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kern_synch.c revision 1.315.2.3
      1  1.315.2.2    martin /*	$NetBSD: kern_synch.c,v 1.315.2.3 2020/04/13 08:05:04 martin Exp $	*/
      2       1.63   thorpej 
      3       1.63   thorpej /*-
      4  1.315.2.2    martin  * Copyright (c) 1999, 2000, 2004, 2006, 2007, 2008, 2009, 2019, 2020
      5      1.260        ad  *    The NetBSD Foundation, Inc.
      6       1.63   thorpej  * All rights reserved.
      7       1.63   thorpej  *
      8       1.63   thorpej  * This code is derived from software contributed to The NetBSD Foundation
      9       1.63   thorpej  * by Jason R. Thorpe of the Numerical Aerospace Simulation Facility,
     10      1.188      yamt  * NASA Ames Research Center, by Charles M. Hannum, Andrew Doran and
     11      1.188      yamt  * Daniel Sieger.
     12       1.63   thorpej  *
     13       1.63   thorpej  * Redistribution and use in source and binary forms, with or without
     14       1.63   thorpej  * modification, are permitted provided that the following conditions
     15       1.63   thorpej  * are met:
     16       1.63   thorpej  * 1. Redistributions of source code must retain the above copyright
     17       1.63   thorpej  *    notice, this list of conditions and the following disclaimer.
     18       1.63   thorpej  * 2. Redistributions in binary form must reproduce the above copyright
     19       1.63   thorpej  *    notice, this list of conditions and the following disclaimer in the
     20       1.63   thorpej  *    documentation and/or other materials provided with the distribution.
     21       1.63   thorpej  *
     22       1.63   thorpej  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     23       1.63   thorpej  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     24       1.63   thorpej  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     25       1.63   thorpej  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     26       1.63   thorpej  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     27       1.63   thorpej  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     28       1.63   thorpej  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     29       1.63   thorpej  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     30       1.63   thorpej  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     31       1.63   thorpej  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     32       1.63   thorpej  * POSSIBILITY OF SUCH DAMAGE.
     33       1.63   thorpej  */
     34       1.26       cgd 
     35       1.26       cgd /*-
     36       1.26       cgd  * Copyright (c) 1982, 1986, 1990, 1991, 1993
     37       1.26       cgd  *	The Regents of the University of California.  All rights reserved.
     38       1.26       cgd  * (c) UNIX System Laboratories, Inc.
     39       1.26       cgd  * All or some portions of this file are derived from material licensed
     40       1.26       cgd  * to the University of California by American Telephone and Telegraph
     41       1.26       cgd  * Co. or Unix System Laboratories, Inc. and are reproduced herein with
     42       1.26       cgd  * the permission of UNIX System Laboratories, Inc.
     43       1.26       cgd  *
     44       1.26       cgd  * Redistribution and use in source and binary forms, with or without
     45       1.26       cgd  * modification, are permitted provided that the following conditions
     46       1.26       cgd  * are met:
     47       1.26       cgd  * 1. Redistributions of source code must retain the above copyright
     48       1.26       cgd  *    notice, this list of conditions and the following disclaimer.
     49       1.26       cgd  * 2. Redistributions in binary form must reproduce the above copyright
     50       1.26       cgd  *    notice, this list of conditions and the following disclaimer in the
     51       1.26       cgd  *    documentation and/or other materials provided with the distribution.
     52      1.136       agc  * 3. Neither the name of the University nor the names of its contributors
     53       1.26       cgd  *    may be used to endorse or promote products derived from this software
     54       1.26       cgd  *    without specific prior written permission.
     55       1.26       cgd  *
     56       1.26       cgd  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     57       1.26       cgd  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     58       1.26       cgd  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     59       1.26       cgd  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     60       1.26       cgd  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     61       1.26       cgd  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     62       1.26       cgd  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     63       1.26       cgd  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     64       1.26       cgd  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     65       1.26       cgd  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     66       1.26       cgd  * SUCH DAMAGE.
     67       1.26       cgd  *
     68       1.50      fvdl  *	@(#)kern_synch.c	8.9 (Berkeley) 5/19/95
     69       1.26       cgd  */
     70      1.106     lukem 
     71      1.106     lukem #include <sys/cdefs.h>
     72  1.315.2.2    martin __KERNEL_RCSID(0, "$NetBSD: kern_synch.c,v 1.315.2.3 2020/04/13 08:05:04 martin Exp $");
     73       1.48       mrg 
     74      1.109      yamt #include "opt_kstack.h"
     75      1.277    darran #include "opt_dtrace.h"
     76       1.26       cgd 
     77      1.174        ad #define	__MUTEX_PRIVATE
     78      1.174        ad 
     79       1.26       cgd #include <sys/param.h>
     80       1.26       cgd #include <sys/systm.h>
     81       1.26       cgd #include <sys/proc.h>
     82       1.26       cgd #include <sys/kernel.h>
     83      1.188      yamt #include <sys/cpu.h>
     84      1.290  christos #include <sys/pserialize.h>
     85       1.26       cgd #include <sys/resourcevar.h>
     86  1.315.2.2    martin #include <sys/rwlock.h>
     87       1.55      ross #include <sys/sched.h>
     88      1.179       dsl #include <sys/syscall_stats.h>
     89      1.174        ad #include <sys/sleepq.h>
     90      1.174        ad #include <sys/lockdebug.h>
     91      1.190        ad #include <sys/evcnt.h>
     92      1.199        ad #include <sys/intr.h>
     93      1.207        ad #include <sys/lwpctl.h>
     94      1.209        ad #include <sys/atomic.h>
     95      1.295     njoly #include <sys/syslog.h>
     96       1.47       mrg 
     97       1.47       mrg #include <uvm/uvm_extern.h>
     98       1.47       mrg 
     99      1.231        ad #include <dev/lockstat.h>
    100      1.231        ad 
    101      1.276    darran #include <sys/dtrace_bsd.h>
    102      1.279    darran int                             dtrace_vtime_active=0;
    103      1.276    darran dtrace_vtime_switch_func_t      dtrace_vtime_switch_func;
    104      1.276    darran 
    105      1.271     rmind static void	sched_unsleep(struct lwp *, bool);
    106      1.188      yamt static void	sched_changepri(struct lwp *, pri_t);
    107      1.188      yamt static void	sched_lendpri(struct lwp *, pri_t);
    108      1.122   thorpej 
    109      1.174        ad syncobj_t sleep_syncobj = {
    110      1.313     ozaki 	.sobj_flag	= SOBJ_SLEEPQ_SORTED,
    111      1.313     ozaki 	.sobj_unsleep	= sleepq_unsleep,
    112      1.313     ozaki 	.sobj_changepri	= sleepq_changepri,
    113      1.313     ozaki 	.sobj_lendpri	= sleepq_lendpri,
    114      1.313     ozaki 	.sobj_owner	= syncobj_noowner,
    115      1.174        ad };
    116      1.174        ad 
    117      1.174        ad syncobj_t sched_syncobj = {
    118      1.313     ozaki 	.sobj_flag	= SOBJ_SLEEPQ_SORTED,
    119      1.313     ozaki 	.sobj_unsleep	= sched_unsleep,
    120      1.313     ozaki 	.sobj_changepri	= sched_changepri,
    121      1.313     ozaki 	.sobj_lendpri	= sched_lendpri,
    122      1.313     ozaki 	.sobj_owner	= syncobj_noowner,
    123      1.174        ad };
    124      1.122   thorpej 
    125  1.315.2.2    martin syncobj_t kpause_syncobj = {
    126  1.315.2.2    martin 	.sobj_flag	= SOBJ_SLEEPQ_NULL,
    127  1.315.2.2    martin 	.sobj_unsleep	= sleepq_unsleep,
    128  1.315.2.2    martin 	.sobj_changepri	= sleepq_changepri,
    129  1.315.2.2    martin 	.sobj_lendpri	= sleepq_lendpri,
    130  1.315.2.2    martin 	.sobj_owner	= syncobj_noowner,
    131  1.315.2.2    martin };
    132  1.315.2.2    martin 
    133      1.289     rmind /* "Lightning bolt": once a second sleep address. */
    134      1.289     rmind kcondvar_t		lbolt			__cacheline_aligned;
    135      1.223        ad 
    136      1.289     rmind u_int			sched_pstats_ticks	__cacheline_aligned;
    137      1.289     rmind 
    138      1.289     rmind /* Preemption event counters. */
    139      1.289     rmind static struct evcnt	kpreempt_ev_crit	__cacheline_aligned;
    140      1.289     rmind static struct evcnt	kpreempt_ev_klock	__cacheline_aligned;
    141      1.289     rmind static struct evcnt	kpreempt_ev_immed	__cacheline_aligned;
    142      1.231        ad 
    143      1.237     rmind void
    144      1.270      elad synch_init(void)
    145      1.237     rmind {
    146      1.237     rmind 
    147      1.237     rmind 	cv_init(&lbolt, "lbolt");
    148      1.237     rmind 
    149      1.239        ad 	evcnt_attach_dynamic(&kpreempt_ev_crit, EVCNT_TYPE_MISC, NULL,
    150      1.237     rmind 	   "kpreempt", "defer: critical section");
    151      1.239        ad 	evcnt_attach_dynamic(&kpreempt_ev_klock, EVCNT_TYPE_MISC, NULL,
    152      1.237     rmind 	   "kpreempt", "defer: kernel_lock");
    153      1.239        ad 	evcnt_attach_dynamic(&kpreempt_ev_immed, EVCNT_TYPE_MISC, NULL,
    154      1.237     rmind 	   "kpreempt", "immediate");
    155      1.237     rmind }
    156      1.237     rmind 
    157       1.26       cgd /*
    158      1.174        ad  * OBSOLETE INTERFACE
    159      1.174        ad  *
    160      1.255     skrll  * General sleep call.  Suspends the current LWP until a wakeup is
    161      1.255     skrll  * performed on the specified identifier.  The LWP will then be made
    162      1.174        ad  * runnable with the specified priority.  Sleeps at most timo/hz seconds (0
    163      1.174        ad  * means no timeout).  If pri includes PCATCH flag, signals are checked
    164       1.26       cgd  * before and after sleeping, else signals are not checked.  Returns 0 if
    165       1.26       cgd  * awakened, EWOULDBLOCK if the timeout expires.  If PCATCH is set and a
    166       1.26       cgd  * signal needs to be delivered, ERESTART is returned if the current system
    167       1.26       cgd  * call should be restarted if possible, and EINTR is returned if the system
    168       1.26       cgd  * call should be interrupted by the signal (return EINTR).
