_tokens.len() <= vg_t_cap {
12378                    vg_guard.as_mut().and_then(|g| g.as_mut())
12379                } else {
12380                    if let Some(g) = vg_guard.as_mut().and_then(|g| g.as_mut()) {
12381                        // The commit reads this flag to pick its arm; a round that declines
12382                        // the pool must not inherit a stale `true` from the round before it.
12383                        g.round_slab = false;
12384                    }
12385                    None
12386                };
12387                self.decode_step_t_core_vg(
12388                    e,
12389                    &verify_tokens,
12390                    pos,
12391                    &mut *cache,
12392                    embd_dev,
12393                    ckpt.as_mut(),
12394                    vg_round,
12395                )?
12396            };
12397            let pipe_accept = match pipe {
12398                Some(p) => Some(p.accept_begin(round)?),
12399                None => None,
12400            };
12401
12402            ph_mark(&mut ph_verify, phase_on);
12403            // --- 3. GREEDY ACCEPT (walk prefix, stop at first mismatch) ---
12404            // DEVICE-ARGMAX ACCEPT: argmax every verify column ON DEVICE (same 2-pass kernels +
12405            // smallest-index tie-break as host argmax, argmax_gate-validated) and read back ONE
12406            // [T] u32 — replaces the T x n_vocab f32 dtoh + T host argmaxes per round.
12407            // t_pred[j] = target's greedy prediction for the slot after draft[j-1] (j>=1) or after
12408            // last_token (j==0). With a pending bonus, col 0 IS the prediction after last_token
12409            // (== the bonus), so every index shifts by `base` and last_pred is unused.
12410            let t_v = verify_tokens.len();
12411            let mut preds: Vec<u32> = Vec::new();
12412            if !sampled {
12413                for j in 0..t_v {
12414                    e.argmax_token_device_col(&tlogits_d, j, n_vocab, &mut preds_d, j)?;
12415                }
12416                preds = e.dtoh_u32(&preds_d)?; // <- the verify-GPU wait lands here
12417                // #87 SENTINEL TRAP, verify side: a sentinel pred becomes the round's bonus =
12418                // next round's last_token = the next chain's embed lookup. Catch it at the
12419                // source with the column named — an all-NaN VERIFY column implicates the
12420                // stage-split trunk (decode_step_t_core_ppn), not the draft head.
12421                if let Some(bad) = preds[..t_v].iter().position(|&p| (p as usize) >= n_vocab) {
12422                    let col = &tlogits_d.slice(bad * n_vocab..(bad + 1) * n_vocab);
12423                    let mut probe = e.zeros(n_vocab)?;
12424                    e.copy_view_into(&mut probe, 0, col, n_vocab)?;
12425                    let col_h = e.dtoh(&probe)?;
12426                    let col_nan = col_h.iter().filter(|v| v.is_nan()).count();
12427                    return Err(format!(
12428                        "verify argmax sentinel 0x{:08x} >= n_vocab {n_vocab} at round {round} \
12429                         col {bad}/{t_v} pos={pos}: verify-logits col NaN {col_nan}/{n_vocab} \
12430                         — the stage-split verify produced a poisoned column (#87 trap)",
12431                        preds[bad]
12432                    )
12433                    .into());
12434                }
12435            }
12436            ph_mark(&mut ph_wait, phase_on);
12437            let t_pred = |j: usize| -> u32 {
12438                if j == 0 && base == 0 {
12439                    last_pred
12440                } else {
12441                    // GREEDY-ONLY: `preds` is filled under `if !sampled` above. The debug print
12442                    // used to call this from the sampled arm and panicked the worker; it now goes
12443                    // through `debug_t_pred0`. Keep the strict index here — in the greedy walk an
12444                    // out-of-range pred is a real bug, not something to paper over.
12445                    debug_assert!(
12446                        !sampled,
12447                        "t_pred is greedy-only: `preds` is empty in the sampled arm"
12448                    );
12449                    preds[base + j - 1]
12450                }
12451            };
12452            let mut devacc_seeded = false;
12453            let mut devacc_acc: Option<CudaSlice<u32>> = None;
12454            let (n_acc, bonus) = if !sampled {
12455                // ROUND-STREAM stage (a) (MEMRA_SPEC_DEVACC=1 opt-in): the walk runs ON DEVICE
12456                // (spec_accept_greedy, verbatim rule) and the host reads back 8B (n_acc, bonus)
12457                // instead of the [T] preds. Same sync count — machinery for stages (b)/(c),
12458                // gated on token identity vs the host walk (the arms below are bit-equal rules).
12459                if crate::spec::spec_devacc() && k_round > 0 && !spec_replay && constraint.is_none()
12460                {
12461                    let draft_d = e.htod_u32_v(&draft)?;
12462                    let mut acc_out = e.alloc_u32_zeroed(2)?;
12463                    e.spec_accept_greedy(
12464                        &preds_d,
12465                        &draft_d,
12466                        last_pred,
12467                        base,
12468                        k_round,
12469                        &mut acc_out,
12470                    )?;
12471                    devacc_acc = Some(acc_out.clone());
12472                    // stage (b): next-round seed gathered ON DEVICE from acc_out before the host
12473                    // ever reads n_acc (j=base+n_acc -> vx col j-1; j==0 -> fill_prev). The three
12474                    // non-replay commit arms skip their host-offset seed copies (guarded below);
12475                    // the legacy spec_replay arm keeps its own rx-based seeding (excluded here).
12476                    // NOTE: fill_prev is NOT updated here — the commit arms' TRUE-HIDDEN
12477                    // REFRESH reads the OLD fill_prev (predecessor of this round's verify batch);
12478                    // the update lands after the arms (devacc_seeded guard below).
12479                    e.spec_seed_gather(&vx, &fill_prev, &acc_out, &mut h_seed_buf, base, n_embd)?;
12480                    // 3a: KV lens roll back on device (len = saved + base + n_acc, all arms'
12481                    // unified rule; full accept rewrites the verify-left value). Host mirrors
12482                    // update after the readback; commit_verified_prefix skips its len_d writes.
12483                    if let Some(successor) = successor_attempt.as_ref() {
12484                        opti_fork
12485                            .as_mut()
12486                            .ok_or("optipipe successor reconcile lost fork state")?
12487                            .queue_actual_reconcile(
12488                                e,
12489                                &snap,
12490                                &acc_out,
12491                                successor.verify_tokens[0],
12492                                base,
12493                            )?;
12494                    } else if let Some(ptrs) = &kv_len_ptrs {
12495                        let saved: Vec<i32> = (0..self.layers.len())
12496                            .map(|il| snap.kv_len[il].map(|v| v as i32).unwrap_or(0))
12497                            .collect();
12498                        let saved_d = e.htod_i32(&saved)?;
12499                        e.spec_rollback_kv(ptrs, &saved_d, &acc_out, base, self.layers.len())?;
12500                    }
12501                    devacc_seeded = true;
12502                    let ab = e.dtoh_u32(&acc_out)?;
12503                    (ab[0] as usize, ab[1])
12504                } else {
12505                    let mut n_acc = 0usize;
12506                    for j in 0..k_round {
12507                        if t_pred(j) == draft[j] {
12508                            n_acc += 1;
12509                        } else {
12510                            break;
12511                        }
12512                    }
12513                    // bonus = target's own token at the first non-accepted slot. n_acc in 0..=k; t_pred
12514                    // is defined for j in 0..=k (j==0 -> last_logits, j>=1 -> col j-1, last col = k-1).
12515                    (n_acc, t_pred(n_acc))
12516                }
12517            } else {
12518                // --- SAMPLED ACCEPT (rejection sampling): u_j < p_j(x_j)/q_j(x_j) walk ---
12519                if col_buf.is_none() {
12520                    col_buf = Some(e.zeros(n_vocab)?);
12521                }
12522                // FILTERED p_j: per-verify-col stats (one batched filter_stats call), then the
12523                // filtered gather. j==0&&base==0 reads last_col (its own stats row appended).
12524                let mut pj = vec![0f32; k_round.max(1)];
12525                let mut col_stats: Vec<(f32, f32, f32)> = Vec::new(); // (max, th, z) per verify col used
12526                if k_round > 0 {
12527                    let mut ids: Vec<u32> = Vec::new();
12528                    let mut rows: Vec<i32> = Vec::new();
12529                    for j in 0..k_round {
12530                        if j > 0 || base == 1 {
12531                            ids.push(draft[j]);
12532                            rows.push((base + j) as i32 - 1);
12533                        }
12534                    }
12535                    if !ids.is_empty() {
12536                        let nr = rows.len();
12537                        // penalties: materialize the used columns into one contiguous penalized
12538                        // buffer (rows remapped 0..nr) so stats+gathers see the penalized p.
12539                        // penalties: materialize used columns contiguously, penalize all rows in
12540                        // one launch, and point stats+gathers at the penalized buffer (rows 0..nr).
12541                        let p_rows: Vec<i32> = if pen_on {
12542                            (0..nr as i32).collect()
12543                        } else {
12544                            rows.clone()
12545                        };
12546                        if pen_on {
12547                            if pcol_buf.as_ref().map(|b| b.len()).unwrap_or(0) < nr * n_vocab {
12548                                pcol_buf = Some(e.zeros(nr * n_vocab)?);
12549                            }
12550                            let pc = pcol_buf.as_mut().unwrap();
12551                            for (i2, &r) in rows.iter().enumerate() {
12552                                let c = r as usize;
12553                                e.copy_view_into(
12554                                    pc,
12555                                    i2 * n_vocab,
12556                                    &tlogits_d.slice(c * n_vocab..(c + 1) * n_vocab),
12557                                    n_vocab,
12558                                )?;
12559                            }
12560                            let h = pen_hist_d.as_ref().unwrap();
12561                            let nh = h.len();
12562                            e.penalize_logits_rows(
12563                                pc,
12564                                h,
12565                                nh,
12566                                sp.penalty_repeat,
12567                                sp.penalty_freq,
12568                                sp.penalty_present,
12569                                n_vocab,
12570                                nr,
12571                            )?;
12572                        }
12573                        let p_src: &CudaSlice<f32> = if pen_on {
12574                            pcol_buf.as_ref().unwrap()
12575                        } else {
12576                            &tlogits_d
12577                        };
12578                        let rowsd = e.htod_i32(&p_rows)?;
12579                        let (mut th_d, mut z_d, mut mx_d) =
12580                            (e.zeros(nr)?, e.zeros(nr)?, e.zeros(nr)?);
12581                        e.filter_stats(
12582                            p_src, n_vocab, &rowsd, &mut th_d, &mut z_d, &mut mx_d, n_vocab, nr,
12583                            sp_temp, sp.top_k, sp.top_p, sp.min_p,
12584                        )?;
12585                        let idsd = e.htod_u32_v(&ids)?;
12586                        let mut outd = e.zeros(nr)?;
12587                        e.softmax_gather_filtered(
12588                            p_src, n_vocab, &idsd, &rowsd, &th_d, &z_d, &mut outd, n_vocab, nr,
12589                            sp_temp,
12590                        )?;
12591                        let outv = e.dtoh(&outd)?;
12592                        let (thv, zv, mxv) = (e.dtoh(&th_d)?, e.dtoh(&z_d)?, e.dtoh(&mx_d)?);
12593                        let mut oi = 0usize;
12594                        for j in 0..k_round {
12595                            if j > 0 || base == 1 {
12596                                pj[j] = outv[oi];
12597                                oi += 1;
12598                            }
12599                        }
12600                        col_stats = (0..nr).map(|i| (mxv[i], thv[i], zv[i])).collect();
12601                    }
12602                    if base == 0 {
12603                        let lc: &CudaSlice<f32> = if pen_on {
12604                            if col_buf.is_none() {
12605                                col_buf = Some(e.zeros(n_vocab)?);
12606                            }
12607                            let cb = col_buf.as_mut().unwrap();
12608                            e.copy_into(
12609                                cb,
12610                                0,
12611                                last_col_logits
12612                                    .as_ref()
12613                                    .expect("sampled: last_col_logits unset"),
12614                                n_vocab,
12615                            )?;
12616                            let h = pen_hist_d.as_ref().unwrap();
12617                            let nh = h.len();
12618                            e.penalize_logits(
12619                                cb,
12620                                h,
12621                                nh,
12622                                sp.penalty_repeat,
12623                                sp.penalty_freq,
12624                                sp.penalty_present,
12625                                n_vocab,
12626                            )?;
12627                            col_buf.as_ref().unwrap()
12628                        } else {
12629                            last_col_logits
12630                                .as_ref()
12631                                .expect("sampled: last_col_logits unset")
12632                        };
12633                        let rows0 = e.htod_i32(&[0])?;
12634                        let (mut th_d, mut z_d, mut mx_d) = (e.zeros(1)?, e.zeros(1)?, e.zeros(1)?);
12635                        e.filter_stats(
12636                            lc, n_vocab, &rows0, &mut th_d, &mut z_d, &mut mx_d, n_vocab, 1,
12637                            sp_temp, sp.top_k, sp.top_p, sp.min_p,
12638                        )?;
12639                        let idsd = e.htod_u32_v(&[draft[0]])?;
12640                        let mut outd = e.zeros(1)?;
12641                        e.softmax_gather_filtered(
12642                            lc, n_vocab, &idsd, &rows0, &th_d, &z_d, &mut outd, n_vocab, 1, sp_temp,
12643                        )?;
12644                        pj[0] = e.dtoh(&outd)?[0];
12645                        last_col_stats =
12646                            Some((e.dtoh(&mx_d)?[0], e.dtoh(&th_d)?[0], e.dtoh(&z_d)?[0]));
12647                    }
12648                }
12649                // q source: the graph arm retained the head logits in the persistent q_slots;
12650                // the eager arm in per-round draft_logits clones. Same raw-logit values either way.
