1 /*-
2 * SPDX-License-Identifier: BSD-3-Clause
3 *
4 * Copyright (c) 1982, 1986, 1989, 1993
5 * The Regents of the University of California. All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 * notice, this list of conditions and the following disclaimer.
12 * 2. Redistributions in binary form must reproduce the above copyright
13 * notice, this list of conditions and the following disclaimer in the
14 * documentation and/or other materials provided with the distribution.
15 * 3. Neither the name of the University nor the names of its contributors
16 * may be used to endorse or promote products derived from this software
17 * without specific prior written permission.
18 *
19 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
20 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
21 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
22 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
23 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
24 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
25 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
26 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
27 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
28 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
29 * SUCH DAMAGE.
30 */
31
32 #include <sys/cdefs.h>
33 #include "opt_ktrace.h"
34
35 #include <sys/param.h>
36 #include <sys/systm.h>
37 #include <sys/limits.h>
38 #include <sys/clock.h>
39 #include <sys/lock.h>
40 #include <sys/mutex.h>
41 #include <sys/sysproto.h>
42 #include <sys/resourcevar.h>
43 #include <sys/signalvar.h>
44 #include <sys/kernel.h>
45 #include <sys/sleepqueue.h>
46 #include <sys/syscallsubr.h>
47 #include <sys/sysctl.h>
48 #include <sys/priv.h>
49 #include <sys/proc.h>
50 #include <sys/posix4.h>
51 #include <sys/time.h>
52 #include <sys/timeffc.h>
53 #include <sys/timers.h>
54 #include <sys/timetc.h>
55 #include <sys/vnode.h>
56 #ifdef KTRACE
57 #include <sys/ktrace.h>
58 #endif
59
60 #include <vm/vm.h>
61 #include <vm/vm_extern.h>
62 #include <vm/uma.h>
63
64 #define MAX_CLOCKS (CLOCK_TAI+1)
65 #define CPUCLOCK_BIT 0x80000000
66 #define CPUCLOCK_PROCESS_BIT 0x40000000
67 #define CPUCLOCK_ID_MASK (~(CPUCLOCK_BIT|CPUCLOCK_PROCESS_BIT))
68 #define MAKE_THREAD_CPUCLOCK(tid) (CPUCLOCK_BIT|(tid))
69 #define MAKE_PROCESS_CPUCLOCK(pid) \
70 (CPUCLOCK_BIT|CPUCLOCK_PROCESS_BIT|(pid))
71
72 #define NS_PER_SEC 1000000000
73
74 static struct kclock posix_clocks[MAX_CLOCKS];
75 static uma_zone_t itimer_zone = NULL;
76
77 /*
78 * Time of day and interval timer support.
79 *
80 * These routines provide the kernel entry points to get and set
81 * the time-of-day and per-process interval timers. Subroutines
82 * here provide support for adding and subtracting timeval structures
83 * and decrementing interval timers, optionally reloading the interval
84 * timers when they expire.
85 */
86
87 static int settime(struct thread *, struct timeval *);
88 static void timevalfix(struct timeval *);
89 static int user_clock_nanosleep(struct thread *td, clockid_t clock_id,
90 int flags, const struct timespec *ua_rqtp,
91 struct timespec *ua_rmtp);
92
93 static void itimer_start(void *);
94 static int itimer_init(void *, int, int);
95 static void itimer_fini(void *, int);
96 static void itimer_enter(struct itimer *);
97 static void itimer_leave(struct itimer *);
98 static struct itimer *itimer_find(struct proc *, int);
99 static void itimers_alloc(struct proc *);
100 static int realtimer_create(struct itimer *);
101 static int realtimer_gettime(struct itimer *, struct itimerspec *);
102 static int realtimer_settime(struct itimer *, int,
103 struct itimerspec *, struct itimerspec *);
104 static int realtimer_delete(struct itimer *);
105 static void realtimer_expire(void *);
106 static void realtimer_expire_l(struct itimer *it, bool proc_locked);
107
108 static void realitexpire(void *arg);
109
110 static int register_posix_clock(int, const struct kclock *);
111 static void itimer_fire(struct itimer *it);
112 static int itimespecfix(struct timespec *ts);
113
114 #define CLOCK_CALL(clock, call, arglist) \
115 ((*posix_clocks[clock].call) arglist)
116
117 SYSINIT(posix_timer, SI_SUB_P1003_1B, SI_ORDER_FIRST+4, itimer_start, NULL);
118
119 static int
settime(struct thread * td,struct timeval * tv)120 settime(struct thread *td, struct timeval *tv)
121 {
122 struct timeval delta, tv1, tv2;
123 static struct timeval maxtime, laststep;
124 struct timespec ts;
125
126 microtime(&tv1);
127 delta = *tv;
128 timevalsub(&delta, &tv1);
129
130 /*
131 * If the system is secure, we do not allow the time to be
132 * set to a value earlier than 1 second less than the highest
133 * time we have yet seen. The worst a miscreant can do in
134 * this circumstance is "freeze" time. He couldn't go
135 * back to the past.
136 *
137 * We similarly do not allow the clock to be stepped more
138 * than one second, nor more than once per second. This allows
139 * a miscreant to make the clock march double-time, but no worse.
140 */
141 if (securelevel_gt(td->td_ucred, 1) != 0) {
142 if (delta.tv_sec < 0 || delta.tv_usec < 0) {
143 /*
144 * Update maxtime to latest time we've seen.
145 */
146 if (tv1.tv_sec > maxtime.tv_sec)
147 maxtime = tv1;
148 tv2 = *tv;
149 timevalsub(&tv2, &maxtime);
150 if (tv2.tv_sec < -1) {
151 tv->tv_sec = maxtime.tv_sec - 1;
152 printf("Time adjustment clamped to -1 second\n");
153 }
154 } else {
155 if (tv1.tv_sec == laststep.tv_sec)
156 return (EPERM);
157 if (delta.tv_sec > 1) {
158 tv->tv_sec = tv1.tv_sec + 1;
159 printf("Time adjustment clamped to +1 second\n");
160 }
161 laststep = *tv;
162 }
163 }
164
165 ts.tv_sec = tv->tv_sec;
166 ts.tv_nsec = tv->tv_usec * 1000;
167 tc_setclock(&ts);
168 resettodr();
169 return (0);
170 }
171
172 #ifndef _SYS_SYSPROTO_H_
173 struct clock_getcpuclockid2_args {
174 id_t id;
175 int which,
176 clockid_t *clock_id;
177 };
178 #endif
179 /* ARGSUSED */
180 int
sys_clock_getcpuclockid2(struct thread * td,struct clock_getcpuclockid2_args * uap)181 sys_clock_getcpuclockid2(struct thread *td, struct clock_getcpuclockid2_args *uap)
182 {
183 clockid_t clk_id;
184 int error;
185
186 error = kern_clock_getcpuclockid2(td, uap->id, uap->which, &clk_id);
187 if (error == 0)
188 error = copyout(&clk_id, uap->clock_id, sizeof(clockid_t));
189 return (error);
190 }
191
192 int
kern_clock_getcpuclockid2(struct thread * td,id_t id,int which,clockid_t * clk_id)193 kern_clock_getcpuclockid2(struct thread *td, id_t id, int which,
194 clockid_t *clk_id)
195 {
196 struct proc *p;
197 pid_t pid;
198 lwpid_t tid;
199 int error;
200
201 switch (which) {
202 case CPUCLOCK_WHICH_PID:
203 if (id != 0) {
204 error = pget(id, PGET_CANSEE | PGET_NOTID, &p);
205 if (error != 0)
206 return (error);
207 PROC_UNLOCK(p);
208 pid = id;
209 } else {
210 pid = td->td_proc->p_pid;
211 }
212 *clk_id = MAKE_PROCESS_CPUCLOCK(pid);
213 return (0);
214 case CPUCLOCK_WHICH_TID:
215 tid = id == 0 ? td->td_tid : id;
216 *clk_id = MAKE_THREAD_CPUCLOCK(tid);
217 return (0);
218 default:
219 return (EINVAL);
220 }
221 }
222
223 #ifndef _SYS_SYSPROTO_H_
224 struct clock_gettime_args {
