kern_time.c revision 1.88.2.2 1 1.88.2.2 tron /* $NetBSD: kern_time.c,v 1.88.2.2 2005/12/06 23:33:19 tron Exp $ */
2 1.42 cgd
3 1.42 cgd /*-
4 1.88 mycroft * Copyright (c) 2000, 2004, 2005 The NetBSD Foundation, Inc.
5 1.42 cgd * All rights reserved.
6 1.42 cgd *
7 1.42 cgd * This code is derived from software contributed to The NetBSD Foundation
8 1.42 cgd * by Christopher G. Demetriou.
9 1.42 cgd *
10 1.42 cgd * Redistribution and use in source and binary forms, with or without
11 1.42 cgd * modification, are permitted provided that the following conditions
12 1.42 cgd * are met:
13 1.42 cgd * 1. Redistributions of source code must retain the above copyright
14 1.42 cgd * notice, this list of conditions and the following disclaimer.
15 1.42 cgd * 2. Redistributions in binary form must reproduce the above copyright
16 1.42 cgd * notice, this list of conditions and the following disclaimer in the
17 1.42 cgd * documentation and/or other materials provided with the distribution.
18 1.42 cgd * 3. All advertising materials mentioning features or use of this software
19 1.42 cgd * must display the following acknowledgement:
20 1.42 cgd * This product includes software developed by the NetBSD
21 1.42 cgd * Foundation, Inc. and its contributors.
22 1.42 cgd * 4. Neither the name of The NetBSD Foundation nor the names of its
23 1.42 cgd * contributors may be used to endorse or promote products derived
24 1.42 cgd * from this software without specific prior written permission.
25 1.42 cgd *
26 1.42 cgd * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
27 1.42 cgd * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
28 1.42 cgd * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
29 1.42 cgd * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
30 1.42 cgd * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 1.42 cgd * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
32 1.42 cgd * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
33 1.42 cgd * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
34 1.42 cgd * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
35 1.42 cgd * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
36 1.42 cgd * POSSIBILITY OF SUCH DAMAGE.
37 1.42 cgd */
38 1.9 cgd
39 1.1 cgd /*
40 1.8 cgd * Copyright (c) 1982, 1986, 1989, 1993
41 1.8 cgd * The Regents of the University of California. All rights reserved.
42 1.1 cgd *
43 1.1 cgd * Redistribution and use in source and binary forms, with or without
44 1.1 cgd * modification, are permitted provided that the following conditions
45 1.1 cgd * are met:
46 1.1 cgd * 1. Redistributions of source code must retain the above copyright
47 1.1 cgd * notice, this list of conditions and the following disclaimer.
48 1.1 cgd * 2. Redistributions in binary form must reproduce the above copyright
49 1.1 cgd * notice, this list of conditions and the following disclaimer in the
50 1.1 cgd * documentation and/or other materials provided with the distribution.
51 1.72 agc * 3. Neither the name of the University nor the names of its contributors
52 1.1 cgd * may be used to endorse or promote products derived from this software
53 1.1 cgd * without specific prior written permission.
54 1.1 cgd *
55 1.1 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
56 1.1 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
57 1.1 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
58 1.1 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
59 1.1 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
60 1.1 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
61 1.1 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
62 1.1 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
63 1.1 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
64 1.1 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
65 1.1 cgd * SUCH DAMAGE.