12651                // FILTERED q_j: stats from draft_stats (eager pushes in-chain; the graph arm
12652                // computes them post-replay — graph engages only filter/penalty-free, so the
12653                // stats degenerate to th=0/full-Z there, keeping ONE accept path).
12654                let q_bufs: &[CudaSlice<f32>] = if dctx.graph_s.is_some() {
12655                    &dctx.q_slots
12656                } else {
12657                    &draft_logits
12658                };
12659                let mut n_acc = 0usize;
12660                for j in 0..k_round {
12661                    let (qmx, qth, qz) = draft_stats[j];
12662                    let idsd = e.htod_u32_v(&[draft_idx[j]])?;
12663                    let rowsd = e.htod_i32(&[0])?;
12664                    let thd = e.htod(&[qth])?;
12665                    let zd = e.htod(&[qz])?;
12666                    let _ = qmx;
12667                    let mut outd = e.zeros(1)?;
12668                    e.softmax_gather_filtered(
12669                        &q_bufs[j], d_vocab, &idsd, &rowsd, &thd, &zd, &mut outd, d_vocab, 1,
12670                        sp_temp,
12671                    )?;
12672                    let qj = e.dtoh(&outd)?[0];
12673                    let u = host_u01(sp_seed, uctr);
12674                    uctr += 1;
12675                    let accept = (u as f64) * (qj as f64) < pj[j] as f64;
12676                    // SKEY PROBE: q == 0 for the token the draft actually proposed is the
12677                    // exactness signature (see `skey_probe`). Impossible when the draft was
12678                    // drawn from the same filtered distribution the verify reconstructs here;
12679                    // `u * 0 < p` makes it an UNCONDITIONAL accept whenever p > 0.
12680                    if skey_probe() && qj == 0.0 {
12681                        eprintln!(
12682                            "[skey] EXACTNESS q=0 round={round} j={j} draft_tok={} \
12683                             draft_idx={} p={:e} u={u} accepted={} th_z={:?}",
12684                            draft[j], draft_idx[j], pj[j], accept as u8, draft_stats[j],
12685                        );
12686                    }
12687                    if accept {
12688                        n_acc += 1;
12689                    } else {
12690                        break;
12691                    }
12692                }
12693                let bonus = if n_acc == k_round {
12694                    // FULL ACCEPT: bonus ~ FILTERED softmax at the last verify column.
12695                    let col = base + k_round - 1;
12696                    let cb = col_buf.as_mut().unwrap();
12697                    e.copy_view_into(
12698                        cb,
12699                        0,
12700                        &tlogits_d.slice(col * n_vocab..(col + 1) * n_vocab),
12701                        n_vocab,
12702                    )?;
12703                    if pen_on {
12704                        let h = pen_hist_d.as_ref().unwrap();
12705                        let nh = h.len();
12706                        e.penalize_logits(
12707                            cb,
12708                            h,
12709                            nh,
12710                            sp.penalty_repeat,
12711                            sp.penalty_freq,
12712                            sp.penalty_present,
12713                            n_vocab,
12714                        )?;
12715                    }
12716                    if perturb_buf.is_none() {
12717                        perturb_buf = Some(e.zeros(d_vocab.max(n_vocab))?);
12718                    }
12719                    // STATS MUST COME FROM THIS COLUMN (bug fix 2026-08-05, lane/sampler-
12720                    // truncation-fix; receipts research/sampfix-20260805/). The old code reused
12721                    // `col_stats.last()` here, which is ALWAYS the wrong row: the gathered set
12722                    // covers verify columns 0..=(base+k_round-2) (rows pushed as base+j-1), while
12723                    // the full-accept bonus samples column base+k_round-1 — exactly ONE PAST the
12724                    // last gathered column, in both base arms. `th` is a threshold in e-units of
12725                    // its OWN row's max, so feeding a neighbour's (row_max, th) into
12726                    // gumbel_perturb_filtered mis-scales every e0 = exp((x-row_max)/T). When the
12727                    // donor column's peak is higher by more than T*ln(1/th), EVERY id fails
12728                    // `e0 >= th`, the whole perturbed row becomes -3.4e38, and the 2-pass argmax
12729                    // falls through to its smallest-index tie-break => token id 0 ("!") spliced
12730                    // mid-word. Fragility is ordered by how large th is: min_p pins th = min_p
12731                    // (0.05 => trigger at delta > 2.4 at T=0.8, fires constantly), top_p's
12732                    // mass-boundary th is smaller, top_k's k-th-largest th smaller still — which
12733                    // is why the head-to-head matrix saw min_p and top_p corrupt while top_k-only
12734                    // stayed clean. The pure-temp default regime is immune (th == 0 masks nothing,
12735                    // and row_max is unused once nothing is masked), so this fix is a byte-level
12736                    // no-op for the untruncated serve default. One extra one-block filter_stats
12737                    // per full-accept round is the whole cost.
12738                    let (mx, th) = {
12739                        let rows0 = e.htod_i32(&[0])?;
12740                        let (mut th_d, mut z_d, mut mx_d) = (e.zeros(1)?, e.zeros(1)?, e.zeros(1)?);
12741                        let cb0 = col_buf.as_ref().unwrap();
12742                        e.filter_stats(
12743                            cb0, n_vocab, &rows0, &mut th_d, &mut z_d, &mut mx_d, n_vocab, 1,
12744                            sp_temp, sp.top_k, sp.top_p, sp.min_p,
12745                        )?;
12746                        (e.dtoh(&mx_d)?[0], e.dtoh(&th_d)?[0])
12747                    };
12748                    let pb = perturb_buf.as_mut().unwrap();
12749                    let cb2 = col_buf.as_ref().unwrap();
12750                    e.gumbel_perturb_filtered(cb2, pb, n_vocab, sp_seed, sctr, sp_temp, mx, th)?;
12751                    sctr += 1;
12752                    let td = e.argmax_token_device(pb, n_vocab)?;
12753                    e.dtoh_u32_one(&td)?
12754                } else {
12755                    // REJECT at n_acc: bonus ~ norm(max(0, softmax_T(p) - softmax_T(q))).
12756                    let cb = col_buf.as_mut().unwrap();
12757                    if n_acc > 0 || base == 1 {
12758                        let col = base + n_acc - 1;
12759                        e.copy_view_into(
12760                            cb,
12761                            0,
12762                            &tlogits_d.slice(col * n_vocab..(col + 1) * n_vocab),
12763                            n_vocab,
12764                        )?;
12765                    } else {
12766                        let lc = last_col_logits.as_ref().unwrap();
12767                        e.copy_into(cb, 0, lc, n_vocab)?;
12768                    }
12769                    if pen_on {
12770                        let h = pen_hist_d.as_ref().unwrap();
12771                        let nh = h.len();
12772                        e.penalize_logits(
12773                            cb,
12774                            h,
12775                            nh,
12776                            sp.penalty_repeat,
12777                            sp.penalty_freq,
12778                            sp.penalty_present,
12779                            n_vocab,
12780                        )?;
12781                    }
12782                    let cb2 = col_buf.as_ref().unwrap();
12783                    let sc = sctr;
12784                    sctr += 1;
12785                    // p-stats for the reject column: from col_stats when the col was gathered,
12786                    // else (j==0&&base==0) from last_col_stats.
12787                    let p_stats = if n_acc > 0 || base == 1 {
12788                        // col index within the gathered set == number of gathered cols before n_acc
12789                        let gi = if base == 1 { n_acc } else { n_acc - 1 };
12790                        col_stats.get(gi).copied().unwrap_or_else(|| {
12791                            (0.0, 0.0, 1.0) // unreachable: gathered cols always cover the reject slot
12792                        })
12793                    } else {
12794                        last_col_stats.expect("sampled: last_col_stats unset at reject")
12795                    };
12796                    let q_stats = draft_stats[n_acc];
12797                    if let Some(map) = &d2t_dev {
12798                        if q_full_buf.is_none() {
12799                            q_full_buf = Some(e.zeros(n_vocab)?);
12800                        }
12801                        let qf = q_full_buf.as_mut().unwrap();
12802                        e.scatter_trim_logits(&q_bufs[n_acc], map, qf, d_vocab, n_vocab)?;
12803                        let qf2 = q_full_buf.as_ref().unwrap();
12804                        e.residual_sample_filtered(
12805                            cb2,
12806                            Some(qf2),
12807                            n_vocab,
12808                            sp_temp,
12809                            sp_seed,
12810                            sc,
12811                            p_stats,
12812                            q_stats,
12813                            &mut sample_tok,
12814                        )?;
12815                    } else {
12816                        e.residual_sample_filtered(
12817                            cb2,
12818                            Some(&q_bufs[n_acc]),
12819                            n_vocab,
12820                            sp_temp,
12821                            sp_seed,
12822                            sc,
12823                            p_stats,
12824                            q_stats,
12825                            &mut sample_tok,
12826                        )?;
12827                    }
12828                    e.dtoh_u32(&sample_tok)?[0]
12829                };
12830                (n_acc, bonus)
12831            };
12832            // --- 3b. GRAMMAR TRUNCATION (constrained spec, 2026-08-03): the grammar is
12833            // an extra rejection rule AFTER the exactness verify (the batched-verify-twins
12834            // ordering). Walk the accepted drafts through the grammar in commit order; the
12835            // first illegal token truncates acceptance at its slot, and that slot's emission
12836            // is recomputed as the MASKED argmax of the target's own verify column — token-
12837            // identical to constrained plain greedy decode (an unmasked argmax that is
12838            // grammar-legal IS the masked argmax: masking only removes competitors). The
12839            // column D2H (~1MB) is paid only when a cut fires — the tight-grammar cost,
12840            // measured in acceptance numbers, never hidden.
12841            let (n_acc, bonus) = match constraint.as_deref_mut() {
12842                None => (n_acc, bonus),
12843                Some(c) => {
12844                    fn ce(e2: String) -> Box<dyn std::error::Error> {
12845                        format!("constraint: {e2}").into()
12846                    }
12847                    let mut na = n_acc;
12848                    let mut cut = false;
12849                    for (j, &d) in draft.iter().enumerate().take(n_acc) {
12850                        if c.is_allowed(d).map_err(ce)? {
12851                            c.consume(d).map_err(ce)?;
12852                        } else {
12853                            na = j;
12854                            cut = true;
12855                            dm_cut_tokens += n_acc - j;
12856                            break;
12857                        }
12858                    }
12859                    if cut {
12860                        dm_cuts += 1;
12861                    }
12862                    let mut bo = bonus;
12863                    if cut || !c.is_allowed(bo).map_err(ce)? {
12864                        let mut row = if na == 0 && base == 0 {
12865                            init_logits_host
12866                                .clone()
12867                                .ok_or("constraint: init logits missing (round-0 cut)")?
12868                        } else {
12869                            e.dtoh_view(
12870                                &tlogits_d.slice((base + na - 1) * n_vocab..(base + na) * n_vocab),
12871                            )?
