xref: /netbsd-src/sys/kern/kern_threadpool.c (revision ed75d7a867996c84cfa88e3b8906816277e957f7)
1 /*	$NetBSD: kern_threadpool.c,v 1.17 2020/02/09 22:57:39 riastradh Exp $	*/
2 
3 /*-
4  * Copyright (c) 2014, 2018 The NetBSD Foundation, Inc.
5  * All rights reserved.
6  *
7  * This code is derived from software contributed to The NetBSD Foundation
8  * by Taylor R. Campbell and Jason R. Thorpe.
9  *
10  * Redistribution and use in source and binary forms, with or without
11  * modification, are permitted provided that the following conditions
12  * are met:
13  * 1. Redistributions of source code must retain the above copyright
14  *    notice, this list of conditions and the following disclaimer.
15  * 2. Redistributions in binary form must reproduce the above copyright
16  *    notice, this list of conditions and the following disclaimer in the
17  *    documentation and/or other materials provided with the distribution.
18  *
19  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29  * POSSIBILITY OF SUCH DAMAGE.
30  */
31 
32 /*
33  * Thread pools.
34  *
35  * A thread pool is a collection of worker threads idle or running
36  * jobs, together with an overseer thread that does not run jobs but
37  * can be given jobs to assign to a worker thread.  Scheduling a job in
38  * a thread pool does not allocate or even sleep at all, except perhaps
39  * on an adaptive lock, unlike kthread_create.  Jobs reuse threads, so
40  * they do not incur the expense of creating and destroying kthreads
41  * unless there is not much work to be done.
42  *
43  * A per-CPU thread pool (threadpool_percpu) is a collection of thread
44  * pools, one per CPU bound to that CPU.  For each priority level in
45  * use, there is one shared unbound thread pool (i.e., pool of threads
46  * not bound to any CPU) and one shared per-CPU thread pool.
47  *
48  * To use the unbound thread pool at priority pri, call
49  * threadpool_get(&pool, pri).  When you're done, call
50  * threadpool_put(pool, pri).
51  *
52  * To use the per-CPU thread pools at priority pri, call
53  * threadpool_percpu_get(&pool_percpu, pri), and then use the thread
54  * pool returned by threadpool_percpu_ref(pool_percpu) for the current
55  * CPU, or by threadpool_percpu_ref_remote(pool_percpu, ci) for another
56  * CPU.  When you're done, call threadpool_percpu_put(pool_percpu,
57  * pri).
58  *
59  * +--MACHINE-----------------------------------------------+
60  * | +--CPU 0-------+ +--CPU 1-------+     +--CPU n-------+ |
61  * | | <overseer 0> | | <overseer 1> | ... | <overseer n> | |
62  * | | <idle 0a>    | | <running 1a> | ... | <idle na>    | |
63  * | | <running 0b> | | <running 1b> | ... | <idle nb>    | |
64  * | | .            | | .            | ... | .            | |
65  * | | .            | | .            | ... | .            | |
66  * | | .            | | .            | ... | .            | |
67  * | +--------------+ +--------------+     +--------------+ |
68  * |            +--unbound---------+                        |
69  * |            | <overseer n+1>   |                        |
70  * |            | <idle (n+1)a>    |                        |
71  * |            | <running (n+1)b> |                        |
72  * |            +------------------+                        |
73  * +--------------------------------------------------------+
74  *
75  * XXX Why one overseer per CPU?  I did that originally to avoid
76  * touching remote CPUs' memory when scheduling a job, but that still
77  * requires interprocessor synchronization.  Perhaps we could get by
78  * with a single overseer thread, at the expense of another pointer in
79  * struct threadpool_job to identify the CPU on which it must run
80  * in order for the overseer to schedule it correctly.
81  */
82 
83 #include <sys/cdefs.h>
84 __KERNEL_RCSID(0, "$NetBSD: kern_threadpool.c,v 1.17 2020/02/09 22:57:39 riastradh Exp $");
85 
86 #include <sys/types.h>
87 #include <sys/param.h>
88 #include <sys/atomic.h>
89 #include <sys/condvar.h>
90 #include <sys/cpu.h>
91 #include <sys/kernel.h>
92 #include <sys/kmem.h>
93 #include <sys/kthread.h>
94 #include <sys/mutex.h>
95 #include <sys/once.h>
96 #include <sys/percpu.h>
97 #include <sys/pool.h>
98 #include <sys/proc.h>
99 #include <sys/queue.h>
100 #include <sys/sdt.h>
101 #include <sys/sysctl.h>
102 #include <sys/systm.h>
103 #include <sys/threadpool.h>
104 
105 /* Probes */
106 
107 SDT_PROBE_DEFINE1(sdt, kernel, threadpool, get,
108     "pri_t"/*pri*/);
109 SDT_PROBE_DEFINE1(sdt, kernel, threadpool, get__create,
110     "pri_t"/*pri*/);
111 SDT_PROBE_DEFINE1(sdt, kernel, threadpool, get__race,
112     "pri_t"/*pri*/);
113 SDT_PROBE_DEFINE2(sdt, kernel, threadpool, put,
114     "struct threadpool *"/*pool*/, "pri_t"/*pri*/);
