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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::cache::{Cache, KvLayer};
12use crate::forward::argmax;
13use crate::hybrid::{FullAttnLayer, HybridModel, LinearAttnLayer, Mixer, MtpHead};
14use crate::Engine;
15use cudarc::driver::CudaSlice;
16
17/// H-SEED CONVENTION (MEMRA_SPEC_HPOST=1): feed the MTP head the POST-norm hidden — trunk rows
18/// hand over `output_norm(x)` and the draft chain recurrence hands over `shared_head_norm(h_nextn)`
19/// (= final_h) — matching the reference engines: llama.cpp #24025 ("qwen35: use post-norm hidden
20/// state for MTP", t_h_nextn is taken AFTER the final norm in both trunk and MTP graphs) and
21/// SGLang's qwen3_5_mtp (spec_info.hidden_states = the target model's post-norm output). memra's
22/// historical convention (default, MTP-PLAN §A) is PRE-norm x. Draft-quality-only: exactness is
23/// the verify's job either way; acceptance arbitrates. OnceLock: read once, hot-loop safe.
24pub(crate) fn spec_hpost() -> bool {
25    static H: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
26    *H.get_or_init(|| {
27        std::env::var("MEMRA_SPEC_HPOST")
28            .map(|v| v != "0")
29            .unwrap_or(false)
30    })
31}
32
33/// LEAN VERIFY (default ON since 2026-07-08; MEMRA_SPEC_LEAN=0 reverts — close35 lane): the verify m-scaling
34/// probe + nsys diff showed the verify t-path pays ~1.0ms/call at m=1 over eager decode on the
35/// 35B, and the kernels are NOT the cause (dev-MoE identical, kernel-time delta only +179us).
36/// The overhead is (a) ~250 extra cuMemsetD8Async/call from `e.zeros()` on buffers every kernel
37/// fully overwrites (~0.9ms host issue + ~0.35ms GPU) and (b) the t=1 FA rows dispatch (rows_v2 +
38/// combine_rows, +50us vs the eager fa_decode pair). This flag switches (a) fully-overwritten
39/// verify buffers to `e.uninit` (identical bytes: every element is written before read) and
40/// (b) t==1 verify FA to the eager `fa_decode` entry (byte-identical: kernel-check pins the
41/// rows-vs-loop identity and the per-row loop at t=1 IS fa_decode on the same q). Gates arbitrate.
42pub(crate) fn spec_lean() -> bool {
43    static L: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
44    // DEFAULT ON since 2026-07-08 (MEMRA_SPEC_LEAN=0 reverts): bit-identical (buffers fully
45    // overwritten; gates green incl maxdiff-identical run-gen) and measured +2.4% e2e p3 /
46    // +1.5% p2 at the daily 35B config. m=1 verify now costs eager-decode parity.
47    *L.get_or_init(|| {
48        std::env::var("MEMRA_SPEC_LEAN")
49            .map(|v| v != "0")
50            .unwrap_or(true)
51    })
52}
53
54/// SMALL-M BATCHED VERIFY (default ON since 2026-07-09; MEMRA_SPEC_M2=0 reverts — lane/spec-m2): extend the
55/// batched linear-attn verify arm down to t=2 and batch the MoE dev token loop over a
56/// grid.z=token axis at every verify t. The close35 m-scaling probe put the m=2 verify tier at
57/// x1.54 of m=1 (llama x1.14); the per-column linear chain (t<3) and the serial MoE dev token
58/// loop are the two launch-structure causes. Both changes are LAUNCH-STRUCTURE ONLY:
59/// (a) the batched conv's t<pad ring update is pure copies (ssm_conv_ring_rebuild from a cloned
60///     ring — the ring stores raw input columns); every arithmetic kernel is the same one the
61///     t>=3 arm already runs (matmul_decode_exact bit-identical at m=2-4, gdn_scan's internal
62///     t-loop == chained T=1 steps);
63/// (b) the MoE dev-rows twins run the serial loop's per-token warp program with tok-offset
64///     pointers (same sel/w/aq/ad bytes, same dot order, same slot-ordered FMA chain).
65/// Gates arbitrate: run-spec K=1..8 self-consistency (35B+9B), kernel-check, run-gen argmax.
66pub(crate) fn spec_m2() -> bool {
67    static M: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
68    // DEFAULT ON since 2026-07-09 (MEMRA_SPEC_M2=0 reverts): launch-structure only — t=2
69    // batched linear arm (ring-roll copies, zero new FP order) + MoE dev-rows kernels
70    // (grid.z=token, 4 launches/layer at any verify t). Acceptance bit-identical at every K;
71    // 35B p2 +3.4% / p3 +3.6%; the profitable-K plateau widens (new optimum K=3 at 223).
72    *M.get_or_init(|| {
73        std::env::var("MEMRA_SPEC_M2")
74            .map(|v| v != "0")
75            .unwrap_or(true)
76    })
77}
78pub(crate) fn spec_stream() -> bool {
79    static ON: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
80    *ON.get_or_init(|| std::env::var("MEMRA_SPEC_STREAM").as_deref() == Ok("1"))
81}
82pub(crate) fn spec_stream_m() -> usize {
83    static M: std::sync::OnceLock<usize> = std::sync::OnceLock::new();
84    *M.get_or_init(|| {
85        std::env::var("MEMRA_SPEC_STREAM_M")
86            .ok()
87            .and_then(|v| v.parse().ok())
88            .unwrap_or(4)
89    })
90}
91pub(crate) fn spec_devacc() -> bool {
92    static ON: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
93    *ON.get_or_init(|| std::env::var("MEMRA_SPEC_DEVACC").as_deref() == Ok("1"))
94}
95
96/// GRAMMAR HOOK for constrained spec decode (lane/constrained-full, 2026-08-03). The engine
97/// stays llguidance-agnostic: the server adapts its per-session grammar state behind this
98/// trait. CONTRACT (the verify-side truncation rule — token-identical to constrained plain
99/// greedy decode): the exactness walk runs UNMASKED first; the hook then (a) truncates
100/// acceptance at the first grammar-illegal accepted token, and (b) when the truncation fired
101/// or the bonus is illegal, the engine recomputes that slot as the MASKED argmax of the
102/// target's own verify column (an unmasked argmax that is grammar-legal IS the masked argmax
103/// — masking only removes tokens — so the common case pays nothing). `consume` advances the
104/// state with each EMITTED token in order; EOS handling is the implementor's job (skip).
105pub trait SpecConstraint {
106    /// -inf the current state's banned ids on a HOST logits row (prompt-tail / init-feed
107    /// masked argmax).
108    fn mask_logits(&mut self, logits: &mut [f32]) -> Result<(), String>;
109    /// Packed 32-bit bitset words of the CURRENT state's allowed set (device-mask form).
110    fn mask_words(&mut self) -> Result<Vec<u32>, String>;
111    /// Is `tok` consumable in the CURRENT state?
112    fn is_allowed(&mut self, tok: u32) -> Result<bool, String>;
113    /// Advance the state with an emitted token.
114    fn consume(&mut self, tok: u32) -> Result<(), String>;
115
116    // --- DRAFT-SIDE MASKING (lane/draft-mask, 2026-08-04) ---
117    // The drafter proposed grammar-illegal tokens under tight schemas, so verify-side
118    // truncation cut nearly every round (measured acceptance 0.467-0.513 tight vs 0.62-0.82
119    // loose, research/constrained-full-20260803). These three methods let the engine mask the
120    // DRAFT model's own sampling with the grammar's legal set, so proposals are legal by
121    // construction. The state they walk is a SPECULATIVE CLONE of the session matcher — the
122    // real state is advanced only by `consume` (emitted tokens), so verify-side truncation
123    // stays the correctness backstop and the emitted stream is unchanged by construction
124    // (an accepted draft is the target's unmasked argmax AND grammar-legal, hence the masked
125    // argmax; a cut slot is recomputed as the masked argmax either way).
126    // Default impls = feature OFF (pre-lane behaviour: unmasked drafts).
127
128    /// Is draft-side masking available on this hook? Probed ONCE per burst, before the draft
129    /// graph is captured (the mask is an in-graph node — its presence is a capture-time shape).
130    fn draft_mask_enabled(&self) -> bool {
131        false
132    }
133    /// Start a draft chain: clone the CURRENT (committed) grammar state into the speculative
134    /// slot. Called once per spec round, before the first draft position.
135    fn draft_begin(&mut self) -> Result<(), String> {
136        Ok(())
137    }
138    /// Packed 32-bit bitset words of the SPECULATIVE state's allowed set (target-vocab ids),
139    /// for the draft position about to be sampled. `None` = draft masking off (no-op).
140    fn draft_mask_words(&mut self) -> Result<Option<Vec<u32>>, String> {
141        Ok(None)
142    }
143    /// Advance the SPECULATIVE state with a PROPOSED draft token. `false` = the chain cannot
144    /// continue (EOS proposed, or an unmasked position proposed something illegal) — the
145    /// engine stops drafting; the token already pushed still goes through verify.
146    fn draft_advance(&mut self, _tok: u32) -> Result<bool, String> {
147        Ok(false)
148    }
149}
150
151/// DRAFT-MASK UPLOAD (lane/draft-mask): pull the speculative state's allowed set (TARGET-id
152/// space) from the hook, project it into the DRAFT head's vocab space, and upload it into the
153/// stable device buffer the draft chain reads. Returns false when the chain must stop drafting:
154/// the hook handed out no mask, or NO draft-vocab row is grammar-legal at this position (a
155/// trimmed FR-Spec head genuinely cannot propose a legal token there — masking it would leave
156/// a fully-banned row whose argmax is meaningless, so the round drafts fewer tokens and the
157/// verify emits the masked argmax as usual).
158fn upload_draft_mask(
159    e: &Engine,
160    c: &mut dyn SpecConstraint,
161    dst: &mut CudaSlice<u32>,
162    d2t: Option<&Vec<u32>>,
163    d_vocab: usize,
164    words: usize,
165) -> Result<bool, Box<dyn std::error::Error>> {
166    let Some(tw) = c.draft_mask_words().map_err(|e2| format!("constraint: {e2}"))? else {
167        return Ok(false);
168    };
169    let bit = |t: usize| -> bool {
170        let w = t >> 5;
171        w < tw.len() && (tw[w] >> (t & 31)) & 1 == 1
172    };
173    let mut buf = vec![0u32; words];
174    match d2t {
175        // TRIMMED draft head: row i proposes target id d2t[i] — permute the mask accordingly.
176        Some(map) => {
177            for (i, &t) in map.iter().enumerate().take(d_vocab) {
178                if bit(t as usize) {
179                    buf[i >> 5] |= 1u32 << (i & 31);
180                }
181            }
182        }
183        // UNTRIMMED: draft ids ARE target ids; the packed words transfer verbatim (a short
184        // mask leaves the padded tail zeroed == banned, same rule as constrained::apply_mask).
185        None => {
186            let n = tw.len().min(words);
187            buf[..n].copy_from_slice(&tw[..n]);
188        }
189    }
190    if buf.iter().all(|w| *w == 0) {
191        return Ok(false);
192    }
193    e.htod_u32_into(dst, &buf)?;
194    Ok(true)
195}
196
197/// Keep the full token-embedding table in host memory and upload only the rows needed by each
198/// MTP/verify step. This is an exact memory-capacity seam for very large BF16 vocab tables: host
199/// gather expands the same source bits to f32, and only O(T*n_embd) bytes cross PCIe per step.
200/// CUDA-graph/round-stream draft paths require device token ids and therefore stay disabled.
201pub(crate) fn spec_host_embd() -> bool {
202    static ON: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
203    *ON.get_or_init(|| std::env::var("MEMRA_SPEC_HOST_EMBD").as_deref() == Ok("1"))
204}
205
206/// VERIFY-TIER TRUNK LAUNCH-FUSION (default ON since 2026-07-09; MEMRA_SPEC_FUSED_T=0 reverts — lane/close35b): extend
207/// the t=1 fused2/fused3 Q8_0 trunk launches to the batched verify tier (t=2-4, the K=1..3
208/// verify shapes). At t>1 the trunk pairs/triples (35B wqkv+wqkv_gate, wq/wk/wv,
209/// gate_shexp+up_shexp) each run a separate `matmul_decode_exact` — one q8_1 re-quantize of the
210/// SAME activation plus one _b2/_b4 launch per tensor. The fused twins share ONE quantize and
211/// ONE launch per group; per (tensor,token,row) the kernel body is q8_0_mmvq_batched verbatim
212/// with the identical row mapping -> BIT-IDENTICAL by construction (kernel-check pins it,
213/// run-spec K=1..8 + acceptance identity arbitrate e2e).
214pub(crate) fn spec_fused_t() -> bool {
215    static F: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
216    // DEFAULT ON since 2026-07-09 (MEMRA_SPEC_FUSED_T=0 reverts): verify t=2-4 trunk launch-fusion
217    // (fused2/fused3 Q8_0 batched twins, bit-identical by construction — m=1 block-offset split on
218    // the batched body). m=2 marginal token 2117->1762us; 35B daily: p3 +3.7% (crosses llama), p2 +5%.
219    *F.get_or_init(|| {
220        std::env::var("MEMRA_SPEC_FUSED_T")
221            .map(|v| v != "0")
222            .unwrap_or(true)
223    })
224}
225
226/// zeros/uninit switch for verify-path buffers that are FULLY OVERWRITTEN before any read.
227/// Only call this on such buffers — the lean contract is "identical bytes by construction".
228fn vbuf(e: &Engine, n: usize) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
229    if spec_lean() {
230        e.uninit(n)
231    } else {
232        e.zeros(n)
233    }
234}
235
236/// Scratch KV for the MTP block (one full-attn layer).
237///
238/// PERSISTENT MODE (default, 2026-07-03 — the acceptance lever): sized cap = max_ctx and kept in
239/// sync with the COMMITTED sequence — slot p holds the MTP block's K/V for committed token p
240/// (roped p+1, the chain's rope convention), so the draft chain's self-attention sees the FULL
241/// committed history instead of only the current round's 1..K+1 chain tokens (the reference
242/// engine's "mtp_update" design). Entries come from two sources:
243///   - chain appends: accepted positions KEEP their chain-computed entries (embedding exact,
244///     hidden chain-approximate — the reference engine accepts the same);
245///   - `mtp_kv_fill` batches: prompt positions + the last-draft position on full accept, computed
246///     from EXACT trunk hiddens (K/V-only MTP-block pass, no attention/FFN/lm_head).
247/// Rejected drafts / p-min extras / pseudo-seed appends are all discarded by the round-start
248/// `set_len` truncation (the KvLayer len mechanism — §C rollback for the draft side).
249/// Multi-turn spec-decode session (2026-07-05): trunk Cache + persistent MTP draft scratch +
250/// the committed token list, alive across generate_spec_session calls. Turn N+1 primes ONLY its
251/// suffix (chunked continuation prime over the quantized past) and mtp_kv_fill's its suffix rows,
252/// then the round loop runs unchanged. `last_h` carries the pre-output_norm hidden of the last
253/// committed row across turns (the predecessor-pairing seed + fill anchor).
254/// Per-request sampling config for the sampled-spec serve path.
255#[derive(Clone, Copy, Debug)]
256pub struct SpecSampling {
257    pub temp: f32,
258    pub seed: u64,
259    pub top_k: i32,            // 0 = off
260    pub top_p: f32,            // 1.0 = off
261    pub min_p: f32,            // 0.0 = off
262    pub penalty_last_n: usize, // 0 = penalties off
263    pub penalty_repeat: f32,
264    pub penalty_freq: f32,
265    pub penalty_present: f32,
266}
267
268pub struct SpecSession {
269    pub(crate) cache: Cache,
270    pub(crate) scratch: MtpScratch,
271    /// Every token whose state the caches hold, in order (prompt turns + generated), INCLUDING
272    /// overshoot: spec commits accepted drafts past max_new; those rows are in the caches, so the
273    /// session must count them. Callers render output from this, not from their own echo.
274    pub committed: Vec<u32>,
275    /// Pre-output_norm hidden of the LAST committed row (device). None before the first turn.
276    pub(crate) last_h: Option<CudaSlice<f32>>,
277    /// Greedy argmax predicting the token AFTER committed.last() (from the last turn's final
278    /// logits). Fuels empty-suffix continuation bursts (serve): the next turn emits this token
279    /// first, feeds it, and the round loop resumes without any prime. None before the first turn.
280    pub next_pred: Option<u32>,
281    /// SAMPLED-SPEC stream continuity across bursts: Philox event counters persist here so a
282    /// session's randomness never repeats between generate_spec_session calls. (0,0) at admit.
283    pub sctr: u32,
284    pub uctr: u32,
285    /// PERSISTENT DRAFT-GRAPH CONTEXT (2026-08-01, the serve-burst fixed-cost fix): the captured
286    /// draft graph(s) + every device I/O buffer they bake, carried ACROSS generate_spec_session
287    /// calls. Before this, every serve burst re-captured the draft graph (2 warmup forwards +
288    /// instantiate) — measured ~16ms/burst on H100 q27 (MEMRA_SPEC_BURST sweep,
289    /// research/spec-serving-20260801). None before the first turn; error paths drop it
290    /// (next burst recaptures — serve retires errored sessions anyway).
291    pub(crate) draft_ctx: Option<DraftGraphCtx>,
292    /// PENDING-CARRY across bursts (2026-08-01, the serve burst-boundary fix): the bonus token
293    /// emitted by the last round but NOT committed to the caches. The old tail committed it with
294    /// a solo T=1 trunk pass (+ draft fill), and the next burst's setup fed the stashed next_pred
295    /// with ANOTHER solo pass — 2x ~11.5ms/burst measured on H100 q27 ([spec-setup] trace).
296    /// Carrying it lets the next empty-suffix greedy burst consume it as round-0 verify col 0,
297    /// exactly like a mid-burst full-accept boundary (no solo passes). INVARIANT: when set,
298    /// `committed` (== cache rows) EXCLUDES this token although it was already emitted in the
299    /// last burst's output, and `last_h` holds the hidden of the last COMMITTED row (its
300    /// predecessor — the chain-seed/fill anchor). `next_pred` is None (unknown without the
301    /// commit pass). Non-empty-suffix or sampled turns must flush first (spec_flush_pending);
302    /// generate_spec_session_sampled does this at entry, and serve parks only flushed sessions.
303    pub pending_tok: Option<u32>,
304}
305impl SpecSession {
306    /// Context capacity of the session's caches (the server's ContextFull guard).
307    pub fn cache_max_ctx(&self) -> usize {
308        self.cache.max_ctx
309    }
310}
311
312/// Per-session persistent draft-graph context: the captured CUDA graph(s) plus the device
313/// buffers whose POINTERS the capture bakes. Reuse legality: the greedy capture bakes only
314/// session-stable pointers (the session's own MtpScratch KV — allocated once, never realloc'd;
315/// the model's resident embedding; the process-wide OnceLock p_min) and the g_* buffers held
316/// HERE — so one capture serves the session's whole lifetime. The sampled capture additionally
317/// bakes (seed, temp) as capture-time constants and needs k q-slots — keyed by `s_key`, dropped
318/// and recaptured when a pool-resumed request changes them. `*_failed` memoizes a failed capture
319/// so the eager fallback doesn't pay a doomed capture attempt every burst.
320pub(crate) struct DraftGraphCtx {
321    g_tok: CudaSlice<u32>,
322    g_pos: CudaSlice<i32>,
323    g_seed: CudaSlice<f32>,
324    g_p: CudaSlice<f32>,
325    g_ctr: CudaSlice<u32>,
326    g_q: CudaSlice<f32>,
327    g_perturb: CudaSlice<f32>,
328    q_slots: Vec<CudaSlice<f32>>,
329    /// DRAFT-SIDE GRAMMAR MASK (lane/draft-mask): packed allowed-set words over the DRAFT
330    /// head's vocab, at a STABLE address so the captured draft graph's mask node reads the
331    /// per-position contents the host re-uploads before each replay (the graph-promote
332    /// pattern from decode.rs). Empty unless the session drafts under a grammar.
333    g_dmask: CudaSlice<u32>,
334    /// was `graph` captured WITH the mask node? A parked graph of the wrong shape is dropped.
335    graph_masked: bool,
336    graph: Option<cudarc::driver::CudaGraph>,
337    graph_failed: bool,
338    graph_s: Option<cudarc::driver::CudaGraph>,
339    graph_s_failed: bool,
340    /// (seed, temp.to_bits(), k) baked into graph_s at its capture.
341    s_key: Option<(u64, u32, usize)>,
342    /// CAPTURE-RETAIN keepers (#68 root cause, 2026-08-04): the warmup-run transients whose
343    /// pool addresses the captured graph(s) bake. Without these, the transients return to the
344    /// pool at capture-body exit and later work (burst-boundary prime/fill/commit passes, or a
345    /// co-served session in the worker) reuses those addresses — the persisted graph's replay
346    /// then reads/writes live unrelated buffers (exactness corruption, first seen as the ST
347    /// serve-spec 4B graph-arm corruption; one-shot CLI calls never re-shuffled the pool, which
348    /// is why run-spec K=1..8 passed on the same checkpoint). Same fix class as
349    /// capture_graph_retained's gemma/decode.rs sites — hold as long as the graph replays.
350    keeper: Vec<Box<dyn std::any::Any + Send>>,
351    keeper_s: Vec<Box<dyn std::any::Any + Send>>,
352}
353impl DraftGraphCtx {
354    fn new(e: &Engine, n_embd: usize, qlen: usize) -> Result<Self, Box<dyn std::error::Error>> {
355        Ok(DraftGraphCtx {
356            g_tok: e.alloc_u32_zeroed(1)?,
357            g_pos: e.htod_i32(&[0])?,
358            g_seed: e.zeros(n_embd)?,
359            g_p: e.zeros(1)?,
360            g_ctr: e.alloc_u32_zeroed(1)?,
361            g_q: e.zeros(qlen)?,
362            g_perturb: e.zeros(qlen)?,
363            q_slots: Vec::new(),
364            g_dmask: e.alloc_u32_zeroed(1)?,
365            graph_masked: false,
366            graph: None,
367            graph_failed: false,
368            graph_s: None,
369            graph_s_failed: false,
370            s_key: None,
371            keeper: Vec::new(),
372            keeper_s: Vec::new(),
373        })
374    }
375}
376
377pub(crate) struct MtpScratch {
378    kv: KvLayer,
379    /// Row capacity. Doubles as the fa_decode_dc bucket_max for BOTH draft paths (graph + eager):
380    /// n_splits is sized from it ONCE, so the graph captured at round 0 stays valid for every
381    /// later t_kv (splits beyond the device len_d exit empty; the shared combine skips them) —
382    /// KV growth without recapture. Eager uses the SAME bucket_max -> identical dispatch ->
383    /// bit-identical drafts (the graph-vs-eager parity gate).
384    cap: usize,
385}
386impl MtpScratch {
387    fn new(
388        e: &Engine,
389        cfg: &memra_gguf::config::ModelConfig,
390        cap: usize,
391        geom: Option<&crate::hybrid::DraftGeom>,
392    ) -> Result<Self, Box<dyn std::error::Error>> {
393        // student draft heads carry fewer KV heads (head_dim unchanged) -> smaller scratch rows.
394        let n_head_kv = geom.map(|g| g.n_head_kv).unwrap_or(cfg.n_head_kv as usize);
395        let head_dim_k = cfg.head_dim_k as usize;
396        let head_dim_v = cfg.head_dim_v as usize;
397        assert!(
398            head_dim_k % 32 == 0 && head_dim_v % 32 == 0,
399            "KVQUANT requires head_dim%32==0 (MTP scratch)"
400        );
401        let kv_dim_k = head_dim_k * n_head_kv;
402        let kv_dim_v = head_dim_v * n_head_kv;
403        // env-selected KV formats (default 34/24). The fp8-KV arm (MEMRA_KV_FP8) deliberately
404        // does NOT reach the draft scratch: fp8 drafts drifted acceptance 69-88% -> 46%
405        // (2026-07-12 A/B); the scratch is tiny, so it keeps baseline q8_0/q5_1 numerics
406        // while the TRUNK cache carries the fp8 depth win. Scratch append/fa pass g=false.
407        let (kbb, vbb) = crate::kv_blk_bytes();
408        let k_tok_bytes = (kv_dim_k / 32) * kbb;
409        let v_tok_bytes = (kv_dim_v / 32) * vbb;
410        Ok(MtpScratch {
411            kv: KvLayer {
412                k: e.alloc_u8(cap * k_tok_bytes)?,
413                v: e.alloc_u8(cap * v_tok_bytes)?,
414                kv_dim_k,
415                kv_dim_v,
416                k_tok_bytes,
417                v_tok_bytes,
418                len: 0,
419                len_d: e.htod_i32(&[0])?,
420            },
421            cap,
422        })
423    }
424    /// Set BOTH length counters: the host mirror AND the device len_d the captured append/fa read
425    /// (a 4-byte in-place htod — the counter pointer is baked into the graph, never realloc'd).
426    /// This is the ONLY truncation/rollback mechanism the persistent draft KV needs.
427    fn set_len(&mut self, e: &Engine, n: usize) -> Result<(), Box<dyn std::error::Error>> {
428        self.kv.len = n;
429        e.set_i32_one(&mut self.kv.len_d, n as i32)
430    }
431}
432
433/// Retained verify intermediates for the REPLAY-FREE partial accept (2026-07-03, the profiled
434/// #1 spec cost at long ctx: the partial-accept replay was a DUPLICATE trunk pass — ~0.54 extra
435/// full weight reads per round — recomputing columns the verify had already produced
436/// bit-identically). Holds, per linear layer, everything needed to rebuild its recurrent state
437/// to "after the first j verify columns" WITHOUT re-running the trunk:
438/// - BATCHED-path layers (`gdn`): the exact token-major inputs the round's ONE gdn_scan
439///   consumed. A prefix re-run of the SAME kernel (t=j) from the snapshot state is bit-identical
440///   to the first j iterations of the verify's scan — the kernel's t-loop carries state in
441///   registers and iteration t never depends on T. `qkv_mixed` (the conv input) feeds the
442///   pure-copy ring rebuild.
443/// - PER-COLUMN-path layers (`cols`): dtod clones of (conv_state, ssm_state) taken after each
444///   column 0..t-2 — pure copies of the actual chain states (the last column is never a rebuild
445///   target: j <= t-1).
446/// Full-attn layers need nothing: their verify KV rows are bit-identical to eager's (the
447/// decode-exact contract; verify-probe pins it), so rollback = len truncation.
448struct GdnStash {
449    qkv_mixed: CudaSlice<f32>, // [t, conv_dim] token-major (conv input)
450    q_l2: CudaSlice<f32>,
451    k_l2: CudaSlice<f32>,
452    v_g: CudaSlice<f32>, // [t, num_v, d_state]
453    g_log: CudaSlice<f32>,
454    beta: CudaSlice<f32>, // [t, num_v]
455}
456struct VerifyCkpt {
457    gdn: Vec<Option<GdnStash>>, // [n_layer], Some iff batched linear path ran
458    cols: Vec<Option<Vec<(CudaSlice<f32>, CudaSlice<f32>)>>>, // [n_layer][col] = (conv, ssm) after col
459}
460impl VerifyCkpt {
461    fn new(n_layer: usize) -> Self {
462        VerifyCkpt {
463            gdn: (0..n_layer).map(|_| None).collect(),
464            cols: (0..n_layer).map(|_| None).collect(),
465        }
466    }
467}
468
469impl HybridModel {
470    /// NextN head forward for ONE draft token (§A ops 1-13, T=1).
471    /// Inputs: `e_tok` = the token to predict FROM (last committed / previous draft); `h_seed` =
472    /// the trunk's pre-output_norm hidden of that token (§A op 2 input). `mtp_pos` = absolute
473    /// position of the token being predicted from. Returns (draft_logits[n_vocab] host, h_nextn dev).
474    /// `h_nextn` (§A op 10) becomes `h_seed` for the next autoregressive draft step.
475    /// Device-resident: returns draft logits ON DEVICE (no [n_vocab] dtoh). The greedy draft
476    /// loop only needs argmax — paired with `argmax_token_device` this cuts the ~600KB logits
477    /// transfer + host argmax per draft token from the K-token draft chain.
478    #[allow(clippy::too_many_arguments)]
479    fn mtp_head_forward_dev(
480        &self,
481        e: &Engine,
482        mtp: &MtpHead,
483        e_tok: u32,
484        h_seed: &CudaSlice<f32>,
485        scratch: &mut MtpScratch,
486        mtp_pos: usize,
487        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
488        // DRAFT-SIDE GRAMMAR MASK (lane/draft-mask): (packed draft-vocab allowed set, words).
489        // Applied to the head logits BEFORE they are returned, so every consumer (argmax,
490        // gumbel draw, p-min prob) sees the grammar-legal row. None = unmasked (pre-lane).
491        mask: Option<(&CudaSlice<u32>, usize)>,
492    ) -> Result<(CudaSlice<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
493        let cfg = &self.cfg;
494        let n_embd = cfg.n_embd as usize;
495        // Distilled-student geometry: the block runs at the INNER width `di` (eh_proj out /
496        // attn / ffn); the n_embd interface (embed, norms in, carrier out, head in) is unchanged.
497        let di = mtp.geom.as_ref().map(|g| g.d_inner).unwrap_or(n_embd);
498        let eps = cfg.rms_eps;
499        let pos_d = e.htod_i32(&[mtp_pos as i32])?;
500
501        // op A: a resident table transfers one 4B token id. The exact host-row capacity path
502        // expands this one row on CPU and transfers n_embd f32 values instead.
503        let e_emb = match embd_dev {
504            Some((g, qt, rb)) => e.embed_gather_device_t(g, &[e_tok], n_embd, qt, rb)?,
505            None => e.htod(&self.embd.gather(n_embd, &[e_tok]))?,
506        };
507
508        // op 1/2: e_norm = RMSNorm(e, enorm); h_norm = RMSNorm(h_seed, hnorm)
509        let mut e_norm = e.zeros(n_embd)?;
510        e.rms_norm(&e_emb, mtp.enorm.float_data(), &mut e_norm, n_embd, 1, eps)?;
511        let mut h_norm = e.zeros(n_embd)?;
512        e.rms_norm(h_seed, mtp.hnorm.float_data(), &mut h_norm, n_embd, 1, eps)?;
513
514        // op 3: concat = [e_norm ; h_norm] -> [2*n_embd], e_norm in [0,n_embd), h_norm in [n_embd,2n_embd)
515        let mut concat = e.zeros(2 * n_embd)?;
516        e.copy_into(&mut concat, 0, &e_norm, n_embd)?;
517        e.copy_into(&mut concat, n_embd, &h_norm, n_embd)?;
518
519        // op 4: inpSA = eh_proj @ concat  (eh_proj [2*n_embd, n_embd]) -> [n_embd]
520        let inp_sa = e.matmul(&mtp.eh_proj, &concat, 1)?;
521
522        // op 5: a_norm = RMSNorm(inpSA, attn_norm)
523        let mut a_norm = e.zeros(di)?;
524        e.rms_norm(&inp_sa, mtp.attn_norm.float_data(), &mut a_norm, di, 1, eps)?;
525
526        // op 6: attention on the scratch KV. SAME dc launcher as the graph path (bucket_max =
527        // scratch.cap, length from the device len_d) so eager drafts match graph drafts
528        // bit-for-bit at any t_kv (the parity gate). Host len mirrored here (the dc append
529        // advances only the device counter).