12872                        };
12873                        c.mask_logits(&mut row).map_err(ce)?;
12874                        bo = argmax(&row) as u32;
12875                    }
12876                    c.consume(bo).map_err(ce)?;
12877                    (na, bo)
12878                }
12879            };
12880            let mut successor_valid = false;
12881            if let Some((q_proxy, expected_d2)) = rejected_probe {
12882                let v_n = n_acc == 1 && bonus == expected_d2;
12883                eprintln!(
12884                    "[opti-controller] shadow q={q_proxy:.6} admitted=false v_n={v_n} \
12885                     expected_d2={expected_d2} n_acc={n_acc} bonus={bonus}",
12886                );
12887            }
12888            if let Some(successor) = successor_attempt.as_ref() {
12889                successor_valid = n_acc == 1 && bonus == successor.verify_tokens[0];
12890                let generation = successor.generation;
12891                let q_proxy = successor.q_proxy;
12892                let expected_pending = successor.verify_tokens[0];
12893                let resolution_ms = successor.issued_at.elapsed().as_secs_f64() * 1e3;
12894                let fork = opti_fork
12895                    .as_mut()
12896                    .ok_or("optipipe successor resolution lost fork state")?;
12897                fork.finish_actual_reconcile(e, &mut *cache, &snap, n_acc, base, successor_valid)?;
12898                if successor_valid {
12899                    OPTI_FORK_HITS.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
12900                } else {
12901                    OPTI_FORK_MISSES.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
12902                    OPTI_RECONCILES.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
12903                    OPTI_WASTED_DRAFT_TOKENS.fetch_add(2, std::sync::atomic::Ordering::Relaxed);
12904                }
12905                let breaker_tripped = fork
12906                    .controller
12907                    .as_mut()
12908                    .expect("controller policy")
12909                    .resolve(successor_valid);
12910                if breaker_tripped {
12911                    OPTI_BREAKER_TRIPS.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
12912                }
12913                eprintln!(
12914                    "[opti-controller] resolve generation={} hit={} q={q_proxy:.6} \
12915                     expected_pending={expected_pending} n_acc={n_acc} bonus={bonus} \
12916                     resolution_ms={resolution_ms:.3} reconcile={} breaker={}",
12917                    generation.id, successor_valid, !successor_valid, breaker_tripped,
12918                );
12919                if !successor_valid {
12920                    let mut successor = successor_attempt
12921                        .take()
12922                        .expect("controller successor disappeared on miss");
12923                    successor.settle();
12924                    fork.retire(generation)?;
12925                }
12926            }
12927            total_drafted += k_round;
12928            total_accepted += n_acc;
12929            if let Some(t) = sess_telem {
12930                // Greedy, rejection-sampling, and grammar truncation all converge here after
12931                // the accept decision is already on host. Fixed-size relaxed atomics only.
12932                t.record_round(k_round, n_acc);
12933            }
12934            if spec_stats {
12935                st_len_hist[k_round] += 1;
12936                for j in 0..k_round {
12937                    st_drafted[j] += 1;
12938                }
12939                for j in 0..n_acc {
12940                    st_accepted[j] += 1;
12941                }
12942                if n_acc == k_round {
12943                    st_full += 1;
12944                }
12945            }
12946
12947            if debug_spec {
12948                eprintln!(
12949                    "[R{round}] pos={pos} out_len={} last_tok={last_token} draft={draft:?} n_acc={n_acc} bonus={bonus} t_pred0={}",
12950                    out.len(),
12951                    // NOT `t_pred(0)`: `preds` is filled only under `if !sampled` above, so on a
12952                    // sampled request round >= 1 (base == 1) indexed an EMPTY vector and PANICKED
12953                    // the GPU worker thread — a debug flag that killed the exact regime you would
12954                    // set it to investigate. See `debug_t_pred0`.
12955                    debug_t_pred0(sampled, base, last_pred, &preds)
12956                );
12957            }
12958
12959            // --- 4. COMMIT: draft[0..n_acc] then bonus (n_acc + 1 tokens) ---
12960            let commit_started = std::time::Instant::now();
12961            // SESSION MODE: every accepted column is already in the CACHE — `out` must carry all
12962            // of them (overshoot past max_new included) or `committed` under-counts the cache rows
12963            // and the next turn's continuation seeds one token off (gate-caught 2026-07-05). The
12964            // single-shot path keeps the cap (its caller truncates + drops the cache anyway).
12965            for j in 0..n_acc {
12966                if !session_mode && out.len() >= max_new {
12967                    break;
12968                }
12969                out.push(draft[j]);
12970            }
12971            if pen_on {
12972                pen_hist.extend_from_slice(&draft[0..n_acc]);
12973                pen_hist.push(bonus);
12974            }
12975            let bonus_emitted = session_mode || out.len() < max_new;
12976            if bonus_emitted {
12977                out.push(bonus);
12978            }
12979            last_token = bonus;
12980
12981            // --- 5. ROLLBACK + advance (§C) ---
12982            if n_acc == k_round && !spec_replay {
12983                // FULL ACCEPT, BONUS FOLD: all verify columns (pending? + drafts) are committed in
12984                // cache; the NEW bonus stays PENDING for the next round's verify batch — NO extra
12985                // T=1 trunk pass. The next draft chain seeds from the MTP block's h_nextn at the
12986                // bonus position: one MTP-block pass (~1/33 trunk cost) replaces the trunk read.
12987                // last_pred is dead in the pending path (t_pred reads verify col 0).
12988                //
12989                // PERSISTENT DRAFT KV, full-accept fill: the chain covered last_token +
12990                // draft[0..k_round-2] as INPUTS (slots P..P'-2); draft[k_round-1] (slot P'-1) was
12991                // only ever an output, so its entry is MISSING. Fill it from vh_seed — its EXACT
12992                // trunk hidden (the last verify column). set_len first: a p-min break may have
12993                // left one extra chain append at that slot. Partial accepts need NO fill (the
12994                // chain already covered every accepted position; round-start set_len truncates).
12995                let mut vh_seed = e.zeros(n_embd)?;
12996                e.copy_view_into(
12997                    &mut vh_seed,
12998                    0,
12999                    &vx.slice((t_v - 1) * n_embd..t_v * n_embd),
13000                    n_embd,
13001                )?;
13002                if refresh {
13003                    // TRUE-HIDDEN REFRESH (2026-07-03, the HANDOVER-listed acceptance lever):
13004                    // overwrite ALL committed positions' scratch entries with K/V from their EXACT
13005                    // verify hiddens — the reference engine's mtp_update fills from true hiddens;
13006                    // the full stack (vx) is already resident from the verify. Replaces both the
13007                    // chain-approximate entries AND the old last-token-only fill. Acceptance-only
13008                    // (draft attention quality); exactness stays the verify's job.
13009                    scratch.set_len(e, pos)?;
13010                    // PREDECESSOR pairing: row i gets vx[i-1]; row 0 the carried fill_prev
13011                    // (hidden of the last committed row before this verify batch).
13012                    let mut vxs = e.zeros(t_v * n_embd)?;
13013                    e.copy_into(&mut vxs, 0, &fill_prev, n_embd)?;
13014                    if t_v > 1 {
13015                        e.copy_view_into(
13016                            &mut vxs,
13017                            n_embd,
13018                            &vx.slice(0..(t_v - 1) * n_embd),
13019                            (t_v - 1) * n_embd,
13020                        )?;
13021                    }
13022                    self.mtp_kv_fill_all(e, &verify_tokens, &vxs, pos, &mut *scratch, embd_dev)?;
13023                } else {
13024                    scratch.set_len(e, pos + base + k_round - 1)?;
13025                    // predecessor of the last draft = verify col t_v-2 (or fill_prev at t_v==1)
13026                    let mut hp = e.zeros(n_embd)?;
13027                    if t_v >= 2 {
13028                        e.copy_view_into(
13029                            &mut hp,
13030                            0,
13031                            &vx.slice((t_v - 2) * n_embd..(t_v - 1) * n_embd),
13032                            n_embd,
13033                        )?;
13034                    } else {
13035                        e.copy_into(&mut hp, 0, &fill_prev, n_embd)?;
13036                    }
13037                    self.mtp_kv_fill_all(
13038                        e,
13039                        &[draft[k_round - 1]],
13040                        &hp,
13041                        pos + base + k_round - 1,
13042                        &mut *scratch,
13043                        embd_dev,
13044                    )?;
13045                }
13046                // REFERENCE SEEDING: no pseudo pass — the next chain's step 0 IS the
13047                // reference's (id_last, h_prev) draft row; it appends the bonus's scratch
13048                // entry itself. Seed = TRUE hidden of the bonus's predecessor (last verify
13049                // col). Saves one MTP-block pass per round on top of the pairing fix.
13050                if !devacc_seeded {
13051                    e.copy_into(&mut h_seed_buf, 0, &vh_seed, n_embd)?;
13052                    e.copy_into(&mut fill_prev, 0, &vh_seed, n_embd)?;
13053                }
13054                pending = Some(bonus);
13055                if debug_spec {
13056                    eprintln!("  -> FULL ACCEPT (bonus pending, prev-h seed)");
13057                }
13058            } else if !spec_replay && base + n_acc >= 1 {
13059                // PARTIAL ACCEPT, REPLAY-FREE (2026-07-03 — the profiled #1 long-ctx spec cost):
13060                // the verify's first j = base+n_acc columns ARE the committed sequence, computed
13061                // bit-identically to eager (decode-exact contract) — so KEEP them: KV truncates to
13062                // pos+j, recurrent state rebuilds from the VerifyCkpt (same-kernel gdn prefix
13063                // re-run / pure state-clone restore), and the bonus stays PENDING exactly like the
13064                // full-accept path — the legacy duplicate trunk replay is gone. The next chain
13065                // seeds from the MTP pseudo-hidden of the bonus, whose seed = the TRUE verify
13066                // hidden of its predecessor (col j-1) — same one-hop pseudo structure as full
13067                // accept (never compounds: the next verify recomputes true hiddens for all
13068                // committed columns).
13069                let j = base + n_acc;
13070                // VERIFY-GRAPH SLAB COMMIT: when the captured trunk ran, the linear layers'
13071                // column stash was written into the graphs ctx's persistent slabs as in-graph
13072                // memcpy nodes, NOT into the per-column VerifyCkpt the cols arm reads — so the
13073                // commit must take the slab twin (same semantics, slab-addressed sources). The
13074                // ctx states which of the two this round produced via `round_slab`; trusting the
13075                // flag rather than the env keeps a round that fell back to the eager walk (a
13076                // capture that declined, a t the pool never captured) on the cols arm.
13077                let slab_commit = vg_guard
13078                    .as_ref()
13079                    .and_then(|g| g.as_ref())
13080                    .map(|g| g.round_slab)
13081                    .unwrap_or(false);
13082                if slab_commit {
13083                    self.dspark_commit_prefix_slab(
13084                        e,
13085                        &mut *cache,
13086                        &snap,
13087                        vg_guard
13088                            .as_ref()
13089                            .and_then(|g| g.as_ref())
13090                            .expect("slab_commit implies a graphs ctx"),
13091                        j,
13092                    )?;
13093                } else {
13094                    self.commit_verified_prefix(
13095                        e,
13096                        &mut *cache,
13097                        &snap,
13098                        ckpt.as_ref().unwrap(),
13099                        j,
13100                        devacc_seeded,
13101                        if devacc_seeded {
13102                            devacc_acc.as_ref().map(|a| (a, base, t_v))
13103                        } else {
13104                            None
13105                        },
13106                    )?;
13107                }
13108                let mut seed = e.zeros(n_embd)?;
13109                e.copy_view_into(
13110                    &mut seed,
13111                    0,
13112                    &vx.slice((j - 1) * n_embd..j * n_embd),
13113                    n_embd,
13114                )?;
13115                // Draft scratch: TRUE-HIDDEN REFRESH of the committed prefix (see the full-accept
13116                // branch); without it the chain entries stand and only the tail truncates. Either
13117                // way len ends at pos+j so the pseudo append lands at the bonus's slot pos+j
13118                // (persistent mode), rope pos+j+1 (chain convention).
13119                if refresh {
13120                    scratch.set_len(e, pos)?;
13121                    let mut vxs = e.zeros(j * n_embd)?;
13122                    e.copy_into(&mut vxs, 0, &fill_prev, n_embd)?;
13123                    if j > 1 {
13124                        e.copy_view_into(
13125                            &mut vxs,
13126                            n_embd,
13127                            &vx.slice(0..(j - 1) * n_embd),
13128                            (j - 1) * n_embd,
13129                        )?;
13130                    }
13131                    self.mtp_kv_fill_all(
13132                        e,
13133                        &verify_tokens[0..j],
13134                        &vxs,
13135                        pos,
13136                        &mut *scratch,
13137                        embd_dev,
13138                    )?;
13139                } else {
13140                    scratch.set_len(e, pos + j)?;
13141                }
13142                // REFERENCE SEEDING (see the full-accept branch): seed = TRUE hidden of the
13143                // bonus's predecessor (verify col j-1); no pseudo pass.
