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kern_time.c revision 1.199
      1 /*	$NetBSD: kern_time.c,v 1.199 2019/08/07 07:22:12 mrg Exp $	*/
      2 
      3 /*-
      4  * Copyright (c) 2000, 2004, 2005, 2007, 2008, 2009 The NetBSD Foundation, Inc.
      5  * All rights reserved.
      6  *
      7  * This code is derived from software contributed to The NetBSD Foundation
      8  * by Christopher G. Demetriou, and by Andrew Doran.
      9  *
     10  * Redistribution and use in source and binary forms, with or without
     11  * modification, are permitted provided that the following conditions
     12  * are met:
     13  * 1. Redistributions of source code must retain the above copyright
     14  *    notice, this list of conditions and the following disclaimer.
     15  * 2. Redistributions in binary form must reproduce the above copyright
     16  *    notice, this list of conditions and the following disclaimer in the
     17  *    documentation and/or other materials provided with the distribution.
     18  *
     19  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29  * POSSIBILITY OF SUCH DAMAGE.
     30  */
     31 
     32 /*
     33  * Copyright (c) 1982, 1986, 1989, 1993
     34  *	The Regents of the University of California.  All rights reserved.
     35  *
     36  * Redistribution and use in source and binary forms, with or without
     37  * modification, are permitted provided that the following conditions
     38  * are met:
     39  * 1. Redistributions of source code must retain the above copyright
     40  *    notice, this list of conditions and the following disclaimer.
     41  * 2. Redistributions in binary form must reproduce the above copyright
     42  *    notice, this list of conditions and the following disclaimer in the
     43  *    documentation and/or other materials provided with the distribution.
     44  * 3. Neither the name of the University nor the names of its contributors
     45  *    may be used to endorse or promote products derived from this software
     46  *    without specific prior written permission.
     47  *
     48  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     49  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     50  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     51  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     52  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     53  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     54  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     55  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     56  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     57  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     58  * SUCH DAMAGE.
     59  *
     60  *	@(#)kern_time.c	8.4 (Berkeley) 5/26/95
     61  */
     62 
     63 #include <sys/cdefs.h>
     64 __KERNEL_RCSID(0, "$NetBSD: kern_time.c,v 1.199 2019/08/07 07:22:12 mrg Exp $");
     65 
     66 #include <sys/param.h>
     67 #include <sys/resourcevar.h>
     68 #include <sys/kernel.h>
     69 #include <sys/systm.h>
     70 #include <sys/proc.h>
     71 #include <sys/vnode.h>
     72 #include <sys/signalvar.h>
     73 #include <sys/syslog.h>
     74 #include <sys/timetc.h>
     75 #include <sys/timex.h>
     76 #include <sys/kauth.h>
     77 #include <sys/mount.h>
     78 #include <sys/syscallargs.h>
     79 #include <sys/cpu.h>
     80 
     81 static void	timer_intr(void *);
     82 static void	itimerfire(struct ptimer *);
     83 static void	itimerfree(struct ptimers *, int);
     84 
     85 kmutex_t	timer_lock;
     86 
     87 static void	*timer_sih;
     88 static TAILQ_HEAD(, ptimer) timer_queue;
     89 
     90 struct pool ptimer_pool, ptimers_pool;
     91 
     92 #define	CLOCK_VIRTUAL_P(clockid)	\
     93 	((clockid) == CLOCK_VIRTUAL || (clockid) == CLOCK_PROF)
     94 
     95 CTASSERT(ITIMER_REAL == CLOCK_REALTIME);
     96 CTASSERT(ITIMER_VIRTUAL == CLOCK_VIRTUAL);
     97 CTASSERT(ITIMER_PROF == CLOCK_PROF);
     98 CTASSERT(ITIMER_MONOTONIC == CLOCK_MONOTONIC);
     99 
    100 #define	DELAYTIMER_MAX	32
    101 
    102 /*
    103  * Initialize timekeeping.
    104  */
    105 void
    106 time_init(void)
    107 {
    108 
    109 	pool_init(&ptimer_pool, sizeof(struct ptimer), 0, 0, 0, "ptimerpl",
    110 	    &pool_allocator_nointr, IPL_NONE);
    111 	pool_init(&ptimers_pool, sizeof(struct ptimers), 0, 0, 0, "ptimerspl",
    112 	    &pool_allocator_nointr, IPL_NONE);
    113 }
    114 
    115 void
    116 time_init2(void)
    117 {
    118 
    119 	TAILQ_INIT(&timer_queue);
    120 	mutex_init(&timer_lock, MUTEX_DEFAULT, IPL_SCHED);
    121 	timer_sih = softint_establish(SOFTINT_CLOCK | SOFTINT_MPSAFE,
    122 	    timer_intr, NULL);
    123 }
    124 
    125 /* Time of day and interval timer support.
    126  *
    127  * These routines provide the kernel entry points to get and set
    128  * the time-of-day and per-process interval timers.  Subroutines
    129  * here provide support for adding and subtracting timeval structures
    130  * and decrementing interval timers, optionally reloading the interval
    131  * timers when they expire.
    132  */
    133 
    134 /* This function is used by clock_settime and settimeofday */
    135 static int
    136 settime1(struct proc *p, const struct timespec *ts, bool check_kauth)
    137 {
    138 	struct timespec delta, now;
    139 	int s;
    140 
    141 	/* WHAT DO WE DO ABOUT PENDING REAL-TIME TIMEOUTS??? */
    142 	s = splclock();
    143 	nanotime(&now);
    144 	timespecsub(ts, &now, &delta);
    145 
    146 	if (check_kauth && kauth_authorize_system(kauth_cred_get(),
    147 	    KAUTH_SYSTEM_TIME, KAUTH_REQ_SYSTEM_TIME_SYSTEM, __UNCONST(ts),
    148 	    &delta, KAUTH_ARG(check_kauth ? false : true)) != 0) {
    149 		splx(s);
    150 		return (EPERM);
    151 	}
    152 
    153 #ifdef notyet
    154 	if ((delta.tv_sec < 86400) && securelevel > 0) { /* XXX elad - notyet */
    155 		splx(s);
    156 		return (EPERM);
    157 	}
    158 #endif
    159 
    160 	tc_setclock(ts);
    161 
    162 	timespecadd(&boottime, &delta, &boottime);
    163 
    164 	resettodr();
    165 	splx(s);
    166 
    167 	return (0);
    168 }
    169 
    170 int
    171 settime(struct proc *p, struct timespec *ts)
    172 {
    173 	return (settime1(p, ts, true));
    174 }
    175 
    176 /* ARGSUSED */
    177 int
    178 sys___clock_gettime50(struct lwp *l,
    179     const struct sys___clock_gettime50_args *uap, register_t *retval)
    180 {
    181 	/* {
    182 		syscallarg(clockid_t) clock_id;
    183 		syscallarg(struct timespec *) tp;
    184 	} */
    185 	int error;
    186 	struct timespec ats;
    187 
    188 	error = clock_gettime1(SCARG(uap, clock_id), &ats);
    189 	if (error != 0)
    190 		return error;
    191 
    192 	return copyout(&ats, SCARG(uap, tp), sizeof(ats));
    193 }
    194 
    195 /* ARGSUSED */
    196 int
