kern_lock.c revision 1.70 1 /* $NetBSD: kern_lock.c,v 1.70 2003/01/19 14:40:55 pk Exp $ */
2
3 /*-
4 * Copyright (c) 1999, 2000 The NetBSD Foundation, Inc.
5 * All rights reserved.
6 *
7 * This code is derived from software contributed to The NetBSD Foundation
8 * by Jason R. Thorpe of the Numerical Aerospace Simulation Facility,
9 * NASA Ames Research Center.
10 *
11 * This code is derived from software contributed to The NetBSD Foundation
12 * by Ross Harvey.
13 *
14 * Redistribution and use in source and binary forms, with or without
15 * modification, are permitted provided that the following conditions
16 * are met:
17 * 1. Redistributions of source code must retain the above copyright
18 * notice, this list of conditions and the following disclaimer.
19 * 2. Redistributions in binary form must reproduce the above copyright
20 * notice, this list of conditions and the following disclaimer in the
21 * documentation and/or other materials provided with the distribution.
22 * 3. All advertising materials mentioning features or use of this software
23 * must display the following acknowledgement:
24 * This product includes software developed by the NetBSD
25 * Foundation, Inc. and its contributors.
26 * 4. Neither the name of The NetBSD Foundation nor the names of its
27 * contributors may be used to endorse or promote products derived
28 * from this software without specific prior written permission.
29 *
30 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
31 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
32 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
33 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
34 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
35 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
36 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
37 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
38 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
39 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
40 * POSSIBILITY OF SUCH DAMAGE.
41 */
42
43 /*
44 * Copyright (c) 1995
45 * The Regents of the University of California. All rights reserved.
46 *
47 * This code contains ideas from software contributed to Berkeley by
48 * Avadis Tevanian, Jr., Michael Wayne Young, and the Mach Operating
49 * System project at Carnegie-Mellon University.
50 *
51 * Redistribution and use in source and binary forms, with or without
52 * modification, are permitted provided that the following conditions
53 * are met:
54 * 1. Redistributions of source code must retain the above copyright
55 * notice, this list of conditions and the following disclaimer.
56 * 2. Redistributions in binary form must reproduce the above copyright
57 * notice, this list of conditions and the following disclaimer in the
58 * documentation and/or other materials provided with the distribution.
59 * 3. All advertising materials mentioning features or use of this software
60 * must display the following acknowledgement:
61 * This product includes software developed by the University of
62 * California, Berkeley and its contributors.
63 * 4. Neither the name of the University nor the names of its contributors
64 * may be used to endorse or promote products derived from this software
65 * without specific prior written permission.
66 *
67 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
68 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
69 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
70 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
71 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
72 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
73 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
74 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
75 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
76 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
77 * SUCH DAMAGE.
78 *
79 * @(#)kern_lock.c 8.18 (Berkeley) 5/21/95
80 */
81
82 #include <sys/cdefs.h>
83 __KERNEL_RCSID(0, "$NetBSD: kern_lock.c,v 1.70 2003/01/19 14:40:55 pk Exp $");
84
85 #include "opt_multiprocessor.h"
86 #include "opt_lockdebug.h"
87 #include "opt_ddb.h"
88
89 #include <sys/param.h>
90 #include <sys/proc.h>
91 #include <sys/lock.h>
92 #include <sys/systm.h>
93 #include <machine/cpu.h>
94
95 #if defined(LOCKDEBUG)
96 #include <sys/syslog.h>
97 /*
98 * note that stdarg.h and the ansi style va_start macro is used for both
99 * ansi and traditional c compiles.
100 * XXX: this requires that stdarg.h define: va_alist and va_dcl
101 */
102 #include <machine/stdarg.h>
103
104 void lock_printf(const char *fmt, ...)
105 __attribute__((__format__(__printf__,1,2)));
106
107 int lock_debug_syslog = 0; /* defaults to printf, but can be patched */
108
109 #ifdef DDB
110 #include <ddb/ddbvar.h>
111 #include <machine/db_machdep.h>
112 #include <ddb/db_command.h>
113 #include <ddb/db_interface.h>
114 #endif
115 #endif
116
117 /*
118 * Locking primitives implementation.
119 * Locks provide shared/exclusive synchronization.
120 */
121
122 #if defined(LOCKDEBUG) || defined(DIAGNOSTIC) /* { */
123 #if defined(MULTIPROCESSOR) /* { */
124 #define COUNT_CPU(cpu_id, x) \
125 curcpu()->ci_spin_locks += (x)
126 #else
127 u_long spin_locks;
128 #define COUNT_CPU(cpu_id, x) spin_locks += (x)
129 #endif /* MULTIPROCESSOR */ /* } */
130
131 #define COUNT(lkp, l, cpu_id, x) \
132 do { \
133 if ((lkp)->lk_flags & LK_SPIN) \
134 COUNT_CPU((cpu_id), (x)); \
135 else \
136 (l)->l_locks += (x); \
137 } while (/*CONSTCOND*/0)
138 #else
139 #define COUNT(lkp, p, cpu_id, x)
140 #define COUNT_CPU(cpu_id, x)
141 #endif /* LOCKDEBUG || DIAGNOSTIC */ /* } */
142
143 #ifndef SPINLOCK_SPIN_HOOK /* from <machine/lock.h> */
144 #define SPINLOCK_SPIN_HOOK /* nothing */
145 #endif
146
147 #define INTERLOCK_ACQUIRE(lkp, flags, s) \
148 do { \
149 if ((flags) & LK_SPIN) \
150 s = spllock(); \
151 simple_lock(&(lkp)->lk_interlock); \
152 } while (/*CONSTCOND*/ 0)
153
154 #define INTERLOCK_RELEASE(lkp, flags, s) \
155 do { \
156 simple_unlock(&(lkp)->lk_interlock); \
157 if ((flags) & LK_SPIN) \
158 splx(s); \
159 } while (/*CONSTCOND*/ 0)
160
161 #ifdef DDB /* { */
162 #ifdef MULTIPROCESSOR
163 int simple_lock_debugger = 1; /* more serious on MP */
164 #else
165 int simple_lock_debugger = 0;
166 #endif
167 #define SLOCK_DEBUGGER() if (simple_lock_debugger) Debugger()
168 #define SLOCK_TRACE() \
169 db_stack_trace_print((db_expr_t)__builtin_frame_address(0), \
170 TRUE, 65535, "", printf);
171 #else
172 #define SLOCK_DEBUGGER() /* nothing */
173 #define SLOCK_TRACE() /* nothing */
174 #endif /* } */
175
176 #if defined(LOCKDEBUG)
177 #if defined(DDB)
178 #define SPINLOCK_SPINCHECK_DEBUGGER Debugger()
179 #else
180 #define SPINLOCK_SPINCHECK_DEBUGGER /* nothing */
181 #endif
182
183 #define SPINLOCK_SPINCHECK_DECL \
184 /* 32-bits of count -- wrap constitutes a "spinout" */ \
185 uint32_t __spinc = 0
186
187 #define SPINLOCK_SPINCHECK \
188 do { \
189 if (++__spinc == 0) { \
190 printf("LK_SPIN spinout, excl %d, share %d\n", \
191 lkp->lk_exclusivecount, lkp->lk_sharecount); \
192 if (lkp->lk_exclusivecount) \
193 printf("held by CPU %lu\n", \
194 (u_long) lkp->lk_cpu); \
195 if (lkp->lk_lock_file) \
196 printf("last locked at %s:%d\n", \
197 lkp->lk_lock_file, lkp->lk_lock_line); \
198 if (lkp->lk_unlock_file) \
199 printf("last unlocked at %s:%d\n", \
200 lkp->lk_unlock_file, lkp->lk_unlock_line); \
201 SLOCK_TRACE(); \
202 SPINLOCK_SPINCHECK_DEBUGGER; \
203 } \
204 } while (/*CONSTCOND*/ 0)
205 #else
206 #define SPINLOCK_SPINCHECK_DECL /* nothing */
207 #define SPINLOCK_SPINCHECK /* nothing */
208 #endif /* LOCKDEBUG && DDB */
209
210 /*
211 * Acquire a resource.
