kern_mutex.c revision 240475
1/*-
2 * Copyright (c) 1998 Berkeley Software Design, Inc. All rights reserved.
3 *
4 * Redistribution and use in source and binary forms, with or without
5 * modification, are permitted provided that the following conditions
6 * are met:
7 * 1. Redistributions of source code must retain the above copyright
8 *    notice, this list of conditions and the following disclaimer.
9 * 2. Redistributions in binary form must reproduce the above copyright
10 *    notice, this list of conditions and the following disclaimer in the
11 *    documentation and/or other materials provided with the distribution.
12 * 3. Berkeley Software Design Inc's name may not be used to endorse or
13 *    promote products derived from this software without specific prior
14 *    written permission.
15 *
16 * THIS SOFTWARE IS PROVIDED BY BERKELEY SOFTWARE DESIGN INC ``AS IS'' AND
17 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
18 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
19 * ARE DISCLAIMED.  IN NO EVENT SHALL BERKELEY SOFTWARE DESIGN INC BE LIABLE
20 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
21 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
22 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
23 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
24 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
25 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
26 * SUCH DAMAGE.
27 *
28 *	from BSDI $Id: mutex_witness.c,v 1.1.2.20 2000/04/27 03:10:27 cp Exp $
29 *	and BSDI $Id: synch_machdep.c,v 2.3.2.39 2000/04/27 03:10:25 cp Exp $
30 */
31
32/*
33 * Machine independent bits of mutex implementation.
34 */
35
36#include <sys/cdefs.h>
37__FBSDID("$FreeBSD: head/sys/kern/kern_mutex.c 240475 2012-09-13 22:26:22Z attilio $");
38
39#include "opt_adaptive_mutexes.h"
40#include "opt_ddb.h"
41#include "opt_global.h"
42#include "opt_hwpmc_hooks.h"
43#include "opt_kdtrace.h"
44#include "opt_sched.h"
45
46#include <sys/param.h>
47#include <sys/systm.h>
48#include <sys/bus.h>
49#include <sys/conf.h>
50#include <sys/kdb.h>
51#include <sys/kernel.h>
52#include <sys/ktr.h>
53#include <sys/lock.h>
54#include <sys/malloc.h>
55#include <sys/mutex.h>
56#include <sys/proc.h>
57#include <sys/resourcevar.h>
58#include <sys/sched.h>
59#include <sys/sbuf.h>
60#include <sys/sysctl.h>
61#include <sys/turnstile.h>
62#include <sys/vmmeter.h>
63#include <sys/lock_profile.h>
64
65#include <machine/atomic.h>
66#include <machine/bus.h>
67#include <machine/cpu.h>
68
69#include <ddb/ddb.h>
70
71#include <fs/devfs/devfs_int.h>
72
73#include <vm/vm.h>
74#include <vm/vm_extern.h>
75
76#if defined(SMP) && !defined(NO_ADAPTIVE_MUTEXES)
77#define	ADAPTIVE_MUTEXES
78#endif
79
80#ifdef HWPMC_HOOKS
81#include <sys/pmckern.h>
82PMC_SOFT_DEFINE( , , lock, failed);
83#endif
84
85/*
86 * Internal utility macros.
87 */
88#define mtx_unowned(m)	((m)->mtx_lock == MTX_UNOWNED)
89
90#define	mtx_destroyed(m) ((m)->mtx_lock == MTX_DESTROYED)
91
92#define	mtx_owner(m)	((struct thread *)((m)->mtx_lock & ~MTX_FLAGMASK))
93
94static void	assert_mtx(const struct lock_object *lock, int what);
95#ifdef DDB
96static void	db_show_mtx(const struct lock_object *lock);
97#endif
98static void	lock_mtx(struct lock_object *lock, int how);
99static void	lock_spin(struct lock_object *lock, int how);
100#ifdef KDTRACE_HOOKS
101static int	owner_mtx(const struct lock_object *lock,
102		    struct thread **owner);
103#endif
104static int	unlock_mtx(struct lock_object *lock);
105static int	unlock_spin(struct lock_object *lock);
106
107/*
108 * Lock classes for sleep and spin mutexes.
