source: libcfa/src/concurrency/locks.cfa@ c4f411e

ADT ast-experimental
Last change on this file since c4f411e was beeff61e, checked in by caparsons <caparson@…>, 2 years ago

some cleanup and a bunch of changes to support waituntil statement

  • Property mode set to 100644
File size: 20.7 KB
Line 
1//
2// Cforall Version 1.0.0 Copyright (C) 2021 University of Waterloo
3//
4// The contents of this file are covered under the licence agreement in the
5// file "LICENCE" distributed with Cforall.
6//
7// locks.hfa -- LIBCFATHREAD
8// Runtime locks that used with the runtime thread system.
9//
10// Author : Colby Alexander Parsons
11// Created On : Thu Jan 21 19:46:50 2021
12// Last Modified By :
13// Last Modified On :
14// Update Count :
15//
16
17#define __cforall_thread__
18
19#include "locks.hfa"
20#include "kernel/private.hfa"
21
22#include <kernel.hfa>
23#include <stdlib.hfa>
24
25#pragma GCC visibility push(default)
26
27//-----------------------------------------------------------------------------
28// info_thread
29forall(L & | is_blocking_lock(L)) {
30 struct info_thread {
31 // used to put info_thread on a dl queue
32 inline dlink(info_thread(L));
33
34 // waiting thread
35 struct thread$ * t;
36
37 // shadow field
38 uintptr_t info;
39
40 // lock that is passed to wait() (if one is passed)
41 L * lock;
42
43 // true when signalled and false when timeout wakes thread
44 bool signalled;
45 };
46 P9_EMBEDDED( info_thread(L), dlink(info_thread(L)) )
47
48 void ?{}( info_thread(L) & this, thread$ * t, uintptr_t info, L * l ) {
49 this.t = t;
50 this.info = info;
51 this.lock = l;
52 }
53
54 void ^?{}( info_thread(L) & this ) {}
55}
56
57//-----------------------------------------------------------------------------
58// Blocking Locks
59void ?{}( blocking_lock & this, bool multi_acquisition, bool strict_owner ) {
60 this.lock{};
61 this.blocked_threads{};
62 this.wait_count = 0;
63 this.multi_acquisition = multi_acquisition;
64 this.strict_owner = strict_owner;
65 this.owner = 0p;
66 this.recursion_count = 0;
67}
68
69void ^?{}( blocking_lock & this ) {}
70
71
72void lock( blocking_lock & this ) with( this ) {
73 lock( lock __cfaabi_dbg_ctx2 );
74 thread$ * thrd = active_thread();
75
76 // single acquisition lock is held by current thread
77 /* paranoid */ verifyf( owner != thrd || multi_acquisition, "Single acquisition lock holder (%p) attempted to reacquire the lock %p resulting in a deadlock.", owner, &this );
78
79 // lock is held by some other thread
80 if ( owner != 0p && owner != thrd ) {
81 select_node node;
82 insert_last( blocked_threads, node );
83 wait_count++;
84 unlock( lock );
85 park( );
86 return;
87 } else if ( owner == thrd && multi_acquisition ) { // multi acquisition lock is held by current thread
88 recursion_count++;
89 } else { // lock isn't held
90 owner = thrd;
91 recursion_count = 1;
92 }
93 unlock( lock );
94}
95
96bool try_lock( blocking_lock & this ) with( this ) {
97 bool ret = false;
98 lock( lock __cfaabi_dbg_ctx2 );
99
100 // lock isn't held
101 if ( owner == 0p ) {
102 owner = active_thread();
103 recursion_count = 1;
104 ret = true;
105 }
106 // multi acquisition lock is held by current thread
107 else if ( owner == active_thread() && multi_acquisition ) {
108 recursion_count++;
109 ret = true;
110 }
111
112 unlock( lock );
113 return ret;
114}
115
116// static void pop_and_set_new_owner( blocking_lock & this ) with( this ) {
117// thread$ * t = &try_pop_front( blocked_threads );
118// owner = t;
119// recursion_count = ( t ? 1 : 0 );
120// if ( t ) wait_count--;
121// unpark( t );
122// }
123
124static inline void pop_node( blocking_lock & this ) with( this ) {
125 __handle_waituntil_OR( blocked_threads );
126 select_node * node = &try_pop_front( blocked_threads );
127 if ( node ) {
128 wait_count--;
129 owner = node->blocked_thread;
130 recursion_count = 1;
131 // if ( !node->clause_status || __make_select_node_available( *node ) ) unpark( node->blocked_thread );
132 wake_one( blocked_threads, *node );
133 } else {
134 owner = 0p;
135 recursion_count = 0;
136 }
137}
138
139void unlock( blocking_lock & this ) with( this ) {
140 lock( lock __cfaabi_dbg_ctx2 );
141 /* paranoid */ verifyf( owner != 0p, "Attempt to release lock %p that isn't held", &this );
142 /* paranoid */ verifyf( owner == active_thread() || !strict_owner , "Thread %p other than the owner %p attempted to release owner lock %p", owner, active_thread(), &this );