    197 sys___clock_settime50(struct lwp *l,
    198     const struct sys___clock_settime50_args *uap, register_t *retval)
    199 {
    200 	/* {
    201 		syscallarg(clockid_t) clock_id;
    202 		syscallarg(const struct timespec *) tp;
    203 	} */
    204 	int error;
    205 	struct timespec ats;
    206 
    207 	if ((error = copyin(SCARG(uap, tp), &ats, sizeof(ats))) != 0)
    208 		return error;
    209 
    210 	return clock_settime1(l->l_proc, SCARG(uap, clock_id), &ats, true);
    211 }
    212 
    213 
    214 int
    215 clock_settime1(struct proc *p, clockid_t clock_id, const struct timespec *tp,
    216     bool check_kauth)
    217 {
    218 	int error;
    219 
    220 	switch (clock_id) {
    221 	case CLOCK_REALTIME:
    222 		if ((error = settime1(p, tp, check_kauth)) != 0)
    223 			return (error);
    224 		break;
    225 	case CLOCK_MONOTONIC:
    226 		return (EINVAL);	/* read-only clock */
    227 	default:
    228 		return (EINVAL);
    229 	}
    230 
    231 	return 0;
    232 }
    233 
    234 int
    235 sys___clock_getres50(struct lwp *l, const struct sys___clock_getres50_args *uap,
    236     register_t *retval)
    237 {
    238 	/* {
    239 		syscallarg(clockid_t) clock_id;
    240 		syscallarg(struct timespec *) tp;
    241 	} */
    242 	struct timespec ts;
    243 	int error;
    244 
    245 	if ((error = clock_getres1(SCARG(uap, clock_id), &ts)) != 0)
    246 		return error;
    247 
    248 	if (SCARG(uap, tp))
    249 		error = copyout(&ts, SCARG(uap, tp), sizeof(ts));
    250 
    251 	return error;
    252 }
    253 
    254 int
    255 clock_getres1(clockid_t clock_id, struct timespec *ts)
    256 {
    257 
    258 	switch (clock_id) {
    259 	case CLOCK_REALTIME:
    260 	case CLOCK_MONOTONIC:
    261 		ts->tv_sec = 0;
    262 		if (tc_getfrequency() > 1000000000)
    263 			ts->tv_nsec = 1;
    264 		else
    265 			ts->tv_nsec = 1000000000 / tc_getfrequency();
    266 		break;
    267 	default:
    268 		return EINVAL;
    269 	}
    270 
    271 	return 0;
    272 }
    273 
    274 /* ARGSUSED */
    275 int
    276 sys___nanosleep50(struct lwp *l, const struct sys___nanosleep50_args *uap,
    277     register_t *retval)
    278 {
    279 	/* {
    280 		syscallarg(struct timespec *) rqtp;
    281 		syscallarg(struct timespec *) rmtp;
    282 	} */
    283 	struct timespec rmt, rqt;
    284 	int error, error1;
    285 
    286 	error = copyin(SCARG(uap, rqtp), &rqt, sizeof(struct timespec));
    287 	if (error)
    288 		return (error);
    289 
    290 	error = nanosleep1(l, CLOCK_MONOTONIC, 0, &rqt,
    291 	    SCARG(uap, rmtp) ? &rmt : NULL);
    292 	if (SCARG(uap, rmtp) == NULL || (error != 0 && error != EINTR))
    293 		return error;
    294 
    295 	error1 = copyout(&rmt, SCARG(uap, rmtp), sizeof(rmt));
    296 	return error1 ? error1 : error;
    297 }
    298 
    299 /* ARGSUSED */
    300 int
    301 sys_clock_nanosleep(struct lwp *l, const struct sys_clock_nanosleep_args *uap,
    302     register_t *retval)
    303 {
    304 	/* {
    305 		syscallarg(clockid_t) clock_id;
    306 		syscallarg(int) flags;
    307 		syscallarg(struct timespec *) rqtp;
    308 		syscallarg(struct timespec *) rmtp;
    309 	} */
    310 	struct timespec rmt, rqt;
    311 	int error, error1;
    312 
    313 	error = copyin(SCARG(uap, rqtp), &rqt, sizeof(struct timespec));
    314 	if (error)
    315 		goto out;
    316 
    317 	error = nanosleep1(l, SCARG(uap, clock_id), SCARG(uap, flags), &rqt,
    318 	    SCARG(uap, rmtp) ? &rmt : NULL);
    319 	if (SCARG(uap, rmtp) == NULL || (error != 0 && error != EINTR))
    320 		goto out;
    321 
    322 	if ((SCARG(uap, flags) & TIMER_ABSTIME) == 0 &&
    323 	    (error1 = copyout(&rmt, SCARG(uap, rmtp), sizeof(rmt))) != 0)
    324 		error = error1;
    325 out:
    326 	*retval = error;
    327 	return 0;
    328 }
    329 
    330 int
    331 nanosleep1(struct lwp *l, clockid_t clock_id, int flags, struct timespec *rqt,
    332     struct timespec *rmt)
    333 {
    334 	struct timespec rmtstart;
    335 	int error, timo;
    336 
    337 	if ((error = ts2timo(clock_id, flags, rqt, &timo, &rmtstart)) != 0) {
    338 		if (error == ETIMEDOUT) {
    339 			error = 0;
    340 			if (rmt != NULL)
    341 				rmt->tv_sec = rmt->tv_nsec = 0;
    342 		}
    343 		return error;
    344 	}
    345 
    346 	/*
    347 	 * Avoid inadvertently sleeping forever
    348 	 */
    349 	if (timo == 0)
    350 		timo = 1;
    351 again:
    352 	error = kpause("nanoslp", true, timo, NULL);
    353 	if (error == EWOULDBLOCK)
    354 		error = 0;
    355 	if (rmt != NULL || error == 0) {
    356 		struct timespec rmtend;
    357 		struct timespec t0;
    358 		struct timespec *t;
    359 
    360 		(void)clock_gettime1(clock_id, &rmtend);
    361 		t = (rmt != NULL) ? rmt : &t0;
    362 		if (flags & TIMER_ABSTIME) {
    363 			timespecsub(rqt, &rmtend, t);
    364 		} else {
    365 			timespecsub(&rmtend, &rmtstart, t);
    366 			timespecsub(rqt, t, t);
    367 		}
    368 		if (t->tv_sec < 0)
    369 			timespecclear(t);
    370 		if (error == 0) {
    371 			timo = tstohz(t);
    372 			if (timo > 0)
    373 				goto again;
    374 		}
    375 	}
    376 
    377 	if (error == ERESTART)
    378 		error = EINTR;
    379 
    380 	return error;
    381 }
    382 
    383 int
    384 sys_clock_getcpuclockid2(struct lwp *l,
    385     const struct sys_clock_getcpuclockid2_args *uap,
    386     register_t *retval)
    387 {
    388 	/* {
    389 		syscallarg(idtype_t idtype;
    390 		syscallarg(id_t id);
    391 		syscallarg(clockid_t *)clock_id;
    392 	} */
    393 	pid_t pid;
    394 	lwpid_t lid;
    395 	clockid_t clock_id;
    396 	id_t id = SCARG(uap, id);
    397 
    398 	switch (SCARG(uap, idtype)) {
    399 	case P_PID:
    400 		pid = id == 0 ? l->l_proc->p_pid : id;
    401 		clock_id = CLOCK_PROCESS_CPUTIME_ID | pid;
    402 		break;
    403 	case P_LWPID:
    404 		lid = id == 0 ? l->l_lid : id;
    405 		clock_id = CLOCK_THREAD_CPUTIME_ID | lid;
    406 		break;
    407 	default:
    408 		return EINVAL;
    409 	}
    410 	return copyout(&clock_id, SCARG(uap, clock_id), sizeof(clock_id));
    411 }
    412 
    413 /* ARGSUSED */
    414 int
    415 sys___gettimeofday50(struct lwp *l, const struct sys___gettimeofday50_args *uap,
    416     register_t *retval)
    417 {
    418 	/* {
    419 		syscallarg(struct timeval *) tp;
    420 		syscallarg(void *) tzp;		really "struct timezone *";
    421 	} */
    422 	struct timeval atv;
    423 	int error = 0;
    424 	struct timezone tzfake;
    425 
    426 	if (SCARG(uap, tp)) {
    427 		memset(&atv, 0, sizeof(atv));
    428 		microtime(&atv);
    429 		error = copyout(&atv, SCARG(uap, tp), sizeof(atv));
    430 		if (error)
    431 			return (error);
    432 	}
    433 	if (SCARG(uap, tzp)) {
    434 		/*
    435 		 * NetBSD has no kernel notion of time zone, so we just
    436 		 * fake up a timezone struct and return it if demanded.