530        let attn_out = match &mtp.mixer {
531            Mixer::Full(fa) => {
532                let out =
533                    self.mtp_full_attn_dc(e, fa, &a_norm, &pos_d, scratch, mtp.geom.as_ref())?;
534                scratch.kv.len += 1;
535                out
536            }
537            Mixer::Linear(_) => {
538                panic!("MTP block is full-attn in qwen35; linear MTP not supported")
539            }
540            Mixer::Mla(_) => crate::hybrid::mla_forward_unimplemented(),
541        };
542
543        // op 7: x1 = inpSA + attn_out
544        let mut x1 = e.zeros(di)?;
545        e.add(&inp_sa, &attn_out, &mut x1, di)?;
546
547        // op 8: z = RMSNorm(x1, post_attn_norm)  (pre-FFN norm)
548        let mut z = e.zeros(di)?;
549        e.rms_norm(&x1, mtp.post_attn_norm.float_data(), &mut z, di, 1, eps)?;
550
551        // op 9: FFN (Dense or MoE) — same as the trunk decode FFN
552        let ffn_out = match &mtp.ffn {
553            crate::hybrid::Ffn::Dense {
554                ffn_gate,
555                ffn_up,
556                ffn_down,
557            } => {
558                let n_ff = ffn_gate.out_features();
559                let (gate, up) = if e.uses_q8_1_fast(ffn_gate) && e.uses_q8_1_fast(ffn_up) {
560                    let (zq, zd) = e.quantize_q8_1(&z, 1, di)?;
561                    (
562                        e.matmul_pre(ffn_gate, &zq, &zd, &z, 1)?,
563                        e.matmul_pre(ffn_up, &zq, &zd, &z, 1)?,
564                    )
565                } else {
566                    (e.matmul(ffn_gate, &z, 1)?, e.matmul(ffn_up, &z, 1)?)
567                };
568                let mut act = e.zeros(n_ff)?;
569                Self::ffn_act(e, &self.cfg, &gate, &up, &mut act, n_ff)?;
570                e.matmul(ffn_down, &act, 1)?
571            }
572            // MTP head is a distinct block — key its experts under a separate layer index (u16::MAX)
573            // so they never alias trunk layer 0's cache keys.
574            crate::hybrid::Ffn::Moe(m) => self.moe_ffn_il(e, m, &z, 1, u16::MAX)?,
575        };
576
577        // op 10: h_nextn = x1 + ffn_out (at di)
578        let mut h_inner = e.zeros(di)?;
579        e.add(&x1, &ffn_out, &mut h_inner, di)?;
580
581        // op 10.5 (student): up-project the inner hidden back to n_embd — training semantics:
582        // the chain carrier AND the head input are out_up(h_inner) (pre-final-norm).
583        let h_nextn = match mtp.geom.as_ref() {
584            Some(g) => e.matmul(&g.out_up, &h_inner, 1)?,
585            None => h_inner,
586        };
587
588        // op 11: final = RMSNorm(h_nextn, shared_head_norm OR output_norm)
589        let final_norm = mtp.shared_head_norm.as_ref().unwrap_or(&self.output_norm);
590        let mut final_h = e.zeros(n_embd)?;
591        e.rms_norm(
592            &h_nextn,
593            final_norm.float_data(),
594            &mut final_h,
595            n_embd,
596            1,
597            eps,
598        )?;
599
600        // op 12: draft_logits = (shared_head_head OR output) @ final — stays ON DEVICE.
601        let head = mtp.shared_head_head.as_ref().unwrap_or(&self.output);
602        let mut logits = e.matmul(head, &final_h, 1)?;
603        // op 12b (lane/draft-mask): grammar mask over the DRAFT vocab, applied here so the
604        // caller's argmax / gumbel draw / p-min prob all read the grammar-legal row.
605        if let Some((mask_d, mw)) = mask {
606            let d_vocab = head.out_features();
607            e.mask_logits_col(&mut logits, mask_d, 0, d_vocab, mw)?;
608        }
609        // Chain recurrence hand-over: pre-norm h_nextn (default) or post-norm final_h
610        // (MEMRA_SPEC_HPOST — llama.cpp #24025's t_h_nextn is taken AFTER the head norm).
611        Ok((logits, if spec_hpost() { final_h } else { h_nextn }))
612    }
613
614    /// MTP-block full attention, T=1, on the scratch KV (BOTH draft paths — eager and graph):
615    /// the scratch write slot and the attention bound come from `scratch.kv.len_d` (device i32[1])
616    /// so the launch args are FIXED across draft steps — ONE captured graph serves the whole
617    /// chain, and replays keep seeing KV growth through the device counter (no recapture).
618    /// Geometry contract: n_splits is sized from `scratch.cap` (the persistent capacity); splits
619    /// whose key range lies beyond the device t_kv exit empty and the shared combine skips them
620    /// (fa_decode_dc bit-correct-for-any-t_kv<=bucket_max contract). The eager path uses the SAME
621    /// launcher with the SAME bucket_max -> identical dispatch -> bit-identical draft tokens (the
622    /// graph-vs-eager parity gate). Host len is NOT advanced here (graph contract); callers mirror.
623    fn mtp_full_attn_dc(
624        &self,
625        e: &Engine,
626        fa: &FullAttnLayer,
627        h: &CudaSlice<f32>,
628        pos_d: &CudaSlice<i32>,
629        scratch: &mut MtpScratch,
630        geom: Option<&crate::hybrid::DraftGeom>,
631    ) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
632        let cfg = &self.cfg;
633        let n_head = geom.map(|g| g.n_head).unwrap_or(cfg.n_head as usize);
634        let n_head_kv = geom.map(|g| g.n_head_kv).unwrap_or(cfg.n_head_kv as usize);
635        let head_dim = cfg.head_dim_k as usize;
636        let eps = cfg.rms_eps;
637        let scale = 1.0 / (head_dim as f32).sqrt();
638        let n_embd = geom.map(|g| g.d_inner).unwrap_or(cfg.n_embd as usize);
639        let bucket_max = scratch.cap; // < 96 guaranteed by the graph_draft eligibility gate
640
641        let (qf, mut k, v) =
642            if e.uses_q8_1_fast(&fa.wq) && e.uses_q8_1_fast(&fa.wk) && e.uses_q8_1_fast(&fa.wv) {
643                let (hq, hd) = e.quantize_q8_1(h, 1, n_embd)?;
644                (
645                    e.matmul_pre(&fa.wq, &hq, &hd, h, 1)?,
646                    e.matmul_pre(&fa.wk, &hq, &hd, h, 1)?,
647                    e.matmul_pre(&fa.wv, &hq, &hd, h, 1)?,
648                )
649            } else {
650                (
651                    e.matmul(&fa.wq, h, 1)?,
652                    e.matmul(&fa.wk, h, 1)?,
653                    e.matmul(&fa.wv, h, 1)?,
654                )
655            };
656        // M3/Hy3 have no attention output gate — wq out is exactly q; skip the split.
657        let gated = self.cfg.attn_out_gate();
658        let (mut q, gate) = if gated {
659            let mut q = e.zeros(n_head * head_dim)?;
660            let mut gate = e.zeros(n_head * head_dim)?;
661            e.q_gate_split(&qf, &mut q, &mut gate, head_dim, n_head, 1)?;
662            (q, Some(gate))
663        } else {
664            (qf, None)
665        };
666
667        let mut qn = e.zeros(n_head * head_dim)?;
668        e.rms_norm(&q, fa.q_norm.float_data(), &mut qn, head_dim, n_head, eps)?;
669        q = qn;
670        let mut kn = e.zeros(n_head_kv * head_dim)?;
671        e.rms_norm(
672            &k,
673            fa.k_norm.float_data(),
674            &mut kn,
675            head_dim,
676            n_head_kv,
677            eps,
678        )?;
679        k = kn;
680        let rope_dims = cfg.rope_dim_count as usize;
681        e.rope_neox(
682            &mut q,
683            pos_d,
684            head_dim,
685            rope_dims,
686            n_head,
687            1,
688            cfg.rope_freq_base,
689            1.0,
690        )?;
691        e.rope_neox(
692            &mut k,
693            pos_d,
694            head_dim,
695            rope_dims,
696            n_head_kv,
697            1,
698            cfg.rope_freq_base,
699            1.0,
700        )?;
701
702        let kv = &mut scratch.kv;
703        // append at the DEVICE slot (kv.len_d == old len), then advance the counter in-graph.
704        e.append_kv_quantized_dc(
705            &k,
706            &v,
707            &mut kv.k,
708            &mut kv.v,
709            &kv.len_d,
710            kv.kv_dim_k,
711            kv.kv_dim_v,
712            kv.k_tok_bytes,
713            kv.v_tok_bytes,
714            false,
715        )?;
716        e.inc_seqlen(&mut kv.len_d)?;
717        // full-buffer views (any in-round t_kv stays in range on replay); the kernel bounds the
718        // key range from the device counter.
719        let k_view = e.view_u8(&kv.k, kv.k.len());
720        let v_view = e.view_u8(&kv.v, kv.v.len());
721        let (ktb, vtb) = (kv.k_tok_bytes, kv.v_tok_bytes);
722        let mut attn = e.zeros(n_head * head_dim)?;
723        e.fa_decode_dc(
724            &q, &k_view, &v_view, &mut attn, head_dim, n_head, n_head_kv, &kv.len_d, bucket_max,
725            scale, ktb, vtb, false,
726        )?;
727
728        let attn_g = match &gate {
729            Some(gate) => {
730                let mut gsig = e.zeros(n_head * head_dim)?;
731                e.sigmoid(gate, &mut gsig, n_head * head_dim)?;
732                let mut ag = e.zeros(n_head * head_dim)?;
733                e.mul(&attn, &gsig, &mut ag, n_head * head_dim)?;
734                ag
735            }
736            None => attn,
737        };
738        Ok(e.matmul(&fa.wo, &attn_g, 1)?)
739    }
740
741    /// PERSISTENT-DRAFT-KV fill (the reference engine's "mtp_update" analogue): compute the MTP
742    /// block's K/V for `tokens` (committed tokens at positions pos0..pos0+T) from their EXACT
743    /// trunk hiddens `h` ([T, n_embd] token-major, pre-output_norm) and append at slots pos0.. of
744    /// the scratch KV. K/V-ONLY — ops A/1-5 plus the K-side of op 6 (wk/wv + k_norm + rope +
745    /// quantized append); no wq/attention/FFN/lm_head, so per-token cost ~= eh_proj + wk/wv (a
746    /// small fraction of one trunk layer), T-batched. Rope follows the chain convention
747    /// rope(token@p) = p+1. Runs at round boundaries OUTSIDE the captured graph in BOTH draft
748    /// modes -> draft parity by construction. Caller must have scratch.kv.len == pos0.
749    #[allow(clippy::too_many_arguments)]
750    fn mtp_kv_fill(
751        &self,
752        e: &Engine,
753        mtp: &MtpHead,
754        tokens: &[u32],
755        h: &CudaSlice<f32>,
756        pos0: usize,
757        scratch: &mut MtpScratch,
758        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
759    ) -> Result<(), Box<dyn std::error::Error>> {
760        let cfg = &self.cfg;
761        let n_embd = cfg.n_embd as usize;
762        let eps = cfg.rms_eps;
763        let t = tokens.len();
764        assert_eq!(scratch.kv.len, pos0, "mtp_kv_fill: append slot mismatch");
765        assert!(pos0 + t <= scratch.cap, "mtp_kv_fill: scratch overflow");
766        let Mixer::Full(fa) = &mtp.mixer else {
767            panic!("MTP block is full-attn in qwen35; linear MTP not supported")
768        };
769        let pos_vec: Vec<i32> = (0..t).map(|i| (pos0 + i + 1) as i32).collect();
770        let pos_d = e.htod_i32(&pos_vec)?;
771
772        // ops A/1/2: embed + the two input norms, T-wide.
773        let e_emb = match embd_dev {
774            Some((g, qt, rb)) => e.embed_gather_device_t(g, tokens, n_embd, qt, rb)?,
775            None => e.htod(&self.embd.gather(n_embd, tokens))?,
776        };
777        let mut e_norm = e.zeros(t * n_embd)?;
778        e.rms_norm(&e_emb, mtp.enorm.float_data(), &mut e_norm, n_embd, t, eps)?;
779        let mut h_norm = e.zeros(t * n_embd)?;
780        e.rms_norm(h, mtp.hnorm.float_data(), &mut h_norm, n_embd, t, eps)?;
781
782        // op 3: per-row [e_norm ; h_norm] concat, token-major [T, 2*n_embd].
783        let mut concat = e.zeros(t * 2 * n_embd)?;
784        for i in 0..t {
785            e.copy_view_into(
786                &mut concat,
787                i * 2 * n_embd,
788                &e_norm.slice(i * n_embd..(i + 1) * n_embd),
789                n_embd,
790            )?;
791            e.copy_view_into(
792                &mut concat,
793                i * 2 * n_embd + n_embd,
794                &h_norm.slice(i * n_embd..(i + 1) * n_embd),
795                n_embd,
796            )?;
797        }
798
799        // ops 4/5: eh_proj + attn_norm, T-wide (at the student inner width when geom is set).
800        let di = mtp.geom.as_ref().map(|g| g.d_inner).unwrap_or(n_embd);
801        let inp_sa = e.matmul(&mtp.eh_proj, &concat, t)?;
802        let mut a_norm = e.zeros(t * di)?;
803        e.rms_norm(&inp_sa, mtp.attn_norm.float_data(), &mut a_norm, di, t, eps)?;
804
805        // op 6 (K/V half): wk/wv + k_norm + rope + per-row quantized append. No wq/attention —
806        // the fill only has to leave correct K/V rows behind for later chains to attend over.
807        let n_head_kv = mtp
808            .geom
809            .as_ref()
810            .map(|g| g.n_head_kv)
811            .unwrap_or(cfg.n_head_kv as usize);
812        let head_dim = cfg.head_dim_k as usize;
813        let mut k = e.matmul(&fa.wk, &a_norm, t)?;
814        let v = e.matmul(&fa.wv, &a_norm, t)?;
815        let mut kn = e.zeros(t * n_head_kv * head_dim)?;
816        e.rms_norm(
817            &k,
818            fa.k_norm.float_data(),
819            &mut kn,
820            head_dim,
821            n_head_kv * t,
822            eps,
823        )?;
824        k = kn;
825        let rope_dims = cfg.rope_dim_count as usize;
826        e.rope_neox(
827            &mut k,
828            &pos_d,
829            head_dim,
830            rope_dims,
831            n_head_kv,
832            t,
833            cfg.rope_freq_base,
834            1.0,
835        )?;
836
837        let kv = &mut scratch.kv;
838        for i in 0..t {
839            let k_row = k.slice(i * kv.kv_dim_k..(i + 1) * kv.kv_dim_k);
840            let v_row = v.slice(i * kv.kv_dim_v..(i + 1) * kv.kv_dim_v);
841            e.append_kv_quantized_view(
842                &k_row,
843                &v_row,
844                &mut kv.k,
845                &mut kv.v,
846                kv.len + i,
847                kv.kv_dim_k,
848                kv.kv_dim_v,
849                kv.k_tok_bytes,
850                kv.v_tok_bytes,
851                false,
852            )?;
853        }
854        kv.len += t;
855        e.set_i32_one(&mut kv.len_d, kv.len as i32)?;
856        Ok(())
857    }
858
859    /// CAPTURE body for the GRAPH DRAFT (stage 2 of graph-grade spec): ONE MTP head forward with
860    /// every varying input device-resident —
861    ///   - token id from the persistent `tok_d` (the previous replay's in-graph argmax wrote it,
862    ///     so the chain feeds itself; the host reads the same 4 bytes for the draft list),
863    ///   - h_seed from the persistent `h_seed_d` (h_nextn is copied BACK into it at the end),
864    ///   - rope pos from the persistent `pos_d` counter (inc'd in-graph),
865    ///   - scratch KV slot/bound from `scratch.kv.len_d` (see mtp_full_attn_dc).
866    /// The p-min confidence lands in the persistent `p_d` iff `with_prob` (env is fixed per run).
867    /// Same kernels, same dispatch as the eager mtp_head_forward_dev chain -> same draft tokens
868    /// (exactness never depends on drafts — the verify arbitrates — but acceptance parity does).
869    /// `with_head=false` captures the HEAD-LESS twin for the pseudo-seed replay (2026-07-03):
870    /// the pseudo pass only needs h_nextn (op 10) + the scratch append — the lm_head read
871    /// (~1.06ms q6_K on the 9B), argmax and prob are dead weight there. h_nextn's inputs are
872    /// untouched, so the seed value is identical; round-start resets overwrite tok_d/p_d anyway.
873    /// `sampled_cap` = Some((ctr_d, perturb_d, q_out_d, seed, temp)) captures the SAMPLED twin
874    /// (step 3 of the sampled-spec arc): head logits are retained in the persistent `q_out_d`
875    /// (host D2Ds them to the round's q slot after each replay), the DEVICE event counter is
876    /// bumped in-graph, and the argmax reads GUMBEL-PERTURBED logits — one categorical draw per
877    /// replay, bit-identical to the eager arm's gumbel_perturb at the same (seed, sctr, temp).
878    /// seed/temp are capture-time constants (fixed per generate call, like p_min).
879    #[allow(clippy::too_many_arguments)]
880    fn mtp_head_forward_cap(
881        &self,
882        e: &Engine,
883        mtp: &MtpHead,
884        tok_d: &mut CudaSlice<u32>,
885        pos_d: &mut CudaSlice<i32>,
886        h_seed_d: &mut CudaSlice<f32>,
887        p_d: &mut CudaSlice<f32>,
888        scratch: &mut MtpScratch,
889        with_prob: bool,
890        with_head: bool,
891        embd_gpu: &CudaSlice<u8>,
892        embd_qt: i32,
893        embd_rb: usize,
894        d_vocab: usize,
895        sampled_cap: Option<(
896            &mut CudaSlice<u32>,
897            &mut CudaSlice<f32>,
898            &mut CudaSlice<f32>,
899            u64,
900            f32,
901        )>,
902        stream_pack: Option<(&mut CudaSlice<u32>, usize, Option<&CudaSlice<u32>>)>,
903        // DRAFT-SIDE GRAMMAR MASK (lane/draft-mask): (packed draft-vocab allowed-set buffer,
904        // word count). Captured as ONE mask_logits_f32 node between the head matmul and the
905        // in-graph argmax; the buffer address is baked, its CONTENTS are re-uploaded by the
906        // host before every replay (the decode.rs graph-mask pattern). All-ones contents = a
907        // no-op ban, so a position the grammar cannot constrain costs one pass over the row.
908        mask_cap: Option<(&CudaSlice<u32>, usize)>,
909    ) -> Result<(), Box<dyn std::error::Error>> {
910        let cfg = &self.cfg;
911        let n_embd = cfg.n_embd as usize;
912        // student inner width (see mtp_head_forward_dev) — interface dims stay n_embd.
913        let di = mtp.geom.as_ref().map(|g| g.d_inner).unwrap_or(n_embd);
914        let eps = cfg.rms_eps;
915        let e_emb = e.embed_gather_device(embd_gpu, tok_d, n_embd, embd_qt, embd_rb)?;
916        let mut e_norm = e.zeros(n_embd)?;
917        e.rms_norm(&e_emb, mtp.enorm.float_data(), &mut e_norm, n_embd, 1, eps)?;
918        let mut h_norm = e.zeros(n_embd)?;
919        e.rms_norm(
920            &*h_seed_d,
921            mtp.hnorm.float_data(),
922            &mut h_norm,
923            n_embd,
924            1,
925            eps,
926        )?;
927        let mut concat = e.zeros(2 * n_embd)?;
928        e.copy_into(&mut concat, 0, &e_norm, n_embd)?;
929        e.copy_into(&mut concat, n_embd, &h_norm, n_embd)?;
930        let inp_sa = e.matmul(&mtp.eh_proj, &concat, 1)?;
931        let mut a_norm = e.zeros(di)?;
932        e.rms_norm(&inp_sa, mtp.attn_norm.float_data(), &mut a_norm, di, 1, eps)?;
933        let attn_out = match &mtp.mixer {
934            Mixer::Full(fa) => {
935                self.mtp_full_attn_dc(e, fa, &a_norm, pos_d, scratch, mtp.geom.as_ref())?
936            }
937            Mixer::Linear(_) => {
938                panic!("MTP block is full-attn in qwen35; linear MTP not supported")
939            }
940            Mixer::Mla(_) => crate::hybrid::mla_forward_unimplemented(),
941        };
942        let mut x1 = e.zeros(di)?;
943        e.add(&inp_sa, &attn_out, &mut x1, di)?;
944        let mut z = e.zeros(di)?;
945        e.rms_norm(&x1, mtp.post_attn_norm.float_data(), &mut z, di, 1, eps)?;
946        let ffn_out = match &mtp.ffn {
947            crate::hybrid::Ffn::Dense {
948                ffn_gate,
949                ffn_up,
950                ffn_down,
951            } => {
952                let n_ff = ffn_gate.out_features();
953                let (gate, up) = if e.uses_q8_1_fast(ffn_gate) && e.uses_q8_1_fast(ffn_up) {
954                    let (zq, zd) = e.quantize_q8_1(&z, 1, di)?;
955                    (
956                        e.matmul_pre(ffn_gate, &zq, &zd, &z, 1)?,
957                        e.matmul_pre(ffn_up, &zq, &zd, &z, 1)?,
958                    )
959                } else {
960                    (e.matmul(ffn_gate, &z, 1)?, e.matmul(ffn_up, &z, 1)?)
961                };
962                let mut act = e.zeros(n_ff)?;
963                Self::ffn_act(e, &self.cfg, &gate, &up, &mut act, n_ff)?;
964                e.matmul(ffn_down, &act, 1)?
965            }
966            // ROUND-STREAM: the 35B NextN block carries a MoE FFN. With RESIDENT experts the
967            // dev path is pure device launches (device top-k + rows kernels, ZERO-DtoH by
968            // design) — capture-legal. Non-resident (SLRU-lock) stays rejected: the capture
969            // error arm degrades the caller to eager/stream-off.
970            crate::hybrid::Ffn::Moe(m) if m.dev_exps.is_some() => {
971                self.moe_ffn_il(e, m, &z, 1, u16::MAX)?
972            }
973            crate::hybrid::Ffn::Moe(_) => {
974                return Err("graph draft requires a Dense (or resident-MoE) MTP FFN".into())
975            }
976        };
977        let mut h_inner = e.zeros(di)?;
978        e.add(&x1, &ffn_out, &mut h_inner, di)?;
979        // student: up-project back to n_embd (carrier + head input; see mtp_head_forward_dev).
980        let h_nextn = match mtp.geom.as_ref() {
981            Some(g) => e.matmul(&g.out_up, &h_inner, 1)?,
982            None => h_inner,
983        };
984        // MEMRA_SPEC_HPOST needs final_h even head-less (it IS the next seed under that convention).
985        let final_h = if with_head || spec_hpost() {
986            let final_norm = mtp.shared_head_norm.as_ref().unwrap_or(&self.output_norm);
987            let mut fh = e.zeros(n_embd)?;
988            e.rms_norm(&h_nextn, final_norm.float_data(), &mut fh, n_embd, 1, eps)?;
989            Some(fh)
990        } else {
991            None
992        };
993        if with_head {
994            let head = mtp.shared_head_head.as_ref().unwrap_or(&self.output);
995            let mut logits = e.matmul(head, final_h.as_ref().unwrap(), 1)?;
996            // DRAFT-SIDE GRAMMAR MASK: ban the grammar-illegal draft ids IN the captured chain,
997            // before the argmax — proposals become legal by construction. Contents-only
998            // per-replay upload keeps the capture valid.
999            if let Some((mask_d, mw)) = mask_cap {
1000                e.mask_logits_col(&mut logits, mask_d, 0, d_vocab, mw)?;
1001            }
1002            if let Some((ctr_d, perturb_d, q_out_d, seed, temp)) = sampled_cap {
1003                // SAMPLED chain: retain q (raw head logits -> persistent q_out_d; the matmul's
1004                // own buffer is pool-recycled after the capture body returns, so it can't be the
1005                // retention target), bump the device event counter, gumbel-perturb reading it,
1006                // and argmax the PERTURBED logits into tok_d — the in-graph categorical draw.
1007                e.copy_into(q_out_d, 0, &logits, d_vocab)?;
1008                e.sctr_inc(ctr_d)?;
1009                e.gumbel_perturb_ctr(&logits, perturb_d, d_vocab, seed, ctr_d, temp)?;
1010                e.argmax_token_device_into(perturb_d, tok_d, d_vocab)?;
1011                // p-min prob = the head's RAW softmax confidence in the SAMPLED pick — same
1012                // semantics as the eager sampled arm's prob_of_token_device(dl_d, tok_d).
1013                if with_prob {
1014                    e.prob_of_token_device_into(&logits, tok_d, p_d, d_vocab)?;
1015                }
1016            } else {
1017                // draft token -> persistent tok_d (next replay's embed reads it; host reads the 4 bytes).
1018                e.argmax_token_device_into(&logits, tok_d, d_vocab)?;
1019                // p-min under a draft mask reads the MASKED row: confidence relative to the
1020                // grammar-LEGAL alternatives (illegal ids leave the softmax denominator), which
1021                // is the right semantics for "does the drafter know what comes next here" and
1022                // the same row the pick came from. Draft-quality only — verify arbitrates.
1023                if with_prob {
1024                    e.prob_of_token_device_into(&logits, tok_d, p_d, d_vocab)?;
1025                }
1026            }
1027        }
1028        // ROUND-STREAM K-chain: pack (tok, p) into slot j, then remap tok through d2t so the
1029        // NEXT chained body's embed reads the TARGET id — zero host involvement per step.
1030        if let Some((out, slot, d2t)) = stream_pack {
1031            e.pack_tok_p(tok_d, p_d, out, slot)?;
1032            if let Some(map) = d2t {
1033                e.tok_map_u32(tok_d, map)?;
1034            }
1035        }
1036        // Next draft step's h_seed: pre-norm h_nextn (default) or post-norm final_h (HPOST).
1037        if spec_hpost() {
1038            e.copy_into(h_seed_d, 0, final_h.as_ref().unwrap(), n_embd)?;
1039        } else {
1040            e.copy_into(h_seed_d, 0, &h_nextn, n_embd)?;
1041        }
1042        // advance the draft rope position in-graph.
1043        e.inc_seqlen(pos_d)?;
1044        Ok(())
1045    }
1046
1047    /// Batched target verify forward over `tokens` at positions `pos0..pos0+T` (§D.3, T=K+1).
1048    /// Returns ALL T logit columns (host f32, [T*n_vocab]); appends T cols to every full-attn KV
1049    /// and advances every linear-attn recur state by T steps (the recur steps are SEQUENTIAL T=1).
1050    /// Advances `cache.pos` by T.
1051    pub fn decode_step_t(&self, e: &Engine, tokens: &[u32], pos0: usize, cache: &mut Cache)
1052                         -> Result<Vec<f32>, Box<dyn std::error::Error>> {
1053        if self.is_gemma4_e4b() {
1054            return Ok(self.gemma4_e4b_decode_step_t_h(e, tokens, pos0, cache)?.0);
1055        }
1056        if self.cfg.gemma4.is_some() {
1057            return self.gemma4_decode_step_t(e, tokens, pos0, cache);
1058        }
1059        Ok(self.decode_step_t_h(e, tokens, pos0, cache)?.0)
1060    }
1061
1062    /// Like `decode_step_t` but ALSO returns the LAST column's pre-output_norm hidden (h_seed for
1063    /// the next draft round). This lets partial-accept replay run as ONE batched T=(n_acc+1) forward
1064    /// (single weight read) instead of n_acc+1 separate T=1 decode_steps (n_acc+1 weight reads).
1065    /// At batch=1 decode is bandwidth-bound, so batching the replay is THE MTP profitability lever.
1066    pub fn decode_step_t_h(
1067        &self,
1068        e: &Engine,
1069        tokens: &[u32],
1070        pos0: usize,
1071        cache: &mut Cache,
1072    ) -> Result<(Vec<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
1073        self.decode_step_t_h_emb(e, tokens, pos0, cache, None)
1074    }
1075
1076    /// Like `decode_step_t_h` with an optional RESIDENT embed table (spec hot loop): device
1077    /// gather instead of host dequant + [T, n_embd] f32 htod. Bit-identical rows.
1078    pub fn decode_step_t_h_emb(
1079        &self,
1080        e: &Engine,
1081        tokens: &[u32],
1082        pos0: usize,
1083        cache: &mut Cache,
1084        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
1085    ) -> Result<(Vec<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
1086        let (logits_d, h_seed) = self.decode_step_t_h_emb_dev(e, tokens, pos0, cache, embd_dev)?;
1087        Ok((e.dtoh(&logits_d)?, h_seed))
1088    }
1089
1090    /// DEVICE-LOGITS verify forward (spec device-argmax lever): identical kernel chain to
1091    /// `decode_step_t_h_emb` but returns the [T, n_vocab] logits ON DEVICE — the accept walk
1092    /// argmaxes each column on-device and reads back ONE [T] u32 instead of dtoh'ing the full
1093    /// T x n_vocab f32 block (~1-4 MB + T host argmaxes, every round). Kernel dispatch is
1094    /// UNCHANGED (same decode-exact kernels); only the post-logits transfer moves.
1095    pub fn decode_step_t_h_emb_dev(
1096        &self,
1097        e: &Engine,
1098        tokens: &[u32],
1099        pos0: usize,
1100        cache: &mut Cache,
1101        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
1102    ) -> Result<(CudaSlice<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
1103        let n_embd = self.cfg.n_embd as usize;
1104        let t = tokens.len();
1105        let (logits, x) = self.decode_step_t_core(e, tokens, pos0, cache, embd_dev, None)?;
1106        // h_seed for the next round = LAST column's pre-output_norm hidden ([n_embd]).
1107        let mut hs = vbuf(e, n_embd)?; // fully written by copy_view_into below
1108        e.copy_view_into(&mut hs, 0, &x.slice((t - 1) * n_embd..t * n_embd), n_embd)?;
1109        Ok((logits, hs))
1110    }
1111
1112    /// CORE verify forward: the `decode_step_t_h_emb_dev` kernel chain, returning the FULL
1113    /// pre-output_norm hidden stack x ([T, n_embd], any column extractable) and optionally
1114    /// filling a `VerifyCkpt` (retained per-layer state-rebuild inputs) for the REPLAY-FREE
1115    /// partial accept. `ckpt: None` => byte-for-byte the old behavior (the ckpt writes are pure
1116    /// retains/copies — they never change what any kernel computes).
1117    fn decode_step_t_core(
1118        &self,
1119        e: &Engine,
1120        tokens: &[u32],
1121        pos0: usize,
1122        cache: &mut Cache,
1123        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
1124        mut ckpt: Option<&mut VerifyCkpt>,
1125    ) -> Result<(CudaSlice<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
1126        self.decode_step_t_core_stream(e, tokens, pos0, cache, embd_dev, ckpt.take(), None)
1127    }
1128
1129    /// ROUND-STREAM stage (c) 4: `stream` = (device verify tokens [t], device pos counter) —
1130    /// when Some, rope positions come from pos_iota over the counter, the embed gathers the
1131    /// device tokens, and full_attn_verify routes appends/FA through the _dc twins reading the
1132    /// SAME counter (every layer's kvl.len == cache.pos, one counter drives all three). The
1133    /// host `tokens`/`pos0` args still size buffers (t is FIXED K+1 in stream mode).
1134    #[allow(clippy::too_many_arguments)]
1135    fn decode_step_t_core_stream(
1136        &self,
1137        e: &Engine,
1138        tokens: &[u32],
1139        pos0: usize,
1140        cache: &mut Cache,
1141        embd_dev: Option<(&CudaSlice<u8>, i32, usize)>,
1142        mut ckpt: Option<&mut VerifyCkpt>,
1143        stream: Option<(&CudaSlice<u32>, &CudaSlice<i32>)>,
1144    ) -> Result<(CudaSlice<f32>, CudaSlice<f32>), Box<dyn std::error::Error>> {
1145        let cfg = &self.cfg;
1146        let n_embd = cfg.n_embd as usize;
1147        let eps = cfg.rms_eps;
1148        let t = tokens.len();
1149        let pos_d = match stream {
1150            Some((_, ctr)) => {
1151                let mut p = e.alloc_uninit::<i32>(t)?;
1152                e.pos_iota(ctr, &mut p, t)?;
1153                p
1154            }
1155            None => {
1156                let pos_vec: Vec<i32> = (0..t).map(|i| (pos0 + i) as i32).collect();
1157                e.htod_i32(&pos_vec)?
