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kern_time.c revision 1.24.2.2
      1  1.24.2.2   thorpej /*	$NetBSD: kern_time.c,v 1.24.2.2 1997/01/18 04:31:43 thorpej Exp $	*/
      2       1.9       cgd 
      3       1.1       cgd /*
      4       1.8       cgd  * Copyright (c) 1982, 1986, 1989, 1993
      5       1.8       cgd  *	The Regents of the University of California.  All rights reserved.
      6       1.1       cgd  *
      7       1.1       cgd  * Redistribution and use in source and binary forms, with or without
      8       1.1       cgd  * modification, are permitted provided that the following conditions
      9       1.1       cgd  * are met:
     10       1.1       cgd  * 1. Redistributions of source code must retain the above copyright
     11       1.1       cgd  *    notice, this list of conditions and the following disclaimer.
     12       1.1       cgd  * 2. Redistributions in binary form must reproduce the above copyright
     13       1.1       cgd  *    notice, this list of conditions and the following disclaimer in the
     14       1.1       cgd  *    documentation and/or other materials provided with the distribution.
     15       1.1       cgd  * 3. All advertising materials mentioning features or use of this software
     16       1.1       cgd  *    must display the following acknowledgement:
     17       1.1       cgd  *	This product includes software developed by the University of
     18       1.1       cgd  *	California, Berkeley and its contributors.
     19       1.1       cgd  * 4. Neither the name of the University nor the names of its contributors
     20       1.1       cgd  *    may be used to endorse or promote products derived from this software
     21       1.1       cgd  *    without specific prior written permission.
     22       1.1       cgd  *
     23       1.1       cgd  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     24       1.1       cgd  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     25       1.1       cgd  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     26       1.1       cgd  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     27       1.1       cgd  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     28       1.1       cgd  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     29       1.1       cgd  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     30       1.1       cgd  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     31       1.1       cgd  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     32       1.1       cgd  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     33       1.1       cgd  * SUCH DAMAGE.
     34       1.1       cgd  *
     35       1.9       cgd  *	@(#)kern_time.c	8.1 (Berkeley) 6/10/93
     36       1.1       cgd  */
     37       1.1       cgd 
     38       1.5   mycroft #include <sys/param.h>
     39       1.5   mycroft #include <sys/resourcevar.h>
     40       1.5   mycroft #include <sys/kernel.h>
     41       1.8       cgd #include <sys/systm.h>
     42       1.5   mycroft #include <sys/proc.h>
     43       1.8       cgd #include <sys/vnode.h>
     44      1.17  christos #include <sys/signalvar.h>
     45  1.24.2.2   thorpej #include <sys/syslog.h>
     46       1.1       cgd 
     47      1.11       cgd #include <sys/mount.h>
     48      1.11       cgd #include <sys/syscallargs.h>
     49      1.19  christos 
     50  1.24.2.1   thorpej #if defined(NFS) || defined(NFSSERVER)
     51      1.20      fvdl #include <nfs/rpcv2.h>
     52      1.20      fvdl #include <nfs/nfsproto.h>
     53      1.19  christos #include <nfs/nfs_var.h>
     54      1.19  christos #endif
     55      1.17  christos 
     56       1.5   mycroft #include <machine/cpu.h>
     57       1.1       cgd 
     58      1.23       cgd static void	settime __P((struct timeval *));
     59      1.23       cgd 
     60      1.23       cgd /*
     61       1.1       cgd  * Time of day and interval timer support.
     62       1.1       cgd  *
     63       1.1       cgd  * These routines provide the kernel entry points to get and set
     64       1.1       cgd  * the time-of-day and per-process interval timers.  Subroutines
     65       1.1       cgd  * here provide support for adding and subtracting timeval structures
     66       1.1       cgd  * and decrementing interval timers, optionally reloading the interval
     67       1.1       cgd  * timers when they expire.