225 clockid_t clock_id;
226 struct timespec *tp;
227 };
228 #endif
229 /* ARGSUSED */
230 int
sys_clock_gettime(struct thread * td,struct clock_gettime_args * uap)231 sys_clock_gettime(struct thread *td, struct clock_gettime_args *uap)
232 {
233 struct timespec ats;
234 int error;
235
236 error = kern_clock_gettime(td, uap->clock_id, &ats);
237 if (error == 0)
238 error = copyout(&ats, uap->tp, sizeof(ats));
239
240 return (error);
241 }
242
243 static inline void
cputick2timespec(uint64_t runtime,struct timespec * ats)244 cputick2timespec(uint64_t runtime, struct timespec *ats)
245 {
246 uint64_t tr;
247 tr = cpu_tickrate();
248 ats->tv_sec = runtime / tr;
249 ats->tv_nsec = ((runtime % tr) * 1000000000ULL) / tr;
250 }
251
252 void
kern_thread_cputime(struct thread * targettd,struct timespec * ats)253 kern_thread_cputime(struct thread *targettd, struct timespec *ats)
254 {
255 uint64_t runtime, curtime, switchtime;
256
257 if (targettd == NULL) { /* current thread */
258 spinlock_enter();
259 switchtime = PCPU_GET(switchtime);
260 curtime = cpu_ticks();
261 runtime = curthread->td_runtime;
262 spinlock_exit();
263 runtime += curtime - switchtime;
264 } else {
265 PROC_LOCK_ASSERT(targettd->td_proc, MA_OWNED);
266 thread_lock(targettd);
267 runtime = targettd->td_runtime;
268 thread_unlock(targettd);
269 }
270 cputick2timespec(runtime, ats);
271 }
272
273 void
kern_process_cputime(struct proc * targetp,struct timespec * ats)274 kern_process_cputime(struct proc *targetp, struct timespec *ats)
275 {
276 uint64_t runtime;
277 struct rusage ru;
278
279 PROC_LOCK_ASSERT(targetp, MA_OWNED);
280 PROC_STATLOCK(targetp);
281 rufetch(targetp, &ru);
282 runtime = targetp->p_rux.rux_runtime;
283 if (curthread->td_proc == targetp)
284 runtime += cpu_ticks() - PCPU_GET(switchtime);
285 PROC_STATUNLOCK(targetp);
286 cputick2timespec(runtime, ats);
287 }
288
289 static int
get_cputime(struct thread * td,clockid_t clock_id,struct timespec * ats)290 get_cputime(struct thread *td, clockid_t clock_id, struct timespec *ats)
291 {
292 struct proc *p, *p2;
293 struct thread *td2;
294 lwpid_t tid;
295 pid_t pid;
296 int error;
297
298 p = td->td_proc;
299 if ((clock_id & CPUCLOCK_PROCESS_BIT) == 0) {
300 tid = clock_id & CPUCLOCK_ID_MASK;
301 td2 = tdfind(tid, p->p_pid);
302 if (td2 == NULL)
303 return (EINVAL);
304 kern_thread_cputime(td2, ats);
305 PROC_UNLOCK(td2->td_proc);
306 } else {
307 pid = clock_id & CPUCLOCK_ID_MASK;
308 error = pget(pid, PGET_CANSEE, &p2);
309 if (error != 0)
310 return (EINVAL);
311 kern_process_cputime(p2, ats);
312 PROC_UNLOCK(p2);
313 }
314 return (0);
315 }
316
317 int
kern_clock_gettime(struct thread * td,clockid_t clock_id,struct timespec * ats)318 kern_clock_gettime(struct thread *td, clockid_t clock_id, struct timespec *ats)
319 {
320 struct timeval sys, user;
321 struct sysclock_snap clk;
322 struct bintime bt;
323 struct proc *p;
324 int error;
325
326 p = td->td_proc;
327 switch (clock_id) {
328 case CLOCK_REALTIME: /* Default to precise. */
329 case CLOCK_REALTIME_PRECISE:
330 nanotime(ats);
331 break;
332 case CLOCK_REALTIME_FAST:
333 getnanotime(ats);
334 break;
335 case CLOCK_TAI:
336 sysclock_getsnapshot(&clk, 0);
337 error = sysclock_snap2bintime(&clk, &bt, clk.sysclock_active,
338 clk.sysclock_active == SYSCLOCK_FFWD ? FFCLOCK_LERP : 0);
339 if (error != 0)
340 return (error);
341 bintime2timespec(&bt, ats);
342 break;
343 case CLOCK_VIRTUAL:
344 PROC_LOCK(p);
345 PROC_STATLOCK(p);
346 calcru(p, &user, &sys);
347 PROC_STATUNLOCK(p);
348 PROC_UNLOCK(p);
349 TIMEVAL_TO_TIMESPEC(&user, ats);
350 break;
351 case CLOCK_PROF:
352 PROC_LOCK(p);
353 PROC_STATLOCK(p);
354 calcru(p, &user, &sys);
355 PROC_STATUNLOCK(p);
356 PROC_UNLOCK(p);
357 timevaladd(&user, &sys);
358 TIMEVAL_TO_TIMESPEC(&user, ats);
359 break;
360 case CLOCK_MONOTONIC: /* Default to precise. */
361 case CLOCK_MONOTONIC_PRECISE:
362 case CLOCK_UPTIME:
363 case CLOCK_UPTIME_PRECISE:
364 nanouptime(ats);
365 break;
366 case CLOCK_UPTIME_FAST:
367 case CLOCK_MONOTONIC_FAST:
368 getnanouptime(ats);
369 break;
370 case CLOCK_SECOND:
371 ats->tv_sec = time_second;
372 ats->tv_nsec = 0;
373 break;
374 case CLOCK_THREAD_CPUTIME_ID:
375 kern_thread_cputime(NULL, ats);
376 break;
377 case CLOCK_PROCESS_CPUTIME_ID:
378 PROC_LOCK(p);
379 kern_process_cputime(p, ats);
380 PROC_UNLOCK(p);
381 break;
382 default:
383 if ((int)clock_id >= 0)
384 return (EINVAL);
385 return (get_cputime(td, clock_id, ats));
386 }
387 return (0);
388 }
389
390 #ifndef _SYS_SYSPROTO_H_
391 struct clock_settime_args {
392 clockid_t clock_id;
393 const struct timespec *tp;
394 };
395 #endif
396 /* ARGSUSED */
397 int
sys_clock_settime(struct thread * td,struct clock_settime_args * uap)398 sys_clock_settime(struct thread *td, struct clock_settime_args *uap)
399 {
400 struct timespec ats;
401 int error;
402
403 if ((error = copyin(uap->tp, &ats, sizeof(ats))) != 0)
404 return (error);
405 return (kern_clock_settime(td, uap->clock_id, &ats));
406 }
407
408 static int allow_insane_settime = 0;
409 SYSCTL_INT(_debug, OID_AUTO, allow_insane_settime, CTLFLAG_RWTUN,
410 &allow_insane_settime, 0,
411 "do not perform possibly restrictive checks on settime(2) args");
412
413 int
kern_clock_settime(struct thread * td,clockid_t clock_id,struct timespec * ats)414 kern_clock_settime(struct thread *td, clockid_t clock_id, struct timespec *ats)
415 {
416 struct timeval atv;
417 int error;
418
419 if ((error = priv_check(td, PRIV_CLOCK_SETTIME)) != 0)
420 return (error);
421 if (clock_id != CLOCK_REALTIME)
422 return (EINVAL);
423 if (!timespecvalid_interval(ats))
424 return (EINVAL);
425 if (!allow_insane_settime &&
426 (ats->tv_sec > 8000ULL * 365 * 24 * 60 * 60 ||
427 ats->tv_sec < utc_offset()))
428 return (EINVAL);
429 /* XXX Don't convert nsec->usec and back */
430 TIMESPEC_TO_TIMEVAL(&atv, ats);
431 error = settime(td, &atv);
432 return (error);
433 }
434
435 #ifndef _SYS_SYSPROTO_H_
436 struct clock_getres_args {
437 clockid_t clock_id;
438 struct timespec *tp;
439 };
440 #endif
441 int
sys_clock_getres(struct thread * td,struct clock_getres_args * uap)442 sys_clock_getres(struct thread *td, struct clock_getres_args *uap)
443 {
444 struct timespec ts;
445 int error;
446
447 if (uap->tp == NULL)
448 return (0);
449
450 error = kern_clock_getres(td, uap->clock_id, &ts);
451 if (error == 0)
452 error = copyout(&ts, uap->tp, sizeof(ts));
453 return (error);
454 }
455
456 int
kern_clock_getres(struct thread * td,clockid_t clock_id,struct timespec * ts)457 kern_clock_getres(struct thread *td, clockid_t clock_id, struct timespec *ts)
458 {
459
460 ts->tv_sec = 0;
461 switch (clock_id) {
462 case CLOCK_REALTIME:
463 case CLOCK_REALTIME_FAST:
464 case CLOCK_REALTIME_PRECISE:
465 case CLOCK_TAI:
466 case CLOCK_MONOTONIC:
467 case CLOCK_MONOTONIC_FAST:
468 case CLOCK_MONOTONIC_PRECISE:
469 case CLOCK_UPTIME:
470 case CLOCK_UPTIME_FAST:
471 case CLOCK_UPTIME_PRECISE:
472 /*
473 * Round up the result of the division cheaply by adding 1.
474 * Rounding up is especially important if rounding down
475 * would give 0. Perfect rounding is unimportant.
