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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