cortiq_engine/pool.rs
1//! Persistent worker pool for row-parallel matvecs.
2//!
3//! Threads are spawned once and spin-then-park between calls — vmfcore
4//! measured spawn-per-matvec at ~+27% decode cost versus a persistent
5//! pool. Parallelism is by disjoint row ranges, so results are
6//! bit-identical to the serial path (each row's dot product is computed
7//! the same way).
8//!
9//! Dispatch is a single shared job slot + atomic epoch (roadmap §3 P0):
10//! the caller publishes one pointer, bumps the epoch and JOINS THE WORK
11//! as the extra worker instead of blocking on a latch. The previous
12//! design allocated an `Arc<Latch>` and pushed a message into every
13//! worker's mpsc channel for every matvec (~200 dispatches/token) —
14//! with decode-grade matvecs that synchronization was its own budget.
15//! Workers spin for `CMF_POOL_SPIN` iterations before parking.
16//! Default 4000: at ~39 dispatches/token, park-immediately pays the
17//! unpark syscall on every worker for every dispatch — measured on an
18//! M4 (interleaved A/B, current epoch dispatch + parked-flag design):
19//! Qwen-0.5B q8 decode 101→115 tok/s, q4t 117→149, the 50M bench model
20//! 549→954 at spin=4000 vs spin=0. An early measurement that showed
21//! spinning LOSING (−25% on q8) predates the parked-flag skip and the
22//! multi-matrix dispatch cuts; it no longer reproduces. Over-spinning
23//! still hurts (200k: −15% vs 4k — spinners steal the caller's serial
24//! cycles), so the budget stays bounded. `CMF_POOL_SPIN=0` restores
25//! park-immediately for share-the-box serving.
26//!
27//! `CMF_THREADS` env: 0/1 = serial, N = worker count
28//! (default: available_parallelism − 1, capped at 8).
29
30use std::cell::UnsafeCell;
31use std::sync::Arc;
32use std::sync::atomic::{AtomicBool, AtomicUsize, Ordering};
33
34/// Embedder override for the pool size (C ABI `cortiq_set_threads`):
35/// 0 = unset, consult CMF_THREADS / topology as before. Read once at
36/// pool construction, so set it before the load.
37pub static FORCED_THREADS: std::sync::atomic::AtomicUsize = std::sync::atomic::AtomicUsize::new(0);
38
39/// Kernel thread ids of the CURRENT pool's workers (Android/Linux) —
40/// what ADPF's PerformanceHintManager needs to attribute work to the
41/// governor. Refilled on every pool construction; empty elsewhere.
42pub static WORKER_TIDS: std::sync::Mutex<Vec<i32>> = std::sync::Mutex::new(Vec::new());
43
44/// A `*const dyn Fn` that may cross a thread boundary. Safety is
45/// provided by `Pool::run`: the caller blocks until every worker has
46/// finished, so the borrow outlives all uses.
47#[derive(Clone, Copy)]
48struct TaskPtr(*const (dyn Fn(usize, usize) + Sync));
49unsafe impl Send for TaskPtr {}
50
51struct Inner {
52 /// Bumped once per published job; workers watch it.
53 epoch: AtomicUsize,
54 /// Workers still running the current job (excludes the caller).
55 remaining: AtomicUsize,
56 /// The published job: closure pointer + total participant count.
57 /// Written by the caller BEFORE the epoch bump, read by workers
58 /// AFTER they observe the new epoch (acquire/release pairing).
59 slot: UnsafeCell<Option<(TaskPtr, usize)>>,
60 shutdown: AtomicBool,
61 /// Spin iterations before a worker parks (0 = park immediately).
62 spin_budget: usize,
63 /// Per-worker "I am parked" flags — lets the caller skip the unpark
64 /// syscall for workers that are still spinning.
65 parked: Box<[AtomicBool]>,
66}
67
68// SAFETY: `slot` is only written while no job is in flight (run()
69// returns after `remaining` hits 0) and only read after the epoch
70// publication that follows the write.
71unsafe impl Sync for Inner {}
72
73/// Process-wide dispatch counter (roadmap §3 P0 «измерения»): one tick
74/// per published job. `bench --json` reports dispatches/token from it.