476 */
477 ts->tv_nsec = NS_PER_SEC / tc_getfrequency() + 1;
478 break;
479 case CLOCK_VIRTUAL:
480 case CLOCK_PROF:
481 /* Accurately round up here because we can do so cheaply. */
482 ts->tv_nsec = howmany(NS_PER_SEC, hz);
483 break;
484 case CLOCK_SECOND:
485 ts->tv_sec = 1;
486 ts->tv_nsec = 0;
487 break;
488 case CLOCK_THREAD_CPUTIME_ID:
489 case CLOCK_PROCESS_CPUTIME_ID:
490 cputime:
491 ts->tv_nsec = 1000000000 / cpu_tickrate() + 1;
492 break;
493 default:
494 if ((int)clock_id < 0)
495 goto cputime;
496 return (EINVAL);
497 }
498 return (0);
499 }
500
501 int
kern_nanosleep(struct thread * td,struct timespec * rqt,struct timespec * rmt)502 kern_nanosleep(struct thread *td, struct timespec *rqt, struct timespec *rmt)
503 {
504
505 return (kern_clock_nanosleep(td, CLOCK_REALTIME, TIMER_RELTIME, rqt,
506 rmt));
507 }
508
509 static __read_mostly bool nanosleep_precise = true;
510 SYSCTL_BOOL(_kern_timecounter, OID_AUTO, nanosleep_precise, CTLFLAG_RW,
511 &nanosleep_precise, 0, "clock_nanosleep() with CLOCK_REALTIME, "
512 "CLOCK_MONOTONIC, CLOCK_UPTIME and nanosleep(2) use precise clock");
513 static uint8_t nanowait[MAXCPU];
514
515 int
kern_clock_nanosleep(struct thread * td,clockid_t clock_id,int flags,const struct timespec * rqt,struct timespec * rmt)516 kern_clock_nanosleep(struct thread *td, clockid_t clock_id, int flags,
517 const struct timespec *rqt, struct timespec *rmt)
518 {
519 struct timespec ts, now;
520 sbintime_t sbt, sbtt, prec, tmp;
521 time_t over;
522 int error;
523 bool is_abs_real, precise;
524
525 if (rqt->tv_nsec < 0 || rqt->tv_nsec >= NS_PER_SEC)
526 return (EINVAL);
527 if ((flags & ~TIMER_ABSTIME) != 0)
528 return (EINVAL);
529 switch (clock_id) {
530 case CLOCK_REALTIME:
531 case CLOCK_TAI:
532 precise = nanosleep_precise;
533 is_abs_real = (flags & TIMER_ABSTIME) != 0;
534 break;
535 case CLOCK_REALTIME_PRECISE:
536 precise = true;
537 is_abs_real = (flags & TIMER_ABSTIME) != 0;
538 break;
539 case CLOCK_REALTIME_FAST:
540 case CLOCK_SECOND:
541 precise = false;
542 is_abs_real = (flags & TIMER_ABSTIME) != 0;
543 break;
544 case CLOCK_MONOTONIC:
545 case CLOCK_UPTIME:
546 precise = nanosleep_precise;
547 is_abs_real = false;
548 break;
549 case CLOCK_MONOTONIC_PRECISE:
550 case CLOCK_UPTIME_PRECISE:
551 precise = true;
552 is_abs_real = false;
553 break;
554 case CLOCK_MONOTONIC_FAST:
555 case CLOCK_UPTIME_FAST:
556 precise = false;
557 is_abs_real = false;
558 break;
559 case CLOCK_VIRTUAL:
560 case CLOCK_PROF:
561 case CLOCK_PROCESS_CPUTIME_ID:
562 return (ENOTSUP);
563 case CLOCK_THREAD_CPUTIME_ID:
564 default:
565 return (EINVAL);
566 }
567 do {
568 ts = *rqt;
569 if ((flags & TIMER_ABSTIME) != 0) {
570 if (is_abs_real)
571 td->td_rtcgen =
572 atomic_load_acq_int(&rtc_generation);
573 error = kern_clock_gettime(td, clock_id, &now);
574 if (error != 0) {
575 td->td_rtcgen = 0;
576 return (error);
577 }
578 timespecsub(&ts, &now, &ts);
579 }
580 if (ts.tv_sec < 0 || (ts.tv_sec == 0 && ts.tv_nsec == 0)) {
581 error = EWOULDBLOCK;
582 break;
583 }
584 if (ts.tv_sec > INT32_MAX / 2) {
585 over = ts.tv_sec - INT32_MAX / 2;
586 ts.tv_sec -= over;
587 } else
588 over = 0;
589 tmp = tstosbt(ts);
590 if (precise) {
591 prec = 0;
592 sbt = sbinuptime();
593 } else {
594 prec = tmp >> tc_precexp;
595 if (TIMESEL(&sbt, tmp))
596 sbt += tc_tick_sbt;
597 }
598 sbt += tmp;
599 error = tsleep_sbt(&nanowait[curcpu], PWAIT | PCATCH, "nanslp",
600 sbt, prec, C_ABSOLUTE);
601 } while (error == 0 && is_abs_real && td->td_rtcgen == 0);
602 td->td_rtcgen = 0;
603 if (error != EWOULDBLOCK) {
604 if (precise)
605 sbtt = sbinuptime();
606 else if (TIMESEL(&sbtt, tmp))
607 sbtt += tc_tick_sbt;
608 if (sbtt >= sbt)
609 return (0);
610 if (error == ERESTART)
611 error = EINTR;
612 if ((flags & TIMER_ABSTIME) == 0 && rmt != NULL) {
613 ts = sbttots(sbt - sbtt);
614 ts.tv_sec += over;
615 if (ts.tv_sec < 0)
616 timespecclear(&ts);
617 *rmt = ts;
618 }
619 return (error);
620 }
621 return (0);
622 }
623
624 #ifndef _SYS_SYSPROTO_H_
625 struct nanosleep_args {
626 struct timespec *rqtp;
627 struct timespec *rmtp;
628 };
629 #endif
630 /* ARGSUSED */
631 int
sys_nanosleep(struct thread * td,struct nanosleep_args * uap)632 sys_nanosleep(struct thread *td, struct nanosleep_args *uap)
633 {
634
635 return (user_clock_nanosleep(td, CLOCK_REALTIME, TIMER_RELTIME,
636 uap->rqtp, uap->rmtp));
637 }
638
639 #ifndef _SYS_SYSPROTO_H_
640 struct clock_nanosleep_args {
641 clockid_t clock_id;
642 int flags;
643 struct timespec *rqtp;
644 struct timespec *rmtp;
645 };
646 #endif
647 /* ARGSUSED */
648 int
sys_clock_nanosleep(struct thread * td,struct clock_nanosleep_args * uap)649 sys_clock_nanosleep(struct thread *td, struct clock_nanosleep_args *uap)
650 {
651 int error;
652
653 error = user_clock_nanosleep(td, uap->clock_id, uap->flags, uap->rqtp,
654 uap->rmtp);
655 return (kern_posix_error(td, error));
656 }
657
658 static int
user_clock_nanosleep(struct thread * td,clockid_t clock_id,int flags,const struct timespec * ua_rqtp,struct timespec * ua_rmtp)659 user_clock_nanosleep(struct thread *td, clockid_t clock_id, int flags,
660 const struct timespec *ua_rqtp, struct timespec *ua_rmtp)
661 {
662 struct timespec rmt, rqt;
663 int error, error2;
664
665 error = copyin(ua_rqtp, &rqt, sizeof(rqt));
666 if (error)
667 return (error);
668 error = kern_clock_nanosleep(td, clock_id, flags, &rqt, &rmt);
669 if (error == EINTR && ua_rmtp != NULL && (flags & TIMER_ABSTIME) == 0) {
670 error2 = copyout(&rmt, ua_rmtp, sizeof(rmt));
671 if (error2 != 0)
672 error = error2;
673 }
674 return (error);
675 }
676
677 #ifndef _SYS_SYSPROTO_H_
678 struct gettimeofday_args {
679 struct timeval *tp;
680 struct timezone *tzp;
681 };
682 #endif
683 /* ARGSUSED */
684 int
sys_gettimeofday(struct thread * td,struct gettimeofday_args * uap)685 sys_gettimeofday(struct thread *td, struct gettimeofday_args *uap)
686 {
687 struct timeval atv;
688 struct timezone rtz;
689 int error = 0;
690
691 if (uap->tp) {
692 microtime(&atv);
693 error = copyout(&atv, uap->tp, sizeof (atv));
694 }
695 if (error == 0 && uap->tzp != NULL) {
696 rtz.tz_minuteswest = 0;
697 rtz.tz_dsttime = 0;
698 error = copyout(&rtz, uap->tzp, sizeof (rtz));
699 }
700 return (error);
701 }
702
703 #ifndef _SYS_SYSPROTO_H_
704 struct settimeofday_args {
705 struct timeval *tv;
706 struct timezone *tzp;
707 };
708 #endif
709 /* ARGSUSED */
710 int
sys_settimeofday(struct thread * td,struct settimeofday_args * uap)711 sys_settimeofday(struct thread *td, struct settimeofday_args *uap)
712 {
713 struct timeval atv, *tvp;
714 struct timezone atz, *tzp;
715 int error;
716
717 if (uap->tv) {
718 error = copyin(uap->tv, &atv, sizeof(atv));
719 if (error)
720 return (error);
721 tvp = &atv;
722 } else
723 tvp = NULL;
724 if (uap->tzp) {
725 error = copyin(uap->tzp, &atz, sizeof(atz));
726 if (error)
727 return (error);
728 tzp = &atz;
729 } else
730 tzp = NULL;
731 return (kern_settimeofday(td, tvp, tzp));
732 }
733
734 int
kern_settimeofday(struct thread * td,struct timeval * tv,struct timezone * tzp)735 kern_settimeofday(struct thread *td, struct timeval *tv, struct timezone *tzp)
736 {
737 int error;
738
739 error = priv_check(td, PRIV_SETTIMEOFDAY);
740 if (error)
741 return (error);
742 /* Verify all parameters before changing time. */
743 if (tv) {
744 if (tv->tv_usec < 0 || tv->tv_usec >= 1000000 ||
745 tv->tv_sec < 0)
746 return (EINVAL);
747 error = settime(td, tv);
748 }
749 return (error);
750 }
751
752 /*
753 * Get value of an interval timer. The process virtual and profiling virtual
754 * time timers are kept in the p_stats area, since they can be swapped out.
