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kern_sleepq.c revision 1.18.2.1
      1  1.18.2.1     ad /*	$NetBSD: kern_sleepq.c,v 1.18.2.1 2007/12/08 17:57:43 ad Exp $	*/
      2       1.2     ad 
      3       1.2     ad /*-
      4       1.2     ad  * Copyright (c) 2006, 2007 The NetBSD Foundation, Inc.
      5       1.2     ad  * All rights reserved.
      6       1.2     ad  *
      7       1.2     ad  * This code is derived from software contributed to The NetBSD Foundation
      8       1.2     ad  * by Andrew Doran.
      9       1.2     ad  *
     10       1.2     ad  * Redistribution and use in source and binary forms, with or without
     11       1.2     ad  * modification, are permitted provided that the following conditions
     12       1.2     ad  * are met:
     13       1.2     ad  * 1. Redistributions of source code must retain the above copyright
     14       1.2     ad  *    notice, this list of conditions and the following disclaimer.
     15       1.2     ad  * 2. Redistributions in binary form must reproduce the above copyright
     16       1.2     ad  *    notice, this list of conditions and the following disclaimer in the
     17       1.2     ad  *    documentation and/or other materials provided with the distribution.
     18       1.2     ad  * 3. All advertising materials mentioning features or use of this software
     19       1.2     ad  *    must display the following acknowledgement:
     20       1.2     ad  *	This product includes software developed by the NetBSD
     21       1.2     ad  *	Foundation, Inc. and its contributors.
     22       1.2     ad  * 4. Neither the name of The NetBSD Foundation nor the names of its
     23       1.2     ad  *    contributors may be used to endorse or promote products derived
     24       1.2     ad  *    from this software without specific prior written permission.
     25       1.2     ad  *
     26       1.2     ad  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     27       1.2     ad  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     28       1.2     ad  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     29       1.2     ad  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     30       1.2     ad  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     31       1.2     ad  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     32       1.2     ad  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     33       1.2     ad  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     34       1.2     ad  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     35       1.2     ad  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     36       1.2     ad  * POSSIBILITY OF SUCH DAMAGE.
     37       1.2     ad  */
     38       1.2     ad 
     39       1.2     ad /*
     40       1.2     ad  * Sleep queue implementation, used by turnstiles and general sleep/wakeup
     41       1.2     ad  * interfaces.
     42       1.2     ad  */
     43       1.2     ad 
     44       1.2     ad #include <sys/cdefs.h>
     45  1.18.2.1     ad __KERNEL_RCSID(0, "$NetBSD: kern_sleepq.c,v 1.18.2.1 2007/12/08 17:57:43 ad Exp $");
     46       1.2     ad 
     47       1.2     ad #include <sys/param.h>
     48       1.2     ad #include <sys/lock.h>
     49       1.2     ad #include <sys/kernel.h>
     50       1.9   yamt #include <sys/cpu.h>
     51       1.2     ad #include <sys/pool.h>
     52       1.2     ad #include <sys/proc.h>
     53       1.2     ad #include <sys/resourcevar.h>
     54       1.2     ad #include <sys/sched.h>
     55       1.2     ad #include <sys/systm.h>
     56       1.2     ad #include <sys/sleepq.h>
     57       1.2     ad #include <sys/ktrace.h>
     58       1.2     ad 
     59       1.4     ad #include <uvm/uvm_extern.h>
     60       1.4     ad 
     61       1.8     ad int	sleepq_sigtoerror(lwp_t *, int);
     62       1.2     ad 
     63       1.2     ad /* General purpose sleep table, used by ltsleep() and condition variables. */
     64       1.2     ad sleeptab_t	sleeptab;
     65       1.2     ad 
     66       1.2     ad /*
     67       1.2     ad  * sleeptab_init:
     68       1.2     ad  *
     69       1.2     ad  *	Initialize a sleep table.
     70       1.2     ad  */
     71       1.2     ad void
     72       1.2     ad sleeptab_init(sleeptab_t *st)
     73       1.2     ad {
     74       1.2     ad 	sleepq_t *sq;
     75       1.2     ad 	int i;
     76       1.2     ad 
     77       1.2     ad 	for (i = 0; i < SLEEPTAB_HASH_SIZE; i++) {
     78       1.2     ad 		sq = &st->st_queues[i].st_queue;
     79  1.18.2.1     ad 		mutex_init(&st->st_queues[i].st_mutex, MUTEX_DEFAULT,
     80  1.18.2.1     ad 		    IPL_SCHED);
     81       1.2     ad 		sleepq_init(sq, &st->st_queues[i].st_mutex);
     82       1.2     ad 	}
     83       1.2     ad }
     84       1.2     ad 
     85       1.2     ad /*
     86       1.2     ad  * sleepq_init:
     87       1.2     ad  *
     88       1.2     ad  *	Prepare a sleep queue for use.