75static DISPATCHES: AtomicUsize = AtomicUsize::new(0);
76
77/// Total pool jobs published since process start (all pools).
78pub fn dispatch_count() -> usize {
79 DISPATCHES.load(Ordering::Relaxed)
80}
81
82/// Persistent thread pool: shared job slot, epoch dispatch, caller
83/// participation.
84pub struct Pool {
85 inner: Arc<Inner>,
86 /// Thread handles for `unpark` (same order as `parked`).
87 threads: Vec<std::thread::Thread>,
88 joins: Vec<std::thread::JoinHandle<()>>,
89}
90
91fn spin_budget_from_env() -> usize {
92 std::env::var("CMF_POOL_SPIN")
93 .ok()
94 .and_then(|v| v.parse::<usize>().ok())
95 .unwrap_or(4000)
96}
97
98/// Rows per chunk: enough chunks to balance, large enough to keep the SDOT
99/// inner loop and the prefetcher in their stride — and never so coarse that
100/// ONE worker takes the whole job.
101///
102/// That last clause was missing. The floor was a flat 32, so any job with
103/// fewer than 32 rows went entirely to whichever worker grabbed the cursor
104/// first while the other 48 were woken, found nothing, and left. The
105/// hyper-connection projection has 24 rows and is called 86 times a token:
106/// it paid the full price of a fan-out and ran single-threaded.
107fn grain_for(rows: usize, workers: usize) -> usize {
108 if rows == 0 || workers <= 1 {
109 return rows.max(1);
110 }
111 let balanced = (rows / (workers * 8)).max(32);
112 // One chunk per worker at the very least.
113 balanced.min(rows.div_ceil(workers)).max(1)
114}
115
116impl Pool {
117 pub fn new(n_workers: usize) -> Self {
118 Self::with_spin(n_workers, spin_budget_from_env())
119 }
120
121 /// Explicit spin budget (tests pin it without touching the env).
122 pub fn with_spin(n_workers: usize, spin_budget: usize) -> Self {
123 let inner = Arc::new(Inner {
124 epoch: AtomicUsize::new(0),
125 remaining: AtomicUsize::new(0),
126 slot: UnsafeCell::new(None),
127 shutdown: AtomicBool::new(false),
128 spin_budget,
129 parked: (0..n_workers).map(|_| AtomicBool::new(false)).collect(),
130 });
131 let mut joins = Vec::with_capacity(n_workers);
132 if let Ok(mut tids) = WORKER_TIDS.lock() {
133 tids.clear();
134 }
135 for w in 0..n_workers {
136 let inner = inner.clone();
137 let h = std::thread::Builder::new()
138 .name(format!("cmf-pool-{w}"))
139 .spawn(move || {
140 #[cfg(any(target_os = "android", target_os = "linux"))]
141 if let Ok(mut tids) = WORKER_TIDS.lock() {
142 tids.push(unsafe { libc::gettid() } as i32);
143 }
144 worker_loop(&inner, w)
145 })
146 .expect("spawn pool worker");
147 joins.push(h);
148 }
149 // Registration barrier: `spawn` returns before the closure runs,
150 // and the embedder reads `cortiq_worker_tids` right after load —
151 // on a phone only the first worker had registered by then (the
152 // '· 1 threads' About line that misled the cmfmobile device
153 // investigation twice). Thread start is milliseconds; wait for
154 // every tid before construction returns.
155 #[cfg(any(target_os = "android", target_os = "linux"))]
156 while WORKER_TIDS.lock().map(|t| t.len()).unwrap_or(n_workers) < n_workers {
157 std::thread::yield_now();
158 }
159 let threads = joins.iter().map(|h| h.thread().clone()).collect();
160 Self {
161 inner,
162 threads,
163 joins,
164 }
165 }
166
167 /// Big-core count on heterogeneous ARM (big.LITTLE): the kernel
168 /// exposes per-core capacity on Android and most ARM Linux; efficiency
169 /// cores in the pool DRAG the big ones on our row-parallel jobs (the
170 /// same cliff llama.cpp hits at -t 10 on an M4: 163 → 112 tok/s).