212 */
213 #define ACQUIRE(lkp, error, extflags, drain, wanted) \
214 if ((extflags) & LK_SPIN) { \
215 int interlocked; \
216 SPINLOCK_SPINCHECK_DECL; \
217 \
218 if ((drain) == 0) \
219 (lkp)->lk_waitcount++; \
220 for (interlocked = 1;;) { \
221 SPINLOCK_SPINCHECK; \
222 if (wanted) { \
223 if (interlocked) { \
224 INTERLOCK_RELEASE((lkp), \
225 LK_SPIN, s); \
226 interlocked = 0; \
227 } \
228 SPINLOCK_SPIN_HOOK; \
229 } else if (interlocked) { \
230 break; \
231 } else { \
232 INTERLOCK_ACQUIRE((lkp), LK_SPIN, s); \
233 interlocked = 1; \
234 } \
235 } \
236 if ((drain) == 0) \
237 (lkp)->lk_waitcount--; \
238 KASSERT((wanted) == 0); \
239 error = 0; /* sanity */ \
240 } else { \
241 for (error = 0; wanted; ) { \
242 if ((drain)) \
243 (lkp)->lk_flags |= LK_WAITDRAIN; \
244 else \
245 (lkp)->lk_waitcount++; \
246 /* XXX Cast away volatile. */ \
247 error = ltsleep((drain) ? \
248 (void *)&(lkp)->lk_flags : \
249 (void *)(lkp), (lkp)->lk_prio, \
250 (lkp)->lk_wmesg, (lkp)->lk_timo, \
251 &(lkp)->lk_interlock); \
252 if ((drain) == 0) \
253 (lkp)->lk_waitcount--; \
254 if (error) \
255 break; \
256 if ((extflags) & LK_SLEEPFAIL) { \
257 error = ENOLCK; \
258 break; \
259 } \
260 } \
261 }
262
263 #define SETHOLDER(lkp, pid, lid, cpu_id) \
264 do { \
265 if ((lkp)->lk_flags & LK_SPIN) \
266 (lkp)->lk_cpu = cpu_id; \
267 else { \
268 (lkp)->lk_lockholder = pid; \
269 (lkp)->lk_locklwp = lid; \
270 } \
271 } while (/*CONSTCOND*/0)
272
273 #define WEHOLDIT(lkp, pid, lid, cpu_id) \
274 (((lkp)->lk_flags & LK_SPIN) != 0 ? \
275 ((lkp)->lk_cpu == (cpu_id)) : \
276 ((lkp)->lk_lockholder == (pid) && (lkp)->lk_locklwp == (lid)))
277
278 #define WAKEUP_WAITER(lkp) \
279 do { \
280 if (((lkp)->lk_flags & LK_SPIN) == 0 && (lkp)->lk_waitcount) { \
281 /* XXX Cast away volatile. */ \
282 wakeup((void *)(lkp)); \
283 } \
284 } while (/*CONSTCOND*/0)
285
286 #if defined(LOCKDEBUG) /* { */
287 #if defined(MULTIPROCESSOR) /* { */
288 struct simplelock spinlock_list_slock = SIMPLELOCK_INITIALIZER;
289
290 #define SPINLOCK_LIST_LOCK() \
291 __cpu_simple_lock(&spinlock_list_slock.lock_data)
292
293 #define SPINLOCK_LIST_UNLOCK() \
294 __cpu_simple_unlock(&spinlock_list_slock.lock_data)
295 #else
296 #define SPINLOCK_LIST_LOCK() /* nothing */
297
298 #define SPINLOCK_LIST_UNLOCK() /* nothing */
299 #endif /* MULTIPROCESSOR */ /* } */
300
301 TAILQ_HEAD(, lock) spinlock_list =
302 TAILQ_HEAD_INITIALIZER(spinlock_list);
303
304 #define HAVEIT(lkp) \
305 do { \
306 if ((lkp)->lk_flags & LK_SPIN) { \
307 int s = spllock(); \
308 SPINLOCK_LIST_LOCK(); \
309 /* XXX Cast away volatile. */ \
310 TAILQ_INSERT_TAIL(&spinlock_list, (struct lock *)(lkp), \
311 lk_list); \
312 SPINLOCK_LIST_UNLOCK(); \
313 splx(s); \
314 } \
315 } while (/*CONSTCOND*/0)
316
317 #define DONTHAVEIT(lkp) \
318 do { \
319 if ((lkp)->lk_flags & LK_SPIN) { \
320 int s = spllock(); \
321 SPINLOCK_LIST_LOCK(); \
322 /* XXX Cast away volatile. */ \
323 TAILQ_REMOVE(&spinlock_list, (struct lock *)(lkp), \
324 lk_list); \
325 SPINLOCK_LIST_UNLOCK(); \
326 splx(s); \
327 } \
328 } while (/*CONSTCOND*/0)
329 #else
330 #define HAVEIT(lkp) /* nothing */
331
332 #define DONTHAVEIT(lkp) /* nothing */
333 #endif /* LOCKDEBUG */ /* } */
334
335 #if defined(LOCKDEBUG)
336 /*
337 * Lock debug printing routine; can be configured to print to console
338 * or log to syslog.