109 */
110struct lock_class lock_class_mtx_sleep = {
111	.lc_name = "sleep mutex",
112	.lc_flags = LC_SLEEPLOCK | LC_RECURSABLE,
113	.lc_assert = assert_mtx,
114#ifdef DDB
115	.lc_ddb_show = db_show_mtx,
116#endif
117	.lc_lock = lock_mtx,
118	.lc_unlock = unlock_mtx,
119#ifdef KDTRACE_HOOKS
120	.lc_owner = owner_mtx,
121#endif
122};
123struct lock_class lock_class_mtx_spin = {
124	.lc_name = "spin mutex",
125	.lc_flags = LC_SPINLOCK | LC_RECURSABLE,
126	.lc_assert = assert_mtx,
127#ifdef DDB
128	.lc_ddb_show = db_show_mtx,
129#endif
130	.lc_lock = lock_spin,
131	.lc_unlock = unlock_spin,
132#ifdef KDTRACE_HOOKS
133	.lc_owner = owner_mtx,
134#endif
135};
136
137/*
138 * System-wide mutexes
139 */
140struct mtx blocked_lock;
141struct mtx Giant;
142
143void
144assert_mtx(const struct lock_object *lock, int what)
145{
146
147	mtx_assert((const struct mtx *)lock, what);
148}
149
150void
151lock_mtx(struct lock_object *lock, int how)
152{
153
154	mtx_lock((struct mtx *)lock);
155}
156
157void
158lock_spin(struct lock_object *lock, int how)
159{
160
161	panic("spin locks can only use msleep_spin");
162}
163
164int
165unlock_mtx(struct lock_object *lock)
166{
167	struct mtx *m;
168
169	m = (struct mtx *)lock;
170	mtx_assert(m, MA_OWNED | MA_NOTRECURSED);
171	mtx_unlock(m);
172	return (0);
173}
174
175int
176unlock_spin(struct lock_object *lock)
177{
178
179	panic("spin locks can only use msleep_spin");
180}
181
182#ifdef KDTRACE_HOOKS
183int
184owner_mtx(const struct lock_object *lock, struct thread **owner)
185{
186	const struct mtx *m = (const struct mtx *)lock;
187
188	*owner = mtx_owner(m);
189	return (mtx_unowned(m) == 0);
190}
191#endif
192
193/*
194 * Function versions of the inlined __mtx_* macros.  These are used by
195 * modules and can also be called from assembly language if needed.
196 */
197void
198_mtx_lock_flags(struct mtx *m, int opts, const char *file, int line)
199{
200
201	if (SCHEDULER_STOPPED())
202		return;
203	KASSERT(!TD_IS_IDLETHREAD(curthread),
204	    ("mtx_lock() by idle thread %p on sleep mutex %s @ %s:%d",
205	    curthread, m->lock_object.lo_name, file, line));
206	KASSERT(m->mtx_lock != MTX_DESTROYED,
207	    ("mtx_lock() of destroyed mutex @ %s:%d", file, line));
208	KASSERT(LOCK_CLASS(&m->lock_object) == &lock_class_mtx_sleep,
209	    ("mtx_lock() of spin mutex %s @ %s:%d", m->lock_object.lo_name,
210	    file, line));
211	WITNESS_CHECKORDER(&m->lock_object, opts | LOP_NEWORDER | LOP_EXCLUSIVE,
212	    file, line, NULL);
213
214	__mtx_lock(m, curthread, opts, file, line);
215	LOCK_LOG_LOCK("LOCK", &m->lock_object, opts, m->mtx_recurse, file,
216	    line);
217	WITNESS_LOCK(&m->lock_object, opts | LOP_EXCLUSIVE, file, line);
218	curthread->td_locks++;
219}
220
221void
222_mtx_unlock_flags(struct mtx *m, int opts, const char *file, int line)
223{
224
225	if (SCHEDULER_STOPPED())
226		return;
227	KASSERT(m->mtx_lock != MTX_DESTROYED,
228	    ("mtx_unlock() of destroyed mutex @ %s:%d", file, line));
229	KASSERT(LOCK_CLASS(&m->lock_object) == &lock_class_mtx_sleep,
230	    ("mtx_unlock() of spin mutex %s @ %s:%d", m->lock_object.lo_name,
231	    file, line));
232	curthread->td_locks--;
233	WITNESS_UNLOCK(&m->lock_object, opts | LOP_EXCLUSIVE, file, line);
234	LOCK_LOG_LOCK("UNLOCK", &m->lock_object, opts, m->mtx_recurse, file,
235	    line);
236	mtx_assert(m, MA_OWNED);
237
238	if (m->mtx_recurse == 0)
