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subr_time.c revision 1.20.8.1
      1  1.20.8.1    martin /*	$NetBSD: subr_time.c,v 1.20.8.1 2024/10/11 17:18:05 martin Exp $	*/
      2       1.1     pooka 
      3       1.1     pooka /*
      4       1.1     pooka  * Copyright (c) 1982, 1986, 1989, 1993
      5       1.1     pooka  *	The Regents of the University of California.  All rights reserved.
      6       1.1     pooka  *
      7       1.1     pooka  * Redistribution and use in source and binary forms, with or without
      8       1.1     pooka  * modification, are permitted provided that the following conditions
      9       1.1     pooka  * are met:
     10       1.1     pooka  * 1. Redistributions of source code must retain the above copyright
     11       1.1     pooka  *    notice, this list of conditions and the following disclaimer.
     12       1.1     pooka  * 2. Redistributions in binary form must reproduce the above copyright
     13       1.1     pooka  *    notice, this list of conditions and the following disclaimer in the
     14       1.1     pooka  *    documentation and/or other materials provided with the distribution.
     15       1.1     pooka  * 3. Neither the name of the University nor the names of its contributors
     16       1.1     pooka  *    may be used to endorse or promote products derived from this software
     17       1.1     pooka  *    without specific prior written permission.
     18       1.1     pooka  *
     19       1.1     pooka  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     20       1.1     pooka  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     21       1.1     pooka  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     22       1.1     pooka  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     23       1.1     pooka  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     24       1.1     pooka  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     25       1.1     pooka  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     26       1.1     pooka  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     27       1.1     pooka  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     28       1.1     pooka  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     29       1.1     pooka  * SUCH DAMAGE.
     30       1.1     pooka  *
     31       1.1     pooka  *	@(#)kern_clock.c	8.5 (Berkeley) 1/21/94
     32       1.1     pooka  *	@(#)kern_time.c 8.4 (Berkeley) 5/26/95
     33       1.1     pooka  */
     34       1.1     pooka 
     35       1.1     pooka #include <sys/cdefs.h>
     36  1.20.8.1    martin __KERNEL_RCSID(0, "$NetBSD: subr_time.c,v 1.20.8.1 2024/10/11 17:18:05 martin Exp $");
     37       1.1     pooka 
     38       1.1     pooka #include <sys/param.h>
     39       1.1     pooka #include <sys/kernel.h>
     40      1.18  christos #include <sys/proc.h>
     41      1.18  christos #include <sys/kauth.h>
     42      1.18  christos #include <sys/lwp.h>
     43       1.1     pooka #include <sys/timex.h>
     44       1.1     pooka #include <sys/time.h>
     45       1.1     pooka #include <sys/timetc.h>
     46       1.2        ad #include <sys/intr.h>
     47       1.1     pooka 
     48       1.1     pooka /*
     49       1.1     pooka  * Compute number of hz until specified time.  Used to compute second
     50       1.1     pooka  * argument to callout_reset() from an absolute time.
     51       1.1     pooka  */
     52       1.1     pooka int
     53       1.4  christos tvhzto(const struct timeval *tvp)
     54       1.1     pooka {
     55       1.1     pooka 	struct timeval now, tv;
     56       1.1     pooka 
     57       1.1     pooka 	tv = *tvp;	/* Don't modify original tvp. */
     58       1.1     pooka 	getmicrotime(&now);
     59       1.1     pooka 	timersub(&tv, &now, &tv);
     60       1.1     pooka 	return tvtohz(&tv);
     61       1.1     pooka }
     62       1.1     pooka 
     63       1.1     pooka /*
     64       1.1     pooka  * Compute number of ticks in the specified amount of time.
     65       1.1     pooka  */
     66       1.1     pooka int
     67       1.4  christos tvtohz(const struct timeval *tv)
     68       1.1     pooka {
     69       1.1     pooka 	unsigned long ticks;
     70       1.1     pooka 	long sec, usec;
     71       1.1     pooka 
     72       1.1     pooka 	/*
     73       1.1     pooka 	 * If the number of usecs in the whole seconds part of the time
     74       1.1     pooka 	 * difference fits in a long, then the total number of usecs will
     75       1.1     pooka 	 * fit in an unsigned long.  Compute the total and convert it to
     76       1.1     pooka 	 * ticks, rounding up and adding 1 to allow for the current tick
     77       1.1     pooka 	 * to expire.  Rounding also depends on unsigned long arithmetic
     78       1.1     pooka 	 * to avoid overflow.