755 * These are kept internally in the way they are specified externally: in
756 * time until they expire.
757 *
758 * The real time interval timer is kept in the process table slot for the
759 * process, and its value (it_value) is kept as an absolute time rather than
760 * as a delta, so that it is easy to keep periodic real-time signals from
761 * drifting.
762 *
763 * Virtual time timers are processed in the hardclock() routine of
764 * kern_clock.c. The real time timer is processed by a timeout routine,
765 * called from the softclock() routine. Since a callout may be delayed in
766 * real time due to interrupt processing in the system, it is possible for
767 * the real time timeout routine (realitexpire, given below), to be delayed
768 * in real time past when it is supposed to occur. It does not suffice,
769 * therefore, to reload the real timer .it_value from the real time timers
770 * .it_interval. Rather, we compute the next time in absolute time the timer
771 * should go off.
772 */
773 #ifndef _SYS_SYSPROTO_H_
774 struct getitimer_args {
775 u_int which;
776 struct itimerval *itv;
777 };
778 #endif
779 int
sys_getitimer(struct thread * td,struct getitimer_args * uap)780 sys_getitimer(struct thread *td, struct getitimer_args *uap)
781 {
782 struct itimerval aitv;
783 int error;
784
785 error = kern_getitimer(td, uap->which, &aitv);
786 if (error != 0)
787 return (error);
788 return (copyout(&aitv, uap->itv, sizeof (struct itimerval)));
789 }
790
791 int
kern_getitimer(struct thread * td,u_int which,struct itimerval * aitv)792 kern_getitimer(struct thread *td, u_int which, struct itimerval *aitv)
793 {
794 struct proc *p = td->td_proc;
795 struct timeval ctv;
796
797 if (which > ITIMER_PROF)
798 return (EINVAL);
799
800 if (which == ITIMER_REAL) {
801 /*
802 * Convert from absolute to relative time in .it_value
803 * part of real time timer. If time for real time timer
804 * has passed return 0, else return difference between
805 * current time and time for the timer to go off.
806 */
807 PROC_LOCK(p);
808 *aitv = p->p_realtimer;
809 PROC_UNLOCK(p);
810 if (timevalisset(&aitv->it_value)) {
811 microuptime(&ctv);
812 if (timevalcmp(&aitv->it_value, &ctv, <))
813 timevalclear(&aitv->it_value);
814 else
815 timevalsub(&aitv->it_value, &ctv);
816 }
817 } else {
818 PROC_ITIMLOCK(p);
819 *aitv = p->p_stats->p_timer[which];
820 PROC_ITIMUNLOCK(p);
821 }
822 #ifdef KTRACE
823 if (KTRPOINT(td, KTR_STRUCT))
824 ktritimerval(aitv);
825 #endif
826 return (0);
827 }
828
829 #ifndef _SYS_SYSPROTO_H_
830 struct setitimer_args {
831 u_int which;
832 struct itimerval *itv, *oitv;
833 };
834 #endif
835 int
sys_setitimer(struct thread * td,struct setitimer_args * uap)836 sys_setitimer(struct thread *td, struct setitimer_args *uap)
837 {
838 struct itimerval aitv, oitv;
839 int error;
840
841 if (uap->itv == NULL) {
842 uap->itv = uap->oitv;
843 return (sys_getitimer(td, (struct getitimer_args *)uap));
844 }
845
846 if ((error = copyin(uap->itv, &aitv, sizeof(struct itimerval))))
847 return (error);
848 error = kern_setitimer(td, uap->which, &aitv, &oitv);
849 if (error != 0 || uap->oitv == NULL)
850 return (error);
851 return (copyout(&oitv, uap->oitv, sizeof(struct itimerval)));
852 }
853
854 int
kern_setitimer(struct thread * td,u_int which,struct itimerval * aitv,struct itimerval * oitv)855 kern_setitimer(struct thread *td, u_int which, struct itimerval *aitv,
856 struct itimerval *oitv)
857 {
858 struct proc *p = td->td_proc;
859 struct timeval ctv;
860 sbintime_t sbt, pr;
861
862 if (aitv == NULL)
863 return (kern_getitimer(td, which, oitv));
864
865 if (which > ITIMER_PROF)
866 return (EINVAL);
867 #ifdef KTRACE
868 if (KTRPOINT(td, KTR_STRUCT))
869 ktritimerval(aitv);
870 #endif
871 if (itimerfix(&aitv->it_value) ||
872 aitv->it_value.tv_sec > INT32_MAX / 2)
873 return (EINVAL);
874 if (!timevalisset(&aitv->it_value))
875 timevalclear(&aitv->it_interval);
876 else if (itimerfix(&aitv->it_interval) ||
877 aitv->it_interval.tv_sec > INT32_MAX / 2)
878 return (EINVAL);
879
880 if (which == ITIMER_REAL) {
881 PROC_LOCK(p);
882 if (timevalisset(&p->p_realtimer.it_value))
883 callout_stop(&p->p_itcallout);
884 microuptime(&ctv);
885 if (timevalisset(&aitv->it_value)) {
886 pr = tvtosbt(aitv->it_value) >> tc_precexp;
887 timevaladd(&aitv->it_value, &ctv);
888 sbt = tvtosbt(aitv->it_value);
889 callout_reset_sbt(&p->p_itcallout, sbt, pr,
890 realitexpire, p, C_ABSOLUTE);
891 }
892 *oitv = p->p_realtimer;
893 p->p_realtimer = *aitv;
894 PROC_UNLOCK(p);
895 if (timevalisset(&oitv->it_value)) {
896 if (timevalcmp(&oitv->it_value, &ctv, <))
897 timevalclear(&oitv->it_value);
898 else
899 timevalsub(&oitv->it_value, &ctv);
900 }
901 } else {
902 if (aitv->it_interval.tv_sec == 0 &&
903 aitv->it_interval.tv_usec != 0 &&
904 aitv->it_interval.tv_usec < tick)
905 aitv->it_interval.tv_usec = tick;
906 if (aitv->it_value.tv_sec == 0 &&
907 aitv->it_value.tv_usec != 0 &&
908 aitv->it_value.tv_usec < tick)
909 aitv->it_value.tv_usec = tick;
910 PROC_ITIMLOCK(p);
911 *oitv = p->p_stats->p_timer[which];
912 p->p_stats->p_timer[which] = *aitv;
913 PROC_ITIMUNLOCK(p);
914 }
915 #ifdef KTRACE
916 if (KTRPOINT(td, KTR_STRUCT))
917 ktritimerval(oitv);
918 #endif
919 return (0);
920 }
921
922 static void
realitexpire_reset_callout(struct proc * p,sbintime_t * isbtp)923 realitexpire_reset_callout(struct proc *p, sbintime_t *isbtp)
924 {
925 sbintime_t prec;
926
927 if ((p->p_flag & P_WEXIT) != 0)
928 return;
929 prec = isbtp == NULL ? tvtosbt(p->p_realtimer.it_interval) : *isbtp;
930 callout_reset_sbt(&p->p_itcallout, tvtosbt(p->p_realtimer.it_value),
931 prec >> tc_precexp, realitexpire, p, C_ABSOLUTE);
932 }
933
934 void
itimer_proc_continue(struct proc * p)935 itimer_proc_continue(struct proc *p)
936 {
937 struct timeval ctv;
938 struct itimer *it;
939 int id;
940
941 PROC_LOCK_ASSERT(p, MA_OWNED);
942
943 if ((p->p_flag2 & P2_ITSTOPPED) != 0) {
944 p->p_flag2 &= ~P2_ITSTOPPED;
945 microuptime(&ctv);
946 if (timevalcmp(&p->p_realtimer.it_value, &ctv, >=))
947 realitexpire(p);
948 else
949 realitexpire_reset_callout(p, NULL);
950 }
951
952 if (p->p_itimers != NULL) {
953 for (id = 3; id < TIMER_MAX; id++) {
954 it = p->p_itimers->its_timers[id];
955 if (it == NULL)
956 continue;
957 if ((it->it_flags & ITF_PSTOPPED) != 0) {
958 ITIMER_LOCK(it);
959 if ((it->it_flags & ITF_PSTOPPED) != 0) {
960 it->it_flags &= ~ITF_PSTOPPED;
961 if ((it->it_flags & ITF_DELETING) == 0)
962 realtimer_expire_l(it, true);
963 }
964 ITIMER_UNLOCK(it);
965 }
966 }
967 }
968 }
969
970 /*
971 * Real interval timer expired:
972 * send process whose timer expired an alarm signal.