239		LOCKSTAT_PROFILE_RELEASE_LOCK(LS_MTX_UNLOCK_RELEASE, m);
240	__mtx_unlock(m, curthread, opts, file, line);
241}
242
243void
244_mtx_lock_spin_flags(struct mtx *m, int opts, const char *file, int line)
245{
246
247	if (SCHEDULER_STOPPED())
248		return;
249	KASSERT(m->mtx_lock != MTX_DESTROYED,
250	    ("mtx_lock_spin() of destroyed mutex @ %s:%d", file, line));
251	KASSERT(LOCK_CLASS(&m->lock_object) == &lock_class_mtx_spin,
252	    ("mtx_lock_spin() of sleep mutex %s @ %s:%d",
253	    m->lock_object.lo_name, file, line));
254	if (mtx_owned(m))
255		KASSERT((m->lock_object.lo_flags & LO_RECURSABLE) != 0,
256	    ("mtx_lock_spin: recursed on non-recursive mutex %s @ %s:%d\n",
257		    m->lock_object.lo_name, file, line));
258	WITNESS_CHECKORDER(&m->lock_object, opts | LOP_NEWORDER | LOP_EXCLUSIVE,
259	    file, line, NULL);
260	__mtx_lock_spin(m, curthread, opts, file, line);
261	LOCK_LOG_LOCK("LOCK", &m->lock_object, opts, m->mtx_recurse, file,
262	    line);
263	WITNESS_LOCK(&m->lock_object, opts | LOP_EXCLUSIVE, file, line);
264}
265
266void
267_mtx_unlock_spin_flags(struct mtx *m, int opts, const char *file, int line)
268{
269
270	if (SCHEDULER_STOPPED())
271		return;
272	KASSERT(m->mtx_lock != MTX_DESTROYED,
273	    ("mtx_unlock_spin() of destroyed mutex @ %s:%d", file, line));
274	KASSERT(LOCK_CLASS(&m->lock_object) == &lock_class_mtx_spin,
275	    ("mtx_unlock_spin() of sleep mutex %s @ %s:%d",
276	    m->lock_object.lo_name, file, line));
277	WITNESS_UNLOCK(&m->lock_object, opts | LOP_EXCLUSIVE, file, line);
278	LOCK_LOG_LOCK("UNLOCK", &m->lock_object, opts, m->mtx_recurse, file,
279	    line);
280	mtx_assert(m, MA_OWNED);
281
282	__mtx_unlock_spin(m);
283}
284
285/*
286 * The important part of mtx_trylock{,_flags}()
287 * Tries to acquire lock `m.'  If this function is called on a mutex that
288 * is already owned, it will recursively acquire the lock.
289 */
290int
291mtx_trylock_flags_(struct mtx *m, int opts, const char *file, int line)
292{
293#ifdef LOCK_PROFILING
294	uint64_t waittime = 0;
295	int contested = 0;
296#endif
297	int rval;
298
299	if (SCHEDULER_STOPPED())
300		return (1);
301
302	KASSERT(!TD_IS_IDLETHREAD(curthread),
303	    ("mtx_trylock() by idle thread %p on sleep mutex %s @ %s:%d",
304	    curthread, m->lock_object.lo_name, file, line));
305	KASSERT(m->mtx_lock != MTX_DESTROYED,
306	    ("mtx_trylock() of destroyed mutex @ %s:%d", file, line));
307	KASSERT(LOCK_CLASS(&m->lock_object) == &lock_class_mtx_sleep,
308	    ("mtx_trylock() of spin mutex %s @ %s:%d", m->lock_object.lo_name,
309	    file, line));
310
311	if (mtx_owned(m) && (m->lock_object.lo_flags & LO_RECURSABLE) != 0) {
312		m->mtx_recurse++;
313		atomic_set_ptr(&m->mtx_lock, MTX_RECURSED);
314		rval = 1;
315	} else
316		rval = _mtx_obtain_lock(m, (uintptr_t)curthread);
317
318	LOCK_LOG_TRY("LOCK", &m->lock_object, opts, rval, file, line);
319	if (rval) {
320		WITNESS_LOCK(&m->lock_object, opts | LOP_EXCLUSIVE | LOP_TRYLOCK,
321		    file, line);
322		curthread->td_locks++;
323		if (m->mtx_recurse == 0)
324			LOCKSTAT_PROFILE_OBTAIN_LOCK_SUCCESS(LS_MTX_LOCK_ACQUIRE,
325			    m, contested, waittime, file, line);
326
327	}
328
329	return (rval);
330}
331
332/*
333 * _mtx_lock_sleep: the tougher part of acquiring an MTX_DEF lock.
334 *
335 * We call this if the lock is either contested (i.e. we need to go to
336 * sleep waiting for it), or if we need to recurse on it.