1158            }
1159        };
1160
1161        // embed T tokens -> [T, n_embd] token-major (device gather on the spec hot loop)
1162        let mut x = match (stream, embd_dev) {
1163            (Some((vtok, _)), Some((g, qt, rb))) => {
1164                e.embed_gather_device_td(g, vtok, t, n_embd, qt, rb)?
1165            }
1166            (None, Some((g, qt, rb))) => e.embed_gather_device_t(g, tokens, n_embd, qt, rb)?,
1167            _ => e.htod(&self.embd.gather(n_embd, tokens))?,
1168        };
1169
1170        // CROSS-LAYER ADD+NORM FUSION (lane/vt-fixes fix 2, mirroring decode_step_h's
1171        // launch-arc form): layer il's post-FFN residual add (x2 = x1 + ffn_out) and layer
1172        // il+1's attn_norm(+quantize) are consecutive row-wise ops — ONE add_rms_norm_q8_1
1173        // launch at nrows=t does all three (bit-identity pinned by the T-row kernel-check
1174        // arms). Carry the un-added (x1, ffn_out) pair; the fused launch materializes x2 (the
1175        // residual the next layer needs) as its `res` output. Falls back to the separate add
1176        // when the next layer is off the fused-q8 path.
1177        let mut pending: Option<(CudaSlice<f32>, CudaSlice<f32>)> = None;
1178        for (il, layer) in self.layers.iter().enumerate() {
1179            // DISPATCH-MIRRORED attn-input RMSNorm (FP-order lesson #8): eager decode fuses the
1180            // 1024-thread rms_norm_q8_1 ONLY when every mixer projection is q8_1-fast; layers with
1181            // Float projections (ssm_beta/ssm_alpha on layers 1/2/4 of the 9B NVFP4 GGUF) take the
1182            // UNFUSED 256-thread rms_norm. The verify norm must mirror that PER-LAYER choice —
1183            // blockDim changes the sum-of-squares reduce order, and the ULP shift amplifies through
1184            // the GDN recurrence into argmax flips (measured: 9B text prompt, 1 ULP at layer 2 ->
1185            // 2.3e-1 logit maxdiff at the head -> K=1..8 divergence at a 0.03-margin token).
1186            let mixer_fast = self.mixer_in_q8_1_fast(e, &layer.mixer);
1187            let norm_fused = std::env::var("MEMRA_NO_FUSE_NORMQ").is_err() && mixer_fast;
1188            // BATCHED EPILOGUE RE-FUSE (lane/vt-fixes fix 2, 2026-08-03): when the norm is
1189            // dispatch-fused AND every consumer of `h` reads only its q8_1 form (Full mixer:
1190            // projections only; Linear mixer: the batched arm — the per-column fallback needs
1191            // f32 h), emit the attn-input norm DIRECTLY as q8_1 via `rms_norm_q8_1` at nrows=t
1192            // (row-indexed kernel — the T-row launch is the per-row m=1 program, kernel-check
1193            // pins bit-identity vs rms_norm_decode -> quantize_q8_1). Kills the standalone
1194            // quantize launch(es) + the f32 h HBM round-trip that decode never pays.
1195            let lin_q8_only = match &layer.mixer {
1196                Mixer::Linear(la) => {
1197                    (t >= 3 || (t == 2 && spec_m2())) && e.uses_q8_1_fast(&la.ssm_out)
1198                }
1199                _ => true,
1200            };
1201            // NOTE decode.rs's take()-first lesson: take the pending pair BEFORE branching so
1202            // a non-fused layer still performs the residual add.
1203            let taken = pending.take();
1204            let (h, h_q8) = if norm_fused && lin_q8_only {
1205                let pair = match taken {
1206                    // fused add + attn_norm + q8_1: ONE launch resolves the carried residual
1207                    // AND emits this layer's mixer input pre-quantized. res -> x2 (= new x).
1208                    Some((x1p, f1p)) => {
1209                        let mut x2 = vbuf(e, t * n_embd)?; // fully written (res output)
1210                        let p = e.add_rms_norm_q8_1(
1211                            &x1p, &f1p, layer.attn_norm.float_data(), &mut x2, n_embd, t, eps,
1212                        )?;
1213                        x = x2;
1214                        p
1215                    }
1216                    None => e.rms_norm_q8_1(&x, layer.attn_norm.float_data(), n_embd, t, eps)?,
1217                };
1218                (e.zeros(0)?, Some(pair)) // h unused on this path (q8-only consumers)
1219            } else {
1220                if let Some((x1p, f1p)) = taken {
1221                    let mut x2 = vbuf(e, t * n_embd)?; // fully written by add
1222                    e.add(&x1p, &f1p, &mut x2, t * n_embd)?;
1223                    x = x2;
1224                }
1225                let mut h = vbuf(e, t * n_embd)?; // fully written by either rms_norm arm
1226                if norm_fused {
1227                    e.rms_norm_decode(&x, layer.attn_norm.float_data(), &mut h, n_embd, t, eps)?;
1228                } else {
1229                    e.rms_norm(&x, layer.attn_norm.float_data(), &mut h, n_embd, t, eps)?;
1230                }
1231                (h, None)
1232            };
1233            let h_q8_ref = h_q8.as_ref().map(|(q, d)| (q, d));
1234
1235            let mixed = match &layer.mixer {
1236                Mixer::Full(fa) => {
1237                    self.full_attn_verify(e, fa, &h, h_q8_ref, &pos_d, t, cache, il,
1238                                          stream.map(|(_, c)| c))?
1239                }
1240                Mixer::Mla(_) => crate::hybrid::mla_forward_unimplemented(),
1241                Mixer::Linear(la) => {
1242                    // BATCHED linear verify (2026-07-03, the MTP-profit lever): one T-token pass —
1243                    // batched projections (weight read ONCE, hits the m=2-4 weight-resident matvec),
1244                    // carried-state conv (ssm_conv1d_tm_state), GDN prep on the prefill kernels, and
1245                    // ONE gdn_scan whose internal sequential t-loop is the SAME recurrence as T
1246                    // chained T=1 steps (bit-identical). Falls back to the sequential per-column
1247                    // chain when T < d_conv-1 (conv ring update needs T >= pad) — or when ANY
1248                    // projection is off the q8_1 fast path: matmul_decode_exact would route a Float
1249                    // tensor to cuBLAS at m=t (different FP accumulation than eager's per-token
1250                    // GEMV), so mixed-dtype layers stay on the eager-identical per-column chain.
1251                    // MEMRA_SPEC_M2 (lane/spec-m2): the t==2 batch rides the same arm — the conv
1252                    // wrapper handles t<pad with a pure-copy ring rebuild; see spec_m2() header.
1253                    if (t >= 3 || (t == 2 && spec_m2()))
1254                        && mixer_fast
1255                        && e.uses_q8_1_fast(&la.ssm_out)
1256                    {
1257                        let want = ckpt.is_some();
1258                        let (out, stash) =
1259                            self.linear_attn_verify_t(e, la, &h, h_q8_ref, t, cache, il, want)?;
1260                        if let (Some(ck), Some(st)) = (ckpt.as_deref_mut(), stash) {
1261                            ck.gdn[il] = Some(st);
1262                        }
1263                        out
1264                    } else {
1265                        let mut out = vbuf(e, t * n_embd)?; // every col written by copy_into
1266                        let mut col_states: Option<Vec<(CudaSlice<f32>, CudaSlice<f32>)>> =
1267                            if ckpt.is_some() && t >= 2 {
1268                                Some(Vec::with_capacity(t - 1))
1269                            } else {
1270                                None
1271                            };
1272                        for col in 0..t {
1273                            let mut h_col = vbuf(e, n_embd)?; // fully written by copy_view_into
1274                            let src = h.slice(col * n_embd..(col + 1) * n_embd);
1275                            e.copy_view_into(&mut h_col, 0, &src, n_embd)?;
1276                            let m_col = self.linear_attn_decode(e, la, &h_col, cache, il)?;
1277                            e.copy_into(&mut out, col * n_embd, &m_col, n_embd)?;
1278                            // REPLAY-FREE ckpt: clone the chain's ACTUAL state after this column
1279                            // (pure dtod — cannot change any computed value). Last column skipped:
1280                            // rebuild targets are j <= t-1 columns.
1281                            if let Some(cs) = col_states.as_mut() {
1282                                if col + 1 < t {
1283                                    let rl = cache.recur[il].as_ref().unwrap();
1284                                    cs.push((
1285                                        e.clone_dtod(&rl.conv_state)?,
1286                                        e.clone_dtod(&rl.ssm_state)?,
1287                                    ));
1288                                }
1289                            }
1290                        }
1291                        if let (Some(ck), Some(cs)) = (ckpt.as_deref_mut(), col_states) {
1292                            // ReplaySSM-assessment instrumentation (2026-07-30): the
1293                            // per-column clones are the only true state snapshots left in
1294                            // the verify (the batched path stashes INPUTS and replays).
1295                            if std::env::var("MEMRA_SPEC_STATS").as_deref() == Ok("1") {
1296                                static ONCE: std::sync::Once = std::sync::Once::new();
1297                                let bytes: usize = cs.iter()
1298                                    .map(|(c, s)| (c.len() + s.len()) * 4).sum();
1299                                ONCE.call_once(|| eprintln!(
1300                                    "[verify-ckpt] per-column layer il={il}: {} clones, {:.2} MB/layer/round",
1301                                    cs.len(), bytes as f64 / 1e6));
1302                            }
1303                            ck.cols[il] = Some(cs);
1304                        }
1305                        out
1306                    }
1307                }
1308            };
1309
1310            // DISPATCH-MIRRORED post-attn norm: eager residual_norm_ffn fuses add+norm+quant
1311            // (1024-thread add_rms_norm_q8_1) only for Dense FFNs whose gate+up are q8_1-fast;
1312            // otherwise (and for MoE) it runs the 256-thread fused add_rms_norm. Mirror per layer.
1313            let ffn_fuse = match &layer.ffn {
1314                crate::hybrid::Ffn::Dense {
1315                    ffn_gate, ffn_up, ..
1316                } => {
1317                    std::env::var("MEMRA_NO_FUSE_NORMQ").is_err()
1318                        && e.uses_q8_1_fast(ffn_gate)
1319                        && e.uses_q8_1_fast(ffn_up)
1320                }
1321                crate::hybrid::Ffn::Moe(_) => false,
1322            };
1323            // BATCHED EPILOGUE RE-FUSE (lane/vt-fixes fix 2): on the ffn_fuse path (Dense,
1324            // gate+up q8_1-fast, non-M3) the FFN input is emitted DIRECTLY as q8_1 by ONE
1325            // add_rms_norm_q8_1 launch at nrows=t (row-indexed kernel: the T-row launch is the
1326            // per-row m=1 program; kernel-check pins bit-identity vs the unfused
1327            // add_f32 -> rms_norm_decode -> quantize_q8_1 chain at T=2/4/5/8) — replacing the
1328            // add + rms_norm_decode launches AND the dual/singles' internal re-quantize.
1329            // M3's swigluoai must keep the f32 chain (the fused SwiGLU epilogue encodes plain
1330            // SiLU), mirroring residual_norm_ffn's m3 guard on the decode path.
1331            let fuse_q8 = ffn_fuse && self.cfg.m3.is_none();
1332            let mut x1 = vbuf(e, t * n_embd)?; // fully written by add / add_rms_norm*
1333            let mut z = e.zeros(0)?; // replaced below on the unfused arms
1334            let z_q8 = if fuse_q8 {
1335                Some(e.add_rms_norm_q8_1(
1336                    &x,
1337                    &mixed,
1338                    layer.post_attn_norm.float_data(),
1339                    &mut x1,
1340                    n_embd,
1341                    t,
1342                    eps,
1343                )?)
1344            } else {
1345                let mut zf = vbuf(e, t * n_embd)?; // fully written by rms_norm_decode / add_rms_norm
1346                if ffn_fuse {
1347                    e.add(&x, &mixed, &mut x1, t * n_embd)?;
1348                    e.rms_norm_decode(
1349                        &x1,
1350                        layer.post_attn_norm.float_data(),
1351                        &mut zf,
1352                        n_embd,
1353                        t,
1354                        eps,
1355                    )?;
1356                } else {
1357                    e.add_rms_norm(
1358                        &x,
1359                        &mixed,
1360                        layer.post_attn_norm.float_data(),
1361                        &mut x1,
1362                        &mut zf,
1363                        n_embd,
1364                        t,
1365                        eps,
1366                    )?;
1367                }
1368                z = zf;
1369                None
1370            };
1371            // DECODE-EXACT FFN projections: force MMVQ for gate/up/down at any T to match the
1372            // T=1 decode FP accumulation order. At T>=5 the generic matmul/matmul_pre falls to dp4a
1373            // (128-thread, different FP sum order). At T=2-4 the batched MMVQ is already bit-identical.
1374            let ffn_out = match &layer.ffn {
1375                crate::hybrid::Ffn::Dense {
1376                    ffn_gate,
1377                    ffn_up,
1378                    ffn_down,
1379                } => {
1380                    let n_ff = ffn_gate.out_features();
1381                    if let Some((zq, zd)) = z_q8.as_ref() {
1382                        // FUSED CHAIN (fix 2): pre-quantized z feeds the projections; the SwiGLU
1383                        // epilogue emits act pre-quantized for ffn_down (silu_mul_scaled_q8_1,
1384                        // bit-identical to silu_mul + quantize — kernel-check-pinned) with the
1385                        // NVFP4 macro-scales folded (deferred-scale dual: y*s inline == the
1386                        // scale_inplace store, value-exact) — the exact m=1 decode epilogue
1387                        // structure at nrows=t.
1388                        let pair = match e.matmul_decode_exact_dual_pre(ffn_gate, ffn_up, zq, zd, t)? {
1389                            Some(((g, gs), (u, us))) => Some((g, gs, u, us)),
1390                            None => None,
1391                        };
1392                        let (gate, gs, up, us) = match pair {
1393                            Some(x4) => x4,
1394                            None => (
1395                                e.matmul_decode_exact_pre(ffn_gate, zq, zd, t)?,
1396                                1.0, // scale already applied inside _pre
1397                                e.matmul_decode_exact_pre(ffn_up, zq, zd, t)?,
1398                                1.0,
1399                            ),
1400                        };
1401                        if e.uses_q8_1_fast(ffn_down) {
1402                            let (aq, ad) = e.silu_mul_scaled_q8_1(&gate, &up, gs, us, t * n_ff)?;
1403                            e.matmul_decode_exact_pre(ffn_down, &aq, &ad, t)?
1404                        } else {
1405                            let mut act = vbuf(e, t * n_ff)?;
1406                            e.silu_mul_scaled(&gate, &up, gs, us, &mut act, t * n_ff)?;
1407                            e.matmul_decode_exact(ffn_down, &act, t)?
1408                        }
1409                    } else {
1410                        // UNFUSED (pre-fix) chain — MoE-adjacent/M3/off-fast layers, unchanged.
1411                        // DUAL gate+up batched twin (lane/verify-economics, 2026-08-02): one launch
1412                        // for the pair at t=2..8 — bit-identical per (tensor,token,row) to the two
1413                        // singles (kernel-check pins bitwise; MEMRA_SPEC_DUAL_T=0 reverts). None
1414                        // (non-NVFP4 / t outside the tier / seam off) -> the two singles, unchanged.
1415                        let (gate, up) = match e.matmul_decode_exact_dual(ffn_gate, ffn_up, &z, t)? {
1416                            Some(pair) => pair,
1417                            None => (
1418                                e.matmul_decode_exact(ffn_gate, &z, t)?,
1419                                e.matmul_decode_exact(ffn_up, &z, t)?,
1420                            ),
1421                        };
1422                        let mut act = vbuf(e, t * n_ff)?; // fully written by ffn_act
1423                        Self::ffn_act(e, &self.cfg, &gate, &up, &mut act, t * n_ff)?;
1424                        e.matmul_decode_exact(ffn_down, &act, t)?
1425                    }
1426                }
1427                crate::hybrid::Ffn::Moe(m) => self.moe_ffn_il(e, m, &z, t, il as u16)?,
1428            };
1429            // CROSS-LAYER fusion: defer this layer's post-FFN residual add — the next layer's
1430            // fused-q8 attn norm folds it in (add_rms_norm_q8_1 == add; rms_norm; quantize,
1431            // kernel-check-pinned at nrows=T). Non-fused next layers add explicitly above.
1432            pending = Some((x1, ffn_out));
1433        }
1434        // final layer's add (no next norm to fuse with — output_norm is f32-out)
1435        if let Some((x1p, f1p)) = pending.take() {
1436            let mut x2 = vbuf(e, t * n_embd)?; // fully written by add
1437            e.add(&x1p, &f1p, &mut x2, t * n_embd)?;
1438            x = x2;
1439        }
1440
1441        let mut hn = vbuf(e, t * n_embd)?; // fully written by rms_norm_decode
1442        e.rms_norm_decode(&x, self.output_norm.float_data(), &mut hn, n_embd, t, eps)?;
1443        let logits = e.matmul_decode_exact(&self.output, &hn, t)?;
1444        // stream: the device pos counter owns position; host mirror reconciles at drain.
1445        if stream.is_none() {
1446            cache.pos += t;
1447        }
1448        // Hidden stack for seeds/refresh-fills: pre-norm x (default) or post-norm hn (HPOST).
1449        Ok((logits, if spec_hpost() { hn } else { x }))
1450    }
1451
1452    /// BATCHED linear-attn verify (T=K+1): the whole layer in ~10 launches instead of T x the
1453    /// T=1 decode chain (T x ~12 launches + T weight reads of the four projections). The GDN
1454    /// recurrence itself is inherently sequential — gdn_scan_s128 runs its internal t-loop with
1455    /// the SAME per-token math as chained T=1 calls (bit-identical state evolution); everything
1456    /// around it (projections, conv, prep, gated norm, out-proj) batches. Advances conv ring +
1457    /// ssm state exactly like T sequential decode steps.
1458    /// `want_stash`: additionally RETAIN the gdn-scan inputs (pure buffer keep-alives, zero extra
1459    /// kernels) so a partial accept can rebuild the state after any column prefix (REPLAY-FREE).
1460    #[allow(clippy::too_many_arguments)]
1461    fn linear_attn_verify_t(
1462        &self,
1463        e: &Engine,
1464        la: &LinearAttnLayer,
1465        h: &CudaSlice<f32>,
1466        h_q8: Option<(&CudaSlice<i8>, &CudaSlice<f32>)>,
1467        t: usize,
1468        cache: &mut Cache,
1469        il: usize,
1470        want_stash: bool,
1471    ) -> Result<(CudaSlice<f32>, Option<GdnStash>), Box<dyn std::error::Error>> {
1472        let cfg = &self.cfg;
1473        let ssm = cfg.ssm.as_ref().unwrap();
1474        let d_state = ssm.state_size as usize;
1475        let num_k = ssm.group_count as usize;
1476        let num_v = ssm.time_step_rank as usize;
1477        let d_conv = ssm.conv_kernel as usize;
1478        let key_dim = d_state * num_k;
1479        let conv_dim = key_dim * 2 + d_state * num_v;
1480        let eps = cfg.rms_eps;
1481        let scale = 1.0 / (d_state as f32).sqrt();
1482
1483        // DECODE-EXACT projections: matmul_decode_exact forces the MMVQ (warp-per-row, 32-thread)
1484        // accumulation order for EVERY m, matching the T=1 decode path bit-for-bit. The generic
1485        // `matmul` at m>=5 falls to dp4a (128-thread, two-level reduce) which has a different FP
1486        // sum order — ULP differences propagate through gdn_scan and flip argmax on the 27B.
1487        // Q8 TRUNK-FUSION at T=1 (35B: wqkv+wqkv_gate both Q8_0): one fused2 launch, bit-identical
1488        // per (tensor,row) to the two m=1 MMVQ dispatches below — decode-exact contract holds.
1489        // VERIFY-TIER TRUNK FUSION (MEMRA_SPEC_FUSED_T, t=2-4): quantize h ONCE for every
1490        // fused-eligible same-input Q8_0 pair of this layer (35B wqkv+wqkv_gate; 9B
1491        // ssm_beta+ssm_alpha) — each fused2 batched launch then replaces two decode-exact
1492        // calls (each of which re-quantizes the same h + runs its own _b2/_b4 launch).
1493        // Bit-identical per (tensor,token,row) — see spec_fused_t().
1494        // BATCHED EPILOGUE RE-FUSE (lane/vt-fixes fix 2): `h_q8` = the attn-input norm emitted
1495        // directly as q8_1 by the caller's fused rms_norm_q8_1 (bit-identical to the unfused
1496        // chain, kernel-check-pinned). When present it REPLACES the standalone quantize below
1497        // and feeds every projection; the caller guaranteed all four input projections are
1498        // q8_1-fast. When absent, the old shared-quantize (fused-t window) stands.
1499        let h_q8_t = if h_q8.is_none()
1500            && spec_fused_t()
1501            && (2..=4).contains(&t)
1502            && ((e.uses_q8_1_fast(&la.wqkv) && e.uses_q8_1_fast(&la.wqkv_gate))
1503                || (e.uses_q8_1_fast(&la.ssm_beta) && e.uses_q8_1_fast(&la.ssm_alpha)))
1504        {
1505            Some(e.quantize_q8_1(h, t, cfg.n_embd as usize)?)
1506        } else {
1507            None
1508        };
1509        // one view: the caller's fused-norm q8 or this fn's own shared quantize.
1510        let hq8_any: Option<(&CudaSlice<i8>, &CudaSlice<f32>)> =
1511            h_q8.or(h_q8_t.as_ref().map(|(q, d)| (q, d)));
1512        let (qkv_mixed, z) = {
1513            let mut fused = None;
1514            if t == 1 && e.uses_q8_1_fast(&la.wqkv) && e.uses_q8_1_fast(&la.wqkv_gate) {
1515                let (hq, hd) = e.quantize_q8_1(h, 1, cfg.n_embd as usize)?;
1516                fused = e.matmul_q8_fused2(&la.wqkv, &la.wqkv_gate, &hq, &hd)?;
1517            } else if let Some((hq, hd)) = hq8_any {
1518                if spec_fused_t() && (2..=4).contains(&t) {
1519                    fused = e.matmul_q8_fused2_t(&la.wqkv, &la.wqkv_gate, hq, hd, t)?;
1520                }
1521            }
1522            match (fused, hq8_any) {
1523                (Some(pair), _) => pair,
1524                (None, Some((hq, hd))) if h_q8.is_some() => (
1525                    e.matmul_decode_exact_pre(&la.wqkv, hq, hd, t)?,
1526                    e.matmul_decode_exact_pre(&la.wqkv_gate, hq, hd, t)?,
1527                ),
1528                (None, _) => (
1529                    e.matmul_decode_exact(&la.wqkv, h, t)?,
1530                    e.matmul_decode_exact(&la.wqkv_gate, h, t)?,
1531                ),
1532            }
1533        };
1534        // beta+alpha DUAL at T=1 (75% of p3 rounds run T=1 verify — p-min chain cuts): the dual
1535        // mr2 kernel is bit-identical per element to the m=1 MMVQ matmul_decode_exact dispatches
1536        // (same warp-per-row body, blockIdx.y picks the weight), so the decode-exact contract
1537        // holds; the run-spec battery is the arbiter. T>1 keeps the per-tensor decode-exact path.
1538        let (beta_raw, alpha) = if t == 1 {
1539            let (hq, hd) = e.quantize_q8_1(h, 1, cfg.n_embd as usize)?;
1540            match e.matmul_pre_dual_noscale(&la.ssm_beta, &la.ssm_alpha, &hq, &hd, 1)? {
1541                Some(((mut b, bs), (mut a, as_))) => {
1542                    if bs != 1.0 {
1543                        e.scale_inplace(&mut b, bs, la.ssm_beta.out_features())?;
1544                    }
1545                    if as_ != 1.0 {
1546                        e.scale_inplace(&mut a, as_, la.ssm_alpha.out_features())?;
1547                    }
1548                    (b, a)
1549                }
1550                // Q8_0 fused2 twin (9B stores beta/alpha as Q8_0): DISPATCH-MIRRORS the eager
1551                // decode's beta_alpha closure — the fused body is qmatvec_q8_0_mmvq verbatim,
1552                // bit-identical per row (kernel-check rel=0.00e0 gate), so decode==verify holds.
1553                None => match e.matmul_q8_fused2(&la.ssm_beta, &la.ssm_alpha, &hq, &hd)? {
1554                    Some((b, a)) => (b, a),
1555                    None => (
1556                        e.matmul_decode_exact(&la.ssm_beta, h, 1)?,
1557                        e.matmul_decode_exact(&la.ssm_alpha, h, 1)?,
1558                    ),
1559                },
1560            }
1561        } else {
1562            // fused-t twin (9B stores beta/alpha as Q8_0): same shared-quantize + one launch
1563            // contract as the wqkv pair above; 35B beta/alpha are Float -> None -> fallback.
1564            let mut fused = None;
1565            if let Some((hq, hd)) = hq8_any {
1566                if spec_fused_t() && (2..=4).contains(&t) {
1567                    fused = e.matmul_q8_fused2_t(&la.ssm_beta, &la.ssm_alpha, hq, hd, t)?;
1568                }
1569            }
1570            match (fused, hq8_any) {
1571                (Some(pair), _) => pair,
1572                (None, Some((hq, hd))) if h_q8.is_some() => (
1573                    e.matmul_decode_exact_pre(&la.ssm_beta, hq, hd, t)?,
1574                    e.matmul_decode_exact_pre(&la.ssm_alpha, hq, hd, t)?,
1575                ),
1576                (None, _) => (
1577                    e.matmul_decode_exact(&la.ssm_beta, h, t)?,
1578                    e.matmul_decode_exact(&la.ssm_alpha, h, t)?,
1579                ),
1580            }
1581        };
1582
1583        // conv with CARRIED state + ring roll (T >= pad rides the input-column update kernel;
1584        // T < pad — the MEMRA_SPEC_M2 t=2 arm — rolls via the pure-copy ring rebuild).
1585        let rl = cache.recur[il].as_mut().unwrap();
1586        let mut conv_out = e.uninit(conv_dim * t)?;
1587        e.ssm_conv1d_tm_state(
1588            &qkv_mixed,
1589            &mut rl.conv_state,
1590            la.ssm_conv1d.float_data(),
1591            &mut conv_out,
1592            conv_dim,
1593            t,
1594            d_conv,
1595        )?;
1596
1597        // GDN prep via the prefill kernels (repack + L2 + sigmoid + glog), T-wide.
1598        let mut q_g = e.uninit(d_state * num_v * t)?;
1599        let mut k_g = e.uninit(d_state * num_v * t)?;
1600        let mut v_g = e.uninit(d_state * num_v * t)?;
1601        e.qkv_to_gdn_repack(
1602            &conv_out, &mut q_g, &mut k_g, &mut v_g, d_state, num_v, num_k, key_dim, t,
1603        )?;
1604        let mut q_l2 = e.uninit(d_state * num_v * t)?;
1605        e.l2_norm_decode(&q_g, &mut q_l2, d_state, num_v * t, eps)?;
1606        let mut k_l2 = e.uninit(d_state * num_v * t)?;
1607        e.l2_norm_decode(&k_g, &mut k_l2, d_state, num_v * t, eps)?;
1608        let mut beta = e.uninit(t * num_v)?;
1609        e.sigmoid(&beta_raw, &mut beta, t * num_v)?;
1610        let mut g_log = e.uninit(t * num_v)?;
1611        e.gdn_glog(
1612            &alpha,
1613            la.ssm_dt.float_data(),
1614            la.ssm_a.float_data(),
1615            &mut g_log,
1616            num_v,
1617            t,
1618        )?;
1619
1620        // ONE gdn_scan over T tokens from the carried state (internal sequential loop ==
1621        // T chained T=1 steps). Ping-pong the resident buffers like eager decode.
1622        let mut o = e.uninit(d_state * num_v * t)?;
1623        {
1624            let crate::cache::RecurLayer {
1625                ssm_state,
1626                ssm_state_alt,
1627                ..
1628            } = rl;
1629            e.gdn_scan_s128(
1630                &q_l2,
1631                &k_l2,
1632                &v_g,
1633                &g_log,
1634                &beta,
1635                ssm_state,
1636                ssm_state_alt,
1637                &mut o,
1638                num_v,
1639                t,
1640                scale,
1641            )?;
1642        }
1643        std::mem::swap(&mut rl.ssm_state, &mut rl.ssm_state_alt);
1644
1645        // gated RMSNorm + out projection, T-wide. FUSED-QUANTIZE ARM (lane/vt-fixes fix 2,
1646        // mirroring the T=1 decode's launch-arc form): when ssm_out rides the q8_1 fast path,
1647        // emit q8_1 straight from the gated norm at nrows=num_v*t (row-indexed kernel, the
1648        // T-wide launch is the per-row program; kernel-check pins bit-identity vs
1649        // gated_rmsnorm -> quantize_q8_1 at T=1 and T=5) and feed the decode-exact dispatch
1650        // pre-quantized — one launch replaces norm + quantize. Fallback = the f32 chain.
1651        let out = if e.uses_q8_1_fast(&la.ssm_out) {
1652            let (gq, gd) =
1653                e.gated_rmsnorm_q8_1(&o, la.ssm_norm.float_data(), &z, d_state, num_v * t, eps)?;
1654            e.matmul_decode_exact_pre(&la.ssm_out, &gq, &gd, t)?
1655        } else {
1656            let mut gn = e.uninit(d_state * num_v * t)?;
1657            e.gated_rmsnorm(
1658                &o,
1659                la.ssm_norm.float_data(),
1660                &z,
1661                &mut gn,
1662                d_state,
1663                num_v * t,
1664                eps,
1665            )?;
1666            // DECODE-EXACT out-projection: same MMVQ path as the T=1 decode (ssm_out at m>=5
1667            // would fall to dp4a with a different FP reduction order — same class of bug as
1668            // the input projs).
1669            e.matmul_decode_exact(&la.ssm_out, &gn, t)?
1670        };
1671        let stash = if want_stash {
1672            Some(GdnStash {
1673                qkv_mixed,
1674                q_l2,
1675                k_l2,
1676                v_g,
1677                g_log,
1678                beta,
1679            })
1680        } else {
1681            None
1682        };
1683        Ok((out, stash))
1684    }
1685
1686    /// REPLAY-FREE partial-accept commit (2026-07-03): make the cache state == "committed through
1687    /// the first `j` verify columns" WITHOUT the legacy rollback + duplicate trunk replay.
1688    /// - Full-attn KV: truncate len to snapshot + j. The verify's appended rows for those columns
1689    ///   are bit-identical to what an eager T=1 chain writes (the decode-exact contract the
1690    ///   verify-probe gates), so keeping them == replaying them.
1691    /// - Linear layers, batched path: rebuild the conv ring by PURE COPIES (ring holds raw input
1692    ///   columns) and the ssm state by a prefix re-run of the SAME gdn_scan kernel (t=j) from the
1693    ///   snapshot state over the stash's identical inputs — the kernel's t-loop carries state in
1694    ///   registers and writes it once at the end, so iterations 0..j-1 are independent of T:
1695    ///   bit-identical to the verify's own state after j tokens == the eager chain state.
1696    /// - Linear layers, per-column path: restore the cloned actual state after column j-1.
1697    /// Caller guarantees 1 <= j <= t-1 (j==0 rounds take the legacy rollback; j==t is full accept).