     68       1.1       cgd  */
     69       1.1       cgd 
     70      1.22       jtc 
     71      1.22       jtc /* This function is used by clock_settime and settimeofday */
     72      1.22       jtc static void
     73      1.22       jtc settime(tv)
     74      1.22       jtc 	struct timeval *tv;
     75      1.22       jtc {
     76      1.22       jtc 	struct timeval delta;
     77      1.22       jtc 	int s;
     78      1.22       jtc 
     79      1.22       jtc 	/* WHAT DO WE DO ABOUT PENDING REAL-TIME TIMEOUTS??? */
     80      1.22       jtc 	s = splclock();
     81      1.22       jtc 	timersub(tv, &time, &delta);
     82      1.22       jtc 	time = *tv;
     83      1.22       jtc 	(void) splsoftclock();
     84      1.22       jtc 	timeradd(&boottime, &delta, &boottime);
     85      1.22       jtc 	timeradd(&runtime, &delta, &runtime);
     86  1.24.2.1   thorpej #	if defined(NFS) || defined(NFSSERVER)
     87      1.22       jtc 		nqnfs_lease_updatetime(delta.tv_sec);
     88      1.22       jtc #	endif
     89      1.22       jtc 	splx(s);
     90      1.22       jtc 	resettodr();
     91      1.22       jtc }
     92      1.22       jtc 
     93      1.22       jtc /* ARGSUSED */
     94      1.22       jtc int
     95      1.22       jtc sys_clock_gettime(p, v, retval)
     96      1.22       jtc 	struct proc *p;
     97      1.22       jtc 	void *v;
     98      1.22       jtc 	register_t *retval;
     99      1.22       jtc {
    100      1.22       jtc 	register struct sys_clock_gettime_args /* {
    101      1.22       jtc 		syscallarg(clockid_t) clock_id;
    102      1.23       cgd 		syscallarg(struct timespec *) tp;
    103      1.23       cgd 	} */ *uap = v;
    104      1.22       jtc 	clockid_t clock_id;
    105      1.22       jtc 	struct timeval atv;
    106      1.22       jtc 	struct timespec ats;
    107      1.22       jtc 
    108      1.22       jtc 	clock_id = SCARG(uap, clock_id);
    109      1.22       jtc 	if (clock_id != CLOCK_REALTIME)
    110      1.22       jtc 		return (EINVAL);
    111      1.22       jtc 
    112      1.22       jtc 	microtime(&atv);
    113      1.22       jtc 	TIMEVAL_TO_TIMESPEC(&atv,&ats);
    114      1.22       jtc 
    115      1.24       cgd 	return copyout(&ats, SCARG(uap, tp), sizeof(ats));
    116      1.22       jtc }
    117      1.22       jtc 
    118      1.22       jtc /* ARGSUSED */
    119      1.22       jtc int
    120      1.22       jtc sys_clock_settime(p, v, retval)
    121      1.22       jtc 	struct proc *p;
    122      1.22       jtc 	void *v;
    123      1.22       jtc 	register_t *retval;
    124      1.22       jtc {
    125      1.22       jtc 	register struct sys_clock_settime_args /* {
    126      1.22       jtc 		syscallarg(clockid_t) clock_id;
    127      1.23       cgd 		syscallarg(const struct timespec *) tp;
    128      1.23       cgd 	} */ *uap = v;
    129      1.22       jtc 	clockid_t clock_id;
    130      1.22       jtc 	struct timeval atv;
    131      1.22       jtc 	struct timespec ats;
    132      1.22       jtc 	int error;
    133      1.22       jtc 
    134      1.22       jtc 	if ((error = suser(p->p_ucred, &p->p_acflag)) != 0)
    135      1.22       jtc 		return (error);
    136      1.22       jtc 
    137      1.22       jtc 	clock_id = SCARG(uap, clock_id);
    138      1.22       jtc 	if (clock_id != CLOCK_REALTIME)
    139      1.22       jtc 		return (EINVAL);
    140      1.22       jtc 
    141      1.24       cgd 	if ((error = copyin(SCARG(uap, tp), &ats, sizeof(ats))) != 0)
    142      1.23       cgd 		return (error);
    143      1.22       jtc 
    144      1.22       jtc 	TIMESPEC_TO_TIMEVAL(&atv,&ats);
    145      1.22       jtc 	settime(&atv);
    146      1.22       jtc 
    147      1.22       jtc 	return 0;
    148      1.22       jtc }
    149      1.22       jtc 
    150      1.22       jtc int
    151      1.22       jtc sys_clock_getres(p, v, retval)
    152      1.22       jtc 	struct proc *p;
    153      1.22       jtc 	void *v;
    154      1.22       jtc 	register_t *retval;
    155      1.22       jtc {
    156      1.22       jtc 	register struct sys_clock_getres_args /* {
    157      1.22       jtc 		syscallarg(clockid_t) clock_id;