66 1.1 cgd *
67 1.33 fvdl * @(#)kern_time.c 8.4 (Berkeley) 5/26/95
68 1.1 cgd */
69 1.58 lukem
70 1.58 lukem #include <sys/cdefs.h>
71 1.88.2.2 tron __KERNEL_RCSID(0, "$NetBSD: kern_time.c,v 1.88.2.2 2005/12/06 23:33:19 tron Exp $");
72 1.31 thorpej
73 1.31 thorpej #include "fs_nfs.h"
74 1.54 bjh21 #include "opt_nfs.h"
75 1.34 thorpej #include "opt_nfsserver.h"
76 1.1 cgd
77 1.5 mycroft #include <sys/param.h>
78 1.5 mycroft #include <sys/resourcevar.h>
79 1.5 mycroft #include <sys/kernel.h>
80 1.8 cgd #include <sys/systm.h>
81 1.63 thorpej #include <sys/malloc.h>
82 1.5 mycroft #include <sys/proc.h>
83 1.63 thorpej #include <sys/sa.h>
84 1.63 thorpej #include <sys/savar.h>
85 1.8 cgd #include <sys/vnode.h>
86 1.17 christos #include <sys/signalvar.h>
87 1.25 perry #include <sys/syslog.h>
88 1.1 cgd
89 1.11 cgd #include <sys/mount.h>
90 1.11 cgd #include <sys/syscallargs.h>
91 1.19 christos
92 1.37 thorpej #include <uvm/uvm_extern.h>
93 1.37 thorpej
94 1.26 thorpej #if defined(NFS) || defined(NFSSERVER)
95 1.20 fvdl #include <nfs/rpcv2.h>
96 1.20 fvdl #include <nfs/nfsproto.h>
97 1.19 christos #include <nfs/nfs_var.h>
98 1.19 christos #endif
99 1.17 christos
100 1.5 mycroft #include <machine/cpu.h>
101 1.23 cgd
102 1.63 thorpej static void timerupcall(struct lwp *, void *);
103 1.63 thorpej
104 1.63 thorpej /* Time of day and interval timer support.
105 1.1 cgd *
106 1.1 cgd * These routines provide the kernel entry points to get and set
107 1.1 cgd * the time-of-day and per-process interval timers. Subroutines
108 1.1 cgd * here provide support for adding and subtracting timeval structures
109 1.1 cgd * and decrementing interval timers, optionally reloading the interval
110 1.1 cgd * timers when they expire.
111 1.1 cgd */
112 1.1 cgd
113 1.22 jtc /* This function is used by clock_settime and settimeofday */
114 1.39 tron int
115 1.63 thorpej settime(struct timeval *tv)
116 1.22 jtc {
117 1.22 jtc struct timeval delta;
118 1.47 thorpej struct cpu_info *ci;
119 1.22 jtc int s;
120 1.22 jtc
121 1.88.2.2 tron /*
122 1.88.2.2 tron * Don't allow the time to be set forward so far it will wrap
123 1.88.2.2 tron * and become negative, thus allowing an attacker to bypass
124 1.88.2.2 tron * the next check below. The cutoff is 1 year before rollover
125 1.88.2.2 tron * occurs, so even if the attacker uses adjtime(2) to move
126 1.88.2.2 tron * the time past the cutoff, it will take a very long time
127 1.88.2.2 tron * to get to the wrap point.
128 1.88.2.2 tron *
129 1.88.2.2 tron * XXX: we check against INT_MAX since on 64-bit
130 1.88.2.2 tron * platforms, sizeof(int) != sizeof(long) and
131 1.88.2.2 tron * time_t is 32 bits even when atv.tv_sec is 64 bits.
132 1.88.2.2 tron */
133 1.88.2.2 tron if (tv->tv_sec > INT_MAX - 365*24*60*60) {
134 1.88.2.2 tron struct proc *p = curproc();
135 1.88.2.2 tron struct proc *pp = p->p_pptr;
136 1.88.2.2 tron log(LOG_WARNING, "pid %d (%s) "
137 1.88.2.2 tron "invoked by uid %d ppid %d (%s) "
138 1.88.2.2 tron "tried to set clock forward to %ld\n",
139 1.88.2.2 tron p->p_pid, p->p_comm, pp->p_ucred->cr_uid,
140 1.88.2.2 tron pp->p_pid, pp->p_comm, (long)tv->tv_sec);
141 1.88.2.2 tron return (EPERM);
142 1.88.2.2 tron }
143 1.22 jtc /* WHAT DO WE DO ABOUT PENDING REAL-TIME TIMEOUTS??? */
144 1.22 jtc s = splclock();
145 1.22 jtc timersub(tv, &time, &delta);
146 1.55 tron if ((delta.tv_sec < 0 || delta.tv_usec < 0) && securelevel > 1) {
147 1.55 tron splx(s);
148 1.29 tls return (EPERM);
149 1.55 tron }
150 1.29 tls #ifdef notyet
151 1.55 tron if ((delta.tv_sec < 86400) && securelevel > 0) {
152 1.55 tron splx(s);
153 1.29 tls return (EPERM);
154 1.55 tron }
155 1.29 tls #endif
156 1.22 jtc time = *tv;
157 1.38 thorpej (void) spllowersoftclock();
158 1.22 jtc timeradd(&boottime, &delta, &boottime);
159 1.47 thorpej /*
160 1.47 thorpej * XXXSMP
161 1.47 thorpej * This is wrong. We should traverse a list of all
162 1.47 thorpej * CPUs and add the delta to the runtime of those
163 1.47 thorpej * CPUs which have a process on them.