     89       1.2     ad  */
     90       1.2     ad void
     91       1.2     ad sleepq_init(sleepq_t *sq, kmutex_t *mtx)
     92       1.2     ad {
     93       1.2     ad 
     94       1.2     ad 	sq->sq_waiters = 0;
     95       1.2     ad 	sq->sq_mutex = mtx;
     96       1.2     ad 	TAILQ_INIT(&sq->sq_queue);
     97       1.2     ad }
     98       1.2     ad 
     99       1.2     ad /*
    100       1.2     ad  * sleepq_remove:
    101       1.2     ad  *
    102       1.2     ad  *	Remove an LWP from a sleep queue and wake it up.  Return non-zero if
    103       1.2     ad  *	the LWP is swapped out; if so the caller needs to awaken the swapper
    104       1.2     ad  *	to bring the LWP into memory.
    105       1.2     ad  */
    106       1.2     ad int
    107       1.8     ad sleepq_remove(sleepq_t *sq, lwp_t *l)
    108       1.2     ad {
    109       1.9   yamt 	struct schedstate_percpu *spc;
    110       1.2     ad 	struct cpu_info *ci;
    111      1.14     ad 	pri_t pri;
    112       1.2     ad 
    113       1.4     ad 	KASSERT(lwp_locked(l, sq->sq_mutex));
    114       1.2     ad 	KASSERT(sq->sq_waiters > 0);
    115       1.2     ad 
    116       1.2     ad 	sq->sq_waiters--;
    117       1.2     ad 	TAILQ_REMOVE(&sq->sq_queue, l, l_sleepchain);
    118       1.2     ad 
    119       1.2     ad #ifdef DIAGNOSTIC
    120       1.2     ad 	if (sq->sq_waiters == 0)
    121       1.2     ad 		KASSERT(TAILQ_FIRST(&sq->sq_queue) == NULL);
    122       1.2     ad 	else
    123       1.2     ad 		KASSERT(TAILQ_FIRST(&sq->sq_queue) != NULL);
    124       1.2     ad #endif
    125       1.2     ad 
    126       1.2     ad 	l->l_syncobj = &sched_syncobj;
    127       1.2     ad 	l->l_wchan = NULL;
    128       1.2     ad 	l->l_sleepq = NULL;
    129       1.5  pavel 	l->l_flag &= ~LW_SINTR;
    130       1.2     ad 
    131       1.9   yamt 	ci = l->l_cpu;
    132       1.9   yamt 	spc = &ci->ci_schedstate;
    133       1.9   yamt 
    134       1.2     ad 	/*
    135       1.2     ad 	 * If not sleeping, the LWP must have been suspended.  Let whoever
    136       1.2     ad 	 * holds it stopped set it running again.
    137       1.2     ad 	 */
    138       1.2     ad 	if (l->l_stat != LSSLEEP) {
    139      1.16  rmind 		KASSERT(l->l_stat == LSSTOP || l->l_stat == LSSUSPENDED);
    140       1.9   yamt 		lwp_setlock(l, &spc->spc_lwplock);
    141       1.2     ad 		return 0;
    142       1.2     ad 	}
    143       1.2     ad 
    144       1.2     ad 	/*
    145       1.2     ad 	 * If the LWP is still on the CPU, mark it as LSONPROC.  It may be
    146       1.2     ad 	 * about to call mi_switch(), in which case it will yield.
    147       1.2     ad 	 */
    148       1.9   yamt 	if ((l->l_flag & LW_RUNNING) != 0) {
    149       1.2     ad 		l->l_stat = LSONPROC;
    150       1.2     ad 		l->l_slptime = 0;
    151       1.9   yamt 		lwp_setlock(l, &spc->spc_lwplock);
    152       1.2     ad 		return 0;
    153       1.2     ad 	}
    154       1.2     ad 
    155       1.2     ad 	/*
    156      1.16  rmind 	 * Call the wake-up handler of scheduler.