337 */
338void
339_mtx_lock_sleep(struct mtx *m, uintptr_t tid, int opts, const char *file,
340    int line)
341{
342	struct turnstile *ts;
343	uintptr_t v;
344#ifdef ADAPTIVE_MUTEXES
345	volatile struct thread *owner;
346#endif
347#ifdef KTR
348	int cont_logged = 0;
349#endif
350#ifdef LOCK_PROFILING
351	int contested = 0;
352	uint64_t waittime = 0;
353#endif
354#ifdef KDTRACE_HOOKS
355	uint64_t spin_cnt = 0;
356	uint64_t sleep_cnt = 0;
357	int64_t sleep_time = 0;
358#endif
359
360	if (SCHEDULER_STOPPED())
361		return;
362
363	if (mtx_owned(m)) {
364		KASSERT((m->lock_object.lo_flags & LO_RECURSABLE) != 0,
365	    ("_mtx_lock_sleep: recursed on non-recursive mutex %s @ %s:%d\n",
366		    m->lock_object.lo_name, file, line));
367		m->mtx_recurse++;
368		atomic_set_ptr(&m->mtx_lock, MTX_RECURSED);
369		if (LOCK_LOG_TEST(&m->lock_object, opts))
370			CTR1(KTR_LOCK, "_mtx_lock_sleep: %p recursing", m);
371		return;
372	}
373
374#ifdef HWPMC_HOOKS
375	PMC_SOFT_CALL( , , lock, failed);
376#endif
377	lock_profile_obtain_lock_failed(&m->lock_object,
378		    &contested, &waittime);
379	if (LOCK_LOG_TEST(&m->lock_object, opts))
380		CTR4(KTR_LOCK,
381		    "_mtx_lock_sleep: %s contested (lock=%p) at %s:%d",
382		    m->lock_object.lo_name, (void *)m->mtx_lock, file, line);
383
384	while (!_mtx_obtain_lock(m, tid)) {
385#ifdef KDTRACE_HOOKS
386		spin_cnt++;
387#endif
388#ifdef ADAPTIVE_MUTEXES
389		/*
390		 * If the owner is running on another CPU, spin until the
391		 * owner stops running or the state of the lock changes.
392		 */
393		v = m->mtx_lock;
394		if (v != MTX_UNOWNED) {
395			owner = (struct thread *)(v & ~MTX_FLAGMASK);
396			if (TD_IS_RUNNING(owner)) {
397				if (LOCK_LOG_TEST(&m->lock_object, 0))
398					CTR3(KTR_LOCK,
399					    "%s: spinning on %p held by %p",
400					    __func__, m, owner);
401				while (mtx_owner(m) == owner &&
402				    TD_IS_RUNNING(owner)) {
403					cpu_spinwait();
404#ifdef KDTRACE_HOOKS
405					spin_cnt++;
406#endif
407				}
408				continue;
409			}
410		}
411#endif
412
413		ts = turnstile_trywait(&m->lock_object);
414		v = m->mtx_lock;
415
416		/*
417		 * Check if the lock has been released while spinning for
418		 * the turnstile chain lock.
419		 */
420		if (v == MTX_UNOWNED) {
421			turnstile_cancel(ts);
422			continue;
423		}
424
425#ifdef ADAPTIVE_MUTEXES
426		/*
427		 * The current lock owner might have started executing
428		 * on another CPU (or the lock could have changed
429		 * owners) while we were waiting on the turnstile
430		 * chain lock.  If so, drop the turnstile lock and try
431		 * again.
432		 */
433		owner = (struct thread *)(v & ~MTX_FLAGMASK);
434		if (TD_IS_RUNNING(owner)) {
435			turnstile_cancel(ts);
436			continue;
437		}
438#endif
439
440		/*
441		 * If the mutex isn't already contested and a failure occurs
442		 * setting the contested bit, the mutex was either released
443		 * or the state of the MTX_RECURSED bit changed.
444		 */
445		if ((v & MTX_CONTESTED) == 0 &&
446		    !atomic_cmpset_ptr(&m->mtx_lock, v, v | MTX_CONTESTED)) {
447			turnstile_cancel(ts);
448			continue;
449		}
450
451		/*
452		 * We definitely must sleep for this lock.
453		 */
454		mtx_assert(m, MA_NOTOWNED);
455
456#ifdef KTR
457		if (!cont_logged) {
458			CTR6(KTR_CONTENTION,
459			    "contention: %p at %s:%d wants %s, taken by %s:%d",
460			    (void *)tid, file, line, m->lock_object.lo_name,
461			    WITNESS_FILE(&m->lock_object),
462			    WITNESS_LINE(&m->lock_object));
463			cont_logged = 1;
464		}
465#endif
466
467		/*
468		 * Block on the turnstile.