164 1.47 thorpej */
165 1.47 thorpej ci = curcpu();
166 1.47 thorpej timeradd(&ci->ci_schedstate.spc_runtime, &delta,
167 1.47 thorpej &ci->ci_schedstate.spc_runtime);
168 1.54 bjh21 # if (defined(NFS) && !defined (NFS_V2_ONLY)) || defined(NFSSERVER)
169 1.22 jtc nqnfs_lease_updatetime(delta.tv_sec);
170 1.22 jtc # endif
171 1.22 jtc splx(s);
172 1.22 jtc resettodr();
173 1.29 tls return (0);
174 1.22 jtc }
175 1.22 jtc
176 1.22 jtc /* ARGSUSED */
177 1.22 jtc int
178 1.63 thorpej sys_clock_gettime(struct lwp *l, void *v, register_t *retval)
179 1.22 jtc {
180 1.45 augustss struct sys_clock_gettime_args /* {
181 1.22 jtc syscallarg(clockid_t) clock_id;
182 1.23 cgd syscallarg(struct timespec *) tp;
183 1.23 cgd } */ *uap = v;
184 1.22 jtc clockid_t clock_id;
185 1.22 jtc struct timeval atv;
186 1.22 jtc struct timespec ats;
187 1.61 simonb int s;
188 1.22 jtc
189 1.22 jtc clock_id = SCARG(uap, clock_id);
190 1.61 simonb switch (clock_id) {
191 1.61 simonb case CLOCK_REALTIME:
192 1.61 simonb microtime(&atv);
193 1.61 simonb TIMEVAL_TO_TIMESPEC(&atv,&ats);
194 1.61 simonb break;
195 1.61 simonb case CLOCK_MONOTONIC:
196 1.61 simonb /* XXX "hz" granularity */
197 1.63 thorpej s = splclock();
198 1.61 simonb atv = mono_time;
199 1.61 simonb splx(s);
200 1.61 simonb TIMEVAL_TO_TIMESPEC(&atv,&ats);
201 1.61 simonb break;
202 1.61 simonb default:
203 1.22 jtc return (EINVAL);
204 1.61 simonb }
205 1.22 jtc
206 1.24 cgd return copyout(&ats, SCARG(uap, tp), sizeof(ats));
207 1.22 jtc }
208 1.22 jtc
209 1.22 jtc /* ARGSUSED */
210 1.22 jtc int
211 1.63 thorpej sys_clock_settime(l, v, retval)
212 1.63 thorpej struct lwp *l;
213 1.22 jtc void *v;
214 1.22 jtc register_t *retval;
215 1.22 jtc {
216 1.45 augustss struct sys_clock_settime_args /* {
217 1.22 jtc syscallarg(clockid_t) clock_id;
218 1.23 cgd syscallarg(const struct timespec *) tp;
219 1.23 cgd } */ *uap = v;
220 1.63 thorpej struct proc *p = l->l_proc;
221 1.22 jtc int error;
222 1.22 jtc
223 1.22 jtc if ((error = suser(p->p_ucred, &p->p_acflag)) != 0)
224 1.22 jtc return (error);
225 1.22 jtc
226 1.60 manu return (clock_settime1(SCARG(uap, clock_id), SCARG(uap, tp)));
227 1.56 manu }
228 1.56 manu
229 1.56 manu
230 1.56 manu int
231 1.60 manu clock_settime1(clock_id, tp)
232 1.56 manu clockid_t clock_id;
233 1.60 manu const struct timespec *tp;
234 1.56 manu {
235 1.60 manu struct timespec ats;
236 1.56 manu struct timeval atv;
237 1.56 manu int error;
238 1.56 manu
239 1.60 manu if ((error = copyin(tp, &ats, sizeof(ats))) != 0)
240 1.60 manu return (error);
241 1.60 manu
242 1.61 simonb switch (clock_id) {
243 1.61 simonb case CLOCK_REALTIME:
244 1.61 simonb TIMESPEC_TO_TIMEVAL(&atv, &ats);
245 1.61 simonb if ((error = settime(&atv)) != 0)
246 1.61 simonb return (error);
247 1.61 simonb break;
248 1.61 simonb case CLOCK_MONOTONIC:
249 1.61 simonb return (EINVAL); /* read-only clock */