    169       1.26       cgd  */
    170       1.26       cgd int
    171      1.297     rmind tsleep(wchan_t ident, pri_t priority, const char *wmesg, int timo)
    172       1.26       cgd {
    173      1.122   thorpej 	struct lwp *l = curlwp;
    174      1.174        ad 	sleepq_t *sq;
    175      1.244        ad 	kmutex_t *mp;
    176       1.26       cgd 
    177      1.204        ad 	KASSERT((l->l_pflag & LP_INTR) == 0);
    178      1.272     pooka 	KASSERT(ident != &lbolt);
    179      1.204        ad 
    180      1.174        ad 	if (sleepq_dontsleep(l)) {
    181      1.174        ad 		(void)sleepq_abort(NULL, 0);
    182      1.174        ad 		return 0;
    183       1.26       cgd 	}
    184       1.78  sommerfe 
    185      1.204        ad 	l->l_kpriority = true;
    186      1.244        ad 	sq = sleeptab_lookup(&sleeptab, ident, &mp);
    187      1.244        ad 	sleepq_enter(sq, l, mp);
    188      1.204        ad 	sleepq_enqueue(sq, ident, wmesg, &sleep_syncobj);
    189      1.297     rmind 	return sleepq_block(timo, priority & PCATCH);
    190       1.26       cgd }
    191       1.26       cgd 
    192      1.187        ad int
    193      1.187        ad mtsleep(wchan_t ident, pri_t priority, const char *wmesg, int timo,
    194      1.187        ad 	kmutex_t *mtx)
    195      1.187        ad {
    196      1.187        ad 	struct lwp *l = curlwp;
    197      1.187        ad 	sleepq_t *sq;
    198      1.244        ad 	kmutex_t *mp;
    199      1.188      yamt 	int error;
    200      1.187        ad 
    201      1.204        ad 	KASSERT((l->l_pflag & LP_INTR) == 0);
    202      1.272     pooka 	KASSERT(ident != &lbolt);
    203      1.204        ad 
    204      1.187        ad 	if (sleepq_dontsleep(l)) {
    205      1.187        ad 		(void)sleepq_abort(mtx, (priority & PNORELOCK) != 0);
    206      1.187        ad 		return 0;
    207      1.187        ad 	}
    208      1.187        ad 
    209      1.204        ad 	l->l_kpriority = true;
    210      1.244        ad 	sq = sleeptab_lookup(&sleeptab, ident, &mp);
    211      1.244        ad 	sleepq_enter(sq, l, mp);
    212      1.204        ad 	sleepq_enqueue(sq, ident, wmesg, &sleep_syncobj);
    213      1.187        ad 	mutex_exit(mtx);
    214      1.188      yamt 	error = sleepq_block(timo, priority & PCATCH);
    215      1.187        ad 
    216      1.187        ad 	if ((priority & PNORELOCK) == 0)
    217      1.187        ad 		mutex_enter(mtx);
    218      1.297     rmind 
    219      1.187        ad 	return error;
    220      1.187        ad }
    221      1.187        ad 
    222       1.26       cgd /*
    223      1.174        ad  * General sleep call for situations where a wake-up is not expected.
    224       1.26       cgd  */
    225      1.174        ad int
    226      1.182   thorpej kpause(const char *wmesg, bool intr, int timo, kmutex_t *mtx)
    227       1.26       cgd {
    228      1.174        ad 	struct lwp *l = curlwp;
    229      1.174        ad 	int error;
    230       1.26       cgd 
    231      1.284     pooka 	KASSERT(!(timo == 0 && intr == false));
    232      1.284     pooka 
    233      1.174        ad 	if (sleepq_dontsleep(l))
    234      1.174        ad 		return sleepq_abort(NULL, 0);
    235       1.26       cgd 
    236      1.174        ad 	if (mtx != NULL)
    237      1.174        ad 		mutex_exit(mtx);
    238      1.204        ad 	l->l_kpriority = true;
    239  1.315.2.2    martin 	lwp_lock(l);
    240  1.315.2.2    martin 	KERNEL_UNLOCK_ALL(NULL, &l->l_biglocks);
    241  1.315.2.2    martin 	sleepq_enqueue(NULL, l, wmesg, &kpause_syncobj);
    242      1.188      yamt 	error = sleepq_block(timo, intr);
    243      1.174        ad 	if (mtx != NULL)
    244      1.174        ad 		mutex_enter(mtx);
    245       1.83   thorpej 
    246      1.174        ad 	return error;
    247      1.139        cl }
    248      1.139        cl 
    249       1.26       cgd /*
    250      1.174        ad  * OBSOLETE INTERFACE
    251      1.174        ad  *
    252      1.255     skrll  * Make all LWPs sleeping on the specified identifier runnable.
    253       1.26       cgd  */
    254       1.26       cgd void
    255      1.174        ad wakeup(wchan_t ident)
    256       1.26       cgd {
    257      1.174        ad 	sleepq_t *sq;
    258      1.244        ad 	kmutex_t *mp;
    259       1.83   thorpej 
    260      1.261     rmind 	if (__predict_false(cold))
    261      1.174        ad 		return;
    262       1.83   thorpej 
    263      1.244        ad 	sq = sleeptab_lookup(&sleeptab, ident, &mp);
    264      1.244        ad 	sleepq_wake(sq, ident, (u_int)-1, mp);
    265       1.63   thorpej }
    266       1.63   thorpej 
    267       1.63   thorpej /*
    268      1.255     skrll  * General yield call.  Puts the current LWP back on its run queue and
    269  1.315.2.2    martin  * performs a context switch.
    270      1.117  gmcgarry  */
    271      1.117  gmcgarry void
    272      1.117  gmcgarry yield(void)
    273      1.117  gmcgarry {
    274      1.122   thorpej 	struct lwp *l = curlwp;
    275      1.117  gmcgarry 
    276      1.174        ad 	KERNEL_UNLOCK_ALL(l, &l->l_biglocks);
    277      1.174        ad 	lwp_lock(l);
    278  1.315.2.2    martin 
    279      1.217        ad 	KASSERT(lwp_locked(l, l->l_cpu->ci_schedstate.spc_lwplock));
    280      1.188      yamt 	KASSERT(l->l_stat == LSONPROC);
    281  1.315.2.2    martin 
    282  1.315.2.2    martin 	/* Voluntary - ditch kpriority boost. */
    283      1.204        ad 	l->l_kpriority = false;
    284  1.315.2.2    martin 	spc_lock(l->l_cpu);
    285  1.315.2.2    martin 	mi_switch(l);
    286      1.174        ad 	KERNEL_LOCK(l->l_biglocks, l);
    287       1.69   thorpej }
    288       1.69   thorpej 
    289       1.69   thorpej /*
    290      1.255     skrll  * General preemption call.  Puts the current LWP back on its run queue
    291  1.315.2.2    martin  * and performs an involuntary context switch.  Different from yield()
    292  1.315.2.2    martin  * in that:
    293  1.315.2.2    martin  *
    294  1.315.2.2    martin  * - It's counted differently (involuntary vs. voluntary).
    295  1.315.2.2    martin  * - Realtime threads go to the head of their runqueue vs. tail for yield().
    296  1.315.2.2    martin  * - Priority boost is retained unless LWP has exceeded timeslice.