    158      1.23       cgd 		syscallarg(struct timespec *) tp;
    159      1.23       cgd 	} */ *uap = v;
    160      1.22       jtc 	clockid_t clock_id;
    161      1.22       jtc 	struct timespec ts;
    162      1.22       jtc 	int error = 0;
    163      1.22       jtc 
    164      1.22       jtc 	clock_id = SCARG(uap, clock_id);
    165      1.22       jtc 	if (clock_id != CLOCK_REALTIME)
    166      1.22       jtc 		return (EINVAL);
    167      1.22       jtc 
    168      1.22       jtc 	if (SCARG(uap, tp)) {
    169      1.22       jtc 		ts.tv_sec = 0;
    170      1.22       jtc 		ts.tv_nsec = 1000000000 / hz;
    171      1.22       jtc 
    172      1.24       cgd 		error = copyout(&ts, SCARG(uap, tp), sizeof (ts));
    173      1.22       jtc 	}
    174      1.22       jtc 
    175      1.22       jtc 	return error;
    176      1.22       jtc }
    177      1.22       jtc 
    178      1.22       jtc 
    179       1.1       cgd /* ARGSUSED */
    180       1.3    andrew int
    181      1.16   mycroft sys_gettimeofday(p, v, retval)
    182       1.1       cgd 	struct proc *p;
    183      1.15   thorpej 	void *v;
    184      1.15   thorpej 	register_t *retval;
    185      1.15   thorpej {
    186      1.16   mycroft 	register struct sys_gettimeofday_args /* {
    187      1.11       cgd 		syscallarg(struct timeval *) tp;
    188      1.11       cgd 		syscallarg(struct timezone *) tzp;
    189      1.15   thorpej 	} */ *uap = v;
    190       1.1       cgd 	struct timeval atv;
    191       1.1       cgd 	int error = 0;
    192  1.24.2.2   thorpej 	struct timezone tzfake;
    193       1.1       cgd 
    194      1.11       cgd 	if (SCARG(uap, tp)) {
    195       1.1       cgd 		microtime(&atv);
    196      1.24       cgd 		error = copyout(&atv, SCARG(uap, tp), sizeof (atv));
    197      1.17  christos 		if (error)
    198       1.1       cgd 			return (error);
    199       1.1       cgd 	}
    200  1.24.2.2   thorpej 	if (SCARG(uap, tzp)) {
    201  1.24.2.2   thorpej 		/*
    202  1.24.2.2   thorpej 		 * NetBSD has no kernel notion of timezone, so we just
    203  1.24.2.2   thorpej 		 * fake up a timezone struct and return it if demanded.
    204  1.24.2.2   thorpej 		 */
    205  1.24.2.2   thorpej 		tzfake.tz_minuteswest = 0;
    206  1.24.2.2   thorpej 		tzfake.tz_dsttime = 0;
    207  1.24.2.2   thorpej 		error = copyout(&tzfake, SCARG(uap, tzp), sizeof (tzfake));
    208  1.24.2.2   thorpej 	}
    209       1.1       cgd 	return (error);
    210       1.1       cgd }
    211       1.1       cgd 
    212       1.1       cgd /* ARGSUSED */
    213       1.3    andrew int
    214      1.16   mycroft sys_settimeofday(p, v, retval)
    215       1.1       cgd 	struct proc *p;
    216      1.15   thorpej 	void *v;
    217      1.15   thorpej 	register_t *retval;
    218      1.15   thorpej {
    219      1.16   mycroft 	struct sys_settimeofday_args /* {
    220      1.24       cgd 		syscallarg(const struct timeval *) tv;
    221      1.24       cgd 		syscallarg(const struct timezone *) tzp;
    222      1.15   thorpej 	} */ *uap = v;
    223      1.22       jtc 	struct timeval atv;
    224       1.1       cgd 	struct timezone atz;
    225      1.22       jtc 	int error;
    226       1.1       cgd 
    227      1.17  christos 	if ((error = suser(p->p_ucred, &p->p_acflag)) != 0)
    228       1.1       cgd 		return (error);
    229       1.8       cgd 	/* Verify all parameters before changing time. */
    230      1.24       cgd 	if (SCARG(uap, tv) && (error = copyin(SCARG(uap, tv),
    231      1.24       cgd 	    &atv, sizeof(atv))))
    232       1.8       cgd 		return (error);
    233  1.24.2.2   thorpej 	/* XXX since we don't use tz, probably no point in doing copyin. */
    234      1.24       cgd 	if (SCARG(uap, tzp) && (error = copyin(SCARG(uap, tzp),
    235      1.24       cgd 	    &atz, sizeof(atz))))
    236       1.8       cgd 		return (error);
    237      1.22       jtc 	if (SCARG(uap, tv))
    238      1.22       jtc 		settime(&atv);
    239  1.24.2.2   thorpej 	/*
    240  1.24.2.2   thorpej 	 * NetBSD has no kernel notion of timezone, and only an
    241  1.24.2.2   thorpej 	 * obsolete program would try to set it, so we log a warning.