    157      1.16  rmind 	 * It might change the CPU for this thread.
    158      1.16  rmind 	 */
    159      1.16  rmind 	sched_wakeup(l);
    160      1.16  rmind 	ci = l->l_cpu;
    161      1.16  rmind 	spc = &ci->ci_schedstate;
    162      1.16  rmind 
    163      1.16  rmind 	/*
    164      1.17   yamt 	 * Set it running.
    165       1.2     ad 	 */
    166       1.9   yamt 	spc_lock(ci);
    167       1.9   yamt 	lwp_setlock(l, spc->spc_mutex);
    168       1.9   yamt 	sched_setrunnable(l);
    169       1.2     ad 	l->l_stat = LSRUN;
    170       1.2     ad 	l->l_slptime = 0;
    171       1.5  pavel 	if ((l->l_flag & LW_INMEM) != 0) {
    172       1.9   yamt 		sched_enqueue(l, false);
    173      1.14     ad 		pri = lwp_eprio(l);
    174      1.14     ad 		/* XXX This test is not good enough! */
    175      1.18     ad 		if (pri > spc->spc_curpriority) {
    176      1.18     ad 			cpu_need_resched(ci,
    177      1.18     ad 			    (pri >= PRI_KERNEL ? RESCHED_IMMED : 0));
    178      1.14     ad 		}
    179       1.9   yamt 		spc_unlock(ci);
    180       1.2     ad 		return 0;
    181       1.2     ad 	}
    182       1.9   yamt 	spc_unlock(ci);
    183       1.2     ad 	return 1;
    184       1.2     ad }
    185       1.2     ad 
    186       1.2     ad /*
    187       1.2     ad  * sleepq_insert:
    188       1.2     ad  *
    189       1.2     ad  *	Insert an LWP into the sleep queue, optionally sorting by priority.
    190       1.2     ad  */
    191       1.2     ad inline void
    192       1.8     ad sleepq_insert(sleepq_t *sq, lwp_t *l, syncobj_t *sobj)
    193       1.2     ad {
    194       1.8     ad 	lwp_t *l2;
    195       1.6   yamt 	const int pri = lwp_eprio(l);
    196       1.2     ad 
    197       1.2     ad 	if ((sobj->sobj_flag & SOBJ_SLEEPQ_SORTED) != 0) {
    198       1.2     ad 		TAILQ_FOREACH(l2, &sq->sq_queue, l_sleepchain) {
    199      1.18     ad 			if (lwp_eprio(l2) < pri) {
    200       1.2     ad 				TAILQ_INSERT_BEFORE(l2, l, l_sleepchain);
    201       1.2     ad 				return;
    202       1.2     ad 			}
    203       1.2     ad 		}
    204       1.2     ad 	}
    205       1.2     ad 
    206      1.14     ad 	if ((sobj->sobj_flag & SOBJ_SLEEPQ_LIFO) != 0)
    207      1.14     ad 		TAILQ_INSERT_HEAD(&sq->sq_queue, l, l_sleepchain);
    208      1.14     ad 	else
    209      1.14     ad 		TAILQ_INSERT_TAIL(&sq->sq_queue, l, l_sleepchain);
    210       1.2     ad }
    211       1.2     ad 
    212       1.9   yamt /*
    213       1.9   yamt  * sleepq_enqueue:
    214       1.9   yamt  *
    215       1.9   yamt  *	Enter an LWP into the sleep queue and prepare for sleep.  The sleep
    216       1.9   yamt  *	queue must already be locked, and any interlock (such as the kernel
    217       1.9   yamt  *	lock) must have be released (see sleeptab_lookup(), sleepq_enter()).
    218       1.9   yamt  */
    219       1.2     ad void
    220      1.18     ad sleepq_enqueue(sleepq_t *sq, wchan_t wchan, const char *wmesg, syncobj_t *sobj)
    221       1.2     ad {
    222       1.8     ad 	lwp_t *l = curlwp;
    223       1.2     ad 
    224       1.4     ad 	KASSERT(mutex_owned(sq->sq_mutex));
    225       1.2     ad 	KASSERT(l->l_stat == LSONPROC);
    226       1.2     ad 	KASSERT(l->l_wchan == NULL && l->l_sleepq == NULL);
    227       1.2     ad 
    228       1.2     ad 	l->l_syncobj = sobj;
    229       1.2     ad 	l->l_wchan = wchan;
    230       1.2     ad 	l->l_sleepq = sq;
    231       1.2     ad 	l->l_wmesg = wmesg;
    232       1.2     ad 	l->l_slptime = 0;
    233       1.2     ad 	l->l_stat = LSSLEEP;
    234       1.2     ad 	l->l_sleeperr = 0;
    235       1.2     ad 
    236       1.2     ad 	sq->sq_waiters++;
    237       1.6   yamt 	sleepq_insert(sq, l, sobj);
    238      1.15  rmind 	sched_slept(l);
    239       1.6   yamt }
    240       1.6   yamt 
    241       1.9   yamt /*
    242       1.9   yamt  * sleepq_block:
    243       1.9   yamt  *
    244       1.9   yamt  *	After any intermediate step such as releasing an interlock, switch.