339 */
340 void
341 lock_printf(const char *fmt, ...)
342 {
343 char b[150];
344 va_list ap;
345
346 va_start(ap, fmt);
347 if (lock_debug_syslog)
348 vlog(LOG_DEBUG, fmt, ap);
349 else {
350 vsnprintf(b, sizeof(b), fmt, ap);
351 printf_nolog("%s", b);
352 }
353 va_end(ap);
354 }
355 #endif /* LOCKDEBUG */
356
357 /*
358 * Initialize a lock; required before use.
359 */
360 void
361 lockinit(struct lock *lkp, int prio, const char *wmesg, int timo, int flags)
362 {
363
364 memset(lkp, 0, sizeof(struct lock));
365 simple_lock_init(&lkp->lk_interlock);
366 lkp->lk_flags = flags & LK_EXTFLG_MASK;
367 if (flags & LK_SPIN)
368 lkp->lk_cpu = LK_NOCPU;
369 else {
370 lkp->lk_lockholder = LK_NOPROC;
371 lkp->lk_prio = prio;
372 lkp->lk_timo = timo;
373 }
374 lkp->lk_wmesg = wmesg; /* just a name for spin locks */
375 #if defined(LOCKDEBUG)
376 lkp->lk_lock_file = NULL;
377 lkp->lk_unlock_file = NULL;
378 #endif
379 }
380
381 /*
382 * Determine the status of a lock.
383 */
384 int
385 lockstatus(struct lock *lkp)
386 {
387 int s = 0, lock_type = 0;
388
389 INTERLOCK_ACQUIRE(lkp, lkp->lk_flags, s);
390 if (lkp->lk_exclusivecount != 0)
391 lock_type = LK_EXCLUSIVE;
392 else if (lkp->lk_sharecount != 0)
393 lock_type = LK_SHARED;
394 INTERLOCK_RELEASE(lkp, lkp->lk_flags, s);
395 return (lock_type);
396 }
397
398 #if defined(LOCKDEBUG) || defined(DIAGNOSTIC)
399 /*
400 * Make sure no spin locks are held by a CPU that is about
401 * to context switch.
402 */
403 void
404 spinlock_switchcheck(void)
405 {
406 u_long cnt;
407 int s;
408
409 s = spllock();
410 #if defined(MULTIPROCESSOR)
411 cnt = curcpu()->ci_spin_locks;
412 #else
413 cnt = spin_locks;
414 #endif
415 splx(s);
416
417 if (cnt != 0)
418 panic("spinlock_switchcheck: CPU %lu has %lu spin locks",
419 (u_long) cpu_number(), cnt);
420 }
421 #endif /* LOCKDEBUG || DIAGNOSTIC */
422
423 /*
424 * Locks and IPLs (interrupt priority levels):
425 *
426 * Locks which may be taken from interrupt context must be handled
427 * very carefully; you must spl to the highest IPL where the lock
428 * is needed before acquiring the lock.
429 *
430 * It is also important to avoid deadlock, since certain (very high
431 * priority) interrupts are often needed to keep the system as a whole
432 * from deadlocking, and must not be blocked while you are spinning
433 * waiting for a lower-priority lock.
434 *
435 * In addition, the lock-debugging hooks themselves need to use locks!
436 *
437 * A raw __cpu_simple_lock may be used from interrupts are long as it
438 * is acquired and held at a single IPL.
439 *
440 * A simple_lock (which is a __cpu_simple_lock wrapped with some
441 * debugging hooks) may be used at or below spllock(), which is
442 * typically at or just below splhigh() (i.e. blocks everything
443 * but certain machine-dependent extremely high priority interrupts).
444 *
445 * spinlockmgr spinlocks should be used at or below splsched().
446 *
447 * Some platforms may have interrupts of higher priority than splsched(),
448 * including hard serial interrupts, inter-processor interrupts, and
449 * kernel debugger traps.
450 */
451
452 /*
453 * XXX XXX kludge around another kludge..
454 *
455 * vfs_shutdown() may be called from interrupt context, either as a result
456 * of a panic, or from the debugger. It proceeds to call
457 * sys_sync(&proc0, ...), pretending its running on behalf of proc0
458 *
459 * We would like to make an attempt to sync the filesystems in this case, so
460 * if this happens, we treat attempts to acquire locks specially.
461 * All locks are acquired on behalf of proc0.
462 *
463 * If we've already paniced, we don't block waiting for locks, but
464 * just barge right ahead since we're already going down in flames.
465 */
466
467 /*
468 * Set, change, or release a lock.
469 *
470 * Shared requests increment the shared count. Exclusive requests set the
471 * LK_WANT_EXCL flag (preventing further shared locks), and wait for already
472 * accepted shared locks and shared-to-exclusive upgrades to go away.
473 */
474 int
475 #if defined(LOCKDEBUG)
476 _lockmgr(__volatile struct lock *lkp, u_int flags,
477 struct simplelock *interlkp, const char *file, int line)
478 #else
479 lockmgr(__volatile struct lock *lkp, u_int flags,
480 struct simplelock *interlkp)
481 #endif
482 {
483 int error;
484 pid_t pid;
485 lwpid_t lid;
486 int extflags;
487 cpuid_t cpu_id;
488 struct lwp *l = curlwp;
489 int lock_shutdown_noblock = 0;
490 int s = 0;
491
492 error = 0;
493
494 INTERLOCK_ACQUIRE(lkp, lkp->lk_flags, s);
495 if (flags & LK_INTERLOCK)
496 simple_unlock(interlkp);
497 extflags = (flags | lkp->lk_flags) & LK_EXTFLG_MASK;
498
499 #ifdef DIAGNOSTIC /* { */
500 /*
501 * Don't allow spins on sleep locks and don't allow sleeps
502 * on spin locks.