    242  1.24.2.2   thorpej 	 */
    243      1.11       cgd 	if (SCARG(uap, tzp))
    244  1.24.2.2   thorpej 		log(LOG_WARNING, "pid %d attempted to set the "
    245  1.24.2.2   thorpej 		    "(obsolete) kernel timezone.", p->p_pid);
    246       1.8       cgd 	return (0);
    247       1.1       cgd }
    248       1.1       cgd 
    249       1.1       cgd int	tickdelta;			/* current clock skew, us. per tick */
    250       1.1       cgd long	timedelta;			/* unapplied time correction, us. */
    251       1.1       cgd long	bigadj = 1000000;		/* use 10x skew above bigadj us. */
    252       1.1       cgd 
    253       1.1       cgd /* ARGSUSED */
    254       1.3    andrew int
    255      1.16   mycroft sys_adjtime(p, v, retval)
    256       1.1       cgd 	struct proc *p;
    257      1.15   thorpej 	void *v;
    258      1.15   thorpej 	register_t *retval;
    259      1.15   thorpej {
    260      1.16   mycroft 	register struct sys_adjtime_args /* {
    261      1.24       cgd 		syscallarg(const struct timeval *) delta;
    262      1.11       cgd 		syscallarg(struct timeval *) olddelta;
    263      1.15   thorpej 	} */ *uap = v;
    264       1.8       cgd 	struct timeval atv;
    265       1.8       cgd 	register long ndelta, ntickdelta, odelta;
    266       1.1       cgd 	int s, error;
    267       1.1       cgd 
    268      1.17  christos 	if ((error = suser(p->p_ucred, &p->p_acflag)) != 0)
    269       1.1       cgd 		return (error);
    270      1.17  christos 
    271      1.24       cgd 	error = copyin(SCARG(uap, delta), &atv, sizeof(struct timeval));
    272      1.17  christos 	if (error)
    273       1.1       cgd 		return (error);
    274       1.8       cgd 
    275       1.8       cgd 	/*
    276       1.8       cgd 	 * Compute the total correction and the rate at which to apply it.
    277       1.8       cgd 	 * Round the adjustment down to a whole multiple of the per-tick
    278       1.8       cgd 	 * delta, so that after some number of incremental changes in
    279       1.8       cgd 	 * hardclock(), tickdelta will become zero, lest the correction
    280       1.8       cgd 	 * overshoot and start taking us away from the desired final time.
    281       1.8       cgd 	 */
    282       1.1       cgd 	ndelta = atv.tv_sec * 1000000 + atv.tv_usec;
    283       1.8       cgd 	if (ndelta > bigadj)
    284       1.8       cgd 		ntickdelta = 10 * tickadj;
    285       1.8       cgd 	else
    286       1.8       cgd 		ntickdelta = tickadj;
    287       1.8       cgd 	if (ndelta % ntickdelta)
    288       1.8       cgd 		ndelta = ndelta / ntickdelta * ntickdelta;
    289       1.8       cgd 
    290       1.8       cgd 	/*
    291       1.8       cgd 	 * To make hardclock()'s job easier, make the per-tick delta negative
    292       1.8       cgd 	 * if we want time to run slower; then hardclock can simply compute
    293       1.8       cgd 	 * tick + tickdelta, and subtract tickdelta from timedelta.