1698    fn commit_verified_prefix(
1699        &self,
1700        e: &Engine,
1701        cache: &mut Cache,
1702        snap: &crate::cache::CacheSnapshot,
1703        ckpt: &VerifyCkpt,
1704        j: usize,
1705        kv_lens_done: bool,
1706        dev_j: Option<(&CudaSlice<u32>, usize, usize)>,
1707    ) -> Result<(), Box<dyn std::error::Error>> {
1708        let cfg = &self.cfg;
1709        let ssm = cfg.ssm.as_ref().unwrap();
1710        let d_state = ssm.state_size as usize;
1711        let num_k = ssm.group_count as usize;
1712        let num_v = ssm.time_step_rank as usize;
1713        let d_conv = ssm.conv_kernel as usize;
1714        let conv_dim = d_state * num_k * 2 + d_state * num_v;
1715        let scale = 1.0 / (d_state as f32).sqrt();
1716        for il in 0..self.layers.len() {
1717            if let (Some(kvl), Some(saved)) = (cache.kv[il].as_mut(), snap.kv_len[il]) {
1718                kvl.len = saved + j;
1719                // devacc 3a: spec_rollback_kv already wrote len_d on-device (same value).
1720                if !kv_lens_done {
1721                    e.set_i32_one(&mut kvl.len_d, kvl.len as i32)?;
1722                }
1723            }
1724            if let Some(rl) = cache.recur[il].as_mut() {
1725                if let Some(st) = &ckpt.gdn[il] {
1726                    let ring_old = snap.conv[il].as_ref().expect("snapshot missing conv");
1727                    let state_in = snap.ssm[il].as_ref().expect("snapshot missing ssm");
1728                    if let Some((acc, base, t_v)) = dev_j {
1729                        // 3b: j read on-device (_dc twins, same bodies; full accept early-exits).
1730                        e.ssm_conv_ring_rebuild_dc(
1731                            &st.qkv_mixed,
1732                            ring_old,
1733                            &mut rl.conv_state,
1734                            conv_dim,
1735                            acc,
1736                            base,
1737                            t_v,
1738                            d_conv,
1739                        )?;
1740                        let mut o = e.uninit(d_state * num_v * j.max(1))?;
1741                        e.gdn_scan_s128_dc(
1742                            &st.q_l2,
1743                            &st.k_l2,
1744                            &st.v_g,
1745                            &st.g_log,
1746                            &st.beta,
1747                            state_in,
1748                            &mut rl.ssm_state,
1749                            &mut o,
1750                            num_v,
1751                            acc,
1752                            base,
1753                            t_v,
1754                            scale,
1755                        )?;
1756                    } else {
1757                        e.ssm_conv_ring_rebuild(
1758                            &st.qkv_mixed,
1759                            ring_old,
1760                            &mut rl.conv_state,
1761                            conv_dim,
1762                            j,
1763                            d_conv,
1764                        )?;
1765                        let mut o = e.uninit(d_state * num_v * j)?; // scan output, discarded
1766                        e.gdn_scan_s128(
1767                            &st.q_l2,
1768                            &st.k_l2,
1769                            &st.v_g,
1770                            &st.g_log,
1771                            &st.beta,
1772                            state_in,
1773                            &mut rl.ssm_state,
1774                            &mut o,
1775                            num_v,
1776                            j,
1777                            scale,
1778                        )?;
1779                    }
1780                } else if let Some(cols) = &ckpt.cols[il] {
1781                    let (c, s) = &cols[j - 1];
1782                    e.copy_into(&mut rl.conv_state, 0, c, c.len())?;
1783                    e.copy_into(&mut rl.ssm_state, 0, s, s.len())?;
1784                } else {
1785                    return Err(
1786                        "commit_verified_prefix: verify ckpt missing for linear layer".into(),
1787                    );
1788                }
1789            }
1790        }
1791        cache.pos = snap.pos + j;
1792        Ok(())
1793    }
1794
1795    /// ROUND-STREAM: recur restore with device-j (the _dc twins; full accept early-exits
1796    /// in-kernel). Requires the batched-linear stash on every linear layer (stream gate).
1797    fn commit_verified_prefix_stream(
1798        &self,
1799        e: &Engine,
1800        cache: &mut Cache,
1801        snap: &crate::cache::CacheSnapshot,
1802        ckpt: &VerifyCkpt,
1803        acc: &CudaSlice<u32>,
1804        base: usize,
1805        t_v: usize,
1806    ) -> Result<(), Box<dyn std::error::Error>> {
1807        let cfg = &self.cfg;
1808        let ssm = cfg.ssm.as_ref().unwrap();
1809        let d_state = ssm.state_size as usize;
1810        let num_k = ssm.group_count as usize;
1811        let num_v = ssm.time_step_rank as usize;
1812        let d_conv = ssm.conv_kernel as usize;
1813        let conv_dim = d_state * num_k * 2 + d_state * num_v;
1814        let scale = 1.0 / (d_state as f32).sqrt();
1815        for il in 0..self.layers.len() {
1816            if let Some(rl) = cache.recur[il].as_mut() {
1817                let st = ckpt.gdn[il]
1818                    .as_ref()
1819                    .ok_or("stream restore: batched-linear stash missing")?;
1820                let ring_old = snap.conv[il].as_ref().expect("snapshot missing conv");
1821                let state_in = snap.ssm[il].as_ref().expect("snapshot missing ssm");
1822                e.ssm_conv_ring_rebuild_dc(
1823                    &st.qkv_mixed,
1824                    ring_old,
1825                    &mut rl.conv_state,
1826                    conv_dim,
1827                    acc,
1828                    base,
1829                    t_v,
1830                    d_conv,
1831                )?;
1832                let mut o = e.uninit(d_state * num_v * t_v)?;
1833                e.gdn_scan_s128_dc(
1834                    &st.q_l2,
1835                    &st.k_l2,
1836                    &st.v_g,
1837                    &st.g_log,
1838                    &st.beta,
1839                    state_in,
1840                    &mut rl.ssm_state,
1841                    &mut o,
1842                    num_v,
1843                    acc,
1844                    base,
1845                    t_v,
1846                    scale,
1847                )?;
1848            }
1849        }
1850        Ok(())
1851    }
1852
1853    /// EAGLE3 aux-capturing verify forward over `tokens` (T) — mirrors `decode_step_t_h` exactly
1854    /// (same KV append, same causal verify, same recur advance) but ALSO clones the aux residual-
1855    /// stream hiddens (blocks in `aux_layers`) for TWO columns: the LAST column (always) and the
1856    /// optional `pred_col` (the EAGLE seed = bonus's predecessor). Returns
1857    /// (all_T_logits host, last_col_aux, pred_col_aux?). Used by the EAGLE3 orchestrator's commit.
1858    pub fn decode_step_t_aux2(
1859        &self,
1860        e: &Engine,
1861        tokens: &[u32],
1862        pos0: usize,
1863        cache: &mut Cache,
1864        aux_layers: &[usize],
1865        pred_col: Option<usize>,
1866    ) -> Result<
1867        (Vec<f32>, Vec<CudaSlice<f32>>, Option<Vec<CudaSlice<f32>>>),
1868        Box<dyn std::error::Error>,
1869    > {
1870        let cfg = &self.cfg;
1871        let n_embd = cfg.n_embd as usize;
1872        let eps = cfg.rms_eps;
1873        let t = tokens.len();
1874        let pos_vec: Vec<i32> = (0..t).map(|i| (pos0 + i) as i32).collect();
1875        let pos_d = e.htod_i32(&pos_vec)?;
1876        let mut x = e.htod(&self.embd.gather(n_embd, tokens))?;
1877        let mut aux_last: Vec<CudaSlice<f32>> = Vec::with_capacity(aux_layers.len());
1878        let mut aux_pred: Vec<CudaSlice<f32>> = Vec::new();
1879        let want_pred = pred_col.is_some();
1880
1881        for (il, layer) in self.layers.iter().enumerate() {
1882            // DISPATCH-MIRRORED norms (FP-order lesson #8) — see decode_step_t_h_emb.
1883            let mixer_fast = self.mixer_in_q8_1_fast(e, &layer.mixer);
1884            let norm_fused = std::env::var("MEMRA_NO_FUSE_NORMQ").is_err() && mixer_fast;
1885            let mut h = vbuf(e, t * n_embd)?; // fully written by either rms_norm arm
1886            if norm_fused {
1887                e.rms_norm_decode(&x, layer.attn_norm.float_data(), &mut h, n_embd, t, eps)?;
1888            } else {
1889                e.rms_norm(&x, layer.attn_norm.float_data(), &mut h, n_embd, t, eps)?;
1890            }
1891            let mixed = match &layer.mixer {
1892                Mixer::Full(fa) => {
1893                    self.full_attn_verify(e, fa, &h, None, &pos_d, t, cache, il, None)?
1894                }
1895                Mixer::Mla(_) => crate::hybrid::mla_forward_unimplemented(),
1896                Mixer::Linear(la) => {
1897                    let mut out = e.zeros(t * n_embd)?;
1898                    for col in 0..t {
1899                        let mut h_col = e.zeros(n_embd)?;
1900                        let src = h.slice(col * n_embd..(col + 1) * n_embd);
1901                        e.copy_view_into(&mut h_col, 0, &src, n_embd)?;
1902                        let m_col = self.linear_attn_decode(e, la, &h_col, cache, il)?;
1903                        e.copy_into(&mut out, col * n_embd, &m_col, n_embd)?;
1904                    }
1905                    out
1906                }
1907            };
1908            let ffn_fuse = match &layer.ffn {
1909                crate::hybrid::Ffn::Dense {
1910                    ffn_gate, ffn_up, ..
1911                } => {
1912                    std::env::var("MEMRA_NO_FUSE_NORMQ").is_err()
1913                        && e.uses_q8_1_fast(ffn_gate)
1914                        && e.uses_q8_1_fast(ffn_up)
1915                }
1916                crate::hybrid::Ffn::Moe(_) => false,
1917            };
1918            let mut x1 = vbuf(e, t * n_embd)?; // fully written by add / add_rms_norm
1919            let mut z = vbuf(e, t * n_embd)?; // fully written by rms_norm_decode / add_rms_norm
1920            if ffn_fuse {
1921                e.add(&x, &mixed, &mut x1, t * n_embd)?;
1922                e.rms_norm_decode(
1923                    &x1,
1924                    layer.post_attn_norm.float_data(),
1925                    &mut z,
1926                    n_embd,
1927                    t,
1928                    eps,
1929                )?;
1930            } else {
1931                e.add_rms_norm(
1932                    &x,
1933                    &mixed,
1934                    layer.post_attn_norm.float_data(),
1935                    &mut x1,
1936                    &mut z,
1937                    n_embd,
1938                    t,
1939                    eps,
1940                )?;
1941            }
1942            let ffn_out = match &layer.ffn {
1943                crate::hybrid::Ffn::Dense {
1944                    ffn_gate,
1945                    ffn_up,
1946                    ffn_down,
1947                } => {
1948                    let n_ff = ffn_gate.out_features();
1949                    let gate = e.matmul_decode_exact(ffn_gate, &z, t)?;
1950                    let up = e.matmul_decode_exact(ffn_up, &z, t)?;
1951                    let mut act = vbuf(e, t * n_ff)?; // fully written by ffn_act
1952                    Self::ffn_act(e, &self.cfg, &gate, &up, &mut act, t * n_ff)?;
1953                    e.matmul_decode_exact(ffn_down, &act, t)?
1954                }
1955                crate::hybrid::Ffn::Moe(m) => self.moe_ffn_il(e, m, &z, t, il as u16)?,
1956            };
1957            let mut x2 = vbuf(e, t * n_embd)?; // fully written by add
1958            e.add(&x1, &ffn_out, &mut x2, t * n_embd)?;
1959            if aux_layers.contains(&il) {
1960                let mut a = e.zeros(n_embd)?;
1961                e.copy_view_into(&mut a, 0, &x2.slice((t - 1) * n_embd..t * n_embd), n_embd)?;
1962                aux_last.push(a);
1963                if let Some(pc) = pred_col {
1964                    let mut ap = e.zeros(n_embd)?;
1965                    e.copy_view_into(
1966                        &mut ap,
1967                        0,
1968                        &x2.slice(pc * n_embd..(pc + 1) * n_embd),
1969                        n_embd,
1970                    )?;
1971                    aux_pred.push(ap);
1972                }
1973            }
1974            x = x2;
1975        }
1976        let mut hn = vbuf(e, t * n_embd)?; // fully written by rms_norm_decode
1977        e.rms_norm_decode(&x, self.output_norm.float_data(), &mut hn, n_embd, t, eps)?;
1978        let logits = e.matmul_decode_exact(&self.output, &hn, t)?;
1979        let host = e.dtoh(&logits)?;
1980        cache.pos += t;
1981        Ok((
1982            host,
1983            aux_last,
1984            if want_pred { Some(aux_pred) } else { None },
1985        ))
1986    }
1987
1988    /// Full-attention mixer over T query tokens with a GROWING resident KV (verify path, §D.3).
1989    /// Appends the T new K/V columns to cache.kv[il] then attends causally over [0..len) via
1990    /// fa_prefill. Token-major [T, kv_dim] projection layout == cache row layout (single copy).
1991    #[allow(clippy::too_many_arguments)]
1992    fn full_attn_verify(
1993        &self,
1994        e: &Engine,
1995        fa: &FullAttnLayer,
1996        h: &CudaSlice<f32>,
1997        h_q8: Option<(&CudaSlice<i8>, &CudaSlice<f32>)>,
1998        pos_d: &CudaSlice<i32>,
1999        t: usize,
2000        cache: &mut Cache,
2001        il: usize,
2002        stream_ctr: Option<&CudaSlice<i32>>,
2003    ) -> Result<CudaSlice<f32>, Box<dyn std::error::Error>> {
2004        let cfg = &self.cfg;
2005        let n_head = cfg.n_head as usize;
2006        let n_head_kv = cfg.n_head_kv as usize;
2007        let head_dim = cfg.head_dim_k as usize;
2008        let eps = cfg.rms_eps;
2009        let scale = 1.0 / (head_dim as f32).sqrt();
2010        let n_embd = cfg.n_embd as usize;
2011
2012        // DECODE-EXACT Q/K/V projections: matmul_decode_exact forces the MMVQ (warp-per-row) path
2013        // for every m, matching the T=1 decode's FP accumulation order. matmul_pre at m>=5 would
2014        // fall to dp4a (128-thread, two-level reduce) with a different FP sum order.
2015        // Q8 TRUNK-FUSION at T=1: DISPATCH-MIRRORS the eager decode's fused3 (bit-identical body).
2016        // BATCHED EPILOGUE RE-FUSE (lane/vt-fixes fix 2): `h_q8` = the attn-input norm's q8_1
2017        // form emitted by the fused rms_norm_q8_1 (bit-identical to rms_norm_decode ->
2018        // quantize_q8_1, kernel-check-pinned). When present (caller checked mixer q8_1-fast),
2019        // every projection consumes it — `h` may be a zero-len placeholder and must not be read.
2020        let (qf, mut k, v) = {
2021            let mut fused = None;
2022            let qkv_fast = e.uses_q8_1_fast(&fa.wq)
2023                && e.uses_q8_1_fast(&fa.wk)
2024                && e.uses_q8_1_fast(&fa.wv);
2025            if t == 1 && qkv_fast {
2026                let (hq_o, hd_o);
2027                let (hq, hd): (&CudaSlice<i8>, &CudaSlice<f32>) = match h_q8 {
2028                    Some(p) => p,
2029                    None => {
2030                        (hq_o, hd_o) = e.quantize_q8_1(h, 1, n_embd)?;
2031                        (&hq_o, &hd_o)
2032                    }
2033                };
2034                fused = e.matmul_q8_fused3(&fa.wq, &fa.wk, &fa.wv, hq, hd)?;
2035            } else if spec_fused_t() && (2..=4).contains(&t) && qkv_fast {
2036                // VERIFY-TIER TRUNK FUSION (MEMRA_SPEC_FUSED_T): one shared quantize + one
2037                // fused3 batched launch replaces three decode-exact calls (3 re-quantizes of
2038                // the same h + 3 _b2/_b4 launches). Bit-identical per (tensor,token,row).
2039                let (hq_o, hd_o);
2040                let (hq, hd): (&CudaSlice<i8>, &CudaSlice<f32>) = match h_q8 {
2041                    Some(p) => p,
2042                    None => {
2043                        (hq_o, hd_o) = e.quantize_q8_1(h, t, n_embd)?;
2044                        (&hq_o, &hd_o)
2045                    }
2046                };
2047                fused = e.matmul_q8_fused3_t(&fa.wq, &fa.wk, &fa.wv, hq, hd, t)?;
2048            }
2049            match (fused, h_q8) {
2050                (Some(triple), _) => triple,
2051                // shared pre-quantized activation (q8_1-fast guaranteed by the caller): the
2052                // decode-exact dispatch consumes (hq, hd) instead of re-quantizing 3x.
2053                (None, Some((hq, hd))) if qkv_fast => (
2054                    e.matmul_decode_exact_pre(&fa.wq, hq, hd, t)?,
2055                    e.matmul_decode_exact_pre(&fa.wk, hq, hd, t)?,
2056                    e.matmul_decode_exact_pre(&fa.wv, hq, hd, t)?,
2057                ),
2058                (None, _) => (
2059                    e.matmul_decode_exact(&fa.wq, h, t)?,
2060                    e.matmul_decode_exact(&fa.wk, h, t)?,
2061                    e.matmul_decode_exact(&fa.wv, h, t)?,
2062                ),
2063            }
2064        };
2065        // M3/Hy3 have no attention output gate — wq out is exactly q; skip the split.
2066        let gated = self.cfg.attn_out_gate();
2067        let (mut q, gate) = if gated {
2068            let mut q = vbuf(e, t * n_head * head_dim)?; // fully written by q_gate_split
2069            let mut gate = vbuf(e, t * n_head * head_dim)?; // fully written by q_gate_split
2070            e.q_gate_split(&qf, &mut q, &mut gate, head_dim, n_head, t)?;
2071            (q, Some(gate))
2072        } else {
2073            (qf, None)
2074        };
2075
2076        let mut qn = vbuf(e, t * n_head * head_dim)?; // fully written by rms_norm
2077        e.rms_norm(
2078            &q,
2079            fa.q_norm.float_data(),
2080            &mut qn,
2081            head_dim,
2082            n_head * t,
2083            eps,
2084        )?;
2085        q = qn;
2086        let mut kn = vbuf(e, t * n_head_kv * head_dim)?; // fully written by rms_norm
2087        e.rms_norm(
2088            &k,
2089            fa.k_norm.float_data(),
2090            &mut kn,
2091            head_dim,
2092            n_head_kv * t,
2093            eps,
2094        )?;
2095        k = kn;
2096        let rope_dims = cfg.rope_dim_count as usize;
2097        e.rope_neox(
2098            &mut q,
2099            pos_d,
2100            head_dim,
2101            rope_dims,
2102            n_head,
2103            t,
2104            cfg.rope_freq_base,
2105            1.0,
2106        )?;
2107        e.rope_neox(
2108            &mut k,
2109            pos_d,
2110            head_dim,
2111            rope_dims,
2112            n_head_kv,
2113            t,
2114            cfg.rope_freq_base,
2115            1.0,
2116        )?;
2117
2118        // append T new K/V columns to the resident QUANTIZED cache. k/v are token-major [T, kv_dim]
2119        // f32; append-quantize each of the T token rows into the byte cache (q8_0 K / q5_1 V).
2120        let kvl = cache.kv[il].as_mut().unwrap();
2121        let (kv_dim_k, kv_dim_v, ktb, vtb) =
2122            (kvl.kv_dim_k, kvl.kv_dim_v, kvl.k_tok_bytes, kvl.v_tok_bytes);
2123        if let Some(ctr) = stream_ctr {
2124            // stream: ONE batched append at the device counter (rows kernel = the per-view warp
2125            // math on a (block, token) grid, documented byte-identical); host len is a stale
2126            // LOWER BOUND under pre-issue (drain reconciles it).
2127            e.append_kv_quantized_rows_dc(
2128                &k,
2129                &v,
2130                &mut kvl.k,
2131                &mut kvl.v,
2132                ctr,
2133                t,
2134                kv_dim_k,
2135                kv_dim_v,
2136                ktb,
2137                vtb,
2138                crate::Engine::kv_fp8_on(),
2139            )?;
2140        } else {
2141            for i in 0..t {
2142                let k_row = k.slice(i * kv_dim_k..(i + 1) * kv_dim_k);
2143                let v_row = v.slice(i * kv_dim_v..(i + 1) * kv_dim_v);
2144                e.append_kv_quantized_view(
2145                    &k_row,
2146                    &v_row,
2147                    &mut kvl.k,
2148                    &mut kvl.v,
2149                    kvl.len + i,
2150                    kv_dim_k,
2151                    kv_dim_v,
2152                    ktb,
2153                    vtb,
2154                    crate::Engine::kv_fp8_on(),
2155                )?;
2156            }
2157            kvl.len += t;
2158        }
2159
2160        // BIT-IDENTICAL VERIFY ATTENTION (spec-exactness fix): the FP accumulation order must be
2161        // byte-for-byte identical to the eager decode path. fa_prefill uses a different tile size
2162        // (BLOCK_Q=64, BK=32) and online-softmax structure than fa_decode's split-K + combine,
2163        // which changes FP summation order and can flip argmax at tight logit margins. Query row r
2164        // attends to keys [0..base_len+r+1) — each successive row sees one more key (the causal
2165        // property). This matches eager: decode appends k at len, then fa_decode sees t_kv = len+1
2166        // keys. The verify appends all T tokens first but bounds the key range per row.
2167        //
2168        // MULTI-ROW FUSED PATH (the long-ctx spec fix, 2026-07-03): when every row takes the vec
2169        // kernel (base_len+1 >= FA_VEC_MIN_TKV), ONE fa_decode_rows launch executes the exact
2170        // per-row program for all T rows (grid.z = row, per-row n_splits from the same
2171        // fa_split_keys formula) — replacing T x (2 launches + 2 dtod copies + 5 partial allocs)
2172        // and multiplying resident CTAs by T on a latency-bound kernel. Bit-identical per row by
2173        // construction; kernel-check pins rows-vs-loop byte identity, run-spec is the end gate.
2174        // Short ctx (any row below the vec crossover) and MEMRA_NO_FA_VEC/MEMRA_FA_ROWS_OFF keep the
2175        // per-row loop (whose fa_decode picks scalar/vec per row exactly like eager decode).
2176        let mut attn = vbuf(e, t * n_head * head_dim)?; // fully written by every FA arm below
2177        let base_len = kvl.len - t; // KV len BEFORE this round's T tokens were appended
2178                                    // T=1 INCLUDED (2026-07-05): p-min cuts the draft to 1 in ~75% of rounds on hard
2179                                    // (agentic) content — the old t>1 gate sent those rounds to the per-row loop (262us/row
2180                                    // + q-row copy + per-row allocs vs 93us/row through the fused kernel at grid.z=1, same
2181                                    // program). nsys accounting: 1088 of 1456 verify FA launches were T=1 escapees.
2182                                    // LEAN T=1 ARM (MEMRA_SPEC_LEAN, close35): at t==1, q IS one row and fa_decode on it is
2183                                    // the EXACT eager decode dispatch (vec_q_v2 + combine_f32; the rows pair measured +50us
2184                                    // at m=1). Byte-identical: kernel-check pins rows-vs-loop identity, and the per-row loop
2185                                    // at t=1 is fa_decode on the same q with zero-offset copies. Gates arbitrate.
2186        if let Some(ctr) = stream_ctr {
2187            // STREAM ARM: causal base from the device counter; host kvl.len is a stale lower
2188            // bound used only for the split-sizing upper bound (+64 slack covers M pre-issued
2189            // rounds at K<=8). Views span the bound; per-row limits derive in-kernel.
2190            let upper = kvl.len + t + 64;
2191            let k_view = e.view_u8(&kvl.k, (upper.min(cache.max_ctx)) * ktb);
2192            let v_view = e.view_u8(&kvl.v, (upper.min(cache.max_ctx)) * vtb);
2193            e.fa_decode_rows_dc(
2194                &q,
2195                &k_view,
2196                &v_view,
2197                &mut attn,
2198                head_dim,
2199                n_head,
2200                n_head_kv,
2201                ctr,
2202                upper.min(cache.max_ctx),
2203                t,
2204                scale,
2205                ktb,
2206                vtb,
2207                0,
2208                false,
2209            )?;
2210        } else if spec_lean() && t == 1 {
2211            let t_kv = base_len + 1;
2212            let k_view = e.view_u8(&kvl.k, t_kv * ktb);
2213            let v_view = e.view_u8(&kvl.v, t_kv * vtb);
2214            e.fa_decode_kvmod(
2215                &q,
2216                &k_view,
2217                &v_view,
2218                &mut attn,
2219                head_dim,
2220                n_head,
2221                n_head_kv,
2222                t_kv,
2223                scale,
2224                ktb,
2225                vtb,
2226                crate::Engine::kv_fp8_on(),
2227            )?;
2228        } else if e.fa_rows_eligible(base_len, head_dim) {
2229            let k_view = e.view_u8(&kvl.k, (base_len + t) * ktb);
2230            let v_view = e.view_u8(&kvl.v, (base_len + t) * vtb);
2231            e.fa_decode_rows(
2232                &q,
2233                &k_view,
2234                &v_view,
2235                &mut attn,
2236                head_dim,
2237                n_head,
2238                n_head_kv,
2239                base_len,
2240                t,
2241                scale,
2242                ktb,
2243                vtb,
2244                None,
2245                false,
2246                crate::Engine::kv_fp8_on(),
2247                None,
2248            )?;
2249        } else {
2250            for r in 0..t {
2251                let t_kv_r = base_len + r + 1; // this row sees keys [0..t_kv_r)
2252                let k_view_r = e.view_u8(&kvl.k, t_kv_r * ktb);
2253                let v_view_r = e.view_u8(&kvl.v, t_kv_r * vtb);
2254                // copy q row into an owned buffer (fa_decode takes &CudaSlice, not CudaView)
2255                let mut q_row = vbuf(e, n_head * head_dim)?; // fully written by copy_view_into
2256                let q_src = q.slice(r * n_head * head_dim..(r + 1) * n_head * head_dim);
2257                e.copy_view_into(&mut q_row, 0, &q_src, n_head * head_dim)?;
2258                let mut attn_row = vbuf(e, n_head * head_dim)?; // fully written by fa_decode
2259                e.fa_decode_kvmod(
2260                    &q_row,
2261                    &k_view_r,
2262                    &v_view_r,
2263                    &mut attn_row,
2264                    head_dim,
2265                    n_head,
2266                    n_head_kv,
2267                    t_kv_r,
2268                    scale,
2269                    ktb,
2270                    vtb,
2271                    crate::Engine::kv_fp8_on(),
2272                )?;
2273                e.copy_into(
2274                    &mut attn,
2275                    r * n_head * head_dim,
2276                    &attn_row,
2277                    n_head * head_dim,
2278                )?;
2279            }
2280        }
2281
2282        let attn_g = match &gate {
2283            Some(gate) => {
2284                let mut gsig = vbuf(e, t * n_head * head_dim)?; // fully written by sigmoid
2285                e.sigmoid(gate, &mut gsig, t * n_head * head_dim)?;
2286                let mut ag = vbuf(e, t * n_head * head_dim)?; // fully written by mul
2287                e.mul(&attn, &gsig, &mut ag, t * n_head * head_dim)?;
2288                ag
2289            }
2290            None => attn,
2291        };
2292        // DECODE-EXACT wo projection: at m>=5 (K=4+ with pending) the generic matmul would use dp4a
2293        // (128-thread, different FP sum order than MMVQ). Force MMVQ for bit-identity with decode.
2294        Ok(e.matmul_decode_exact(&fa.wo, &attn_g, t)?)
2295    }
2296
2297    /// Greedy MTP speculative decode (§B). Token-identical to `generate(prompt, max_new)` but uses
2298    /// the NextN head to draft K tokens then verifies them in one batched target forward.
2299    /// Returns (generated tokens, total_drafted, total_accepted) so the caller can report
2300    /// acceptance rate. `k` = draft length per round.
2301    ///
2302    /// GRAPH DRAFT (stage 2 of graph-grade spec): when the model is all-Dense and the MTP head is
2303    /// Dense (no MoE host readbacks), the fixed-shape T=1 MTP forward is CUDA-graph-captured ONCE
2304    /// and replayed per draft step — the ~40 eager launches per drafted token collapse into one
2305    /// graph dispatch; only the 4-byte token id (and 4-byte p-min confidence) round-trip per step.
2306    /// Event tracking is disabled for the whole call (generate_graph pattern) so every buffer the
2307    /// captured graph references is event-free; the spec loop is strictly single-stream.
2308    /// MEMRA_SPEC_NOGRAPH=1 forces the eager draft chain.
2309    /// SAMPLED mode (MEMRA_SPEC_TEMP>0) has its OWN capture (gumbel-perturbed in-graph argmax,
2310    /// device Philox event counter, persistent q retention) — graph-vs-eager sampled streams are
2311    /// bit-identical for the same (seed, prompt, K, temp); see the sampled-graph setup in
2312    /// generate_spec_inner2.
2313    /// Multi-turn session: trunk cache + MTP draft scratch persist across generate calls, so
2314    /// turn N+1 primes ONLY its new suffix (the 124k-conversation daily pattern — re-priming a
2315    /// 32k history costs ~54s; a suffix prime costs seconds). APPEND-ONLY by construction: the
2316    /// hybrid linear-attn states are in-place (no position index), so a session can extend but
2317    /// never rewind — `committed` is the exact token list whose state the caches hold (includes
2318    /// any overshoot tokens past max_new; the caller renders from `committed`, not its own echo).
2319    pub fn new_session(
2320        &self,
2321        e: &Engine,
2322        max_ctx: usize,
2323    ) -> Result<SpecSession, Box<dyn std::error::Error>> {
2324        Ok(SpecSession {
2325            cache: Cache::new(e, &self.cfg, max_ctx)?,
2326            scratch: MtpScratch::new(
2327                e,
2328                &self.cfg,
2329                max_ctx,
2330                self.mtp.as_ref().and_then(|m| m.geom.as_ref()),
2331            )?,
2332            committed: Vec::new(),
2333            last_h: None,
2334            next_pred: None,
2335            sctr: 0,
2336            uctr: 0,
2337            draft_ctx: None,
2338            pending_tok: None,
2339        })
2340    }
2341
2342    /// Commit a carried pending bonus (see SpecSession::pending_tok): one T=1 trunk pass
2343    /// (its logits' argmax becomes next_pred) + the draft-KV fill at the carried anchor —
2344    /// byte-identical to the pre-carry session tail. Required before a non-empty-suffix
2345    /// prime, a sampled turn, or parking a session for pool reuse. No-op without a pending.
2346    pub fn spec_flush_pending(
2347        &self,
2348        e: &Engine,
2349        sess: &mut SpecSession,
2350    ) -> Result<(), Box<dyn std::error::Error>> {
2351        let Some(b) = sess.pending_tok.take() else {
2352            return Ok(());
2353        };
2354        let mtp = self.mtp.as_ref().expect("pending carry requires an MTP head");
2355        let n_embd = self.cfg.n_embd as usize;
2356        let (embd_qt, embd_rb) = self.embd.qt_and_row_bytes(n_embd);
2357        let embd_gpu = if spec_host_embd() {
2358            None
2359        } else {
2360            Some(
2361                self.embd_gpu
2362                    .get_or_init(|| e.upload_u8(&self.embd.raw).expect("embed table upload")),
2363            )
2364        };
2365        let embd_dev = embd_gpu.map(|g| (g, embd_qt, embd_rb));
2366        let pos_b = sess.cache.pos;
2367        sess.scratch.set_len(e, pos_b)?;
2368        let (lg_b, hb) = self.decode_step_h(e, b, &mut sess.cache)?;
2369        sess.next_pred = Some(argmax(&lg_b) as u32);
2370        let anchor = sess
2371            .last_h
2372            .as_ref()
2373            .expect("pending carry requires last_h (the predecessor-row anchor)");
2374        self.mtp_kv_fill(e, mtp, &[b], anchor, pos_b, &mut sess.scratch, embd_dev)?;
2375        sess.last_h = Some(hb);
2376        sess.committed.push(b);
2377        Ok(())
2378    }
2379
2380    /// One spec-decode turn on a live session. `suffix` = the NEW tokens only (turn N+1's user
2381    /// message rendered through the chat template continuation). Returns (new tokens emitted,
2382    /// drafted, accepted); session.committed grows by suffix + emitted.