    245       1.9   yamt  * 	sleepq_block() may return early under exceptional conditions, for
    246       1.9   yamt  * 	example if the LWP's containing process is exiting.
    247       1.9   yamt  */
    248       1.9   yamt int
    249       1.9   yamt sleepq_block(int timo, bool catch)
    250       1.6   yamt {
    251      1.10     ad 	int error = 0, sig;
    252       1.9   yamt 	struct proc *p;
    253       1.8     ad 	lwp_t *l = curlwp;
    254      1.11     ad 	bool early = false;
    255       1.2     ad 
    256      1.12     ad 	ktrcsw(1, 0);
    257       1.4     ad 
    258       1.2     ad 	/*
    259       1.2     ad 	 * If sleeping interruptably, check for pending signals, exits or
    260       1.2     ad 	 * core dump events.
    261       1.2     ad 	 */
    262       1.2     ad 	if (catch) {
    263       1.5  pavel 		l->l_flag |= LW_SINTR;
    264       1.5  pavel 		if ((l->l_flag & (LW_CANCELLED|LW_WEXIT|LW_WCORE)) != 0) {
    265       1.5  pavel 			l->l_flag &= ~LW_CANCELLED;
    266      1.14     ad 			error = EINTR;
    267      1.14     ad 			early = true;
    268      1.14     ad 		} else if ((l->l_flag & LW_PENDSIG) != 0 && sigispending(l, 0))
    269      1.11     ad 			early = true;
    270       1.2     ad 	}
    271       1.2     ad 
    272      1.13   yamt 	if (early) {
    273      1.13   yamt 		/* lwp_unsleep() will release the lock */
    274      1.13   yamt 		lwp_unsleep(l);
    275      1.13   yamt 	} else {
    276      1.11     ad 		if (timo)
    277      1.14     ad 			callout_schedule(&l->l_timeout_ch, timo);
    278      1.11     ad 		mi_switch(l);
    279      1.11     ad 
    280      1.11     ad 		/* The LWP and sleep queue are now unlocked. */
    281      1.11     ad 		if (timo) {
    282      1.11     ad 			/*
    283      1.11     ad 			 * Even if the callout appears to have fired, we need to
    284      1.11     ad 			 * stop it in order to synchronise with other CPUs.
    285      1.11     ad 			 */
    286      1.14     ad 			if (callout_stop(&l->l_timeout_ch))
    287      1.11     ad 				error = EWOULDBLOCK;
    288      1.11     ad 		}
    289       1.2     ad 	}
    290       1.2     ad 
    291       1.9   yamt 	if (catch && error == 0) {
    292       1.2     ad 		p = l->l_proc;
    293       1.5  pavel 		if ((l->l_flag & (LW_CANCELLED | LW_WEXIT | LW_WCORE)) != 0)
    294       1.2     ad 			error = EINTR;
    295       1.5  pavel 		else if ((l->l_flag & LW_PENDSIG) != 0) {
    296       1.2     ad 			mutex_enter(&p->p_smutex);
    297       1.2     ad 			if ((sig = issignal(l)) != 0)
    298       1.2     ad 				error = sleepq_sigtoerror(l, sig);
    299       1.2     ad 			mutex_exit(&p->p_smutex);
    300       1.2     ad 		}
    301       1.2     ad 	}
    302       1.2     ad 
    303      1.12     ad 	ktrcsw(0, 0);
    304       1.2     ad 
    305       1.2     ad 	KERNEL_LOCK(l->l_biglocks, l);
    306       1.2     ad 	return error;
    307       1.2     ad }
    308       1.2     ad 
    309       1.2     ad /*
    310       1.2     ad  * sleepq_wake:
    311       1.2     ad  *
    312       1.2     ad  *	Wake zero or more LWPs blocked on a single wait channel.