503 */
504 if ((flags ^ lkp->lk_flags) & LK_SPIN)
505 panic("lockmgr: sleep/spin mismatch");
506 #endif /* } */
507
508 if (extflags & LK_SPIN) {
509 pid = LK_KERNPROC;
510 lid = 0;
511 } else {
512 if (l == NULL) {
513 if (!doing_shutdown) {
514 panic("lockmgr: no context");
515 } else {
516 l = &lwp0;
517 if (panicstr && (!(flags & LK_NOWAIT))) {
518 flags |= LK_NOWAIT;
519 lock_shutdown_noblock = 1;
520 }
521 }
522 }
523 lid = l->l_lid;
524 pid = l->l_proc->p_pid;
525 }
526 cpu_id = cpu_number();
527
528 /*
529 * Once a lock has drained, the LK_DRAINING flag is set and an
530 * exclusive lock is returned. The only valid operation thereafter
531 * is a single release of that exclusive lock. This final release
532 * clears the LK_DRAINING flag and sets the LK_DRAINED flag. Any
533 * further requests of any sort will result in a panic. The bits
534 * selected for these two flags are chosen so that they will be set
535 * in memory that is freed (freed memory is filled with 0xdeadbeef).
536 * The final release is permitted to give a new lease on life to
537 * the lock by specifying LK_REENABLE.
538 */
539 if (lkp->lk_flags & (LK_DRAINING|LK_DRAINED)) {
540 #ifdef DIAGNOSTIC /* { */
541 if (lkp->lk_flags & LK_DRAINED)
542 panic("lockmgr: using decommissioned lock");
543 if ((flags & LK_TYPE_MASK) != LK_RELEASE ||
544 WEHOLDIT(lkp, pid, lid, cpu_id) == 0)
545 panic("lockmgr: non-release on draining lock: %d",
546 flags & LK_TYPE_MASK);
547 #endif /* DIAGNOSTIC */ /* } */
548 lkp->lk_flags &= ~LK_DRAINING;
549 if ((flags & LK_REENABLE) == 0)
550 lkp->lk_flags |= LK_DRAINED;
551 }
552
553 switch (flags & LK_TYPE_MASK) {
554
555 case LK_SHARED:
556 if (WEHOLDIT(lkp, pid, lid, cpu_id) == 0) {
557 /*
558 * If just polling, check to see if we will block.
559 */
560 if ((extflags & LK_NOWAIT) && (lkp->lk_flags &
561 (LK_HAVE_EXCL | LK_WANT_EXCL | LK_WANT_UPGRADE))) {
562 error = EBUSY;
563 break;
564 }
565 /*
566 * Wait for exclusive locks and upgrades to clear.
567 */
568 ACQUIRE(lkp, error, extflags, 0, lkp->lk_flags &
569 (LK_HAVE_EXCL | LK_WANT_EXCL | LK_WANT_UPGRADE));
570 if (error)
571 break;
572 lkp->lk_sharecount++;
573 COUNT(lkp, l, cpu_id, 1);
574 break;
575 }
576 /*
577 * We hold an exclusive lock, so downgrade it to shared.
578 * An alternative would be to fail with EDEADLK.
579 */
580 lkp->lk_sharecount++;
581 COUNT(lkp, l, cpu_id, 1);
582 /* fall into downgrade */
583
584 case LK_DOWNGRADE:
585 if (WEHOLDIT(lkp, pid, lid, cpu_id) == 0 ||
586 lkp->lk_exclusivecount == 0)
587 panic("lockmgr: not holding exclusive lock");
588 lkp->lk_sharecount += lkp->lk_exclusivecount;
589 lkp->lk_exclusivecount = 0;
590 lkp->lk_recurselevel = 0;
591 lkp->lk_flags &= ~LK_HAVE_EXCL;
592 SETHOLDER(lkp, LK_NOPROC, 0, LK_NOCPU);
593 #if defined(LOCKDEBUG)
594 lkp->lk_unlock_file = file;
595 lkp->lk_unlock_line = line;
596 #endif
597 DONTHAVEIT(lkp);
598 WAKEUP_WAITER(lkp);
599 break;
600
601 case LK_EXCLUPGRADE:
602 /*
603 * If another process is ahead of us to get an upgrade,
604 * then we want to fail rather than have an intervening
605 * exclusive access.
606 */
607 if (lkp->lk_flags & LK_WANT_UPGRADE) {
608 lkp->lk_sharecount--;
609 COUNT(lkp, l, cpu_id, -1);
610 error = EBUSY;
611 break;
612 }
613 /* fall into normal upgrade */
614
615 case LK_UPGRADE:
616 /*
617 * Upgrade a shared lock to an exclusive one. If another
618 * shared lock has already requested an upgrade to an
619 * exclusive lock, our shared lock is released and an
620 * exclusive lock is requested (which will be granted
621 * after the upgrade). If we return an error, the file
622 * will always be unlocked.
623 */
624 if (WEHOLDIT(lkp, pid, lid, cpu_id) || lkp->lk_sharecount <= 0)
625 panic("lockmgr: upgrade exclusive lock");
626 lkp->lk_sharecount--;
627 COUNT(lkp, l, cpu_id, -1);
628 /*
629 * If we are just polling, check to see if we will block.
630 */
631 if ((extflags & LK_NOWAIT) &&
632 ((lkp->lk_flags & LK_WANT_UPGRADE) ||
633 lkp->lk_sharecount > 1)) {
634 error = EBUSY;
635 break;
636 }
637 if ((lkp->lk_flags & LK_WANT_UPGRADE) == 0) {
638 /*
639 * We are first shared lock to request an upgrade, so
640 * request upgrade and wait for the shared count to
641 * drop to zero, then take exclusive lock.
642 */
643 lkp->lk_flags |= LK_WANT_UPGRADE;
644 ACQUIRE(lkp, error, extflags, 0, lkp->lk_sharecount);
645 lkp->lk_flags &= ~LK_WANT_UPGRADE;
646 if (error)
647 break;
648 lkp->lk_flags |= LK_HAVE_EXCL;
649 SETHOLDER(lkp, pid, lid, cpu_id);
650 #if defined(LOCKDEBUG)
651 lkp->lk_lock_file = file;
652 lkp->lk_lock_line = line;
653 #endif
654 HAVEIT(lkp);
655 if (lkp->lk_exclusivecount != 0)
656 panic("lockmgr: non-zero exclusive count");
657 lkp->lk_exclusivecount = 1;
658 if (extflags & LK_SETRECURSE)
659 lkp->lk_recurselevel = 1;
660 COUNT(lkp, l, cpu_id, 1);
661 break;
662 }
663 /*
664 * Someone else has requested upgrade. Release our shared
665 * lock, awaken upgrade requestor if we are the last shared
666 * lock, then request an exclusive lock.