    437 		 */
    438 		tzfake.tz_minuteswest = 0;
    439 		tzfake.tz_dsttime = 0;
    440 		error = copyout(&tzfake, SCARG(uap, tzp), sizeof(tzfake));
    441 	}
    442 	return (error);
    443 }
    444 
    445 /* ARGSUSED */
    446 int
    447 sys___settimeofday50(struct lwp *l, const struct sys___settimeofday50_args *uap,
    448     register_t *retval)
    449 {
    450 	/* {
    451 		syscallarg(const struct timeval *) tv;
    452 		syscallarg(const void *) tzp; really "const struct timezone *";
    453 	} */
    454 
    455 	return settimeofday1(SCARG(uap, tv), true, SCARG(uap, tzp), l, true);
    456 }
    457 
    458 int
    459 settimeofday1(const struct timeval *utv, bool userspace,
    460     const void *utzp, struct lwp *l, bool check_kauth)
    461 {
    462 	struct timeval atv;
    463 	struct timespec ts;
    464 	int error;
    465 
    466 	/* Verify all parameters before changing time. */
    467 
    468 	/*
    469 	 * NetBSD has no kernel notion of time zone, and only an
    470 	 * obsolete program would try to set it, so we log a warning.
    471 	 */
    472 	if (utzp)
    473 		log(LOG_WARNING, "pid %d attempted to set the "
    474 		    "(obsolete) kernel time zone\n", l->l_proc->p_pid);
    475 
    476 	if (utv == NULL)
    477 		return 0;
    478 
    479 	if (userspace) {
    480 		if ((error = copyin(utv, &atv, sizeof(atv))) != 0)
    481 			return error;
    482 		utv = &atv;
    483 	}
    484 
    485 	TIMEVAL_TO_TIMESPEC(utv, &ts);
    486 	return settime1(l->l_proc, &ts, check_kauth);
    487 }
    488 
    489 int	time_adjusted;			/* set if an adjustment is made */
    490 
    491 /* ARGSUSED */
    492 int
    493 sys___adjtime50(struct lwp *l, const struct sys___adjtime50_args *uap,
    494     register_t *retval)
    495 {
    496 	/* {
    497 		syscallarg(const struct timeval *) delta;
    498 		syscallarg(struct timeval *) olddelta;
    499 	} */
    500 	int error;
    501 	struct timeval atv, oldatv;
    502 
    503 	if ((error = kauth_authorize_system(l->l_cred, KAUTH_SYSTEM_TIME,
    504 	    KAUTH_REQ_SYSTEM_TIME_ADJTIME, NULL, NULL, NULL)) != 0)
    505 		return error;
    506 
    507 	if (SCARG(uap, delta)) {
    508 		error = copyin(SCARG(uap, delta), &atv,
    509 		    sizeof(*SCARG(uap, delta)));
    510 		if (error)
    511 			return (error);
    512 	}
    513 	adjtime1(SCARG(uap, delta) ? &atv : NULL,
    514 	    SCARG(uap, olddelta) ? &oldatv : NULL, l->l_proc);
    515 	if (SCARG(uap, olddelta))
    516 		error = copyout(&oldatv, SCARG(uap, olddelta),
    517 		    sizeof(*SCARG(uap, olddelta)));
    518 	return error;
    519 }
    520 
    521 void
    522 adjtime1(const struct timeval *delta, struct timeval *olddelta, struct proc *p)
    523 {
    524 	extern int64_t time_adjtime;  /* in kern_ntptime.c */
    525 
    526 	if (olddelta) {
    527 		memset(olddelta, 0, sizeof(*olddelta));
    528 		mutex_spin_enter(&timecounter_lock);
    529 		olddelta->tv_sec = time_adjtime / 1000000;
    530 		olddelta->tv_usec = time_adjtime % 1000000;
    531 		if (olddelta->tv_usec < 0) {
    532 			olddelta->tv_usec += 1000000;
    533 			olddelta->tv_sec--;
    534 		}
    535 		mutex_spin_exit(&timecounter_lock);
    536 	}
    537 
    538 	if (delta) {
    539 		mutex_spin_enter(&timecounter_lock);
    540 		time_adjtime = delta->tv_sec * 1000000 + delta->tv_usec;
    541 
    542 		if (time_adjtime) {
    543 			/* We need to save the system time during shutdown */
    544 			time_adjusted |= 1;
    545 		}
    546 		mutex_spin_exit(&timecounter_lock);
    547 	}
    548 }
    549 
    550 /*
    551  * Interval timer support. Both the BSD getitimer() family and the POSIX
    552  * timer_*() family of routines are supported.
    553  *
    554  * All timers are kept in an array pointed to by p_timers, which is
    555  * allocated on demand - many processes don't use timers at all. The
    556  * first four elements in this array are reserved for the BSD timers:
    557  * element 0 is ITIMER_REAL, element 1 is ITIMER_VIRTUAL, element
    558  * 2 is ITIMER_PROF, and element 3 is ITIMER_MONOTONIC. The rest may be
    559  * allocated by the timer_create() syscall.
    560  *
    561  * Realtime timers are kept in the ptimer structure as an absolute
    562  * time; virtual time timers are kept as a linked list of deltas.
    563  * Virtual time timers are processed in the hardclock() routine of
    564  * kern_clock.c.  The real time timer is processed by a callout
    565  * routine, called from the softclock() routine.  Since a callout may
    566  * be delayed in real time due to interrupt processing in the system,
    567  * it is possible for the real time timeout routine (realtimeexpire,
    568  * given below), to be delayed in real time past when it is supposed
    569  * to occur.  It does not suffice, therefore, to reload the real timer
    570  * .it_value from the real time timers .it_interval.  Rather, we
    571  * compute the next time in absolute time the timer should go off.  */
    572 
    573 /* Allocate a POSIX realtime timer. */
    574 int
    575 sys_timer_create(struct lwp *l, const struct sys_timer_create_args *uap,
    576     register_t *retval)
    577 {
    578 	/* {
    579 		syscallarg(clockid_t) clock_id;
    580 		syscallarg(struct sigevent *) evp;
    581 		syscallarg(timer_t *) timerid;
    582 	} */
    583 
    584 	return timer_create1(SCARG(uap, timerid), SCARG(uap, clock_id),
    585 	    SCARG(uap, evp), copyin, l);
    586 }
    587 
    588 int
    589 timer_create1(timer_t *tid, clockid_t id, struct sigevent *evp,
    590     copyin_t fetch_event, struct lwp *l)
    591 {
    592 	int error;
    593 	timer_t timerid;
    594 	struct ptimers *pts;
    595 	struct ptimer *pt;
    596 	struct proc *p;
    597 
    598 	p = l->l_proc;
    599 
    600 	if ((u_int)id > CLOCK_MONOTONIC)
    601 		return (EINVAL);
    602 
    603 	if ((pts = p->p_timers) == NULL)
    604 		pts = timers_alloc(p);
    605 
    606 	pt = pool_get(&ptimer_pool, PR_WAITOK | PR_ZERO);
    607 	if (evp != NULL) {
    608 		if (((error =
    609 		    (*fetch_event)(evp, &pt->pt_ev, sizeof(pt->pt_ev))) != 0) ||
    610 		    ((pt->pt_ev.sigev_notify < SIGEV_NONE) ||
    611 			(pt->pt_ev.sigev_notify > SIGEV_SA)) ||
    612 			(pt->pt_ev.sigev_notify == SIGEV_SIGNAL &&
    613 			 (pt->pt_ev.sigev_signo <= 0 ||
    614 			  pt->pt_ev.sigev_signo >= NSIG))) {
    615 			pool_put(&ptimer_pool, pt);