250 1.61 simonb default:
251 1.56 manu return (EINVAL);
252 1.61 simonb }
253 1.22 jtc
254 1.22 jtc return 0;
255 1.22 jtc }
256 1.22 jtc
257 1.22 jtc int
258 1.63 thorpej sys_clock_getres(struct lwp *l, void *v, register_t *retval)
259 1.22 jtc {
260 1.45 augustss struct sys_clock_getres_args /* {
261 1.22 jtc syscallarg(clockid_t) clock_id;
262 1.23 cgd syscallarg(struct timespec *) tp;
263 1.23 cgd } */ *uap = v;
264 1.22 jtc clockid_t clock_id;
265 1.22 jtc struct timespec ts;
266 1.22 jtc int error = 0;
267 1.22 jtc
268 1.22 jtc clock_id = SCARG(uap, clock_id);
269 1.61 simonb switch (clock_id) {
270 1.61 simonb case CLOCK_REALTIME:
271 1.61 simonb case CLOCK_MONOTONIC:
272 1.22 jtc ts.tv_sec = 0;
273 1.22 jtc ts.tv_nsec = 1000000000 / hz;
274 1.61 simonb break;
275 1.61 simonb default:
276 1.61 simonb return (EINVAL);
277 1.61 simonb }
278 1.22 jtc
279 1.61 simonb if (SCARG(uap, tp))
280 1.35 perry error = copyout(&ts, SCARG(uap, tp), sizeof(ts));
281 1.22 jtc
282 1.22 jtc return error;
283 1.22 jtc }
284 1.22 jtc
285 1.27 jtc /* ARGSUSED */
286 1.27 jtc int
287 1.63 thorpej sys_nanosleep(struct lwp *l, void *v, register_t *retval)
288 1.27 jtc {
289 1.27 jtc static int nanowait;
290 1.45 augustss struct sys_nanosleep_args/* {
291 1.27 jtc syscallarg(struct timespec *) rqtp;
292 1.27 jtc syscallarg(struct timespec *) rmtp;
293 1.27 jtc } */ *uap = v;
294 1.27 jtc struct timespec rqt;
295 1.27 jtc struct timespec rmt;
296 1.27 jtc struct timeval atv, utv;
297 1.27 jtc int error, s, timo;
298 1.27 jtc
299 1.27 jtc error = copyin((caddr_t)SCARG(uap, rqtp), (caddr_t)&rqt,
300 1.27 jtc sizeof(struct timespec));
301 1.27 jtc if (error)
302 1.27 jtc return (error);
303 1.27 jtc
304 1.85 atatat TIMESPEC_TO_TIMEVAL(&atv,&rqt);
305 1.80 christos if (itimerfix(&atv))
306 1.27 jtc return (EINVAL);
307 1.27 jtc
308 1.27 jtc s = splclock();
309 1.27 jtc timeradd(&atv,&time,&atv);
310 1.27 jtc timo = hzto(&atv);
311 1.63 thorpej /*
312 1.27 jtc * Avoid inadvertantly sleeping forever
313 1.27 jtc */
314 1.27 jtc if (timo == 0)
315 1.27 jtc timo = 1;
316 1.27 jtc splx(s);
317 1.27 jtc
318 1.27 jtc error = tsleep(&nanowait, PWAIT | PCATCH, "nanosleep", timo);
319 1.27 jtc if (error == ERESTART)
320 1.27 jtc error = EINTR;
321 1.27 jtc if (error == EWOULDBLOCK)
322 1.27 jtc error = 0;
323 1.27 jtc
324 1.27 jtc if (SCARG(uap, rmtp)) {
325 1.28 jtc int error;
326 1.28 jtc
327 1.27 jtc s = splclock();
328 1.27 jtc utv = time;
329 1.27 jtc splx(s);
330 1.27 jtc
331 1.27 jtc timersub(&atv, &utv, &utv);
332 1.27 jtc if (utv.tv_sec < 0)
333 1.27 jtc timerclear(&utv);
334 1.27 jtc
335 1.27 jtc TIMEVAL_TO_TIMESPEC(&utv,&rmt);
336 1.27 jtc error = copyout((caddr_t)&rmt, (caddr_t)SCARG(uap,rmtp),
337 1.28 jtc sizeof(rmt));
338 1.28 jtc if (error)
339 1.28 jtc return (error);
340 1.27 jtc }
341 1.27 jtc
342 1.27 jtc return error;
343 1.27 jtc }