     79       1.1     pooka 	 *
     80       1.1     pooka 	 * Otherwise, if the number of ticks in the whole seconds part of
     81       1.1     pooka 	 * the time difference fits in a long, then convert the parts to
     82       1.1     pooka 	 * ticks separately and add, using similar rounding methods and
     83       1.1     pooka 	 * overflow avoidance.  This method would work in the previous
     84       1.1     pooka 	 * case, but it is slightly slower and assumes that hz is integral.
     85       1.1     pooka 	 *
     86       1.1     pooka 	 * Otherwise, round the time difference down to the maximum
     87       1.1     pooka 	 * representable value.
     88       1.1     pooka 	 *
     89       1.1     pooka 	 * If ints are 32-bit, then the maximum value for any timeout in
     90       1.1     pooka 	 * 10ms ticks is 248 days.
     91       1.1     pooka 	 */
     92       1.1     pooka 	sec = tv->tv_sec;
     93       1.1     pooka 	usec = tv->tv_usec;
     94       1.1     pooka 
     95  1.20.8.1    martin 	KASSERT(usec >= 0);
     96  1.20.8.1    martin 	KASSERT(usec < 1000000);
     97       1.8  drochner 
     98       1.8  drochner 	/* catch overflows in conversion time_t->int */
     99       1.8  drochner 	if (tv->tv_sec > INT_MAX)
    100       1.8  drochner 		return INT_MAX;
    101       1.8  drochner 	if (tv->tv_sec < 0)
    102       1.8  drochner 		return 0;
    103       1.1     pooka 
    104       1.8  drochner 	if (sec < 0 || (sec == 0 && usec == 0)) {
    105       1.1     pooka 		/*
    106       1.1     pooka 		 * Would expire now or in the past.  Return 0 ticks.
    107       1.4  christos 		 * This is different from the legacy tvhzto() interface,
    108       1.1     pooka 		 * and callers need to check for it.
    109       1.1     pooka 		 */
    110       1.1     pooka 		ticks = 0;
    111       1.1     pooka 	} else if (sec <= (LONG_MAX / 1000000))
    112       1.1     pooka 		ticks = (((sec * 1000000) + (unsigned long)usec + (tick - 1))
    113       1.1     pooka 		    / tick) + 1;
    114       1.1     pooka 	else if (sec <= (LONG_MAX / hz))
    115       1.1     pooka 		ticks = (sec * hz) +
    116       1.1     pooka 		    (((unsigned long)usec + (tick - 1)) / tick) + 1;
    117       1.1     pooka 	else
    118       1.1     pooka 		ticks = LONG_MAX;
    119       1.1     pooka 
    120       1.1     pooka 	if (ticks > INT_MAX)
    121       1.1     pooka 		ticks = INT_MAX;
    122       1.1     pooka 
    123       1.1     pooka 	return ((int)ticks);
    124       1.1     pooka }
    125       1.1     pooka 
    126       1.4  christos int
    127       1.4  christos tshzto(const struct timespec *tsp)
    128       1.4  christos {
    129       1.4  christos 	struct timespec now, ts;
    130       1.4  christos 
    131       1.4  christos 	ts = *tsp;	/* Don't modify original tsp. */
    132       1.4  christos 	getnanotime(&now);
    133       1.4  christos 	timespecsub(&ts, &now, &ts);
    134       1.4  christos 	return tstohz(&ts);
    135       1.4  christos }
    136       1.9  christos 
    137       1.9  christos int
    138       1.9  christos tshztoup(const struct timespec *tsp)
    139       1.9  christos {
    140       1.9  christos 	struct timespec now, ts;
    141       1.9  christos 
    142       1.9  christos 	ts = *tsp;	/* Don't modify original tsp. */
    143       1.9  christos 	getnanouptime(&now);
    144       1.9  christos 	timespecsub(&ts, &now, &ts);
    145       1.9  christos 	return tstohz(&ts);
    146       1.9  christos }
    147       1.9  christos 
    148       1.1     pooka /*
    149       1.1     pooka  * Compute number of ticks in the specified amount of time.
    150       1.1     pooka  */
    151       1.1     pooka int
    152       1.4  christos tstohz(const struct timespec *ts)
    153       1.1     pooka {
    154       1.1     pooka 	struct timeval tv;
    155       1.1     pooka 
    156       1.1     pooka 	/*
    157       1.1     pooka 	 * usec has great enough resolution for hz, so convert to a
    158       1.1     pooka 	 * timeval and use tvtohz() above.