    297       1.69   thorpej  */
    298       1.69   thorpej void
    299      1.174        ad preempt(void)
    300       1.69   thorpej {
    301      1.122   thorpej 	struct lwp *l = curlwp;
    302       1.69   thorpej 
    303      1.174        ad 	KERNEL_UNLOCK_ALL(l, &l->l_biglocks);
    304      1.174        ad 	lwp_lock(l);
    305  1.315.2.2    martin 
    306      1.217        ad 	KASSERT(lwp_locked(l, l->l_cpu->ci_schedstate.spc_lwplock));
    307      1.188      yamt 	KASSERT(l->l_stat == LSONPROC);
    308  1.315.2.2    martin 
    309  1.315.2.2    martin 	spc_lock(l->l_cpu);
    310  1.315.2.2    martin 	/* Involuntary - keep kpriority boost unless a CPU hog. */
    311  1.315.2.2    martin 	if ((l->l_cpu->ci_schedstate.spc_flags & SPCF_SHOULDYIELD) != 0) {
    312  1.315.2.2    martin 		l->l_kpriority = false;
    313  1.315.2.2    martin 	}
    314  1.315.2.1  christos 	l->l_pflag |= LP_PREEMPTING;
    315  1.315.2.2    martin 	mi_switch(l);
    316      1.174        ad 	KERNEL_LOCK(l->l_biglocks, l);
    317       1.69   thorpej }
    318       1.69   thorpej 
    319      1.234        ad /*
    320  1.315.2.2    martin  * Return true if the current LWP should yield the processor.  Intended to
    321  1.315.2.2    martin  * be used by long-running code in kernel.
    322  1.315.2.2    martin  */
    323  1.315.2.2    martin inline bool
    324  1.315.2.2    martin preempt_needed(void)
    325  1.315.2.2    martin {
    326  1.315.2.2    martin 	lwp_t *l = curlwp;
    327  1.315.2.2    martin 	int needed;
    328  1.315.2.2    martin 
    329  1.315.2.2    martin 	KPREEMPT_DISABLE(l);
    330  1.315.2.2    martin 	needed = l->l_cpu->ci_want_resched;
    331  1.315.2.2    martin 	KPREEMPT_ENABLE(l);
    332  1.315.2.2    martin 
    333  1.315.2.2    martin 	return (bool)needed;
    334  1.315.2.2    martin }
    335  1.315.2.2    martin 
    336  1.315.2.2    martin /*
    337  1.315.2.2    martin  * A breathing point for long running code in kernel.
    338  1.315.2.2    martin  */
    339  1.315.2.2    martin void
    340  1.315.2.2    martin preempt_point(void)
    341  1.315.2.2    martin {
    342  1.315.2.2    martin 
    343  1.315.2.2    martin 	if (__predict_false(preempt_needed())) {
    344  1.315.2.2    martin 		preempt();
    345  1.315.2.2    martin 	}
    346  1.315.2.2    martin }
    347  1.315.2.2    martin 
    348  1.315.2.2    martin /*
    349      1.234        ad  * Handle a request made by another agent to preempt the current LWP
    350      1.234        ad  * in-kernel.  Usually called when l_dopreempt may be non-zero.
    351      1.234        ad  *
    352      1.234        ad  * Character addresses for lockstat only.
    353      1.234        ad  */
    354  1.315.2.2    martin static char	kpreempt_is_disabled;
    355      1.231        ad static char	kernel_lock_held;
    356  1.315.2.2    martin static char	is_softint_lwp;
    357  1.315.2.2    martin static char	spl_is_raised;
    358      1.231        ad 
    359      1.231        ad bool
    360      1.231        ad kpreempt(uintptr_t where)
    361      1.231        ad {
    362      1.231        ad 	uintptr_t failed;
    363      1.231        ad 	lwp_t *l;
    364      1.264        ad 	int s, dop, lsflag;
    365      1.231        ad 
    366      1.231        ad 	l = curlwp;
    367      1.231        ad 	failed = 0;
    368      1.231        ad 	while ((dop = l->l_dopreempt) != 0) {
    369      1.231        ad 		if (l->l_stat != LSONPROC) {
    370      1.231        ad 			/*
    371      1.231        ad 			 * About to block (or die), let it happen.
    372      1.231        ad 			 * Doesn't really count as "preemption has
    373      1.231        ad 			 * been blocked", since we're going to
    374      1.231        ad 			 * context switch.
    375      1.231        ad 			 */
    376  1.315.2.2    martin 			atomic_swap_uint(&l->l_dopreempt, 0);
    377      1.261     rmind 			return true;
    378      1.231        ad 		}
    379  1.315.2.2    martin 		KASSERT((l->l_flag & LW_IDLE) == 0);
    380      1.231        ad 		if (__predict_false(l->l_nopreempt != 0)) {
    381      1.231        ad 			/* LWP holds preemption disabled, explicitly. */
    382      1.231        ad 			if ((dop & DOPREEMPT_COUNTED) == 0) {
    383      1.234        ad 				kpreempt_ev_crit.ev_count++;
    384      1.231        ad 			}
    385  1.315.2.2    martin 			failed = (uintptr_t)&kpreempt_is_disabled;
    386      1.231        ad 			break;
    387      1.231        ad 		}
    388      1.231        ad 		if (__predict_false((l->l_pflag & LP_INTR) != 0)) {
    389      1.261     rmind 			/* Can't preempt soft interrupts yet. */
    390  1.315.2.2    martin 			atomic_swap_uint(&l->l_dopreempt, 0);
    391  1.315.2.2    martin 			failed = (uintptr_t)&is_softint_lwp;
    392      1.261     rmind 			break;
    393      1.231        ad 		}
    394      1.231        ad 		s = splsched();
    395      1.231        ad 		if (__predict_false(l->l_blcnt != 0 ||
    396      1.231        ad 		    curcpu()->ci_biglock_wanted != NULL)) {
    397      1.231        ad 			/* Hold or want kernel_lock, code is not MT safe. */
    398      1.231        ad 			splx(s);
    399      1.231        ad 			if ((dop & DOPREEMPT_COUNTED) == 0) {
    400      1.234        ad 				kpreempt_ev_klock.ev_count++;
    401      1.231        ad 			}
    402      1.231        ad 			failed = (uintptr_t)&kernel_lock_held;
    403      1.231        ad 			break;
    404      1.231        ad 		}
    405      1.231        ad 		if (__predict_false(!cpu_kpreempt_enter(where, s))) {
    406      1.231        ad 			/*
    407      1.231        ad 			 * It may be that the IPL is too high.
    408      1.231        ad 			 * kpreempt_enter() can schedule an
    409      1.231        ad 			 * interrupt to retry later.
    410      1.231        ad 			 */
    411      1.231        ad 			splx(s);
    412  1.315.2.2    martin 			failed = (uintptr_t)&spl_is_raised;
    413      1.231        ad 			break;
    414      1.231        ad 		}
    415      1.231        ad 		/* Do it! */
    416      1.231        ad 		if (__predict_true((dop & DOPREEMPT_COUNTED) == 0)) {
    417      1.234        ad 			kpreempt_ev_immed.ev_count++;
    418      1.231        ad 		}
    419      1.231        ad 		lwp_lock(l);
    420  1.315.2.2    martin 		/* Involuntary - keep kpriority boost. */
    421  1.315.2.2    martin 		l->l_pflag |= LP_PREEMPTING;
    422  1.315.2.2    martin 		spc_lock(l->l_cpu);
    423      1.231        ad 		mi_switch(l);
    424      1.231        ad 		l->l_nopreempt++;
    425      1.231        ad 		splx(s);
    426      1.231        ad 
    427      1.231        ad 		/* Take care of any MD cleanup. */
    428      1.231        ad 		cpu_kpreempt_exit(where);
    429      1.231        ad 		l->l_nopreempt--;
    430      1.231        ad 	}
    431      1.231        ad 
    432      1.264        ad 	if (__predict_true(!failed)) {
    433      1.264        ad 		return false;
    434      1.264        ad 	}
    435      1.264        ad 
    436      1.231        ad 	/* Record preemption failure for reporting via lockstat. */
    437      1.264        ad 	atomic_or_uint(&l->l_dopreempt, DOPREEMPT_COUNTED);
    438      1.264        ad 	lsflag = 0;
    439      1.264        ad 	LOCKSTAT_ENTER(lsflag);
    440      1.264        ad 	if (__predict_false(lsflag)) {
    441      1.264        ad 		if (where == 0) {
    442      1.264        ad 			where = (uintptr_t)__builtin_return_address(0);
    443      1.264        ad 		}
    444      1.264        ad 		/* Preemption is on, might recurse, so make it atomic. */
    445      1.264        ad 		if (atomic_cas_ptr_ni((void *)&l->l_pfailaddr, NULL,
    446      1.264        ad 		    (void *)where) == NULL) {
    447      1.264        ad 			LOCKSTAT_START_TIMER(lsflag, l->l_pfailtime);
    448      1.264        ad 			l->l_pfaillock = failed;
    449      1.231        ad 		}
    450      1.231        ad 	}
    451      1.264        ad 	LOCKSTAT_EXIT(lsflag);
    452      1.264        ad 	return true;
    453      1.231        ad }
    454      1.231        ad 
    455       1.69   thorpej /*
    456      1.231        ad  * Return true if preemption is explicitly disabled.
    457      1.230        ad  */
    458      1.231        ad bool
    459      1.231        ad kpreempt_disabled(void)
    460      1.231        ad {
    461      1.261     rmind 	const lwp_t *l = curlwp;
    462      1.231        ad 
    463      1.231        ad 	return l->l_nopreempt != 0 || l->l_stat == LSZOMB ||
    464  1.315.2.2    martin 	    (l->l_flag & LW_IDLE) != 0 || (l->l_pflag & LP_INTR) != 0 ||
    465  1.315.2.2    martin 	    cpu_kpreempt_disabled();
    466      1.231        ad }
    467      1.230        ad 
    468      1.230        ad /*
    469      1.231        ad  * Disable kernel preemption.