2383    pub fn generate_spec_session(
2384        &self,
2385        e: &Engine,
2386        sess: &mut SpecSession,
2387        suffix: &[u32],
2388        max_new: usize,
2389        k: usize,
2390    ) -> Result<(Vec<u32>, usize, usize), Box<dyn std::error::Error>> {
2391        self.generate_spec_session_sampled(e, sess, suffix, max_new, k, None)
2392    }
2393
2394    /// Serve-path sampled spec: routes the burst through the rejection-sampling verify with
2395    /// per-SESSION Philox continuity (sess.sctr/uctr). None = env-driven (CLI) or greedy.
2396    /// Filters (top-k/p/min-p) apply SYMMETRICALLY to draft q and verify p — distribution-exact
2397    /// for the filtered target (feat/filtered-spec).
2398    pub fn generate_spec_session_sampled(
2399        &self,
2400        e: &Engine,
2401        sess: &mut SpecSession,
2402        suffix: &[u32],
2403        max_new: usize,
2404        k: usize,
2405        sampling: Option<SpecSampling>,
2406    ) -> Result<(Vec<u32>, usize, usize), Box<dyn std::error::Error>> {
2407        self.generate_spec_session_constrained(e, sess, suffix, max_new, k, sampling, None)
2408    }
2409
2410    /// `generate_spec_session_sampled` + GRAMMAR (constrained decoding, 2026-08-03): the
2411    /// hook truncates acceptance at the first grammar-illegal token AFTER the exactness
2412    /// verify (grammar is an extra rejection rule, ordering like the batched-verify twins)
2413    /// and replaces an illegal bonus with the MASKED argmax of the target's own verify
2414    /// column — token-identical to constrained plain greedy decode. GREEDY only (the
2415    /// worker routes sampled constrained to plain decode). Acceptance under tight grammars
2416    /// may drop (drafter is unconstrained); that is measured, not hidden.
2417    #[allow(clippy::too_many_arguments)]
2418    pub fn generate_spec_session_constrained(
2419        &self,
2420        e: &Engine,
2421        sess: &mut SpecSession,
2422        suffix: &[u32],
2423        max_new: usize,
2424        k: usize,
2425        sampling: Option<SpecSampling>,
2426        constraint: Option<&mut dyn SpecConstraint>,
2427    ) -> Result<(Vec<u32>, usize, usize), Box<dyn std::error::Error>> {
2428        if constraint.is_some() && sampling.is_some_and(|s| s.temp > 0.0) {
2429            return Err("constrained spec decode is greedy-only (worker routes sampled \
2430                        constrained to plain decode)".into());
2431        }
2432        // PENDING-CARRY entry flush: a carried bonus precedes any new suffix in the sequence,
2433        // so it must commit BEFORE the suffix primes; the sampled path doesn't carry (its
2434        // round-0 accept needs the commit pass's logits). Empty-suffix greedy bursts — the
2435        // serve continuation case — consume the carry in-loop with zero solo passes.
2436        if sess.pending_tok.is_some()
2437            && (!suffix.is_empty() || sampling.map_or(false, |s| s.temp > 0.0))
2438        {
2439            self.spec_flush_pending(e, sess)?;
2440        }
2441        let mtp_dense = self
2442            .mtp
2443            .as_ref()
2444            .map(|m| matches!(m.ffn, crate::hybrid::Ffn::Dense { .. }))
2445            .unwrap_or(false);
2446        let trunk_dense = self
2447            .layers
2448            .iter()
2449            .all(|l| matches!(l.ffn, crate::hybrid::Ffn::Dense { .. }));
2450        // FULL_PREC forces the EAGER draft: the graph capture would enclose cuBLASLt f32 GEMV
2451        // (the FloatBf16 else-branches) and a bf16_to_f32 dequant alloc — neither is stream-capture
2452        // safe. Eager rides matmul/matmul_decode_exact, which dequant FloatBf16 on use. (§item 2.)
2453        let graph_draft = std::env::var("MEMRA_SPEC_NOGRAPH").is_err()
2454            && !spec_host_embd()
2455            && mtp_dense
2456            && trunk_dense
2457            && k + 2 < 96
2458            && !crate::model::full_prec_enabled();
2459        let was_tracking = e.ctx().is_event_tracking();
2460        if graph_draft && was_tracking {
2461            unsafe {
2462                e.ctx().disable_event_tracking();
2463            }
2464        }
2465        let r = self.generate_spec_inner2(e, suffix, max_new, k, graph_draft, Some(sess), sampling, constraint);
2466        if graph_draft && was_tracking {
2467            unsafe {
2468                e.ctx().enable_event_tracking();
2469            }
2470        }
2471        let (out, d, a) = r?;
2472        Ok((out, d, a))
2473    }
2474
2475    pub fn generate_spec(
2476        &self,
2477        e: &Engine,
2478        prompt: &[u32],
2479        max_new: usize,
2480        k: usize,
2481    ) -> Result<(Vec<u32>, usize, usize), Box<dyn std::error::Error>> {
2482        let mtp_dense = self
2483            .mtp
2484            .as_ref()
2485            .map(|m| matches!(m.ffn, crate::hybrid::Ffn::Dense { .. }))
2486            .unwrap_or(false);
2487        let trunk_dense = self
2488            .layers
2489            .iter()
2490            .all(|l| matches!(l.ffn, crate::hybrid::Ffn::Dense { .. }));
2491        // FULL_PREC forces eager (see generate_spec_session note): CUDA graph capture cannot
2492        // enclose cuBLASLt f32 GEMV or the bf16_to_f32 dequant alloc the FloatBf16 path needs.
2493        let graph_draft = std::env::var("MEMRA_SPEC_NOGRAPH").is_err()
2494            && !spec_host_embd()
2495            && mtp_dense
2496            && trunk_dense
2497            && k + 2 < 96
2498            && !crate::model::full_prec_enabled();
2499        if !graph_draft {
2500            return self.generate_spec_inner2(e, prompt, max_new, k, false, None, None, None);
2501        }
2502        let was_tracking = e.ctx().is_event_tracking();
2503        if was_tracking {
2504            unsafe {
2505                e.ctx().disable_event_tracking();
2506            }
2507        }
2508        let r = self.generate_spec_inner2(e, prompt, max_new, k, true, None, None, None);
2509        if was_tracking {
2510            unsafe {
2511                e.ctx().enable_event_tracking();
2512            }
2513        }
2514        r
2515    }
2516
2517    fn generate_spec_inner2(
2518        &self,
2519        e: &Engine,
2520        prompt: &[u32],
2521        max_new: usize,
2522        k: usize,
2523        graph_draft: bool,
2524        mut sess: Option<&mut SpecSession>,
2525        sampling: Option<SpecSampling>,
2526        mut constraint: Option<&mut dyn SpecConstraint>,
2527    ) -> Result<(Vec<u32>, usize, usize), Box<dyn std::error::Error>> {
2528        assert!(k >= 1, "k must be >= 1");
2529        let mtp = self
2530            .mtp
2531            .as_ref()
2532            .expect("generate_spec requires an MTP head (nextn_predict_layers>0)");
2533        let n_vocab = self.output.out_features();
2534        // FR-Spec: the draft head may be TRIMMED (fewer rows than n_vocab); the draft argmax runs
2535        // over the draft vocab and the winning index maps through d2t to a TARGET token id.
2536        // Everything downstream (verify/accept/commit) sees target ids only — exactness unchanged.
2537        let d_vocab = mtp
2538            .shared_head_head
2539            .as_ref()
2540            .unwrap_or(&self.output)
2541            .out_features();
2542        let n_embd = self.cfg.n_embd as usize;
2543        // SESSION MODE: reuse the live cache/scratch, prime only the suffix. `base` = tokens
2544        // already committed (their state is in the caches); 0 = fresh single-shot call.
2545        let session_mode = sess.is_some();
2546        let max_ctx = match sess.as_ref() {
2547            Some(s) => s.cache.max_ctx,
2548            None => prompt.len() + max_new + k + 8,
2549        };
2550        let mut own_cache;
2551        let mut own_scratch;
2552        let (cache, scratch, mut sess_tail, mut sess_draft_slot, mut sess_pending_slot): (
2553            &mut Cache,
2554            &mut MtpScratch,
2555            Option<(
2556                &mut Vec<u32>,
2557                &mut Option<CudaSlice<f32>>,
2558                &mut Option<u32>,
2559                &mut u32,
2560                &mut u32,
2561            )>,
2562            Option<&mut Option<DraftGraphCtx>>,
2563            Option<&mut Option<u32>>,
2564        ) = match sess.take() {
2565            Some(sr) => {
2566                let SpecSession {
2567                    cache,
2568                    scratch,
2569                    committed,
2570                    last_h,
2571                    next_pred,
2572                    sctr: s_sctr,
2573                    uctr: s_uctr,
2574                    draft_ctx,
2575                    pending_tok,
2576                } = sr;
2577                (
2578                    cache,
2579                    scratch,
2580                    Some((committed, last_h, next_pred, s_sctr, s_uctr)),
2581                    Some(draft_ctx),
2582                    Some(pending_tok),
2583                )
2584            }
2585            None => {
2586                own_cache = Cache::new(e, &self.cfg, max_ctx)?;
2587                // Persistent scratch = max_ctx rows (~2KB/token quantized).
2588                own_scratch = MtpScratch::new(
2589                    e,
2590                    &self.cfg,
2591                    max_ctx,
2592                    self.mtp.as_ref().and_then(|m| m.geom.as_ref()),
2593                )?;
2594                (&mut own_cache, &mut own_scratch, None, None, None)
2595            }
2596        };
2597        let base = cache.pos;
2598        // PENDING-CARRY consume (2026-08-01): a carried bonus reaches here only on the
2599        // empty-suffix GREEDY continuation path (generate_spec_session_sampled flushed every
2600        // other case). It enters the round loop as round-0's pending — verify col 0 — exactly
2601        // like a mid-burst full-accept boundary: no init feed, no tail commit pass.
2602        let carried_pending: Option<u32> = sess_pending_slot.as_mut().and_then(|s| s.take());
2603        // PERSISTENT DRAFT KV (the only mode since 2026-07-08 — the legacy round-local scratch,
2604        // MEMRA_SPEC_KVLOCAL, measured -35 acceptance pts on the 27B p3 sweep and was removed;
2605        // acceptance-only — exactness is verify's job either way).
2606        // HIDDEN-PAIRING CONVENTION (DEFAULT = predecessor-row, 2026-07-04 — the 27B acceptance
2607        // unlock, +16pts): the MTP head is TRAINED on rows pairing token x_p with the trunk
2608        // hidden of its PREDECESSOR h_{p-1} (the reference engine's mtp_update shifts the target
2609        // hiddens right by one; its draft step 0 feeds (id_last, TRUE hidden of the row id_last
2610        // was sampled from)). memra's historical convention paired SAME-ROW (x_p, h_p) in the fill
2611        // and seeded chain step 0 through an extra MTP pass on a duplicated token (the
2612        // pseudo-seed) — measured 27B p2 K=3 acceptance 0.569 vs 0.731, p3 0.445 vs 0.63+, and
2613        // the chain steps j>=1 were already predecessor-shaped, so ONLY the fill + step-0 seed
2614        // move. The fill shifts by one and the chain seeds from the predecessor's true hidden
2615        // DIRECTLY (vh_seed / vx[j-1]) — the pseudo pass disappears (one MTP-block pass saved
2616        // per round on top of the acceptance win). Draft-quality-only: exactness stays the
2617        // verify's job either way. (The legacy same-row pairing seam, MEMRA_SPEC_HSAME, and its
2618        // pseudo-seed passes were removed 2026-07-08 — predecessor pairing won by +16 acc pts;
2619        // the legacy round-local scratch, MEMRA_SPEC_KVLOCAL, went with it.)
2620        // REPLAY-FREE PARTIAL ACCEPT (default, 2026-07-03): partial rounds keep the verify's own
2621        // bit-identical committed-prefix state (KV truncate + recur rebuild from the VerifyCkpt)
2622        // and leave the bonus PENDING — no duplicate trunk pass (profiled ~0.54 extra full weight
2623        // reads/round at long ctx). MEMRA_SPEC_REPLAY=1 restores the legacy rollback+replay (A/B
2624        // + fallback seam).
2625        let spec_replay = std::env::var("MEMRA_SPEC_REPLAY").is_ok();
2626        if constraint.is_some() && spec_replay {
2627            return Err("constrained spec decode does not support MEMRA_SPEC_REPLAY=1 \
2628                        (legacy replay commits an unmasked bonus)".into());
2629        }
2630        // TRUE-HIDDEN REFRESH (default in persistent-draft-KV mode): every round overwrites the
2631        // committed positions' scratch entries from the verify's exact hiddens (mtp_kv_fill batch)
2632        // instead of keeping chain-approximate entries. MEMRA_SPEC_NOREFRESH=1 = legacy (A/B seam).
2633        let refresh = std::env::var("MEMRA_SPEC_NOREFRESH").is_err();
2634
2635        // prime: BATCHED cache prime (prime_cache — the measured #1 e2e gap: tokenwise primed at
2636        // ~102/38 tok/s vs the engine's ~2000-5900 tok/s batched prefill). prime_cache returns the
2637        // full pre-output_norm hidden stack [T, n_embd], which IS prompt_h (the persistent-draft-KV
2638        // mtp_kv_fill input) — no per-token collection needed. Prompts below PRIME_MIN_T, and
2639        // MEMRA_PRIME_TOKENWISE=1, and frozen Hy3 CPU/GPU expert splits take the tokenwise
2640        // decode_step_h loop. The latter avoids transient GPU staging of the spilled expert bank.
2641        // EMPTY-SUFFIX CONTINUATION (serve bursts): a session turn with NO new tokens resumes
2642        // generation exactly where the last turn stopped — no prime at all. The stashed
2643        // `next_pred` plays prime_logits' argmax role (it IS the argmax of the logits after
2644        // committed.last()); `last_h` seeds the predecessor pairing below. Fresh calls and
2645        // non-empty suffixes take the normal path.
2646        let continuation = prompt.is_empty();
2647        if continuation {
2648            assert!(session_mode, "empty prompt requires a session");
2649            assert!(
2650                sess_tail
2651                    .as_ref()
2652                    .map_or(false, |(c, lh, np, _, _)| !c.is_empty()
2653                        && lh.is_some()
2654                        && (np.is_some() || carried_pending.is_some())),
2655                "empty-suffix continuation needs a primed session (committed + last_h + next_pred|pending)"
2656            );
2657        }
2658        let mut prime_logits;
2659        let mut prompt_h: Option<CudaSlice<f32>> = None;
2660        let t_prime = std::time::Instant::now();
2661        let batched_prime = !continuation
2662            && prompt.len() >= crate::hybrid_forward::PRIME_MIN_T
2663            && std::env::var("MEMRA_PRIME_TOKENWISE").is_err()
2664            && !e.frozen_cpu_experts_prefer_tokenwise_prime();
2665        if continuation {
2666            prime_logits = Vec::new();
2667        } else if batched_prime {
2668            let (l, _h_seed, hiddens) = self.prime_cache(e, prompt, &mut *cache)?;
2669            prime_logits = l;
2670            prompt_h = Some(hiddens);
2671        } else {
2672            prime_logits = Vec::new();
2673            prompt_h = Some(e.uninit(prompt.len() * n_embd)?);
2674            for (i, &tok) in prompt.iter().enumerate() {
2675                let (l, h) = self.decode_step_h(e, tok, &mut *cache)?;
2676                if let Some(ph) = prompt_h.as_mut() {
2677                    e.copy_into(ph, i * n_embd, &h, n_embd)?;
2678                }
2679                prime_logits = l;
2680            }
2681        }
2682        e.stream().synchronize()?;
2683        // Harness timing contract (see crate::PRIME_NANOS): gen-only throughput without the
2684        // prime-subtraction hack.
2685        crate::PRIME_NANOS.store(
2686            t_prime.elapsed().as_nanos() as u64,
2687            std::sync::atomic::Ordering::Relaxed,
2688        );
2689
2690        let (embd_qt, embd_rb) = self.embd.qt_and_row_bytes(n_embd);
2691        // Resident table is fastest when it fits. Large spill deployments can preserve that HBM
2692        // for expert-cache slots and gather only the exact rows needed by MTP/verify from host.
2693        let host_embd = spec_host_embd();
2694        let embd_gpu = if host_embd {
2695            None
2696        } else {
2697            Some(
2698                self.embd_gpu
2699                    .get_or_init(|| e.upload_u8(&self.embd.raw).expect("embed table upload")),
2700            )
2701        };
2702        let embd_dev = embd_gpu.map(|g| (g, embd_qt, embd_rb));
2703        if host_embd {
2704            eprintln!(
2705                "[spec] host-row embedding: {} bytes kept off HBM",
2706                self.embd.raw.len()
2707            );
2708        }
2709        let mut out: Vec<u32> = Vec::with_capacity(max_new);
2710        let mut total_drafted = 0usize;
2711        let mut total_accepted = 0usize;
2712
2713        // First generated token = argmax of the prompt's last logits (== greedy's first token).
2714        // Emit it, then FEED it to establish the loop invariant below.
2715        // PENDING-CARRY: the carried bonus was already emitted by the LAST burst — it becomes
2716        // last_token WITHOUT re-emission, and round 0 consumes it as pending (no init feed).
2717        // CONSTRAINED entry rules: the first emitted token is the MASKED argmax of the
2718        // prompt's last logits (plain constrained-greedy identity); a continuation without
2719        // a carried pending would emit an UNMASKED stashed next_pred — refused loudly (the
2720        // worker never resumes constrained sessions from the pool, so this cannot fire).
2721        if let Some(c) = constraint.as_deref_mut() {
2722            if continuation && carried_pending.is_none() {
2723                return Err("constrained spec continuation requires a carried pending \
2724                            (pool resume is unconstrained-only)".into());
2725            }
2726            if !continuation {
2727                c.mask_logits(&mut prime_logits)
2728                    .map_err(|e2| format!("constraint: {e2}"))?;
2729            }
2730        }
2731        let mut last_token = if let Some(b) = carried_pending {
2732            b
2733        } else if continuation {
2734            sess_tail.as_ref().unwrap().2.unwrap()
2735        } else {
2736            argmax(&prime_logits) as u32
2737        };
2738        if carried_pending.is_none() {
2739            out.push(last_token);
2740            // grammar advances with every emitted token (carried pendings were consumed
2741            // by the burst that emitted them).
2742            if let Some(c) = constraint.as_deref_mut() {
2743                c.consume(last_token).map_err(|e2| format!("constraint: {e2}"))?;
2744            }
2745        }
2746        if continuation {
2747            // draft-KV invariant: entries [0..base) are the session's exact fills; truncate any
2748            // overhang so the chain's first append lands at slot base (== committed.len()).
2749            scratch.set_len(e, base)?;
2750        }
2751        // INVARIANT at loop top: `last_token` is the most-recently-committed/emitted token, its
2752        // KV+recur state IS in `cache` (cache.pos = position right AFTER last_token), `last_pred`
2753        // is the greedy ARGMAX of the logits that predict the token FOLLOWING last_token, and
2754        // `h_seed` = last_token's pre-output_norm hidden. Establish it by feeding last_token once
2755        // (mirrors plain greedy). DEVICE-ARGMAX lever: the accept walk only ever consumes the
2756        // argmax of those logits — never the full vector — so a host u32 replaces the Vec<f32>.
2757        // --- SAMPLED SPEC (MEMRA_SPEC_TEMP>0, research/sampled-spec-impl-map.md): rejection-
2758        // sampling verify (Leviathan/Chen) — accept draft x at u < p(x)/q(x), resample from
2759        // norm(max(0,p-q)) on reject, bonus sampled from p on full accept. Counter-based Philox
2760        // everywhere (seed, event) -> reproducible. temp==0/unset = the greedy path, untouched.
2761        let sp = sampling.unwrap_or_else(|| SpecSampling {
2762            temp: std::env::var("MEMRA_SPEC_TEMP")
2763                .ok()
2764                .and_then(|v| v.parse().ok())
2765                .unwrap_or(0.0),
2766            seed: std::env::var("MEMRA_SEED")
2767                .ok()
2768                .and_then(|v| v.parse().ok())
2769                .unwrap_or(42),
2770            top_k: std::env::var("MEMRA_TOP_K")
2771                .ok()
2772                .and_then(|v| v.parse().ok())
2773                .unwrap_or(0),
2774            top_p: std::env::var("MEMRA_TOP_P")
2775                .ok()
2776                .and_then(|v| v.parse().ok())
2777                .unwrap_or(1.0),
2778            min_p: std::env::var("MEMRA_MIN_P")
2779                .ok()
2780                .and_then(|v| v.parse().ok())
2781                .unwrap_or(0.0),
2782            penalty_last_n: std::env::var("MEMRA_PENALTY_LAST_N")
2783                .ok()
2784                .and_then(|v| v.parse().ok())
2785                .unwrap_or(0),
2786            penalty_repeat: std::env::var("MEMRA_PENALTY_REPEAT")
2787                .ok()
2788                .and_then(|v| v.parse().ok())
2789                .unwrap_or(1.0),
2790            penalty_freq: std::env::var("MEMRA_PENALTY_FREQ")
2791                .ok()
2792                .and_then(|v| v.parse().ok())
2793                .unwrap_or(0.0),
2794            penalty_present: std::env::var("MEMRA_PENALTY_PRESENT")
2795                .ok()
2796                .and_then(|v| v.parse().ok())
2797                .unwrap_or(0.0),
2798        });
2799        let (sp_temp, sp_seed) = (sp.temp, sp.seed);
2800        let sampled = sp_temp > 0.0;
2801        // Trimmed heads: q lives on the trimmed vocab; accept gathers use the TRIMMED index and
2802        // the residual scatters q into target-id space (q=-inf off-trim — the head cannot propose
2803        // those, so their residual mass is p(x), correct by construction).
2804        let d2t_dev: Option<CudaSlice<u32>> = if sampled || crate::spec::spec_stream() {
2805            match &mtp.d2t {
2806                Some(map) => Some(e.htod_u32_v(map)?),
2807                None => None,
2808            }
2809        } else {
2810            None
2811        };
2812        let mut q_full_buf: Option<CudaSlice<f32>> = None;
2813        // Counters resume from the session (burst continuity: randomness must never repeat
2814        // across generate_spec_session calls); one-shot callers start at (0,0). Read through
2815        // sess_tail — `sess` was take()n into it above, so sess.as_ref() here is always None.
2816        let mut sctr: u32 = sess_tail.as_ref().map(|(_, _, _, s, _)| **s).unwrap_or(0);
2817        let mut uctr: u32 = sess_tail.as_ref().map(|(_, _, _, _, u)| **u).unwrap_or(0);
2818        // host Philox4x32-10 (mirrors spec_sample.cu; independent stream via ctr_lo tag)
2819        let host_u01 = |seed: u64, ctr: u32| -> f32 {
2820            let (m0, m1) = (0xD2511F53u32, 0xCD9E8D57u32);
2821            let (mut c0, mut c1, mut c2, mut c3) = (0xFFFF_FFFEu32, ctr, 0u32, 0u32);
2822            let (mut k0, mut k1) = ((seed & 0xFFFF_FFFF) as u32, (seed >> 32) as u32);
2823            for _ in 0..10 {
2824                let (h0, l0) = (((m0 as u64 * c0 as u64) >> 32) as u32, m0.wrapping_mul(c0));
2825                let (h1, l1) = (((m1 as u64 * c2 as u64) >> 32) as u32, m1.wrapping_mul(c2));
2826                let (n0, n1, n2, n3) = (h1 ^ c1 ^ k0, l1, h0 ^ c3 ^ k1, l0);
2827                c0 = n0;
2828                c1 = n1;
2829                c2 = n2;
2830                c3 = n3;
2831                k0 = k0.wrapping_add(0x9E3779B9);
2832                k1 = k1.wrapping_add(0xBB67AE85);
2833            }
2834            (c0 as f32 + 1.0) * (1.0 / 4294967296.0)
2835        };
2836        let mut draft_logits: Vec<CudaSlice<f32>> = Vec::new(); // retained head logits (q), per slot
2837        let mut draft_stats: Vec<(f32, f32, f32)> = Vec::new(); // (row_max, th_e, z_e) per slot
2838        let mut perturb_buf: Option<CudaSlice<f32>> = None; // gumbel scratch (max(n_vocab,d_vocab))
2839        let mut sample_tok = e.alloc_u32_zeroed(1)?; // residual/bonus sample out
2840        let mut col_buf: Option<CudaSlice<f32>> = None; // materialized verify column
2841                                                        // Penalties (v2.1): applied to COPIES of q rows and p columns symmetrically (exactness
2842                                                        // for the penalized+filtered target). History = generated tokens, host-tracked window.
2843        let pen_on = sampled
2844            && sp.penalty_last_n > 0
2845            && (sp.penalty_repeat != 1.0 || sp.penalty_freq != 0.0 || sp.penalty_present != 0.0);
2846        let mut pen_hist: Vec<u32> = if pen_on {
2847            prompt.iter().rev().take(64).rev().cloned().collect() // llama-parity: history spans prompt tail too
2848        } else {
2849            Vec::new()
2850        };
2851        let mut pen_hist_d: Option<CudaSlice<u32>> = None;
2852        let mut pcol_buf: Option<CudaSlice<f32>> = None; // penalized p-column scratch
2853        // MEMRA_SPEC_SETUP_TRACE=1 (diagnostics): per-call wall decomposition of the burst
2854        // SETUP + TAIL segments (the round loop's internals are MEMRA_SPEC_PHASE's job) —
2855        // built to pin the serve per-burst fixed cost (research/spec-serving-20260801).
2856        let setup_trace = std::env::var("MEMRA_SPEC_SETUP_TRACE").as_deref() == Ok("1");
2857        let t_ent = std::time::Instant::now();
2858        // INIT FEED — skipped on a pending carry: last_token (the carried bonus) is NOT in the
2859        // caches and must NOT be fed solo; round 0's batched verify commits it as col 0. Its
2860        // seed/anchor hidden is the carried last_h (copied below); last_pred is dead in the
2861        // pending path (t_pred reads verify col 0 — the accept walk overwrites it).
2862        let mut last_pred = 0u32;
2863        let mut last_col_logits: Option<CudaSlice<f32>> = None;
2864        // CONSTRAINED: the init feed's logits back the (n_acc==0, base==0) masked-argmax
2865        // recompute in the grammar-truncation walk — retained host-side, round 0 only.
2866        let mut init_logits_host: Option<Vec<f32>> = None;
2867        let h_seed0: CudaSlice<f32> = if carried_pending.is_none() {
2868            let (init_logits, h) = self.decode_step_h(e, last_token, &mut *cache)?;
2869            last_pred = argmax(&init_logits) as u32;
2870            if constraint.is_some() {
2871                init_logits_host = Some(init_logits.clone());
2872            }
2873            // sampled mode: p-distribution after last_token, for the j==0/base==0 accept test.
2874            if sampled {
2875                last_col_logits = Some(e.htod(&init_logits)?);
2876            }
2877            h
2878        } else {
2879            // predecessor-row anchor: hidden of the last COMMITTED row (the carry contract).
2880            let lh = sess_tail
2881                .as_ref()
2882                .unwrap()
2883                .1
2884                .as_ref()
2885                .expect("pending carry requires last_h");
2886            e.clone_dtod(lh)?
2887        };
2888        let t_init = t_ent.elapsed();
2889        let mut last_col_stats: Option<(f32, f32, f32)> = None;
2890        // PERSISTENT h_seed buffer (allocated BEFORE any graph capture so no captured scratch can
2891        // alias it): every path that updates the round seed copies INTO it — no per-round allocs,
2892        // stable pointer for the graph-draft round-start copy.
2893        let mut h_seed_buf = e.clone_dtod(&h_seed0)?;
2894        // Predecessor-pairing trackers: `fill_prev` = trunk hidden AT the last COMMITTED row (the
2895        // predecessor of the next verify's col 0 — the reference's carried pending-h analogue;
2896        // also the predecessor-row hidden for the round-0 legacy-replay seed). At round 0 that
2897        // row is last_token's own (h_seed0). The chain step-0 seed under the pairing default =
2898        // hidden of the row BEFORE last_token = the prompt's last row at round 0 (h_seed_buf
2899        // overwritten below).
2900        let mut fill_prev = e.clone_dtod(&h_seed0)?;
2901        {
2902            if let Some(ph) = &prompt_h {
2903                let np = prompt.len();
2904                e.copy_view_into(
2905                    &mut h_seed_buf,
2906                    0,
2907                    &ph.slice((np - 1) * n_embd..np * n_embd),
2908                    n_embd,
2909                )?;
2910            } else if continuation {
2911                if let Some((_, lh, _, _, _)) = sess_tail.as_ref() {
2912                    if let Some(lh) = lh.as_ref() {
2913                        e.copy_into(&mut h_seed_buf, 0, lh, n_embd)?;
2914                    }
2915                }
2916            }
2917        }
2918        // Persistent device prediction slots for the accept walk (max k+1 verify columns).
2919        let mut preds_d = e.alloc_u32_zeroed(k + 2)?;
2920
2921        let debug_spec = std::env::var("MEMRA_DEBUG_SPEC").is_ok();
2922        // MEMRA_SPEC_STATS=1: per-slot accept histogram + draft-length histogram, printed once at
2923        // the end. Metric normalization vs the reference engine: BOTH engines count
2924        // accepted/drafted where the chain stopped at p-min and the sub-threshold token is
2925        // discarded uncounted — per-slot decay + chain-length mix are the extra dimensions.
2926        let spec_stats = std::env::var("MEMRA_SPEC_STATS").is_ok();
2927        let mut st_drafted = vec![0usize; k];
2928        let mut st_accepted = vec![0usize; k];
2929        let mut st_len_hist = vec![0usize; k + 1];
2930        let mut st_full = 0usize;
2931        // P-MIN CONFIDENCE GATE (MEMRA_SPEC_PMIN, the serve script's --spec-draft-p-min mechanism):
2932        // stop the draft chain early when the head's softmax confidence in its own pick drops
2933        // below p_min. Hoisted above the loop: the graph capture bakes the prob kernels iff on.
2934        static PMIN: std::sync::OnceLock<f32> = std::sync::OnceLock::new();
2935        let p_min = *PMIN.get_or_init(|| {
2936            std::env::var("MEMRA_SPEC_PMIN")
2937                .ok()
2938                .and_then(|v| v.parse().ok())
2939                .unwrap_or(0.0)
2940        });
2941        // ZERO-DRAFT ROUNDS (MEMRA_SPEC_PMIN0=1, vendored from llama.cpp's draft gating): let the
2942        // p-min gate apply at j==0 too, so a low-confidence round drafts NOTHING and the verify
2943        // batch is just the pending bonus (m=1 = a plain decode step). llama's 35B win rides
2944        // exactly this — draft acceptance 76% at mean len 2.5 because unpredictable stretches
2945        // never pay draft+verify overhead. Only legal when a pending bonus exists (an empty
2946        // verify batch is not); the j==0 exemption stays for pending-less rounds.
2947        let pmin0 = std::env::var("MEMRA_SPEC_PMIN0")
2948            .map(|v| v == "1")
2949            .unwrap_or(false);
2950
2951        // --- GRAPH DRAFT setup: persistent I/O buffers + ONE capture (2 warmups inside). The
2952        // warmups mutate scratch len_d / pos / tok / seed — all reset at every round start, so the
2953        // only restore needed is the scratch counter. Capture failure (e.g. a non-capturable
2954        // cuBLAS path in an exotic head) falls back to the eager draft chain.