667 */
668 if (lkp->lk_sharecount == 0)
669 WAKEUP_WAITER(lkp);
670 /* fall into exclusive request */
671
672 case LK_EXCLUSIVE:
673 if (WEHOLDIT(lkp, pid, lid, cpu_id)) {
674 /*
675 * Recursive lock.
676 */
677 if ((extflags & LK_CANRECURSE) == 0 &&
678 lkp->lk_recurselevel == 0) {
679 if (extflags & LK_RECURSEFAIL) {
680 error = EDEADLK;
681 break;
682 } else
683 panic("lockmgr: locking against myself");
684 }
685 lkp->lk_exclusivecount++;
686 if (extflags & LK_SETRECURSE &&
687 lkp->lk_recurselevel == 0)
688 lkp->lk_recurselevel = lkp->lk_exclusivecount;
689 COUNT(lkp, l, cpu_id, 1);
690 break;
691 }
692 /*
693 * If we are just polling, check to see if we will sleep.
694 */
695 if ((extflags & LK_NOWAIT) && ((lkp->lk_flags &
696 (LK_HAVE_EXCL | LK_WANT_EXCL | LK_WANT_UPGRADE)) ||
697 lkp->lk_sharecount != 0)) {
698 error = EBUSY;
699 break;
700 }
701 /*
702 * Try to acquire the want_exclusive flag.
703 */
704 ACQUIRE(lkp, error, extflags, 0, lkp->lk_flags &
705 (LK_HAVE_EXCL | LK_WANT_EXCL));
706 if (error)
707 break;
708 lkp->lk_flags |= LK_WANT_EXCL;
709 /*
710 * Wait for shared locks and upgrades to finish.
711 */
712 ACQUIRE(lkp, error, extflags, 0, lkp->lk_sharecount != 0 ||
713 (lkp->lk_flags & LK_WANT_UPGRADE));
714 lkp->lk_flags &= ~LK_WANT_EXCL;
715 if (error)
716 break;
717 lkp->lk_flags |= LK_HAVE_EXCL;
718 SETHOLDER(lkp, pid, lid, cpu_id);
719 #if defined(LOCKDEBUG)
720 lkp->lk_lock_file = file;
721 lkp->lk_lock_line = line;
722 #endif
723 HAVEIT(lkp);
724 if (lkp->lk_exclusivecount != 0)
725 panic("lockmgr: non-zero exclusive count");
726 lkp->lk_exclusivecount = 1;
727 if (extflags & LK_SETRECURSE)
728 lkp->lk_recurselevel = 1;
729 COUNT(lkp, l, cpu_id, 1);
730 break;
731
732 case LK_RELEASE:
733 if (lkp->lk_exclusivecount != 0) {
734 if (WEHOLDIT(lkp, pid, lid, cpu_id) == 0) {
735 if (lkp->lk_flags & LK_SPIN) {
736 panic("lockmgr: processor %lu, not "
737 "exclusive lock holder %lu "
738 "unlocking", cpu_id, lkp->lk_cpu);
739 } else {
740 panic("lockmgr: pid %d, not "
741 "exclusive lock holder %d "
742 "unlocking", pid,
743 lkp->lk_lockholder);
744 }
745 }
746 if (lkp->lk_exclusivecount == lkp->lk_recurselevel)
747 lkp->lk_recurselevel = 0;
748 lkp->lk_exclusivecount--;
749 COUNT(lkp, l, cpu_id, -1);
750 if (lkp->lk_exclusivecount == 0) {
751 lkp->lk_flags &= ~LK_HAVE_EXCL;
752 SETHOLDER(lkp, LK_NOPROC, 0, LK_NOCPU);
753 #if defined(LOCKDEBUG)
754 lkp->lk_unlock_file = file;
755 lkp->lk_unlock_line = line;
756 #endif
757 DONTHAVEIT(lkp);
758 }
759 } else if (lkp->lk_sharecount != 0) {
760 lkp->lk_sharecount--;
761 COUNT(lkp, l, cpu_id, -1);
762 }
763 #ifdef DIAGNOSTIC
764 else
765 panic("lockmgr: release of unlocked lock!");
766 #endif
767 WAKEUP_WAITER(lkp);
768 break;
769
770 case LK_DRAIN:
771 /*
772 * Check that we do not already hold the lock, as it can
773 * never drain if we do. Unfortunately, we have no way to
774 * check for holding a shared lock, but at least we can
775 * check for an exclusive one.
776 */
777 if (WEHOLDIT(lkp, pid, lid, cpu_id))
778 panic("lockmgr: draining against myself");
779 /*
780 * If we are just polling, check to see if we will sleep.
781 */
782 if ((extflags & LK_NOWAIT) && ((lkp->lk_flags &
783 (LK_HAVE_EXCL | LK_WANT_EXCL | LK_WANT_UPGRADE)) ||
784 lkp->lk_sharecount != 0 || lkp->lk_waitcount != 0)) {
785 error = EBUSY;
786 break;
787 }
788 ACQUIRE(lkp, error, extflags, 1,
789 ((lkp->lk_flags &
790 (LK_HAVE_EXCL | LK_WANT_EXCL | LK_WANT_UPGRADE)) ||
791 lkp->lk_sharecount != 0 ||
792 lkp->lk_waitcount != 0));
793 if (error)
794 break;
795 lkp->lk_flags |= LK_DRAINING | LK_HAVE_EXCL;
796 SETHOLDER(lkp, pid, lid, cpu_id);
797 #if defined(LOCKDEBUG)
798 lkp->lk_lock_file = file;
799 lkp->lk_lock_line = line;
800 #endif
801 HAVEIT(lkp);
802 lkp->lk_exclusivecount = 1;
803 /* XXX unlikely that we'd want this */
804 if (extflags & LK_SETRECURSE)
805 lkp->lk_recurselevel = 1;
806 COUNT(lkp, l, cpu_id, 1);
807 break;
808
809 default:
810 INTERLOCK_RELEASE(lkp, lkp->lk_flags, s);
811 panic("lockmgr: unknown locktype request %d",
812 flags & LK_TYPE_MASK);
813 /* NOTREACHED */
814 }
815 if ((lkp->lk_flags & (LK_WAITDRAIN|LK_SPIN)) == LK_WAITDRAIN &&
816 ((lkp->lk_flags &
817 (LK_HAVE_EXCL | LK_WANT_EXCL | LK_WANT_UPGRADE)) == 0 &&
818 lkp->lk_sharecount == 0 && lkp->lk_waitcount == 0)) {
819 lkp->lk_flags &= ~LK_WAITDRAIN;
820 wakeup((void *)&lkp->lk_flags);
821 }
822 /*
823 * Note that this panic will be a recursive panic, since
824 * we only set lock_shutdown_noblock above if panicstr != NULL.