13144                if !devacc_seeded {
13145                    e.copy_into(&mut h_seed_buf, 0, &seed, n_embd)?;
13146                    e.copy_into(&mut fill_prev, 0, &seed, n_embd)?;
13147                }
13148                pending = Some(bonus);
13149                if debug_spec {
13150                    eprintln!("  -> PARTIAL(replay-free j={j}, bonus pending, prev-h seed)");
13151                }
13152            } else if !spec_replay {
13153                // ZERO ROUND FOLD (2026-07-10, verify-cost target #3): base+n_acc == 0 — a
13154                // pending-less round where nothing was accepted (PMIN0 zero-draft chains after a
13155                // replay/commit, or plain 0-accept rounds at round 0). The old path replayed
13156                // [bonus] through a FULL m=1 trunk+head forward (the 489us full-vocab head pass
13157                // measured at ~0.75/round on PMIN0 configs). Instead: restore the pre-round
13158                // snapshot and let the bonus ride the NEXT round's verify as col 0 — the existing
13159                // base=1 pending machinery, bit-identical by the decode-exact verify contract.
13160                // Seed: the bonus's predecessor is the last COMMITTED token, whose hidden
13161                // fill_prev already carries (same seeding as the 1-token-replay case it replaces).
13162                cache.rollback(e, &snap, 0)?;
13163                scratch.set_len(e, pos)?;
13164                e.copy_into(&mut h_seed_buf, 0, &fill_prev, n_embd)?;
13165                pending = Some(bonus);
13166                if debug_spec {
13167                    eprintln!("  -> ZERO-ROUND FOLD (bonus pending, fill_prev seed)");
13168                }
13169            } else {
13170                // PARTIAL ACCEPT, LEGACY REPLAY (seam MEMRA_SPEC_REPLAY=1 — or j==0: nothing of
13171                // this round survives, only possible before the first pending exists, ~round 0):
13172                // restore EVERYTHING to the pre-round snapshot (KV truncate to pos + recur
13173                // restore), then replay the committed prefix pending? ++ draft[0..n_acc] ++
13174                // [bonus] as ONE batched T forward — single weight read, bit-identical to greedy
13175                // (the verify-all-columns path is the same math). Commits the bonus with a TRUE
13176                // trunk hidden.
13177                cache.rollback(e, &snap, 0)?; // accept_len=0: KV len = pos, recur = snapshot
13178                let mut replay: Vec<u32> = Vec::with_capacity(base + n_acc + 1);
13179                if let Some(b) = pending.take() {
13180                    replay.push(b);
13181                }
13182                replay.extend_from_slice(&draft[0..n_acc]);
13183                replay.push(bonus);
13184                // Full-stack forward (decode_step_t_core = decode_step_t_h_emb_dev's body):
13185                // Predecessor pairing seeds from the PREDECESSOR row (col len-2) — the same-row path takes the
13186                // last col exactly as before (byte-identical to the old _h_emb_dev call).
13187                let (rl_d, rx) = if self.batched_serving_numeric_class() {
13188                    let mut logits = Vec::with_capacity(replay.len() * n_vocab);
13189                    let mut hidden = e.uninit(replay.len() * n_embd)?;
13190                    for (row, &token) in replay.iter().enumerate() {
13191                        let (row_logits, row_hidden) =
13192                            self.spec_target_step_h(e, token, &mut *cache)?;
13193                        logits.extend_from_slice(&row_logits);
13194                        e.dtod_copy_into(&row_hidden, &mut hidden, row * n_embd)?;
13195                    }
13196                    (e.htod(&logits)?, hidden)
13197                } else {
13198                    self.decode_step_t_core(e, &replay, pos, &mut *cache, embd_dev, None)?
13199                };
13200                // last_pred = argmax of the LAST column's logits (predicts the token after `bonus`)
13201                // — device argmax + one 4-byte read instead of the full-vocab column dtoh.
13202                e.argmax_token_device_col(&rl_d, replay.len() - 1, n_vocab, &mut preds_d, 0)?;
13203                last_pred = e.dtoh_u32(&preds_d)?[0];
13204                if sampled {
13205                    let lr0 = replay.len();
13206                    let lc = last_col_logits
13207                        .as_mut()
13208                        .expect("sampled: last_col_logits unset");
13209                    e.copy_view_into(
13210                        lc,
13211                        0,
13212                        &rl_d.slice((lr0 - 1) * n_vocab..lr0 * n_vocab),
13213                        n_vocab,
13214                    )?;
13215                }
13216                let lr = replay.len();
13217                if lr >= 2 {
13218                    e.copy_view_into(
13219                        &mut h_seed_buf,
13220                        0,
13221                        &rx.slice((lr - 2) * n_embd..(lr - 1) * n_embd),
13222                        n_embd,
13223                    )?;
13224                } else {
13225                    // 1-token replay (round-0 miss): the bonus's predecessor is the OLD
13226                    // last_token, whose own-row hidden fill_prev still holds.
13227                    e.copy_into(&mut h_seed_buf, 0, &fill_prev, n_embd)?;
13228                }
13229                // the bonus is COMMITTED here — it becomes the last committed row.
13230                let mut rh_last = e.zeros(n_embd)?;
13231                e.copy_view_into(
13232                    &mut rh_last,
13233                    0,
13234                    &rx.slice((lr - 1) * n_embd..lr * n_embd),
13235                    n_embd,
13236                )?;
13237                e.copy_into(&mut fill_prev, 0, &rh_last, n_embd)?;
13238                if debug_spec {
13239                    eprintln!("  -> PARTIAL(replay={replay:?}), next_pred={last_pred}");
13240                }
13241            }
13242            if devacc_seeded {
13243                // stage (b) epilogue: fill_prev takes the gathered seed AFTER the refresh fills
13244                // consumed the old value (both slots carry the same value in every non-replay arm).
13245                e.copy_into(&mut fill_prev, 0, &h_seed_buf, n_embd)?;
13246            }
13247            if successor_valid {
13248                let optimistic_scratch_len = successor_attempt
13249                    .as_ref()
13250                    .expect("valid controller successor disappeared")
13251                    .scratch_len;
13252                // The normal current-round commit refreshed/truncated the logical scratch tail.
13253                // Its optimistic successor row was already written physically, so restoring only
13254                // the retained logical length makes that row live for the carried round.
13255                scratch.set_len(e, optimistic_scratch_len)?;
13256            }
13257            if let Some(current) = current_opti.take() {
13258                opti_fork
13259                    .as_mut()
13260                    .ok_or("optipipe current retirement lost fork state")?
13261                    .retire(current.generation)?;
13262            }
13263            if successor_valid {
13264                let successor = successor_attempt
13265                    .take()
13266                    .expect("valid controller successor disappeared before promotion");
13267                let generation = successor.generation;
13268                opti_fork
13269                    .as_mut()
13270                    .ok_or("optipipe successor promotion lost fork state")?
13271                    .promote_successor_snapshot(&mut snap, generation);
13272                carried_opti = Some(successor);
13273            }
13274            if anatomy_on {
13275                // Commit/rollback is normally asynchronous on the primary/head stream. Bound it
13276                // only for this diagnostic so it does not disappear into the following draft's
13277                // first token readback.
13278                e.stream().synchronize()?;
13279                ph_commit += commit_started.elapsed().as_secs_f64();
13280            }
13281            // adaptive-K update (host math, zero syncs): next round drafts accepted-run + 1,
13282            // clamped to [floor(pos), k_cap]. cache.pos is post-rollback here (the round's
13283            // final position — the floor's position key reads the committed depth). Burst
13284            // rounds (`continue` above) draft the captured fixed depth and skip this, exactly
13285            // like gemma's burst arm.
13286            if adapt {
13287                let fl_now = floor_at(cache.pos);
13288                kc = (n_acc + 1).clamp(fl_now.min(k_cap), k_cap);
13289            }
13290            ph_mark(&mut ph_rest, phase_on);
13291            if let Some(p) = pipe {
13292                p.accept_end(round);
13293            }
13294            drop(pipe_accept);
13295            round += 1;
13296            // sse-cadence: this round's accepted drafts + bonus are committed (out is
13297            // append-only past step 4) — flush at round cadence.
13298            keep_going = flush_commit(&mut on_commit, &out, &mut flushed);
13299        }
13300        if let Some(mut ticket) = carried_opti.take() {
13301            opti_fork
13302                .as_mut()
13303                .ok_or("optipipe tail drain lost fork state")?
13304                .cancel_controller_ticket(e, &mut *cache, &mut *scratch, &snap, &mut ticket)?;
13305        }
13306        // sse-cadence: nothing below appends to `out`; flush any remainder (defensive).
13307        // (verdict ignored — the burst is over either way; the session tail runs unchanged.)
13308        let _ = flush_commit(&mut on_commit, &out, &mut flushed);
13309
13310        if spec_stats {
13311            let per_slot: Vec<String> = (0..k)
13312                .map(|j| {
13313                    if st_drafted[j] > 0 {
13314                        format!(
13315                            "{}/{}={:.3}",
13316                            st_accepted[j],
13317                            st_drafted[j],
13318                            st_accepted[j] as f64 / st_drafted[j] as f64
13319                        )
13320                    } else {
13321                        "0/0".into()
13322                    }
13323                })
13324                .collect();
13325            let acc = if total_drafted > 0 {
13326                total_accepted as f64 / total_drafted as f64
13327            } else {
13328                0.0
13329            };
13330            eprintln!(
13331                "[spec-stats] rounds={round} full_accept={st_full} len_hist={st_len_hist:?} \
13332                       per_slot=[{}] total={total_accepted}/{total_drafted}={acc:.3} \
13333                       tok_per_round={:.3}",
13334                per_slot.join(" "),
13335                (total_accepted + round) as f64 / round.max(1) as f64
13336            );
13337        }
13338        if constraint.is_some() {
13339            eprintln!(
13340                "[draft-mask] mask_rounds={dm_rounds} clone_total={:.3}ms \
13341                 clone_per_round={:.4}ms gram_cuts={dm_cuts}/{round} cut_tokens={dm_cut_tokens}",
13342                dm_clone_ns as f64 / 1e6,
13343                dm_clone_ns as f64 / 1e6 / dm_rounds.max(1) as f64
13344            );
13345        }
13346        if phase_on {
13347            let tot = ph_draft + ph_verify + ph_wait + ph_rest;
13348            eprintln!(
13349                "[spec-phase] draft={:.1}ms ({:.1}%) verify-issue={:.1}ms ({:.1}%) verify-wait={:.1}ms ({:.1}%) commit-host={:.1}ms ({:.1}%) rounds={round}",
13350                ph_draft * 1e3,
13351                ph_draft / tot * 100.0,
13352                ph_verify * 1e3,
13353                ph_verify / tot * 100.0,
13354                ph_wait * 1e3,
13355                ph_wait / tot * 100.0,
13356                ph_rest * 1e3,
13357                ph_rest / tot * 100.0
13358            );
13359        }
13360        if anatomy_on {
13361            let rounds_f = round.max(1) as f64;
13362            let other = (ph_rest - ph_commit).max(0.0);
13363            eprintln!(
13364                "[spec-anatomy] per-round draft={:.3}ms pp-verify={:.3}ms \
13365                 verify-accept={:.3}ms commit-rollback={:.3}ms other={:.3}ms rounds={round}",
13366                ph_draft * 1e3 / rounds_f,
13367                ph_verify * 1e3 / rounds_f,
13368                ph_wait * 1e3 / rounds_f,
13369                ph_commit * 1e3 / rounds_f,
13370                other * 1e3 / rounds_f,
13371            );
13372        }
13373        let _pipe_tail = pipe.map(|p| p.primary());
13374        // SESSION TAIL: leave the session in the exact invariant the next turn's suffix prime
13375        // expects — every row in `committed` has trunk KV/recur state AND an exact draft-KV row.
13376        // Park the draft-graph ctx back on the session (the serve-burst fixed-cost fix): the next
13377        // burst replays instead of recapturing. Error paths (`?` above) drop it — recaptured then.
13378        if let Some(slot) = sess_draft_slot.take() {
13379            *slot = Some(dctx);
13380        }
13381        let t_rounds = t_ent.elapsed();
13382        if let Some((committed, last_h, next_pred_slot, sctr_slot, uctr_slot)) = sess_tail.take() {
13383            // NEXT BURST'S BOUNDARY TOKEN (lane/sampled-spec-quality, Item 1). Greedy stashes
13384            // the argmax `last_pred` exactly as before (byte contract). SAMPLED draws the token
13385            // HERE, where the sampler, the session Philox counters and the penalty window are
13386            // all live and the boundary logits row still exists — that is the "make the state
13387            // available" half of the fix; the consuming burst then just emits it. `sctr` is
13388            // written to the session BELOW the draws so the advance is never lost.