171 /// None = capacities absent or homogeneous.
172 #[cfg(all(
173 target_arch = "aarch64",
174 any(target_os = "linux", target_os = "android")
175 ))]
176 fn big_cores() -> Option<usize> {
177 Self::cores_from_capacities(&core_capacities())
178 }
179
180 /// How many cores the pool should use, from the kernel's per-core
181 /// capacity values. Capacity folds µarch × clock into one number,
182 /// and the two need different treatment: cores of ANOTHER µarch
183 /// (A5xx efficiency cluster next to A7xx/X: capacity ratio ≥ ~2)
184 /// drag row-parallel work down and are excluded; cores of the SAME
185 /// µarch merely clock-binned (JLQ JR510: 8×A55 as 4×2.0 + 4×1.5 GHz,
186 /// ratio 1.33) pull their weight and must ALL be used. The 1.6
187 /// threshold splits the two regimes: on a Snapdragon 8-class part
188 /// it keeps X + A7xx mid cores and drops A5xx.
189 #[cfg_attr(
190 not(all(
191 target_arch = "aarch64",
192 any(target_os = "linux", target_os = "android")
193 )),
194 allow(dead_code)
195 )]
196 fn cores_from_capacities(caps: &[u64]) -> Option<usize> {
197 let max = *caps.iter().max()?;
198 let min = *caps.iter().min()?;
199 if caps.len() < 2 || max == min {
200 return None;
201 }
202 Some(caps.iter().filter(|&&c| c * 8 >= max * 5).count())
203 }
204
205 #[cfg(target_os = "macos")]
206 fn big_cores() -> Option<usize> {
207 unsafe extern "C" {
208 fn sysctlbyname(
209 name: *const std::ffi::c_char,
210 oldp: *mut std::ffi::c_void,
211 oldlenp: *mut usize,
212 newp: *mut std::ffi::c_void,
213 newlen: usize,
214 ) -> std::ffi::c_int;
215 }
216 unsafe {
217 let name = std::ffi::CString::new("hw.perflevel0.physicalcpu").ok()?;
218 let mut count: i32 = 0;
219 let mut size = std::mem::size_of::<i32>();
220 let ret = sysctlbyname(
221 name.as_ptr(),
222 &mut count as *mut i32 as *mut std::ffi::c_void,
223 &mut size,
224 std::ptr::null_mut(),
225 0,
226 );
227 if ret == 0 && count > 0 {
228 Some(count as usize)
229 } else {
230 None
231 }
232 }
233 }
234
235 #[cfg(not(any(
236 all(
237 target_arch = "aarch64",
238 any(target_os = "linux", target_os = "android")
239 ),
240 target_os = "macos"
241 )))]
242 fn big_cores() -> Option<usize> {
243 None
244 }
245
246 /// The thread count `from_env` would use RIGHT NOW: forced (C ABI)
247 /// > CMF_THREADS > big-core topology > available_parallelism−1.
248 /// ≤1 means the model runs serial (no pool). Introspection
249 /// (`execution_mode`, status endpoints) must report THIS, not
250 /// available_parallelism.
251 pub fn effective_threads() -> usize {
252 let forced = FORCED_THREADS.load(std::sync::atomic::Ordering::Relaxed);
253 if forced > 0 {
254 return forced;
255 }
256 match std::env::var("CMF_THREADS") {
257 Ok(v) => v.parse::<usize>().unwrap_or(0),
258 Err(_) => match Self::big_cores() {
259 Some(big) => big,
260 None => {
261 // The cap was 8, which left big machines idle: on a
262 // 256-core EPYC, Nanbeige 4.2 decoded at 7.4 tok/s on
263 // the default 8 threads and 14.8 at 32, with prefill
264 // 12 -> ~16 over the same move. Past ~32 it falls off
265 // hard (5.5 at 64, 1.6 at 256) — decode is
266 // memory-bound and the extra threads only add
267 // dispatch barriers — so 32 is a ceiling, not a
268 // target. Machines with 9 cores or fewer are
269 // unaffected: avail-1 already bounds them.