    616 			return (error ? error : EINVAL);
    617 		}
    618 	}
    619 
    620 	/* Find a free timer slot, skipping those reserved for setitimer(). */
    621 	mutex_spin_enter(&timer_lock);
    622 	for (timerid = TIMER_MIN; timerid < TIMER_MAX; timerid++)
    623 		if (pts->pts_timers[timerid] == NULL)
    624 			break;
    625 	if (timerid == TIMER_MAX) {
    626 		mutex_spin_exit(&timer_lock);
    627 		pool_put(&ptimer_pool, pt);
    628 		return EAGAIN;
    629 	}
    630 	if (evp == NULL) {
    631 		pt->pt_ev.sigev_notify = SIGEV_SIGNAL;
    632 		switch (id) {
    633 		case CLOCK_REALTIME:
    634 		case CLOCK_MONOTONIC:
    635 			pt->pt_ev.sigev_signo = SIGALRM;
    636 			break;
    637 		case CLOCK_VIRTUAL:
    638 			pt->pt_ev.sigev_signo = SIGVTALRM;
    639 			break;
    640 		case CLOCK_PROF:
    641 			pt->pt_ev.sigev_signo = SIGPROF;
    642 			break;
    643 		}
    644 		pt->pt_ev.sigev_value.sival_int = timerid;
    645 	}
    646 	pt->pt_info.ksi_signo = pt->pt_ev.sigev_signo;
    647 	pt->pt_info.ksi_errno = 0;
    648 	pt->pt_info.ksi_code = 0;
    649 	pt->pt_info.ksi_pid = p->p_pid;
    650 	pt->pt_info.ksi_uid = kauth_cred_getuid(l->l_cred);
    651 	pt->pt_info.ksi_value = pt->pt_ev.sigev_value;
    652 	pt->pt_type = id;
    653 	pt->pt_proc = p;
    654 	pt->pt_overruns = 0;
    655 	pt->pt_poverruns = 0;
    656 	pt->pt_entry = timerid;
    657 	pt->pt_queued = false;
    658 	timespecclear(&pt->pt_time.it_value);
    659 	if (!CLOCK_VIRTUAL_P(id))
    660 		callout_init(&pt->pt_ch, CALLOUT_MPSAFE);
    661 	else
    662 		pt->pt_active = 0;
    663 
    664 	pts->pts_timers[timerid] = pt;
    665 	mutex_spin_exit(&timer_lock);
    666 
    667 	return copyout(&timerid, tid, sizeof(timerid));
    668 }
    669 
    670 /* Delete a POSIX realtime timer */
    671 int
    672 sys_timer_delete(struct lwp *l, const struct sys_timer_delete_args *uap,
    673     register_t *retval)
    674 {
    675 	/* {
    676 		syscallarg(timer_t) timerid;
    677 	} */
    678 	struct proc *p = l->l_proc;
    679 	timer_t timerid;
    680 	struct ptimers *pts;
    681 	struct ptimer *pt, *ptn;
    682 
    683 	timerid = SCARG(uap, timerid);
    684 	pts = p->p_timers;
    685 
    686 	if (pts == NULL || timerid < 2 || timerid >= TIMER_MAX)
    687 		return (EINVAL);
    688 
    689 	mutex_spin_enter(&timer_lock);
    690 	if ((pt = pts->pts_timers[timerid]) == NULL) {
    691 		mutex_spin_exit(&timer_lock);
    692 		return (EINVAL);
    693 	}
    694 	if (CLOCK_VIRTUAL_P(pt->pt_type)) {
    695 		if (pt->pt_active) {
    696 			ptn = LIST_NEXT(pt, pt_list);
    697 			LIST_REMOVE(pt, pt_list);
    698 			for ( ; ptn; ptn = LIST_NEXT(ptn, pt_list))
    699 				timespecadd(&pt->pt_time.it_value,
    700 				    &ptn->pt_time.it_value,
    701 				    &ptn->pt_time.it_value);
    702 			pt->pt_active = 0;
    703 		}
    704 	}
    705 
    706 	/* Free the timer and release the lock.  */
    707 	itimerfree(pts, timerid);
    708 
    709 	return (0);
    710 }
    711 
    712 /*
    713  * Set up the given timer. The value in pt->pt_time.it_value is taken
    714  * to be an absolute time for CLOCK_REALTIME/CLOCK_MONOTONIC timers and
    715  * a relative time for CLOCK_VIRTUAL/CLOCK_PROF timers.
    716  *
    717  * If the callout had already fired but not yet run, fails with
    718  * ERESTART -- caller must restart from the top to look up a timer.
    719  */
    720 int
    721 timer_settime(struct ptimer *pt)
    722 {
    723 	struct ptimer *ptn, *pptn;
    724 	struct ptlist *ptl;
    725 
    726 	KASSERT(mutex_owned(&timer_lock));
    727 
    728 	if (!CLOCK_VIRTUAL_P(pt->pt_type)) {
    729 		/*
    730 		 * Try to stop the callout.  However, if it had already
    731 		 * fired, we have to drop the lock to wait for it, so
    732 		 * the world may have changed and pt may not be there
    733 		 * any more.  In that case, tell the caller to start
    734 		 * over from the top.
    735 		 */
    736 		if (callout_halt(&pt->pt_ch, &timer_lock))
    737 			return ERESTART;
    738 
    739 		/* Now we can touch pt and start it up again.  */
    740 		if (timespecisset(&pt->pt_time.it_value)) {
    741 			/*
    742 			 * Don't need to check tshzto() return value, here.
    743 			 * callout_reset() does it for us.
    744 			 */
    745 			callout_reset(&pt->pt_ch,
    746 			    pt->pt_type == CLOCK_MONOTONIC ?
    747 			    tshztoup(&pt->pt_time.it_value) :
    748 			    tshzto(&pt->pt_time.it_value),
    749 			    realtimerexpire, pt);
    750 		}
    751 	} else {
    752 		if (pt->pt_active) {
    753 			ptn = LIST_NEXT(pt, pt_list);
    754 			LIST_REMOVE(pt, pt_list);
    755 			for ( ; ptn; ptn = LIST_NEXT(ptn, pt_list))
    756 				timespecadd(&pt->pt_time.it_value,
    757 				    &ptn->pt_time.it_value,
    758 				    &ptn->pt_time.it_value);
    759 		}
    760 		if (timespecisset(&pt->pt_time.it_value)) {
    761 			if (pt->pt_type == CLOCK_VIRTUAL)
    762 				ptl = &pt->pt_proc->p_timers->pts_virtual;
    763 			else
    764 				ptl = &pt->pt_proc->p_timers->pts_prof;
    765 
    766 			for (ptn = LIST_FIRST(ptl), pptn = NULL;
    767 			     ptn && timespeccmp(&pt->pt_time.it_value,
    768 				 &ptn->pt_time.it_value, >);
    769 			     pptn = ptn, ptn = LIST_NEXT(ptn, pt_list))
    770 				timespecsub(&pt->pt_time.it_value,
    771 				    &ptn->pt_time.it_value,
    772 				    &pt->pt_time.it_value);
    773 
    774 			if (pptn)
    775 				LIST_INSERT_AFTER(pptn, pt, pt_list);
    776 			else
    777 				LIST_INSERT_HEAD(ptl, pt, pt_list);
    778 
    779 			for ( ; ptn ; ptn = LIST_NEXT(ptn, pt_list))
    780 				timespecsub(&ptn->pt_time.it_value,
    781 				    &pt->pt_time.it_value,
    782 				    &ptn->pt_time.it_value);
    783 
    784 			pt->pt_active = 1;
    785 		} else
    786 			pt->pt_active = 0;
    787 	}
    788 
    789 	/* Success!  */
    790 	return 0;
    791 }
    792 
    793 void
    794 timer_gettime(struct ptimer *pt, struct itimerspec *aits)
    795 {
    796 	struct timespec now;
    797 	struct ptimer *ptn;
    798 
    799 	KASSERT(mutex_owned(&timer_lock));
    800 
    801 	*aits = pt->pt_time;
    802 	if (!CLOCK_VIRTUAL_P(pt->pt_type)) {
    803 		/*
    804 		 * Convert from absolute to relative time in .it_value
    805 		 * part of real time timer.  If time for real time
    806 		 * timer has passed return 0, else return difference
    807 		 * between current time and time for the timer to go
    808 		 * off.