143 /* paranoid */ verifyf( recursion_count == 1 || multi_acquisition, "Thread %p attempted to release owner lock %p which is not recursive but has a recursive count of %zu", active_thread(), &this, recursion_count );
144
145 // if recursion count is zero release lock and set new owner if one is waiting
146 recursion_count--;
147 if ( recursion_count == 0 ) {
148 pop_node( this );
149 }
150 unlock( lock );
151}
152
153size_t wait_count( blocking_lock & this ) with( this ) {
154 return wait_count;
155}
156
157void on_notify( blocking_lock & this, thread$ * t ) with( this ) {
158 lock( lock __cfaabi_dbg_ctx2 );
159 // lock held
160 if ( owner != 0p ) {
161 insert_last( blocked_threads, *(select_node *)t->link_node );
162 wait_count++;
163 }
164 // lock not held
165 else {
166 owner = t;
167 recursion_count = 1;
168 unpark( t );
169 }
170 unlock( lock );
171}
172
173size_t on_wait( blocking_lock & this ) with( this ) {
174 lock( lock __cfaabi_dbg_ctx2 );
175 /* paranoid */ verifyf( owner != 0p, "Attempt to release lock %p that isn't held", &this );
176 /* paranoid */ verifyf( owner == active_thread() || !strict_owner, "Thread %p other than the owner %p attempted to release owner lock %p", owner, active_thread(), &this );
177
178 size_t ret = recursion_count;
179
180 pop_node( this );
181
182 select_node node;
183 active_thread()->link_node = (void *)&node;
184 unlock( lock );
185
186 park();
187
188 return ret;
189}
190
191void on_wakeup( blocking_lock & this, size_t recursion ) with( this ) {
192 recursion_count = recursion;
193}
194
195// waituntil() support
196bool register_select( blocking_lock & this, select_node & node ) with(this) {
197 lock( lock __cfaabi_dbg_ctx2 );
198 thread$ * thrd = active_thread();
199
200 // single acquisition lock is held by current thread
201 /* paranoid */ verifyf( owner != thrd || multi_acquisition, "Single acquisition lock holder (%p) attempted to reacquire the lock %p resulting in a deadlock.", owner, &this );
202
203 if ( !node.park_counter && ( (owner == thrd && multi_acquisition) || owner == 0p ) ) { // OR special case
204 if ( !__make_select_node_available( node ) ) { // we didn't win the race so give up on registering
205 unlock( lock );
206 return false;
207 }
208 }
209
210 // lock is held by some other thread
211 if ( owner != 0p && owner != thrd ) {
212 insert_last( blocked_threads, node );
213 wait_count++;
214 unlock( lock );
215 return false;
216 } else if ( owner == thrd && multi_acquisition ) { // multi acquisition lock is held by current thread
217 recursion_count++;
218 } else { // lock isn't held
219 owner = thrd;
220 recursion_count = 1;
221 }
222
223 if ( node.park_counter ) __make_select_node_available( node );
224 unlock( lock );
225 return true;
226}
227
228bool unregister_select( blocking_lock & this, select_node & node ) with(this) {
229 lock( lock __cfaabi_dbg_ctx2 );
230 if ( node`isListed ) {
231 remove( node );
232 wait_count--;
233 unlock( lock );
234 return false;
235 }
236
237 if ( owner == active_thread() ) {
238 /* paranoid */ verifyf( recursion_count == 1 || multi_acquisition, "Thread %p attempted to unlock owner lock %p in waituntil unregister, which is not recursive but has a recursive count of %zu", active_thread(), &this, recursion_count );
239 // if recursion count is zero release lock and set new owner if one is waiting
240 recursion_count--;
241 if ( recursion_count == 0 ) {
242 pop_node( this );
243 }
244 }
245 unlock( lock );
246 return false;
247}
248
249bool on_selected( blocking_lock & this, select_node & node ) { return true; }
250
251//-----------------------------------------------------------------------------
252// alarm node wrapper
253forall(L & | is_blocking_lock(L)) {
254 struct alarm_node_wrap {
255 alarm_node_t alarm_node;
256 condition_variable(L) * cond;
257 info_thread(L) * info_thd;
258 };
259
260 void ?{}( alarm_node_wrap(L) & this, Duration alarm, Duration period, Alarm_Callback callback, condition_variable(L) * c, info_thread(L) * i ) {
261 this.alarm_node{ callback, alarm, period };
262 this.cond = c;
263 this.info_thd = i;
264 }
265
266 void ^?{}( alarm_node_wrap(L) & this ) { }
267
268 static void timeout_handler ( alarm_node_wrap(L) & this ) with( this ) {
269 // This condition_variable member is called from the kernel, and therefore, cannot block, but it can spin.