270 let avail = std::thread::available_parallelism()
271 .map(|n| n.get())
272 .unwrap_or(1);
273 avail.saturating_sub(1).min(32)
274 }
275 },
276 }
277 }
278
279 /// Pool sized from `CMF_THREADS` (see module docs). `None` = serial.
280 /// Without the env, heterogeneous ARM defaults to its BIG cores.
281 pub fn from_env() -> Option<Arc<Self>> {
282 let n = Self::effective_threads();
283 if n <= 1 {
284 None
285 } else {
286 Some(Arc::new(Self::new(n)))
287 }
288 }
289
290 /// Spawned worker threads (the caller joins each job on top).
291 pub fn n_workers(&self) -> usize {
292 self.threads.len()
293 }
294
295 /// Run `f(row_start, row_end)` over `0..rows`, self-balancing.
296 ///
297 /// One dispatch, but workers pull row-ranges from a shared cursor
298 /// instead of each taking a fixed 1/n slice. On a heterogeneous CPU
299 /// (Apple Silicon: 4 P-cores + 6 E-cores here) a static split makes
300 /// every matvec end at the SLOWEST core's pace while the fast ones
301 /// idle at the barrier; pulling by grain lets a P-core take several
302 /// chunks for each one an E-core takes, so skew collapses to a
303 /// single grain. Row ranges stay disjoint and each row's dot is
304 /// computed exactly as in the serial path → bit-identical output.
305 pub fn run_rows(&self, rows: usize, f: &(dyn Fn(usize, usize) + Sync)) {
306 let grain = grain_for(rows, self.threads.len() + 1);
307 let next = AtomicUsize::new(0);
308 self.run(&|_w, _n| loop {
309 let start = next.fetch_add(grain, Ordering::Relaxed);
310 if start >= rows {
311 break;
312 }
313 f(start, (start + grain).min(rows));
314 });
315 }
316
317 /// Multi-matrix job: one dispatch serves SEVERAL row spaces
318 /// (roadmap §3 P0 — «одна внешняя публикация job на слой»). Parts
319 /// are laid out back-to-back in a virtual row space and pulled by
320 /// grain from one shared cursor, so QKV or gate+up cost a single
321 /// barrier instead of one each. Each part's `f(start, end)` sees its
322 /// OWN row indices — per-row math and outputs are bit-identical to
323 /// separate `run_rows` calls.
324 pub fn run_many(&self, parts: &[(usize, &(dyn Fn(usize, usize) + Sync))]) {
325 let total: usize = parts.iter().map(|p| p.0).sum();
326 if total == 0 {
327 return;
328 }
329 let grain = grain_for(total, self.threads.len() + 1);
330 let next = AtomicUsize::new(0);
331 self.run(&|_w, _n| loop {
332 let s = next.fetch_add(grain, Ordering::Relaxed);
333 if s >= total {
334 break;
335 }
336 let e = (s + grain).min(total);
337 let mut base = 0usize;
338 for &(rows, f) in parts {
339 let a = s.max(base);
340 let b = e.min(base + rows);
341 if a < b {
342 f(a - base, b - base);
343 }
344 base += rows;
345 if base >= e {
346 break;
347 }
348 }
349 });
350 }
351
352 /// Run `f(worker_idx, n_participants)` on every worker AND the
353 /// calling thread (`worker_idx = n_workers()` for the caller);
354 /// returns when all participants have finished.
355 pub fn run(&self, f: &(dyn Fn(usize, usize) + Sync)) {
356 DISPATCHES.fetch_add(1, Ordering::Relaxed);
357 let nw = self.threads.len();
358 let n = nw + 1; // caller participates
359 // SAFETY: the wait loop below blocks until every worker is done,
360 // so extending the borrow to 'static never outlives the call.
361 let ptr: *const (dyn Fn(usize, usize) + Sync) = f;
362 let ptr: *const (dyn Fn(usize, usize) + Sync + 'static) =
363 unsafe { std::mem::transmute(ptr) };
364 // SAFETY: no job in flight (previous run() drained `remaining`),
365 // so the slot is not being read.