    809 		 */
    810 		if (timespecisset(&aits->it_value)) {
    811 			if (pt->pt_type == CLOCK_REALTIME) {
    812 				getnanotime(&now);
    813 			} else { /* CLOCK_MONOTONIC */
    814 				getnanouptime(&now);
    815 			}
    816 			if (timespeccmp(&aits->it_value, &now, <))
    817 				timespecclear(&aits->it_value);
    818 			else
    819 				timespecsub(&aits->it_value, &now,
    820 				    &aits->it_value);
    821 		}
    822 	} else if (pt->pt_active) {
    823 		if (pt->pt_type == CLOCK_VIRTUAL)
    824 			ptn = LIST_FIRST(&pt->pt_proc->p_timers->pts_virtual);
    825 		else
    826 			ptn = LIST_FIRST(&pt->pt_proc->p_timers->pts_prof);
    827 		for ( ; ptn && ptn != pt; ptn = LIST_NEXT(ptn, pt_list))
    828 			timespecadd(&aits->it_value,
    829 			    &ptn->pt_time.it_value, &aits->it_value);
    830 		KASSERT(ptn != NULL); /* pt should be findable on the list */
    831 	} else
    832 		timespecclear(&aits->it_value);
    833 }
    834 
    835 
    836 
    837 /* Set and arm a POSIX realtime timer */
    838 int
    839 sys___timer_settime50(struct lwp *l,
    840     const struct sys___timer_settime50_args *uap,
    841     register_t *retval)
    842 {
    843 	/* {
    844 		syscallarg(timer_t) timerid;
    845 		syscallarg(int) flags;
    846 		syscallarg(const struct itimerspec *) value;
    847 		syscallarg(struct itimerspec *) ovalue;
    848 	} */
    849 	int error;
    850 	struct itimerspec value, ovalue, *ovp = NULL;
    851 
    852 	if ((error = copyin(SCARG(uap, value), &value,
    853 	    sizeof(struct itimerspec))) != 0)
    854 		return (error);
    855 
    856 	if (SCARG(uap, ovalue))
    857 		ovp = &ovalue;
    858 
    859 	if ((error = dotimer_settime(SCARG(uap, timerid), &value, ovp,
    860 	    SCARG(uap, flags), l->l_proc)) != 0)
    861 		return error;
    862 
    863 	if (ovp)
    864 		return copyout(&ovalue, SCARG(uap, ovalue),
    865 		    sizeof(struct itimerspec));
    866 	return 0;
    867 }
    868 
    869 int
    870 dotimer_settime(int timerid, struct itimerspec *value,
    871     struct itimerspec *ovalue, int flags, struct proc *p)
    872 {
    873 	struct timespec now;
    874 	struct itimerspec val, oval;
    875 	struct ptimers *pts;
    876 	struct ptimer *pt;
    877 	int error;
    878 
    879 	pts = p->p_timers;
    880 
    881 	if (pts == NULL || timerid < 2 || timerid >= TIMER_MAX)
    882 		return EINVAL;
    883 	val = *value;
    884 	if ((error = itimespecfix(&val.it_value)) != 0 ||
    885 	    (error = itimespecfix(&val.it_interval)) != 0)
    886 		return error;
    887 
    888 	mutex_spin_enter(&timer_lock);
    889 restart:
    890 	if ((pt = pts->pts_timers[timerid]) == NULL) {
    891 		mutex_spin_exit(&timer_lock);
    892 		return EINVAL;
    893 	}
    894 
    895 	oval = pt->pt_time;
    896 	pt->pt_time = val;
    897 
    898 	/*
    899 	 * If we've been passed a relative time for a realtime timer,
    900 	 * convert it to absolute; if an absolute time for a virtual
    901 	 * timer, convert it to relative and make sure we don't set it
    902 	 * to zero, which would cancel the timer, or let it go
    903 	 * negative, which would confuse the comparison tests.
    904 	 */
    905 	if (timespecisset(&pt->pt_time.it_value)) {
    906 		if (!CLOCK_VIRTUAL_P(pt->pt_type)) {
    907 			if ((flags & TIMER_ABSTIME) == 0) {
    908 				if (pt->pt_type == CLOCK_REALTIME) {
    909 					getnanotime(&now);
    910 				} else { /* CLOCK_MONOTONIC */
    911 					getnanouptime(&now);
    912 				}
    913 				timespecadd(&pt->pt_time.it_value, &now,
    914 				    &pt->pt_time.it_value);
    915 			}
    916 		} else {
    917 			if ((flags & TIMER_ABSTIME) != 0) {
    918 				getnanotime(&now);
    919 				timespecsub(&pt->pt_time.it_value, &now,
    920 				    &pt->pt_time.it_value);
    921 				if (!timespecisset(&pt->pt_time.it_value) ||
    922 				    pt->pt_time.it_value.tv_sec < 0) {
    923 					pt->pt_time.it_value.tv_sec = 0;
    924 					pt->pt_time.it_value.tv_nsec = 1;
    925 				}
    926 			}
    927 		}
    928 	}
    929 
    930 	error = timer_settime(pt);
    931 	if (error == ERESTART) {
    932 		KASSERT(!CLOCK_VIRTUAL_P(pt->pt_type));
    933 		goto restart;
    934 	}
    935 	KASSERT(error == 0);
    936 	mutex_spin_exit(&timer_lock);
    937 
    938 	if (ovalue)
    939 		*ovalue = oval;
    940 
    941 	return (0);
    942 }
    943 
    944 /* Return the time remaining until a POSIX timer fires. */
    945 int
    946 sys___timer_gettime50(struct lwp *l,
    947     const struct sys___timer_gettime50_args *uap, register_t *retval)
    948 {
    949 	/* {
    950 		syscallarg(timer_t) timerid;
    951 		syscallarg(struct itimerspec *) value;
    952 	} */
    953 	struct itimerspec its;
    954 	int error;
    955 
    956 	if ((error = dotimer_gettime(SCARG(uap, timerid), l->l_proc,
    957 	    &its)) != 0)
    958 		return error;
    959 
    960 	return copyout(&its, SCARG(uap, value), sizeof(its));
    961 }
    962 
    963 int
    964 dotimer_gettime(int timerid, struct proc *p, struct itimerspec *its)
    965 {
    966 	struct ptimer *pt;
    967 	struct ptimers *pts;
    968 
    969 	pts = p->p_timers;
    970 	if (pts == NULL || timerid < 2 || timerid >= TIMER_MAX)
    971 		return (EINVAL);
    972 	mutex_spin_enter(&timer_lock);
    973 	if ((pt = pts->pts_timers[timerid]) == NULL) {
    974 		mutex_spin_exit(&timer_lock);
    975 		return (EINVAL);
    976 	}
    977 	timer_gettime(pt, its);
    978 	mutex_spin_exit(&timer_lock);
    979 
    980 	return 0;
    981 }
    982 
    983 /*
    984  * Return the count of the number of times a periodic timer expired
    985  * while a notification was already pending. The counter is reset when
    986  * a timer expires and a notification can be posted.
    987  */
    988 int
    989 sys_timer_getoverrun(struct lwp *l, const struct sys_timer_getoverrun_args *uap,
    990     register_t *retval)
    991 {
    992 	/* {
    993 		syscallarg(timer_t) timerid;
    994 	} */
    995 	struct proc *p = l->l_proc;
    996 	struct ptimers *pts;
    997 	int timerid;
    998 	struct ptimer *pt;
    999 
   1000 	timerid = SCARG(uap, timerid);
   1001 
   1002 	pts = p->p_timers;
   1003 	if (pts == NULL || timerid < 2 || timerid >= TIMER_MAX)
   1004 		return (EINVAL);
   1005 	mutex_spin_enter(&timer_lock);
   1006 	if ((pt = pts->pts_timers[timerid]) == NULL) {
   1007 		mutex_spin_exit(&timer_lock);
   1008 		return (EINVAL);
   1009 	}
   1010 	*retval = pt->pt_poverruns;
   1011 	if (*retval >= DELAYTIMER_MAX)
   1012 		*retval = DELAYTIMER_MAX;
   1013 	mutex_spin_exit(&timer_lock);
   1014 
   1015 	return (0);
   1016 }
   1017 
   1018 /*
   1019  * Real interval timer expired:
   1020  * send process whose timer expired an alarm signal.