115 SDT_PROBE_DEFINE2(sdt, kernel, threadpool, put__destroy,
116     "struct threadpool *"/*pool*/, "pri_t"/*pri*/);
117 
118 SDT_PROBE_DEFINE1(sdt, kernel, threadpool, percpu__get,
119     "pri_t"/*pri*/);
120 SDT_PROBE_DEFINE1(sdt, kernel, threadpool, percpu__get__create,
121     "pri_t"/*pri*/);
122 SDT_PROBE_DEFINE1(sdt, kernel, threadpool, percpu__get__race,
123     "pri_t"/*pri*/);
124 SDT_PROBE_DEFINE2(sdt, kernel, threadpool, percpu__put,
125     "struct threadpool *"/*pool*/, "pri_t"/*pri*/);
126 SDT_PROBE_DEFINE2(sdt, kernel, threadpool, percpu__put__destroy,
127     "struct threadpool *"/*pool*/, "pri_t"/*pri*/);
128 
129 SDT_PROBE_DEFINE2(sdt, kernel, threadpool, create,
130     "struct cpu_info *"/*ci*/, "pri_t"/*pri*/);
131 SDT_PROBE_DEFINE3(sdt, kernel, threadpool, create__success,
132     "struct cpu_info *"/*ci*/, "pri_t"/*pri*/, "struct threadpool *"/*pool*/);
133 SDT_PROBE_DEFINE3(sdt, kernel, threadpool, create__failure,
134     "struct cpu_info *"/*ci*/, "pri_t"/*pri*/, "int"/*error*/);
135 SDT_PROBE_DEFINE1(sdt, kernel, threadpool, destroy,
136     "struct threadpool *"/*pool*/);
137 SDT_PROBE_DEFINE2(sdt, kernel, threadpool, destroy__wait,
138     "struct threadpool *"/*pool*/, "uint64_t"/*refcnt*/);
139 
140 SDT_PROBE_DEFINE2(sdt, kernel, threadpool, schedule__job,
141     "struct threadpool *"/*pool*/, "struct threadpool_job *"/*job*/);
142 SDT_PROBE_DEFINE2(sdt, kernel, threadpool, schedule__job__running,
143     "struct threadpool *"/*pool*/, "struct threadpool_job *"/*job*/);
144 SDT_PROBE_DEFINE2(sdt, kernel, threadpool, schedule__job__overseer,
145     "struct threadpool *"/*pool*/, "struct threadpool_job *"/*job*/);
146 SDT_PROBE_DEFINE3(sdt, kernel, threadpool, schedule__job__thread,
147     "struct threadpool *"/*pool*/,
148     "struct threadpool_job *"/*job*/,
149     "struct lwp *"/*thread*/);
150 
151 SDT_PROBE_DEFINE1(sdt, kernel, threadpool, overseer__start,
152     "struct threadpool *"/*pool*/);
153 SDT_PROBE_DEFINE1(sdt, kernel, threadpool, overseer__dying,
154     "struct threadpool *"/*pool*/);
155 SDT_PROBE_DEFINE1(sdt, kernel, threadpool, overseer__spawn,
156     "struct threadpool *"/*pool*/);
157 SDT_PROBE_DEFINE2(sdt, kernel, threadpool, overseer__race,
158     "struct threadpool *"/*pool*/,
159     "struct threadpool_job *"/*job*/);
160 SDT_PROBE_DEFINE3(sdt, kernel, threadpool, overseer__assign,
161     "struct threadpool *"/*pool*/,
162     "struct threadpool_job *"/*job*/,
163     "struct lwp *"/*thread*/);
164 SDT_PROBE_DEFINE1(sdt, kernel, threadpool, overseer__exit,
165     "struct threadpool *"/*pool*/);
166 
167 SDT_PROBE_DEFINE1(sdt, kernel, threadpool, thread__start,
168     "struct threadpool *"/*pool*/);
169 SDT_PROBE_DEFINE1(sdt, kernel, threadpool, thread__dying,
170     "struct threadpool *"/*pool*/);
171 SDT_PROBE_DEFINE2(sdt, kernel, threadpool, thread__job,
172     "struct threadpool *"/*pool*/, "struct threadpool_job *"/*job*/);
173 SDT_PROBE_DEFINE1(sdt, kernel, threadpool, thread__exit,
174     "struct threadpool *"/*pool*/);
175 
176 /* Data structures */
177 
178 TAILQ_HEAD(job_head, threadpool_job);
179 TAILQ_HEAD(thread_head, threadpool_thread);
180 
181 struct threadpool_thread {
182 	struct lwp			*tpt_lwp;
183 	char				*tpt_lwp_savedname;
184 	struct threadpool		*tpt_pool;
185 	struct threadpool_job		*tpt_job;
186 	kcondvar_t			tpt_cv;
187 	TAILQ_ENTRY(threadpool_thread)	tpt_entry;
188 };
189 
190 struct threadpool {
191 	kmutex_t			tp_lock;
192 	struct threadpool_thread	tp_overseer;
193 	struct job_head			tp_jobs;
194 	struct thread_head		tp_idle_threads;
195 	uint64_t			tp_refcnt;
196 	int				tp_flags;
197 #define	THREADPOOL_DYING	0x01
198 	struct cpu_info			*tp_cpu;
199 	pri_t				tp_pri;
200 };
201 
202 static void	threadpool_hold(struct threadpool *);
203 static void	threadpool_rele(struct threadpool *);
204 
205 static int	threadpool_percpu_create(struct threadpool_percpu **, pri_t);
206 static void	threadpool_percpu_destroy(struct threadpool_percpu *);
207 static void	threadpool_percpu_init(void *, void *, struct cpu_info *);
208 static void	threadpool_percpu_ok(void *, void *, struct cpu_info *);
209 static void	threadpool_percpu_fini(void *, void *, struct cpu_info *);
210 
211 static threadpool_job_fn_t threadpool_job_dead;
212 
213 static void	threadpool_job_hold(struct threadpool_job *);
214 static void	threadpool_job_rele(struct threadpool_job *);
215 
216 static void	threadpool_overseer_thread(void *) __dead;
217 static void	threadpool_thread(void *) __dead;
218 
219 static pool_cache_t	threadpool_thread_pc __read_mostly;
220 
221 static kmutex_t		threadpools_lock __cacheline_aligned;
222 
223 	/* Default to 30 second idle timeout for pool threads. */
224 static int	threadpool_idle_time_ms = 30 * 1000;
225 
226 struct threadpool_unbound {