2955        // PER-SESSION PERSISTENCE (2026-08-01): session calls reuse the DraftGraphCtx parked on
2956        // the SpecSession — the capture (2 warmup head forwards + instantiate) ran ONCE at the
2957        // session's first burst, not per burst (measured ~16ms/burst fixed cost on H100 q27,
2958        // research/spec-serving-20260801). Reuse is pointer-exact: the graph bakes the session's
2959        // own scratch KV (never realloc'd), the model's resident embedding, the OnceLock p_min,
2960        // and the g_* buffers carried in the ctx — replay dispatch is identical to a fresh
2961        // capture, so draft tokens are bit-identical (drafts never decide exactness anyway; the
2962        // verify arbitrates). Single-shot calls (sess=None) build a fresh ctx and drop it.
2963        let mut dctx: DraftGraphCtx = match sess_draft_slot.as_mut().and_then(|s| s.take()) {
2964            Some(c) => c,
2965            None => DraftGraphCtx::new(e, n_embd, if sampled { d_vocab } else { 1 })?,
2966        };
2967        // A session that ran greedy bursts first sized g_q/g_perturb at 1; a sampled resume
2968        // needs d_vocab. Realloc is legal exactly while graph_s is None (nothing baked them).
2969        if sampled && dctx.g_q.len() < d_vocab {
2970            dctx.g_q = e.zeros(d_vocab)?;
2971            dctx.g_perturb = e.zeros(d_vocab)?;
2972        }
2973        // DRAFT-SIDE GRAMMAR MASK (lane/draft-mask, 2026-08-04): the drafter samples the
2974        // grammar's legal set, so proposals are legal BY CONSTRUCTION and the verify-side
2975        // truncation (the correctness backstop) stops cutting every tight-schema round.
2976        // The mask is one node inside the captured draft chain — presence is a CAPTURE-TIME
2977        // shape, so a parked graph of the other shape is dropped and recaptured.
2978        let dmask_on = constraint.as_deref().is_some_and(|c| c.draft_mask_enabled());
2979        let dmask_words = if dmask_on { d_vocab.div_ceil(32) } else { 0 };
2980        if dmask_on && dctx.g_dmask.len() < dmask_words {
2981            dctx.g_dmask = e.alloc_u32_zeroed(dmask_words)?;
2982            dctx.graph = None; // the old capture baked the old (or no) mask pointer
2983            dctx.graph_failed = false;
2984            dctx.keeper.clear();
2985        }
2986        if dctx.graph.is_some() && dctx.graph_masked != dmask_on {
2987            dctx.graph = None;
2988            dctx.graph_failed = false;
2989            dctx.keeper.clear();
2990        }
2991        if graph_draft && !sampled && dctx.graph.is_none() && !dctx.graph_failed {
2992            let DraftGraphCtx { g_tok, g_pos, g_seed, g_p, g_dmask, .. } = &mut dctx;
2993            // capture-time contents: ALL-ONES (ban nothing). A replay only ever runs after the
2994            // host uploads the position's real words, so the warmups stay grammar-free.
2995            if dmask_on {
2996                e.htod_u32_into(g_dmask, &vec![u32::MAX; dmask_words])?;
2997            }
2998            let g_dmask_ro: &CudaSlice<u32> = &*g_dmask;
2999            // CAPTURE-RETAIN (#68 fix): the warmup transients' pool addresses are baked into the
3000            // captured graph; the keeper pins them for the graph's lifetime. capture_graph (non-
3001            // retained) freed them at exit — safe for one-shot generate_spec (nothing else touches
3002            // the pool between replays) but WRONG for sessions: burst-boundary prime/fill/commit
3003            // passes (and, in serve, other sessions) recycle those addresses and the replay then
3004            // clobbers live buffers — the ST serve-spec corruption (research/serve-st-20260803).
3005            let cap_res = e.capture_graph_retained(|e| {
3006                self.mtp_head_forward_cap(
3007                    e,
3008                    mtp,
3009                    g_tok,
3010                    g_pos,
3011                    g_seed,
3012                    g_p,
3013                    &mut *scratch,
3014                    p_min > 0.0,
3015                    true,
3016                    embd_gpu.expect("graph draft requires resident embedding"),
3017                    embd_qt,
3018                    embd_rb,
3019                    d_vocab,
3020                    None,
3021                    None,
3022                    if dmask_on { Some((g_dmask_ro, dmask_words)) } else { None },
3023                )
3024            });
3025            match cap_res {
3026                Ok((g, keep)) => {
3027                    scratch.set_len(e, base)?;
3028                    dctx.graph = Some(g);
3029                    dctx.graph_masked = dmask_on;
3030                    dctx.keeper = keep;
3031                }
3032                Err(err) => {
3033                    scratch.set_len(e, base)?;
3034                    dctx.graph_failed = true;
3035                    if debug_spec {
3036                        eprintln!("[spec] draft-graph capture failed ({err}); eager fallback");
3037                    }
3038                }
3039            }
3040        }
3041        // --- SAMPLED GRAPH DRAFT setup (step 3 of the sampled-spec arc): a SECOND capture, own
3042        // graph object, built only when sampled && graph-eligible — the greedy capture above is
3043        // untouched (and skipped when sampled: its graph would never be launched). Same head
3044        // forward, but the in-graph argmax reads GUMBEL-PERTURBED logits; the Philox event
3045        // counter lives in the persistent device g_ctr (bumped in-graph, host-seeded from sctr
3046        // once per round); the raw head logits land in the persistent g_q for the host's
3047        // per-replay async D2D into the round's q slot (q_slots, K x d_vocab, allocated once).
3048        // seed/temp are capture-time constants — baked into graph_s, so a pool-resumed request
3049        // with a different (seed, temp, k) drops the parked sampled graph and recaptures.
3050        // COST OF THE FRESH-SEED SERVE DEFAULT (dogfood F4, 2026-08-04): omitting `seed` on a
3051        // serve request now draws fresh per-request entropy (it used to default to a pinned 0),
3052        // so a seed-omitting request that RESUMES a parked spec session finds an s_key baked
3053        // with the PREVIOUS request's seed and pays one recapture. Bounded, and it does not
3054        // reopen the ~16ms/burst regression the persistent ctx exists to fix: a session's seed
3055        // is fixed for its whole lifetime (worker.rs reads s.sampler.seed() per burst), so
3056        // this compare misses at most ONCE per resumed request — the first burst recaptures
3057        // and every later burst in that request replays. A client that wants the parked graph
3058        // AND reproducibility supplies an explicit `seed`, honored exactly, which keeps s_key
3059        // stable across its whole conversation.
3060        // COMPOSITION RULE (fspec x gsd merge): the in-graph chain samples from the RAW
3061        // softmax — it can hold neither per-row filter stats nor the varying penalty history.
3062        // The sampled graph therefore engages only in the PURE-TEMP regime; filters/penalties
3063        // force the eager draft (which computes stats/penalties per row).
3064        let pure_temp = sp.top_k == 0 && sp.top_p >= 1.0 && sp.min_p <= 0.0 && !pen_on;
3065        let s_key = (sp_seed, sp_temp.to_bits(), k);
3066        if sampled && dctx.s_key.is_some_and(|old| old != s_key) {
3067            dctx.graph_s = None;
3068            dctx.graph_s_failed = false;
3069            dctx.s_key = None;
3070            dctx.q_slots.clear();
3071            dctx.keeper_s.clear();
3072        }
3073        if graph_draft && sampled && pure_temp && dctx.graph_s.is_none() && !dctx.graph_s_failed {
3074            let DraftGraphCtx { g_tok, g_pos, g_seed, g_p, g_ctr, g_perturb, g_q, .. } = &mut dctx;
3075            // CAPTURE-RETAIN (#68 fix): same keeper contract as the greedy capture above.
3076            let cap_res = e.capture_graph_retained(|e| {
3077                self.mtp_head_forward_cap(
3078                    e,
3079                    mtp,
3080                    g_tok,
3081                    g_pos,
3082                    g_seed,
3083                    g_p,
3084                    &mut *scratch,
3085                    p_min > 0.0,
3086                    true,
3087                    embd_gpu.expect("graph draft requires resident embedding"),
3088                    embd_qt,
3089                    embd_rb,
3090                    d_vocab,
3091                    Some((g_ctr, g_perturb, g_q, sp_seed, sp_temp)),
3092                    None,
3093                    None, // constrained spec is greedy-only — sampled never carries a hook
3094                )
3095            });
3096            match cap_res {
3097                Ok((g, keep)) => {
3098                    scratch.set_len(e, base)?;
3099                    for _ in 0..k {
3100                        dctx.q_slots.push(e.zeros(d_vocab)?);
3101                    }
3102                    dctx.graph_s = Some(g);
3103                    dctx.s_key = Some(s_key);
3104                    dctx.keeper_s = keep;
3105                }
3106                Err(err) => {
3107                    scratch.set_len(e, base)?;
3108                    dctx.graph_s_failed = true;
3109                    if debug_spec {
3110                        eprintln!(
3111                            "[spec] sampled draft-graph capture failed ({err}); eager fallback"
3112                        );
3113                    }
3114                }
3115            }
3116        }
3117        let t_cap = t_ent.elapsed();
3118        // PERSISTENT DRAFT KV: fill the MTP block's K/V for every prompt position from the exact
3119        // trunk hiddens collected during prime — ONE batched K/V-only pass (overwrites any
3120        // capture-warmup garbage; capture left len at 0). last_token (the init feed) needs no
3121        // fill: the first chain step processes it and appends its entry at slot prompt.len().
3122        if let Some(ph) = &prompt_h {
3123            // SESSION: rows [0..base) are the previous turns' exact fills (refresh overwrote them
3124            // with true verify hiddens) — truncate any draft overhang, fill ONLY the suffix at
3125            // global positions [base..base+tp). Fresh call: base==0, identical to before.
3126            scratch.set_len(e, base)?;
3127            // CHUNKED FILL (long-ctx OOM fix, 2026-07-05): mtp_kv_fill's transients scale with its
3128            // T (concat = T*2*n_embd*4B — 1.5GB at 40k) and its concat loop is 2*T launches. The
3129            // fill is a pure sequential append, so chunking is exact: each chunk appends its rows
3130            // at pos0=base+start with the identical per-row math. Same knob as the trunk prime.
3131            let fill_chunk: usize = std::env::var("MEMRA_PRIME_CHUNK")
3132                .ok()
3133                .and_then(|v| v.parse().ok())
3134                .unwrap_or(4096);
3135            let tp = prompt.len();
3136            let fill_chunk = if fill_chunk == 0 { tp } else { fill_chunk };
3137            let mut start = 0usize;
3138            while start < tp {
3139                let end = (start + fill_chunk).min(tp);
3140                let tc = end - start;
3141                {
3142                    // PREDECESSOR pairing: row i gets h[i-1]; global row 0 a zeros row (the
3143                    // reference engine's initial pending-h is zeroed too); a session turn's row 0
3144                    // gets the PREVIOUS turn's last committed hidden (sess.last_h). Per chunk:
3145                    // rows start..end read h[start-1..end-1] — one dtod into a chunk buffer.
3146                    let mut phs = e.zeros(tc * n_embd)?;
3147                    let (src_lo, dst_off) = if start == 0 {
3148                        (0, n_embd)
3149                    } else {
3150                        ((start - 1) * n_embd, 0)
3151                    };
3152                    let n_copy = if start == 0 {
3153                        (tc - 1) * n_embd
3154                    } else {
3155                        tc * n_embd
3156                    };
3157                    if start == 0 {
3158                        if let Some((_, lh, _, _, _)) = sess_tail.as_ref() {
3159                            if let Some(lh) = lh.as_ref() {
3160                                e.copy_into(&mut phs, 0, lh, n_embd)?;
3161                            }
3162                        }
3163                    }
3164                    if n_copy > 0 {
3165                        e.copy_view_into(
3166                            &mut phs,
3167                            dst_off,
3168                            &ph.slice(src_lo..src_lo + n_copy),
3169                            n_copy,
3170                        )?;
3171                    }
3172                    self.mtp_kv_fill(
3173                        e,
3174                        mtp,
3175                        &prompt[start..end],
3176                        &phs,
3177                        base + start,
3178                        &mut *scratch,
3179                        embd_dev,
3180                    )?;
3181                }
3182                start = end;
3183            }
3184        }
3185        // MEMRA_PROFILE_SPEC=2: profiler capture starts HERE — after the prime, so an
3186        // `nsys -c cudaProfilerApi` capture contains ONLY the round loop (draft/verify/commit).
3187        // (=1 brackets the whole call in run_spec.rs, prime included.)
3188        if std::env::var("MEMRA_PROFILE_SPEC").as_deref() == Ok("2") {
3189            unsafe extern "C" {
3190                fn cudaProfilerStart() -> i32;
3191            }
3192            unsafe {
3193                cudaProfilerStart();
3194            }
3195        }
3196        // ROUND-STREAM stage (c) 4 (MEMRA_SPEC_STREAM=1, experimental): pre-issued M-round
3197        // bursts with ZERO per-round host readbacks — the accept/seed/rollback/ring kernels
3198        // consume each other's device outputs; the host drains the ring every M rounds. v1
3199        // constraints: greedy, !spec_replay, single-shot, batched-linear layers, no refresh
3200        // fills (acceptance effect A/B-arbitrated), enters from round 1 (pending guaranteed).
3201        // NOTE: not gated on the caller's graph_draft (its trunk_dense conjunct turns the 35B
3202        // MoE off) — the stream capture encloses ONLY the dense MTP head; the head-dense /
3203        // full-prec / k gates are re-derived here and a failed capture degrades to stream-off.
3204        let stream_on = crate::spec::spec_stream()
3205            && !sampled
3206            && !spec_replay
3207            && constraint.is_none()
3208            && !session_mode
3209            && embd_gpu.is_some()
3210            && !crate::model::full_prec_enabled()
3211            && k + 2 < 96;
3212        let mut stream_graph: Option<cudarc::driver::CudaGraph> = None;
3213        let mut g_tokp2k = e.alloc_u32_zeroed(2 * k.max(1))?;
3214        if stream_on {
3215            let cap = e.capture_graph(|e| {
3216                for j in 0..k.max(1) {
3217                    self.mtp_head_forward_cap(
3218                        e,
3219                        mtp,
3220                        &mut dctx.g_tok,
3221                        &mut dctx.g_pos,
3222                        &mut dctx.g_seed,
3223                        &mut dctx.g_p,
3224                        &mut *scratch,
3225                        true,
3226                        true,
3227                        embd_gpu.expect("round stream requires resident embedding"),
3228                        embd_qt,
3229                        embd_rb,
3230                        d_vocab,
3231                        None,
3232                        Some((&mut g_tokp2k, j, d2t_dev.as_ref())),
3233                        None, // round-stream requires constraint.is_none() (see stream_on)
3234                    )?;
3235                }
3236                Ok(())
3237            });
3238            match cap {
3239                Ok(g) => {
3240                    scratch.set_len(e, 0)?;
3241                    stream_graph = Some(g);
3242                }
3243                Err(err) => {
3244                    scratch.set_len(e, 0)?;
3245                    if debug_spec {
3246                        eprintln!("[spec] stream-graph capture failed ({err}); stream off");
3247                    }
3248                }
3249            }
3250        }
3251        let stream_active = stream_on && stream_graph.is_some();
3252        if debug_spec {
3253            eprintln!("[spec] stream_on={stream_on} env={} samp={sampled} dg={} captured={} active={stream_active} session={session_mode} replay={spec_replay}",
3254                      crate::spec::spec_stream(), dctx.graph.is_some(), stream_graph.is_some());
3255        }
3256        let t_v_s = k + 1;
3257        // ROUND-STREAM buffers + ptr tables now live in the model-generic round_stream
3258        // module (extracted 2026-07-12; the gemma burst reuses them).
3259        let sb = crate::round_stream::StreamBufs::new(e, k, crate::spec::spec_stream_m())?;
3260        let crate::round_stream::StreamBufs {
3261            mut vtok_d,
3262            mut brk_d,
3263            mut pend_d,
3264            last_pred_d,
3265            mut pos_ctr,
3266            mut pos_start_d,
3267            mut ring_d,
3268            acc_d: mut stream_acc,
3269            m_rounds,
3270            k: _,
3271        } = sb;
3272        let stream_ptrs: Option<CudaSlice<u64>> = if stream_active {
3273            Some(crate::round_stream::kv_len_ptr_table(
3274                e,
3275                cache,
3276                Some(&pos_ctr),
3277            )?)
3278        } else {
3279            None
3280        };
3281
3282        let t_fill = t_ent.elapsed();
3283        let mut round = 0usize;
3284        // ADAPTIVE DRAFT LENGTH (MEMRA_SPEC_ADAPT=1, opt-in — the gemma_spec accepted-run law,
3285        // ported 2026-08-01): next round's draft depth = last round's accepted run + 1, clamped
3286        // to [floor(pos), k_cap] — a miss shrinks the next draft to the miss point + 1,
3287        // full-accept streaks re-deepen one step per round. NOT the 2026-07-07 acceptance-EMA
3288        // (that arm measured an HONEST LOSS to static per-class optima — 115.0/85.8/73.4 vs
3289        // 121.6/92.7/75.6, EMA lag — and was removed 2026-07-08; rig5090.jsonl has the record).
3290        // The gemma law has no lag class: it reacts within one round, and was worth +7-20% on
3291        // the gemma cells at unchanged exactness (2026-07-10 flip; floor sweep 2026-07-25;
3292        // position key 2026-07-26). Signal = n_acc from the round's EXISTING accept readback —
3293        // zero new syncs; the draft graph is a SINGLE-STEP capture replayed per drafted token,
3294        // so a per-round depth needs no re-capture (unlike gemma's whole-chain graphs). qwen's
3295        // in-round p-min cut already shortens chains mid-round, so gemma's one-round-late p-min
3296        // fold into kc is unnecessary here — the accepted-run law sees the cut via n_acc.
3297        // Exactness is the verify's job at ANY depth (same contract as p-min variable rounds).
3298        // DEFAULT OFF on the qwen path until its cells gate a flip (gemma's is default-on).
3299        // MEASURED 2026-08-01 (H100 GPU-3, interleaved x3, NGEN=256, same-invocation plain
3300        // denominators; research/qwen-adaptive-k-20260801/): REFUTED on the tuned qwen configs.
3301        // q27 K=3+HPOST+PMIN=0.3: short +0.8% (noise; law ~idles, len_hist identical), board
3302        // -1.9%, agentic -0.5%; board PMIN=0 -2.1% (not p-min shadowing — the law itself);
3303        // floor=1 -2.8% (gemma's floor-collapse, reproduced). q35 K=2 board: -6.4% (52/136
3304        // rounds shrink to depth 1; no depth to reclaim at K=2). The gemma direction DOES
3305        // appear at untuned depth-K — q27 K=6 floor=4 +1.5% over fixed K=6 — but stays -3.7%
3306        // below fixed K=3: same verdict class as the retired EMA arm (honest loss to static
3307        // per-class optima). Acceptance-rate rises under the law while tokens/round falls —
3308        // it buys accept-% by adding rounds, and a round's fixed draft+verify cost wins.
3309        // K=1..8 self-consistency PASS both models with the law ON (exactness held).
3310        let adapt = std::env::var("MEMRA_SPEC_ADAPT").as_deref() == Ok("1");
3311        // floor: per-model default keyed on n_embd (gemma's tiering — models with an expensive
3312        // verify keep deep drafts after a miss); MEMRA_SPEC_ADAPT_FLOOR pins it everywhere.
3313        let adapt_floor_env: Option<usize> = std::env::var("MEMRA_SPEC_ADAPT_FLOOR")
3314            .ok()
3315            .and_then(|v| v.parse().ok());
3316        let adapt_floor_default: usize = if self.cfg.n_embd as usize >= 3500 {
3317            4
3318        } else if self.cfg.n_embd as usize >= 2500 {
3319            2
3320        } else {
3321            1
3322        };
3323        let adapt_floor: usize = adapt_floor_env.unwrap_or(adapt_floor_default);
3324        // position key: past floor_ctx a HIGH floor (>=4) relaxes to 1 — forced-deep drafts
3325        // turn net-negative at depth (gemma 31B d1736 evidence); MEMRA_SPEC_FLOOR_CTX moves
3326        // the boundary, an explicit MEMRA_SPEC_ADAPT_FLOOR pins the floor everywhere.
3327        let floor_ctx: usize = std::env::var("MEMRA_SPEC_FLOOR_CTX")
3328            .ok()
3329            .and_then(|v| v.parse().ok())
3330            .unwrap_or(1024);
3331        let floor_at = |pos: usize| -> usize {
3332            if adapt_floor_env.is_some() || pos < floor_ctx {
3333                adapt_floor
3334            } else if adapt_floor >= 4 {
3335                1
3336            } else {
3337                adapt_floor
3338            }
3339        };
3340        // cap: MEMRA_SPEC_CAPMAX (gemma semantics, default 7). Binds only under adapt — the
3341        // fixed-K default path is untouched by this whole block.
3342        let cap_max: usize = std::env::var("MEMRA_SPEC_CAPMAX")
3343            .ok()
3344            .and_then(|v| v.parse().ok())
3345            .unwrap_or(7);
3346        let k_cap = k.min(cap_max).max(1);
3347        let mut kc = k_cap;
3348        // PERSISTENT snapshot buffers: allocate ONCE, refresh in place each round (was 2 fresh
3349        // D2D clones per linear layer per round = 48 allocs + ~50MB of pool churn per round).
3350        let mut snap = cache.snapshot(e)?;
3351        // ROUND-STREAM stage (b) 3a: device table of per-layer kvl.len_d pointers (stable — the
3352        // cache never reallocates len_d; see cache.rs "stable pointer" note). 0 = no KV layer.
3353        let kv_len_ptrs: Option<CudaSlice<u64>> = if spec_devacc() && !spec_replay {
3354            Some(crate::round_stream::kv_len_ptr_table(e, cache, None)?)
3355        } else {
3356            None
3357        };
3358        // BONUS FOLD (2026-07-04): after a FULL accept the bonus token is NOT committed with a
3359        // separate T=1 trunk pass (a full weight read per round). It stays PENDING and rides as
3360        // column 0 of the NEXT round's verify batch. Under predecessor pairing the next chain
3361        // seeds from the bonus's predecessor's TRUE verify hidden (free — no extra
3362        // pass of any kind). Verify still
3363        // checks every emitted token against the target -> exactness holds by construction; only
3364        // DRAFT QUALITY can shift, which the acceptance numbers arbitrate.
3365        // bonus emitted but not yet committed to cache. A carried pending (see SpecSession::
3366        // pending_tok) enters round 0 directly — the burst boundary becomes a plain round edge.
3367        let mut pending: Option<u32> = carried_pending;
3368                                             // MEMRA_SPEC_PHASE=1: per-round wall decomposition (draft / verify / accept+commit) —
3369                                             // no tracing, no extra syncs (each phase is naturally sync-bounded: draft readbacks,
3370                                             // the verify accept readback). Printed once at loop end via spec-stats.
3371        let phase_on = std::env::var("MEMRA_SPEC_PHASE").as_deref() == Ok("1");
3372        // DRAFT-MASK receipt (lane/draft-mask): speculative-clone wall + rounds, printed with
3373        // spec-stats. The clone is the one cost the design adds per round — measured, not assumed.
3374        let (mut dm_clone_ns, mut dm_rounds) = (0u128, 0usize);
3375        // grammar-truncation counters: how many rounds the verify-side cut fired and how many
3376        // already-verified tokens it threw away. THIS is the quantity draft masking targets.
3377        let (mut dm_cuts, mut dm_cut_tokens) = (0usize, 0usize);
3378        let (mut ph_draft, mut ph_verify, mut ph_rest) = (0f64, 0f64, 0f64);
3379        let mut ph_wait = 0f64;
3380        let mut ph_t = std::time::Instant::now();
3381        let mut ph_mark = |acc: &mut f64, on: bool| {
3382            if on {
3383                let now = std::time::Instant::now();
3384                *acc += (now - ph_t).as_secs_f64();
3385                ph_t = now;
3386            }
3387        };
3388        while out.len() < max_new {
3389            // ROUND-STREAM BURST: from round 1 (pending guaranteed by every non-replay arm),
3390            // issue M rounds with zero readbacks, then drain the ring + reconcile mirrors.
3391            if let (true, Some(sg), Some(ptrs)) = (
3392                stream_active && round >= 1 && pending.is_some(),
3393                &stream_graph,
3394                &stream_ptrs,
3395            ) {
3396                if debug_spec {
3397                    static ONCE: std::sync::Once = std::sync::Once::new();
3398                    ONCE.call_once(|| {
3399                        eprintln!("[memra] ROUND-STREAM burst engaged (M={m_rounds} k={k})")
3400                    });
3401                }
3402                e.set_i32_one(&mut pos_ctr, cache.pos as i32)?;
3403                e.set_u32_one(&mut pend_d, pending.unwrap())?;
3404                e.set_u32_one(&mut ring_d, 0)?; // ring count = 0 (writes element 0)
3405                for _mi in 0..m_rounds {
3406                    e.i32_copy_add(&pos_ctr, &mut pos_start_d, 0)?;
3407                    cache.snapshot_into(e, &mut snap)?; // device D2Ds, stream-ordered
3408                    e.i32_copy_add(&pos_ctr, &mut scratch.kv.len_d, 0)?; // draft-KV rollback
3409                    e.i32_copy_add(&pos_ctr, &mut dctx.g_pos, 1)?; // rope pos = pos + base
3410                    e.u32_copy(&pend_d, &mut dctx.g_tok)?;
3411                    e.copy_into(&mut dctx.g_seed, 0, &h_seed_buf, n_embd)?;
3412                    sg.launch()?;
3413                    e.spec_assemble_verify(
3414                        &g_tokp2k,
3415                        &pend_d,
3416                        d2t_dev.as_ref(),
3417                        &mut vtok_d,
3418                        &mut brk_d,
3419                        p_min,
3420                        k,
3421                        pmin0,
3422                    )?;
3423                    let mut ck = VerifyCkpt::new(self.layers.len());
3424                    let dummy = vec![0u32; t_v_s];
3425                    let (tl_d, vx) = self.decode_step_t_core_stream(
3426                        e,
3427                        &dummy,
3428                        0,
3429                        &mut *cache,
3430                        embd_dev,
3431                        Some(&mut ck),
3432                        Some((&vtok_d, &pos_ctr)),
3433                    )?;
3434                    for j in 0..t_v_s {
3435                        e.argmax_token_device_col(&tl_d, j, n_vocab, &mut preds_d, j)?;
3436                    }
3437                    e.spec_accept_greedy_dc(
3438                        &preds_d,
3439                        &vtok_d,
3440                        &last_pred_d,
3441                        &brk_d,
3442                        &mut stream_acc,
3443                    )?;
3444                    e.spec_seed_gather(&vx, &fill_prev, &stream_acc, &mut h_seed_buf, 1, n_embd)?;
3445                    e.copy_into(&mut fill_prev, 0, &h_seed_buf, n_embd)?;
3446                    self.commit_verified_prefix_stream(
3447                        e,
3448                        &mut *cache,
3449                        &snap,
3450                        &ck,
3451                        &stream_acc,
3452                        1,
3453                        t_v_s,
3454                    )?;
3455                    e.spec_rollback_stream(
3456                        ptrs,
3457                        &pos_start_d,
3458                        &stream_acc,
3459                        1,
3460                        self.layers.len() + 1,
3461                    )?;
3462                    e.spec_ring_commit(&vtok_d, &stream_acc, &brk_d, &mut ring_d, &mut pend_d)?;
3463                }
3464                e.stream().synchronize()?;
3465                let ring_h = e.dtoh_u32(&ring_d)?;
3466                let cnt = ring_h[0] as usize;
3467                for i in 0..cnt {
3468                    if out.len() < max_new {
3469                        out.push(ring_h[1 + i]);
3470                    }
3471                }
3472                let pos_h = e.dtoh_i32(&pos_ctr)?[0] as usize;
3473                for il in 0..self.layers.len() {
3474                    if let Some(kvl) = cache.kv[il].as_mut() {
3475                        kvl.len = pos_h;
3476                    }
3477                }
3478                cache.pos = pos_h;
3479                scratch.kv.len = pos_h;
3480                pending = Some(ring_h[cnt]); // last drained token = the live bonus
3481                last_token = ring_h[cnt];
3482                total_drafted += k * m_rounds; // upper bound (p-min breaks uncounted)
3483                total_accepted += cnt.saturating_sub(m_rounds);
3484                round += m_rounds;
3485                continue;
3486            }
3487            let pos = cache.pos; // #tokens committed (EXCLUDES a pending bonus)
3488            cache.snapshot_into(e, &mut snap)?; // §C: snapshot BEFORE draft+verify
3489            ph_mark(&mut ph_rest, phase_on);
3490
3491            // --- 1. DRAFT k tokens with the NextN head (autoregressive, T=1 each) ---
3492            // p-min semantics (both paths): stop the chain early when the head's confidence in
3493            // its own pick drops below p_min — the just-drafted token is DISCARDED, but its
3494            // scratch append stands (identical to the eager chain's ordering). j==0 always drafts.
3495            let base0 = if pending.is_some() { 1usize } else { 0usize };
3496            // Round-start draft-KV sync (BOTH paths). Persistent: truncate/align to the committed
3497            // history — slots 0..P hold entries for the tokens before last_token@P (P = pos +
3498            // base0 - 1); this single set_len IS the draft-side rollback (drops last round's
3499            // rejected drafts and p-min extras via the len mechanism).
3500            scratch.set_len(e, pos + base0 - 1)?;
3501            if pen_on {
3502                let w0 = pen_hist.len().saturating_sub(sp.penalty_last_n);
3503                pen_hist_d = Some(e.htod_u32_v(&pen_hist[w0..])?);
3504            }
3505            // fixed draft length by default; MEMRA_SPEC_ADAPT=1 drafts at last round's
3506            // accepted run + 1 (the gemma law — see the setup block above the loop).
3507            let k_this = if adapt { kc } else { k };
3508            let mut draft: Vec<u32> = Vec::with_capacity(k);
3509            let mut draft_idx: Vec<u32> = Vec::with_capacity(k); // trimmed-vocab ids (== draft when untrimmed)
3510            if sampled {
3511                draft_logits.clear();
3512                draft_stats.clear();
3513            }
3514            // DRAFT-SIDE GRAMMAR MASK: clone the committed grammar state ONCE per round; each
3515            // position's mask is computed on that clone and advanced by the PROPOSED token. The
3516            // real state moves only on emission (verify's job), so the emitted stream is
3517            // unchanged — the mask only removes tokens the verify would have truncated anyway.
3518            let mut dmask_live = dmask_on;
3519            if dmask_live {
3520                let t_c = std::time::Instant::now();
3521                constraint
3522                    .as_deref_mut()
3523                    .unwrap()
3524                    .draft_begin()
3525                    .map_err(|e2| format!("constraint: {e2}"))?;
3526                dm_clone_ns += t_c.elapsed().as_nanos();
3527                dm_rounds += 1;
3528            }
3529            if let (false, Some(gr)) = (sampled || pen_on, &dctx.graph) {
3530                // GRAPH DRAFT: one dispatch per drafted token. The chain feeds itself on-device
3531                // (in-graph argmax -> tok_d -> next replay's embed; h_nextn -> h_seed_d; pos_d
3532                // inc'd in-graph); the host only reads 4B token (+4B p) and decides the break.
3533                e.set_i32_one(&mut dctx.g_pos, (pos + base0) as i32)?;
3534                e.set_u32_one(&mut dctx.g_tok, last_token)?;
3535                e.copy_into(&mut dctx.g_seed, 0, &h_seed_buf, n_embd)?;
3536                for j in 0..k_this {
3537                    // per-position mask upload (contents only — the graph's baked pointer is
3538                    // dctx.g_dmask). All-ones once masking goes dead mid-chain, so the captured
3539                    // mask node degrades to a no-op ban instead of needing a second graph.