   1021  * If time is not set up to reload, then just return.
   1022  * Else compute next time timer should go off which is > current time.
   1023  * This is where delay in processing this timeout causes multiple
   1024  * SIGALRM calls to be compressed into one.
   1025  */
   1026 void
   1027 realtimerexpire(void *arg)
   1028 {
   1029 	uint64_t last_val, next_val, interval, now_ns;
   1030 	struct timespec now, next;
   1031 	struct ptimer *pt;
   1032 	int backwards;
   1033 
   1034 	pt = arg;
   1035 
   1036 	mutex_spin_enter(&timer_lock);
   1037 	itimerfire(pt);
   1038 
   1039 	if (!timespecisset(&pt->pt_time.it_interval)) {
   1040 		timespecclear(&pt->pt_time.it_value);
   1041 		mutex_spin_exit(&timer_lock);
   1042 		return;
   1043 	}
   1044 
   1045 	if (pt->pt_type == CLOCK_MONOTONIC) {
   1046 		getnanouptime(&now);
   1047 	} else {
   1048 		getnanotime(&now);
   1049 	}
   1050 	backwards = (timespeccmp(&pt->pt_time.it_value, &now, >));
   1051 	timespecadd(&pt->pt_time.it_value, &pt->pt_time.it_interval, &next);
   1052 	/* Handle the easy case of non-overflown timers first. */
   1053 	if (!backwards && timespeccmp(&next, &now, >)) {
   1054 		pt->pt_time.it_value = next;
   1055 	} else {
   1056 		now_ns = timespec2ns(&now);
   1057 		last_val = timespec2ns(&pt->pt_time.it_value);
   1058 		interval = timespec2ns(&pt->pt_time.it_interval);
   1059 
   1060 		next_val = now_ns +
   1061 		    (now_ns - last_val + interval - 1) % interval;
   1062 
   1063 		if (backwards)
   1064 			next_val += interval;
   1065 		else
   1066 			pt->pt_overruns += (now_ns - last_val) / interval;
   1067 
   1068 		pt->pt_time.it_value.tv_sec = next_val / 1000000000;
   1069 		pt->pt_time.it_value.tv_nsec = next_val % 1000000000;
   1070 	}
   1071 
   1072 	/*
   1073 	 * Reset the callout, if it's not going away.
   1074 	 *
   1075 	 * Don't need to check tshzto() return value, here.
   1076 	 * callout_reset() does it for us.
   1077 	 */
   1078 	if (!pt->pt_dying)
   1079 		callout_reset(&pt->pt_ch,
   1080 		    (pt->pt_type == CLOCK_MONOTONIC
   1081 			? tshztoup(&pt->pt_time.it_value)
   1082 			: tshzto(&pt->pt_time.it_value)),
   1083 		    realtimerexpire, pt);
   1084 	mutex_spin_exit(&timer_lock);
   1085 }
   1086 
   1087 /* BSD routine to get the value of an interval timer. */
   1088 /* ARGSUSED */
   1089 int
   1090 sys___getitimer50(struct lwp *l, const struct sys___getitimer50_args *uap,
   1091     register_t *retval)
   1092 {
   1093 	/* {
   1094 		syscallarg(int) which;
   1095 		syscallarg(struct itimerval *) itv;
   1096 	} */
   1097 	struct proc *p = l->l_proc;
   1098 	struct itimerval aitv;
   1099 	int error;
   1100 
   1101 	memset(&aitv, 0, sizeof(aitv));
   1102 	error = dogetitimer(p, SCARG(uap, which), &aitv);
   1103 	if (error)
   1104 		return error;
   1105 	return (copyout(&aitv, SCARG(uap, itv), sizeof(struct itimerval)));
   1106 }
   1107 
   1108 int
   1109 dogetitimer(struct proc *p, int which, struct itimerval *itvp)
   1110 {
   1111 	struct ptimers *pts;
   1112 	struct ptimer *pt;
   1113 	struct itimerspec its;
   1114 
   1115 	if ((u_int)which > ITIMER_MONOTONIC)
   1116 		return (EINVAL);
   1117 
   1118 	mutex_spin_enter(&timer_lock);
   1119 	pts = p->p_timers;
   1120 	if (pts == NULL || (pt = pts->pts_timers[which]) == NULL) {
   1121 		timerclear(&itvp->it_value);
   1122 		timerclear(&itvp->it_interval);
   1123 	} else {
   1124 		timer_gettime(pt, &its);
   1125 		TIMESPEC_TO_TIMEVAL(&itvp->it_value, &its.it_value);
   1126 		TIMESPEC_TO_TIMEVAL(&itvp->it_interval, &its.it_interval);
   1127 	}
   1128 	mutex_spin_exit(&timer_lock);
   1129 
   1130 	return 0;
   1131 }
   1132 
   1133 /* BSD routine to set/arm an interval timer. */
   1134 /* ARGSUSED */
   1135 int
   1136 sys___setitimer50(struct lwp *l, const struct sys___setitimer50_args *uap,
   1137     register_t *retval)
   1138 {
   1139 	/* {
   1140 		syscallarg(int) which;
   1141 		syscallarg(const struct itimerval *) itv;
   1142 		syscallarg(struct itimerval *) oitv;
   1143 	} */
   1144 	struct proc *p = l->l_proc;
   1145 	int which = SCARG(uap, which);
   1146 	struct sys___getitimer50_args getargs;
   1147 	const struct itimerval *itvp;
   1148 	struct itimerval aitv;
   1149 	int error;
   1150 
   1151 	if ((u_int)which > ITIMER_MONOTONIC)
   1152 		return (EINVAL);
   1153 	itvp = SCARG(uap, itv);
   1154 	if (itvp &&
   1155 	    (error = copyin(itvp, &aitv, sizeof(struct itimerval))) != 0)
   1156 		return (error);
   1157 	if (SCARG(uap, oitv) != NULL) {
   1158 		SCARG(&getargs, which) = which;
   1159 		SCARG(&getargs, itv) = SCARG(uap, oitv);
   1160 		if ((error = sys___getitimer50(l, &getargs, retval)) != 0)
   1161 			return (error);
   1162 	}
   1163 	if (itvp == 0)
   1164 		return (0);
   1165 
   1166 	return dosetitimer(p, which, &aitv);
   1167 }
   1168 
   1169 int
   1170 dosetitimer(struct proc *p, int which, struct itimerval *itvp)
   1171 {
   1172 	struct timespec now;
   1173 	struct ptimers *pts;
   1174 	struct ptimer *pt, *spare;
   1175 	int error;
   1176 
   1177 	KASSERT((u_int)which <= CLOCK_MONOTONIC);
   1178 	if (itimerfix(&itvp->it_value) || itimerfix(&itvp->it_interval))
   1179 		return (EINVAL);
   1180 
   1181 	/*
   1182 	 * Don't bother allocating data structures if the process just
   1183 	 * wants to clear the timer.