270 lock( cond->lock __cfaabi_dbg_ctx2 );
271
272 // this check is necessary to avoid a race condition since this timeout handler
273 // may still be called after a thread has been removed from the queue but
274 // before the alarm is unregistered
275 if ( (*info_thd)`isListed ) { // is thread on queue
276 info_thd->signalled = false;
277 // remove this thread O(1)
278 remove( *info_thd );
279 cond->count--;
280 if( info_thd->lock ) {
281 // call lock's on_notify if a lock was passed
282 on_notify(*info_thd->lock, info_thd->t);
283 } else {
284 // otherwise wake thread
285 unpark( info_thd->t );
286 }
287 }
288 unlock( cond->lock );
289 }
290
291 // this casts the alarm node to our wrapped type since we used type erasure
292 static void alarm_node_wrap_cast( alarm_node_t & a ) { timeout_handler( (alarm_node_wrap(L) &)a ); }
293
294 struct pthread_alarm_node_wrap {
295 alarm_node_t alarm_node;
296 pthread_cond_var(L) * cond;
297 info_thread(L) * info_thd;
298 };
299
300 void ?{}( pthread_alarm_node_wrap(L) & this, Duration alarm, Duration period, Alarm_Callback callback, pthread_cond_var(L) * c, info_thread(L) * i ) {
301 this.alarm_node{ callback, alarm, period };
302 this.cond = c;
303 this.info_thd = i;
304 }
305
306 void ^?{}( pthread_alarm_node_wrap(L) & this ) { }
307
308 static void timeout_handler ( pthread_alarm_node_wrap(L) & this ) with( this ) {
309 // This pthread_cond_var member is called from the kernel, and therefore, cannot block, but it can spin.
310 lock( cond->lock __cfaabi_dbg_ctx2 );
311 // this check is necessary to avoid a race condition since this timeout handler
312 // may still be called after a thread has been removed from the queue but
313 // before the alarm is unregistered
314 if ( (*info_thd)`isListed ) { // is thread on queue
315 info_thd->signalled = false;
316 // remove this thread O(1)
317 remove( *info_thd );
318 on_notify(*info_thd->lock, info_thd->t);
319 }
320 unlock( cond->lock );
321 }
322
323 // this casts the alarm node to our wrapped type since we used type erasure
324 static void pthread_alarm_node_wrap_cast( alarm_node_t & a ) { timeout_handler( (pthread_alarm_node_wrap(L) &)a ); }
325}
326
327//-----------------------------------------------------------------------------
328// Synchronization Locks
329forall(L & | is_blocking_lock(L)) {
330
331 //-----------------------------------------------------------------------------
332 // condition variable
333 void ?{}( condition_variable(L) & this ){
334 this.lock{};
335 this.blocked_threads{};
336 this.count = 0;
337 }
338
339 void ^?{}( condition_variable(L) & this ){ }
340
341 static void process_popped( condition_variable(L) & this, info_thread(L) & popped ) with( this ) {
342 if(&popped != 0p) {
343 popped.signalled = true;
344 count--;
345 if (popped.lock) {
346 // if lock passed call on_notify
347 on_notify(*popped.lock, popped.t);
348 } else {
349 // otherwise wake thread
350 unpark(popped.t);
351 }
352 }
353 }
354
355 bool notify_one( condition_variable(L) & this ) with( this ) {
356 lock( lock __cfaabi_dbg_ctx2 );
357 bool ret = ! blocked_threads`isEmpty;
358 process_popped(this, try_pop_front( blocked_threads ));
359 unlock( lock );
360 return ret;
361 }
362
363 bool notify_all( condition_variable(L) & this ) with(this) {
364 lock( lock __cfaabi_dbg_ctx2 );
365 bool ret = ! blocked_threads`isEmpty;
366 while( ! blocked_threads`isEmpty ) {
367 process_popped(this, try_pop_front( blocked_threads ));
368 }