    313       1.2     ad  */
    314       1.8     ad lwp_t *
    315       1.2     ad sleepq_wake(sleepq_t *sq, wchan_t wchan, u_int expected)
    316       1.2     ad {
    317       1.8     ad 	lwp_t *l, *next;
    318       1.2     ad 	int swapin = 0;
    319       1.2     ad 
    320       1.4     ad 	KASSERT(mutex_owned(sq->sq_mutex));
    321       1.2     ad 
    322       1.2     ad 	for (l = TAILQ_FIRST(&sq->sq_queue); l != NULL; l = next) {
    323       1.2     ad 		KASSERT(l->l_sleepq == sq);
    324       1.2     ad 		next = TAILQ_NEXT(l, l_sleepchain);
    325       1.2     ad 		if (l->l_wchan != wchan)
    326       1.2     ad 			continue;
    327       1.2     ad 		swapin |= sleepq_remove(sq, l);
    328       1.2     ad 		if (--expected == 0)
    329       1.2     ad 			break;
    330       1.2     ad 	}
    331       1.2     ad 
    332       1.2     ad 	sleepq_unlock(sq);
    333       1.2     ad 
    334       1.2     ad 	/*
    335       1.2     ad 	 * If there are newly awakend threads that need to be swapped in,
    336       1.2     ad 	 * then kick the swapper into action.
    337       1.2     ad 	 */
    338       1.2     ad 	if (swapin)
    339       1.4     ad 		uvm_kick_scheduler();
    340       1.8     ad 
    341       1.8     ad 	return l;
    342       1.2     ad }
    343       1.2     ad 
    344       1.2     ad /*
    345       1.2     ad  * sleepq_unsleep:
    346       1.2     ad  *
    347       1.2     ad  *	Remove an LWP from its sleep queue and set it runnable again.
    348       1.2     ad  *	sleepq_unsleep() is called with the LWP's mutex held, and will
    349       1.2     ad  *	always release it.
    350       1.2     ad  */
    351       1.2     ad void
    352       1.8     ad sleepq_unsleep(lwp_t *l)
    353       1.2     ad {
    354       1.2     ad 	sleepq_t *sq = l->l_sleepq;
    355       1.2     ad 	int swapin;
    356       1.2     ad 
    357       1.4     ad 	KASSERT(lwp_locked(l, NULL));
    358       1.2     ad 	KASSERT(l->l_wchan != NULL);
    359       1.2     ad 	KASSERT(l->l_mutex == sq->sq_mutex);
    360       1.2     ad 
    361       1.2     ad 	swapin = sleepq_remove(sq, l);
    362       1.2     ad 	sleepq_unlock(sq);
    363       1.2     ad 
    364       1.2     ad 	if (swapin)
    365       1.4     ad 		uvm_kick_scheduler();
    366       1.2     ad }
    367       1.2     ad 
    368       1.2     ad /*
    369       1.2     ad  * sleepq_timeout:
    370       1.2     ad  *
    371       1.2     ad  *	Entered via the callout(9) subsystem to time out an LWP that is on a
    372       1.2     ad  *	sleep queue.
    373       1.2     ad  */
    374       1.2     ad void
    375       1.2     ad sleepq_timeout(void *arg)
    376       1.2     ad {
    377       1.8     ad 	lwp_t *l = arg;
    378       1.2     ad 
    379       1.2     ad 	/*
    380       1.2     ad 	 * Lock the LWP.  Assuming it's still on the sleep queue, its
    381       1.2     ad 	 * current mutex will also be the sleep queue mutex.
    382       1.2     ad 	 */
    383       1.2     ad 	lwp_lock(l);
    384       1.2     ad 
    385       1.2     ad 	if (l->l_wchan == NULL) {
    386       1.2     ad 		/* Somebody beat us to it. */
    387       1.2     ad 		lwp_unlock(l);
    388       1.2     ad 		return;
    389       1.2     ad 	}
    390       1.2     ad 
    391       1.2     ad 	lwp_unsleep(l);
    392       1.2     ad }
    393       1.2     ad 
    394       1.2     ad /*
    395       1.2     ad  * sleepq_sigtoerror:
    396       1.2     ad  *
    397       1.2     ad  *	Given a signal number, interpret and return an error code.