227 	struct threadpool		tpu_pool;
228 
229 	/* protected by threadpools_lock */
230 	LIST_ENTRY(threadpool_unbound)	tpu_link;
231 	uint64_t			tpu_refcnt;
232 };
233 
234 static LIST_HEAD(, threadpool_unbound) unbound_threadpools;
235 
236 static struct threadpool_unbound *
237 threadpool_lookup_unbound(pri_t pri)
238 {
239 	struct threadpool_unbound *tpu;
240 
241 	LIST_FOREACH(tpu, &unbound_threadpools, tpu_link) {
242 		if (tpu->tpu_pool.tp_pri == pri)
243 			return tpu;
244 	}
245 	return NULL;
246 }
247 
248 static void
249 threadpool_insert_unbound(struct threadpool_unbound *tpu)
250 {
251 	KASSERT(threadpool_lookup_unbound(tpu->tpu_pool.tp_pri) == NULL);
252 	LIST_INSERT_HEAD(&unbound_threadpools, tpu, tpu_link);
253 }
254 
255 static void
256 threadpool_remove_unbound(struct threadpool_unbound *tpu)
257 {
258 	KASSERT(threadpool_lookup_unbound(tpu->tpu_pool.tp_pri) == tpu);
259 	LIST_REMOVE(tpu, tpu_link);
260 }
261 
262 struct threadpool_percpu {
263 	percpu_t *			tpp_percpu;
264 	pri_t				tpp_pri;
265 
266 	/* protected by threadpools_lock */
267 	LIST_ENTRY(threadpool_percpu)	tpp_link;
268 	uint64_t			tpp_refcnt;
269 };
270 
271 static LIST_HEAD(, threadpool_percpu) percpu_threadpools;
272 
273 static struct threadpool_percpu *
274 threadpool_lookup_percpu(pri_t pri)
275 {
276 	struct threadpool_percpu *tpp;
277 
278 	LIST_FOREACH(tpp, &percpu_threadpools, tpp_link) {
279 		if (tpp->tpp_pri == pri)
280 			return tpp;
281 	}
282 	return NULL;
283 }
284 
285 static void
286 threadpool_insert_percpu(struct threadpool_percpu *tpp)
287 {
288 	KASSERT(threadpool_lookup_percpu(tpp->tpp_pri) == NULL);
289 	LIST_INSERT_HEAD(&percpu_threadpools, tpp, tpp_link);
290 }
291 
292 static void
293 threadpool_remove_percpu(struct threadpool_percpu *tpp)
294 {
295 	KASSERT(threadpool_lookup_percpu(tpp->tpp_pri) == tpp);
296 	LIST_REMOVE(tpp, tpp_link);
297 }
298 
299 static int
300 sysctl_kern_threadpool_idle_ms(SYSCTLFN_ARGS)
301 {
302 	struct sysctlnode node;
303 	int val, error;
304 
305 	node = *rnode;
306 
307 	val = threadpool_idle_time_ms;
308 	node.sysctl_data = &val;
309 	error = sysctl_lookup(SYSCTLFN_CALL(&node));
310 	if (error == 0 && newp != NULL) {
311 		/* Disallow negative values and 0 (forever). */
312 		if (val < 1)
313 			error = EINVAL;
314 		else
315 			threadpool_idle_time_ms = val;
316 	}
317 
318 	return error;
319 }
320 
321 SYSCTL_SETUP_PROTO(sysctl_threadpool_setup);
322 
323 SYSCTL_SETUP(sysctl_threadpool_setup,
324     "sysctl kern.threadpool subtree setup")
325 {
326 	const struct sysctlnode *rnode, *cnode;
327 	int error __diagused;
328 
329 	error = sysctl_createv(clog, 0, NULL, &rnode,
330 	    CTLFLAG_PERMANENT,
331 	    CTLTYPE_NODE, "threadpool",
332 	    SYSCTL_DESCR("threadpool subsystem options"),
333 	    NULL, 0, NULL, 0,
334 	    CTL_KERN, CTL_CREATE, CTL_EOL);
335 	KASSERT(error == 0);
336 
337 	error = sysctl_createv(clog, 0, &rnode, &cnode,
338 	    CTLFLAG_PERMANENT | CTLFLAG_READWRITE,
339 	    CTLTYPE_INT, "idle_ms",
340 	    SYSCTL_DESCR("idle thread timeout in ms"),
341 	    sysctl_kern_threadpool_idle_ms, 0, NULL, 0,
342 	    CTL_CREATE, CTL_EOL);
343 	KASSERT(error == 0);
344 }
345 
346 void
347 threadpools_init(void)
348 {
349 
350 	threadpool_thread_pc =
351 	    pool_cache_init(sizeof(struct threadpool_thread), 0, 0, 0,
352 		"thplthrd", NULL, IPL_NONE, NULL, NULL, NULL);
353 
354 	LIST_INIT(&unbound_threadpools);
355 	LIST_INIT(&percpu_threadpools);
356 	mutex_init(&threadpools_lock, MUTEX_DEFAULT, IPL_NONE);
357 }
358 
359 /* Thread pool creation */
360 
361 static bool
362 threadpool_pri_is_valid(pri_t pri)
363 {
364 	return (pri == PRI_NONE || (pri >= PRI_USER && pri < PRI_COUNT));
365 }
366 
367 static int
368 threadpool_create(struct threadpool *const pool, struct cpu_info *ci,
369     pri_t pri)
370 {
371 	struct lwp *lwp;
372 	int ktflags;
373 	int error;
374 
375 	KASSERT(threadpool_pri_is_valid(pri));
376 
377 	SDT_PROBE2(sdt, kernel, threadpool, create,  ci, pri);
378 
379 	mutex_init(&pool->tp_lock, MUTEX_DEFAULT, IPL_VM);
380 	/* XXX overseer */
381 	TAILQ_INIT(&pool->tp_jobs);
382 	TAILQ_INIT(&pool->tp_idle_threads);
383 	pool->tp_refcnt = 1;		/* overseer's reference */
384 	pool->tp_flags = 0;
385 	pool->tp_cpu = ci;
386 	pool->tp_pri = pri;
387 
388 	pool->tp_overseer.tpt_lwp = NULL;
389 	pool->tp_overseer.tpt_pool = pool;
390 	pool->tp_overseer.tpt_job = NULL;
391 	cv_init(&pool->tp_overseer.tpt_cv, "poolover");
392 
393 	ktflags = 0;
394 	ktflags |= KTHREAD_MPSAFE;
395 	if (pri < PRI_KERNEL)
396 		ktflags |= KTHREAD_TS;
397 	error = kthread_create(pri, ktflags, ci, &threadpool_overseer_thread,
398 	    &pool->tp_overseer, &lwp,
399 	    "pooloverseer/%d@%d", (ci ? cpu_index(ci) : -1), (int)pri);
400 	if (error)
401 		goto fail0;
402 