369 unlock( lock );
370 return ret;
371 }
372
373 uintptr_t front( condition_variable(L) & this ) with(this) {
374 return blocked_threads`isEmpty ? NULL : blocked_threads`first.info;
375 }
376
377 bool empty( condition_variable(L) & this ) with(this) {
378 lock( lock __cfaabi_dbg_ctx2 );
379 bool ret = blocked_threads`isEmpty;
380 unlock( lock );
381 return ret;
382 }
383
384 int counter( condition_variable(L) & this ) with(this) { return count; }
385
386 static void enqueue_thread( condition_variable(L) & this, info_thread(L) * i ) with(this) {
387 // add info_thread to waiting queue
388 insert_last( blocked_threads, *i );
389 count++;
390 // size_t recursion_count = 0;
391 // if (i->lock) {
392 // // if lock was passed get recursion count to reset to after waking thread
393 // recursion_count = on_wait( *i->lock );
394 // }
395 // return recursion_count;
396 }
397
398 static size_t block_and_get_recursion( info_thread(L) & i ) {
399 size_t recursion_count = 0;
400 if ( i.lock ) {
401 // if lock was passed get recursion count to reset to after waking thread
402 recursion_count = on_wait( *i.lock ); // this call blocks
403 } else park( );
404 return recursion_count;
405 }
406
407 // helper for wait()'s' with no timeout
408 static void queue_info_thread( condition_variable(L) & this, info_thread(L) & i ) with(this) {
409 lock( lock __cfaabi_dbg_ctx2 );
410 enqueue_thread( this, &i );
411 // size_t recursion_count = queue_and_get_recursion( this, &i );
412 unlock( lock );
413
414 // blocks here
415 size_t recursion_count = block_and_get_recursion( i );
416 // park( );
417
418 // resets recursion count here after waking
419 if ( i.lock ) on_wakeup( *i.lock, recursion_count );
420 }
421
422 #define WAIT( u, l ) \
423 info_thread( L ) i = { active_thread(), u, l }; \
424 queue_info_thread( this, i );
425
426 // helper for wait()'s' with a timeout
427 static void queue_info_thread_timeout( condition_variable(L) & this, info_thread(L) & info, Duration t, Alarm_Callback callback ) with(this) {
428 lock( lock __cfaabi_dbg_ctx2 );
429 enqueue_thread( this, &info );
430 // size_t recursion_count = queue_and_get_recursion( this, &info );
431 alarm_node_wrap(L) node_wrap = { t, 0`s, callback, &this, &info };
432 unlock( lock );
433
434 // registers alarm outside cond lock to avoid deadlock
435 register_self( &node_wrap.alarm_node );
436
437 // blocks here
438 size_t recursion_count = block_and_get_recursion( info );
439 // park();
440
441 // unregisters alarm so it doesn't go off if this happens first
442 unregister_self( &node_wrap.alarm_node );
443
444 // resets recursion count here after waking
445 if ( info.lock ) on_wakeup( *info.lock, recursion_count );
446 }
447
448 #define WAIT_TIME( u, l, t ) \
449 info_thread( L ) i = { active_thread(), u, l }; \
450 queue_info_thread_timeout(this, i, t, alarm_node_wrap_cast ); \
451 return i.signalled;
452
453 void wait( condition_variable(L) & this ) with(this) { WAIT( 0, 0p ) }
454 void wait( condition_variable(L) & this, uintptr_t info ) with(this) { WAIT( info, 0p ) }
455 void wait( condition_variable(L) & this, L & l ) with(this) { WAIT( 0, &l ) }
456 void wait( condition_variable(L) & this, L & l, uintptr_t info ) with(this) { WAIT( info, &l ) }
457
458 bool wait( condition_variable(L) & this, Duration duration ) with(this) { WAIT_TIME( 0 , 0p , duration ) }
459 bool wait( condition_variable(L) & this, uintptr_t info, Duration duration ) with(this) { WAIT_TIME( info, 0p , duration ) }