13389            *next_pred_slot = Some(last_pred);
13390            let sample_boundary = sampled && constraint.is_none() && spec_sampled_boundary_on();
13391            let mut stashed_pending = false;
13392            if let Some(b) = pending.take() {
13393                if !sampled {
13394                    // PENDING-CARRY (2026-08-01): stash the bonus on the session instead of
13395                    // committing it with a solo T=1 pass — the next empty-suffix greedy burst
13396                    // consumes it as round-0 verify col 0 (a plain round edge; the old tail
13397                    // commit + next burst's init feed were 11.6+11.5ms solo trunk passes per
13398                    // burst on H100 q27, [spec-setup] trace). b stays in `out` (emitted) but
13399                    // OUT of `committed` (cache rows == committed); the consuming call
13400                    // prepends it once its verify commits the row. next_pred is unknowable
13401                    // without the commit pass — None; callers gate on pending_tok too.
13402                    debug_assert_eq!(out.last(), Some(&b), "pending must be the last emitted");
13403                    if let Some(slot) = sess_pending_slot.take() {
13404                        *slot = Some(b);
13405                    }
13406                    *next_pred_slot = None;
13407                    // fill_prev = hidden of the last COMMITTED row (b's predecessor) — the
13408                    // exact chain-seed/fill anchor the consuming burst (or a flush) needs.
13409                    *last_h = Some(e.clone_dtod(&fill_prev)?);
13410                    stashed_pending = true;
13411                } else {
13412                    // SAMPLED tail (unchanged): commit the bonus (one T=1 pass) + draft fill —
13413                    // the sampled round-0 accept needs this pass's logits (last_col_logits).
13414                    let pos_b = cache.pos;
13415                    scratch.set_len(e, pos_b)?;
13416                    let (lg_b, hb) = self.spec_target_step_h(e, b, &mut *cache)?;
13417                    // after a FULL-accept exit `last_pred` is STALE (it predicted the bonus
13418                    // itself — the prediction AFTER the bonus never materialized; it would have
13419                    // been the next round's verify col 0). The commit's logits ARE that
13420                    // prediction — so they are also the row the next burst's boundary token
13421                    // comes off, and (lane/sampled-spec-quality) it is DRAWN from them here.
13422                    *next_pred_slot = Some(if sample_boundary {
13423                        sample_boundary_token(
13424                            e,
13425                            &lg_b,
13426                            &sp,
13427                            &pen_hist,
13428                            &mut sctr,
13429                            "burst-tail-commit",
13430                        )?
13431                    } else {
13432                        argmax(&lg_b) as u32
13433                    });
13434                    self.mtp_kv_fill_all(e, &[b], &fill_prev, pos_b, &mut *scratch, embd_dev)?;
13435                    *last_h = Some(hb);
13436                }
13437            } else {
13438                // fill_prev tracks the hidden of the last COMMITTED row throughout the loop.
13439                *last_h = Some(e.clone_dtod(&fill_prev)?);
13440                if sample_boundary {
13441                    // No pending to commit, so the boundary row is the one `last_pred` was
13442                    // argmaxed from and the sampled path keeps it on device: the init feed's
13443                    // logits when the burst ran zero rounds, else the legacy-replay path's
13444                    // last verify column (both predict the token AFTER the last committed
13445                    // row). It is retained precisely because round 0's accept test needs it,
13446                    // so the draw costs no extra D2H of the [n_vocab] row.
13447                    match last_col_logits.as_ref() {
13448                        Some(lc) => {
13449                            *next_pred_slot = Some(sample_boundary_token_dev(
13450                                e,
13451                                lc,
13452                                n_vocab,
13453                                &sp,
13454                                &pen_hist,
13455                                &mut sctr,
13456                                "burst-tail-nopending",
13457                            )?);
13458                        }
13459                        // NAME THE FALLBACK (house standard): unreachable today — a sampled
13460                        // burst always feeds or replays, so the row exists — but if it ever
13461                        // is, the stream takes a greedy token and SAYS so rather than
13462                        // silently regressing to the pre-lane behaviour.
13463                        None => eprintln!(
13464                            "[spec-boundary] sampled tail kept the ARGMAX boundary token \
13465                             (reason: no retained boundary logits row)"
13466                        ),
13467                    }
13468                }
13469            }
13470            *sctr_slot = sctr;
13471            *uctr_slot = uctr;
13472            committed.extend_from_slice(prompt);
13473            if let Some(cb) = carried_pending {
13474                // the consumed carry's cache row landed in round 0's verify (every pending
13475                // round commits col 0) — it joins `committed` here, in sequence order.
13476                committed.push(cb);
13477            }
13478            if stashed_pending {
13479                // ZERO-EMIT BURST (2026-08-06 c=8 serve panic, pre-existing since b4aea184):
13480                // `out.len() - 1` underflowed on an EMPTY `out` — "range end index
13481                // 18446744073709551615 out of range for slice of length 0", killing the
13482                // memra-gpu-worker and failing 31 of 32 concurrent requests with "worker closed
13483                // stream". Reachable because `pending` starts as `carried_pending` (a bonus
13484                // stashed by the PREVIOUS burst) while `out` starts empty, and the carry is
13485                // deliberately NOT pushed to `out` (line ~3239: the burst that emitted it already
13486                // did). So a burst that stashes a pending without emitting anything of its own —
13487                // the round loop exits before a push, e.g. the ring drain's `out.len() < max_new`
13488                // guard skipping every token under a tight budget — arrives here with
13489                // out.len() == 0 and stashed_pending == true.
13490                //
13491                // The invariant is unchanged: `committed` gets every emitted token EXCEPT the
13492                // stashed bonus. With nothing emitted, that is nothing — and the carry pushed
13493                // just above is already accounted. Saturating, not a min/assert: an empty `out`
13494                // here is a legitimate burst shape, not a corrupt state.
13495                let emitted = out.len().saturating_sub(1);
13496                committed.extend_from_slice(&out[..emitted]);
13497            } else {
13498                committed.extend_from_slice(&out); // FULL out incl. overshoot — all committed
13499            }
13500            debug_assert_eq!(
13501                cache.pos,
13502                committed.len(),
13503                "session invariant: cache rows == committed tokens"
13504            );
13505            if setup_trace {
13506                e.stream().synchronize()?; // bound the async tail fill in the trace
13507                let t_tail = t_ent.elapsed();
13508                eprintln!(
13509                    "[spec-setup] init={:.2}ms cap={:.2}ms fill={:.2}ms rounds={:.2}ms tail={:.2}ms total={:.2}ms out={} cont={}",
13510                    t_init.as_secs_f64() * 1e3,
13511                    (t_cap - t_init).as_secs_f64() * 1e3,
13512                    (t_fill - t_cap).as_secs_f64() * 1e3,
13513                    (t_rounds - t_fill).as_secs_f64() * 1e3,
13514                    (t_tail - t_rounds).as_secs_f64() * 1e3,
13515                    t_tail.as_secs_f64() * 1e3,
13516                    out.len(),
13517                    continuation
13518                );
13519            }
13520            return Ok((out, total_drafted, total_accepted));
13521        }
13522        out.truncate(max_new);
13523        Ok((out, total_drafted, total_accepted))
13524    }
13525
13526    /// Anchor-bounded DSpark target extraction. The trunk sees the exact generated token tape;
13527    /// only requested hidden rows and target-logit rows cross PCIe. An anchor token at p pairs
13528    /// with the pre-output-norm h[p-1] carrier, exactly as the existing replay/NextN path does.
13529    pub fn extract_dspark_anchors(
13530        &self,
13531        e: &Engine,
13532        tokens: &[u32],
13533        anchor_positions: &[usize],
13534        gamma: usize,
13535        top_k: usize,
13536        chunk: usize,
13537        temperature: f32,
13538    ) -> Result<Vec<DsparkAnchorRecord>, Box<dyn std::error::Error>> {
13539        if tokens.len() < gamma + 2 || gamma == 0 || chunk < 2 {
13540            return Err("DSpark extraction token tape/gamma/chunk is invalid".into());
13541        }
13542        if anchor_positions.windows(2).any(|pair| pair[0] >= pair[1]) {
13543            return Err("DSpark anchor positions must be sorted and unique".into());
13544        }
13545        for &position in anchor_positions {
13546            if position == 0 || position + gamma >= tokens.len() {
13547                return Err(format!(
13548                    "DSpark anchor {position} has no predecessor or cannot cover gamma={gamma} in {} tokens",
13549                    tokens.len()
13550                )
13551                .into());
13552            }
13553        }
13554
13555        let n_vocab = self.output.out_features();
13556        let n_embd = self.cfg.n_embd as usize;
13557        let mut cache =
13558            crate::pp::new_cache_planned(e, &self.cfg, &self.plan, tokens.len() + gamma + 8)?;
13559        let (embd_qt, embd_rb) = self.embd.qt_and_row_bytes(n_embd);
13560        let embd_gpu = if spec_host_embd() {
13561            None
13562        } else {
13563            Some(
13564                self.embd_gpu
13565                    .get_or_init(|| e.upload_u8(&self.embd.raw).expect("embed table upload")),
13566            )
13567        };
13568        let embd_dev = embd_gpu.map(|gpu| (gpu, embd_qt, embd_rb));
13569
13570        struct PendingRecord {
13571            position: usize,
13572            hidden: Option<Vec<f32>>,
13573            tokens: Vec<u32>,
13574            target_top_ids: Vec<Option<Vec<u32>>>,
13575            target_top_logits: Vec<Option<Vec<f32>>>,
13576            target_top_probs: Vec<Option<Vec<f32>>>,
13577            target_tail_probs: Vec<Option<f32>>,
13578        }
13579
13580        let mut pending: Vec<PendingRecord> = anchor_positions
13581            .iter()
13582            .map(|&position| PendingRecord {
13583                position,
13584                hidden: None,
13585                tokens: tokens[position..=position + gamma].to_vec(),
13586                target_top_ids: vec![None; gamma],
13587                target_top_logits: vec![None; gamma],
13588                target_top_probs: vec![None; gamma],
13589                target_tail_probs: vec![None; gamma],
13590            })
13591            .collect();
13592
13593        let mut start = 0usize;
13594        while start < tokens.len() {
13595            let end = (start + chunk).min(tokens.len());
13596            let chunk_tokens = &tokens[start..end];
13597            let (target_logits, hidden_rows) =
13598                self.decode_step_t_core(e, chunk_tokens, start, &mut cache, embd_dev, None)?;
13599            for record in &mut pending {
13600                let hidden_position = record.position - 1;
13601                if hidden_position >= start && hidden_position < end {
13602                    let local = hidden_position - start;
13603                    record.hidden = Some(
13604                        e.dtoh_view(&hidden_rows.slice(local * n_embd..(local + 1) * n_embd))?,
13605                    );
13606                }
13607                for slot in 0..gamma {
13608                    let target_row = record.position + slot;
13609                    if target_row < start || target_row >= end {
13610                        continue;
13611                    }
13612                    let local = target_row - start;
13613                    let logits =
13614                        e.dtoh_view(&target_logits.slice(local * n_vocab..(local + 1) * n_vocab))?;
13615                    let (ids, top_logits, probs, tail) =
13616                        dspark_sparse_softmax_topk(&logits, top_k, temperature)?;
13617                    record.target_top_ids[slot] = Some(ids);
13618                    record.target_top_logits[slot] = Some(top_logits);
13619                    record.target_top_probs[slot] = Some(probs);
13620                    record.target_tail_probs[slot] = Some(tail);
13621                }
13622            }
13623            start = end;
13624        }
13625
13626        pending
13627            .into_iter()
13628            .map(|record| {
13629                let hidden = record
13630                    .hidden
13631                    .ok_or_else(|| format!("missing DSpark hidden at {}", record.position))?;
13632                let target_top_ids =
13633                    flatten_dspark_rows(record.target_top_ids, record.position, "target ids")?;
13634                let target_top_logits = flatten_dspark_rows(
13635                    record.target_top_logits,
13636                    record.position,
13637                    "target logits",
13638                )?;
13639                let target_top_probs =
13640                    flatten_dspark_rows(record.target_top_probs, record.position, "target probs")?;
13641                let target_tail_probs = record
13642                    .target_tail_probs
13643                    .into_iter()
13644                    .enumerate()
13645                    .map(|(slot, value)| {
13646                        value.ok_or_else(|| {
13647                            format!("missing DSpark tail at {} slot {slot}", record.position)
13648                        })
13649                    })
13650                    .collect::<Result<Vec<_>, _>>()?;
13651                Ok(DsparkAnchorRecord {
13652                    position: record.position,
13653                    hidden,
13654                    tokens: record.tokens,
13655                    target_top_ids,
13656                    target_top_logits,
13657                    target_top_probs,
13658                    target_tail_probs,
13659                })
13660            })
13661            .collect()
13662    }
13663
13664    /// TEACHER-FORCED REPLAY ACCEPTANCE (hqmtp MTP-heal protocol): walk a FIXED token
13665    /// sequence and, at sampled positions, compare the MTP head's K-token draft chain against
13666    /// the trunk's own teacher-forced greedy predictions. Nothing is generated — the context is
13667    /// the corpus text itself, so (a) degenerate self-generated loops cannot inflate acceptance
13668    /// and (b) two arms (bf16 ceiling vs NVFP4) score on IDENTICAL contexts, isolating the
13669    /// quant-induced head/hidden-state mismatch from text drift.