    470      1.230        ad  */
    471      1.230        ad void
    472      1.231        ad kpreempt_disable(void)
    473      1.230        ad {
    474      1.230        ad 
    475      1.231        ad 	KPREEMPT_DISABLE(curlwp);
    476      1.230        ad }
    477      1.230        ad 
    478      1.230        ad /*
    479      1.231        ad  * Reenable kernel preemption.
    480      1.230        ad  */
    481      1.231        ad void
    482      1.231        ad kpreempt_enable(void)
    483      1.230        ad {
    484      1.230        ad 
    485      1.231        ad 	KPREEMPT_ENABLE(curlwp);
    486      1.230        ad }
    487      1.230        ad 
    488      1.230        ad /*
    489      1.188      yamt  * Compute the amount of time during which the current lwp was running.
    490      1.130   nathanw  *
    491      1.188      yamt  * - update l_rtime unless it's an idle lwp.
    492      1.188      yamt  */
    493      1.188      yamt 
    494      1.199        ad void
    495      1.212      yamt updatertime(lwp_t *l, const struct bintime *now)
    496      1.188      yamt {
    497      1.188      yamt 
    498      1.261     rmind 	if (__predict_false(l->l_flag & LW_IDLE))
    499      1.188      yamt 		return;
    500      1.188      yamt 
    501      1.212      yamt 	/* rtime += now - stime */
    502      1.212      yamt 	bintime_add(&l->l_rtime, now);
    503      1.212      yamt 	bintime_sub(&l->l_rtime, &l->l_stime);
    504      1.188      yamt }
    505      1.188      yamt 
    506      1.188      yamt /*
    507      1.245        ad  * Select next LWP from the current CPU to run..
    508      1.245        ad  */
    509      1.245        ad static inline lwp_t *
    510      1.245        ad nextlwp(struct cpu_info *ci, struct schedstate_percpu *spc)
    511      1.245        ad {
    512      1.245        ad 	lwp_t *newl;
    513      1.245        ad 
    514      1.245        ad 	/*
    515      1.245        ad 	 * Let sched_nextlwp() select the LWP to run the CPU next.
    516      1.245        ad 	 * If no LWP is runnable, select the idle LWP.
    517      1.245        ad 	 *
    518  1.315.2.2    martin 	 * On arrival here LWPs on a run queue are locked by spc_mutex which
    519  1.315.2.2    martin 	 * is currently held.  Idle LWPs are always locked by spc_lwplock,
    520  1.315.2.2    martin 	 * which may or may not be held here.  On exit from this code block,
    521  1.315.2.2    martin 	 * in all cases newl is locked by spc_lwplock.
    522      1.245        ad 	 */
    523      1.245        ad 	newl = sched_nextlwp();
    524      1.245        ad 	if (newl != NULL) {
    525      1.245        ad 		sched_dequeue(newl);
    526      1.245        ad 		KASSERT(lwp_locked(newl, spc->spc_mutex));
    527      1.274     rmind 		KASSERT(newl->l_cpu == ci);
    528      1.245        ad 		newl->l_stat = LSONPROC;
    529      1.248        ad 		newl->l_pflag |= LP_RUNNING;
    530  1.315.2.2    martin 		spc->spc_curpriority = lwp_eprio(newl);
    531  1.315.2.2    martin 		spc->spc_flags &= ~(SPCF_SWITCHCLEAR | SPCF_IDLE);
    532      1.245        ad 		lwp_setlock(newl, spc->spc_lwplock);
    533      1.245        ad 	} else {
    534  1.315.2.2    martin 		/*
    535  1.315.2.2    martin 		 * The idle LWP does not get set to LSONPROC, because
    536  1.315.2.2    martin 		 * otherwise it screws up the output from top(1) etc.
    537  1.315.2.2    martin 		 */
    538      1.245        ad 		newl = ci->ci_data.cpu_idlelwp;
    539      1.248        ad 		newl->l_pflag |= LP_RUNNING;
    540  1.315.2.2    martin 		spc->spc_curpriority = PRI_IDLE;
    541  1.315.2.2    martin 		spc->spc_flags = (spc->spc_flags & ~SPCF_SWITCHCLEAR) |
    542  1.315.2.2    martin 		    SPCF_IDLE;
    543      1.245        ad 	}
    544      1.261     rmind 
    545      1.245        ad 	/*
    546  1.315.2.2    martin 	 * Only clear want_resched if there are no pending (slow) software
    547  1.315.2.2    martin 	 * interrupts.  We can do this without an atomic, because no new
    548  1.315.2.2    martin 	 * LWPs can appear in the queue due to our hold on spc_mutex, and
    549  1.315.2.2    martin 	 * the update to ci_want_resched will become globally visible before
    550  1.315.2.2    martin 	 * the release of spc_mutex becomes globally visible.
    551      1.245        ad 	 */
    552      1.245        ad 	ci->ci_want_resched = ci->ci_data.cpu_softints;
    553      1.245        ad 
    554      1.245        ad 	return newl;
    555      1.245        ad }
    556      1.245        ad 
    557      1.245        ad /*
    558      1.188      yamt  * The machine independent parts of context switch.
    559      1.188      yamt  *
    560  1.315.2.2    martin  * NOTE: l->l_cpu is not changed in this routine, because an LWP never
    561  1.315.2.2    martin  * changes its own l_cpu (that would screw up curcpu on many ports and could
    562  1.315.2.2    martin  * cause all kinds of other evil stuff).  l_cpu is always changed by some
    563  1.315.2.2    martin  * other actor, when it's known the LWP is not running (the LP_RUNNING flag
    564  1.315.2.2    martin  * is checked under lock).
    565       1.26       cgd  */
    566  1.315.2.2    martin void
    567      1.199        ad mi_switch(lwp_t *l)
    568       1.26       cgd {
    569      1.246     rmind 	struct cpu_info *ci;
    570       1.76   thorpej 	struct schedstate_percpu *spc;
    571      1.188      yamt 	struct lwp *newl;
    572  1.315.2.2    martin 	kmutex_t *lock;
    573  1.315.2.2    martin 	int oldspl;
    574      1.212      yamt 	struct bintime bt;
    575      1.199        ad 	bool returning;
    576       1.26       cgd 
    577      1.188      yamt 	KASSERT(lwp_locked(l, NULL));
    578      1.231        ad 	KASSERT(kpreempt_disabled());
    579  1.315.2.2    martin 	KASSERT(mutex_owned(curcpu()->ci_schedstate.spc_mutex));
    580  1.315.2.2    martin 	KASSERTMSG(l->l_blcnt == 0, "kernel_lock leaked");
    581      1.174        ad 
    582      1.174        ad 	kstack_check_magic(l);
    583       1.83   thorpej 
    584      1.212      yamt 	binuptime(&bt);
    585      1.199        ad 
    586      1.304      matt 	KASSERTMSG(l == curlwp, "l %p curlwp %p", l, curlwp);
    587      1.267      yamt 	KASSERT((l->l_pflag & LP_RUNNING) != 0);
    588  1.315.2.2    martin 	KASSERT(l->l_cpu == curcpu() || l->l_stat == LSRUN);
    589  1.315.2.2    martin 	ci = curcpu();
    590      1.196        ad 	spc = &ci->ci_schedstate;
    591      1.199        ad 	returning = false;
    592      1.190        ad 	newl = NULL;
    593      1.190        ad 
    594      1.199        ad 	/*
    595      1.199        ad 	 * If we have been asked to switch to a specific LWP, then there
    596      1.199        ad 	 * is no need to inspect the run queues.  If a soft interrupt is
    597      1.199        ad 	 * blocking, then return to the interrupted thread without adjusting
    598      1.199        ad 	 * VM context or its start time: neither have been changed in order
    599      1.199        ad 	 * to take the interrupt.
    600      1.199        ad 	 */
    601      1.190        ad 	if (l->l_switchto != NULL) {
    602      1.204        ad 		if ((l->l_pflag & LP_INTR) != 0) {
    603      1.199        ad 			returning = true;
    604      1.199        ad 			softint_block(l);
    605      1.248        ad 			if ((l->l_pflag & LP_TIMEINTR) != 0)
    606      1.212      yamt 				updatertime(l, &bt);
    607      1.199        ad 		}
    608      1.190        ad 		newl = l->l_switchto;
    609      1.190        ad 		l->l_switchto = NULL;
    610      1.190        ad 	}
    611      1.204        ad #ifndef __HAVE_FAST_SOFTINTS
    612      1.204        ad 	else if (ci->ci_data.cpu_softints != 0) {
    613      1.204        ad 		/* There are pending soft interrupts, so pick one. */
    614      1.204        ad 		newl = softint_picklwp();
    615      1.204        ad 		newl->l_stat = LSONPROC;
    616      1.248        ad 		newl->l_pflag |= LP_RUNNING;
    617      1.204        ad 	}
    618      1.204        ad #endif	/* !__HAVE_FAST_SOFTINTS */
    619      1.190        ad 
    620      1.113  gmcgarry 	/*
    621      1.174        ad 	 * If on the CPU and we have gotten this far, then we must yield.