469		 */
470#ifdef KDTRACE_HOOKS
471		sleep_time -= lockstat_nsecs();
472#endif
473		turnstile_wait(ts, mtx_owner(m), TS_EXCLUSIVE_QUEUE);
474#ifdef KDTRACE_HOOKS
475		sleep_time += lockstat_nsecs();
476		sleep_cnt++;
477#endif
478	}
479#ifdef KTR
480	if (cont_logged) {
481		CTR4(KTR_CONTENTION,
482		    "contention end: %s acquired by %p at %s:%d",
483		    m->lock_object.lo_name, (void *)tid, file, line);
484	}
485#endif
486	LOCKSTAT_PROFILE_OBTAIN_LOCK_SUCCESS(LS_MTX_LOCK_ACQUIRE, m, contested,
487	    waittime, file, line);
488#ifdef KDTRACE_HOOKS
489	if (sleep_time)
490		LOCKSTAT_RECORD1(LS_MTX_LOCK_BLOCK, m, sleep_time);
491
492	/*
493	 * Only record the loops spinning and not sleeping.
494	 */
495	if (spin_cnt > sleep_cnt)
496		LOCKSTAT_RECORD1(LS_MTX_LOCK_SPIN, m, (spin_cnt - sleep_cnt));
497#endif
498}
499
500static void
501_mtx_lock_spin_failed(struct mtx *m)
502{
503	struct thread *td;
504
505	td = mtx_owner(m);
506
507	/* If the mutex is unlocked, try again. */
508	if (td == NULL)
509		return;
510
511	printf( "spin lock %p (%s) held by %p (tid %d) too long\n",
512	    m, m->lock_object.lo_name, td, td->td_tid);
513#ifdef WITNESS
514	witness_display_spinlock(&m->lock_object, td, printf);
515#endif
516	panic("spin lock held too long");
517}
518
519#ifdef SMP
520/*
521 * _mtx_lock_spin: the tougher part of acquiring an MTX_SPIN lock.
522 *
523 * This is only called if we need to actually spin for the lock. Recursion
524 * is handled inline.
525 */
526void
527_mtx_lock_spin(struct mtx *m, uintptr_t tid, int opts, const char *file,
528    int line)
529{
530	int i = 0;
531#ifdef LOCK_PROFILING
532	int contested = 0;
533	uint64_t waittime = 0;
534#endif
535
536	if (SCHEDULER_STOPPED())
537		return;
538
539	if (LOCK_LOG_TEST(&m->lock_object, opts))
540		CTR1(KTR_LOCK, "_mtx_lock_spin: %p spinning", m);
541
542#ifdef HWPMC_HOOKS
543	PMC_SOFT_CALL( , , lock, failed);
544#endif
545	lock_profile_obtain_lock_failed(&m->lock_object, &contested, &waittime);
546	while (!_mtx_obtain_lock(m, tid)) {
547
548		/* Give interrupts a chance while we spin. */
549		spinlock_exit();
550		while (m->mtx_lock != MTX_UNOWNED) {
551			if (i++ < 10000000) {
552				cpu_spinwait();
553				continue;
554			}
555			if (i < 60000000 || kdb_active || panicstr != NULL)
556				DELAY(1);
557			else
558				_mtx_lock_spin_failed(m);
559			cpu_spinwait();
560		}
561		spinlock_enter();
562	}
563
564	if (LOCK_LOG_TEST(&m->lock_object, opts))
565		CTR1(KTR_LOCK, "_mtx_lock_spin: %p spin done", m);
566
567	LOCKSTAT_PROFILE_OBTAIN_LOCK_SUCCESS(LS_MTX_SPIN_LOCK_ACQUIRE, m,
568	    contested, waittime, (file), (line));
569	LOCKSTAT_RECORD1(LS_MTX_SPIN_LOCK_SPIN, m, i);
570}
571#endif /* SMP */
572
573void
574thread_lock_flags_(struct thread *td, int opts, const char *file, int line)
575{
576	struct mtx *m;
577	uintptr_t tid;
578	int i;
579#ifdef LOCK_PROFILING
580	int contested = 0;
581	uint64_t waittime = 0;
582#endif
583#ifdef KDTRACE_HOOKS
584	uint64_t spin_cnt = 0;
585#endif
586
587	i = 0;
588	tid = (uintptr_t)curthread;
589
590	if (SCHEDULER_STOPPED())
591		return;
592
593	for (;;) {
594retry:
595		spinlock_enter();
596		m = td->td_lock;
597		KASSERT(m->mtx_lock != MTX_DESTROYED,
598		    ("thread_lock() of destroyed mutex @ %s:%d", file, line));