825 */
826 if (error && lock_shutdown_noblock)
827 panic("lockmgr: deadlock (see previous panic)");
828
829 INTERLOCK_RELEASE(lkp, lkp->lk_flags, s);
830 return (error);
831 }
832
833 /*
834 * For a recursive spinlock held one or more times by the current CPU,
835 * release all N locks, and return N.
836 * Intended for use in mi_switch() shortly before context switching.
837 */
838
839 int
840 #if defined(LOCKDEBUG)
841 _spinlock_release_all(__volatile struct lock *lkp, const char *file, int line)
842 #else
843 spinlock_release_all(__volatile struct lock *lkp)
844 #endif
845 {
846 int s, count;
847 cpuid_t cpu_id;
848
849 KASSERT(lkp->lk_flags & LK_SPIN);
850
851 INTERLOCK_ACQUIRE(lkp, LK_SPIN, s);
852
853 cpu_id = cpu_number();
854 count = lkp->lk_exclusivecount;
855
856 if (count != 0) {
857 #ifdef DIAGNOSTIC
858 if (WEHOLDIT(lkp, 0, 0, cpu_id) == 0) {
859 panic("spinlock_release_all: processor %lu, not "
860 "exclusive lock holder %lu "
861 "unlocking", (long)cpu_id, lkp->lk_cpu);
862 }
863 #endif
864 lkp->lk_recurselevel = 0;
865 lkp->lk_exclusivecount = 0;
866 COUNT_CPU(cpu_id, -count);
867 lkp->lk_flags &= ~LK_HAVE_EXCL;
868 SETHOLDER(lkp, LK_NOPROC, 0, LK_NOCPU);
869 #if defined(LOCKDEBUG)
870 lkp->lk_unlock_file = file;
871 lkp->lk_unlock_line = line;
872 #endif
873 DONTHAVEIT(lkp);
874 }
875 #ifdef DIAGNOSTIC
876 else if (lkp->lk_sharecount != 0)
877 panic("spinlock_release_all: release of shared lock!");
878 else
879 panic("spinlock_release_all: release of unlocked lock!");
880 #endif
881 INTERLOCK_RELEASE(lkp, LK_SPIN, s);
882
883 return (count);
884 }
885
886 /*
887 * For a recursive spinlock held one or more times by the current CPU,
888 * release all N locks, and return N.
889 * Intended for use in mi_switch() right after resuming execution.
890 */
891
892 void
893 #if defined(LOCKDEBUG)
894 _spinlock_acquire_count(__volatile struct lock *lkp, int count,
895 const char *file, int line)
896 #else
897 spinlock_acquire_count(__volatile struct lock *lkp, int count)
898 #endif
899 {
900 int s, error;
901 cpuid_t cpu_id;
902
903 KASSERT(lkp->lk_flags & LK_SPIN);
904
905 INTERLOCK_ACQUIRE(lkp, LK_SPIN, s);
906
907 cpu_id = cpu_number();
908
909 #ifdef DIAGNOSTIC
910 if (WEHOLDIT(lkp, LK_NOPROC, 0, cpu_id))
911 panic("spinlock_acquire_count: processor %lu already holds lock", (long)cpu_id);
912 #endif
913 /*
914 * Try to acquire the want_exclusive flag.
915 */
916 ACQUIRE(lkp, error, LK_SPIN, 0, lkp->lk_flags &
917 (LK_HAVE_EXCL | LK_WANT_EXCL));
918 lkp->lk_flags |= LK_WANT_EXCL;
919 /*
920 * Wait for shared locks and upgrades to finish.
921 */
922 ACQUIRE(lkp, error, LK_SPIN, 0, lkp->lk_sharecount != 0 ||
923 (lkp->lk_flags & LK_WANT_UPGRADE));
924 lkp->lk_flags &= ~LK_WANT_EXCL;
925 lkp->lk_flags |= LK_HAVE_EXCL;
926 SETHOLDER(lkp, LK_NOPROC, 0, cpu_id);
927 #if defined(LOCKDEBUG)
928 lkp->lk_lock_file = file;
929 lkp->lk_lock_line = line;
930 #endif
931 HAVEIT(lkp);
932 if (lkp->lk_exclusivecount != 0)
933 panic("lockmgr: non-zero exclusive count");
934 lkp->lk_exclusivecount = count;
935 lkp->lk_recurselevel = 1;
936 COUNT_CPU(cpu_id, count);
937
938 INTERLOCK_RELEASE(lkp, lkp->lk_flags, s);
939 }
940
941
942
943 /*
944 * Print out information about state of a lock. Used by VOP_PRINT
945 * routines to display ststus about contained locks.