    622      1.113  gmcgarry 	 */
    623      1.246     rmind 	if (l->l_stat == LSONPROC && l != newl) {
    624      1.217        ad 		KASSERT(lwp_locked(l, spc->spc_lwplock));
    625  1.315.2.2    martin 		KASSERT((l->l_flag & LW_IDLE) == 0);
    626  1.315.2.2    martin 		l->l_stat = LSRUN;
    627  1.315.2.2    martin 		lwp_setlock(l, spc->spc_mutex);
    628  1.315.2.2    martin 		sched_enqueue(l);
    629  1.315.2.2    martin 		sched_preempted(l);
    630  1.315.2.2    martin 
    631  1.315.2.2    martin 		/*
    632  1.315.2.2    martin 		 * Handle migration.  Note that "migrating LWP" may
    633  1.315.2.2    martin 		 * be reset here, if interrupt/preemption happens
    634  1.315.2.2    martin 		 * early in idle LWP.
    635  1.315.2.2    martin 		 */
    636  1.315.2.2    martin 		if (l->l_target_cpu != NULL && (l->l_pflag & LP_BOUND) == 0) {
    637  1.315.2.2    martin 			KASSERT((l->l_pflag & LP_INTR) == 0);
    638  1.315.2.2    martin 			spc->spc_migrating = l;
    639  1.315.2.2    martin 		}
    640      1.174        ad 	}
    641      1.174        ad 
    642      1.245        ad 	/* Pick new LWP to run. */
    643      1.190        ad 	if (newl == NULL) {
    644      1.245        ad 		newl = nextlwp(ci, spc);
    645      1.199        ad 	}
    646      1.199        ad 
    647      1.204        ad 	/* Items that must be updated with the CPU locked. */
    648      1.199        ad 	if (!returning) {
    649  1.315.2.2    martin 		/* Count time spent in current system call */
    650  1.315.2.2    martin 		SYSCALL_TIME_SLEEP(l);
    651  1.315.2.2    martin 
    652  1.315.2.2    martin 		updatertime(l, &bt);
    653  1.315.2.2    martin 
    654      1.204        ad 		/* Update the new LWP's start time. */
    655      1.212      yamt 		newl->l_stime = bt;
    656      1.204        ad 
    657      1.199        ad 		/*
    658      1.204        ad 		 * ci_curlwp changes when a fast soft interrupt occurs.
    659  1.315.2.2    martin 		 * We use ci_onproc to keep track of which kernel or
    660      1.204        ad 		 * user thread is running 'underneath' the software
    661      1.204        ad 		 * interrupt.  This is important for time accounting,
    662      1.204        ad 		 * itimers and forcing user threads to preempt (aston).
    663      1.199        ad 		 */
    664  1.315.2.2    martin 		ci->ci_onproc = newl;
    665      1.188      yamt 	}
    666      1.188      yamt 
    667      1.241        ad 	/*
    668  1.315.2.2    martin 	 * Preemption related tasks.  Must be done holding spc_mutex.  Clear
    669  1.315.2.2    martin 	 * l_dopreempt without an atomic - it's only ever set non-zero by
    670  1.315.2.2    martin 	 * sched_resched_cpu() which also holds spc_mutex, and only ever
    671  1.315.2.2    martin 	 * cleared by the LWP itself (us) with atomics when not under lock.
    672      1.241        ad 	 */
    673      1.231        ad 	l->l_dopreempt = 0;
    674      1.231        ad 	if (__predict_false(l->l_pfailaddr != 0)) {
    675      1.231        ad 		LOCKSTAT_FLAG(lsflag);
    676      1.231        ad 		LOCKSTAT_ENTER(lsflag);
    677      1.231        ad 		LOCKSTAT_STOP_TIMER(lsflag, l->l_pfailtime);
    678      1.231        ad 		LOCKSTAT_EVENT_RA(lsflag, l->l_pfaillock, LB_NOPREEMPT|LB_SPIN,
    679      1.231        ad 		    1, l->l_pfailtime, l->l_pfailaddr);
    680      1.231        ad 		LOCKSTAT_EXIT(lsflag);
    681      1.231        ad 		l->l_pfailtime = 0;
    682      1.231        ad 		l->l_pfaillock = 0;
    683      1.231        ad 		l->l_pfailaddr = 0;
    684      1.231        ad 	}
    685      1.231        ad 
    686      1.188      yamt 	if (l != newl) {
    687      1.188      yamt 		struct lwp *prevlwp;
    688      1.174        ad 
    689      1.209        ad 		/* Release all locks, but leave the current LWP locked */
    690      1.246     rmind 		if (l->l_mutex == spc->spc_mutex) {
    691      1.209        ad 			/*
    692      1.209        ad 			 * Drop spc_lwplock, if the current LWP has been moved
    693      1.209        ad 			 * to the run queue (it is now locked by spc_mutex).
    694      1.209        ad 			 */
    695      1.217        ad 			mutex_spin_exit(spc->spc_lwplock);
    696      1.188      yamt 		} else {
    697      1.209        ad 			/*
    698      1.209        ad 			 * Otherwise, drop the spc_mutex, we are done with the
    699      1.209        ad 			 * run queues.
    700      1.209        ad 			 */
    701      1.188      yamt 			mutex_spin_exit(spc->spc_mutex);
    702      1.188      yamt 		}
    703      1.188      yamt 
    704  1.315.2.2    martin 		/* We're down to only one lock, so do debug checks. */
    705  1.315.2.2    martin 		LOCKDEBUG_BARRIER(l->l_mutex, 1);
    706  1.315.2.2    martin 
    707  1.315.2.2    martin 		/* Count the context switch. */
    708  1.315.2.2    martin 		CPU_COUNT(CPU_COUNT_NSWTCH, 1);
    709      1.209        ad 		l->l_ncsw++;
    710  1.315.2.2    martin 		if ((l->l_pflag & LP_PREEMPTING) != 0) {
    711  1.315.2.1  christos 			l->l_nivcsw++;
    712  1.315.2.2    martin 			l->l_pflag &= ~LP_PREEMPTING;
    713  1.315.2.2    martin 		}
    714      1.209        ad 
    715      1.209        ad 		/*
    716      1.209        ad 		 * Increase the count of spin-mutexes before the release
    717  1.315.2.2    martin 		 * of the last lock - we must remain at IPL_SCHED after
    718  1.315.2.2    martin 		 * releasing the lock.
    719      1.209        ad 		 */
    720      1.287      matt 		KASSERTMSG(ci->ci_mtx_count == -1,
    721      1.301     rmind 		    "%s: cpu%u: ci_mtx_count (%d) != -1 "
    722      1.301     rmind 		    "(block with spin-mutex held)",
    723      1.291       jym 		     __func__, cpu_index(ci), ci->ci_mtx_count);
    724      1.209        ad 		oldspl = MUTEX_SPIN_OLDSPL(ci);
    725  1.315.2.2    martin 		ci->ci_mtx_count = -2;
    726      1.188      yamt 
    727      1.209        ad 		/* Update status for lwpctl, if present. */
    728  1.315.2.2    martin 		if (l->l_lwpctl != NULL) {
    729  1.315.2.2    martin 			l->l_lwpctl->lc_curcpu = (l->l_stat == LSZOMB ?
    730  1.315.2.2    martin 			    LWPCTL_CPU_EXITED : LWPCTL_CPU_NONE);
    731  1.315.2.2    martin 		}
    732      1.209        ad 
    733      1.199        ad 		/*
    734  1.315.2.2    martin 		 * If curlwp is a soft interrupt LWP, there's nobody on the
    735  1.315.2.2    martin 		 * other side to unlock - we're returning into an assembly
    736  1.315.2.2    martin 		 * trampoline.  Unlock now.  This is safe because this is a
    737  1.315.2.2    martin 		 * kernel LWP and is bound to current CPU: the worst anyone
    738  1.315.2.2    martin 		 * else will do to it, is to put it back onto this CPU's run
    739  1.315.2.2    martin 		 * queue (and the CPU is busy here right now!).
    740      1.199        ad 		 */
    741  1.315.2.2    martin 		if (returning) {
    742  1.315.2.2    martin 			/* Keep IPL_SCHED after this; MD code will fix up. */
    743  1.315.2.2    martin 			l->l_pflag &= ~LP_RUNNING;
    744  1.315.2.2    martin 			lwp_unlock(l);
    745  1.315.2.2    martin 		} else {
    746  1.315.2.2    martin 			/* A normal LWP: save old VM context. */
    747      1.199        ad 			pmap_deactivate(l);
    748      1.209        ad 		}
    749      1.207        ad 
    750      1.276    darran 		/*
    751      1.276    darran 		 * If DTrace has set the active vtime enum to anything
    752      1.276    darran 		 * other than INACTIVE (0), then it should have set the
    753      1.276    darran 		 * function to call.
    754      1.276    darran 		 */
    755      1.278    darran 		if (__predict_false(dtrace_vtime_active)) {
    756      1.276    darran 			(*dtrace_vtime_switch_func)(newl);
    757      1.276    darran 		}
    758      1.276    darran 
    759  1.315.2.1  christos 		/*
    760  1.315.2.1  christos 		 * We must ensure not to come here from inside a read section.