    294       1.8       cgd 	 */
    295       1.8       cgd 	if (ndelta < 0)
    296       1.8       cgd 		ntickdelta = -ntickdelta;
    297       1.1       cgd 	s = splclock();
    298       1.8       cgd 	odelta = timedelta;
    299       1.1       cgd 	timedelta = ndelta;
    300       1.8       cgd 	tickdelta = ntickdelta;
    301       1.1       cgd 	splx(s);
    302       1.1       cgd 
    303      1.11       cgd 	if (SCARG(uap, olddelta)) {
    304       1.8       cgd 		atv.tv_sec = odelta / 1000000;
    305       1.8       cgd 		atv.tv_usec = odelta % 1000000;
    306      1.24       cgd 		(void) copyout(&atv, SCARG(uap, olddelta),
    307       1.8       cgd 		    sizeof(struct timeval));
    308       1.8       cgd 	}
    309       1.1       cgd 	return (0);
    310       1.1       cgd }
    311       1.1       cgd 
    312       1.1       cgd /*
    313       1.1       cgd  * Get value of an interval timer.  The process virtual and
    314       1.1       cgd  * profiling virtual time timers are kept in the p_stats area, since
    315       1.1       cgd  * they can be swapped out.  These are kept internally in the
    316       1.1       cgd  * way they are specified externally: in time until they expire.
    317       1.1       cgd  *
    318       1.1       cgd  * The real time interval timer is kept in the process table slot
    319       1.1       cgd  * for the process, and its value (it_value) is kept as an
    320       1.1       cgd  * absolute time rather than as a delta, so that it is easy to keep
    321       1.1       cgd  * periodic real-time signals from drifting.
    322       1.1       cgd  *
    323       1.1       cgd  * Virtual time timers are processed in the hardclock() routine of
    324       1.1       cgd  * kern_clock.c.  The real time timer is processed by a timeout
    325       1.1       cgd  * routine, called from the softclock() routine.  Since a callout
    326       1.1       cgd  * may be delayed in real time due to interrupt processing in the system,
    327       1.1       cgd  * it is possible for the real time timeout routine (realitexpire, given below),
    328       1.1       cgd  * to be delayed in real time past when it is supposed to occur.  It
    329       1.1       cgd  * does not suffice, therefore, to reload the real timer .it_value from the
    330       1.1       cgd  * real time timers .it_interval.  Rather, we compute the next time in
    331       1.1       cgd  * absolute time the timer should go off.
    332       1.1       cgd  */
    333       1.1       cgd /* ARGSUSED */
    334       1.3    andrew int
    335      1.16   mycroft sys_getitimer(p, v, retval)
    336       1.1       cgd 	struct proc *p;
    337      1.15   thorpej 	void *v;
    338      1.15   thorpej 	register_t *retval;
    339      1.15   thorpej {
    340      1.16   mycroft 	register struct sys_getitimer_args /* {
    341      1.11       cgd 		syscallarg(u_int) which;
    342      1.11       cgd 		syscallarg(struct itimerval *) itv;
    343      1.15   thorpej 	} */ *uap = v;
    344       1.1       cgd 	struct itimerval aitv;
    345       1.1       cgd 	int s;
    346       1.1       cgd 
    347      1.11       cgd 	if (SCARG(uap, which) > ITIMER_PROF)
    348       1.1       cgd 		return (EINVAL);
    349       1.1       cgd 	s = splclock();
    350      1.11       cgd 	if (SCARG(uap, which) == ITIMER_REAL) {
    351       1.1       cgd 		/*
    352      1.12   mycroft 		 * Convert from absolute to relative time in .it_value
    353       1.1       cgd 		 * part of real time timer.  If time for real time timer
    354       1.1       cgd 		 * has passed return 0, else return difference between
    355       1.1       cgd 		 * current time and time for the timer to go off.