973 * If time is not set up to reload, then just return.
974 * Else compute next time timer should go off which is > current time.
975 * This is where delay in processing this timeout causes multiple
976 * SIGALRM calls to be compressed into one.
977 * tvtohz() always adds 1 to allow for the time until the next clock
978 * interrupt being strictly less than 1 clock tick, but we don't want
979 * that here since we want to appear to be in sync with the clock
980 * interrupt even when we're delayed.
981 */
982 static void
realitexpire(void * arg)983 realitexpire(void *arg)
984 {
985 struct proc *p;
986 struct timeval ctv;
987 sbintime_t isbt;
988
989 p = (struct proc *)arg;
990 kern_psignal(p, SIGALRM);
991 if (!timevalisset(&p->p_realtimer.it_interval)) {
992 timevalclear(&p->p_realtimer.it_value);
993 return;
994 }
995
996 isbt = tvtosbt(p->p_realtimer.it_interval);
997 if (isbt >= sbt_timethreshold)
998 getmicrouptime(&ctv);
999 else
1000 microuptime(&ctv);
1001 do {
1002 timevaladd(&p->p_realtimer.it_value,
1003 &p->p_realtimer.it_interval);
1004 } while (timevalcmp(&p->p_realtimer.it_value, &ctv, <=));
1005
1006 if (P_SHOULDSTOP(p) || P_KILLED(p)) {
1007 p->p_flag2 |= P2_ITSTOPPED;
1008 return;
1009 }
1010
1011 p->p_flag2 &= ~P2_ITSTOPPED;
1012 realitexpire_reset_callout(p, &isbt);
1013 }
1014
1015 /*
1016 * Check that a proposed value to load into the .it_value or
1017 * .it_interval part of an interval timer is acceptable, and
1018 * fix it to have at least minimal value (i.e. if it is less
1019 * than the resolution of the clock, round it up.)
1020 */
1021 int
itimerfix(struct timeval * tv)1022 itimerfix(struct timeval *tv)
1023 {
1024
1025 if (tv->tv_sec < 0 || tv->tv_usec < 0 || tv->tv_usec >= 1000000)
1026 return (EINVAL);
1027 if (tv->tv_sec == 0 && tv->tv_usec != 0 &&
1028 tv->tv_usec < (u_int)tick / 16)
1029 tv->tv_usec = (u_int)tick / 16;
1030 return (0);
1031 }
1032
1033 /*
1034 * Decrement an interval timer by a specified number
1035 * of microseconds, which must be less than a second,
1036 * i.e. < 1000000. If the timer expires, then reload
1037 * it. In this case, carry over (usec - old value) to
1038 * reduce the value reloaded into the timer so that
1039 * the timer does not drift. This routine assumes
1040 * that it is called in a context where the timers
1041 * on which it is operating cannot change in value.
1042 */
1043 int
itimerdecr(struct itimerval * itp,int usec)1044 itimerdecr(struct itimerval *itp, int usec)
1045 {
1046
1047 if (itp->it_value.tv_usec < usec) {
1048 if (itp->it_value.tv_sec == 0) {
1049 /* expired, and already in next interval */
1050 usec -= itp->it_value.tv_usec;
1051 goto expire;
1052 }
1053 itp->it_value.tv_usec += 1000000;
1054 itp->it_value.tv_sec--;
1055 }
1056 itp->it_value.tv_usec -= usec;
1057 usec = 0;
1058 if (timevalisset(&itp->it_value))
1059 return (1);
1060 /* expired, exactly at end of interval */
1061 expire:
1062 if (timevalisset(&itp->it_interval)) {
1063 itp->it_value = itp->it_interval;
1064 itp->it_value.tv_usec -= usec;
1065 if (itp->it_value.tv_usec < 0) {
1066 itp->it_value.tv_usec += 1000000;
1067 itp->it_value.tv_sec--;
1068 }
1069 } else
1070 itp->it_value.tv_usec = 0; /* sec is already 0 */
1071 return (0);
1072 }
1073
1074 /*
1075 * Add and subtract routines for timevals.
1076 * N.B.: subtract routine doesn't deal with
1077 * results which are before the beginning,
1078 * it just gets very confused in this case.
1079 * Caveat emptor.
1080 */
1081 void
timevaladd(struct timeval * t1,const struct timeval * t2)1082 timevaladd(struct timeval *t1, const struct timeval *t2)
1083 {
1084
1085 t1->tv_sec += t2->tv_sec;
1086 t1->tv_usec += t2->tv_usec;
1087 timevalfix(t1);
1088 }
1089
1090 void
timevalsub(struct timeval * t1,const struct timeval * t2)1091 timevalsub(struct timeval *t1, const struct timeval *t2)
1092 {
1093
1094 t1->tv_sec -= t2->tv_sec;
1095 t1->tv_usec -= t2->tv_usec;
1096 timevalfix(t1);
1097 }
1098
1099 static void
timevalfix(struct timeval * t1)1100 timevalfix(struct timeval *t1)
1101 {
1102
1103 if (t1->tv_usec < 0) {
1104 t1->tv_sec--;
1105 t1->tv_usec += 1000000;
1106 }
1107 if (t1->tv_usec >= 1000000) {
1108 t1->tv_sec++;
1109 t1->tv_usec -= 1000000;
1110 }
1111 }
1112
1113 /*
1114 * ratecheck(): simple time-based rate-limit checking.
1115 */
1116 int
ratecheck(struct timeval * lasttime,const struct timeval * mininterval)1117 ratecheck(struct timeval *lasttime, const struct timeval *mininterval)
1118 {
1119 struct timeval tv, delta;
1120 int rv = 0;
1121
1122 getmicrouptime(&tv); /* NB: 10ms precision */
1123 delta = tv;
1124 timevalsub(&delta, lasttime);
1125
1126 /*
1127 * check for 0,0 is so that the message will be seen at least once,
1128 * even if interval is huge.
1129 */
1130 if (timevalcmp(&delta, mininterval, >=) ||
1131 (lasttime->tv_sec == 0 && lasttime->tv_usec == 0)) {
1132 *lasttime = tv;
1133 rv = 1;
1134 }
1135
1136 return (rv);
1137 }
1138
1139 /*
1140 * eventratecheck(): events per second limitation.
1141 *
1142 * Return 0 if the limit is to be enforced (e.g. the caller
1143 * should ignore the event because of the rate limitation).
1144 *
1145 * maxeps of 0 always causes zero to be returned. maxeps of -1
1146 * always causes 1 to be returned; this effectively defeats rate
1147 * limiting.
1148 *
1149 * Note that we maintain the struct timeval for compatibility
1150 * with other bsd systems. We reuse the storage and just monitor
1151 * clock ticks for minimal overhead.
1152 */
1153 int
eventratecheck(struct timeval * lasttime,int * cureps,int maxeps)1154 eventratecheck(struct timeval *lasttime, int *cureps, int maxeps)
1155 {
1156 int now;
1157
1158 /*
1159 * Reset the last time and counter if this is the first call
1160 * or more than a second has passed since the last update of
1161 * lasttime.