366 unsafe { *self.inner.slot.get() = Some((TaskPtr(ptr), n)) };
367 self.inner.remaining.store(nw, Ordering::Relaxed);
368 self.inner.epoch.fetch_add(1, Ordering::SeqCst);
369 for (i, t) in self.threads.iter().enumerate() {
370 if self.inner.parked[i].load(Ordering::SeqCst) {
371 t.unpark();
372 }
373 }
374
375 // The caller's share — the barrier costs nothing while there is
376 // real work to do.
377 f(nw, n);
378
379 // Wait for the stragglers (bounded by one worker's chunk).
380 let mut spins = 0usize;
381 while self.inner.remaining.load(Ordering::Acquire) != 0 {
382 spins += 1;
383 if spins < 10_000 {
384 std::hint::spin_loop();
385 } else {
386 std::thread::yield_now();
387 }
388 }
389 }
390}
391
392impl Drop for Pool {
393 fn drop(&mut self) {
394 self.inner.shutdown.store(true, Ordering::SeqCst);
395 for t in &self.threads {
396 t.unpark();
397 }
398 for h in self.joins.drain(..) {
399 let _ = h.join();
400 }
401 }
402}
403
404/// Per-core capacity: the kernel's `cpu_capacity` (µarch × clock) when
405/// EAS exposes it, else `cpufreq/cpuinfo_max_freq` — same cluster
406/// ordering, so the 62.5% big-core rule keeps working on EAS-less
407/// kernels (TUNING.md open item: pinning silently did nothing there).
408#[cfg(any(
409 target_os = "android",
410 all(target_arch = "aarch64", target_os = "linux")
411))]
412fn core_capacities() -> Vec<u64> {
413 let read_all = |leaf: &str| -> Vec<u64> {
414 let mut vals = Vec::new();
415 for cpu in 0.. {
416 let path = format!("/sys/devices/system/cpu/cpu{cpu}/{leaf}");
417 match std::fs::read_to_string(&path) {
418 Ok(v) => match v.trim().parse() {
419 Ok(x) => vals.push(x),
420 Err(_) => break,
421 },
422 Err(_) => break,
423 }
424 }
425 vals
426 };
427 let caps = read_all("cpu_capacity");
428 if caps.len() >= 2 {
429 return caps;
430 }
431 read_all("cpufreq/cpuinfo_max_freq")
432}
433
434#[cfg(target_os = "android")]
435fn pin_thread_to_big_cores() {
436 use std::mem;
437 let caps = core_capacities();
438 let max = caps.iter().copied().max().unwrap_or(0);
439 let min = caps.iter().copied().min().unwrap_or(0);
440
441 // Only pin if heterogeneous
442 if caps.len() < 2 || max == min {
443 return;
444 }
445
446 unsafe {
447 let mut set: libc::cpu_set_t = mem::zeroed();
448 for (i, &c) in caps.iter().enumerate() {
449 if c * 8 >= max * 5 {
450 libc::CPU_SET(i, &mut set);
451 }
452 }
453 libc::sched_setaffinity(0, mem::size_of::<libc::cpu_set_t>(), &set);
454 }
455}
456
457fn worker_loop(inner: &Inner, idx: usize) {
458 #[cfg(target_os = "android")]
459 pin_thread_to_big_cores();
460
461 // The pool is created at epoch 0; baseline MUST be 0, not a fresh
462 // epoch read — if the caller publishes a job before the OS actually
463 // starts this thread, reading the live epoch would adopt that job's
464 // epoch as "already seen", skip it, and deadlock the caller's wait.
465 let mut seen = 0usize;
466 loop {
467 // Wait for a new epoch: spin first (decode publishes the next
468 // matvec within microseconds), park only when idle for real.
469 let mut spins = 0usize;
470 loop {
471 let e = inner.epoch.load(Ordering::Acquire);
472 if e != seen {
473 seen = e;
474 break;
475 }
476 if inner.shutdown.load(Ordering::Relaxed) {
477 return;
478 }
479 if spins < inner.spin_budget {
480 spins += 1;
481 std::hint::spin_loop();
482 } else {
483 inner.parked[idx].store(true, Ordering::SeqCst);
484 // Re-check under SeqCst: the caller bumps the epoch
485 // BEFORE reading `parked`, so either it sees our flag
486 // (and unparks) or we see its epoch here — a missed
487 // wakeup is impossible. Spurious unparks just loop.