599		KASSERT(LOCK_CLASS(&m->lock_object) == &lock_class_mtx_spin,
600		    ("thread_lock() of sleep mutex %s @ %s:%d",
601		    m->lock_object.lo_name, file, line));
602		if (mtx_owned(m))
603			KASSERT((m->lock_object.lo_flags & LO_RECURSABLE) != 0,
604	    ("thread_lock: recursed on non-recursive mutex %s @ %s:%d\n",
605			    m->lock_object.lo_name, file, line));
606		WITNESS_CHECKORDER(&m->lock_object,
607		    opts | LOP_NEWORDER | LOP_EXCLUSIVE, file, line, NULL);
608		while (!_mtx_obtain_lock(m, tid)) {
609#ifdef KDTRACE_HOOKS
610			spin_cnt++;
611#endif
612			if (m->mtx_lock == tid) {
613				m->mtx_recurse++;
614				break;
615			}
616#ifdef HWPMC_HOOKS
617			PMC_SOFT_CALL( , , lock, failed);
618#endif
619			lock_profile_obtain_lock_failed(&m->lock_object,
620			    &contested, &waittime);
621			/* Give interrupts a chance while we spin. */
622			spinlock_exit();
623			while (m->mtx_lock != MTX_UNOWNED) {
624				if (i++ < 10000000)
625					cpu_spinwait();
626				else if (i < 60000000 ||
627				    kdb_active || panicstr != NULL)
628					DELAY(1);
629				else
630					_mtx_lock_spin_failed(m);
631				cpu_spinwait();
632				if (m != td->td_lock)
633					goto retry;
634			}
635			spinlock_enter();
636		}
637		if (m == td->td_lock)
638			break;
639		__mtx_unlock_spin(m);	/* does spinlock_exit() */
640#ifdef KDTRACE_HOOKS
641		spin_cnt++;
642#endif
643	}
644	if (m->mtx_recurse == 0)
645		LOCKSTAT_PROFILE_OBTAIN_LOCK_SUCCESS(LS_MTX_SPIN_LOCK_ACQUIRE,
646		    m, contested, waittime, (file), (line));
647	LOCK_LOG_LOCK("LOCK", &m->lock_object, opts, m->mtx_recurse, file,
648	    line);
649	WITNESS_LOCK(&m->lock_object, opts | LOP_EXCLUSIVE, file, line);
650	LOCKSTAT_RECORD1(LS_THREAD_LOCK_SPIN, m, spin_cnt);
651}
652
653struct mtx *
654thread_lock_block(struct thread *td)
655{
656	struct mtx *lock;
657
658	THREAD_LOCK_ASSERT(td, MA_OWNED);
659	lock = td->td_lock;
660	td->td_lock = &blocked_lock;
661	mtx_unlock_spin(lock);
662
663	return (lock);
664}
665
666void
667thread_lock_unblock(struct thread *td, struct mtx *new)
668{
669	mtx_assert(new, MA_OWNED);
670	MPASS(td->td_lock == &blocked_lock);
671	atomic_store_rel_ptr((volatile void *)&td->td_lock, (uintptr_t)new);
672}
673
674void
675thread_lock_set(struct thread *td, struct mtx *new)
676{
677	struct mtx *lock;
678
679	mtx_assert(new, MA_OWNED);
680	THREAD_LOCK_ASSERT(td, MA_OWNED);
681	lock = td->td_lock;
682	td->td_lock = new;
683	mtx_unlock_spin(lock);
684}
685
686/*
687 * _mtx_unlock_sleep: the tougher part of releasing an MTX_DEF lock.
688 *
689 * We are only called here if the lock is recursed or contested (i.e. we
690 * need to wake up a blocked thread).
691 */
692void
693_mtx_unlock_sleep(struct mtx *m, int opts, const char *file, int line)
694{
695	struct turnstile *ts;
696
697	if (SCHEDULER_STOPPED())
698		return;
699
700	if (mtx_recursed(m)) {
701		if (--(m->mtx_recurse) == 0)
702			atomic_clear_ptr(&m->mtx_lock, MTX_RECURSED);
703		if (LOCK_LOG_TEST(&m->lock_object, opts))
704			CTR1(KTR_LOCK, "_mtx_unlock_sleep: %p unrecurse", m);
705		return;
706	}
707
708	/*
709	 * We have to lock the chain before the turnstile so this turnstile
710	 * can be removed from the hash list if it is empty.