460 bool wait( condition_variable(L) & this, L & l, Duration duration ) with(this) { WAIT_TIME( 0 , &l , duration ) }
461 bool wait( condition_variable(L) & this, L & l, uintptr_t info, Duration duration ) with(this) { WAIT_TIME( info, &l , duration ) }
462
463 //-----------------------------------------------------------------------------
464 // fast_cond_var
465 void ?{}( fast_cond_var(L) & this ){
466 this.blocked_threads{};
467 #ifdef __CFA_DEBUG__
468 this.lock_used = 0p;
469 #endif
470 }
471 void ^?{}( fast_cond_var(L) & this ){ }
472
473 bool notify_one( fast_cond_var(L) & this ) with(this) {
474 bool ret = ! blocked_threads`isEmpty;
475 if ( ret ) {
476 info_thread(L) & popped = try_pop_front( blocked_threads );
477 on_notify(*popped.lock, popped.t);
478 }
479 return ret;
480 }
481 bool notify_all( fast_cond_var(L) & this ) with(this) {
482 bool ret = ! blocked_threads`isEmpty;
483 while( ! blocked_threads`isEmpty ) {
484 info_thread(L) & popped = try_pop_front( blocked_threads );
485 on_notify(*popped.lock, popped.t);
486 }
487 return ret;
488 }
489
490 uintptr_t front( fast_cond_var(L) & this ) with(this) { return blocked_threads`isEmpty ? NULL : blocked_threads`first.info; }
491 bool empty ( fast_cond_var(L) & this ) with(this) { return blocked_threads`isEmpty; }
492
493 void wait( fast_cond_var(L) & this, L & l ) {
494 wait( this, l, 0 );
495 }
496
497 void wait( fast_cond_var(L) & this, L & l, uintptr_t info ) with(this) {
498 // brand cond lock with lock
499 #ifdef __CFA_DEBUG__
500 if ( lock_used == 0p ) lock_used = &l;
501 else assert(lock_used == &l);
502 #endif
503 info_thread( L ) i = { active_thread(), info, &l };
504 insert_last( blocked_threads, i );
505 size_t recursion_count = on_wait( *i.lock ); // blocks here
506 // park( );
507 on_wakeup(*i.lock, recursion_count);
508 }
509
510 //-----------------------------------------------------------------------------
511 // pthread_cond_var
512
513 void ?{}( pthread_cond_var(L) & this ) with(this) {
514 blocked_threads{};
515 lock{};
516 }
517
518 void ^?{}( pthread_cond_var(L) & this ) { }
519
520 bool notify_one( pthread_cond_var(L) & this ) with(this) {
521 lock( lock __cfaabi_dbg_ctx2 );
522 bool ret = ! blocked_threads`isEmpty;
523 if ( ret ) {
524 info_thread(L) & popped = try_pop_front( blocked_threads );
525 popped.signalled = true;
526 on_notify(*popped.lock, popped.t);
527 }
528 unlock( lock );
529 return ret;
530 }
531
532 bool notify_all( pthread_cond_var(L) & this ) with(this) {
533 lock( lock __cfaabi_dbg_ctx2 );
534 bool ret = ! blocked_threads`isEmpty;
535 while( ! blocked_threads`isEmpty ) {
536 info_thread(L) & popped = try_pop_front( blocked_threads );
537 popped.signalled = true;
538 on_notify(*popped.lock, popped.t);
539 }
540 unlock( lock );
541 return ret;
542 }
543
544 uintptr_t front( pthread_cond_var(L) & this ) with(this) { return blocked_threads`isEmpty ? NULL : blocked_threads`first.info; }
545 bool empty ( pthread_cond_var(L) & this ) with(this) { return blocked_threads`isEmpty; }
546
547 // static size_t queue_and_get_recursion( pthread_cond_var(L) & this, info_thread(L) * i ) with(this) {
548 // // add info_thread to waiting queue
549 // insert_last( blocked_threads, *i );
550 // size_t recursion_count = 0;
551 // recursion_count = on_wait( *i->lock );
552 // return recursion_count;
553 // }
554
555
556 static void queue_info_thread_timeout( pthread_cond_var(L) & this, info_thread(L) & info, Duration t, Alarm_Callback callback ) with(this) {