488 if inner.epoch.load(Ordering::SeqCst) == seen
489 && !inner.shutdown.load(Ordering::Relaxed)
490 {
491 std::thread::park();
492 }
493 inner.parked[idx].store(false, Ordering::SeqCst);
494 }
495 }
496 // SAFETY: the slot was written before the epoch bump we just
497 // observed (release/acquire), and stays valid until `remaining`
498 // drops to zero — which happens only after `f` returns below.
499 let (task, n) = unsafe { (*inner.slot.get()).expect("job published with epoch") };
500 let f = unsafe { &*task.0 };
501 f(idx, n);
502 inner.remaining.fetch_sub(1, Ordering::AcqRel);
503 }
504}
505
506/// Row-parallel dense matvec: `out[o] = Σ_j w[o·in + j]·x[j]`.
507/// Bit-identical to the serial loop (row order does not change math).
508pub fn matvec_rows(pool: Option<&Pool>, w: &[f32], x: &[f32], out: &mut [f32]) {
509 let in_dim = x.len();
510 let out_dim = out.len();
511 debug_assert!(w.len() >= out_dim * in_dim);
512
513 let row_dot = |o: usize| -> f32 {
514 let row = &w[o * in_dim..(o + 1) * in_dim];
515 let mut sum = 0.0f32;
516 for j in 0..in_dim {
517 sum += row[j] * x[j];
518 }
519 sum
520 };
521
522 match pool {
523 Some(pool) if out_dim >= 256 => {
524 let out_addr = SendMut(out.as_mut_ptr());
525 let run_range = move |start: usize, end: usize| {
526 for o in start..end {
527 unsafe { *out_addr.at(o) = row_dot(o) };
528 }
529 };
530 pool.run_rows(out_dim, &run_range);
531 }
532 _ => {
533 for (o, dst) in out.iter_mut().enumerate() {
534 *dst = row_dot(o);
535 }
536 }
537 }
538}
539
540/// Two-input row matvec: one pass over the weight rows serves BOTH
541/// inputs — CPU decode is memory-bound, so the second position costs a
542/// fraction of the first (this is where MTP speculative verify wins).
543/// Per-output accumulation order matches the single-input path exactly
544/// → bit-identical results.
545pub fn matvec_rows2(
546 pool: Option<&Pool>,
547 w: &[f32],
548 x1: &[f32],
549 x2: &[f32],
550 out1: &mut [f32],
551 out2: &mut [f32],
552) {
553 let in_dim = x1.len();
554 debug_assert_eq!(x2.len(), in_dim);
555 let out_dim = out1.len();
556 debug_assert_eq!(out2.len(), out_dim);
557 debug_assert!(w.len() >= out_dim * in_dim);
558
559 let row_dots = |o: usize| -> (f32, f32) {
560 let row = &w[o * in_dim..(o + 1) * in_dim];
561 let (mut s1, mut s2) = (0.0f32, 0.0f32);
562 for j in 0..in_dim {
563 s1 += row[j] * x1[j];
564 s2 += row[j] * x2[j];
565 }
566 (s1, s2)
567 };
568
569 match pool {
570 Some(pool) if out_dim >= 256 => {
571 let o1 = SendMut(out1.as_mut_ptr());
572 let o2 = SendMut(out2.as_mut_ptr());
573 let run_range = move |start: usize, end: usize| {
574 for o in start..end {
575 let (s1, s2) = row_dots(o);
576 unsafe {
577 *o1.at(o) = s1;
578 *o2.at(o) = s2;
579 }
580 }
581 };
582 pool.run_rows(out_dim, &run_range);
583 }
584 _ => {
585 for o in 0..out_dim {
586 let (s1, s2) = row_dots(o);
587 out1[o] = s1;
588 out2[o] = s2;
589 }
590 }
591 }
592}
593
594#[derive(Clone, Copy)]
595pub(crate) struct SendMut(*mut f32);
596unsafe impl Send for SendMut {}
597unsafe impl Sync for SendMut {}
598
599impl SendMut {
600 /// The caller promises the threads it hands this to write disjoint
601 /// indices, and that the pointee outlives them.