   1184 	 */
   1185 	spare = NULL;
   1186 	pts = p->p_timers;
   1187  retry:
   1188 	if (!timerisset(&itvp->it_value) && (pts == NULL ||
   1189 	    pts->pts_timers[which] == NULL))
   1190 		return (0);
   1191 	if (pts == NULL)
   1192 		pts = timers_alloc(p);
   1193 	mutex_spin_enter(&timer_lock);
   1194 restart:
   1195 	pt = pts->pts_timers[which];
   1196 	if (pt == NULL) {
   1197 		if (spare == NULL) {
   1198 			mutex_spin_exit(&timer_lock);
   1199 			spare = pool_get(&ptimer_pool, PR_WAITOK | PR_ZERO);
   1200 			goto retry;
   1201 		}
   1202 		pt = spare;
   1203 		spare = NULL;
   1204 		pt->pt_ev.sigev_notify = SIGEV_SIGNAL;
   1205 		pt->pt_ev.sigev_value.sival_int = which;
   1206 		pt->pt_overruns = 0;
   1207 		pt->pt_proc = p;
   1208 		pt->pt_type = which;
   1209 		pt->pt_entry = which;
   1210 		pt->pt_queued = false;
   1211 		if (!CLOCK_VIRTUAL_P(which))
   1212 			callout_init(&pt->pt_ch, CALLOUT_MPSAFE);
   1213 		else
   1214 			pt->pt_active = 0;
   1215 
   1216 		switch (which) {
   1217 		case ITIMER_REAL:
   1218 		case ITIMER_MONOTONIC:
   1219 			pt->pt_ev.sigev_signo = SIGALRM;
   1220 			break;
   1221 		case ITIMER_VIRTUAL:
   1222 			pt->pt_ev.sigev_signo = SIGVTALRM;
   1223 			break;
   1224 		case ITIMER_PROF:
   1225 			pt->pt_ev.sigev_signo = SIGPROF;
   1226 			break;
   1227 		}
   1228 		pts->pts_timers[which] = pt;
   1229 	}
   1230 
   1231 	TIMEVAL_TO_TIMESPEC(&itvp->it_value, &pt->pt_time.it_value);
   1232 	TIMEVAL_TO_TIMESPEC(&itvp->it_interval, &pt->pt_time.it_interval);
   1233 
   1234 	if (timespecisset(&pt->pt_time.it_value)) {
   1235 		/* Convert to absolute time */
   1236 		/* XXX need to wrap in splclock for timecounters case? */
   1237 		switch (which) {
   1238 		case ITIMER_REAL:
   1239 			getnanotime(&now);
   1240 			timespecadd(&pt->pt_time.it_value, &now,
   1241 			    &pt->pt_time.it_value);
   1242 			break;
   1243 		case ITIMER_MONOTONIC:
   1244 			getnanouptime(&now);
   1245 			timespecadd(&pt->pt_time.it_value, &now,
   1246 			    &pt->pt_time.it_value);
   1247 			break;
   1248 		default:
   1249 			break;
   1250 		}
   1251 	}
   1252 	error = timer_settime(pt);
   1253 	if (error == ERESTART) {
   1254 		KASSERT(!CLOCK_VIRTUAL_P(pt->pt_type));
   1255 		goto restart;
   1256 	}
   1257 	KASSERT(error == 0);
   1258 	mutex_spin_exit(&timer_lock);
   1259 	if (spare != NULL)
   1260 		pool_put(&ptimer_pool, spare);
   1261 
   1262 	return (0);
   1263 }
   1264 
   1265 /* Utility routines to manage the array of pointers to timers. */
   1266 struct ptimers *
   1267 timers_alloc(struct proc *p)
   1268 {
   1269 	struct ptimers *pts;
   1270 	int i;
   1271 
   1272 	pts = pool_get(&ptimers_pool, PR_WAITOK);
   1273 	LIST_INIT(&pts->pts_virtual);
   1274 	LIST_INIT(&pts->pts_prof);
   1275 	for (i = 0; i < TIMER_MAX; i++)
   1276 		pts->pts_timers[i] = NULL;
   1277 	mutex_spin_enter(&timer_lock);
   1278 	if (p->p_timers == NULL) {
   1279 		p->p_timers = pts;
   1280 		mutex_spin_exit(&timer_lock);
   1281 		return pts;
   1282 	}
   1283 	mutex_spin_exit(&timer_lock);
   1284 	pool_put(&ptimers_pool, pts);
   1285 	return p->p_timers;
   1286 }
   1287 
   1288 /*
   1289  * Clean up the per-process timers. If "which" is set to TIMERS_ALL,
   1290  * then clean up all timers and free all the data structures. If
   1291  * "which" is set to TIMERS_POSIX, only clean up the timers allocated
   1292  * by timer_create(), not the BSD setitimer() timers, and only free the
   1293  * structure if none of those remain.
   1294  */
   1295 void
   1296 timers_free(struct proc *p, int which)
   1297 {
   1298 	struct ptimers *pts;
   1299 	struct ptimer *ptn;
   1300 	struct timespec ts;
   1301 	int i;
   1302 
   1303 	if (p->p_timers == NULL)
   1304 		return;
   1305 
   1306 	pts = p->p_timers;
   1307 	mutex_spin_enter(&timer_lock);
   1308 	if (which == TIMERS_ALL) {
   1309 		p->p_timers = NULL;
   1310 		i = 0;
   1311 	} else {
   1312 		timespecclear(&ts);
   1313 		for (ptn = LIST_FIRST(&pts->pts_virtual);
   1314 		     ptn && ptn != pts->pts_timers[ITIMER_VIRTUAL];
   1315 		     ptn = LIST_NEXT(ptn, pt_list)) {
   1316 			KASSERT(ptn->pt_type == CLOCK_VIRTUAL);
   1317 			timespecadd(&ts, &ptn->pt_time.it_value, &ts);
   1318 		}
   1319 		LIST_FIRST(&pts->pts_virtual) = NULL;
   1320 		if (ptn) {
   1321 			KASSERT(ptn->pt_type == CLOCK_VIRTUAL);
   1322 			timespecadd(&ts, &ptn->pt_time.it_value,
   1323 			    &ptn->pt_time.it_value);
   1324 			LIST_INSERT_HEAD(&pts->pts_virtual, ptn, pt_list);
   1325 		}
   1326 		timespecclear(&ts);
   1327 		for (ptn = LIST_FIRST(&pts->pts_prof);
   1328 		     ptn && ptn != pts->pts_timers[ITIMER_PROF];
   1329 		     ptn = LIST_NEXT(ptn, pt_list)) {
   1330 			KASSERT(ptn->pt_type == CLOCK_PROF);
   1331 			timespecadd(&ts, &ptn->pt_time.it_value, &ts);
   1332 		}
   1333 		LIST_FIRST(&pts->pts_prof) = NULL;
   1334 		if (ptn) {
   1335 			KASSERT(ptn->pt_type == CLOCK_PROF);
   1336 			timespecadd(&ts, &ptn->pt_time.it_value,
   1337 			    &ptn->pt_time.it_value);
   1338 			LIST_INSERT_HEAD(&pts->pts_prof, ptn, pt_list);
   1339 		}
   1340 		i = TIMER_MIN;
   1341 	}
   1342 	for ( ; i < TIMER_MAX; i++) {
   1343 		if (pts->pts_timers[i] != NULL) {
   1344 			/* Free the timer and release the lock.  */
   1345 			itimerfree(pts, i);
   1346 			/* Reacquire the lock for the next one.  */
   1347 			mutex_spin_enter(&timer_lock);
   1348 		}
   1349 	}
   1350 	if (pts->pts_timers[0] == NULL && pts->pts_timers[1] == NULL &&
   1351 	    pts->pts_timers[2] == NULL && pts->pts_timers[3] == NULL) {
   1352 		p->p_timers = NULL;
   1353 		mutex_spin_exit(&timer_lock);
   1354 		pool_put(&ptimers_pool, pts);
   1355 	} else
   1356 		mutex_spin_exit(&timer_lock);
   1357 }
   1358 
   1359 static void
   1360 itimerfree(struct ptimers *pts, int index)
   1361 {
   1362 	struct ptimer *pt;
   1363 
   1364 	KASSERT(mutex_owned(&timer_lock));
   1365 
   1366 	pt = pts->pts_timers[index];
   1367 
   1368 	/*
   1369 	 * Prevent new references, and notify the callout not to
   1370 	 * restart itself.