3540                    if dmask_live
3541                        && !upload_draft_mask(
3542                            e,
3543                            constraint.as_deref_mut().unwrap(),
3544                            &mut dctx.g_dmask,
3545                            mtp.d2t.as_ref(),
3546                            d_vocab,
3547                            dmask_words,
3548                        )?
3549                    {
3550                        // no draft-vocab row is grammar-legal here (a trimmed FR-Spec head can
3551                        // genuinely miss the legal set): neutralize the captured mask node and
3552                        // finish the chain UNMASKED — exactly pre-lane behaviour, never worse.
3553                        e.htod_u32_into(&mut dctx.g_dmask, &vec![u32::MAX; dmask_words])?;
3554                        dmask_live = false;
3555                    }
3556                    gr.launch()?;
3557                    scratch.kv.len += 1; // host mirror (len_d advanced in-graph)
3558                    let idx = e.dtoh_u32_one(&dctx.g_tok)?;
3559                    // trimmed draft vocab -> target token id (identity when no d2t map)
3560                    let d = match &mtp.d2t {
3561                        Some(map) => map[idx as usize],
3562                        None => idx,
3563                    };
3564                    if p_min > 0.0 {
3565                        let p = e.dtoh(&dctx.g_p)?[0];
3566                        if p < p_min && (j > 0 || (pmin0 && base0 == 1)) {
3567                            break;
3568                        }
3569                    }
3570                    draft.push(d);
3571                    // with a trimmed head the NEXT embed must read the TARGET id, not the draft
3572                    // index the argmax wrote — patch the persistent token buffer (4B htod).
3573                    if d != idx {
3574                        e.set_u32_one(&mut dctx.g_tok, d)?;
3575                    }
3576                    // advance the SPECULATIVE state with the proposal; a dead chain drops to
3577                    // unmasked drafting for the remaining positions (verify still arbitrates).
3578                    // speculative advance; a chain the grammar can no longer follow (EOS
3579                    // proposed) ends here. The captured mask node always runs, so a dead chain
3580                    // leaves the buffer NEUTRAL (all-ones = ban nothing) before it exits.
3581                    if dmask_live
3582                        && !constraint
3583                            .as_deref_mut()
3584                            .unwrap()
3585                            .draft_advance(d)
3586                            .map_err(|e2| format!("constraint: {e2}"))?
3587                    {
3588                        e.htod_u32_into(&mut dctx.g_dmask, &vec![u32::MAX; dmask_words])?;
3589                        break;
3590                    }
3591                }
3592            } else if let (true, Some(gr)) = (sampled, &dctx.graph_s) {
3593                // SAMPLED GRAPH DRAFT: one replay per drafted token — head forward + gumbel +
3594                // argmax in ONE dispatch; the host reads 4B token (+4B p), D2Ds q into slot j,
3595                // and decides the break. Event-counter continuity: g_ctr is host-seeded to
3596                // sctr-1 ONCE per round (outside the graph); the in-graph bump runs BEFORE the
3597                // perturb, so replay j consumes counter sctr+j — exactly the eager arm's Philox
3598                // stream. Host sctr advances in lockstep (computed, no readback needed).
3599                e.set_i32_one(&mut dctx.g_pos, (pos + base0) as i32)?;
3600                e.set_u32_one(&mut dctx.g_tok, last_token)?;
3601                e.copy_into(&mut dctx.g_seed, 0, &h_seed_buf, n_embd)?;
3602                e.set_u32_one(&mut dctx.g_ctr, sctr.wrapping_sub(1))?;
3603                for j in 0..k_this {
3604                    gr.launch()?;
3605                    scratch.kv.len += 1; // host mirror (len_d advanced in-graph)
3606                    sctr += 1; // mirrors the in-graph g_ctr bump (eager parity:
3607                               // counts the p-min-discarded token too)
3608                               // q retention: ONE async D2D of the persistent head-logits buffer into this
3609                               // round's slot j (stream-ordered after the replay, before the next one).
3610                    e.copy_into(&mut dctx.q_slots[j], 0, &dctx.g_q, d_vocab)?;
3611                    let idx = e.dtoh_u32_one(&dctx.g_tok)?;
3612                    let d = match &mtp.d2t {
3613                        Some(map) => map[idx as usize],
3614                        None => idx,
3615                    };
3616                    draft_idx.push(idx);
3617                    if p_min > 0.0 {
3618                        let p = e.dtoh(&dctx.g_p)?[0];
3619                        if p < p_min && (j > 0 || (pmin0 && base0 == 1)) {
3620                            break;
3621                        }
3622                    }
3623                    draft.push(d);
3624                    // trimmed head: the NEXT embed must read the TARGET id (see the greedy arm).
3625                    if d != idx {
3626                        e.set_u32_one(&mut dctx.g_tok, d)?;
3627                    }
3628                }
3629                // uniform accept path: fill draft_stats per used slot (pure-temp regime — the
3630                // stats degenerate to th=0 / full-Z; one filter_stats launch per slot, tiny).
3631                for j in 0..draft.len().max(draft_idx.len()) {
3632                    let rows0 = e.htod_i32(&[0])?;
3633                    let (mut th_d, mut z_d, mut mx_d) = (e.zeros(1)?, e.zeros(1)?, e.zeros(1)?);
3634                    e.filter_stats(
3635                        &dctx.q_slots[j],
3636                        d_vocab,
3637                        &rows0,
3638                        &mut th_d,
3639                        &mut z_d,
3640                        &mut mx_d,
3641                        d_vocab,
3642                        1,
3643                        sp_temp,
3644                        sp.top_k,
3645                        sp.top_p,
3646                        sp.min_p,
3647                    )?;
3648                    draft_stats.push((e.dtoh(&mx_d)?[0], e.dtoh(&th_d)?[0], e.dtoh(&z_d)?[0]));
3649                }
3650            } else {
3651                // EAGER DRAFT (fallback: MoE head/trunk, huge k, MEMRA_SPEC_NOGRAPH, capture fail).
3652                let mut e_tok = last_token;
3653                let mut d_seed = e.clone_dtod(&h_seed_buf)?;
3654                for j in 0..k_this {
3655                    // GPU-ARGMAX DRAFT (2026-07-03): device logits + device argmax + 4-byte token
3656                    // read instead of the ~600KB full-vocab dtoh + host argmax per draft token.
3657                    let mtp_pos = pos + base0 + j;
3658                    // draft-side grammar mask (eager twin of the graph arm's in-graph node).
3659                    // A position with no legal draft-vocab row drops to unmasked drafting for
3660                    // the rest of the chain (pre-lane behaviour; verify still arbitrates).
3661                    if dmask_live {
3662                        dmask_live = upload_draft_mask(
3663                            e,
3664                            constraint.as_deref_mut().unwrap(),
3665                            &mut dctx.g_dmask,
3666                            mtp.d2t.as_ref(),
3667                            d_vocab,
3668                            dmask_words,
3669                        )?;
3670                    }
3671                    let (dl_d, h_nextn) = self.mtp_head_forward_dev(
3672                        e,
3673                        mtp,
3674                        e_tok,
3675                        &d_seed,
3676                        &mut *scratch,
3677                        mtp_pos,
3678                        embd_dev,
3679                        if dmask_live { Some((&dctx.g_dmask, dmask_words)) } else { None },
3680                    )?;
3681                    let tok_d = if sampled {
3682                        // FILTERED Gumbel-max: stats -> masked perturb -> argmax = one draw from
3683                        // the filtered softmax (filters off => th=0, exact v1 semantics).
3684                        if perturb_buf.is_none() {
3685                            perturb_buf = Some(e.zeros(d_vocab.max(n_vocab))?);
3686                        }
3687                        let mut q_row = e.clone_dtod(&dl_d)?; // retained q (penalized when on)
3688                        if pen_on {
3689                            let h = pen_hist_d.as_ref().unwrap();
3690                            let nh = h.len();
3691                            e.penalize_logits(
3692                                &mut q_row,
3693                                h,
3694                                nh,
3695                                sp.penalty_repeat,
3696                                sp.penalty_freq,
3697                                sp.penalty_present,
3698                                d_vocab,
3699                            )?;
3700                        }
3701                        let rows0 = e.htod_i32(&[0])?;
3702                        let (mut th_d, mut z_d, mut mx_d) = (e.zeros(1)?, e.zeros(1)?, e.zeros(1)?);
3703                        e.filter_stats(
3704                            &q_row, d_vocab, &rows0, &mut th_d, &mut z_d, &mut mx_d, d_vocab, 1,
3705                            sp_temp, sp.top_k, sp.top_p, sp.min_p,
3706                        )?;
3707                        let (th, z, mx) = (e.dtoh(&th_d)?[0], e.dtoh(&z_d)?[0], e.dtoh(&mx_d)?[0]);
3708                        let pb = perturb_buf.as_mut().unwrap();
3709                        e.gumbel_perturb_filtered(
3710                            &q_row, pb, d_vocab, sp_seed, sctr, sp_temp, mx, th,
3711                        )?;
3712                        sctr += 1;
3713                        draft_logits.push(q_row);
3714                        draft_stats.push((mx, th, z));
3715                        e.argmax_token_device(pb, d_vocab)?
3716                    } else {
3717                        e.argmax_token_device(&dl_d, d_vocab)?
3718                    };
3719                    let idx = e.dtoh_u32_one(&tok_d)?;
3720                    let d = match &mtp.d2t {
3721                        Some(map) => map[idx as usize],
3722                        None => idx,
3723                    };
3724                    if sampled {
3725                        draft_idx.push(idx);
3726                    }
3727                    if p_min > 0.0 {
3728                        let p_d = e.prob_of_token_device(&dl_d, &tok_d, d_vocab)?;
3729                        let p = e.dtoh(&p_d)?[0];
3730                        if p < p_min && (j > 0 || (pmin0 && base0 == 1)) {
3731                            break;
3732                        }
3733                    }
3734                    draft.push(d);
3735                    e_tok = d;
3736                    d_seed = h_nextn;
3737                    // speculative advance; a chain the grammar can no longer follow (EOS
3738                    // proposed) ends here — the prefix already proposed still rides verify.
3739                    if dmask_live
3740                        && !constraint
3741                            .as_deref_mut()
3742                            .unwrap()
3743                            .draft_advance(d)
3744                            .map_err(|e2| format!("constraint: {e2}"))?
3745                    {
3746                        break;
3747                    }
3748                }
3749            }
3750            let k_round = draft.len();
3751
3752            ph_mark(&mut ph_draft, phase_on);
3753            // --- 2. VERIFY: one batched target forward. With a pending bonus, it rides as col 0
3754            //         (committing its KV/recur inside the SAME weight read); drafts follow. ---
3755            let verify_tokens: Vec<u32> = match pending {
3756                Some(b) => {
3757                    let mut v = Vec::with_capacity(k_round + 1);
3758                    v.push(b);
3759                    v.extend_from_slice(&draft);
3760                    v
3761                }
3762                None => draft.clone(),
3763            };
3764            let base = if pending.is_some() { 1 } else { 0 };
3765            // ckpt (REPLAY-FREE partial accept): retain per-layer state-rebuild inputs alongside
3766            // the verify. Pure buffer keep-alives + dtod clones — kernel work is unchanged.
3767            let mut ckpt = if spec_replay {
3768                None
3769            } else {
3770                Some(VerifyCkpt::new(self.layers.len()))
3771            };
3772            let (tlogits_d, vx) = self.decode_step_t_core(
3773                e,
3774                &verify_tokens,
3775                pos,
3776                &mut *cache,
3777                embd_dev,
3778                ckpt.as_mut(),
3779            )?;
3780
3781            ph_mark(&mut ph_verify, phase_on);
3782            // --- 3. GREEDY ACCEPT (walk prefix, stop at first mismatch) ---
3783            // DEVICE-ARGMAX ACCEPT: argmax every verify column ON DEVICE (same 2-pass kernels +
3784            // smallest-index tie-break as host argmax, argmax_gate-validated) and read back ONE
3785            // [T] u32 — replaces the T x n_vocab f32 dtoh + T host argmaxes per round.
3786            // t_pred[j] = target's greedy prediction for the slot after draft[j-1] (j>=1) or after
3787            // last_token (j==0). With a pending bonus, col 0 IS the prediction after last_token
3788            // (== the bonus), so every index shifts by `base` and last_pred is unused.
3789            let t_v = verify_tokens.len();
3790            let mut preds: Vec<u32> = Vec::new();
3791            if !sampled {
3792                for j in 0..t_v {
3793                    e.argmax_token_device_col(&tlogits_d, j, n_vocab, &mut preds_d, j)?;
3794                }
3795                preds = e.dtoh_u32(&preds_d)?; // <- the verify-GPU wait lands here
3796            }
3797            ph_mark(&mut ph_wait, phase_on);
3798            let t_pred = |j: usize| -> u32 {
3799                if j == 0 && base == 0 {
3800                    last_pred
3801                } else {
3802                    preds[base + j - 1]
3803                }
3804            };
3805            let mut devacc_seeded = false;
3806            let mut devacc_acc: Option<CudaSlice<u32>> = None;
3807            let (n_acc, bonus) = if !sampled {
3808                // ROUND-STREAM stage (a) (MEMRA_SPEC_DEVACC=1 opt-in): the walk runs ON DEVICE
3809                // (spec_accept_greedy, verbatim rule) and the host reads back 8B (n_acc, bonus)
3810                // instead of the [T] preds. Same sync count — machinery for stages (b)/(c),
3811                // gated on token identity vs the host walk (the arms below are bit-equal rules).
3812                if crate::spec::spec_devacc() && k_round > 0 && !spec_replay
3813                    && constraint.is_none() {
3814                    let draft_d = e.htod_u32_v(&draft)?;
3815                    let mut acc_out = e.alloc_u32_zeroed(2)?;
3816                    e.spec_accept_greedy(
3817                        &preds_d,
3818                        &draft_d,
3819                        last_pred,
3820                        base,
3821                        k_round,
3822                        &mut acc_out,
3823                    )?;
3824                    devacc_acc = Some(acc_out.clone());
3825                    // stage (b): next-round seed gathered ON DEVICE from acc_out before the host
3826                    // ever reads n_acc (j=base+n_acc -> vx col j-1; j==0 -> fill_prev). The three
3827                    // non-replay commit arms skip their host-offset seed copies (guarded below);
3828                    // the legacy spec_replay arm keeps its own rx-based seeding (excluded here).
3829                    // NOTE: fill_prev is NOT updated here — the commit arms' TRUE-HIDDEN
3830                    // REFRESH reads the OLD fill_prev (predecessor of this round's verify batch);
3831                    // the update lands after the arms (devacc_seeded guard below).
3832                    e.spec_seed_gather(&vx, &fill_prev, &acc_out, &mut h_seed_buf, base, n_embd)?;
3833                    // 3a: KV lens roll back on device (len = saved + base + n_acc, all arms'
3834                    // unified rule; full accept rewrites the verify-left value). Host mirrors
3835                    // update after the readback; commit_verified_prefix skips its len_d writes.
3836                    if let Some(ptrs) = &kv_len_ptrs {
3837                        let saved: Vec<i32> = (0..self.layers.len())
3838                            .map(|il| snap.kv_len[il].map(|v| v as i32).unwrap_or(0))
3839                            .collect();
3840                        let saved_d = e.htod_i32(&saved)?;
3841                        e.spec_rollback_kv(ptrs, &saved_d, &acc_out, base, self.layers.len())?;
3842                    }
3843                    devacc_seeded = true;
3844                    let ab = e.dtoh_u32(&acc_out)?;
3845                    (ab[0] as usize, ab[1])
3846                } else {
3847                    let mut n_acc = 0usize;
3848                    for j in 0..k_round {
3849                        if t_pred(j) == draft[j] {
3850                            n_acc += 1;
3851                        } else {
3852                            break;
3853                        }
3854                    }
3855                    // bonus = target's own token at the first non-accepted slot. n_acc in 0..=k; t_pred
3856                    // is defined for j in 0..=k (j==0 -> last_logits, j>=1 -> col j-1, last col = k-1).
3857                    (n_acc, t_pred(n_acc))
3858                }
3859            } else {
3860                // --- SAMPLED ACCEPT (rejection sampling): u_j < p_j(x_j)/q_j(x_j) walk ---
3861                if col_buf.is_none() {
3862                    col_buf = Some(e.zeros(n_vocab)?);
3863                }
3864                // FILTERED p_j: per-verify-col stats (one batched filter_stats call), then the
3865                // filtered gather. j==0&&base==0 reads last_col (its own stats row appended).
3866                let mut pj = vec![0f32; k_round.max(1)];
3867                let mut col_stats: Vec<(f32, f32, f32)> = Vec::new(); // (max, th, z) per verify col used
3868                if k_round > 0 {
3869                    let mut ids: Vec<u32> = Vec::new();
3870                    let mut rows: Vec<i32> = Vec::new();
3871                    for j in 0..k_round {
3872                        if j > 0 || base == 1 {
3873                            ids.push(draft[j]);
3874                            rows.push((base + j) as i32 - 1);
3875                        }
3876                    }
3877                    if !ids.is_empty() {
3878                        let nr = rows.len();
3879                        // penalties: materialize the used columns into one contiguous penalized
3880                        // buffer (rows remapped 0..nr) so stats+gathers see the penalized p.
3881                        // penalties: materialize used columns contiguously, penalize all rows in
3882                        // one launch, and point stats+gathers at the penalized buffer (rows 0..nr).
3883                        let p_rows: Vec<i32> = if pen_on {
3884                            (0..nr as i32).collect()
3885                        } else {
3886                            rows.clone()
3887                        };
3888                        if pen_on {
3889                            if pcol_buf.as_ref().map(|b| b.len()).unwrap_or(0) < nr * n_vocab {
3890                                pcol_buf = Some(e.zeros(nr * n_vocab)?);
3891                            }
3892                            let pc = pcol_buf.as_mut().unwrap();
3893                            for (i2, &r) in rows.iter().enumerate() {
3894                                let c = r as usize;
3895                                e.copy_view_into(
3896                                    pc,
3897                                    i2 * n_vocab,
3898                                    &tlogits_d.slice(c * n_vocab..(c + 1) * n_vocab),
3899                                    n_vocab,
3900                                )?;
3901                            }
3902                            let h = pen_hist_d.as_ref().unwrap();
3903                            let nh = h.len();
3904                            e.penalize_logits_rows(
3905                                pc,
3906                                h,
3907                                nh,
3908                                sp.penalty_repeat,
3909                                sp.penalty_freq,
3910                                sp.penalty_present,
3911                                n_vocab,
3912                                nr,
3913                            )?;
3914                        }
3915                        let p_src: &CudaSlice<f32> = if pen_on {
3916                            pcol_buf.as_ref().unwrap()
3917                        } else {
3918                            &tlogits_d
3919                        };
3920                        let rowsd = e.htod_i32(&p_rows)?;
3921                        let (mut th_d, mut z_d, mut mx_d) =
3922                            (e.zeros(nr)?, e.zeros(nr)?, e.zeros(nr)?);
3923                        e.filter_stats(
3924                            p_src, n_vocab, &rowsd, &mut th_d, &mut z_d, &mut mx_d, n_vocab, nr,
3925                            sp_temp, sp.top_k, sp.top_p, sp.min_p,
3926                        )?;
3927                        let idsd = e.htod_u32_v(&ids)?;
3928                        let mut outd = e.zeros(nr)?;
3929                        e.softmax_gather_filtered(
3930                            p_src, n_vocab, &idsd, &rowsd, &th_d, &z_d, &mut outd, n_vocab, nr,
3931                            sp_temp,
3932                        )?;
3933                        let outv = e.dtoh(&outd)?;
3934                        let (thv, zv, mxv) = (e.dtoh(&th_d)?, e.dtoh(&z_d)?, e.dtoh(&mx_d)?);
3935                        let mut oi = 0usize;
3936                        for j in 0..k_round {
3937                            if j > 0 || base == 1 {
3938                                pj[j] = outv[oi];
3939                                oi += 1;
3940                            }
3941                        }
3942                        col_stats = (0..nr).map(|i| (mxv[i], thv[i], zv[i])).collect();
3943                    }
3944                    if base == 0 {
3945                        let lc: &CudaSlice<f32> = if pen_on {
3946                            if col_buf.is_none() {
3947                                col_buf = Some(e.zeros(n_vocab)?);
3948                            }
3949                            let cb = col_buf.as_mut().unwrap();
3950                            e.copy_into(
3951                                cb,
3952                                0,
3953                                last_col_logits
3954                                    .as_ref()
3955                                    .expect("sampled: last_col_logits unset"),
3956                                n_vocab,
3957                            )?;
3958                            let h = pen_hist_d.as_ref().unwrap();
3959                            let nh = h.len();
3960                            e.penalize_logits(
3961                                cb,
3962                                h,
3963                                nh,
3964                                sp.penalty_repeat,
3965                                sp.penalty_freq,
3966                                sp.penalty_present,
3967                                n_vocab,
3968                            )?;
3969                            col_buf.as_ref().unwrap()
3970                        } else {
3971                            last_col_logits
3972                                .as_ref()
3973                                .expect("sampled: last_col_logits unset")
3974                        };
3975                        let rows0 = e.htod_i32(&[0])?;
3976                        let (mut th_d, mut z_d, mut mx_d) = (e.zeros(1)?, e.zeros(1)?, e.zeros(1)?);
3977                        e.filter_stats(
3978                            lc, n_vocab, &rows0, &mut th_d, &mut z_d, &mut mx_d, n_vocab, 1,
3979                            sp_temp, sp.top_k, sp.top_p, sp.min_p,
3980                        )?;
3981                        let idsd = e.htod_u32_v(&[draft[0]])?;
3982                        let mut outd = e.zeros(1)?;
3983                        e.softmax_gather_filtered(
3984                            lc, n_vocab, &idsd, &rows0, &th_d, &z_d, &mut outd, n_vocab, 1, sp_temp,
3985                        )?;
3986                        pj[0] = e.dtoh(&outd)?[0];
3987                        last_col_stats =
3988                            Some((e.dtoh(&mx_d)?[0], e.dtoh(&th_d)?[0], e.dtoh(&z_d)?[0]));
3989                    }
3990                }
3991                // q source: the graph arm retained the head logits in the persistent q_slots;
3992                // the eager arm in per-round draft_logits clones. Same raw-logit values either way.
3993                // FILTERED q_j: stats from draft_stats (eager pushes in-chain; the graph arm
3994                // computes them post-replay — graph engages only filter/penalty-free, so the
3995                // stats degenerate to th=0/full-Z there, keeping ONE accept path).
3996                let q_bufs: &[CudaSlice<f32>] = if dctx.graph_s.is_some() {
3997                    &dctx.q_slots
3998                } else {
3999                    &draft_logits
4000                };
4001                let mut n_acc = 0usize;
4002                for j in 0..k_round {
4003                    let (qmx, qth, qz) = draft_stats[j];
4004                    let idsd = e.htod_u32_v(&[draft_idx[j]])?;
4005                    let rowsd = e.htod_i32(&[0])?;
4006                    let thd = e.htod(&[qth])?;
4007                    let zd = e.htod(&[qz])?;
4008                    let _ = qmx;
4009                    let mut outd = e.zeros(1)?;
4010                    e.softmax_gather_filtered(
4011                        &q_bufs[j], d_vocab, &idsd, &rowsd, &thd, &zd, &mut outd, d_vocab, 1,
4012                        sp_temp,
4013                    )?;
4014                    let qj = e.dtoh(&outd)?[0];
4015                    let u = host_u01(sp_seed, uctr);
4016                    uctr += 1;
4017                    if (u as f64) * (qj as f64) < pj[j] as f64 {
4018                        n_acc += 1;
4019                    } else {
4020                        break;
4021                    }
4022                }
4023                let bonus = if n_acc == k_round {
4024                    // FULL ACCEPT: bonus ~ FILTERED softmax at the last verify column.
4025                    let col = base + k_round - 1;
4026                    let cb = col_buf.as_mut().unwrap();
4027                    e.copy_view_into(
4028                        cb,
4029                        0,
4030                        &tlogits_d.slice(col * n_vocab..(col + 1) * n_vocab),
4031                        n_vocab,
4032                    )?;
4033                    if pen_on {
4034                        let h = pen_hist_d.as_ref().unwrap();
4035                        let nh = h.len();
4036                        e.penalize_logits(
4037                            cb,
4038                            h,
4039                            nh,
4040                            sp.penalty_repeat,
4041                            sp.penalty_freq,
4042                            sp.penalty_present,
4043                            n_vocab,
4044                        )?;
4045                    }
4046                    if perturb_buf.is_none() {
4047                        perturb_buf = Some(e.zeros(d_vocab.max(n_vocab))?);
4048                    }
4049                    // stats for the last used col: reuse col_stats when it covers it, else compute.
4050                    let (mx, th, _z) = if !col_stats.is_empty() {
4051                        *col_stats.last().unwrap()
4052                    } else {
4053                        let rows0 = e.htod_i32(&[0])?;
4054                        let (mut th_d, mut z_d, mut mx_d) = (e.zeros(1)?, e.zeros(1)?, e.zeros(1)?);
4055                        let cb0 = col_buf.as_ref().unwrap();
4056                        e.filter_stats(
4057                            cb0, n_vocab, &rows0, &mut th_d, &mut z_d, &mut mx_d, n_vocab, 1,
4058                            sp_temp, sp.top_k, sp.top_p, sp.min_p,
4059                        )?;
4060                        (e.dtoh(&mx_d)?[0], e.dtoh(&th_d)?[0], e.dtoh(&z_d)?[0])
4061                    };
4062                    let pb = perturb_buf.as_mut().unwrap();
4063                    let cb2 = col_buf.as_ref().unwrap();
4064                    e.gumbel_perturb_filtered(cb2, pb, n_vocab, sp_seed, sctr, sp_temp, mx, th)?;
4065                    sctr += 1;
4066                    let td = e.argmax_token_device(pb, n_vocab)?;
4067                    e.dtoh_u32_one(&td)?
4068                } else {
4069                    // REJECT at n_acc: bonus ~ norm(max(0, softmax_T(p) - softmax_T(q))).
4070                    let cb = col_buf.as_mut().unwrap();
4071                    if n_acc > 0 || base == 1 {
4072                        let col = base + n_acc - 1;
4073                        e.copy_view_into(
4074                            cb,
4075                            0,
4076                            &tlogits_d.slice(col * n_vocab..(col + 1) * n_vocab),
4077                            n_vocab,
4078                        )?;
4079                    } else {
4080                        let lc = last_col_logits.as_ref().unwrap();
4081                        e.copy_into(cb, 0, lc, n_vocab)?;
4082                    }
4083                    if pen_on {
4084                        let h = pen_hist_d.as_ref().unwrap();
4085                        let nh = h.len();
4086                        e.penalize_logits(
4087                            cb,
4088                            h,
4089                            nh,
4090                            sp.penalty_repeat,
4091                            sp.penalty_freq,
4092                            sp.penalty_present,
4093                            n_vocab,
4094                        )?;
4095                    }
4096                    let cb2 = col_buf.as_ref().unwrap();
4097                    let sc = sctr;
4098                    sctr += 1;
4099                    // p-stats for the reject column: from col_stats when the col was gathered,
4100                    // else (j==0&&base==0) from last_col_stats.
4101                    let p_stats = if n_acc > 0 || base == 1 {
4102                        // col index within the gathered set == number of gathered cols before n_acc
4103                        let gi = if base == 1 { n_acc } else { n_acc - 1 };
4104                        col_stats.get(gi).copied().unwrap_or_else(|| {
4105                            (0.0, 0.0, 1.0) // unreachable: gathered cols always cover the reject slot
4106                        })
4107                    } else {
4108                        last_col_stats.expect("sampled: last_col_stats unset at reject")
4109                    };
4110                    let q_stats = draft_stats[n_acc];
4111                    if let Some(map) = &d2t_dev {
4112                        if q_full_buf.is_none() {
4113                            q_full_buf = Some(e.zeros(n_vocab)?);
4114                        }
4115                        let qf = q_full_buf.as_mut().unwrap();
4116                        e.scatter_trim_logits(&q_bufs[n_acc], map, qf, d_vocab, n_vocab)?;
4117                        let qf2 = q_full_buf.as_ref().unwrap();
4118                        e.residual_sample_filtered(
4119                            cb2,
4120                            Some(qf2),
4121                            n_vocab,
4122                            sp_temp,
4123                            sp_seed,
4124                            sc,
4125                            p_stats,
4126                            q_stats,
4127                            &mut sample_tok,
4128                        )?;
4129                    } else {
4130                        e.residual_sample_filtered(
4131                            cb2,
4132                            Some(&q_bufs[n_acc]),
4133                            n_vocab,
4134                            sp_temp,
4135                            sp_seed,
4136                            sc,
4137                            p_stats,
4138                            q_stats,
4139                            &mut sample_tok,
4140                        )?;
4141                    }
4142                    e.dtoh_u32(&sample_tok)?[0]
4143                };
4144                (n_acc, bonus)
4145            };
4146            // --- 3b. GRAMMAR TRUNCATION (constrained spec, 2026-08-03): the grammar is
4147            // an extra rejection rule AFTER the exactness verify (the batched-verify-twins
4148            // ordering). Walk the accepted drafts through the grammar in commit order; the
4149            // first illegal token truncates acceptance at its slot, and that slot's emission
4150            // is recomputed as the MASKED argmax of the target's own verify column — token-
4151            // identical to constrained plain greedy decode (an unmasked argmax that is
4152            // grammar-legal IS the masked argmax: masking only removes competitors). The
4153            // column D2H (~1MB) is paid only when a cut fires — the tight-grammar cost,
4154            // measured in acceptance numbers, never hidden.
4155            let (n_acc, bonus) = match constraint.as_deref_mut() {
4156                None => (n_acc, bonus),
4157                Some(c) => {
4158                    fn ce(e2: String) -> Box<dyn std::error::Error> {
4159                        format!("constraint: {e2}").into()
4160                    }
4161                    let mut na = n_acc;
4162                    let mut cut = false;
4163                    for (j, &d) in draft.iter().enumerate().take(n_acc) {
4164                        if c.is_allowed(d).map_err(ce)? {
4165                            c.consume(d).map_err(ce)?;
4166                        } else {
4167                            na = j;
4168                            cut = true;
4169                            dm_cut_tokens += n_acc - j;
4170                            break;
4171                        }
4172                    }
4173                    if cut {
4174                        dm_cuts += 1;
4175                    }
4176                    let mut bo = bonus;
4177                    if cut || !c.is_allowed(bo).map_err(ce)? {
4178                        let mut row = if na == 0 && base == 0 {
4179                            init_logits_host.clone()
4180                                .ok_or("constraint: init logits missing (round-0 cut)")?
4181                        } else {
4182                            e.dtoh_view(&tlogits_d.slice(
4183                                (base + na - 1) * n_vocab..(base + na) * n_vocab))?
4184                        };
4185                        c.mask_logits(&mut row).map_err(ce)?;
4186                        bo = argmax(&row) as u32;
4187                    }
4188                    c.consume(bo).map_err(ce)?;
4189                    (na, bo)
4190                }
4191            };
4192            total_drafted += k_round;
4193            total_accepted += n_acc;
4194            if spec_stats {
4195                st_len_hist[k_round] += 1;
4196                for j in 0..k_round {
4197                    st_drafted[j] += 1;
4198                }
4199                for j in 0..n_acc {
4200                    st_accepted[j] += 1;
4201                }
4202                if n_acc == k_round {
4203                    st_full += 1;
4204                }
4205            }
4206
4207            if debug_spec {
4208                eprintln!("[R{round}] pos={pos} out_len={} last_tok={last_token} draft={draft:?} n_acc={n_acc} bonus={bonus} t_pred0={}", out.len(), t_pred(0));
4209            }
4210
4211            // --- 4. COMMIT: draft[0..n_acc] then bonus (n_acc + 1 tokens) ---
4212            // SESSION MODE: every accepted column is already in the CACHE — `out` must carry all
4213            // of them (overshoot past max_new included) or `committed` under-counts the cache rows
4214            // and the next turn's continuation seeds one token off (gate-caught 2026-07-05). The
4215            // single-shot path keeps the cap (its caller truncates + drops the cache anyway).