602 #[inline]
603 pub(crate) fn new(p: *mut f32) -> Self {
604 Self(p)
605 }
606
607 /// Method receiver forces the closure to capture the whole (Sync)
608 /// wrapper, not the bare `*mut f32` field (edition-2021 precise capture).
609 #[inline]
610 pub(crate) fn at(self, i: usize) -> *mut f32 {
611 unsafe { self.0.add(i) }
612 }
613}
614
615#[cfg(test)]
616mod tests {
617 #[test]
618 #[cfg(any(target_os = "android", target_os = "linux"))]
619 fn worker_tids_registered_before_new_returns() {
620 // WORKER_TIDS is a process-global registry, and the test harness
621 // runs suites in parallel — other tests' pools add their tids to
622 // the same list (19 showed up on a 48-core box where the old
623 // `== 3` held on a laptop by timing luck). Assert on the DELTA:
624 // our pool's three workers must be there the moment new returns.
625 // Counting LENGTHS raced: a parallel suite dropping its pool
626 // shrinks the same registry between the two reads, and the delta
627 // goes negative through no fault of ours (this flake failed two
628 // releases). Compare SETS instead — removals elsewhere cannot
629 // take away tids that were not there before.
630 use std::collections::HashSet;
631 let before: HashSet<_> = super::WORKER_TIDS.lock().unwrap().iter().copied().collect();
632 let _p = super::Pool::new(3);
633 let after: HashSet<_> = super::WORKER_TIDS.lock().unwrap().iter().copied().collect();
634 let fresh = after.difference(&before).count();
635 assert!(
636 fresh >= 3,
637 "all worker tids must be visible the moment the pool exists \
638 (fresh {fresh}, before {}, after {})",
639 before.len(),
640 after.len()
641 );
642 }
643
644 #[test]
645 fn forced_threads_overrides_env_and_topology() {
646 use std::sync::atomic::Ordering;
647 super::FORCED_THREADS.store(3, Ordering::Relaxed);
648 let pool = super::Pool::from_env().expect("forced 3 → pool");
649 assert_eq!(pool.n_workers(), 3);
650 super::FORCED_THREADS.store(1, Ordering::Relaxed);
651 assert!(super::Pool::from_env().is_none(), "forced 1 → serial");
652 super::FORCED_THREADS.store(0, Ordering::Relaxed);
653 }
654
655 #[test]
656 fn capacity_split_clock_bins_vs_microarch() {
657 type P = super::Pool;
658 // JR510: all-A55, two clock bins — use every core.
659 assert_eq!(
660 P::cores_from_capacities(&[1024, 1024, 1024, 1024, 768, 768, 768, 768]),
661 Some(8)
662 );
663 // Classic big.LITTLE (A78 + A55) — big only.
664 assert_eq!(
665 P::cores_from_capacities(&[1024, 1024, 1024, 1024, 350, 350, 350, 350]),
666 Some(4)
667 );
668 // Three-tier flagship: X + A7xx mids stay, A5xx littles go.
669 assert_eq!(
670 P::cores_from_capacities(&[1024, 800, 800, 800, 800, 300, 300, 300]),
671 Some(5)
672 );
673 // Uniform: no signal, caller falls back.