    761  1.315.2.1  christos 		 */
    762  1.315.2.1  christos 		KASSERT(pserialize_not_in_read_section());
    763  1.315.2.1  christos 
    764      1.188      yamt 		/* Switch to the new LWP.. */
    765      1.305   mlelstv #ifdef MULTIPROCESSOR
    766      1.304      matt 		KASSERT(curlwp == ci->ci_curlwp);
    767      1.305   mlelstv #endif
    768      1.304      matt 		KASSERTMSG(l == curlwp, "l %p curlwp %p", l, curlwp);
    769      1.204        ad 		prevlwp = cpu_switchto(l, newl, returning);
    770      1.207        ad 		ci = curcpu();
    771      1.305   mlelstv #ifdef MULTIPROCESSOR
    772      1.304      matt 		KASSERT(curlwp == ci->ci_curlwp);
    773      1.305   mlelstv #endif
    774      1.304      matt 		KASSERTMSG(l == curlwp, "l %p curlwp %p prevlwp %p",
    775      1.304      matt 		    l, curlwp, prevlwp);
    776  1.315.2.2    martin 		KASSERT(prevlwp != NULL);
    777  1.315.2.2    martin 		KASSERT(l->l_cpu == ci);
    778  1.315.2.2    martin 		KASSERT(ci->ci_mtx_count == -2);
    779  1.315.2.2    martin 
    780  1.315.2.2    martin 		/*
    781  1.315.2.2    martin 		 * Immediately mark the previous LWP as no longer running
    782  1.315.2.2    martin 		 * and unlock (to keep lock wait times short as possible).
    783  1.315.2.2    martin 		 * We'll still be at IPL_SCHED afterwards.  If a zombie,
    784  1.315.2.2    martin 		 * don't touch after clearing LP_RUNNING as it could be
    785  1.315.2.2    martin 		 * reaped by another CPU.  Issue a memory barrier to ensure
    786  1.315.2.2    martin 		 * this.
    787  1.315.2.2    martin 		 */
    788  1.315.2.2    martin 		KASSERT((prevlwp->l_pflag & LP_RUNNING) != 0);
    789  1.315.2.2    martin 		lock = prevlwp->l_mutex;
    790  1.315.2.2    martin 		if (__predict_false(prevlwp->l_stat == LSZOMB)) {
    791  1.315.2.2    martin 			membar_sync();
    792  1.315.2.2    martin 		}
    793  1.315.2.2    martin 		prevlwp->l_pflag &= ~LP_RUNNING;
    794  1.315.2.2    martin 		mutex_spin_exit(lock);
    795      1.207        ad 
    796      1.188      yamt 		/*
    797      1.209        ad 		 * Switched away - we have new curlwp.
    798      1.209        ad 		 * Restore VM context and IPL.
    799      1.188      yamt 		 */
    800      1.209        ad 		pmap_activate(l);
    801      1.288     rmind 		pcu_switchpoint(l);
    802      1.265     rmind 
    803      1.209        ad 		/* Update status for lwpctl, if present. */
    804      1.219        ad 		if (l->l_lwpctl != NULL) {
    805      1.209        ad 			l->l_lwpctl->lc_curcpu = (int)cpu_index(ci);
    806      1.219        ad 			l->l_lwpctl->lc_pctr++;
    807      1.219        ad 		}
    808      1.174        ad 
    809      1.300      yamt 		/*
    810  1.315.2.2    martin 		 * Normalize the spin mutex count and restore the previous
    811  1.315.2.2    martin 		 * SPL.  Note that, unless the caller disabled preemption,
    812  1.315.2.2    martin 		 * we can be preempted at any time after this splx().
    813      1.300      yamt 		 */
    814  1.315.2.2    martin 		KASSERT(l->l_cpu == ci);
    815  1.315.2.2    martin 		KASSERT(ci->ci_mtx_count == -1);
    816  1.315.2.2    martin 		ci->ci_mtx_count = 0;
    817  1.315.2.2    martin 		splx(oldspl);
    818      1.188      yamt 	} else {
    819      1.188      yamt 		/* Nothing to do - just unlock and return. */
    820      1.246     rmind 		mutex_spin_exit(spc->spc_mutex);
    821  1.315.2.1  christos 		l->l_pflag &= ~LP_PREEMPTING;
    822      1.188      yamt 		lwp_unlock(l);
    823      1.122   thorpej 	}
    824      1.110    briggs 
    825      1.188      yamt 	KASSERT(l == curlwp);
    826  1.315.2.2    martin 	KASSERT(l->l_stat == LSONPROC || (l->l_flag & LW_IDLE) != 0);
    827      1.188      yamt 
    828      1.180       dsl 	SYSCALL_TIME_WAKEUP(l);
    829      1.188      yamt 	LOCKDEBUG_BARRIER(NULL, 1);
    830      1.245        ad }
    831      1.245        ad 
    832      1.245        ad /*
    833      1.271     rmind  * setrunnable: change LWP state to be runnable, placing it on the run queue.
    834      1.174        ad  *
    835      1.174        ad  * Call with the process and LWP locked.  Will return with the LWP unlocked.
    836       1.26       cgd  */
    837       1.26       cgd void
    838      1.122   thorpej setrunnable(struct lwp *l)
    839       1.26       cgd {
    840      1.122   thorpej 	struct proc *p = l->l_proc;
    841      1.205        ad 	struct cpu_info *ci;
    842  1.315.2.2    martin 	kmutex_t *oldlock;
    843       1.26       cgd 
    844      1.188      yamt 	KASSERT((l->l_flag & LW_IDLE) == 0);
    845  1.315.2.3    martin 	KASSERT((l->l_flag & LW_DBGSUSPEND) == 0);
    846      1.229        ad 	KASSERT(mutex_owned(p->p_lock));
    847      1.183        ad 	KASSERT(lwp_locked(l, NULL));
    848      1.205        ad 	KASSERT(l->l_mutex != l->l_cpu->ci_schedstate.spc_mutex);
    849       1.83   thorpej 
    850      1.122   thorpej 	switch (l->l_stat) {
    851      1.122   thorpej 	case LSSTOP:
    852       1.33   mycroft 		/*
    853       1.33   mycroft 		 * If we're being traced (possibly because someone attached us
    854       1.33   mycroft 		 * while we were stopped), check for a signal from the debugger.
    855       1.33   mycroft 		 */
    856      1.310  christos 		if ((p->p_slflag & PSL_TRACED) != 0 && p->p_xsig != 0)
    857      1.174        ad 			signotify(l);
    858      1.174        ad 		p->p_nrlwps++;
    859       1.26       cgd 		break;
    860      1.174        ad 	case LSSUSPENDED:
    861  1.315.2.2    martin 		KASSERT(lwp_locked(l, l->l_cpu->ci_schedstate.spc_lwplock));
    862      1.178     pavel 		l->l_flag &= ~LW_WSUSPEND;
    863      1.174        ad 		p->p_nrlwps++;
    864      1.192     rmind 		cv_broadcast(&p->p_lwpcv);
    865      1.122   thorpej 		break;
    866      1.174        ad 	case LSSLEEP:
    867      1.174        ad 		KASSERT(l->l_wchan != NULL);
    868       1.26       cgd 		break;
    869  1.315.2.2    martin 	case LSIDL:
    870  1.315.2.2    martin 		KASSERT(lwp_locked(l, l->l_cpu->ci_schedstate.spc_lwplock));
    871  1.315.2.2    martin 		break;
    872      1.174        ad 	default:
    873      1.174        ad 		panic("setrunnable: lwp %p state was %d", l, l->l_stat);
    874       1.26       cgd 	}
    875      1.139        cl 
    876      1.174        ad 	/*
    877      1.286     pooka 	 * If the LWP was sleeping, start it again.
    878      1.174        ad 	 */
    879      1.174        ad 	if (l->l_wchan != NULL) {
    880      1.174        ad 		l->l_stat = LSSLEEP;
    881      1.183        ad 		/* lwp_unsleep() will release the lock. */
    882      1.221        ad 		lwp_unsleep(l, true);
    883      1.174        ad 		return;
    884      1.174        ad 	}
    885      1.139        cl 
    886      1.174        ad 	/*
    887      1.174        ad 	 * If the LWP is still on the CPU, mark it as LSONPROC.  It may be
    888      1.174        ad 	 * about to call mi_switch(), in which case it will yield.
    889      1.174        ad 	 */
    890      1.248        ad 	if ((l->l_pflag & LP_RUNNING) != 0) {
    891      1.174        ad 		l->l_stat = LSONPROC;
    892      1.174        ad 		l->l_slptime = 0;
    893      1.174        ad 		lwp_unlock(l);
    894      1.174        ad 		return;
    895      1.174        ad 	}
    896      1.122   thorpej 
    897      1.174        ad 	/*
    898      1.205        ad 	 * Look for a CPU to run.
    899      1.205        ad 	 * Set the LWP runnable.
    900      1.174        ad 	 */
    901      1.205        ad 	ci = sched_takecpu(l);
    902      1.205        ad 	l->l_cpu = ci;
    903      1.236        ad 	spc_lock(ci);
    904  1.315.2.2    martin 	oldlock = lwp_setlock(l, l->l_cpu->ci_schedstate.spc_mutex);
    905      1.188      yamt 	sched_setrunnable(l);
    906      1.174        ad 	l->l_stat = LSRUN;
    907      1.122   thorpej 	l->l_slptime = 0;
    908  1.315.2.2    martin 	sched_enqueue(l);
    909  1.315.2.2    martin 	sched_resched_lwp(l, true);
    910  1.315.2.2    martin 	/* SPC & LWP now unlocked. */
    911  1.315.2.2    martin 	mutex_spin_exit(oldlock);
    912       1.26       cgd }
    913       1.26       cgd 
    914       1.26       cgd /*
    915      1.174        ad  * suspendsched:
    916      1.174        ad  *
    917      1.266      yamt  *	Convert all non-LW_SYSTEM LSSLEEP or LSRUN LWPs to LSSUSPENDED.