344 1.22 jtc
345 1.1 cgd /* ARGSUSED */
346 1.3 andrew int
347 1.63 thorpej sys_gettimeofday(struct lwp *l, void *v, register_t *retval)
348 1.15 thorpej {
349 1.45 augustss struct sys_gettimeofday_args /* {
350 1.11 cgd syscallarg(struct timeval *) tp;
351 1.84 simonb syscallarg(void *) tzp; really "struct timezone *"
352 1.15 thorpej } */ *uap = v;
353 1.1 cgd struct timeval atv;
354 1.1 cgd int error = 0;
355 1.25 perry struct timezone tzfake;
356 1.1 cgd
357 1.11 cgd if (SCARG(uap, tp)) {
358 1.1 cgd microtime(&atv);
359 1.35 perry error = copyout(&atv, SCARG(uap, tp), sizeof(atv));
360 1.17 christos if (error)
361 1.1 cgd return (error);
362 1.1 cgd }
363 1.25 perry if (SCARG(uap, tzp)) {
364 1.25 perry /*
365 1.32 mycroft * NetBSD has no kernel notion of time zone, so we just
366 1.25 perry * fake up a timezone struct and return it if demanded.
367 1.25 perry */
368 1.25 perry tzfake.tz_minuteswest = 0;
369 1.25 perry tzfake.tz_dsttime = 0;
370 1.35 perry error = copyout(&tzfake, SCARG(uap, tzp), sizeof(tzfake));
371 1.25 perry }
372 1.1 cgd return (error);
373 1.1 cgd }
374 1.1 cgd
375 1.1 cgd /* ARGSUSED */
376 1.3 andrew int
377 1.63 thorpej sys_settimeofday(struct lwp *l, void *v, register_t *retval)
378 1.15 thorpej {
379 1.16 mycroft struct sys_settimeofday_args /* {
380 1.24 cgd syscallarg(const struct timeval *) tv;
381 1.84 simonb syscallarg(const void *) tzp; really "const struct timezone *"
382 1.15 thorpej } */ *uap = v;
383 1.63 thorpej struct proc *p = l->l_proc;
384 1.60 manu int error;
385 1.60 manu
386 1.60 manu if ((error = suser(p->p_ucred, &p->p_acflag)) != 0)
387 1.60 manu return (error);
388 1.60 manu
389 1.60 manu return settimeofday1(SCARG(uap, tv), SCARG(uap, tzp), p);
390 1.60 manu }
391 1.60 manu
392 1.60 manu int
393 1.60 manu settimeofday1(utv, utzp, p)
394 1.60 manu const struct timeval *utv;
395 1.60 manu const struct timezone *utzp;
396 1.60 manu struct proc *p;
397 1.60 manu {
398 1.22 jtc struct timeval atv;
399 1.1 cgd struct timezone atz;
400 1.56 manu struct timeval *tv = NULL;
401 1.56 manu struct timezone *tzp = NULL;
402 1.22 jtc int error;
403 1.1 cgd
404 1.8 cgd /* Verify all parameters before changing time. */
405 1.60 manu if (utv) {
406 1.60 manu if ((error = copyin(utv, &atv, sizeof(atv))) != 0)
407 1.56 manu return (error);
408 1.56 manu tv = &atv;
409 1.56 manu }
410 1.25 perry /* XXX since we don't use tz, probably no point in doing copyin. */
411 1.60 manu if (utzp) {
412 1.60 manu if ((error = copyin(utzp, &atz, sizeof(atz))) != 0)
413 1.56 manu return (error);
414 1.56 manu tzp = &atz;
415 1.56 manu }
416 1.56 manu
417 1.56 manu if (tv)
418 1.56 manu if ((error = settime(tv)) != 0)
419 1.29 tls return (error);
420 1.25 perry /*
421 1.32 mycroft * NetBSD has no kernel notion of time zone, and only an
422 1.25 perry * obsolete program would try to set it, so we log a warning.