403 	mutex_spin_enter(&pool->tp_lock);
404 	pool->tp_overseer.tpt_lwp = lwp;
405 	cv_broadcast(&pool->tp_overseer.tpt_cv);
406 	mutex_spin_exit(&pool->tp_lock);
407 
408 	SDT_PROBE3(sdt, kernel, threadpool, create__success,  ci, pri, pool);
409 	return 0;
410 
411 fail0:	KASSERT(error);
412 	KASSERT(pool->tp_overseer.tpt_job == NULL);
413 	KASSERT(pool->tp_overseer.tpt_pool == pool);
414 	KASSERT(pool->tp_flags == 0);
415 	KASSERT(pool->tp_refcnt == 0);
416 	KASSERT(TAILQ_EMPTY(&pool->tp_idle_threads));
417 	KASSERT(TAILQ_EMPTY(&pool->tp_jobs));
418 	KASSERT(!cv_has_waiters(&pool->tp_overseer.tpt_cv));
419 	cv_destroy(&pool->tp_overseer.tpt_cv);
420 	mutex_destroy(&pool->tp_lock);
421 	SDT_PROBE3(sdt, kernel, threadpool, create__failure,  ci, pri, error);
422 	return error;
423 }
424 
425 /* Thread pool destruction */
426 
427 static void
428 threadpool_destroy(struct threadpool *pool)
429 {
430 	struct threadpool_thread *thread;
431 
432 	SDT_PROBE1(sdt, kernel, threadpool, destroy,  pool);
433 
434 	/* Mark the pool dying and wait for threads to commit suicide.  */
435 	mutex_spin_enter(&pool->tp_lock);
436 	KASSERT(TAILQ_EMPTY(&pool->tp_jobs));
437 	pool->tp_flags |= THREADPOOL_DYING;
438 	cv_broadcast(&pool->tp_overseer.tpt_cv);
439 	TAILQ_FOREACH(thread, &pool->tp_idle_threads, tpt_entry)
440 		cv_broadcast(&thread->tpt_cv);
441 	while (0 < pool->tp_refcnt) {
442 		SDT_PROBE2(sdt, kernel, threadpool, destroy__wait,
443 		    pool, pool->tp_refcnt);
444 		cv_wait(&pool->tp_overseer.tpt_cv, &pool->tp_lock);
445 	}
446 	mutex_spin_exit(&pool->tp_lock);
447 
448 	KASSERT(pool->tp_overseer.tpt_job == NULL);
449 	KASSERT(pool->tp_overseer.tpt_pool == pool);
450 	KASSERT(pool->tp_flags == THREADPOOL_DYING);
451 	KASSERT(pool->tp_refcnt == 0);
452 	KASSERT(TAILQ_EMPTY(&pool->tp_idle_threads));
453 	KASSERT(TAILQ_EMPTY(&pool->tp_jobs));
454 	KASSERT(!cv_has_waiters(&pool->tp_overseer.tpt_cv));
455 	cv_destroy(&pool->tp_overseer.tpt_cv);
456 	mutex_destroy(&pool->tp_lock);
457 }
458 
459 static void
460 threadpool_hold(struct threadpool *pool)
461 {
462 
463 	KASSERT(mutex_owned(&pool->tp_lock));
464 	pool->tp_refcnt++;
465 	KASSERT(pool->tp_refcnt != 0);
466 }
467 
468 static void
469 threadpool_rele(struct threadpool *pool)
470 {
471 
472 	KASSERT(mutex_owned(&pool->tp_lock));
473 	KASSERT(0 < pool->tp_refcnt);
474 	if (--pool->tp_refcnt == 0)
475 		cv_broadcast(&pool->tp_overseer.tpt_cv);
476 }
477 
478 /* Unbound thread pools */
479 
480 int
481 threadpool_get(struct threadpool **poolp, pri_t pri)
482 {
483 	struct threadpool_unbound *tpu, *tmp = NULL;
484 	int error;
485 
486 	ASSERT_SLEEPABLE();
487 
488 	SDT_PROBE1(sdt, kernel, threadpool, get,  pri);
489 
490 	if (! threadpool_pri_is_valid(pri))
491 		return EINVAL;
492 
493 	mutex_enter(&threadpools_lock);
494 	tpu = threadpool_lookup_unbound(pri);
495 	if (tpu == NULL) {
496 		mutex_exit(&threadpools_lock);
497 		SDT_PROBE1(sdt, kernel, threadpool, get__create,  pri);
498 		tmp = kmem_zalloc(sizeof(*tmp), KM_SLEEP);
499 		error = threadpool_create(&tmp->tpu_pool, NULL, pri);
500 		if (error) {
501 			kmem_free(tmp, sizeof(*tmp));
502 			return error;
503 		}
504 		mutex_enter(&threadpools_lock);
505 		tpu = threadpool_lookup_unbound(pri);
506 		if (tpu == NULL) {
507 			tpu = tmp;
508 			tmp = NULL;
509 			threadpool_insert_unbound(tpu);
510 		} else {
511 			SDT_PROBE1(sdt, kernel, threadpool, get__race,  pri);
512 		}
513 	}
514 	KASSERT(tpu != NULL);
515 	tpu->tpu_refcnt++;
516 	KASSERT(tpu->tpu_refcnt != 0);
517 	mutex_exit(&threadpools_lock);
518 
519 	if (tmp != NULL) {
520 		threadpool_destroy(&tmp->tpu_pool);
521 		kmem_free(tmp, sizeof(*tmp));
522 	}
523 	KASSERT(tpu != NULL);
524 	*poolp = &tpu->tpu_pool;
525 	return 0;
526 }
527 
528 void
529 threadpool_put(struct threadpool *pool, pri_t pri)
530 {
531 	struct threadpool_unbound *tpu =
532 	    container_of(pool, struct threadpool_unbound, tpu_pool);
533 
534 	ASSERT_SLEEPABLE();
535 	KASSERT(threadpool_pri_is_valid(pri));
536 
537 	SDT_PROBE2(sdt, kernel, threadpool, put,  pool, pri);
538 
539 	mutex_enter(&threadpools_lock);
540 	KASSERT(tpu == threadpool_lookup_unbound(pri));
541 	KASSERT(0 < tpu->tpu_refcnt);
542 	if (--tpu->tpu_refcnt == 0) {
543 		SDT_PROBE2(sdt, kernel, threadpool, put__destroy,  pool, pri);
544 		threadpool_remove_unbound(tpu);
545 	} else {
546 		tpu = NULL;
547 	}
548 	mutex_exit(&threadpools_lock);
549 
550 	if (tpu) {
551 		threadpool_destroy(&tpu->tpu_pool);
552 		kmem_free(tpu, sizeof(*tpu));
553 	}
554 }
555 
556 /* Per-CPU thread pools */
557 
558 int
559 threadpool_percpu_get(struct threadpool_percpu **pool_percpup, pri_t pri)
560 {
561 	struct threadpool_percpu *pool_percpu, *tmp = NULL;
562 	int error;
563 
564 	ASSERT_SLEEPABLE();
565 