1162 */
1163 now = ticks;
1164 if (lasttime->tv_sec == 0 || (u_int)(now - lasttime->tv_sec) >= hz) {
1165 lasttime->tv_sec = now;
1166 *cureps = 1;
1167 return (maxeps != 0);
1168 } else {
1169 (*cureps)++; /* NB: ignore potential overflow */
1170 return (maxeps < 0 || *cureps <= maxeps);
1171 }
1172 }
1173
1174 static void
itimer_start(void * dummy __unused)1175 itimer_start(void *dummy __unused)
1176 {
1177 static const struct kclock rt_clock = {
1178 .timer_create = realtimer_create,
1179 .timer_delete = realtimer_delete,
1180 .timer_settime = realtimer_settime,
1181 .timer_gettime = realtimer_gettime,
1182 };
1183
1184 itimer_zone = uma_zcreate("itimer", sizeof(struct itimer),
1185 NULL, NULL, itimer_init, itimer_fini, UMA_ALIGN_PTR, 0);
1186 register_posix_clock(CLOCK_REALTIME, &rt_clock);
1187 register_posix_clock(CLOCK_MONOTONIC, &rt_clock);
1188 register_posix_clock(CLOCK_UPTIME, &rt_clock);
1189 register_posix_clock(CLOCK_TAI, &rt_clock);
1190 p31b_setcfg(CTL_P1003_1B_TIMERS, 200112L);
1191 p31b_setcfg(CTL_P1003_1B_DELAYTIMER_MAX, INT_MAX);
1192 p31b_setcfg(CTL_P1003_1B_TIMER_MAX, TIMER_MAX);
1193 }
1194
1195 static int
register_posix_clock(int clockid,const struct kclock * clk)1196 register_posix_clock(int clockid, const struct kclock *clk)
1197 {
1198 if ((unsigned)clockid >= MAX_CLOCKS) {
1199 printf("%s: invalid clockid\n", __func__);
1200 return (0);
1201 }
1202 posix_clocks[clockid] = *clk;
1203 return (1);
1204 }
1205
1206 static int
itimer_init(void * mem,int size,int flags)1207 itimer_init(void *mem, int size, int flags)
1208 {
1209 struct itimer *it;
1210
1211 it = (struct itimer *)mem;
1212 mtx_init(&it->it_mtx, "itimer lock", NULL, MTX_DEF);
1213 return (0);
1214 }
1215
1216 static void
itimer_fini(void * mem,int size)1217 itimer_fini(void *mem, int size)
1218 {
1219 struct itimer *it;
1220
1221 it = (struct itimer *)mem;
1222 mtx_destroy(&it->it_mtx);
1223 }
1224
1225 static void
itimer_enter(struct itimer * it)1226 itimer_enter(struct itimer *it)
1227 {
1228
1229 mtx_assert(&it->it_mtx, MA_OWNED);
1230 it->it_usecount++;
1231 }
1232
1233 static void
itimer_leave(struct itimer * it)1234 itimer_leave(struct itimer *it)
1235 {
1236
1237 mtx_assert(&it->it_mtx, MA_OWNED);
1238 KASSERT(it->it_usecount > 0, ("invalid it_usecount"));
1239
1240 if (--it->it_usecount == 0 && (it->it_flags & ITF_WANTED) != 0)
1241 wakeup(it);
1242 }
1243
1244 #ifndef _SYS_SYSPROTO_H_
1245 struct ktimer_create_args {
1246 clockid_t clock_id;
1247 struct sigevent * evp;
1248 int * timerid;
1249 };
1250 #endif
1251 int
sys_ktimer_create(struct thread * td,struct ktimer_create_args * uap)1252 sys_ktimer_create(struct thread *td, struct ktimer_create_args *uap)
1253 {
1254 struct sigevent *evp, ev;
1255 int id;
1256 int error;
1257
1258 if (uap->evp == NULL) {
1259 evp = NULL;
1260 } else {
1261 error = copyin(uap->evp, &ev, sizeof(ev));
1262 if (error != 0)
1263 return (error);
1264 evp = &ev;
1265 }
1266 error = kern_ktimer_create(td, uap->clock_id, evp, &id, -1);
1267 if (error == 0) {
1268 error = copyout(&id, uap->timerid, sizeof(int));
1269 if (error != 0)
1270 kern_ktimer_delete(td, id);
1271 }
1272 return (error);
1273 }
1274
1275 int
kern_ktimer_create(struct thread * td,clockid_t clock_id,struct sigevent * evp,int * timerid,int preset_id)1276 kern_ktimer_create(struct thread *td, clockid_t clock_id, struct sigevent *evp,
1277 int *timerid, int preset_id)
1278 {
1279 struct proc *p = td->td_proc;
1280 struct itimer *it;
1281 int id;
1282 int error;
1283
1284 if (clock_id < 0 || clock_id >= MAX_CLOCKS)
1285 return (EINVAL);
1286
1287 if (posix_clocks[clock_id].timer_create == NULL)
1288 return (EINVAL);
1289
1290 if (evp != NULL) {
1291 if (evp->sigev_notify != SIGEV_NONE &&
1292 evp->sigev_notify != SIGEV_SIGNAL &&
1293 evp->sigev_notify != SIGEV_THREAD_ID)
1294 return (EINVAL);
1295 if ((evp->sigev_notify == SIGEV_SIGNAL ||
1296 evp->sigev_notify == SIGEV_THREAD_ID) &&
1297 !_SIG_VALID(evp->sigev_signo))
1298 return (EINVAL);
1299 }
1300
1301 if (p->p_itimers == NULL)
1302 itimers_alloc(p);
1303
1304 it = uma_zalloc(itimer_zone, M_WAITOK);
1305 it->it_flags = 0;
1306 it->it_usecount = 0;
1307 timespecclear(&it->it_time.it_value);
1308 timespecclear(&it->it_time.it_interval);
1309 it->it_overrun = 0;
1310 it->it_overrun_last = 0;
1311 it->it_clockid = clock_id;
1312 it->it_proc = p;
1313 ksiginfo_init(&it->it_ksi);
1314 it->it_ksi.ksi_flags |= KSI_INS | KSI_EXT;
1315 error = CLOCK_CALL(clock_id, timer_create, (it));
1316 if (error != 0)
1317 goto out;
1318
1319 PROC_LOCK(p);
1320 if (preset_id != -1) {
1321 KASSERT(preset_id >= 0 && preset_id < 3, ("invalid preset_id"));
1322 id = preset_id;
1323 if (p->p_itimers->its_timers[id] != NULL) {
1324 PROC_UNLOCK(p);
1325 error = 0;
1326 goto out;
1327 }
1328 } else {
1329 /*
1330 * Find a free timer slot, skipping those reserved
1331 * for setitimer().
1332 */
1333 for (id = 3; id < TIMER_MAX; id++)
1334 if (p->p_itimers->its_timers[id] == NULL)
1335 break;
1336 if (id == TIMER_MAX) {
1337 PROC_UNLOCK(p);
1338 error = EAGAIN;
1339 goto out;
1340 }
1341 }
1342 p->p_itimers->its_timers[id] = it;
1343 if (evp != NULL)
1344 it->it_sigev = *evp;
1345 else {
1346 it->it_sigev.sigev_notify = SIGEV_SIGNAL;
1347 switch (clock_id) {
1348 default:
1349 case CLOCK_REALTIME:
1350 case CLOCK_TAI:
1351 it->it_sigev.sigev_signo = SIGALRM;
1352 break;
1353 case CLOCK_VIRTUAL:
1354 it->it_sigev.sigev_signo = SIGVTALRM;
1355 break;
1356 case CLOCK_PROF:
1357 it->it_sigev.sigev_signo = SIGPROF;
1358 break;
1359 }
1360 it->it_sigev.sigev_value.sival_int = id;
1361 }
1362
1363 if (it->it_sigev.sigev_notify == SIGEV_SIGNAL ||
1364 it->it_sigev.sigev_notify == SIGEV_THREAD_ID) {
1365 it->it_ksi.ksi_signo = it->it_sigev.sigev_signo;
1366 it->it_ksi.ksi_code = SI_TIMER;
1367 it->it_ksi.ksi_value = it->it_sigev.sigev_value;
1368 it->it_ksi.ksi_timerid = id;
1369 }
1370 PROC_UNLOCK(p);
1371 *timerid = id;
1372 return (0);
1373
1374 out:
1375 ITIMER_LOCK(it);
1376 CLOCK_CALL(it->it_clockid, timer_delete, (it));
1377 ITIMER_UNLOCK(it);
1378 uma_zfree(itimer_zone, it);
1379 return (error);
1380 }
1381
1382 #ifndef _SYS_SYSPROTO_H_
1383 struct ktimer_delete_args {
1384 int timerid;
1385 };
1386 #endif
1387 int
sys_ktimer_delete(struct thread * td,struct ktimer_delete_args * uap)1388 sys_ktimer_delete(struct thread *td, struct ktimer_delete_args *uap)
1389 {
1390
1391 return (kern_ktimer_delete(td, uap->timerid));
1392 }
1393
1394 static struct itimer *
itimer_find(struct proc * p,int timerid)1395 itimer_find(struct proc *p, int timerid)
1396 {
1397 struct itimer *it;
1398
1399 PROC_LOCK_ASSERT(p, MA_OWNED);
1400 if ((p->p_itimers == NULL) ||
1401 (timerid < 0) || (timerid >= TIMER_MAX) ||
1402 (it = p->p_itimers->its_timers[timerid]) == NULL) {
1403 return (NULL);
1404 }
1405 ITIMER_LOCK(it);
1406 if ((it->it_flags & ITF_DELETING) != 0) {
1407 ITIMER_UNLOCK(it);