13670    ///
13671    /// Per eval position p (context = tokens[0..=p], predecessor pairing as in spec decode):
13672    ///   draft_j  = chain token j from (tokens[p], h_{p-1}), then its own drafts — the exact
13673    ///              eager spec-decode chain (same mtp_head_forward_dev, same rope positions).
13674    ///   target_j = teacher-forced greedy pick for position p+1+j (argmax of the trunk logits
13675    ///              at forced context tokens[0..p+j]). For j==0 this equals live spec
13676    ///              acceptance; for j>=1 live verify would condition on the drafts, here it
13677    ///              conditions on the corpus — deterministic and arm-comparable by design.
13678    ///
13679    /// Returns (rows, bg): one (p, drafts[k], targets[k]) row per eval position (ascending p),
13680    /// plus the full teacher-forced greedy track bg (bg[i] = greedy pick for position i, i>=1)
13681    /// so harnesses can cross-check runs (e.g. different chunk sizes must give identical bg).
13682    ///
13683    /// `hdump`: when Some, every position's pre-output_norm trunk hidden (the exact rows the
13684    /// draft-KV fill pairs from) streams to the file as little-endian f32 [t_total, n_embd] —
13685    /// the head-distillation extraction (hqmtp): the ENGINE is the source of truth for trunk
13686    /// hiddens (HF torch reproductions of the hybrid trunk measured only ~0.5 greedy
13687    /// agreement vs this path — not usable as a training-data source).
13688    pub fn replay_acceptance(
13689        &self,
13690        e: &Engine,
13691        tokens: &[u32],
13692        k: usize,
13693        stride: usize,
13694        chunk: usize,
13695        mut hdump: Option<&mut std::fs::File>,
13696    ) -> Result<(Vec<(usize, Vec<u32>, Vec<u32>)>, Vec<u32>), Box<dyn std::error::Error>> {
13697        assert!(k >= 1 && stride >= 1 && chunk >= 2);
13698        let mtp = self
13699            .mtp
13700            .as_ref()
13701            .expect("replay_acceptance requires an MTP head");
13702        let n_vocab = self.output.out_features();
13703        let d_vocab = mtp
13704            .shared_head_head
13705            .as_ref()
13706            .unwrap_or(&self.output)
13707            .out_features();
13708        let n_embd = self.cfg.n_embd as usize;
13709        let t_total = tokens.len();
13710        assert!(t_total >= 8, "corpus too short ({t_total} tokens)");
13711        // STAGE-OWNED KV (lane/pp2-spec 2026-08-06) — see `new_session`. Door shut = `Cache::new`.
13712        let mut cache = crate::pp::new_cache_planned(e, &self.cfg, &self.plan, t_total + k + 8)?;
13713        let mut scratch = self.new_mtp_scratch(e, t_total + k + 8)?;
13714        let (embd_qt, embd_rb) = self.embd.qt_and_row_bytes(n_embd);
13715        let embd_gpu = if spec_host_embd() {
13716            None
13717        } else {
13718            Some(
13719                self.embd_gpu
13720                    .get_or_init(|| e.upload_u8(&self.embd.raw).expect("embed table upload")),
13721            )
13722        };
13723        let embd_dev = embd_gpu.map(|g| (g, embd_qt, embd_rb));
13724
13725        // bg[i] = the trunk's greedy pick for position i under the forced context (i >= 1).
13726        let mut bg: Vec<u32> = vec![0; t_total + 1];
13727        let mut rows: Vec<(usize, Vec<u32>, Vec<u32>)> = Vec::new();
13728        let mut prev_last_h = e.zeros(n_embd)?; // predecessor hidden entering the chunk
13729        let mut seed_buf = e.zeros(n_embd)?;
13730        let mut preds_d = e.alloc_u32_zeroed(chunk)?;
13731        let nll_on = std::env::var("MEMRA_REPLAY_NLL").as_deref() == Ok("1");
13732        let (mut nll_sum, mut nll_cnt) = (0f64, 0u64);
13733        let mut s = 0usize;
13734        while s < t_total {
13735            let cend = (s + chunk).min(t_total);
13736            let tc = cend - s;
13737            let ch = &tokens[s..cend];
13738            // 1. forced trunk pass — verify path (decode-exact contract): all-column logits +
13739            //    the chunk's true hiddens.
13740            let (tl_d, vx) = self.decode_step_t_core(e, ch, s, &mut cache, embd_dev, None)?;
13741            for j in 0..tc {
13742                e.argmax_token_device_col(&tl_d, j, n_vocab, &mut preds_d, j)?;
13743            }
13744            let preds = e.dtoh_u32(&preds_d)?;
13745            for j in 0..tc {
13746                bg[s + j + 1] = preds[j];
13747            }
13748            // MEMRA_REPLAY_NLL=1: teacher-forced NLL/perplexity over the same forced pass — the
13749            // checkpoint-quality metric (position j's logits score the GOLD next token).
13750            if nll_on {
13751                let jmax = if cend < t_total { tc } else { tc - 1 }; // last pos has no gold next
13752                if jmax > 0 {
13753                    let ids: Vec<u32> = (0..jmax).map(|j| tokens[s + j + 1]).collect();
13754                    let rows: Vec<i32> = (0..jmax as i32).collect();
13755                    let idsd = e.htod_u32_v(&ids)?;
13756                    let rowsd = e.htod_i32(&rows)?;
13757                    let mut outd = e.zeros(jmax)?;
13758                    e.softmax_gather(&tl_d, n_vocab, &idsd, &rowsd, &mut outd, n_vocab, jmax, 1.0)?;
13759                    for pr in e.dtoh(&outd)? {
13760                        nll_sum += -((pr.max(1e-30)) as f64).ln();
13761                        nll_cnt += 1;
13762                    }
13763                }
13764            }
13765            if let Some(f) = hdump.as_deref_mut() {
13766                use std::io::Write;
13767                let host: Vec<f32> = e.dtoh(&vx)?;
13768                // bf16 round-to-nearest-even — f32 doubled the disk bill at bulk
13769                // extraction scale (20M tokens x 4096 = 320GB f32 vs 160GB bf16).
13770                let mut bytes = Vec::with_capacity(tc * n_embd * 2);
13771                for v in &host[..tc * n_embd] {
13772                    let b = v.to_bits();
13773                    let r = b.wrapping_add(0x7FFF + ((b >> 16) & 1));
13774                    bytes.extend_from_slice(&((r >> 16) as u16).to_le_bytes());
13775                }
13776                f.write_all(&bytes)?;
13777            }
13778            // CHAINLESS extraction (stride > corpus, the bulk-hdump mode): no chunk ever
13779            // drafts, so the draft-KV fills are pure waste — skip them (2 MTP-block passes
13780            // per token saved; the forced trunk pass + hdump is all the mode needs).
13781            let chainless = stride > t_total;
13782            if chainless {
13783                e.copy_view_into(
13784                    &mut prev_last_h,
13785                    0,
13786                    &vx.slice((tc - 1) * n_embd..tc * n_embd),
13787                    n_embd,
13788                )?;
13789                s = cend;
13790                continue;
13791            }
13792            // 2. TRUE predecessor-paired draft-KV fill for the chunk (row i carries h_{i-1};
13793            //    row s reads the previous chunk's last true hidden, zeros at corpus start).
13794            let mut vxs = e.zeros(tc * n_embd)?;
13795            e.copy_into(&mut vxs, 0, &prev_last_h, n_embd)?;
13796            if tc > 1 {
13797                e.copy_view_into(
13798                    &mut vxs,
13799                    n_embd,
13800                    &vx.slice(0..(tc - 1) * n_embd),
13801                    (tc - 1) * n_embd,
13802                )?;
13803            }
13804            scratch.set_len(e, s)?;
13805            self.mtp_kv_fill_all(e, ch, &vxs, s, &mut scratch, embd_dev)?;
13806            // 3. draft chains at sampled positions, DESCENDING: a chain reads only slots
13807            //    [0..p) (true fills) and appends at >= p; the next (smaller-p) chain's set_len
13808            //    truncates those approximate appends before they can ever be read.
13809            let ps: Vec<usize> = (s..cend)
13810                .filter(|p| *p >= 1 && *p % stride == 0 && *p + k <= t_total)
13811                .collect();
13812            for &p in ps.iter().rev() {
13813                scratch.set_len(e, p)?;
13814                if p == s {
13815                    e.copy_into(&mut seed_buf, 0, &prev_last_h, n_embd)?;
13816                } else {
13817                    e.copy_view_into(
13818                        &mut seed_buf,
13819                        0,
13820                        &vx.slice((p - 1 - s) * n_embd..(p - s) * n_embd),
13821                        n_embd,
13822                    )?;
13823                }
13824                let mut e_tok = tokens[p];
13825                let mut d_seed = e.clone_dtod(&seed_buf)?;
13826                let chain_heads = !self.mtp_extra.is_empty();
13827                let mut chain_tokens = if chain_heads {
13828                    vec![tokens[p]]
13829                } else {
13830                    Vec::new()
13831                };
13832                let mut chain_seeds = if chain_heads {
13833                    vec![e.clone_dtod(&seed_buf)?]
13834                } else {
13835                    Vec::new()
13836                };
13837                let mut drafts: Vec<u32> = Vec::with_capacity(k);
13838                for j in 0..k {
13839                    let (dl_d, h_nextn) = if chain_heads {
13840                        self.mtp_chain_forward_dev(
13841                            e,
13842                            &chain_tokens,
13843                            &chain_seeds,
13844                            &mut scratch,
13845                            p,
13846                            embd_dev,
13847                            None,
13848                        )?
13849                    } else {
13850                        self.mtp_head_forward_dev(
13851                            e,
13852                            mtp,
13853                            e_tok,
13854                            &d_seed,
13855                            &mut scratch,
13856                            p + 1 + j,
13857                            embd_dev,
13858                            None,
13859                        )?
13860                    };
13861                    let tok_d = e.argmax_token_device(&dl_d, d_vocab)?;
13862                    let idx = e.dtoh_u32_one(&tok_d)?;
13863                    let d = match &mtp.d2t {
13864                        Some(map) => map[idx as usize],
13865                        None => idx,
13866                    };
13867                    drafts.push(d);
13868                    if chain_heads {
13869                        chain_tokens.push(d);
13870                        chain_seeds.push(h_nextn);
13871                    } else {
13872                        e_tok = d;
13873                        d_seed = h_nextn;
13874                    }
13875                }
13876                // targets may live in a LATER chunk's bg — resolved after the walk.
13877                rows.push((p, drafts, Vec::new()));
13878            }
13879            // 4. restore TRUE entries for the whole chunk (the next chunk's chains and fills
13880            //    expect scratch.len == cend with exact rows).
13881            scratch.set_len(e, s)?;
13882            self.mtp_kv_fill_all(e, ch, &vxs, s, &mut scratch, embd_dev)?;
13883            e.copy_view_into(
13884                &mut prev_last_h,
13885                0,
13886                &vx.slice((tc - 1) * n_embd..tc * n_embd),
13887                n_embd,
13888            )?;
13889            s = cend;
13890        }
13891        for (p, drafts, targets) in rows.iter_mut() {
13892            for j in 0..drafts.len() {
13893                targets.push(bg[*p + 1 + j]);
13894            }
13895        }
13896        rows.sort_by_key(|r| r.0);
13897        if nll_cnt > 0 {
13898            let mean = nll_sum / nll_cnt as f64;
13899            println!(
13900                "[replay-nll] tokens={nll_cnt} nll/token={mean:.5} ppl={:.4}",
13901                mean.exp()
13902            );
13903        }
13904        Ok((rows, bg))
13905    }
13906}
13907
13908#[cfg(test)]
13909mod vg_debt_tests {
13910    use super::dspark_vg_debt_projection;
13911
13912    /// TOOTH for the verify-graph admission accounting: the pool's projected remaining
13913    /// growth must be charged (pre-fix, admission charged 0 for a pool measured at
13914    /// 8,852 MiB), the projection must price the MARGINAL cost of one more key rather than
13915    /// extrapolating the pool's one-time shared allocation, and the doors that make growth
13916    /// impossible must zero the debt.