566 	SDT_PROBE1(sdt, kernel, threadpool, percpu__get,  pri);
567 
568 	if (! threadpool_pri_is_valid(pri))
569 		return EINVAL;
570 
571 	mutex_enter(&threadpools_lock);
572 	pool_percpu = threadpool_lookup_percpu(pri);
573 	if (pool_percpu == NULL) {
574 		mutex_exit(&threadpools_lock);
575 		SDT_PROBE1(sdt, kernel, threadpool, percpu__get__create,  pri);
576 		error = threadpool_percpu_create(&tmp, pri);
577 		if (error)
578 			return error;
579 		KASSERT(tmp != NULL);
580 		mutex_enter(&threadpools_lock);
581 		pool_percpu = threadpool_lookup_percpu(pri);
582 		if (pool_percpu == NULL) {
583 			pool_percpu = tmp;
584 			tmp = NULL;
585 			threadpool_insert_percpu(pool_percpu);
586 		} else {
587 			SDT_PROBE1(sdt, kernel, threadpool, percpu__get__race,
588 			    pri);
589 		}
590 	}
591 	KASSERT(pool_percpu != NULL);
592 	pool_percpu->tpp_refcnt++;
593 	KASSERT(pool_percpu->tpp_refcnt != 0);
594 	mutex_exit(&threadpools_lock);
595 
596 	if (tmp != NULL)
597 		threadpool_percpu_destroy(tmp);
598 	KASSERT(pool_percpu != NULL);
599 	*pool_percpup = pool_percpu;
600 	return 0;
601 }
602 
603 void
604 threadpool_percpu_put(struct threadpool_percpu *pool_percpu, pri_t pri)
605 {
606 
607 	ASSERT_SLEEPABLE();
608 
609 	KASSERT(threadpool_pri_is_valid(pri));
610 
611 	SDT_PROBE2(sdt, kernel, threadpool, percpu__put,  pool_percpu, pri);
612 
613 	mutex_enter(&threadpools_lock);
614 	KASSERT(pool_percpu == threadpool_lookup_percpu(pri));
615 	KASSERT(0 < pool_percpu->tpp_refcnt);
616 	if (--pool_percpu->tpp_refcnt == 0) {
617 		SDT_PROBE2(sdt, kernel, threadpool, percpu__put__destroy,
618 		    pool_percpu, pri);
619 		threadpool_remove_percpu(pool_percpu);
620 	} else {
621 		pool_percpu = NULL;
622 	}
623 	mutex_exit(&threadpools_lock);
624 
625 	if (pool_percpu)
626 		threadpool_percpu_destroy(pool_percpu);
627 }
628 
629 struct threadpool *
630 threadpool_percpu_ref(struct threadpool_percpu *pool_percpu)
631 {
632 	struct threadpool **poolp, *pool;
633 
634 	poolp = percpu_getref(pool_percpu->tpp_percpu);
635 	pool = *poolp;
636 	percpu_putref(pool_percpu->tpp_percpu);
637 
638 	return pool;
639 }
640 
641 struct threadpool *
642 threadpool_percpu_ref_remote(struct threadpool_percpu *pool_percpu,
643     struct cpu_info *ci)
644 {
645 	struct threadpool **poolp, *pool;
646 
647 	percpu_traverse_enter();
648 	poolp = percpu_getptr_remote(pool_percpu->tpp_percpu, ci);
649 	pool = *poolp;
650 	percpu_traverse_exit();
651 
652 	return pool;
653 }
654 
655 static int
656 threadpool_percpu_create(struct threadpool_percpu **pool_percpup, pri_t pri)
657 {
658 	struct threadpool_percpu *pool_percpu;
659 	bool ok = true;
660 
661 	pool_percpu = kmem_zalloc(sizeof(*pool_percpu), KM_SLEEP);
662 	pool_percpu->tpp_pri = pri;
663 	pool_percpu->tpp_percpu = percpu_create(sizeof(struct threadpool *),
664 	    threadpool_percpu_init, threadpool_percpu_fini,
665 	    (void *)(intptr_t)pri);
666 
667 	/*
668 	 * Verify that all of the CPUs were initialized.
669 	 *
670 	 * XXX What to do if we add CPU hotplug?
671 	 */
672 	percpu_foreach(pool_percpu->tpp_percpu, &threadpool_percpu_ok, &ok);
673 	if (!ok)
674 		goto fail;
675 
676 	/* Success!  */
677 	*pool_percpup = (struct threadpool_percpu *)pool_percpu;
678 	return 0;
679 
680 fail:	percpu_free(pool_percpu->tpp_percpu, sizeof(struct threadpool *));
681 	kmem_free(pool_percpu, sizeof(*pool_percpu));
682 	return ENOMEM;
683 }
684 
685 static void
686 threadpool_percpu_destroy(struct threadpool_percpu *pool_percpu)
687 {
688 
689 	percpu_free(pool_percpu->tpp_percpu, sizeof(struct threadpool *));
690 	kmem_free(pool_percpu, sizeof(*pool_percpu));
691 }
692 
693 static void
694 threadpool_percpu_init(void *vpoolp, void *vpri, struct cpu_info *ci)
695 {
696 	struct threadpool **const poolp = vpoolp;
697 	pri_t pri = (intptr_t)(void *)vpri;
698 	int error;
699 
700 	*poolp = kmem_zalloc(sizeof(**poolp), KM_SLEEP);
701 	error = threadpool_create(*poolp, ci, pri);
702 	if (error) {
703 		KASSERT(error == ENOMEM);
704 		kmem_free(*poolp, sizeof(**poolp));
705 		*poolp = NULL;
706 	}
707 }
708 
709 static void
710 threadpool_percpu_ok(void *vpoolp, void *vokp, struct cpu_info *ci)
711 {
712 	struct threadpool **const poolp = vpoolp;
713 	bool *okp = vokp;
714 
715 	if (*poolp == NULL)
716 		atomic_store_relaxed(okp, false);
717 }
718 
719 static void
720 threadpool_percpu_fini(void *vpoolp, void *vprip, struct cpu_info *ci)
721 {
722 	struct threadpool **const poolp = vpoolp;
723 
724 	if (*poolp == NULL)	/* initialization failed */
725 		return;
726 	threadpool_destroy(*poolp);
727 	kmem_free(*poolp, sizeof(**poolp));
728 }
729 
730 /* Thread pool jobs */
731 
732 void __printflike(4,5)
733 threadpool_job_init(struct threadpool_job *job, threadpool_job_fn_t fn,
734     kmutex_t *lock, const char *fmt, ...)