946 */
947 void
948 lockmgr_printinfo(__volatile struct lock *lkp)
949 {
950
951 if (lkp->lk_sharecount)
952 printf(" lock type %s: SHARED (count %d)", lkp->lk_wmesg,
953 lkp->lk_sharecount);
954 else if (lkp->lk_flags & LK_HAVE_EXCL) {
955 printf(" lock type %s: EXCL (count %d) by ",
956 lkp->lk_wmesg, lkp->lk_exclusivecount);
957 if (lkp->lk_flags & LK_SPIN)
958 printf("processor %lu", lkp->lk_cpu);
959 else
960 printf("pid %d.%d", lkp->lk_lockholder,
961 lkp->lk_locklwp);
962 } else
963 printf(" not locked");
964 if ((lkp->lk_flags & LK_SPIN) == 0 && lkp->lk_waitcount > 0)
965 printf(" with %d pending", lkp->lk_waitcount);
966 }
967
968 #if defined(LOCKDEBUG) /* { */
969 TAILQ_HEAD(, simplelock) simplelock_list =
970 TAILQ_HEAD_INITIALIZER(simplelock_list);
971
972 #if defined(MULTIPROCESSOR) /* { */
973 struct simplelock simplelock_list_slock = SIMPLELOCK_INITIALIZER;
974
975 #define SLOCK_LIST_LOCK() \
976 __cpu_simple_lock(&simplelock_list_slock.lock_data)
977
978 #define SLOCK_LIST_UNLOCK() \
979 __cpu_simple_unlock(&simplelock_list_slock.lock_data)
980
981 #define SLOCK_COUNT(x) \
982 curcpu()->ci_simple_locks += (x)
983 #else
984 u_long simple_locks;
985
986 #define SLOCK_LIST_LOCK() /* nothing */
987
988 #define SLOCK_LIST_UNLOCK() /* nothing */
989
990 #define SLOCK_COUNT(x) simple_locks += (x)
991 #endif /* MULTIPROCESSOR */ /* } */
992
993 #ifdef MULTIPROCESSOR
994 #define SLOCK_MP() lock_printf("on cpu %ld\n", \
995 (u_long) cpu_number())
996 #else
997 #define SLOCK_MP() /* nothing */
998 #endif
999
1000 #define SLOCK_WHERE(str, alp, id, l) \
1001 do { \
1002 lock_printf("\n"); \
1003 lock_printf(str); \
1004 lock_printf("lock: %p, currently at: %s:%d\n", (alp), (id), (l)); \
1005 SLOCK_MP(); \
1006 if ((alp)->lock_file != NULL) \
1007 lock_printf("last locked: %s:%d\n", (alp)->lock_file, \
1008 (alp)->lock_line); \
1009 if ((alp)->unlock_file != NULL) \
1010 lock_printf("last unlocked: %s:%d\n", (alp)->unlock_file, \
1011 (alp)->unlock_line); \
1012 SLOCK_TRACE() \
1013 SLOCK_DEBUGGER(); \
1014 } while (/*CONSTCOND*/0)
1015
1016 /*
1017 * Simple lock functions so that the debugger can see from whence
1018 * they are being called.
1019 */
1020 void
1021 simple_lock_init(struct simplelock *alp)
1022 {
1023
1024 #if defined(MULTIPROCESSOR) /* { */
1025 __cpu_simple_lock_init(&alp->lock_data);
1026 #else
1027 alp->lock_data = __SIMPLELOCK_UNLOCKED;
1028 #endif /* } */
1029 alp->lock_file = NULL;
1030 alp->lock_line = 0;
1031 alp->unlock_file = NULL;
1032 alp->unlock_line = 0;
1033 alp->lock_holder = LK_NOCPU;
1034 }
1035
1036 void
1037 _simple_lock(__volatile struct simplelock *alp, const char *id, int l)
1038 {
1039 cpuid_t cpu_id = cpu_number();
1040 int s;
1041
1042 s = spllock();
1043
1044 /*
1045 * MULTIPROCESSOR case: This is `safe' since if it's not us, we
1046 * don't take any action, and just fall into the normal spin case.
1047 */
1048 if (alp->lock_data == __SIMPLELOCK_LOCKED) {
1049 #if defined(MULTIPROCESSOR) /* { */
1050 if (alp->lock_holder == cpu_id) {
1051 SLOCK_WHERE("simple_lock: locking against myself\n",
1052 alp, id, l);
1053 goto out;
1054 }
1055 #else
1056 SLOCK_WHERE("simple_lock: lock held\n", alp, id, l);
1057 goto out;
1058 #endif /* MULTIPROCESSOR */ /* } */
1059 }
1060
1061 #if defined(MULTIPROCESSOR) /* { */
1062 /* Acquire the lock before modifying any fields. */
1063 splx(s);
1064 __cpu_simple_lock(&alp->lock_data);
1065 s = spllock();
1066 #else
1067 alp->lock_data = __SIMPLELOCK_LOCKED;
1068 #endif /* } */
1069
1070 if (alp->lock_holder != LK_NOCPU) {
1071 SLOCK_WHERE("simple_lock: uninitialized lock\n",
1072 alp, id, l);
1073 }
1074 alp->lock_file = id;
1075 alp->lock_line = l;
1076 alp->lock_holder = cpu_id;
1077
1078 SLOCK_LIST_LOCK();
1079 /* XXX Cast away volatile */
1080 TAILQ_INSERT_TAIL(&simplelock_list, (struct simplelock *)alp, list);
1081 SLOCK_LIST_UNLOCK();
1082
1083 SLOCK_COUNT(1);
1084
1085 out:
1086 splx(s);
1087 }
1088
1089 int
1090 _simple_lock_held(__volatile struct simplelock *alp)
1091 {
1092 #if defined(MULTIPROCESSOR) || defined(DIAGNOSTIC)
1093 cpuid_t cpu_id = cpu_number();
1094 #endif
1095 int s, locked = 0;
1096
1097 s = spllock();
1098
1099 #if defined(MULTIPROCESSOR)
1100 if (__cpu_simple_lock_try(&alp->lock_data) == 0)
1101 locked = (alp->lock_holder == cpu_id);
1102 else
1103 __cpu_simple_unlock(&alp->lock_data);
1104 #else
1105 if (alp->lock_data == __SIMPLELOCK_LOCKED) {
1106 locked = 1;
1107 KASSERT(alp->lock_holder == cpu_id);
1108 }
1109 #endif
1110
1111 splx(s);
1112
1113 return (locked);
1114 }
1115
1116 int
1117 _simple_lock_try(__volatile struct simplelock *alp, const char *id, int l)
1118 {
1119 cpuid_t cpu_id = cpu_number();
1120 int s, rv = 0;
1121
1122 s = spllock();
1123
1124 /*
1125 * MULTIPROCESSOR case: This is `safe' since if it's not us, we
1126 * don't take any action.
1127 */
1128 #if defined(MULTIPROCESSOR) /* { */
1129 if ((rv = __cpu_simple_lock_try(&alp->lock_data)) == 0) {
1130 if (alp->lock_holder == cpu_id)
1131 SLOCK_WHERE("simple_lock_try: locking against myself\n",
1132 alp, id, l);
1133 goto out;
1134 }
1135 #else
1136 if (alp->lock_data == __SIMPLELOCK_LOCKED) {
1137 SLOCK_WHERE("simple_lock_try: lock held\n", alp, id, l);
1138 goto out;
1139 }
1140 alp->lock_data = __SIMPLELOCK_LOCKED;
1141 #endif /* MULTIPROCESSOR */ /* } */
1142
1143 /*
1144 * At this point, we have acquired the lock.