13917    #[test]
13918    fn vg_debt_projects_remaining_growth_and_respects_the_freeze_valves() {
13919        const MIB: usize = 1 << 20;
13920        let d = dspark_vg_debt_projection;
13921        // cold pool: nothing observed, one capture fits inside SPEC_SHRINK_RESERVE.
13922        assert_eq!(d(0, 256, 0, None), 0);
13923        // freeze valve MEMRA_DSPARK_VG_MAX=0: the pool cannot grow.
13924        assert_eq!(d(10, 0, 500 * MIB, None), 0);
13925        // saturated pool: at/past the cap the pool FREEZES, nothing left to reserve.
13926        assert_eq!(d(256, 256, 8852 * MIB, None), 0);
13927        assert_eq!(d(300, 256, 8852 * MIB, None), 0);
13928
13929        // BOOTSTRAP (one observation, growth unmeasurable): at most one more pool's worth.
13930        // The pre-fix mean rule extrapolated 255x here — the measured 8.5 GB phantom.
13931        assert_eq!(d(1, 256, 33 * MIB, None), 33 * MIB);
13932
13933        // MARGINAL, flat pool (the box9 receipt: reserved stayed ~33.6 MiB across captures
13934        // 1..3, so an additional key costs ~nothing and the debt must collapse to ~0 —
13935        // NOT the 8,556/4,261/2,830 MB the mean rule printed).
13936        assert_eq!(d(3, 256, 33 * MIB, Some((1, 33 * MIB))), 0);
13937
13938        // MARGINAL, genuinely growing pool: 40 MiB per new key over 2 keys, 250 slots left.
13939        let debt = d(6, 256, 273 * MIB, Some((4, 193 * MIB)));
13940        assert_eq!(debt, 250 * (40 * MIB));
13941        assert!(
13942            debt > 3 * (1536 * MIB),
13943            "real growth must dwarf SPEC_SHRINK_RESERVE"
13944        );
13945
13946        // a shrinking/recycled reading never becomes a negative charge.
13947        assert_eq!(d(6, 256, 10 * MIB, Some((4, 99 * MIB))), 0);
13948        // a stale observation at the same capture count falls back to bootstrap.
13949        assert_eq!(d(4, 256, 80 * MIB, Some((4, 80 * MIB))), 80 * MIB);
13950    }
13951}
13952
13953#[cfg(test)]
13954mod mtp_chain_tests {
13955    use super::mtp_chain_head_index;
13956
13957    #[test]
13958    fn embedded_step_heads_cycle_in_declared_order() {
13959        let actual: Vec<usize> = (0..8).map(|step| mtp_chain_head_index(step, 3)).collect();
13960        assert_eq!(actual, [0, 1, 2, 0, 1, 2, 0, 1]);
13961    }
13962
13963    #[test]
13964    fn standalone_draft_remains_single_head() {
13965        assert!((0..8).all(|step| mtp_chain_head_index(step, 1) == 0));
13966    }
13967}
13968
13969#[cfg(test)]
13970mod tp_verified_prefix_tests {
13971    use super::rewind_tp_kv_verified_prefix;
13972    use crate::tp::ResidentTpKvCache;
13973
13974    fn cache_with_committed_len(committed: usize) -> ResidentTpKvCache {
13975        let mut cache = ResidentTpKvCache::new(Vec::new(), 1, 1, 1, 1, 8);
13976        let transaction = cache.begin_transaction().unwrap();
13977        let target = cache.append_target(transaction, committed).unwrap();
13978        cache.publish_append(transaction, target).unwrap();
13979        let target = cache.commit_target(transaction, committed).unwrap();
13980        cache.publish_finalize(transaction, target).unwrap();
13981        cache
13982    }
13983
13984    #[test]
13985    fn replay_free_prefix_rewinds_tp_visibility_to_snapshot_plus_accepts() {
13986        let mut layers = vec![Some(cache_with_committed_len(5)), None];
13987        rewind_tp_kv_verified_prefix(&mut layers, &[Some(2), None], 1).unwrap();
13988        let cache = layers[0].as_ref().unwrap();
13989        assert_eq!(cache.committed_len(), 3);
13990        assert_eq!(cache.staged_len(), 3);
13991    }
13992
13993    #[test]
13994    fn replay_free_prefix_rejects_a_changed_tp_cache_shape() {
13995        let mut layers = vec![Some(cache_with_committed_len(1))];
13996        let error = rewind_tp_kv_verified_prefix(&mut layers, &[None], 1)
13997            .unwrap_err()
13998            .to_string();
13999        assert!(error.contains("changed shape"), "unexpected error: {error}");
14000    }
14001}
14002
14003#[cfg(test)]
14004mod dspark_sparse_tests {
14005    use super::dspark_sparse_softmax_topk;
14006
14007    #[test]
14008    fn topk_keeps_full_softmax_mass_and_stable_ties() {
14009        let logits = [1.0f32, 3.0, 3.0, -2.0];
14010        let (ids, top_logits, probs, tail) = dspark_sparse_softmax_topk(&logits, 2, 1.0).unwrap();
14011        assert_eq!(ids, vec![1, 2]);
14012        assert_eq!(top_logits, vec![3.0, 3.0]);
14013        let denominator = logits.iter().map(|value| (value - 3.0).exp()).sum::<f32>();
14014        let expected = 1.0 / denominator;
14015        assert!((probs[0] - expected).abs() < 1.0e-6);
14016        assert!((probs[1] - expected).abs() < 1.0e-6);
14017        assert!((tail - (1.0 - 2.0 * expected)).abs() < 1.0e-6);
14018        assert!((probs.iter().sum::<f32>() + tail - 1.0).abs() < 1.0e-6);
14019    }
14020}
14021
14022#[cfg(test)]
14023mod spec_replay_env_tests {
14024    use super::spec_replay_env_on;
14025
14026    #[test]
14027    fn replay_requires_literal_one() {
14028        assert!(!spec_replay_env_on(None));
14029        assert!(!spec_replay_env_on(Some("")));
14030        assert!(!spec_replay_env_on(Some("0")));
14031        assert!(!spec_replay_env_on(Some("true")));
14032        assert!(!spec_replay_env_on(Some("2")));
14033        assert!(spec_replay_env_on(Some("1")));
14034    }
14035}
14036
14037#[cfg(test)]
14038mod telem_tests {
14039    use super::{SPEC_TELEM_POS, SpecTelemetry, SpecTelemetryCounters};
14040
14041    #[test]
14042    fn synthetic_accept_masks_produce_tau_and_position_histogram() {
14043        let counters = SpecTelemetryCounters::default();
14044        for mask in [
14045            [true, true, true],
14046            [true, true, false],
14047            [true, false, false],
14048            [false, false, false],
14049        ] {
14050            let accepted = mask.iter().take_while(|&&value| value).count();
14051            counters.record_round(mask.len(), accepted);
14052        }
14053
14054        let snapshot = counters.snapshot();
14055        assert_eq!(
14056            (snapshot.rounds, snapshot.drafted, snapshot.accepted),
14057            (4, 12, 6)
14058        );
14059        assert_eq!(&snapshot.pos_drafted[..3], &[4, 4, 4]);
14060        assert_eq!(&snapshot.pos_accepted[..3], &[3, 2, 1]);
14061        assert_eq!(snapshot.tau(), 1.5);
14062        assert_eq!(snapshot.pos_drafted[3..], [0; SPEC_TELEM_POS - 3]);
14063        assert_eq!(snapshot.pos_accepted[3..], [0; SPEC_TELEM_POS - 3]);
14064    }
14065
14066    /// The worker's per-burst pattern: stash, accumulate, diff — the delta must isolate
14067    /// exactly the burst's contribution (pool-resumed sessions carry prior requests' counts).
14068    #[test]
14069    fn delta_isolates_burst_contribution() {
14070        let mut t = SpecTelemetry::default();
14071        // "previous request": 2 rounds of k=3, accepts 3 then 1.
14072        for (kr, na) in [(3usize, 3usize), (3, 1)] {
14073            t.rounds += 1;
14074            t.drafted += kr as u64;
14075            t.accepted += na as u64;
14076            for j in 0..kr {
14077                t.pos_drafted[j] += 1;
14078            }
14079            for j in 0..na {
14080                t.pos_accepted[j] += 1;
14081            }
14082        }
14083        let before = t;
14084        // "this burst": 1 round k=3, accepts 2.
14085        t.rounds += 1;
14086        t.drafted += 3;
14087        t.accepted += 2;
14088        for j in 0..3 {
14089            t.pos_drafted[j] += 1;
14090        }
14091        for j in 0..2 {
14092            t.pos_accepted[j] += 1;
14093        }
14094        let d = t.delta_since(&before);
14095        assert_eq!((d.rounds, d.drafted, d.accepted), (1, 3, 2));
14096        assert_eq!(&d.pos_drafted[..3], &[1, 1, 1]);
14097        assert_eq!(&d.pos_accepted[..3], &[1, 1, 0]);
14098        assert_eq!(d.pos_drafted[3..], [0; SPEC_TELEM_POS - 3]);
14099    }
14100
14101    /// merge(delta) then merge(delta2) equals accumulating both — the per-model /metrics
14102    /// aggregation invariant.
14103    #[test]
14104    fn merge_accumulates_fieldwise() {
14105        let mut agg = SpecTelemetry::default();
14106        let mut d1 = SpecTelemetry {
14107            rounds: 2,
14108            drafted: 6,
14109            accepted: 4,
14110            ..Default::default()
14111        };
14112        d1.pos_drafted[0] = 2;
14113        d1.pos_accepted[0] = 2;
14114        let mut d2 = SpecTelemetry {
14115            rounds: 1,
14116            drafted: 3,
14117            accepted: 1,
14118            ..Default::default()
14119        };
14120        d2.pos_drafted[0] = 1;
14121        d2.pos_accepted[0] = 1;
14122        d2.pos_drafted[1] = 1;
14123        agg.merge(&d1);
14124        agg.merge(&d2);
14125        assert_eq!((agg.rounds, agg.drafted, agg.accepted), (3, 9, 5));
14126        assert_eq!(agg.pos_drafted[0], 3);
14127        assert_eq!(agg.pos_accepted[0], 3);
14128        assert_eq!(agg.pos_drafted[1], 1);
14129        assert_eq!(agg.pos_accepted[1], 0);
14130    }
14131
14132    /// Wrong-snapshot diff saturates to zero instead of wrapping — the counters feed a
14133    /// public metrics surface and must never publish a u64-wrapped garbage value.
14134    #[test]
14135    fn delta_saturates_never_wraps() {
14136        let small = SpecTelemetry {
14137            rounds: 1,
14138            drafted: 2,
14139            accepted: 1,
14140            ..Default::default()
14141        };
14142        let big = SpecTelemetry {
14143            rounds: 5,
14144            drafted: 15,
14145            accepted: 9,
14146            ..Default::default()
14147        };
14148        let d = small.delta_since(&big);
14149        assert_eq!((d.rounds, d.drafted, d.accepted), (0, 0, 0));
14150    }
14151}
14152
14153#[cfg(test)]
14154mod opti_fork_tests {
14155    use super::{
14156        OptiControllerPolicy, OptiForkAction, OptiForkGateMode, OptiForkGenerationTracker,
14157    };
14158
14159    #[test]
14160    fn controller_threshold_and_three_miss_breaker_are_exact() {
14161        let mut policy = OptiControllerPolicy {
14162            threshold: 0.7,
14163            consecutive_misses: 0,
14164            breaker_tripped: false,
14165        };
14166        assert!(!policy.admit(0.699_999));
14167        assert!(policy.admit(0.7));
14168        assert!(!policy.resolve(false));
14169        assert!(!policy.resolve(false));
14170        assert!(policy.resolve(false));
14171        assert!(policy.breaker_tripped);
14172        assert!(!policy.admit(1.0));
14173        assert!(
14174            !policy.resolve(true),
14175            "a resolved hit cannot re-arm a tripped request"
14176        );
14177        assert!(policy.breaker_tripped);
14178    }
14179
14180    #[test]
14181    fn zero_threshold_is_the_true_unconditional_measurement_arm() {
14182        let mut policy = OptiControllerPolicy {
14183            threshold: 0.0,
14184            consecutive_misses: 0,
14185            breaker_tripped: false,
14186        };
14187        for _ in 0..16 {
14188            assert!(policy.admit(0.0));
14189            assert!(!policy.resolve(false));
14190        }
14191        for invalid in [f32::NAN, f32::INFINITY, -0.01, 1.01] {
14192            assert!(
14193                !policy.admit(invalid),
14194                "invalid q proxy must fail closed: {invalid}"
14195            );
14196        }
14197        assert!(!policy.breaker_tripped);
14198        assert_eq!(policy.consecutive_misses, 0);
14199    }
14200
14201    #[test]
14202    fn alternating_mode_flips_by_generation_not_round_parity() {
14203        assert_eq!(OptiForkGateMode::Alternate.action(0), OptiForkAction::Hit);
14204        assert_eq!(OptiForkGateMode::Alternate.action(1), OptiForkAction::Miss);
14205        assert_eq!(OptiForkGateMode::Alternate.action(8), OptiForkAction::Hit);
14206        assert_eq!(OptiForkGateMode::Alternate.action(9), OptiForkAction::Miss);
14207    }
14208
14209    #[test]
14210    fn live_generation_cannot_be_overwritten() {
14211        let mut tracker = OptiForkGenerationTracker::default();
14212        let g0 = tracker.reserve().unwrap();
14213        let g1 = tracker.reserve().unwrap();
14214        let err = tracker.reserve().unwrap_err().to_string();
14215        assert!(
14216            err.contains("still owns generation 0"),
14217            "unexpected error: {err}"
14218        );
14219        tracker.retire(g0).unwrap();
14220        let g2 = tracker.reserve().unwrap();
14221        assert_eq!((g2.id, g2.slot), (2, 0));
14222        tracker.retire(g1).unwrap();
14223        tracker.retire(g2).unwrap();
14224    }
14225
14226    #[test]
14227    fn teardown_rejects_a_stale_generation_tag() {
14228        let mut tracker = OptiForkGenerationTracker::default();
14229        let g0 = tracker.reserve().unwrap();
14230        tracker.retire(g0).unwrap();
14231        let err = tracker.retire(g0).unwrap_err().to_string();
14232        assert!(err.contains("teardown mismatch"), "unexpected error: {err}");
14233    }
14234}
14235
14236#[cfg(test)]
14237mod draft_graph_fallback_tests {
14238    use super::DraftGraphFallback;
14239
14240    /// The Q2 contract, part (a): a fallback flip is LOUD — exactly once per flip.