735 {
736 	va_list ap;
737 
738 	va_start(ap, fmt);
739 	(void)vsnprintf(job->job_name, sizeof(job->job_name), fmt, ap);
740 	va_end(ap);
741 
742 	job->job_lock = lock;
743 	job->job_thread = NULL;
744 	job->job_refcnt = 0;
745 	cv_init(&job->job_cv, job->job_name);
746 	job->job_fn = fn;
747 }
748 
749 static void
750 threadpool_job_dead(struct threadpool_job *job)
751 {
752 
753 	panic("threadpool job %p ran after destruction", job);
754 }
755 
756 void
757 threadpool_job_destroy(struct threadpool_job *job)
758 {
759 
760 	ASSERT_SLEEPABLE();
761 
762 	KASSERTMSG((job->job_thread == NULL), "job %p still running", job);
763 
764 	mutex_enter(job->job_lock);
765 	while (0 < job->job_refcnt)
766 		cv_wait(&job->job_cv, job->job_lock);
767 	mutex_exit(job->job_lock);
768 
769 	job->job_lock = NULL;
770 	KASSERT(job->job_thread == NULL);
771 	KASSERT(job->job_refcnt == 0);
772 	KASSERT(!cv_has_waiters(&job->job_cv));
773 	cv_destroy(&job->job_cv);
774 	job->job_fn = threadpool_job_dead;
775 	(void)strlcpy(job->job_name, "deadjob", sizeof(job->job_name));
776 }
777 
778 static void
779 threadpool_job_hold(struct threadpool_job *job)
780 {
781 	unsigned int refcnt;
782 
783 	do {
784 		refcnt = job->job_refcnt;
785 		KASSERT(refcnt != UINT_MAX);
786 	} while (atomic_cas_uint(&job->job_refcnt, refcnt, (refcnt + 1))
787 	    != refcnt);
788 }
789 
790 static void
791 threadpool_job_rele(struct threadpool_job *job)
792 {
793 	unsigned int refcnt;
794 
795 	KASSERT(mutex_owned(job->job_lock));
796 
797 	do {
798 		refcnt = job->job_refcnt;
799 		KASSERT(0 < refcnt);
800 		if (refcnt == 1) {
801 			refcnt = atomic_dec_uint_nv(&job->job_refcnt);
802 			KASSERT(refcnt != UINT_MAX);
803 			if (refcnt == 0)
804 				cv_broadcast(&job->job_cv);
805 			return;
806 		}
807 	} while (atomic_cas_uint(&job->job_refcnt, refcnt, (refcnt - 1))
808 	    != refcnt);
809 }
810 
811 void
812 threadpool_job_done(struct threadpool_job *job)
813 {
814 
815 	KASSERT(mutex_owned(job->job_lock));
816 	KASSERT(job->job_thread != NULL);
817 	KASSERT(job->job_thread->tpt_lwp == curlwp);
818 
819 	/*
820 	 * We can safely read this field; it's only modified right before
821 	 * we call the job work function, and we are only preserving it
822 	 * to use here; no one cares if it contains junk afterward.
823 	 */
824 	lwp_lock(curlwp);
825 	curlwp->l_name = job->job_thread->tpt_lwp_savedname;
826 	lwp_unlock(curlwp);
827 
828 	/*
829 	 * Inline the work of threadpool_job_rele(); the job is already
830 	 * locked, the most likely scenario (XXXJRT only scenario?) is
831 	 * that we're dropping the last reference (the one taken in
832 	 * threadpool_schedule_job()), and we always do the cv_broadcast()
833 	 * anyway.
834 	 */
835 	KASSERT(0 < job->job_refcnt);
836 	unsigned int refcnt __diagused = atomic_dec_uint_nv(&job->job_refcnt);
837 	KASSERT(refcnt != UINT_MAX);
838 	cv_broadcast(&job->job_cv);
839 	job->job_thread = NULL;
840 }
841 
842 void
843 threadpool_schedule_job(struct threadpool *pool, struct threadpool_job *job)
844 {
845 
846 	KASSERT(mutex_owned(job->job_lock));
847 
848 	SDT_PROBE2(sdt, kernel, threadpool, schedule__job,  pool, job);
849 
850 	/*
851 	 * If the job's already running, let it keep running.  The job
852 	 * is guaranteed by the interlock not to end early -- if it had
853 	 * ended early, threadpool_job_done would have set job_thread
854 	 * to NULL under the interlock.