557 lock( lock __cfaabi_dbg_ctx2 );
558 // size_t recursion_count = queue_and_get_recursion(this, &info);
559 insert_last( blocked_threads, info );
560 pthread_alarm_node_wrap(L) node_wrap = { t, 0`s, callback, &this, &info };
561 unlock( lock );
562
563 // registers alarm outside cond lock to avoid deadlock
564 register_self( &node_wrap.alarm_node );
565
566 // blocks here
567 size_t recursion_count = block_and_get_recursion( info );
568 // park();
569
570 // unregisters alarm so it doesn't go off if this happens first
571 unregister_self( &node_wrap.alarm_node );
572
573 // resets recursion count here after waking
574 if ( info.lock ) on_wakeup( *info.lock, recursion_count );
575 }
576
577 void wait( pthread_cond_var(L) & this, L & l ) with(this) {
578 wait( this, l, 0 );
579 }
580
581 void wait( pthread_cond_var(L) & this, L & l, uintptr_t info ) with(this) {
582 lock( lock __cfaabi_dbg_ctx2 );
583 info_thread( L ) i = { active_thread(), info, &l };
584 insert_last( blocked_threads, i );
585 // size_t recursion_count = queue_and_get_recursion( this, &i );
586 unlock( lock );
587
588 // blocks here
589 size_t recursion_count = block_and_get_recursion( i );
590 // park();
591 on_wakeup( *i.lock, recursion_count );
592 }
593
594 #define PTHREAD_WAIT_TIME( u, l, t ) \
595 info_thread( L ) i = { active_thread(), u, l }; \
596 queue_info_thread_timeout(this, i, t, pthread_alarm_node_wrap_cast ); \
597 return i.signalled;
598
599 Duration getDuration(timespec t) {
600 timespec currTime;
601 clock_gettime(CLOCK_REALTIME, &currTime);
602 Duration waitUntil = { t };
603 Duration currDur = { currTime };
604 if ( currDur >= waitUntil ) return currDur - waitUntil;
605 Duration zero = { 0 };
606 return zero;
607 }
608
609 bool wait( pthread_cond_var(L) & this, L & l, timespec t ) {
610 PTHREAD_WAIT_TIME( 0, &l , getDuration( t ) )
611 }
612
613 bool wait( pthread_cond_var(L) & this, L & l, uintptr_t info, timespec t ) {
614 PTHREAD_WAIT_TIME( info, &l , getDuration( t ) )
615 }
616}
617//-----------------------------------------------------------------------------
618// Semaphore
619void ?{}( semaphore & this, int count = 1 ) {
620 (this.lock){};
621 this.count = count;
622 (this.waiting){};
623}
624void ^?{}(semaphore & this) {}
625
626bool P(semaphore & this) with( this ){
627 lock( lock __cfaabi_dbg_ctx2 );
628 count -= 1;
629 if ( count < 0 ) {
630 // queue current task
631 append( waiting, active_thread() );
632
633 // atomically release spin lock and block
634 unlock( lock );
635 park();
636 return true;
637 }
638 else {
639 unlock( lock );
640 return false;
641 }
642}
643
644thread$ * V (semaphore & this, const bool doUnpark ) with( this ) {
645 thread$ * thrd = 0p;
646 lock( lock __cfaabi_dbg_ctx2 );
647 count += 1;
648 if ( count <= 0 ) {
649 // remove task at head of waiting list
650 thrd = pop_head( waiting );
651 }
652
653 unlock( lock );
654
655 // make new owner
656 if( doUnpark ) unpark( thrd );
657
658 return thrd;
659}
660
661bool V(semaphore & this) with( this ) {
662 thread$ * thrd = V(this, true);
663 return thrd != 0p;
664}
665
666bool V(semaphore & this, unsigned diff) with( this ) {
667 thread$ * thrd = 0p;
668 lock( lock __cfaabi_dbg_ctx2 );
669 int release = max(-count, (int)diff);
670 count += diff;
671 for(release) {
672 unpark( pop_head( waiting ) );
673 }
674
675 unlock( lock );
676
677 return thrd != 0p;
678}
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