    159       1.1     pooka 	 */
    160       1.1     pooka 	TIMESPEC_TO_TIMEVAL(&tv, ts);
    161       1.1     pooka 	return tvtohz(&tv);
    162       1.1     pooka }
    163       1.1     pooka 
    164       1.1     pooka /*
    165       1.1     pooka  * Check that a proposed value to load into the .it_value or
    166       1.1     pooka  * .it_interval part of an interval timer is acceptable, and
    167       1.1     pooka  * fix it to have at least minimal value (i.e. if it is less
    168      1.15  christos  * than the resolution of the clock, round it up.). We don't
    169      1.15  christos  * timeout the 0,0 value because this means to disable the
    170      1.15  christos  * timer or the interval.
    171       1.1     pooka  */
    172       1.1     pooka int
    173       1.1     pooka itimerfix(struct timeval *tv)
    174       1.1     pooka {
    175       1.1     pooka 
    176      1.12  christos 	if (tv->tv_usec < 0 || tv->tv_usec >= 1000000)
    177      1.12  christos 		return EINVAL;
    178      1.15  christos 	if (tv->tv_sec < 0)
    179      1.12  christos 		return ETIMEDOUT;
    180      1.15  christos 	if (tv->tv_sec == 0 && tv->tv_usec != 0 && tv->tv_usec < tick)
    181       1.1     pooka 		tv->tv_usec = tick;
    182      1.12  christos 	return 0;
    183       1.1     pooka }
    184       1.1     pooka 
    185       1.1     pooka int
    186       1.1     pooka itimespecfix(struct timespec *ts)
    187       1.1     pooka {
    188       1.1     pooka 
    189      1.12  christos 	if (ts->tv_nsec < 0 || ts->tv_nsec >= 1000000000)
    190      1.12  christos 		return EINVAL;
    191      1.15  christos 	if (ts->tv_sec < 0)
    192      1.12  christos 		return ETIMEDOUT;
    193      1.15  christos 	if (ts->tv_sec == 0 && ts->tv_nsec != 0 && ts->tv_nsec < tick * 1000)
    194       1.1     pooka 		ts->tv_nsec = tick * 1000;
    195      1.12  christos 	return 0;
    196       1.1     pooka }
    197       1.5     rmind 
    198       1.5     rmind int
    199       1.5     rmind inittimeleft(struct timespec *ts, struct timespec *sleepts)
    200       1.5     rmind {
    201       1.5     rmind 
    202       1.5     rmind 	if (itimespecfix(ts)) {
    203       1.5     rmind 		return -1;
    204       1.5     rmind 	}
    205       1.5     rmind 	getnanouptime(sleepts);
    206       1.5     rmind 	return 0;
    207       1.5     rmind }
    208       1.5     rmind 
    209       1.5     rmind int
    210       1.5     rmind gettimeleft(struct timespec *ts, struct timespec *sleepts)
    211       1.5     rmind {
    212       1.5     rmind 	struct timespec sleptts;
    213       1.5     rmind 
    214       1.5     rmind 	/*
    215       1.5     rmind 	 * Reduce ts by elapsed time based on monotonic time scale.
    216       1.5     rmind 	 */
    217       1.5     rmind 	getnanouptime(&sleptts);
    218       1.5     rmind 	timespecadd(ts, sleepts, ts);
    219       1.5     rmind 	timespecsub(ts, &sleptts, ts);
    220       1.5     rmind 	*sleepts = sleptts;
    221       1.5     rmind 
    222       1.5     rmind 	return tstohz(ts);
    223       1.5     rmind }
    224       1.5     rmind 
    225      1.20  christos void
    226      1.20  christos clock_timeleft(clockid_t clockid, struct timespec *ts, struct timespec *sleepts)
    227      1.20  christos {
    228      1.20  christos 	struct timespec sleptts;
    229      1.20  christos 
    230      1.20  christos 	clock_gettime1(clockid, &sleptts);
    231      1.20  christos 	timespecadd(ts, sleepts, ts);
    232      1.20  christos 	timespecsub(ts, &sleptts, ts);
    233      1.20  christos 	*sleepts = sleptts;
    234      1.20  christos }
    235      1.20  christos 
    236      1.11    martin int
    237      1.11    martin clock_gettime1(clockid_t clock_id, struct timespec *ts)
    238      1.11    martin {
    239      1.18  christos 	int error;
    240      1.18  christos 	struct proc *p;
    241      1.18  christos 
    242      1.18  christos #define CPUCLOCK_ID_MASK (~(CLOCK_THREAD_CPUTIME_ID|CLOCK_PROCESS_CPUTIME_ID))
    243      1.18  christos 	if (clock_id & CLOCK_PROCESS_CPUTIME_ID) {
    244      1.18  christos 		pid_t pid = clock_id & CPUCLOCK_ID_MASK;