855 	 */
856 	if (__predict_true(job->job_thread != NULL)) {
857 		SDT_PROBE2(sdt, kernel, threadpool, schedule__job__running,
858 		    pool, job);
859 		return;
860 	}
861 
862 	threadpool_job_hold(job);
863 
864 	/* Otherwise, try to assign a thread to the job.  */
865 	mutex_spin_enter(&pool->tp_lock);
866 	if (__predict_false(TAILQ_EMPTY(&pool->tp_idle_threads))) {
867 		/* Nobody's idle.  Give it to the overseer.  */
868 		SDT_PROBE2(sdt, kernel, threadpool, schedule__job__overseer,
869 		    pool, job);
870 		job->job_thread = &pool->tp_overseer;
871 		TAILQ_INSERT_TAIL(&pool->tp_jobs, job, job_entry);
872 	} else {
873 		/* Assign it to the first idle thread.  */
874 		job->job_thread = TAILQ_FIRST(&pool->tp_idle_threads);
875 		SDT_PROBE3(sdt, kernel, threadpool, schedule__job__thread,
876 		    pool, job, job->job_thread->tpt_lwp);
877 		TAILQ_REMOVE(&pool->tp_idle_threads, job->job_thread,
878 		    tpt_entry);
879 		job->job_thread->tpt_job = job;
880 	}
881 
882 	/* Notify whomever we gave it to, overseer or idle thread.  */
883 	KASSERT(job->job_thread != NULL);
884 	cv_broadcast(&job->job_thread->tpt_cv);
885 	mutex_spin_exit(&pool->tp_lock);
886 }
887 
888 bool
889 threadpool_cancel_job_async(struct threadpool *pool, struct threadpool_job *job)
890 {
891 
892 	KASSERT(mutex_owned(job->job_lock));
893 
894 	/*
895 	 * XXXJRT This fails (albeit safely) when all of the following
896 	 * are true:
897 	 *
898 	 *	=> "pool" is something other than what the job was
899 	 *	   scheduled on.  This can legitimately occur if,
900 	 *	   for example, a job is percpu-scheduled on CPU0
901 	 *	   and then CPU1 attempts to cancel it without taking
902 	 *	   a remote pool reference.  (this might happen by
903 	 *	   "luck of the draw").
904 	 *
905 	 *	=> "job" is not yet running, but is assigned to the
906 	 *	   overseer.
907 	 *
908 	 * When this happens, this code makes the determination that
909 	 * the job is already running.  The failure mode is that the
910 	 * caller is told the job is running, and thus has to wait.
911 	 * The overseer will eventually get to it and the job will
912 	 * proceed as if it had been already running.
913 	 */
914 
915 	if (job->job_thread == NULL) {
916 		/* Nothing to do.  Guaranteed not running.  */
917 		return true;
918 	} else if (job->job_thread == &pool->tp_overseer) {
919 		/* Take it off the list to guarantee it won't run.  */
920 		job->job_thread = NULL;
921 		mutex_spin_enter(&pool->tp_lock);
922 		TAILQ_REMOVE(&pool->tp_jobs, job, job_entry);
923 		mutex_spin_exit(&pool->tp_lock);
924 		threadpool_job_rele(job);
925 		return true;
926 	} else {
927 		/* Too late -- already running.  */
928 		return false;
929 	}
930 }
931 
932 void
933 threadpool_cancel_job(struct threadpool *pool, struct threadpool_job *job)
934 {
935 
936 	ASSERT_SLEEPABLE();
937 
938 	KASSERT(mutex_owned(job->job_lock));
939 
940 	if (threadpool_cancel_job_async(pool, job))
941 		return;
942 
943 	/* Already running.  Wait for it to complete.  */
944 	while (job->job_thread != NULL)
945 		cv_wait(&job->job_cv, job->job_lock);
946 }
947 
948 /* Thread pool overseer thread */
949 
950 static void __dead
951 threadpool_overseer_thread(void *arg)
952 {
953 	struct threadpool_thread *const overseer = arg;
954 	struct threadpool *const pool = overseer->tpt_pool;
955 	struct lwp *lwp = NULL;
956 	int ktflags;
957 	int error;
958 
959 	KASSERT((pool->tp_cpu == NULL) || (pool->tp_cpu == curcpu()));
960 	KASSERT((pool->tp_cpu == NULL) || (curlwp->l_pflag & LP_BOUND));
961 
962 	/* Wait until we're initialized.  */
963 	mutex_spin_enter(&pool->tp_lock);
964 	while (overseer->tpt_lwp == NULL)
965 		cv_wait(&overseer->tpt_cv, &pool->tp_lock);
966 
967 	SDT_PROBE1(sdt, kernel, threadpool, overseer__start,  pool);
968 
969 	for (;;) {
970 		/* Wait until there's a job.  */
971 		while (TAILQ_EMPTY(&pool->tp_jobs)) {
972 			if (ISSET(pool->tp_flags, THREADPOOL_DYING)) {
973 				SDT_PROBE1(sdt, kernel, threadpool,
974 				    overseer__dying,  pool);
975 				break;
976 			}
977 			cv_wait(&overseer->tpt_cv, &pool->tp_lock);
978 		}
979 		if (__predict_false(TAILQ_EMPTY(&pool->tp_jobs)))
980 			break;
981 
982 		/* If there are no threads, we'll have to try to start one.  */
983 		if (TAILQ_EMPTY(&pool->tp_idle_threads)) {
984 			SDT_PROBE1(sdt, kernel, threadpool, overseer__spawn,
985 			    pool);
986 			threadpool_hold(pool);
987 			mutex_spin_exit(&pool->tp_lock);
988 
989 			struct threadpool_thread *const thread =
990 			    pool_cache_get(threadpool_thread_pc, PR_WAITOK);
991 			thread->tpt_lwp = NULL;
992 			thread->tpt_pool = pool;
993 			thread->tpt_job = NULL;
994 			cv_init(&thread->tpt_cv, "poolthrd");
995 
996 			ktflags = 0;
997 			ktflags |= KTHREAD_MPSAFE;
998 			if (pool->tp_pri < PRI_KERNEL)
999 				ktflags |= KTHREAD_TS;
1000 			error = kthread_create(pool->tp_pri, ktflags,
1001 			    pool->tp_cpu, &threadpool_thread, thread, &lwp,
1002 			    "poolthread/%d@%d",
1003 			    (pool->tp_cpu ? cpu_index(pool->tp_cpu) : -1),
1004 			    (int)pool->tp_pri);
1005 
1006 			mutex_spin_enter(&pool->tp_lock);
1007 			if (error) {
1008 				pool_cache_put(threadpool_thread_pc, thread);
1009 				threadpool_rele(pool);
1010 				/* XXX What to do to wait for memory?  */
1011 				(void)kpause("thrdplcr", false, hz,
1012 				    &pool->tp_lock);
1013 				continue;
1014 			}
1015 			/*
1016 			 * New kthread now owns the reference to the pool
1017 			 * taken above.