711	 */
712	turnstile_chain_lock(&m->lock_object);
713	ts = turnstile_lookup(&m->lock_object);
714	if (LOCK_LOG_TEST(&m->lock_object, opts))
715		CTR1(KTR_LOCK, "_mtx_unlock_sleep: %p contested", m);
716	MPASS(ts != NULL);
717	turnstile_broadcast(ts, TS_EXCLUSIVE_QUEUE);
718	_mtx_release_lock_quick(m);
719
720	/*
721	 * This turnstile is now no longer associated with the mutex.  We can
722	 * unlock the chain lock so a new turnstile may take it's place.
723	 */
724	turnstile_unpend(ts, TS_EXCLUSIVE_LOCK);
725	turnstile_chain_unlock(&m->lock_object);
726}
727
728/*
729 * All the unlocking of MTX_SPIN locks is done inline.
730 * See the __mtx_unlock_spin() macro for the details.
731 */
732
733/*
734 * The backing function for the INVARIANTS-enabled mtx_assert()
735 */
736#ifdef INVARIANT_SUPPORT
737void
738_mtx_assert(const struct mtx *m, int what, const char *file, int line)
739{
740
741	if (panicstr != NULL || dumping)
742		return;
743	switch (what) {
744	case MA_OWNED:
745	case MA_OWNED | MA_RECURSED:
746	case MA_OWNED | MA_NOTRECURSED:
747		if (!mtx_owned(m))
748			panic("mutex %s not owned at %s:%d",
749			    m->lock_object.lo_name, file, line);
750		if (mtx_recursed(m)) {
751			if ((what & MA_NOTRECURSED) != 0)
752				panic("mutex %s recursed at %s:%d",
753				    m->lock_object.lo_name, file, line);
754		} else if ((what & MA_RECURSED) != 0) {
755			panic("mutex %s unrecursed at %s:%d",
756			    m->lock_object.lo_name, file, line);
757		}
758		break;
759	case MA_NOTOWNED:
760		if (mtx_owned(m))
761			panic("mutex %s owned at %s:%d",
762			    m->lock_object.lo_name, file, line);
763		break;
764	default:
765		panic("unknown mtx_assert at %s:%d", file, line);
766	}
767}
768#endif
769
770/*
771 * The MUTEX_DEBUG-enabled mtx_validate()
772 *
773 * Most of these checks have been moved off into the LO_INITIALIZED flag
774 * maintained by the witness code.
775 */
776#ifdef MUTEX_DEBUG
777
778void	mtx_validate(struct mtx *);
779
780void
781mtx_validate(struct mtx *m)
782{
783
784/*
785 * XXX: When kernacc() does not require Giant we can reenable this check
786 */
787#ifdef notyet
788	/*
789	 * Can't call kernacc() from early init386(), especially when
790	 * initializing Giant mutex, because some stuff in kernacc()
791	 * requires Giant itself.
792	 */
793	if (!cold)
794		if (!kernacc((caddr_t)m, sizeof(m),
795		    VM_PROT_READ | VM_PROT_WRITE))
796			panic("Can't read and write to mutex %p", m);
797#endif
798}
799#endif
800
801/*
802 * General init routine used by the MTX_SYSINIT() macro.
803 */
804void
805mtx_sysinit(void *arg)
806{
807	struct mtx_args *margs = arg;
808
809	mtx_init(margs->ma_mtx, margs->ma_desc, NULL, margs->ma_opts);
810}
811
812/*
813 * Mutex initialization routine; initialize lock `m' of type contained in
814 * `opts' with options contained in `opts' and name `name.'  The optional
815 * lock type `type' is used as a general lock category name for use with
816 * witness.