1408 it = NULL;
1409 }
1410 return (it);
1411 }
1412
1413 int
kern_ktimer_delete(struct thread * td,int timerid)1414 kern_ktimer_delete(struct thread *td, int timerid)
1415 {
1416 struct proc *p = td->td_proc;
1417 struct itimer *it;
1418
1419 PROC_LOCK(p);
1420 it = itimer_find(p, timerid);
1421 if (it == NULL) {
1422 PROC_UNLOCK(p);
1423 return (EINVAL);
1424 }
1425 PROC_UNLOCK(p);
1426
1427 it->it_flags |= ITF_DELETING;
1428 while (it->it_usecount > 0) {
1429 it->it_flags |= ITF_WANTED;
1430 msleep(it, &it->it_mtx, PPAUSE, "itimer", 0);
1431 }
1432 it->it_flags &= ~ITF_WANTED;
1433 CLOCK_CALL(it->it_clockid, timer_delete, (it));
1434 ITIMER_UNLOCK(it);
1435
1436 PROC_LOCK(p);
1437 if (KSI_ONQ(&it->it_ksi))
1438 sigqueue_take(&it->it_ksi);
1439 p->p_itimers->its_timers[timerid] = NULL;
1440 PROC_UNLOCK(p);
1441 uma_zfree(itimer_zone, it);
1442 return (0);
1443 }
1444
1445 #ifndef _SYS_SYSPROTO_H_
1446 struct ktimer_settime_args {
1447 int timerid;
1448 int flags;
1449 const struct itimerspec * value;
1450 struct itimerspec * ovalue;
1451 };
1452 #endif
1453 int
sys_ktimer_settime(struct thread * td,struct ktimer_settime_args * uap)1454 sys_ktimer_settime(struct thread *td, struct ktimer_settime_args *uap)
1455 {
1456 struct itimerspec val, oval, *ovalp;
1457 int error;
1458
1459 error = copyin(uap->value, &val, sizeof(val));
1460 if (error != 0)
1461 return (error);
1462 ovalp = uap->ovalue != NULL ? &oval : NULL;
1463 error = kern_ktimer_settime(td, uap->timerid, uap->flags, &val, ovalp);
1464 if (error == 0 && uap->ovalue != NULL)
1465 error = copyout(ovalp, uap->ovalue, sizeof(*ovalp));
1466 return (error);
1467 }
1468
1469 int
kern_ktimer_settime(struct thread * td,int timer_id,int flags,struct itimerspec * val,struct itimerspec * oval)1470 kern_ktimer_settime(struct thread *td, int timer_id, int flags,
1471 struct itimerspec *val, struct itimerspec *oval)
1472 {
1473 struct proc *p;
1474 struct itimer *it;
1475 int error;
1476
1477 p = td->td_proc;
1478 PROC_LOCK(p);
1479 if (timer_id < 3 || (it = itimer_find(p, timer_id)) == NULL) {
1480 PROC_UNLOCK(p);
1481 error = EINVAL;
1482 } else {
1483 PROC_UNLOCK(p);
1484 itimer_enter(it);
1485 error = CLOCK_CALL(it->it_clockid, timer_settime, (it,
1486 flags, val, oval));
1487 itimer_leave(it);
1488 ITIMER_UNLOCK(it);
1489 }
1490 return (error);
1491 }
1492
1493 #ifndef _SYS_SYSPROTO_H_
1494 struct ktimer_gettime_args {
1495 int timerid;
1496 struct itimerspec * value;
1497 };
1498 #endif
1499 int
sys_ktimer_gettime(struct thread * td,struct ktimer_gettime_args * uap)1500 sys_ktimer_gettime(struct thread *td, struct ktimer_gettime_args *uap)
1501 {
1502 struct itimerspec val;
1503 int error;
1504
1505 error = kern_ktimer_gettime(td, uap->timerid, &val);
1506 if (error == 0)
1507 error = copyout(&val, uap->value, sizeof(val));
1508 return (error);
1509 }
1510
1511 int
kern_ktimer_gettime(struct thread * td,int timer_id,struct itimerspec * val)1512 kern_ktimer_gettime(struct thread *td, int timer_id, struct itimerspec *val)
1513 {
1514 struct proc *p;
1515 struct itimer *it;
1516 int error;
1517
1518 p = td->td_proc;
1519 PROC_LOCK(p);
1520 if (timer_id < 3 || (it = itimer_find(p, timer_id)) == NULL) {
1521 PROC_UNLOCK(p);
1522 error = EINVAL;
1523 } else {
1524 PROC_UNLOCK(p);
1525 itimer_enter(it);
1526 error = CLOCK_CALL(it->it_clockid, timer_gettime, (it, val));
1527 itimer_leave(it);
1528 ITIMER_UNLOCK(it);
1529 }
1530 return (error);
1531 }
1532
1533 #ifndef _SYS_SYSPROTO_H_
1534 struct timer_getoverrun_args {
1535 int timerid;
1536 };
1537 #endif
1538 int
sys_ktimer_getoverrun(struct thread * td,struct ktimer_getoverrun_args * uap)1539 sys_ktimer_getoverrun(struct thread *td, struct ktimer_getoverrun_args *uap)
1540 {
1541
1542 return (kern_ktimer_getoverrun(td, uap->timerid));
1543 }
1544
1545 int
kern_ktimer_getoverrun(struct thread * td,int timer_id)1546 kern_ktimer_getoverrun(struct thread *td, int timer_id)
1547 {
1548 struct proc *p = td->td_proc;
1549 struct itimer *it;
1550 int error ;
1551
1552 PROC_LOCK(p);
1553 if (timer_id < 3 ||
1554 (it = itimer_find(p, timer_id)) == NULL) {
1555 PROC_UNLOCK(p);
1556 error = EINVAL;
1557 } else {
1558 td->td_retval[0] = it->it_overrun_last;
1559 ITIMER_UNLOCK(it);
1560 PROC_UNLOCK(p);
1561 error = 0;
1562 }
1563 return (error);
1564 }
1565
1566 static int
realtimer_create(struct itimer * it)1567 realtimer_create(struct itimer *it)
1568 {
1569 callout_init_mtx(&it->it_callout, &it->it_mtx, 0);
1570 return (0);
1571 }
1572
1573 static int
realtimer_delete(struct itimer * it)1574 realtimer_delete(struct itimer *it)
1575 {
1576 mtx_assert(&it->it_mtx, MA_OWNED);
1577
1578 /*
1579 * clear timer's value and interval to tell realtimer_expire
1580 * to not rearm the timer.
1581 */
1582 timespecclear(&it->it_time.it_value);
1583 timespecclear(&it->it_time.it_interval);
1584 ITIMER_UNLOCK(it);
1585 callout_drain(&it->it_callout);
1586 ITIMER_LOCK(it);
1587 return (0);
1588 }
1589
1590 static int
realtimer_gettime(struct itimer * it,struct itimerspec * ovalue)1591 realtimer_gettime(struct itimer *it, struct itimerspec *ovalue)
1592 {
1593 struct timespec cts;
1594 int error;
1595
1596 mtx_assert(&it->it_mtx, MA_OWNED);
1597
1598 error = kern_clock_gettime(curthread, it->it_clockid, &cts);
1599 if (error != 0)
1600 return (error);
1601
1602 *ovalue = it->it_time;
1603 if (ovalue->it_value.tv_sec != 0 || ovalue->it_value.tv_nsec != 0) {
1604 timespecsub(&ovalue->it_value, &cts, &ovalue->it_value);
1605 if (ovalue->it_value.tv_sec < 0 ||
1606 (ovalue->it_value.tv_sec == 0 &&
1607 ovalue->it_value.tv_nsec == 0)) {
1608 ovalue->it_value.tv_sec = 0;
1609 ovalue->it_value.tv_nsec = 1;
1610 }
1611 }
1612 return (0);
1613 }
1614
1615 static int
realtimer_settime(struct itimer * it,int flags,struct itimerspec * value,struct itimerspec * ovalue)1616 realtimer_settime(struct itimer *it, int flags, struct itimerspec *value,
1617 struct itimerspec *ovalue)
1618 {
1619 struct timespec cts, ts;
1620 struct timeval tv;
1621 struct itimerspec val;
1622 int error;
1623
1624 mtx_assert(&it->it_mtx, MA_OWNED);
1625
1626 val = *value;
1627 if (itimespecfix(&val.it_value))
1628 return (EINVAL);
1629
1630 if (timespecisset(&val.it_value)) {
1631 if (itimespecfix(&val.it_interval))
1632 return (EINVAL);
1633 } else {
1634 timespecclear(&val.it_interval);
1635 }
1636
1637 if (ovalue != NULL)
1638 realtimer_gettime(it, ovalue);
1639
1640 it->it_time = val;
1641 if (timespecisset(&val.it_value)) {
1642 error = kern_clock_gettime(curthread, it->it_clockid, &cts);
1643 if (error != 0)
1644 return (error);
1645
1646 ts = val.it_value;
1647 if ((flags & TIMER_ABSTIME) == 0) {
1648 /* Convert to absolute time. */
1649 timespecadd(&it->it_time.it_value, &cts,
1650 &it->it_time.it_value);
1651 } else {
1652 timespecsub(&ts, &cts, &ts);
1653 /*
1654 * We don't care if ts is negative, tztohz will
1655 * fix it.