674 assert_eq!(P::cores_from_capacities(&[1024; 8]), None);
675 assert_eq!(P::cores_from_capacities(&[]), None);
676 }
677
678 use super::*;
679
680 #[test]
681 fn parallel_matvec_equals_serial_bitexact() {
682 let (out_dim, in_dim) = (512, 64);
683 let w: Vec<f32> = (0..out_dim * in_dim)
684 .map(|i| (i as f32 * 0.013).sin())
685 .collect();
686 let x: Vec<f32> = (0..in_dim).map(|i| (i as f32 * 0.07).cos()).collect();
687
688 let mut serial = vec![0.0f32; out_dim];
689 matvec_rows(None, &w, &x, &mut serial);
690
691 let pool = Pool::new(4);
692 let mut parallel = vec![0.0f32; out_dim];
693 matvec_rows(Some(&pool), &w, &x, &mut parallel);
694
695 assert_eq!(serial, parallel, "row-parallel must be bit-identical");
696 }
697
698 #[test]
699 fn fused_pair_equals_two_singles_bitexact() {
700 let (out_dim, in_dim) = (300, 48);
701 let w: Vec<f32> = (0..out_dim * in_dim)
702 .map(|i| (i as f32 * 0.011).sin())
703 .collect();
704 let x1: Vec<f32> = (0..in_dim).map(|i| (i as f32 * 0.03).cos()).collect();
705 let x2: Vec<f32> = (0..in_dim).map(|i| (i as f32 * 0.09).sin()).collect();
706
707 let mut a1 = vec![0.0f32; out_dim];
708 let mut a2 = vec![0.0f32; out_dim];
709 matvec_rows(None, &w, &x1, &mut a1);
710 matvec_rows(None, &w, &x2, &mut a2);
711
712 for pool in [None, Some(Pool::new(3))] {
713 let mut b1 = vec![0.0f32; out_dim];
714 let mut b2 = vec![0.0f32; out_dim];
715 matvec_rows2(pool.as_ref(), &w, &x1, &x2, &mut b1, &mut b2);
716 assert_eq!(a1, b1, "fused lane 1 must be bit-identical");
717 assert_eq!(a2, b2, "fused lane 2 must be bit-identical");
718 }
719 }
720
721 #[test]
722 fn pool_survives_many_runs() {
723 let pool = Pool::new(3);
724 let counter = AtomicUsize::new(0);
725 for _ in 0..100 {
726 pool.run(&|_, _| {
727 counter.fetch_add(1, Ordering::Relaxed);
728 });
729 }
730 // 3 workers + the participating caller = 4 executions per run.
731 assert_eq!(counter.load(Ordering::Relaxed), 400);
732 }
733
734 #[test]
735 fn pool_wakes_after_park() {
736 // Force immediate parking (no spin) — the epoch/parked handshake
737 // must still never miss a wakeup.
738 let pool = Pool::with_spin(2, 0);
739 let counter = AtomicUsize::new(0);
740 for _ in 0..50 {
741 pool.run(&|_, _| {
742 counter.fetch_add(1, Ordering::Relaxed);
743 });
744 // Give workers time to actually park between jobs.
745 std::thread::sleep(std::time::Duration::from_micros(200));
746 }
747 assert_eq!(counter.load(Ordering::Relaxed), 150);
748 }
749
750 #[test]
751 fn worker_indices_are_distinct_and_cover_range() {
752 let pool = Pool::new(3);
753 let hits: Vec<AtomicUsize> = (0..4).map(|_| AtomicUsize::new(0)).collect();
754 for _ in 0..20 {
755 pool.run(&|widx, n| {
756 assert_eq!(n, 4);
757 hits[widx].fetch_add(1, Ordering::Relaxed);
758 });
759 }
760 for (i, h) in hits.iter().enumerate() {
761 assert_eq!(h.load(Ordering::Relaxed), 20, "participant {i} missed runs");
762 }
763 }
764}
765
766#[cfg(test)]
767mod grain_tests {
768 use super::grain_for;
769
770 #[test]
771 fn a_short_job_still_reaches_every_worker() {
772 // 24 rows, 49 workers: the old flat floor of 32 handed all 24 to the
773 // first worker and woke the rest for nothing.
774 assert_eq!(grain_for(24, 49), 1);
775 // Wide jobs keep the stride the SDOT loop wants.
776 assert_eq!(grain_for(4096, 49), 32);
777 assert_eq!(grain_for(32768, 49), 83);
778 // Degenerate shapes must not divide by zero or return zero.
779 assert_eq!(grain_for(0, 49), 1);
780 assert_eq!(grain_for(7, 1), 7);
781 assert!(grain_for(1, 49) >= 1);
782 }
783}