817 */
818void
819mtx_init(struct mtx *m, const char *name, const char *type, int opts)
820{
821	struct lock_class *class;
822	int flags;
823
824	MPASS((opts & ~(MTX_SPIN | MTX_QUIET | MTX_RECURSE |
825		MTX_NOWITNESS | MTX_DUPOK | MTX_NOPROFILE)) == 0);
826	ASSERT_ATOMIC_LOAD_PTR(m->mtx_lock,
827	    ("%s: mtx_lock not aligned for %s: %p", __func__, name,
828	    &m->mtx_lock));
829
830#ifdef MUTEX_DEBUG
831	/* Diagnostic and error correction */
832	mtx_validate(m);
833#endif
834
835	/* Determine lock class and lock flags. */
836	if (opts & MTX_SPIN)
837		class = &lock_class_mtx_spin;
838	else
839		class = &lock_class_mtx_sleep;
840	flags = 0;
841	if (opts & MTX_QUIET)
842		flags |= LO_QUIET;
843	if (opts & MTX_RECURSE)
844		flags |= LO_RECURSABLE;
845	if ((opts & MTX_NOWITNESS) == 0)
846		flags |= LO_WITNESS;
847	if (opts & MTX_DUPOK)
848		flags |= LO_DUPOK;
849	if (opts & MTX_NOPROFILE)
850		flags |= LO_NOPROFILE;
851
852	/* Initialize mutex. */
853	m->mtx_lock = MTX_UNOWNED;
854	m->mtx_recurse = 0;
855
856	lock_init(&m->lock_object, class, name, type, flags);
857}
858
859/*
860 * Remove lock `m' from all_mtx queue.  We don't allow MTX_QUIET to be
861 * passed in as a flag here because if the corresponding mtx_init() was
862 * called with MTX_QUIET set, then it will already be set in the mutex's
863 * flags.
864 */
865void
866mtx_destroy(struct mtx *m)
867{
868
869	if (!mtx_owned(m))
870		MPASS(mtx_unowned(m));
871	else {
872		MPASS((m->mtx_lock & (MTX_RECURSED|MTX_CONTESTED)) == 0);
873
874		/* Perform the non-mtx related part of mtx_unlock_spin(). */
875		if (LOCK_CLASS(&m->lock_object) == &lock_class_mtx_spin)
876			spinlock_exit();
877		else
878			curthread->td_locks--;
879
880		lock_profile_release_lock(&m->lock_object);
881		/* Tell witness this isn't locked to make it happy. */
882		WITNESS_UNLOCK(&m->lock_object, LOP_EXCLUSIVE, __FILE__,
883		    __LINE__);
884	}
885
886	m->mtx_lock = MTX_DESTROYED;
887	lock_destroy(&m->lock_object);
888}
889
890/*
891 * Intialize the mutex code and system mutexes.  This is called from the MD
892 * startup code prior to mi_startup().  The per-CPU data space needs to be
893 * setup before this is called.
894 */
895void
896mutex_init(void)
897{
898
899	/* Setup turnstiles so that sleep mutexes work. */
900	init_turnstiles();
901
902	/*
903	 * Initialize mutexes.
904	 */
905	mtx_init(&Giant, "Giant", NULL, MTX_DEF | MTX_RECURSE);
906	mtx_init(&blocked_lock, "blocked lock", NULL, MTX_SPIN);
907	blocked_lock.mtx_lock = 0xdeadc0de;	/* Always blocked. */
908	mtx_init(&proc0.p_mtx, "process lock", NULL, MTX_DEF | MTX_DUPOK);
909	mtx_init(&proc0.p_slock, "process slock", NULL, MTX_SPIN | MTX_RECURSE);
910	mtx_init(&devmtx, "cdev", NULL, MTX_DEF);
911	mtx_lock(&Giant);
912}
913
914#ifdef DDB
915void
916db_show_mtx(const struct lock_object *lock)
917{
918	struct thread *td;
919	const struct mtx *m;
920
921	m = (const struct mtx *)lock;
922
923	db_printf(" flags: {");
924	if (LOCK_CLASS(lock) == &lock_class_mtx_spin)
925		db_printf("SPIN");
926	else
927		db_printf("DEF");
928	if (m->lock_object.lo_flags & LO_RECURSABLE)
929		db_printf(", RECURSE");
930	if (m->lock_object.lo_flags & LO_DUPOK)
931		db_printf(", DUPOK");
932	db_printf("}\n");
933	db_printf(" state: {");
934	if (mtx_unowned(m))
935		db_printf("UNOWNED");
936	else if (mtx_destroyed(m))
937		db_printf("DESTROYED");
938	else {
939		db_printf("OWNED");
940		if (m->mtx_lock & MTX_CONTESTED)
941			db_printf(", CONTESTED");
942		if (m->mtx_lock & MTX_RECURSED)
943			db_printf(", RECURSED");
944	}
945	db_printf("}\n");
946	if (!mtx_unowned(m) && !mtx_destroyed(m)) {
947		td = mtx_owner(m);
948		db_printf(" owner: %p (tid %d, pid %d, \"%s\")\n", td,
949		    td->td_tid, td->td_proc->p_pid, td->td_name);
950		if (mtx_recursed(m))
951			db_printf(" recursed: %d\n", m->mtx_recurse);
952	}
953}
954#endif
955