1656 */
1657 }
1658 TIMESPEC_TO_TIMEVAL(&tv, &ts);
1659 callout_reset(&it->it_callout, tvtohz(&tv), realtimer_expire,
1660 it);
1661 } else {
1662 callout_stop(&it->it_callout);
1663 }
1664
1665 return (0);
1666 }
1667
1668 int
itimer_accept(struct proc * p,int timerid,ksiginfo_t * ksi)1669 itimer_accept(struct proc *p, int timerid, ksiginfo_t *ksi)
1670 {
1671 struct itimer *it;
1672
1673 PROC_LOCK_ASSERT(p, MA_OWNED);
1674 it = itimer_find(p, timerid);
1675 if (it != NULL) {
1676 ksi->ksi_overrun = it->it_overrun;
1677 it->it_overrun_last = it->it_overrun;
1678 it->it_overrun = 0;
1679 ITIMER_UNLOCK(it);
1680 return (0);
1681 }
1682 return (EINVAL);
1683 }
1684
1685 static int
itimespecfix(struct timespec * ts)1686 itimespecfix(struct timespec *ts)
1687 {
1688
1689 if (!timespecvalid_interval(ts))
1690 return (EINVAL);
1691 if ((UINT64_MAX - ts->tv_nsec) / NS_PER_SEC < ts->tv_sec)
1692 return (EINVAL);
1693 if (ts->tv_sec == 0 && ts->tv_nsec != 0 && ts->tv_nsec < tick * 1000)
1694 ts->tv_nsec = tick * 1000;
1695 return (0);
1696 }
1697
1698 #define timespectons(tsp) \
1699 ((uint64_t)(tsp)->tv_sec * NS_PER_SEC + (tsp)->tv_nsec)
1700 #define timespecfromns(ns) (struct timespec){ \
1701 .tv_sec = (ns) / NS_PER_SEC, \
1702 .tv_nsec = (ns) % NS_PER_SEC \
1703 }
1704
1705 static void
realtimer_expire_l(struct itimer * it,bool proc_locked)1706 realtimer_expire_l(struct itimer *it, bool proc_locked)
1707 {
1708 struct timespec cts, ts;
1709 struct timeval tv;
1710 struct proc *p;
1711 uint64_t interval, now, overruns, value;
1712 int error;
1713
1714 error = kern_clock_gettime(curthread, it->it_clockid, &cts);
1715
1716 /* Only fire if time is reached. */
1717 if (error == 0 && timespeccmp(&cts, &it->it_time.it_value, >=)) {
1718 if (timespecisset(&it->it_time.it_interval)) {
1719 timespecadd(&it->it_time.it_value,
1720 &it->it_time.it_interval,
1721 &it->it_time.it_value);
1722
1723 interval = timespectons(&it->it_time.it_interval);
1724 value = timespectons(&it->it_time.it_value);
1725 now = timespectons(&cts);
1726
1727 if (now >= value) {
1728 /*
1729 * We missed at least one period.
1730 */
1731 overruns = howmany(now - value + 1, interval);
1732 if (it->it_overrun + overruns >=
1733 it->it_overrun &&
1734 it->it_overrun + overruns <= INT_MAX) {
1735 it->it_overrun += (int)overruns;
1736 } else {
1737 it->it_overrun = INT_MAX;
1738 it->it_ksi.ksi_errno = ERANGE;
1739 }
1740 value =
1741 now + interval - (now - value) % interval;
1742 it->it_time.it_value = timespecfromns(value);
1743 }
1744 } else {
1745 /* single shot timer ? */
1746 timespecclear(&it->it_time.it_value);
1747 }
1748
1749 p = it->it_proc;
1750 if (timespecisset(&it->it_time.it_value)) {
1751 if (P_SHOULDSTOP(p) || P_KILLED(p)) {
1752 it->it_flags |= ITF_PSTOPPED;
1753 } else {
1754 timespecsub(&it->it_time.it_value, &cts, &ts);
1755 TIMESPEC_TO_TIMEVAL(&tv, &ts);
1756 callout_reset(&it->it_callout, tvtohz(&tv),
1757 realtimer_expire, it);
1758 }
1759 }
1760
1761 itimer_enter(it);
1762 ITIMER_UNLOCK(it);
1763 if (proc_locked)
1764 PROC_UNLOCK(p);
1765 itimer_fire(it);
1766 if (proc_locked)
1767 PROC_LOCK(p);
1768 ITIMER_LOCK(it);
1769 itimer_leave(it);
1770 } else if (timespecisset(&it->it_time.it_value)) {
1771 p = it->it_proc;
1772 if (P_SHOULDSTOP(p) || P_KILLED(p)) {
1773 it->it_flags |= ITF_PSTOPPED;
1774 } else {
1775 ts = it->it_time.it_value;
1776 timespecsub(&ts, &cts, &ts);
1777 TIMESPEC_TO_TIMEVAL(&tv, &ts);
1778 callout_reset(&it->it_callout, tvtohz(&tv),
1779 realtimer_expire, it);
1780 }
1781 }
1782 }
1783
1784 /* Timeout callback for realtime timer */
1785 static void
realtimer_expire(void * arg)1786 realtimer_expire(void *arg)
1787 {
1788 realtimer_expire_l(arg, false);
1789 }
1790
1791 static void
itimer_fire(struct itimer * it)1792 itimer_fire(struct itimer *it)
1793 {
1794 struct proc *p = it->it_proc;
1795 struct thread *td;
1796
1797 if (it->it_sigev.sigev_notify == SIGEV_SIGNAL ||
1798 it->it_sigev.sigev_notify == SIGEV_THREAD_ID) {
1799 if (sigev_findtd(p, &it->it_sigev, &td) != 0) {
1800 ITIMER_LOCK(it);
1801 timespecclear(&it->it_time.it_value);
1802 timespecclear(&it->it_time.it_interval);
1803 callout_stop(&it->it_callout);
1804 ITIMER_UNLOCK(it);
1805 return;
1806 }
1807 if (!KSI_ONQ(&it->it_ksi)) {
1808 it->it_ksi.ksi_errno = 0;
1809 ksiginfo_set_sigev(&it->it_ksi, &it->it_sigev);
1810 tdsendsignal(p, td, it->it_ksi.ksi_signo, &it->it_ksi);
1811 } else {
1812 if (it->it_overrun < INT_MAX)
1813 it->it_overrun++;
1814 else
1815 it->it_ksi.ksi_errno = ERANGE;
1816 }
1817 PROC_UNLOCK(p);
1818 }
1819 }
1820
1821 static void
itimers_alloc(struct proc * p)1822 itimers_alloc(struct proc *p)
1823 {
1824 struct itimers *its;
1825
1826 its = malloc(sizeof (struct itimers), M_SUBPROC, M_WAITOK | M_ZERO);
1827 PROC_LOCK(p);
1828 if (p->p_itimers == NULL) {
1829 p->p_itimers = its;
1830 PROC_UNLOCK(p);
1831 }
1832 else {
1833 PROC_UNLOCK(p);
1834 free(its, M_SUBPROC);
1835 }
1836 }
1837
1838 /* Clean up timers when some process events are being triggered. */
1839 static void
itimers_event_exit_exec(int start_idx,struct proc * p)1840 itimers_event_exit_exec(int start_idx, struct proc *p)
1841 {
1842 struct itimers *its;
1843 struct itimer *it;
1844 int i;
1845
1846 its = p->p_itimers;
1847 if (its == NULL)
1848 return;
1849
1850 for (i = start_idx; i < TIMER_MAX; ++i) {
1851 if ((it = its->its_timers[i]) != NULL)
1852 kern_ktimer_delete(curthread, i);
1853 }
1854 if (its->its_timers[0] == NULL && its->its_timers[1] == NULL &&
1855 its->its_timers[2] == NULL) {
1856 /* Synchronize with itimer_proc_continue(). */
1857 PROC_LOCK(p);
1858 p->p_itimers = NULL;
1859 PROC_UNLOCK(p);
1860 free(its, M_SUBPROC);
1861 }
1862 }
1863
1864 void
itimers_exec(struct proc * p)1865 itimers_exec(struct proc *p)
1866 {
1867 /*
1868 * According to susv3, XSI interval timers should be inherited
1869 * by new image.
1870 */
1871 itimers_event_exit_exec(3, p);
1872 }
1873
1874 void
itimers_exit(struct proc * p)1875 itimers_exit(struct proc *p)
1876 {
1877 itimers_event_exit_exec(0, p);
1878 }
1879