14241    #[test]
14242    fn flip_is_loud_once_and_memoized_after() {
14243        let mut f = DraftGraphFallback::default();
14244        let line = f
14245            .mark_greedy("out of memory")
14246            .expect("first flip must return the warn line");
14247        assert!(
14248            line.contains("WARN"),
14249            "flip line must be warn-level: {line}"
14250        );
14251        assert!(
14252            line.contains("out of memory"),
14253            "flip line must carry the reason: {line}"
14254        );
14255        assert!(f.greedy_failed());
14256        // re-marking an already-failed graph is the memoization: quiet, still failed.
14257        assert!(f.mark_greedy("out of memory").is_none());
14258        assert!(f.greedy_failed());
14259        // the two graphs' flags are independent (greedy flip leaves sampled capturable).
14260        assert!(!f.sampled_failed());
14261        let line_s = f
14262            .mark_sampled("capture unsupported")
14263            .expect("sampled flip is its own flip");
14264        assert!(
14265            line_s.contains("sampled"),
14266            "sampled flip names itself: {line_s}"
14267        );
14268        assert!(f.mark_sampled("capture unsupported").is_none());
14269    }
14270
14271    /// The Q2 contract, part (b): resume-from-pool RESETS both flags (fresh capture chance),
14272    /// and says so exactly when there was something to reset.
14273    #[test]
14274    fn reset_on_resume_clears_flags_and_logs_once() {
14275        let mut f = DraftGraphFallback::default();
14276        // clean session: resume is silent, nothing to reset.
14277        assert!(f.reset_on_resume().is_none());
14278        f.mark_greedy("oom").unwrap();
14279        f.mark_sampled("oom").unwrap();
14280        let note = f
14281            .reset_on_resume()
14282            .expect("a set flag must produce the reset note");
14283        assert!(
14284            note.contains("greedy+sampled"),
14285            "note names what was reset: {note}"
14286        );
14287        assert!(
14288            !f.greedy_failed() && !f.sampled_failed(),
14289            "both flags cleared"
14290        );
14291        // and the NEXT failure after a reset is a fresh flip — loud again.
14292        assert!(f.mark_greedy("oom again").is_some());
14293        let note2 = f.reset_on_resume().expect("greedy-only reset");
14294        assert!(note2.contains("(greedy)"), "single-flag note: {note2}");
14295    }
14296
14297    /// Shape-change clears (dmask realloc / mask-shape mismatch / s_key change) stay silent —
14298    /// they precede a fresh capture attempt whose own failure re-flips loudly.
14299    #[test]
14300    fn shape_change_clears_are_silent() {
14301        let mut f = DraftGraphFallback::default();
14302        f.mark_greedy("oom").unwrap();
14303        f.clear_greedy();
14304        assert!(!f.greedy_failed());
14305        f.mark_sampled("oom").unwrap();
14306        f.clear_sampled();
14307        assert!(!f.sampled_failed());
14308        // after a silent clear there is nothing left for resume to report.
14309        assert!(f.reset_on_resume().is_none());
14310    }
14311}
14312
14313/// SAMPLED DRAFT-GRAPH KEY (lane/graph-s-key-exactness-20260819).
14314///
14315/// These are the CPU teeth for an exactness bug whose live reproduction needs a GPU, a trunk, a
14316/// drafter and a two-turn session: the key itself. Every test below fails against the pre-fix key
14317/// `(seed, temp.to_bits(), k)` — `legacy_key` restates it so the collision is explicit rather
14318/// than remembered.
14319#[cfg(test)]
14320mod sampled_graph_key_tests {
14321    use super::{SampledGraphKey, debug_t_pred0};
14322
14323    /// The pre-fix key, verbatim: `let s_key = (sp_seed, sp_temp.to_bits(), k);`
14324    fn legacy_key(k: &SampledGraphKey) -> (u64, u32, usize) {
14325        (k.seed, k.temp_bits, k.k)
14326    }
14327
14328    fn pure_temp_key() -> SampledGraphKey {
14329        // temperature 1.0, filters off — today's serve default, the shape that parks a graph.
14330        SampledGraphKey::new(12345, 1.0, 3, 0, 1.0, 0.0, false)
14331    }
14332
14333    /// THE COLLISION. Two requests that differ ONLY in the truncation filters shared one key, so
14334    /// a parked pure-temp graph survived into a filtered request and the launch site launched it.
14335    #[test]
14336    fn vendor_filters_change_the_key() {
14337        let parked = pure_temp_key();
14338        // qwen3.8 generation_config.json — what the vendor-default flip makes the default shape.
14339        let vendor = SampledGraphKey::new(12345, 1.0, 3, 20, 0.95, 0.0, false);
14340        assert_eq!(
14341            legacy_key(&parked),
14342            legacy_key(&vendor),
14343            "pre-fix key collided: this is the bug, and the reason a test asserts on it",
14344        );
14345        assert_ne!(parked, vendor, "post-fix key must separate the two regimes");
14346        assert!(parked.pure_temp());
14347        assert!(!vendor.pure_temp());
14348    }
14349
14350    /// Each distribution-shaping field alone is enough to drop the parked graph.
14351    #[test]
14352    fn every_filter_field_is_keyed() {
14353        let base = pure_temp_key();
14354        for (what, other) in [
14355            (
14356                "top_k",
14357                SampledGraphKey::new(12345, 1.0, 3, 20, 1.0, 0.0, false),
14358            ),
14359            (
14360                "top_p",
14361                SampledGraphKey::new(12345, 1.0, 3, 0, 0.95, 0.0, false),
14362            ),
14363            (
14364                "min_p",
14365                SampledGraphKey::new(12345, 1.0, 3, 0, 1.0, 0.05, false),
14366            ),
14367            (
14368                "penalties",
14369                SampledGraphKey::new(12345, 1.0, 3, 0, 1.0, 0.0, true),
14370            ),
14371        ] {
14372            assert_ne!(base, other, "{what} must be part of the key");
14373            assert!(!other.pure_temp(), "{what} leaves the pure-temp regime");
14374            assert_eq!(
14375                legacy_key(&base),
14376                legacy_key(&other),
14377                "{what} was invisible to the pre-fix key",
14378            );
14379        }
14380    }
14381
14382    /// The baked constants stay keyed (this half was always right — regression cover for it).
14383    #[test]
14384    fn baked_constants_stay_keyed() {
14385        let base = pure_temp_key();
14386        assert_ne!(
14387            base,
14388            SampledGraphKey::new(999, 1.0, 3, 0, 1.0, 0.0, false),
14389            "seed"
14390        );
14391        assert_ne!(
14392            base,
14393            SampledGraphKey::new(12345, 0.7, 3, 0, 1.0, 0.0, false),
14394            "temp"
14395        );
14396        assert_ne!(
14397            base,
14398            SampledGraphKey::new(12345, 1.0, 4, 0, 1.0, 0.0, false),
14399            "k"
14400        );
14401        // bitwise on temperature: 0.7f32 vs the same value re-derived must NOT differ.
14402        assert_eq!(
14403            SampledGraphKey::new(1, 0.7, 3, 0, 1.0, 0.0, false),
14404            SampledGraphKey::new(1, 7.0 / 10.0, 3, 0, 1.0, 0.0, false),
14405        );
14406    }
14407
14408    /// THE LOAD-BEARING HALF OF THE SEED DECISION (lane/session-resume-sampler-predicate-
14409    /// 20260820). The whole-session resume predicate deliberately does NOT compare `seed`: an
14410    /// omitted serve `seed` draws fresh per-request entropy, so comparing it would refuse every
14411    /// seed-omitting sampled conversation. That is only sound because the one piece of parked state
14412    /// that BAKES the seed — this graph — is re-keyed on it, so a seed change drops and recaptures.
14413    ///
14414    /// This test is the other end of that argument, asserted here rather than remembered in a
14415    /// comment: if a future change dropped `seed` from the key, the resume predicate's exclusion
14416    /// would silently become the unsound thing it is documented not to be.
14417    /// (Paired with `seed_alone_does_not_refuse` in `memra-sampling`.)
14418    #[test]
14419    fn seed_alone_still_rekeys_the_draft_graph() {
14420        let parked = pure_temp_key();
14421        let reseeded = SampledGraphKey::new(999, 1.0, 3, 0, 1.0, 0.0, false);
14422        assert_ne!(
14423            parked, reseeded,
14424            "a seed-only change MUST drop the parked sampled graph — the resume predicate's \
14425             decision not to compare seed rests on exactly this",
14426        );
14427        // Same regime on both sides: the drop is a recapture, not a fall to the eager chain
14428        // because of a filter difference.
14429        assert!(parked.pure_temp() && reseeded.pure_temp());
14430    }
14431
14432    /// `pure_temp()` is the capture guard's predicate, computed from the key so the two cannot
14433    /// drift. The equality below is the invariant the launch-site guard asserts: identical keys
14434    /// agree on the regime, so a graph that survives the drop is legal to launch.
14435    #[test]
14436    fn equal_keys_agree_on_the_regime() {
14437        let a = SampledGraphKey::new(7, 0.8, 3, 20, 0.95, 0.0, false);
14438        let b = SampledGraphKey::new(7, 0.8, 3, 20, 0.95, 0.0, false);
14439        assert_eq!(a, b);
14440        assert_eq!(a.pure_temp(), b.pure_temp());
14441        // top_p slightly above 1.0 (a client sending 1.0 exactly, or an operator default) is
14442        // still the unfiltered regime, matching the original `sp.top_p >= 1.0` test.
14443        assert!(SampledGraphKey::new(7, 0.8, 3, 0, 1.0, 0.0, false).pure_temp());
14444        assert!(SampledGraphKey::new(7, 0.8, 3, 0, 1.5, -1.0, false).pure_temp());
14445    }
14446
14447    /// MEMRA_DEBUG_SPEC on a SAMPLED spec request past round 0: the print must render without
14448    /// indexing the empty greedy `preds` vector (it panicked the GPU worker before this lane).
14449    #[test]
14450    fn debug_print_survives_the_sampled_arm() {
14451        // round >= 1 with a pending bonus == base 1, sampled == `preds` empty.
14452        assert_eq!(debug_t_pred0(true, 1, 4242, &[]), "n/a");
14453        assert_eq!(debug_t_pred0(true, 2, 4242, &[]), "n/a");
14454        // round 0 without a pending bonus still reports last_pred, in both arms.
14455        assert_eq!(debug_t_pred0(true, 0, 4242, &[]), "4242");
14456        assert_eq!(debug_t_pred0(false, 0, 4242, &[7, 8]), "4242");
14457        // greedy keeps the real prediction it always printed.
14458        assert_eq!(debug_t_pred0(false, 1, 4242, &[7, 8]), "7");
14459        assert_eq!(debug_t_pred0(false, 2, 4242, &[7, 8]), "8");
14460    }
14461}