423 1.25 perry */
424 1.56 manu if (tzp)
425 1.25 perry log(LOG_WARNING, "pid %d attempted to set the "
426 1.63 thorpej "(obsolete) kernel time zone\n", p->p_pid);
427 1.8 cgd return (0);
428 1.1 cgd }
429 1.1 cgd
430 1.1 cgd int tickdelta; /* current clock skew, us. per tick */
431 1.1 cgd long timedelta; /* unapplied time correction, us. */
432 1.1 cgd long bigadj = 1000000; /* use 10x skew above bigadj us. */
433 1.68 dsl int time_adjusted; /* set if an adjustment is made */
434 1.1 cgd
435 1.1 cgd /* ARGSUSED */
436 1.3 andrew int
437 1.63 thorpej sys_adjtime(struct lwp *l, void *v, register_t *retval)
438 1.15 thorpej {
439 1.45 augustss struct sys_adjtime_args /* {
440 1.24 cgd syscallarg(const struct timeval *) delta;
441 1.11 cgd syscallarg(struct timeval *) olddelta;
442 1.15 thorpej } */ *uap = v;
443 1.63 thorpej struct proc *p = l->l_proc;
444 1.56 manu int error;
445 1.1 cgd
446 1.17 christos if ((error = suser(p->p_ucred, &p->p_acflag)) != 0)
447 1.1 cgd return (error);
448 1.17 christos
449 1.60 manu return adjtime1(SCARG(uap, delta), SCARG(uap, olddelta), p);
450 1.56 manu }
451 1.56 manu
452 1.56 manu int
453 1.56 manu adjtime1(delta, olddelta, p)
454 1.60 manu const struct timeval *delta;
455 1.56 manu struct timeval *olddelta;
456 1.56 manu struct proc *p;
457 1.56 manu {
458 1.60 manu struct timeval atv;
459 1.56 manu long ndelta, ntickdelta, odelta;
460 1.60 manu int error;
461 1.56 manu int s;
462 1.8 cgd
463 1.60 manu error = copyin(delta, &atv, sizeof(struct timeval));
464 1.60 manu if (error)
465 1.60 manu return (error);
466 1.60 manu
467 1.8 cgd /*
468 1.8 cgd * Compute the total correction and the rate at which to apply it.
469 1.8 cgd * Round the adjustment down to a whole multiple of the per-tick
470 1.8 cgd * delta, so that after some number of incremental changes in
471 1.8 cgd * hardclock(), tickdelta will become zero, lest the correction
472 1.8 cgd * overshoot and start taking us away from the desired final time.
473 1.8 cgd */
474 1.60 manu ndelta = atv.tv_sec * 1000000 + atv.tv_usec;
475 1.41 hwr if (ndelta > bigadj || ndelta < -bigadj)
476 1.8 cgd ntickdelta = 10 * tickadj;
477 1.8 cgd else
478 1.8 cgd ntickdelta = tickadj;
479 1.8 cgd if (ndelta % ntickdelta)
480 1.8 cgd ndelta = ndelta / ntickdelta * ntickdelta;
481 1.8 cgd
482 1.8 cgd /*
483 1.8 cgd * To make hardclock()'s job easier, make the per-tick delta negative
484 1.8 cgd * if we want time to run slower; then hardclock can simply compute
485 1.8 cgd * tick + tickdelta, and subtract tickdelta from timedelta.
486 1.8 cgd */
487 1.8 cgd if (ndelta < 0)
488 1.8 cgd ntickdelta = -ntickdelta;
489 1.68 dsl if (ndelta != 0)
490 1.68 dsl /* We need to save the system clock time during shutdown */
491 1.68 dsl time_adjusted |= 1;
492 1.1 cgd s = splclock();
493 1.8 cgd odelta = timedelta;
494 1.1 cgd timedelta = ndelta;
495 1.8 cgd tickdelta = ntickdelta;
496 1.1 cgd splx(s);
497 1.1 cgd
498 1.56 manu if (olddelta) {
499 1.60 manu atv.tv_sec = odelta / 1000000;
500 1.60 manu atv.tv_usec = odelta % 1000000;
501 1.79 chs error = copyout(&atv, olddelta, sizeof(struct timeval));
502 1.8 cgd }
503 1.79 chs return error;
504 1.1 cgd }
505 1.1 cgd
506 1.1 cgd /*
507 1.63 thorpej * Interval timer support. Both the BSD getitimer() family and the POSIX
508 1.63 thorpej * timer_*() family of routines are supported.