    356       1.1       cgd 		 */
    357       1.1       cgd 		aitv = p->p_realtimer;
    358       1.1       cgd 		if (timerisset(&aitv.it_value))
    359       1.1       cgd 			if (timercmp(&aitv.it_value, &time, <))
    360       1.1       cgd 				timerclear(&aitv.it_value);
    361       1.1       cgd 			else
    362      1.14   mycroft 				timersub(&aitv.it_value, &time, &aitv.it_value);
    363       1.1       cgd 	} else
    364      1.11       cgd 		aitv = p->p_stats->p_timer[SCARG(uap, which)];
    365       1.1       cgd 	splx(s);
    366      1.24       cgd 	return (copyout(&aitv, SCARG(uap, itv), sizeof (struct itimerval)));
    367       1.1       cgd }
    368       1.1       cgd 
    369       1.1       cgd /* ARGSUSED */
    370       1.3    andrew int
    371      1.16   mycroft sys_setitimer(p, v, retval)
    372       1.1       cgd 	struct proc *p;
    373      1.17  christos 	register void *v;
    374      1.15   thorpej 	register_t *retval;
    375      1.15   thorpej {
    376      1.16   mycroft 	register struct sys_setitimer_args /* {
    377      1.11       cgd 		syscallarg(u_int) which;
    378      1.24       cgd 		syscallarg(const struct itimerval *) itv;
    379      1.11       cgd 		syscallarg(struct itimerval *) oitv;
    380      1.15   thorpej 	} */ *uap = v;
    381      1.21       cgd 	struct sys_getitimer_args getargs;
    382       1.1       cgd 	struct itimerval aitv;
    383      1.24       cgd 	register const struct itimerval *itvp;
    384       1.1       cgd 	int s, error;
    385       1.1       cgd 
    386      1.11       cgd 	if (SCARG(uap, which) > ITIMER_PROF)
    387       1.1       cgd 		return (EINVAL);
    388      1.11       cgd 	itvp = SCARG(uap, itv);
    389      1.24       cgd 	if (itvp && (error = copyin(itvp, &aitv, sizeof(struct itimerval))))
    390       1.1       cgd 		return (error);
    391      1.21       cgd 	if (SCARG(uap, oitv) != NULL) {
    392      1.21       cgd 		SCARG(&getargs, which) = SCARG(uap, which);
    393      1.21       cgd 		SCARG(&getargs, itv) = SCARG(uap, oitv);
    394      1.23       cgd 		if ((error = sys_getitimer(p, &getargs, retval)) != 0)
    395      1.21       cgd 			return (error);
    396      1.21       cgd 	}
    397       1.1       cgd 	if (itvp == 0)
    398       1.1       cgd 		return (0);
    399       1.1       cgd 	if (itimerfix(&aitv.it_value) || itimerfix(&aitv.it_interval))
    400       1.1       cgd 		return (EINVAL);
    401       1.1       cgd 	s = splclock();
    402      1.11       cgd 	if (SCARG(uap, which) == ITIMER_REAL) {
    403       1.7   mycroft 		untimeout(realitexpire, p);
    404       1.1       cgd 		if (timerisset(&aitv.it_value)) {
    405      1.14   mycroft 			timeradd(&aitv.it_value, &time, &aitv.it_value);
    406       1.7   mycroft 			timeout(realitexpire, p, hzto(&aitv.it_value));
    407       1.1       cgd 		}
    408       1.1       cgd 		p->p_realtimer = aitv;
    409       1.1       cgd 	} else
    410      1.11       cgd 		p->p_stats->p_timer[SCARG(uap, which)] = aitv;
    411       1.1       cgd 	splx(s);
    412       1.1       cgd 	return (0);
    413       1.1       cgd }
    414       1.1       cgd 
    415       1.1       cgd /*
    416       1.1       cgd  * Real interval timer expired:
    417       1.1       cgd  * send process whose timer expired an alarm signal.
    418       1.1       cgd  * If time is not set up to reload, then just return.
    419       1.1       cgd  * Else compute next time timer should go off which is > current time.
    420       1.1       cgd  * This is where delay in processing this timeout causes multiple
    421       1.1       cgd  * SIGALRM calls to be compressed into one.