4216            for j in 0..n_acc {
4217                if !session_mode && out.len() >= max_new {
4218                    break;
4219                }
4220                out.push(draft[j]);
4221            }
4222            if pen_on {
4223                pen_hist.extend_from_slice(&draft[0..n_acc]);
4224                pen_hist.push(bonus);
4225            }
4226            let bonus_emitted = session_mode || out.len() < max_new;
4227            if bonus_emitted {
4228                out.push(bonus);
4229            }
4230            last_token = bonus;
4231
4232            // --- 5. ROLLBACK + advance (§C) ---
4233            if n_acc == k_round {
4234                // FULL ACCEPT, BONUS FOLD: all verify columns (pending? + drafts) are committed in
4235                // cache; the NEW bonus stays PENDING for the next round's verify batch — NO extra
4236                // T=1 trunk pass. The next draft chain seeds from the MTP block's h_nextn at the
4237                // bonus position: one MTP-block pass (~1/33 trunk cost) replaces the trunk read.
4238                // last_pred is dead in the pending path (t_pred reads verify col 0).
4239                //
4240                // PERSISTENT DRAFT KV, full-accept fill: the chain covered last_token +
4241                // draft[0..k_round-2] as INPUTS (slots P..P'-2); draft[k_round-1] (slot P'-1) was
4242                // only ever an output, so its entry is MISSING. Fill it from vh_seed — its EXACT
4243                // trunk hidden (the last verify column). set_len first: a p-min break may have
4244                // left one extra chain append at that slot. Partial accepts need NO fill (the
4245                // chain already covered every accepted position; round-start set_len truncates).
4246                let mut vh_seed = e.zeros(n_embd)?;
4247                e.copy_view_into(
4248                    &mut vh_seed,
4249                    0,
4250                    &vx.slice((t_v - 1) * n_embd..t_v * n_embd),
4251                    n_embd,
4252                )?;
4253                if refresh {
4254                    // TRUE-HIDDEN REFRESH (2026-07-03, the HANDOVER-listed acceptance lever):
4255                    // overwrite ALL committed positions' scratch entries with K/V from their EXACT
4256                    // verify hiddens — the reference engine's mtp_update fills from true hiddens;
4257                    // the full stack (vx) is already resident from the verify. Replaces both the
4258                    // chain-approximate entries AND the old last-token-only fill. Acceptance-only
4259                    // (draft attention quality); exactness stays the verify's job.
4260                    scratch.set_len(e, pos)?;
4261                    // PREDECESSOR pairing: row i gets vx[i-1]; row 0 the carried fill_prev
4262                    // (hidden of the last committed row before this verify batch).
4263                    let mut vxs = e.zeros(t_v * n_embd)?;
4264                    e.copy_into(&mut vxs, 0, &fill_prev, n_embd)?;
4265                    if t_v > 1 {
4266                        e.copy_view_into(
4267                            &mut vxs,
4268                            n_embd,
4269                            &vx.slice(0..(t_v - 1) * n_embd),
4270                            (t_v - 1) * n_embd,
4271                        )?;
4272                    }
4273                    self.mtp_kv_fill(e, mtp, &verify_tokens, &vxs, pos, &mut *scratch, embd_dev)?;
4274                } else {
4275                    scratch.set_len(e, pos + base + k_round - 1)?;
4276                    // predecessor of the last draft = verify col t_v-2 (or fill_prev at t_v==1)
4277                    let mut hp = e.zeros(n_embd)?;
4278                    if t_v >= 2 {
4279                        e.copy_view_into(
4280                            &mut hp,
4281                            0,
4282                            &vx.slice((t_v - 2) * n_embd..(t_v - 1) * n_embd),
4283                            n_embd,
4284                        )?;
4285                    } else {
4286                        e.copy_into(&mut hp, 0, &fill_prev, n_embd)?;
4287                    }
4288                    self.mtp_kv_fill(
4289                        e,
4290                        mtp,
4291                        &[draft[k_round - 1]],
4292                        &hp,
4293                        pos + base + k_round - 1,
4294                        &mut *scratch,
4295                        embd_dev,
4296                    )?;
4297                }
4298                // REFERENCE SEEDING: no pseudo pass — the next chain's step 0 IS the
4299                // reference's (id_last, h_prev) draft row; it appends the bonus's scratch
4300                // entry itself. Seed = TRUE hidden of the bonus's predecessor (last verify
4301                // col). Saves one MTP-block pass per round on top of the pairing fix.
4302                if !devacc_seeded {
4303                    e.copy_into(&mut h_seed_buf, 0, &vh_seed, n_embd)?;
4304                    e.copy_into(&mut fill_prev, 0, &vh_seed, n_embd)?;
4305                }
4306                pending = Some(bonus);
4307                if debug_spec {
4308                    eprintln!("  -> FULL ACCEPT (bonus pending, prev-h seed)");
4309                }
4310            } else if !spec_replay && base + n_acc >= 1 {
4311                // PARTIAL ACCEPT, REPLAY-FREE (2026-07-03 — the profiled #1 long-ctx spec cost):
4312                // the verify's first j = base+n_acc columns ARE the committed sequence, computed
4313                // bit-identically to eager (decode-exact contract) — so KEEP them: KV truncates to
4314                // pos+j, recurrent state rebuilds from the VerifyCkpt (same-kernel gdn prefix
4315                // re-run / pure state-clone restore), and the bonus stays PENDING exactly like the
4316                // full-accept path — the legacy duplicate trunk replay is gone. The next chain
4317                // seeds from the MTP pseudo-hidden of the bonus, whose seed = the TRUE verify
4318                // hidden of its predecessor (col j-1) — same one-hop pseudo structure as full
4319                // accept (never compounds: the next verify recomputes true hiddens for all
4320                // committed columns).
4321                let j = base + n_acc;
4322                self.commit_verified_prefix(
4323                    e,
4324                    &mut *cache,
4325                    &snap,
4326                    ckpt.as_ref().unwrap(),
4327                    j,
4328                    devacc_seeded,
4329                    if devacc_seeded {
4330                        devacc_acc.as_ref().map(|a| (a, base, t_v))
4331                    } else {
4332                        None
4333                    },
4334                )?;
4335                let mut seed = e.zeros(n_embd)?;
4336                e.copy_view_into(
4337                    &mut seed,
4338                    0,
4339                    &vx.slice((j - 1) * n_embd..j * n_embd),
4340                    n_embd,
4341                )?;
4342                // Draft scratch: TRUE-HIDDEN REFRESH of the committed prefix (see the full-accept
4343                // branch); without it the chain entries stand and only the tail truncates. Either
4344                // way len ends at pos+j so the pseudo append lands at the bonus's slot pos+j
4345                // (persistent mode), rope pos+j+1 (chain convention).
4346                if refresh {
4347                    scratch.set_len(e, pos)?;
4348                    let mut vxs = e.zeros(j * n_embd)?;
4349                    e.copy_into(&mut vxs, 0, &fill_prev, n_embd)?;
4350                    if j > 1 {
4351                        e.copy_view_into(
4352                            &mut vxs,
4353                            n_embd,
4354                            &vx.slice(0..(j - 1) * n_embd),
4355                            (j - 1) * n_embd,
4356                        )?;
4357                    }
4358                    self.mtp_kv_fill(
4359                        e,
4360                        mtp,
4361                        &verify_tokens[0..j],
4362                        &vxs,
4363                        pos,
4364                        &mut *scratch,
4365                        embd_dev,
4366                    )?;
4367                } else {
4368                    scratch.set_len(e, pos + j)?;
4369                }
4370                // REFERENCE SEEDING (see the full-accept branch): seed = TRUE hidden of the
4371                // bonus's predecessor (verify col j-1); no pseudo pass.
4372                if !devacc_seeded {
4373                    e.copy_into(&mut h_seed_buf, 0, &seed, n_embd)?;
4374                    e.copy_into(&mut fill_prev, 0, &seed, n_embd)?;
4375                }
4376                pending = Some(bonus);
4377                if debug_spec {
4378                    eprintln!("  -> PARTIAL(replay-free j={j}, bonus pending, prev-h seed)");
4379                }
4380            } else if !spec_replay {
4381                // ZERO ROUND FOLD (2026-07-10, verify-cost target #3): base+n_acc == 0 — a
4382                // pending-less round where nothing was accepted (PMIN0 zero-draft chains after a
4383                // replay/commit, or plain 0-accept rounds at round 0). The old path replayed
4384                // [bonus] through a FULL m=1 trunk+head forward (the 489us full-vocab head pass
4385                // measured at ~0.75/round on PMIN0 configs). Instead: restore the pre-round
4386                // snapshot and let the bonus ride the NEXT round's verify as col 0 — the existing
4387                // base=1 pending machinery, bit-identical by the decode-exact verify contract.
4388                // Seed: the bonus's predecessor is the last COMMITTED token, whose hidden
4389                // fill_prev already carries (same seeding as the 1-token-replay case it replaces).
4390                cache.rollback(e, &snap, 0)?;
4391                scratch.set_len(e, pos)?;
4392                e.copy_into(&mut h_seed_buf, 0, &fill_prev, n_embd)?;
4393                pending = Some(bonus);
4394                if debug_spec {
4395                    eprintln!("  -> ZERO-ROUND FOLD (bonus pending, fill_prev seed)");
4396                }
4397            } else {
4398                // PARTIAL ACCEPT, LEGACY REPLAY (seam MEMRA_SPEC_REPLAY=1 — or j==0: nothing of
4399                // this round survives, only possible before the first pending exists, ~round 0):
4400                // restore EVERYTHING to the pre-round snapshot (KV truncate to pos + recur
4401                // restore), then replay the committed prefix pending? ++ draft[0..n_acc] ++
4402                // [bonus] as ONE batched T forward — single weight read, bit-identical to greedy
4403                // (the verify-all-columns path is the same math). Commits the bonus with a TRUE
4404                // trunk hidden.
4405                cache.rollback(e, &snap, 0)?; // accept_len=0: KV len = pos, recur = snapshot
4406                let mut replay: Vec<u32> = Vec::with_capacity(base + n_acc + 1);
4407                if let Some(b) = pending.take() {
4408                    replay.push(b);
4409                }
4410                replay.extend_from_slice(&draft[0..n_acc]);
4411                replay.push(bonus);
4412                // Full-stack forward (decode_step_t_core = decode_step_t_h_emb_dev's body):
4413                // Predecessor pairing seeds from the PREDECESSOR row (col len-2) — the same-row path takes the
4414                // last col exactly as before (byte-identical to the old _h_emb_dev call).
4415                let (rl_d, rx) =
4416                    self.decode_step_t_core(e, &replay, pos, &mut *cache, embd_dev, None)?;
4417                // last_pred = argmax of the LAST column's logits (predicts the token after `bonus`)
4418                // — device argmax + one 4-byte read instead of the full-vocab column dtoh.
4419                e.argmax_token_device_col(&rl_d, replay.len() - 1, n_vocab, &mut preds_d, 0)?;
4420                last_pred = e.dtoh_u32(&preds_d)?[0];
4421                if sampled {
4422                    let lr0 = replay.len();
4423                    let lc = last_col_logits
4424                        .as_mut()
4425                        .expect("sampled: last_col_logits unset");
4426                    e.copy_view_into(
4427                        lc,
4428                        0,
4429                        &rl_d.slice((lr0 - 1) * n_vocab..lr0 * n_vocab),
4430                        n_vocab,
4431                    )?;
4432                }
4433                let lr = replay.len();
4434                if lr >= 2 {
4435                    e.copy_view_into(
4436                        &mut h_seed_buf,
4437                        0,
4438                        &rx.slice((lr - 2) * n_embd..(lr - 1) * n_embd),
4439                        n_embd,
4440                    )?;
4441                } else {
4442                    // 1-token replay (round-0 miss): the bonus's predecessor is the OLD
4443                    // last_token, whose own-row hidden fill_prev still holds.
4444                    e.copy_into(&mut h_seed_buf, 0, &fill_prev, n_embd)?;
4445                }
4446                // the bonus is COMMITTED here — it becomes the last committed row.
4447                let mut rh_last = e.zeros(n_embd)?;
4448                e.copy_view_into(
4449                    &mut rh_last,
4450                    0,
4451                    &rx.slice((lr - 1) * n_embd..lr * n_embd),
4452                    n_embd,
4453                )?;
4454                e.copy_into(&mut fill_prev, 0, &rh_last, n_embd)?;
4455                if debug_spec {
4456                    eprintln!("  -> PARTIAL(replay={replay:?}), next_pred={last_pred}");
4457                }
4458            }
4459            if devacc_seeded {
4460                // stage (b) epilogue: fill_prev takes the gathered seed AFTER the refresh fills
4461                // consumed the old value (both slots carry the same value in every non-replay arm).
4462                e.copy_into(&mut fill_prev, 0, &h_seed_buf, n_embd)?;
4463            }
4464            // adaptive-K update (host math, zero syncs): next round drafts accepted-run + 1,
4465            // clamped to [floor(pos), k_cap]. cache.pos is post-rollback here (the round's
4466            // final position — the floor's position key reads the committed depth). Burst
4467            // rounds (`continue` above) draft the captured fixed depth and skip this, exactly
4468            // like gemma's burst arm.
4469            if adapt {
4470                let fl_now = floor_at(cache.pos);
4471                kc = (n_acc + 1).clamp(fl_now.min(k_cap), k_cap);
4472            }
4473            ph_mark(&mut ph_rest, phase_on);
4474            round += 1;
4475        }
4476
4477        if spec_stats {
4478            let per_slot: Vec<String> = (0..k)
4479                .map(|j| {
4480                    if st_drafted[j] > 0 {
4481                        format!(
4482                            "{}/{}={:.3}",
4483                            st_accepted[j],
4484                            st_drafted[j],
4485                            st_accepted[j] as f64 / st_drafted[j] as f64
4486                        )
4487                    } else {
4488                        "0/0".into()
4489                    }
4490                })
4491                .collect();
4492            let acc = if total_drafted > 0 {
4493                total_accepted as f64 / total_drafted as f64
4494            } else {
4495                0.0
4496            };
4497            eprintln!(
4498                "[spec-stats] rounds={round} full_accept={st_full} len_hist={st_len_hist:?} \
4499                       per_slot=[{}] total={total_accepted}/{total_drafted}={acc:.3} \
4500                       tok_per_round={:.3}",
4501                per_slot.join(" "),
4502                (total_accepted + round) as f64 / round.max(1) as f64
4503            );
4504        }
4505        if constraint.is_some() {
4506            eprintln!(
4507                "[draft-mask] mask_rounds={dm_rounds} clone_total={:.3}ms \
4508                 clone_per_round={:.4}ms gram_cuts={dm_cuts}/{round} cut_tokens={dm_cut_tokens}",
4509                dm_clone_ns as f64 / 1e6,
4510                dm_clone_ns as f64 / 1e6 / dm_rounds.max(1) as f64
4511            );
4512        }
4513        if phase_on {
4514            let tot = ph_draft + ph_verify + ph_wait + ph_rest;
4515            eprintln!("[spec-phase] draft={:.1}ms ({:.1}%) verify-issue={:.1}ms ({:.1}%) verify-wait={:.1}ms ({:.1}%) commit-host={:.1}ms ({:.1}%) rounds={round}",
4516                      ph_draft * 1e3, ph_draft / tot * 100.0,
4517                      ph_verify * 1e3, ph_verify / tot * 100.0,
4518                      ph_wait * 1e3, ph_wait / tot * 100.0,
4519                      ph_rest * 1e3, ph_rest / tot * 100.0);
4520        }
4521        // SESSION TAIL: leave the session in the exact invariant the next turn's suffix prime
4522        // expects — every row in `committed` has trunk KV/recur state AND an exact draft-KV row.
4523        // Park the draft-graph ctx back on the session (the serve-burst fixed-cost fix): the next
4524        // burst replays instead of recapturing. Error paths (`?` above) drop it — recaptured then.
4525        if let Some(slot) = sess_draft_slot.take() {
4526            *slot = Some(dctx);
4527        }
4528        let t_rounds = t_ent.elapsed();
4529        if let Some((committed, last_h, next_pred_slot, sctr_slot, uctr_slot)) = sess_tail.take() {
4530            *sctr_slot = sctr;
4531            *uctr_slot = uctr;
4532            *next_pred_slot = Some(last_pred);
4533            let mut stashed_pending = false;
4534            if let Some(b) = pending.take() {
4535                if !sampled {
4536                    // PENDING-CARRY (2026-08-01): stash the bonus on the session instead of
4537                    // committing it with a solo T=1 pass — the next empty-suffix greedy burst
4538                    // consumes it as round-0 verify col 0 (a plain round edge; the old tail
4539                    // commit + next burst's init feed were 11.6+11.5ms solo trunk passes per
4540                    // burst on H100 q27, [spec-setup] trace). b stays in `out` (emitted) but
4541                    // OUT of `committed` (cache rows == committed); the consuming call
4542                    // prepends it once its verify commits the row. next_pred is unknowable
4543                    // without the commit pass — None; callers gate on pending_tok too.
4544                    debug_assert_eq!(out.last(), Some(&b), "pending must be the last emitted");
4545                    if let Some(slot) = sess_pending_slot.take() {
4546                        *slot = Some(b);
4547                    }
4548                    *next_pred_slot = None;
4549                    // fill_prev = hidden of the last COMMITTED row (b's predecessor) — the
4550                    // exact chain-seed/fill anchor the consuming burst (or a flush) needs.
4551                    *last_h = Some(e.clone_dtod(&fill_prev)?);
4552                    stashed_pending = true;
4553                } else {
4554                    // SAMPLED tail (unchanged): commit the bonus (one T=1 pass) + draft fill —
4555                    // the sampled round-0 accept needs this pass's logits (last_col_logits).
4556                    let pos_b = cache.pos;
4557                    scratch.set_len(e, pos_b)?;
4558                    let (lg_b, hb) = self.decode_step_h(e, b, &mut *cache)?;
4559                    // after a FULL-accept exit `last_pred` is STALE (it predicted the bonus
4560                    // itself — the prediction AFTER the bonus never materialized; it would have
4561                    // been the next round's verify col 0). The commit's logits ARE that
4562                    // prediction.
4563                    *next_pred_slot = Some(argmax(&lg_b) as u32);
4564                    self.mtp_kv_fill(e, mtp, &[b], &fill_prev, pos_b, &mut *scratch, embd_dev)?;
4565                    *last_h = Some(hb);
4566                }
4567            } else {
4568                // fill_prev tracks the hidden of the last COMMITTED row throughout the loop.
4569                *last_h = Some(e.clone_dtod(&fill_prev)?);
4570            }
4571            committed.extend_from_slice(prompt);
4572            if let Some(cb) = carried_pending {
4573                // the consumed carry's cache row landed in round 0's verify (every pending
4574                // round commits col 0) — it joins `committed` here, in sequence order.
4575                committed.push(cb);
4576            }
4577            if stashed_pending {
4578                committed.extend_from_slice(&out[..out.len() - 1]); // all but the stashed bonus
4579            } else {
4580                committed.extend_from_slice(&out); // FULL out incl. overshoot — all committed
4581            }
4582            debug_assert_eq!(
4583                cache.pos,
4584                committed.len(),
4585                "session invariant: cache rows == committed tokens"
4586            );
4587            if setup_trace {
4588                e.stream().synchronize()?; // bound the async tail fill in the trace
4589                let t_tail = t_ent.elapsed();
4590                eprintln!(
4591                    "[spec-setup] init={:.2}ms cap={:.2}ms fill={:.2}ms rounds={:.2}ms tail={:.2}ms total={:.2}ms out={} cont={}",
4592                    t_init.as_secs_f64() * 1e3,
4593                    (t_cap - t_init).as_secs_f64() * 1e3,
4594                    (t_fill - t_cap).as_secs_f64() * 1e3,
4595                    (t_rounds - t_fill).as_secs_f64() * 1e3,
4596                    (t_tail - t_rounds).as_secs_f64() * 1e3,
4597                    t_tail.as_secs_f64() * 1e3,
4598                    out.len(),
4599                    continuation
4600                );
4601            }
4602            return Ok((out, total_drafted, total_accepted));
4603        }
4604        out.truncate(max_new);
4605        Ok((out, total_drafted, total_accepted))
4606    }
4607
4608    /// TEACHER-FORCED REPLAY ACCEPTANCE (hqmtp MTP-heal protocol): walk a FIXED token
4609    /// sequence and, at sampled positions, compare the MTP head's K-token draft chain against
4610    /// the trunk's own teacher-forced greedy predictions. Nothing is generated — the context is
4611    /// the corpus text itself, so (a) degenerate self-generated loops cannot inflate acceptance
4612    /// and (b) two arms (bf16 ceiling vs NVFP4) score on IDENTICAL contexts, isolating the
4613    /// quant-induced head/hidden-state mismatch from text drift.
4614    ///
4615    /// Per eval position p (context = tokens[0..=p], predecessor pairing as in spec decode):
4616    ///   draft_j  = chain token j from (tokens[p], h_{p-1}), then its own drafts — the exact
4617    ///              eager spec-decode chain (same mtp_head_forward_dev, same rope positions).
4618    ///   target_j = teacher-forced greedy pick for position p+1+j (argmax of the trunk logits
4619    ///              at forced context tokens[0..p+j]). For j==0 this equals live spec
4620    ///              acceptance; for j>=1 live verify would condition on the drafts, here it
4621    ///              conditions on the corpus — deterministic and arm-comparable by design.
4622    ///
4623    /// Returns (rows, bg): one (p, drafts[k], targets[k]) row per eval position (ascending p),
4624    /// plus the full teacher-forced greedy track bg (bg[i] = greedy pick for position i, i>=1)
4625    /// so harnesses can cross-check runs (e.g. different chunk sizes must give identical bg).
4626    ///
4627    /// `hdump`: when Some, every position's pre-output_norm trunk hidden (the exact rows the
4628    /// draft-KV fill pairs from) streams to the file as little-endian f32 [t_total, n_embd] —
4629    /// the head-distillation extraction (hqmtp): the ENGINE is the source of truth for trunk
4630    /// hiddens (HF torch reproductions of the hybrid trunk measured only ~0.5 greedy
4631    /// agreement vs this path — not usable as a training-data source).
4632    pub fn replay_acceptance(
4633        &self,
4634        e: &Engine,
4635        tokens: &[u32],
4636        k: usize,
4637        stride: usize,
4638        chunk: usize,
4639        mut hdump: Option<&mut std::fs::File>,
4640    ) -> Result<(Vec<(usize, Vec<u32>, Vec<u32>)>, Vec<u32>), Box<dyn std::error::Error>> {
4641        assert!(k >= 1 && stride >= 1 && chunk >= 2);
4642        let mtp = self
4643            .mtp
4644            .as_ref()
4645            .expect("replay_acceptance requires an MTP head");
4646        let n_vocab = self.output.out_features();
4647        let d_vocab = mtp
4648            .shared_head_head
4649            .as_ref()
4650            .unwrap_or(&self.output)
4651            .out_features();
4652        let n_embd = self.cfg.n_embd as usize;
4653        let t_total = tokens.len();
4654        assert!(t_total >= 8, "corpus too short ({t_total} tokens)");
4655        let mut cache = Cache::new(e, &self.cfg, t_total + k + 8)?;
4656        let mut scratch = MtpScratch::new(
4657            e,
4658            &self.cfg,
4659            t_total + k + 8,
4660            self.mtp.as_ref().and_then(|m| m.geom.as_ref()),
4661        )?;
4662        let (embd_qt, embd_rb) = self.embd.qt_and_row_bytes(n_embd);
4663        let embd_gpu = if spec_host_embd() {
4664            None
4665        } else {
4666            Some(
4667                self.embd_gpu
4668                    .get_or_init(|| e.upload_u8(&self.embd.raw).expect("embed table upload")),
4669            )
4670        };
4671        let embd_dev = embd_gpu.map(|g| (g, embd_qt, embd_rb));
4672
4673        // bg[i] = the trunk's greedy pick for position i under the forced context (i >= 1).
4674        let mut bg: Vec<u32> = vec![0; t_total + 1];
4675        let mut rows: Vec<(usize, Vec<u32>, Vec<u32>)> = Vec::new();
4676        let mut prev_last_h = e.zeros(n_embd)?; // predecessor hidden entering the chunk
4677        let mut seed_buf = e.zeros(n_embd)?;
4678        let mut preds_d = e.alloc_u32_zeroed(chunk)?;
4679        let nll_on = std::env::var("MEMRA_REPLAY_NLL").as_deref() == Ok("1");
4680        let (mut nll_sum, mut nll_cnt) = (0f64, 0u64);
4681        let mut s = 0usize;
4682        while s < t_total {
4683            let cend = (s + chunk).min(t_total);
4684            let tc = cend - s;
4685            let ch = &tokens[s..cend];
4686            // 1. forced trunk pass — verify path (decode-exact contract): all-column logits +
4687            //    the chunk's true hiddens.
4688            let (tl_d, vx) = self.decode_step_t_core(e, ch, s, &mut cache, embd_dev, None)?;
4689            for j in 0..tc {
4690                e.argmax_token_device_col(&tl_d, j, n_vocab, &mut preds_d, j)?;
4691            }
4692            let preds = e.dtoh_u32(&preds_d)?;
4693            for j in 0..tc {
4694                bg[s + j + 1] = preds[j];
4695            }
4696            // MEMRA_REPLAY_NLL=1: teacher-forced NLL/perplexity over the same forced pass — the
4697            // checkpoint-quality metric (position j's logits score the GOLD next token).
4698            if nll_on {
4699                let jmax = if cend < t_total { tc } else { tc - 1 }; // last pos has no gold next
4700                if jmax > 0 {
4701                    let ids: Vec<u32> = (0..jmax).map(|j| tokens[s + j + 1]).collect();
4702                    let rows: Vec<i32> = (0..jmax as i32).collect();
4703                    let idsd = e.htod_u32_v(&ids)?;
4704                    let rowsd = e.htod_i32(&rows)?;
4705                    let mut outd = e.zeros(jmax)?;
4706                    e.softmax_gather(&tl_d, n_vocab, &idsd, &rowsd, &mut outd, n_vocab, jmax, 1.0)?;
4707                    for pr in e.dtoh(&outd)? {
4708                        nll_sum += -((pr.max(1e-30)) as f64).ln();
4709                        nll_cnt += 1;
4710                    }
4711                }
4712            }
4713            if let Some(f) = hdump.as_deref_mut() {
4714                use std::io::Write;
4715                let host: Vec<f32> = e.dtoh(&vx)?;
4716                // bf16 round-to-nearest-even — f32 doubled the disk bill at bulk
4717                // extraction scale (20M tokens x 4096 = 320GB f32 vs 160GB bf16).
4718                let mut bytes = Vec::with_capacity(tc * n_embd * 2);
4719                for v in &host[..tc * n_embd] {
4720                    let b = v.to_bits();
4721                    let r = b.wrapping_add(0x7FFF + ((b >> 16) & 1));
4722                    bytes.extend_from_slice(&((r >> 16) as u16).to_le_bytes());
4723                }
4724                f.write_all(&bytes)?;
4725            }
4726            // CHAINLESS extraction (stride > corpus, the bulk-hdump mode): no chunk ever
4727            // drafts, so the draft-KV fills are pure waste — skip them (2 MTP-block passes
4728            // per token saved; the forced trunk pass + hdump is all the mode needs).
4729            let chainless = stride > t_total;
4730            if chainless {
4731                e.copy_view_into(
4732                    &mut prev_last_h,
4733                    0,
4734                    &vx.slice((tc - 1) * n_embd..tc * n_embd),
4735                    n_embd,
4736                )?;
4737                s = cend;
4738                continue;
4739            }
4740            // 2. TRUE predecessor-paired draft-KV fill for the chunk (row i carries h_{i-1};
4741            //    row s reads the previous chunk's last true hidden, zeros at corpus start).
4742            let mut vxs = e.zeros(tc * n_embd)?;
4743            e.copy_into(&mut vxs, 0, &prev_last_h, n_embd)?;
4744            if tc > 1 {
4745                e.copy_view_into(
4746                    &mut vxs,
4747                    n_embd,
4748                    &vx.slice(0..(tc - 1) * n_embd),
4749                    (tc - 1) * n_embd,
4750                )?;
4751            }
4752            scratch.set_len(e, s)?;
4753            self.mtp_kv_fill(e, mtp, ch, &vxs, s, &mut scratch, embd_dev)?;
4754            // 3. draft chains at sampled positions, DESCENDING: a chain reads only slots
4755            //    [0..p) (true fills) and appends at >= p; the next (smaller-p) chain's set_len
4756            //    truncates those approximate appends before they can ever be read.
4757            let ps: Vec<usize> = (s..cend)
4758                .filter(|p| *p >= 1 && *p % stride == 0 && *p + k <= t_total)
4759                .collect();
4760            for &p in ps.iter().rev() {
4761                scratch.set_len(e, p)?;
4762                if p == s {
4763                    e.copy_into(&mut seed_buf, 0, &prev_last_h, n_embd)?;
4764                } else {
4765                    e.copy_view_into(
4766                        &mut seed_buf,
4767                        0,
4768                        &vx.slice((p - 1 - s) * n_embd..(p - s) * n_embd),
4769                        n_embd,
4770                    )?;
4771                }
4772                let mut e_tok = tokens[p];
4773                let mut d_seed = e.clone_dtod(&seed_buf)?;
4774                let mut drafts: Vec<u32> = Vec::with_capacity(k);
4775                for j in 0..k {
4776                    let (dl_d, h_nextn) = self.mtp_head_forward_dev(
4777                        e,
4778                        mtp,
4779                        e_tok,
4780                        &d_seed,
4781                        &mut scratch,
4782                        p + 1 + j,
4783                        embd_dev,
4784                        None, // acceptance-oracle walk: no grammar
4785                    )?;
4786                    let tok_d = e.argmax_token_device(&dl_d, d_vocab)?;
4787                    let idx = e.dtoh_u32_one(&tok_d)?;
4788                    let d = match &mtp.d2t {
4789                        Some(map) => map[idx as usize],
4790                        None => idx,
4791                    };
4792                    drafts.push(d);
4793                    e_tok = d;
4794                    d_seed = h_nextn;
4795                }
4796                // targets may live in a LATER chunk's bg — resolved after the walk.
4797                rows.push((p, drafts, Vec::new()));
4798            }
4799            // 4. restore TRUE entries for the whole chunk (the next chunk's chains and fills
4800            //    expect scratch.len == cend with exact rows).
4801            scratch.set_len(e, s)?;
4802            self.mtp_kv_fill(e, mtp, ch, &vxs, s, &mut scratch, embd_dev)?;
4803            e.copy_view_into(
4804                &mut prev_last_h,
4805                0,
4806                &vx.slice((tc - 1) * n_embd..tc * n_embd),
4807                n_embd,
4808            )?;
4809            s = cend;
4810        }
4811        for (p, drafts, targets) in rows.iter_mut() {
4812            for j in 0..drafts.len() {
4813                targets.push(bg[*p + 1 + j]);
4814            }
4815        }
4816        rows.sort_by_key(|r| r.0);
4817        if nll_cnt > 0 {
4818            let mean = nll_sum / nll_cnt as f64;
4819            println!(
4820                "[replay-nll] tokens={nll_cnt} nll/token={mean:.5} ppl={:.4}",
4821                mean.exp()
4822            );
4823        }
4824        Ok((rows, bg))
4825    }
4826}