1145 */
1146
1147 rv = 1;
1148
1149 alp->lock_file = id;
1150 alp->lock_line = l;
1151 alp->lock_holder = cpu_id;
1152
1153 SLOCK_LIST_LOCK();
1154 /* XXX Cast away volatile. */
1155 TAILQ_INSERT_TAIL(&simplelock_list, (struct simplelock *)alp, list);
1156 SLOCK_LIST_UNLOCK();
1157
1158 SLOCK_COUNT(1);
1159
1160 out:
1161 splx(s);
1162 return (rv);
1163 }
1164
1165 void
1166 _simple_unlock(__volatile struct simplelock *alp, const char *id, int l)
1167 {
1168 int s;
1169
1170 s = spllock();
1171
1172 /*
1173 * MULTIPROCESSOR case: This is `safe' because we think we hold
1174 * the lock, and if we don't, we don't take any action.
1175 */
1176 if (alp->lock_data == __SIMPLELOCK_UNLOCKED) {
1177 SLOCK_WHERE("simple_unlock: lock not held\n",
1178 alp, id, l);
1179 goto out;
1180 }
1181
1182 SLOCK_LIST_LOCK();
1183 TAILQ_REMOVE(&simplelock_list, alp, list);
1184 SLOCK_LIST_UNLOCK();
1185
1186 SLOCK_COUNT(-1);
1187
1188 alp->list.tqe_next = NULL; /* sanity */
1189 alp->list.tqe_prev = NULL; /* sanity */
1190
1191 alp->unlock_file = id;
1192 alp->unlock_line = l;
1193
1194 #if defined(MULTIPROCESSOR) /* { */
1195 alp->lock_holder = LK_NOCPU;
1196 /* Now that we've modified all fields, release the lock. */
1197 __cpu_simple_unlock(&alp->lock_data);
1198 #else
1199 alp->lock_data = __SIMPLELOCK_UNLOCKED;
1200 KASSERT(alp->lock_holder == cpu_number());
1201 alp->lock_holder = LK_NOCPU;
1202 #endif /* } */
1203
1204 out:
1205 splx(s);
1206 }
1207
1208 void
1209 simple_lock_dump(void)
1210 {
1211 struct simplelock *alp;
1212 int s;
1213
1214 s = spllock();
1215 SLOCK_LIST_LOCK();
1216 lock_printf("all simple locks:\n");
1217 TAILQ_FOREACH(alp, &simplelock_list, list) {
1218 lock_printf("%p CPU %lu %s:%d\n", alp, alp->lock_holder,
1219 alp->lock_file, alp->lock_line);
1220 }
1221 SLOCK_LIST_UNLOCK();
1222 splx(s);
1223 }
1224
1225 void
1226 simple_lock_freecheck(void *start, void *end)
1227 {
1228 struct simplelock *alp;
1229 int s;
1230
1231 s = spllock();
1232 SLOCK_LIST_LOCK();
1233 TAILQ_FOREACH(alp, &simplelock_list, list) {
1234 if ((void *)alp >= start && (void *)alp < end) {
1235 lock_printf("freeing simple_lock %p CPU %lu %s:%d\n",
1236 alp, alp->lock_holder, alp->lock_file,
1237 alp->lock_line);
1238 SLOCK_DEBUGGER();
1239 }
1240 }
1241 SLOCK_LIST_UNLOCK();
1242 splx(s);
1243 }
1244
1245 /*
1246 * We must be holding exactly one lock: the sched_lock.
1247 */
1248
1249 void
1250 simple_lock_switchcheck(void)
1251 {
1252
1253 simple_lock_only_held(&sched_lock, "switching");
1254 }
1255
1256 void
1257 simple_lock_only_held(volatile struct simplelock *lp, const char *where)
1258 {
1259 struct simplelock *alp;
1260 cpuid_t cpu_id = cpu_number();
1261 int s;
1262
1263 if (lp) {
1264 LOCK_ASSERT(simple_lock_held(lp));
1265 }
1266 s = spllock();
1267 SLOCK_LIST_LOCK();
1268 TAILQ_FOREACH(alp, &simplelock_list, list) {
1269 if (alp == lp)
1270 continue;
1271 if (alp->lock_holder == cpu_id)
1272 break;
1273 }
1274 SLOCK_LIST_UNLOCK();
1275 splx(s);
1276
1277 if (alp != NULL) {
1278 lock_printf("\n%s with held simple_lock %p "
1279 "CPU %lu %s:%d\n",
1280 where, alp, alp->lock_holder, alp->lock_file,
1281 alp->lock_line);
1282 SLOCK_TRACE();
1283 SLOCK_DEBUGGER();
1284 }
1285 }
1286 #endif /* LOCKDEBUG */ /* } */
1287
1288 #if defined(MULTIPROCESSOR)
1289 /*
1290 * Functions for manipulating the kernel_lock. We put them here
1291 * so that they show up in profiles.
1292 */
1293
1294 struct lock kernel_lock;
1295
1296 void
1297 _kernel_lock_init(void)
1298 {
1299
1300 spinlockinit(&kernel_lock, "klock", 0);
1301 }
1302
1303 /*
1304 * Acquire/release the kernel lock. Intended for use in the scheduler
1305 * and the lower half of the kernel.
1306 */
1307 void
1308 _kernel_lock(int flag)
1309 {
1310
1311 SCHED_ASSERT_UNLOCKED();
1312 spinlockmgr(&kernel_lock, flag, 0);
1313 }
1314
1315 void
1316 _kernel_unlock(void)
1317 {
1318
1319 spinlockmgr(&kernel_lock, LK_RELEASE, 0);
1320 }
1321
1322 /*
1323 * Acquire/release the kernel_lock on behalf of a process. Intended for
1324 * use in the top half of the kernel.
1325 */
1326 void
1327 _kernel_proc_lock(struct lwp *l)
1328 {
1329
1330 SCHED_ASSERT_UNLOCKED();
1331 spinlockmgr(&kernel_lock, LK_EXCLUSIVE, 0);
1332 l->l_flag |= L_BIGLOCK;
1333 }
1334
1335 void
1336 _kernel_proc_unlock(struct lwp *l)
1337 {
1338
1339 l->l_flag &= ~L_BIGLOCK;
1340 spinlockmgr(&kernel_lock, LK_RELEASE, 0);
1341 }
1342 #endif /* MULTIPROCESSOR */
1343