509 1.1 cgd *
510 1.63 thorpej * All timers are kept in an array pointed to by p_timers, which is
511 1.63 thorpej * allocated on demand - many processes don't use timers at all. The
512 1.63 thorpej * first three elements in this array are reserved for the BSD timers:
513 1.63 thorpej * element 0 is ITIMER_REAL, element 1 is ITIMER_VIRTUAL, and element
514 1.63 thorpej * 2 is ITIMER_PROF. The rest may be allocated by the timer_create()
515 1.63 thorpej * syscall.
516 1.1 cgd *
517 1.63 thorpej * Realtime timers are kept in the ptimer structure as an absolute
518 1.63 thorpej * time; virtual time timers are kept as a linked list of deltas.
519 1.1 cgd * Virtual time timers are processed in the hardclock() routine of
520 1.63 thorpej * kern_clock.c. The real time timer is processed by a callout
521 1.63 thorpej * routine, called from the softclock() routine. Since a callout may
522 1.63 thorpej * be delayed in real time due to interrupt processing in the system,
523 1.63 thorpej * it is possible for the real time timeout routine (realtimeexpire,
524 1.63 thorpej * given below), to be delayed in real time past when it is supposed
525 1.63 thorpej * to occur. It does not suffice, therefore, to reload the real timer
526 1.63 thorpej * .it_value from the real time timers .it_interval. Rather, we
527 1.63 thorpej * compute the next time in absolute time the timer should go off. */
528 1.63 thorpej
529 1.63 thorpej /* Allocate a POSIX realtime timer. */
530 1.63 thorpej int
531 1.63 thorpej sys_timer_create(struct lwp *l, void *v, register_t *retval)
532 1.63 thorpej {
533 1.63 thorpej struct sys_timer_create_args /* {
534 1.63 thorpej syscallarg(clockid_t) clock_id;
535 1.63 thorpej syscallarg(struct sigevent *) evp;
536 1.63 thorpej syscallarg(timer_t *) timerid;
537 1.63 thorpej } */ *uap = v;
538 1.63 thorpej struct proc *p = l->l_proc;
539 1.63 thorpej clockid_t id;
540 1.63 thorpej struct sigevent *evp;
541 1.63 thorpej struct ptimer *pt;
542 1.65 jdolecek timer_t timerid;
543 1.65 jdolecek int error;
544 1.63 thorpej
545 1.63 thorpej id = SCARG(uap, clock_id);
546 1.63 thorpej if (id < CLOCK_REALTIME ||
547 1.63 thorpej id > CLOCK_PROF)
548 1.63 thorpej return (EINVAL);
549 1.63 thorpej
550 1.63 thorpej if (p->p_timers == NULL)
551 1.63 thorpej timers_alloc(p);
552 1.63 thorpej
553 1.63 thorpej /* Find a free timer slot, skipping those reserved for setitimer(). */
554 1.63 thorpej for (timerid = 3; timerid < TIMER_MAX; timerid++)
555 1.63 thorpej if (p->p_timers->pts_timers[timerid] == NULL)
556 1.63 thorpej break;
557 1.63 thorpej
558 1.63 thorpej if (timerid == TIMER_MAX)
559 1.63 thorpej return EAGAIN;
560 1.63 thorpej
561 1.63 thorpej pt = pool_get(&ptimer_pool, PR_WAITOK);
562 1.63 thorpej evp = SCARG(uap, evp);
563 1.63 thorpej if (evp) {
564 1.63 thorpej if (((error =
565 1.63 thorpej copyin(evp, &pt->pt_ev, sizeof (pt->pt_ev))) != 0) ||
566 1.63 thorpej ((pt->pt_ev.sigev_notify < SIGEV_NONE) ||