    398       1.2     ad  */
    399       1.2     ad int
    400       1.8     ad sleepq_sigtoerror(lwp_t *l, int sig)
    401       1.2     ad {
    402       1.2     ad 	struct proc *p = l->l_proc;
    403       1.2     ad 	int error;
    404       1.2     ad 
    405       1.4     ad 	KASSERT(mutex_owned(&p->p_smutex));
    406       1.2     ad 
    407       1.2     ad 	/*
    408       1.2     ad 	 * If this sleep was canceled, don't let the syscall restart.
    409       1.2     ad 	 */
    410       1.2     ad 	if ((SIGACTION(p, sig).sa_flags & SA_RESTART) == 0)
    411       1.2     ad 		error = EINTR;
    412       1.2     ad 	else
    413       1.2     ad 		error = ERESTART;
    414       1.2     ad 
    415       1.2     ad 	return error;
    416       1.2     ad }
    417       1.2     ad 
    418       1.2     ad /*
    419       1.2     ad  * sleepq_abort:
    420       1.2     ad  *
    421       1.2     ad  *	After a panic or during autoconfiguration, lower the interrupt
    422       1.2     ad  *	priority level to give pending interrupts a chance to run, and
    423       1.2     ad  *	then return.  Called if sleepq_dontsleep() returns non-zero, and
    424       1.2     ad  *	always returns zero.
    425       1.2     ad  */
    426       1.2     ad int
    427       1.2     ad sleepq_abort(kmutex_t *mtx, int unlock)
    428       1.2     ad {
    429       1.2     ad 	extern int safepri;
    430       1.2     ad 	int s;
    431       1.2     ad 
    432       1.2     ad 	s = splhigh();
    433       1.2     ad 	splx(safepri);
    434       1.2     ad 	splx(s);
    435       1.2     ad 	if (mtx != NULL && unlock != 0)
    436       1.2     ad 		mutex_exit(mtx);
    437       1.2     ad 
    438       1.2     ad 	return 0;
    439       1.2     ad }
    440       1.2     ad 
    441       1.2     ad /*
    442       1.2     ad  * sleepq_changepri:
    443       1.2     ad  *
    444       1.2     ad  *	Adjust the priority of an LWP residing on a sleepq.  This method
    445       1.2     ad  *	will only alter the user priority; the effective priority is
    446       1.2     ad  *	assumed to have been fixed at the time of insertion into the queue.
    447       1.2     ad  */
    448       1.2     ad void
    449       1.8     ad sleepq_changepri(lwp_t *l, pri_t pri)
    450       1.2     ad {
    451      1.18     ad 	sleepq_t *sq = l->l_sleepq;
    452      1.18     ad 	pri_t opri;
    453      1.18     ad 
    454      1.18     ad 	KASSERT(lwp_locked(l, sq->sq_mutex));
    455       1.2     ad 
    456      1.18     ad 	opri = lwp_eprio(l);
    457      1.18     ad 	l->l_priority = pri;
    458      1.18     ad 	if (lwp_eprio(l) != opri) {
    459      1.18     ad 		TAILQ_REMOVE(&sq->sq_queue, l, l_sleepchain);
    460      1.18     ad 		sleepq_insert(sq, l, l->l_syncobj);
    461      1.18     ad 	}
    462       1.2     ad }
    463       1.6   yamt 
    464       1.6   yamt void
    465       1.8     ad sleepq_lendpri(lwp_t *l, pri_t pri)
    466       1.6   yamt {
    467       1.6   yamt 	sleepq_t *sq = l->l_sleepq;
    468       1.7   yamt 	pri_t opri;
    469       1.6   yamt 
    470       1.6   yamt 	KASSERT(lwp_locked(l, sq->sq_mutex));
    471       1.6   yamt 
    472       1.6   yamt 	opri = lwp_eprio(l);
    473       1.6   yamt 	l->l_inheritedprio = pri;
    474       1.6   yamt 
    475       1.6   yamt 	if (lwp_eprio(l) != opri &&
    476       1.6   yamt 	    (l->l_syncobj->sobj_flag & SOBJ_SLEEPQ_SORTED) != 0) {
    477       1.6   yamt 		TAILQ_REMOVE(&sq->sq_queue, l, l_sleepchain);
    478       1.6   yamt 		sleepq_insert(sq, l, l->l_syncobj);
    479       1.6   yamt 	}
    480       1.6   yamt }
    481