    422       1.1       cgd  */
    423       1.3    andrew void
    424       1.6       cgd realitexpire(arg)
    425       1.6       cgd 	void *arg;
    426       1.6       cgd {
    427       1.1       cgd 	register struct proc *p;
    428       1.1       cgd 	int s;
    429       1.1       cgd 
    430       1.6       cgd 	p = (struct proc *)arg;
    431       1.1       cgd 	psignal(p, SIGALRM);
    432       1.1       cgd 	if (!timerisset(&p->p_realtimer.it_interval)) {
    433       1.1       cgd 		timerclear(&p->p_realtimer.it_value);
    434       1.1       cgd 		return;
    435       1.1       cgd 	}
    436       1.1       cgd 	for (;;) {
    437       1.1       cgd 		s = splclock();
    438      1.14   mycroft 		timeradd(&p->p_realtimer.it_value,
    439      1.14   mycroft 		    &p->p_realtimer.it_interval, &p->p_realtimer.it_value);
    440       1.1       cgd 		if (timercmp(&p->p_realtimer.it_value, &time, >)) {
    441       1.7   mycroft 			timeout(realitexpire, p,
    442       1.1       cgd 			    hzto(&p->p_realtimer.it_value));
    443       1.1       cgd 			splx(s);
    444       1.1       cgd 			return;
    445       1.1       cgd 		}
    446       1.1       cgd 		splx(s);
    447       1.1       cgd 	}
    448       1.1       cgd }
    449       1.1       cgd 
    450       1.1       cgd /*
    451       1.1       cgd  * Check that a proposed value to load into the .it_value or
    452       1.1       cgd  * .it_interval part of an interval timer is acceptable, and
    453       1.1       cgd  * fix it to have at least minimal value (i.e. if it is less
    454       1.1       cgd  * than the resolution of the clock, round it up.)
    455       1.1       cgd  */
    456       1.3    andrew int
    457       1.1       cgd itimerfix(tv)
    458       1.1       cgd 	struct timeval *tv;
    459       1.1       cgd {
    460       1.1       cgd 
    461       1.1       cgd 	if (tv->tv_sec < 0 || tv->tv_sec > 100000000 ||
    462       1.1       cgd 	    tv->tv_usec < 0 || tv->tv_usec >= 1000000)
    463       1.1       cgd 		return (EINVAL);
    464       1.1       cgd 	if (tv->tv_sec == 0 && tv->tv_usec != 0 && tv->tv_usec < tick)
    465       1.1       cgd 		tv->tv_usec = tick;
    466       1.1       cgd 	return (0);
    467       1.1       cgd }
    468       1.1       cgd 
    469       1.1       cgd /*
    470       1.1       cgd  * Decrement an interval timer by a specified number
    471       1.1       cgd  * of microseconds, which must be less than a second,
    472       1.1       cgd  * i.e. < 1000000.  If the timer expires, then reload
    473       1.1       cgd  * it.  In this case, carry over (usec - old value) to
    474       1.8       cgd  * reduce the value reloaded into the timer so that
    475       1.1       cgd  * the timer does not drift.  This routine assumes
    476       1.1       cgd  * that it is called in a context where the timers
    477       1.1       cgd  * on which it is operating cannot change in value.
    478       1.1       cgd  */
    479       1.3    andrew int
    480       1.1       cgd itimerdecr(itp, usec)
    481       1.1       cgd 	register struct itimerval *itp;
    482       1.1       cgd 	int usec;
    483       1.1       cgd {
    484       1.1       cgd 
    485       1.1       cgd 	if (itp->it_value.tv_usec < usec) {
    486       1.1       cgd 		if (itp->it_value.tv_sec == 0) {
    487       1.1       cgd 			/* expired, and already in next interval */
    488       1.1       cgd 			usec -= itp->it_value.tv_usec;
    489       1.1       cgd 			goto expire;
    490       1.1       cgd 		}
    491       1.1       cgd 		itp->it_value.tv_usec += 1000000;
    492       1.1       cgd 		itp->it_value.tv_sec--;
    493       1.1       cgd 	}
    494       1.1       cgd 	itp->it_value.tv_usec -= usec;
    495       1.1       cgd 	usec = 0;
    496       1.1       cgd 	if (timerisset(&itp->it_value))
    497       1.1       cgd 		return (1);
    498       1.1       cgd 	/* expired, exactly at end of interval */
    499       1.1       cgd expire:
    500       1.1       cgd 	if (timerisset(&itp->it_interval)) {
    501       1.1       cgd 		itp->it_value = itp->it_interval;
    502       1.1       cgd 		itp->it_value.tv_usec -= usec;
    503       1.1       cgd 		if (itp->it_value.tv_usec < 0) {
    504       1.1       cgd 			itp->it_value.tv_usec += 1000000;
    505       1.1       cgd 			itp->it_value.tv_sec--;
    506       1.1       cgd 		}
    507       1.1       cgd 	} else
    508       1.1       cgd 		itp->it_value.tv_usec = 0;		/* sec is already 0 */
    509       1.1       cgd 	return (0);
    510       1.1       cgd }
    511