   1371 	 */
   1372 	pts->pts_timers[index] = NULL;
   1373 	pt->pt_dying = true;
   1374 
   1375 	/*
   1376 	 * For non-virtual timers, stop the callout, or wait for it to
   1377 	 * run if it has already fired.  It cannot restart again after
   1378 	 * this point: the callout won't restart itself when dying, no
   1379 	 * other users holding the lock can restart it, and any other
   1380 	 * users waiting for callout_halt concurrently (timer_settime)
   1381 	 * will restart from the top.
   1382 	 */
   1383 	if (!CLOCK_VIRTUAL_P(pt->pt_type))
   1384 		callout_halt(&pt->pt_ch, &timer_lock);
   1385 
   1386 	/* Remove it from the queue to be signalled.  */
   1387 	if (pt->pt_queued)
   1388 		TAILQ_REMOVE(&timer_queue, pt, pt_chain);
   1389 
   1390 	/* All done with the global state.  */
   1391 	mutex_spin_exit(&timer_lock);
   1392 
   1393 	/* Destroy the callout, if needed, and free the ptimer.  */
   1394 	if (!CLOCK_VIRTUAL_P(pt->pt_type))
   1395 		callout_destroy(&pt->pt_ch);
   1396 	pool_put(&ptimer_pool, pt);
   1397 }
   1398 
   1399 /*
   1400  * Decrement an interval timer by a specified number
   1401  * of nanoseconds, which must be less than a second,
   1402  * i.e. < 1000000000.  If the timer expires, then reload
   1403  * it.  In this case, carry over (nsec - old value) to
   1404  * reduce the value reloaded into the timer so that
   1405  * the timer does not drift.  This routine assumes
   1406  * that it is called in a context where the timers
   1407  * on which it is operating cannot change in value.
   1408  */
   1409 static int
   1410 itimerdecr(struct ptimer *pt, int nsec)
   1411 {
   1412 	struct itimerspec *itp;
   1413 	int error __diagused;
   1414 
   1415 	KASSERT(mutex_owned(&timer_lock));
   1416 	KASSERT(CLOCK_VIRTUAL_P(pt->pt_type));
   1417 
   1418 	itp = &pt->pt_time;
   1419 	if (itp->it_value.tv_nsec < nsec) {
   1420 		if (itp->it_value.tv_sec == 0) {
   1421 			/* expired, and already in next interval */
   1422 			nsec -= itp->it_value.tv_nsec;
   1423 			goto expire;
   1424 		}
   1425 		itp->it_value.tv_nsec += 1000000000;
   1426 		itp->it_value.tv_sec--;
   1427 	}
   1428 	itp->it_value.tv_nsec -= nsec;
   1429 	nsec = 0;
   1430 	if (timespecisset(&itp->it_value))
   1431 		return (1);
   1432 	/* expired, exactly at end of interval */
   1433 expire:
   1434 	if (timespecisset(&itp->it_interval)) {
   1435 		itp->it_value = itp->it_interval;
   1436 		itp->it_value.tv_nsec -= nsec;
   1437 		if (itp->it_value.tv_nsec < 0) {
   1438 			itp->it_value.tv_nsec += 1000000000;
   1439 			itp->it_value.tv_sec--;
   1440 		}
   1441 		error = timer_settime(pt);
   1442 		KASSERT(error == 0); /* virtual, never fails */
   1443 	} else
   1444 		itp->it_value.tv_nsec = 0;		/* sec is already 0 */
   1445 	return (0);
   1446 }
   1447 
   1448 static void
   1449 itimerfire(struct ptimer *pt)
   1450 {
   1451 
   1452 	KASSERT(mutex_owned(&timer_lock));
   1453 
   1454 	/*
   1455 	 * XXX Can overrun, but we don't do signal queueing yet, anyway.
   1456 	 * XXX Relying on the clock interrupt is stupid.
   1457 	 */
   1458 	if (pt->pt_ev.sigev_notify != SIGEV_SIGNAL || pt->pt_queued) {
   1459 		return;
   1460 	}
   1461 	TAILQ_INSERT_TAIL(&timer_queue, pt, pt_chain);
   1462 	pt->pt_queued = true;
   1463 	softint_schedule(timer_sih);
   1464 }
   1465 
   1466 void
   1467 timer_tick(lwp_t *l, bool user)
   1468 {
   1469 	struct ptimers *pts;
   1470 	struct ptimer *pt;
   1471 	proc_t *p;
   1472 
   1473 	p = l->l_proc;
   1474 	if (p->p_timers == NULL)
   1475 		return;
   1476 
   1477 	mutex_spin_enter(&timer_lock);
   1478 	if ((pts = l->l_proc->p_timers) != NULL) {
   1479 		/*
   1480 		 * Run current process's virtual and profile time, as needed.
   1481 		 */
   1482 		if (user && (pt = LIST_FIRST(&pts->pts_virtual)) != NULL)
   1483 			if (itimerdecr(pt, tick * 1000) == 0)
   1484 				itimerfire(pt);
   1485 		if ((pt = LIST_FIRST(&pts->pts_prof)) != NULL)
   1486 			if (itimerdecr(pt, tick * 1000) == 0)
   1487 				itimerfire(pt);
   1488 	}
   1489 	mutex_spin_exit(&timer_lock);
   1490 }
   1491 
   1492 static void
   1493 timer_intr(void *cookie)
   1494 {
   1495 	ksiginfo_t ksi;
   1496 	struct ptimer *pt;
   1497 	proc_t *p;
   1498 
   1499 	mutex_enter(proc_lock);
   1500 	mutex_spin_enter(&timer_lock);
   1501 	while ((pt = TAILQ_FIRST(&timer_queue)) != NULL) {
   1502 		TAILQ_REMOVE(&timer_queue, pt, pt_chain);
   1503 		KASSERT(pt->pt_queued);
   1504 		pt->pt_queued = false;
   1505 
   1506 		if (pt->pt_proc->p_timers == NULL) {
   1507 			/* Process is dying. */
   1508 			continue;
   1509 		}
   1510 		p = pt->pt_proc;
   1511 		if (pt->pt_ev.sigev_notify != SIGEV_SIGNAL) {
   1512 			continue;
   1513 		}
   1514 		if (sigismember(&p->p_sigpend.sp_set, pt->pt_ev.sigev_signo)) {
   1515 			pt->pt_overruns++;
   1516 			continue;
   1517 		}
   1518 
   1519 		KSI_INIT(&ksi);
   1520 		ksi.ksi_signo = pt->pt_ev.sigev_signo;
   1521 		ksi.ksi_code = SI_TIMER;
   1522 		ksi.ksi_value = pt->pt_ev.sigev_value;
   1523 		pt->pt_poverruns = pt->pt_overruns;
   1524 		pt->pt_overruns = 0;
   1525 		mutex_spin_exit(&timer_lock);
   1526 		kpsignal(p, &ksi, NULL);
   1527 		mutex_spin_enter(&timer_lock);
   1528 	}
   1529 	mutex_spin_exit(&timer_lock);
   1530 	mutex_exit(proc_lock);
   1531 }
   1532 
   1533 /*
   1534  * Check if the time will wrap if set to ts.
   1535  *
   1536  * ts - timespec describing the new time
   1537  * delta - the delta between the current time and ts
   1538  */
   1539 bool
   1540 time_wraps(struct timespec *ts, struct timespec *delta)
   1541 {
   1542 
   1543 	/*
   1544 	 * Don't allow the time to be set forward so far it
   1545 	 * will wrap and become negative, thus allowing an
   1546 	 * attacker to bypass the next check below.  The
   1547 	 * cutoff is 1 year before rollover occurs, so even
   1548 	 * if the attacker uses adjtime(2) to move the time
   1549 	 * past the cutoff, it will take a very long time
   1550 	 * to get to the wrap point.
   1551 	 */
   1552 	if ((ts->tv_sec > LLONG_MAX - 365*24*60*60) ||
   1553 	    (delta->tv_sec < 0 || delta->tv_nsec < 0))
   1554 		return true;
   1555 
   1556 	return false;
   1557 }
   1558