    245  1.20.8.1    martin 		struct timeval cputime;
    246      1.18  christos 
    247      1.18  christos 		mutex_enter(proc_lock);
    248      1.18  christos 		p = pid == 0 ? curproc : proc_find(pid);
    249      1.18  christos 		if (p == NULL) {
    250      1.18  christos 			mutex_exit(proc_lock);
    251      1.18  christos 			return ESRCH;
    252      1.18  christos 		}
    253  1.20.8.1    martin 		mutex_enter(p->p_lock);
    254  1.20.8.1    martin 		calcru(p, /*usertime*/NULL, /*systime*/NULL, /*intrtime*/NULL,
    255  1.20.8.1    martin 		    &cputime);
    256  1.20.8.1    martin 		mutex_exit(p->p_lock);
    257      1.18  christos 		mutex_exit(proc_lock);
    258      1.18  christos 
    259      1.18  christos 		// XXX: Perhaps create a special kauth type
    260      1.18  christos 		error = kauth_authorize_process(curlwp->l_cred,
    261      1.18  christos 		    KAUTH_PROCESS_PTRACE, p,
    262      1.18  christos 		    KAUTH_ARG(KAUTH_REQ_PROCESS_CANSEE_ENTRY), NULL, NULL);
    263      1.18  christos 		if (error)
    264      1.18  christos 			return error;
    265  1.20.8.1    martin 
    266  1.20.8.1    martin 		TIMEVAL_TO_TIMESPEC(&cputime, ts);
    267  1.20.8.1    martin 		return 0;
    268      1.18  christos 	} else if (clock_id & CLOCK_THREAD_CPUTIME_ID) {
    269      1.18  christos 		struct lwp *l;
    270      1.18  christos 		lwpid_t lid = clock_id & CPUCLOCK_ID_MASK;
    271  1.20.8.1    martin 		struct bintime tm = {0, 0};
    272  1.20.8.1    martin 
    273      1.18  christos 		p = curproc;
    274      1.18  christos 		mutex_enter(p->p_lock);
    275      1.18  christos 		l = lid == 0 ? curlwp : lwp_find(p, lid);
    276      1.18  christos 		if (l == NULL) {
    277      1.18  christos 			mutex_exit(p->p_lock);
    278      1.18  christos 			return ESRCH;
    279      1.18  christos 		}
    280  1.20.8.1    martin 		addrulwp(l, &tm);
    281      1.18  christos 		mutex_exit(p->p_lock);
    282      1.18  christos 
    283  1.20.8.1    martin 		bintime2timespec(&tm, ts);
    284      1.18  christos 		return 0;
    285      1.18  christos 	}
    286      1.11    martin 
    287      1.11    martin 	switch (clock_id) {
    288      1.11    martin 	case CLOCK_REALTIME:
    289      1.11    martin 		nanotime(ts);
    290      1.11    martin 		break;
    291      1.11    martin 	case CLOCK_MONOTONIC:
    292      1.11    martin 		nanouptime(ts);
    293      1.11    martin 		break;
    294      1.11    martin 	default:
    295      1.11    martin 		return EINVAL;
    296      1.11    martin 	}
    297      1.11    martin 
    298      1.11    martin 	return 0;
    299      1.11    martin }
    300      1.11    martin 
    301       1.5     rmind /*
    302       1.5     rmind  * Calculate delta and convert from struct timespec to the ticks.
    303       1.5     rmind  */
    304       1.5     rmind int
    305      1.10  christos ts2timo(clockid_t clock_id, int flags, struct timespec *ts,
    306      1.10  christos     int *timo, struct timespec *start)
    307       1.5     rmind {
    308      1.14  christos 	int error;
    309       1.5     rmind 	struct timespec tsd;
    310       1.5     rmind 
    311      1.10  christos 	flags &= TIMER_ABSTIME;
    312      1.17  christos 	if (start == NULL)
    313      1.10  christos 		start = &tsd;
    314      1.10  christos 
    315      1.17  christos 	if (flags || start != &tsd)
    316      1.17  christos 		if ((error = clock_gettime1(clock_id, start)) != 0)
    317      1.17  christos 			return error;
    318      1.10  christos 
    319      1.10  christos 	if (flags)
    320      1.10  christos 		timespecsub(ts, start, ts);
    321      1.10  christos 
    322      1.12  christos 	if ((error = itimespecfix(ts)) != 0)
    323       1.5     rmind 		return error;
    324      1.10  christos 
    325      1.15  christos 	if (ts->tv_sec == 0 && ts->tv_nsec == 0)
    326      1.15  christos 		return ETIMEDOUT;
    327      1.15  christos 
    328      1.14  christos 	*timo = tstohz(ts);
    329      1.14  christos 	KASSERT(*timo > 0);
    330       1.5     rmind 
    331       1.5     rmind 	return 0;
    332       1.5     rmind }
    333