1018 			 */
1019 			KASSERT(lwp != NULL);
1020 			TAILQ_INSERT_TAIL(&pool->tp_idle_threads, thread,
1021 			    tpt_entry);
1022 			thread->tpt_lwp = lwp;
1023 			lwp = NULL;
1024 			cv_broadcast(&thread->tpt_cv);
1025 			continue;
1026 		}
1027 
1028 		/* There are idle threads, so try giving one a job.  */
1029 		struct threadpool_job *const job = TAILQ_FIRST(&pool->tp_jobs);
1030 		TAILQ_REMOVE(&pool->tp_jobs, job, job_entry);
1031 		/*
1032 		 * Take an extra reference on the job temporarily so that
1033 		 * it won't disappear on us while we have both locks dropped.
1034 		 */
1035 		threadpool_job_hold(job);
1036 		mutex_spin_exit(&pool->tp_lock);
1037 
1038 		mutex_enter(job->job_lock);
1039 		/* If the job was cancelled, we'll no longer be its thread.  */
1040 		if (__predict_true(job->job_thread == overseer)) {
1041 			mutex_spin_enter(&pool->tp_lock);
1042 			if (__predict_false(
1043 				    TAILQ_EMPTY(&pool->tp_idle_threads))) {
1044 				/*
1045 				 * Someone else snagged the thread
1046 				 * first.  We'll have to try again.
1047 				 */
1048 				SDT_PROBE2(sdt, kernel, threadpool,
1049 				    overseer__race,  pool, job);
1050 				TAILQ_INSERT_HEAD(&pool->tp_jobs, job,
1051 				    job_entry);
1052 			} else {
1053 				/*
1054 				 * Assign the job to the thread and
1055 				 * wake the thread so it starts work.
1056 				 */
1057 				struct threadpool_thread *const thread =
1058 				    TAILQ_FIRST(&pool->tp_idle_threads);
1059 
1060 				SDT_PROBE2(sdt, kernel, threadpool,
1061 				    overseer__assign,  job, thread->tpt_lwp);
1062 				KASSERT(thread->tpt_job == NULL);
1063 				TAILQ_REMOVE(&pool->tp_idle_threads, thread,
1064 				    tpt_entry);
1065 				thread->tpt_job = job;
1066 				job->job_thread = thread;
1067 				cv_broadcast(&thread->tpt_cv);
1068 			}
1069 			mutex_spin_exit(&pool->tp_lock);
1070 		}
1071 		threadpool_job_rele(job);
1072 		mutex_exit(job->job_lock);
1073 
1074 		mutex_spin_enter(&pool->tp_lock);
1075 	}
1076 	threadpool_rele(pool);
1077 	mutex_spin_exit(&pool->tp_lock);
1078 
1079 	SDT_PROBE1(sdt, kernel, threadpool, overseer__exit,  pool);
1080 
1081 	kthread_exit(0);
1082 }
1083 
1084 /* Thread pool thread */
1085 
1086 static void __dead
1087 threadpool_thread(void *arg)
1088 {
1089 	struct threadpool_thread *const thread = arg;
1090 	struct threadpool *const pool = thread->tpt_pool;
1091 
1092 	KASSERT((pool->tp_cpu == NULL) || (pool->tp_cpu == curcpu()));
1093 	KASSERT((pool->tp_cpu == NULL) || (curlwp->l_pflag & LP_BOUND));
1094 
1095 	/* Wait until we're initialized and on the queue.  */
1096 	mutex_spin_enter(&pool->tp_lock);
1097 	while (thread->tpt_lwp == NULL)
1098 		cv_wait(&thread->tpt_cv, &pool->tp_lock);
1099 
1100 	SDT_PROBE1(sdt, kernel, threadpool, thread__start,  pool);
1101 
1102 	KASSERT(thread->tpt_lwp == curlwp);
1103 	for (;;) {
1104 		/* Wait until we are assigned a job.  */
1105 		while (thread->tpt_job == NULL) {
1106 			if (ISSET(pool->tp_flags, THREADPOOL_DYING)) {
1107 				SDT_PROBE1(sdt, kernel, threadpool,
1108 				    thread__dying,  pool);
1109 				break;
1110 			}
1111 			if (cv_timedwait(&thread->tpt_cv, &pool->tp_lock,
1112 				mstohz(threadpool_idle_time_ms)))
1113 				break;
1114 		}
1115 		if (__predict_false(thread->tpt_job == NULL)) {
1116 			TAILQ_REMOVE(&pool->tp_idle_threads, thread,
1117 			    tpt_entry);
1118 			break;
1119 		}
1120 
1121 		struct threadpool_job *const job = thread->tpt_job;
1122 		KASSERT(job != NULL);
1123 
1124 		/* Set our lwp name to reflect what job we're doing.  */
1125 		lwp_lock(curlwp);
1126 		char *const lwp_name __diagused = curlwp->l_name;
1127 		thread->tpt_lwp_savedname = curlwp->l_name;
1128 		curlwp->l_name = job->job_name;
1129 		lwp_unlock(curlwp);
1130 
1131 		mutex_spin_exit(&pool->tp_lock);
1132 
1133 		SDT_PROBE2(sdt, kernel, threadpool, thread__job,  pool, job);
1134 
1135 		/* Run the job.  */
1136 		(*job->job_fn)(job);
1137 
1138 		/* lwp name restored in threadpool_job_done(). */
1139 		KASSERTMSG((curlwp->l_name == lwp_name),
1140 		    "someone forgot to call threadpool_job_done()!");
1141 
1142 		/*
1143 		 * We can compare pointers, but we can no longer deference
1144 		 * job after this because threadpool_job_done() drops the
1145 		 * last reference on the job while the job is locked.
1146 		 */
1147 
1148 		mutex_spin_enter(&pool->tp_lock);
1149 		KASSERT(thread->tpt_job == job);
1150 		thread->tpt_job = NULL;
1151 		TAILQ_INSERT_TAIL(&pool->tp_idle_threads, thread, tpt_entry);
1152 	}
1153 	threadpool_rele(pool);
1154 	mutex_spin_exit(&pool->tp_lock);
1155 
1156 	SDT_PROBE1(sdt, kernel, threadpool, thread__exit,  pool);
1157 
1158 	KASSERT(!cv_has_waiters(&thread->tpt_cv));
1159 	cv_destroy(&thread->tpt_cv);
1160 	pool_cache_put(threadpool_thread_pc, thread);
1161 	kthread_exit(0);
1162 }
1163