    918      1.174        ad  */
    919       1.94    bouyer void
    920      1.174        ad suspendsched(void)
    921       1.94    bouyer {
    922      1.174        ad 	CPU_INFO_ITERATOR cii;
    923      1.174        ad 	struct cpu_info *ci;
    924      1.122   thorpej 	struct lwp *l;
    925      1.174        ad 	struct proc *p;
    926       1.94    bouyer 
    927       1.94    bouyer 	/*
    928      1.174        ad 	 * We do this by process in order not to violate the locking rules.
    929       1.94    bouyer 	 */
    930      1.228        ad 	mutex_enter(proc_lock);
    931      1.174        ad 	PROCLIST_FOREACH(p, &allproc) {
    932      1.229        ad 		mutex_enter(p->p_lock);
    933      1.178     pavel 		if ((p->p_flag & PK_SYSTEM) != 0) {
    934      1.229        ad 			mutex_exit(p->p_lock);
    935       1.94    bouyer 			continue;
    936      1.174        ad 		}
    937      1.174        ad 
    938      1.309  pgoyette 		if (p->p_stat != SSTOP) {
    939      1.309  pgoyette 			if (p->p_stat != SZOMB && p->p_stat != SDEAD) {
    940      1.309  pgoyette 				p->p_pptr->p_nstopchild++;
    941      1.309  pgoyette 				p->p_waited = 0;
    942      1.309  pgoyette 			}
    943      1.309  pgoyette 			p->p_stat = SSTOP;
    944      1.309  pgoyette 		}
    945      1.174        ad 
    946      1.174        ad 		LIST_FOREACH(l, &p->p_lwps, l_sibling) {
    947      1.174        ad 			if (l == curlwp)
    948      1.174        ad 				continue;
    949      1.174        ad 
    950      1.174        ad 			lwp_lock(l);
    951      1.122   thorpej 
    952       1.97     enami 			/*
    953      1.174        ad 			 * Set L_WREBOOT so that the LWP will suspend itself
    954      1.174        ad 			 * when it tries to return to user mode.  We want to
    955      1.174        ad 			 * try and get to get as many LWPs as possible to
    956      1.174        ad 			 * the user / kernel boundary, so that they will
    957      1.174        ad 			 * release any locks that they hold.
    958       1.97     enami 			 */
    959      1.178     pavel 			l->l_flag |= (LW_WREBOOT | LW_WSUSPEND);
    960      1.174        ad 
    961      1.174        ad 			if (l->l_stat == LSSLEEP &&
    962      1.178     pavel 			    (l->l_flag & LW_SINTR) != 0) {
    963      1.174        ad 				/* setrunnable() will release the lock. */
    964      1.174        ad 				setrunnable(l);
    965      1.174        ad 				continue;
    966      1.174        ad 			}
    967      1.174        ad 
    968      1.174        ad 			lwp_unlock(l);
    969       1.94    bouyer 		}
    970      1.174        ad 
    971      1.229        ad 		mutex_exit(p->p_lock);
    972       1.94    bouyer 	}
    973      1.228        ad 	mutex_exit(proc_lock);
    974      1.174        ad 
    975      1.174        ad 	/*
    976      1.174        ad 	 * Kick all CPUs to make them preempt any LWPs running in user mode.
    977  1.315.2.2    martin 	 * They'll trap into the kernel and suspend themselves in userret().
    978  1.315.2.2    martin 	 *
    979  1.315.2.2    martin 	 * Unusually, we don't hold any other scheduler object locked, which
    980  1.315.2.2    martin 	 * would keep preemption off for sched_resched_cpu(), so disable it
    981  1.315.2.2    martin 	 * explicitly.
    982      1.174        ad 	 */
    983  1.315.2.2    martin 	kpreempt_disable();
    984      1.204        ad 	for (CPU_INFO_FOREACH(cii, ci)) {
    985      1.204        ad 		spc_lock(ci);
    986  1.315.2.2    martin 		sched_resched_cpu(ci, PRI_KERNEL, true);
    987  1.315.2.2    martin 		/* spc now unlocked */
    988      1.204        ad 	}
    989  1.315.2.2    martin 	kpreempt_enable();
    990      1.174        ad }
    991      1.174        ad 
    992      1.174        ad /*
    993      1.174        ad  * sched_unsleep:
    994      1.174        ad  *
    995      1.174        ad  *	The is called when the LWP has not been awoken normally but instead
    996      1.174        ad  *	interrupted: for example, if the sleep timed out.  Because of this,
    997      1.174        ad  *	it's not a valid action for running or idle LWPs.
    998      1.174        ad  */
    999      1.271     rmind static void
   1000      1.221        ad sched_unsleep(struct lwp *l, bool cleanup)
   1001      1.174        ad {
   1002      1.174        ad 
   1003      1.174        ad 	lwp_unlock(l);
   1004      1.174        ad 	panic("sched_unsleep");
   1005      1.174        ad }
   1006      1.174        ad 
   1007      1.250     rmind static void
   1008      1.185      yamt sched_changepri(struct lwp *l, pri_t pri)
   1009      1.174        ad {
   1010  1.315.2.2    martin 	struct schedstate_percpu *spc;
   1011  1.315.2.2    martin 	struct cpu_info *ci;
   1012      1.174        ad 
   1013      1.188      yamt 	KASSERT(lwp_locked(l, NULL));
   1014      1.174        ad 
   1015  1.315.2.2    martin 	ci = l->l_cpu;
   1016  1.315.2.2    martin 	spc = &ci->ci_schedstate;
   1017  1.315.2.2    martin 
   1018      1.271     rmind 	if (l->l_stat == LSRUN) {
   1019  1.315.2.2    martin 		KASSERT(lwp_locked(l, spc->spc_mutex));
   1020      1.204        ad 		sched_dequeue(l);
   1021      1.204        ad 		l->l_priority = pri;
   1022  1.315.2.2    martin 		sched_enqueue(l);
   1023  1.315.2.2    martin 		sched_resched_lwp(l, false);
   1024  1.315.2.2    martin 	} else if (l->l_stat == LSONPROC && l->l_class != SCHED_OTHER) {
   1025  1.315.2.2    martin 		/* On priority drop, only evict realtime LWPs. */
   1026  1.315.2.2    martin 		KASSERT(lwp_locked(l, spc->spc_lwplock));
   1027  1.315.2.2    martin 		l->l_priority = pri;
   1028  1.315.2.2    martin 		spc_lock(ci);
   1029  1.315.2.2    martin 		sched_resched_cpu(ci, spc->spc_maxpriority, true);
   1030  1.315.2.2    martin 		/* spc now unlocked */
   1031      1.204        ad 	} else {
   1032      1.174        ad 		l->l_priority = pri;
   1033      1.157      yamt 	}
   1034      1.184      yamt }
   1035      1.184      yamt 
   1036      1.188      yamt static void
   1037      1.185      yamt sched_lendpri(struct lwp *l, pri_t pri)
   1038      1.184      yamt {
   1039  1.315.2.2    martin 	struct schedstate_percpu *spc;
   1040  1.315.2.2    martin 	struct cpu_info *ci;
   1041      1.184      yamt 
   1042      1.188      yamt 	KASSERT(lwp_locked(l, NULL));
   1043      1.184      yamt 
   1044  1.315.2.2    martin 	ci = l->l_cpu;
   1045  1.315.2.2    martin 	spc = &ci->ci_schedstate;
   1046  1.315.2.2    martin 
   1047      1.271     rmind 	if (l->l_stat == LSRUN) {
   1048  1.315.2.2    martin 		KASSERT(lwp_locked(l, spc->spc_mutex));
   1049      1.204        ad 		sched_dequeue(l);
   1050      1.204        ad 		l->l_inheritedprio = pri;
   1051      1.311  christos 		l->l_auxprio = MAX(l->l_inheritedprio, l->l_protectprio);
   1052  1.315.2.2    martin 		sched_enqueue(l);
   1053  1.315.2.2    martin 		sched_resched_lwp(l, false);
   1054  1.315.2.2    martin 	} else if (l->l_stat == LSONPROC && l->l_class != SCHED_OTHER) {
   1055  1.315.2.2    martin 		/* On priority drop, only evict realtime LWPs. */
   1056  1.315.2.2    martin 		KASSERT(lwp_locked(l, spc->spc_lwplock));
   1057  1.315.2.2    martin 		l->l_inheritedprio = pri;
   1058  1.315.2.2    martin 		l->l_auxprio = MAX(l->l_inheritedprio, l->l_protectprio);
   1059  1.315.2.2    martin 		spc_lock(ci);
   1060  1.315.2.2    martin 		sched_resched_cpu(ci, spc->spc_maxpriority, true);
   1061  1.315.2.2    martin 		/* spc now unlocked */
   1062      1.204        ad 	} else {
   1063      1.184      yamt 		l->l_inheritedprio = pri;
   1064      1.311  christos 		l->l_auxprio = MAX(l->l_inheritedprio, l->l_protectprio);
   1065      1.184      yamt 	}
   1066      1.184      yamt }
   1067      1.184      yamt 
   1068      1.184      yamt struct lwp *
   1069      1.184      yamt syncobj_noowner(wchan_t wchan)
   1070      1.184      yamt {
   1071      1.184      yamt 
   1072      1.184      yamt 	return NULL;
   1073      1.151      yamt }
   1074      1.151      yamt 
   1075      1.250     rmind /* Decay 95% of proc::p_pctcpu in 60 seconds, ccpu = exp(-1/20) */
   1076      1.281     rmind const fixpt_t ccpu = 0.95122942450071400909 * FSCALE;
   1077      1.281     rmind 
   1078      1.281     rmind /*
   1079      1.281     rmind  * Constants for averages over 1, 5 and 15 minutes when sampling at
   1080      1.281     rmind  * 5 second intervals.
   1081      1.281     rmind  */
   1082      1.281     rmind static const fixpt_t cexp[ ] = {
   1083      1.281     rmind 	0.9200444146293232 * FSCALE,	/* exp(-1/12) */
   1084      1.281     rmind 	0.9834714538216174 * FSCALE,	/* exp(-1/60) */
   1085      1.281     rmind 	0.9944598480048967 * FSCALE,	/* exp(-1/180) */
   1086      1.281     rmind };
   1087      1.134      matt 
   1088      1.134      matt /*
   1089      1.188      yamt  * sched_pstats:
   1090      1.188      yamt  *
   1091      1.281     rmind  * => Update process statistics and check CPU resource allocation.
   1092      1.281     rmind  * => Call scheduler-specific hook to eventually adjust LWP priorities.
   1093      1.281     rmind  * => Compute load average of a quantity on 1, 5 and 15 minute intervals.
   1094      1.130   nathanw  */
   1095      1.113  gmcgarry void
   1096      1.281     rmind sched_pstats(void)
   1097      1.113  gmcgarry {
   1098      1.281     rmind 	extern struct loadavg averunnable;
   1099      1.281     rmind 	struct loadavg *avg = &averunnable;
   1100      1.249     rmind 	const int clkhz = (stathz != 0 ? stathz : hz);
   1101      1.281     rmind 	static bool backwards = false;
   1102      1.281     rmind 	static u_int lavg_count = 0;
   1103      1.188      yamt 	struct proc *p;
   1104      1.281     rmind 	int nrun;
   1105      1.113  gmcgarry 
   1106      1.188      yamt 	sched_pstats_ticks++;
   1107      1.281     rmind 	if (++lavg_count >= 5) {
   1108      1.281     rmind 		lavg_count = 0;
   1109      1.281     rmind 		nrun = 0;
   1110      1.281     rmind 	}
   1111      1.228        ad 	mutex_enter(proc_lock);
   1112      1.188      yamt 	PROCLIST_FOREACH(p, &allproc) {
   1113      1.281     rmind 		struct lwp *l;
   1114      1.281     rmind 		struct rlimit *rlim;
   1115      1.296  dholland 		time_t runtm;
   1116      1.281     rmind 		int sig;
   1117      1.281     rmind 
   1118      1.271     rmind 		/* Increment sleep time (if sleeping), ignore overflow. */
   1119      1.229        ad 		mutex_enter(p->p_lock);
   1120      1.212      yamt 		runtm = p->p_rtime.sec;
   1121      1.188      yamt 		LIST_FOREACH(l, &p->p_lwps, l_sibling) {
   1122      1.281     rmind 			fixpt_t lpctcpu;
   1123      1.281     rmind 			u_int lcpticks;
   1124      1.281     rmind 
   1125      1.249     rmind 			if (__predict_false((l->l_flag & LW_IDLE) != 0))
   1126      1.188      yamt 				continue;
   1127      1.188      yamt 			lwp_lock(l);
   1128      1.212      yamt 			runtm += l->l_rtime.sec;
   1129      1.188      yamt 			l->l_swtime++;
   1130      1.242     rmind 			sched_lwp_stats(l);
   1131      1.281     rmind 
   1132      1.281     rmind 			/* For load average calculation. */
   1133      1.282     rmind 			if (__predict_false(lavg_count == 0) &&
   1134      1.282     rmind 			    (l->l_flag & (LW_SINTR | LW_SYSTEM)) == 0) {
   1135      1.281     rmind 				switch (l->l_stat) {
   1136      1.281     rmind 				case LSSLEEP:
   1137      1.281     rmind 					if (l->l_slptime > 1) {
   1138      1.281     rmind 						break;
   1139      1.281     rmind 					}
   1140  1.315.2.1  christos 					/* FALLTHROUGH */
   1141      1.281     rmind 				case LSRUN:
   1142      1.281     rmind 				case LSONPROC:
   1143      1.281     rmind 				case LSIDL:
   1144      1.281     rmind 					nrun++;
   1145      1.281     rmind 				}
   1146      1.281     rmind 			}
   1147      1.282     rmind 			lwp_unlock(l);
   1148      1.282     rmind 
   1149      1.282     rmind 			l->l_pctcpu = (l->l_pctcpu * ccpu) >> FSHIFT;
   1150      1.282     rmind 			if (l->l_slptime != 0)
   1151      1.282     rmind 				continue;
   1152      1.282     rmind 
   1153      1.282     rmind 			lpctcpu = l->l_pctcpu;
   1154      1.282     rmind 			lcpticks = atomic_swap_uint(&l->l_cpticks, 0);
   1155      1.282     rmind 			lpctcpu += ((FSCALE - ccpu) *
   1156      1.282     rmind 			    (lcpticks * FSCALE / clkhz)) >> FSHIFT;
   1157      1.282     rmind 			l->l_pctcpu = lpctcpu;
   1158      1.188      yamt 		}
   1159      1.249     rmind 		/* Calculating p_pctcpu only for ps(1) */
   1160      1.188      yamt 		p->p_pctcpu = (p->p_pctcpu * ccpu) >> FSHIFT;
   1161      1.174        ad 
   1162      1.303  christos 		if (__predict_false(runtm < 0)) {
   1163      1.303  christos 			if (!backwards) {
   1164      1.303  christos 				backwards = true;
   1165      1.303  christos 				printf("WARNING: negative runtime; "
   1166      1.303  christos 				    "monotonic clock has gone backwards\n");
   1167      1.303  christos 			}
   1168      1.303  christos 			mutex_exit(p->p_lock);
   1169      1.303  christos 			continue;
   1170      1.303  christos 		}
   1171      1.303  christos 
   1172      1.188      yamt 		/*
   1173      1.188      yamt 		 * Check if the process exceeds its CPU resource allocation.
   1174      1.293       apb 		 * If over the hard limit, kill it with SIGKILL.
   1175      1.293       apb 		 * If over the soft limit, send SIGXCPU and raise
   1176      1.293       apb 		 * the soft limit a little.
   1177      1.188      yamt 		 */
   1178      1.188      yamt 		rlim = &p->p_rlimit[RLIMIT_CPU];
   1179      1.188      yamt 		sig = 0;
   1180      1.249     rmind 		if (__predict_false(runtm >= rlim->rlim_cur)) {
   1181      1.293       apb 			if (runtm >= rlim->rlim_max) {
   1182      1.188      yamt 				sig = SIGKILL;
   1183      1.312  christos 				log(LOG_NOTICE,
   1184      1.312  christos 				    "pid %d, command %s, is killed: %s\n",
   1185      1.312  christos 				    p->p_pid, p->p_comm, "exceeded RLIMIT_CPU");
   1186      1.293       apb 				uprintf("pid %d, command %s, is killed: %s\n",
   1187      1.312  christos 				    p->p_pid, p->p_comm, "exceeded RLIMIT_CPU");
   1188      1.293       apb 			} else {
   1189      1.188      yamt 				sig = SIGXCPU;
   1190      1.188      yamt 				if (rlim->rlim_cur < rlim->rlim_max)
   1191      1.188      yamt 					rlim->rlim_cur += 5;
   1192      1.188      yamt 			}
   1193      1.188      yamt 		}
   1194      1.229        ad 		mutex_exit(p->p_lock);
   1195      1.303  christos 		if (__predict_false(sig)) {
   1196      1.259     rmind 			KASSERT((p->p_flag & PK_SYSTEM) == 0);
   1197      1.188      yamt 			psignal(p, sig);
   1198      1.259     rmind 		}
   1199      1.174        ad 	}
   1200      1.281     rmind 
   1201      1.281     rmind 	/* Load average calculation. */
   1202      1.281     rmind 	if (__predict_false(lavg_count == 0)) {
   1203      1.281     rmind 		int i;
   1204      1.283    martin 		CTASSERT(__arraycount(cexp) == __arraycount(avg->ldavg));
   1205      1.281     rmind 		for (i = 0; i < __arraycount(cexp); i++) {
   1206      1.281     rmind 			avg->ldavg[i] = (cexp[i] * avg->ldavg[i] +
   1207      1.281     rmind 			    nrun * FSCALE * (FSCALE - cexp[i])) >> FSHIFT;
   1208      1.281     rmind 		}
   1209      1.281     rmind 	}
   1210      1.281     rmind 
   1211      1.281     rmind 	/* Lightning bolt. */
   1212      1.273     pooka 	cv_broadcast(&lbolt);
   1213  1.315.2.2    martin 
   1214  1.315.2.2    martin 	mutex_exit(proc_lock);
   1215      1.113  gmcgarry }
   1216