567 1.63 thorpej (pt->pt_ev.sigev_notify > SIGEV_SA))) {
568 1.63 thorpej pool_put(&ptimer_pool, pt);
569 1.63 thorpej return (error ? error : EINVAL);
570 1.63 thorpej }
571 1.63 thorpej } else {
572 1.63 thorpej pt->pt_ev.sigev_notify = SIGEV_SIGNAL;
573 1.63 thorpej switch (id) {
574 1.63 thorpej case CLOCK_REALTIME:
575 1.63 thorpej pt->pt_ev.sigev_signo = SIGALRM;
576 1.63 thorpej break;
577 1.63 thorpej case CLOCK_VIRTUAL:
578 1.63 thorpej pt->pt_ev.sigev_signo = SIGVTALRM;
579 1.63 thorpej break;
580 1.63 thorpej case CLOCK_PROF:
581 1.63 thorpej pt->pt_ev.sigev_signo = SIGPROF;
582 1.63 thorpej break;
583 1.63 thorpej }
584 1.63 thorpej pt->pt_ev.sigev_value.sival_int = timerid;
585 1.63 thorpej }
586 1.73 christos pt->pt_info.ksi_signo = pt->pt_ev.sigev_signo;
587 1.73 christos pt->pt_info.ksi_errno = 0;
588 1.73 christos pt->pt_info.ksi_code = 0;
589 1.73 christos pt->pt_info.ksi_pid = p->p_pid;
590 1.73 christos pt->pt_info.ksi_uid = p->p_cred->p_ruid;
591 1.73 christos pt->pt_info.ksi_sigval = pt->pt_ev.sigev_value;
592 1.63 thorpej
593 1.63 thorpej pt->pt_type = id;
594 1.63 thorpej pt->pt_proc = p;
595 1.63 thorpej pt->pt_overruns = 0;
596 1.63 thorpej pt->pt_poverruns = 0;
597 1.64 nathanw pt->pt_entry = timerid;
598 1.63 thorpej timerclear(&pt->pt_time.it_value);
599 1.63 thorpej if (id == CLOCK_REALTIME)
600 1.63 thorpej callout_init(&pt->pt_ch);
601 1.63 thorpej else
602 1.63 thorpej pt->pt_active = 0;
603 1.63 thorpej
604 1.63 thorpej p->p_timers->pts_timers[timerid] = pt;
605 1.63 thorpej
606 1.63 thorpej return copyout(&timerid, SCARG(uap, timerid), sizeof(timerid));
607 1.63 thorpej }
608 1.63 thorpej
609 1.63 thorpej
610 1.63 thorpej /* Delete a POSIX realtime timer */
611 1.3 andrew int
612 1.63 thorpej sys_timer_delete(struct lwp *l, void *v, register_t *retval)
613 1.15 thorpej {
614 1.63 thorpej struct sys_timer_delete_args /* {
615 1.63 thorpej syscallarg(timer_t) timerid;
616 1.15 thorpej } */ *uap = v;
617 1.63 thorpej struct proc *p = l->l_proc;
618 1.65 jdolecek timer_t timerid;
619 1.63 thorpej struct ptimer *pt, *ptn;
620 1.1 cgd int s;
621 1.1 cgd
622 1.63 thorpej timerid = SCARG(uap, timerid);
623 1.63 thorpej
624 1.63 thorpej if ((p->p_timers == NULL) ||
625 1.63 thorpej (timerid < 2) || (timerid >= TIMER_MAX) ||
626 1.63 thorpej ((pt = p->p_timers->pts_timers[timerid]) == NULL))
627 1.1 cgd return (EINVAL);
628 1.63 thorpej
629 1.63 thorpej if (pt->pt_type == CLOCK_REALTIME)
630 1.63 thorpej callout_stop(&pt->pt_ch);
631 1.63 thorpej else if (pt->pt_active) {
632 1.63 thorpej s = splclock();
633 1.63 thorpej ptn = LIST_NEXT(pt, pt_list);
634 1.63 thorpej LIST_REMOVE(pt, pt_list);
635 1.63 thorpej for ( ; ptn; ptn = LIST_NEXT(ptn, pt_list))
636 1.63 thorpej timeradd(&pt->pt_time.it_value, &ptn->pt_time.it_value,
637 1.63 thorpej &ptn->pt_time.it_value);
638 1.63 thorpej splx(s);
639 1.63 thorpej }
640 1.63 thorpej
641 1.63 thorpej p->p_timers->pts_timers[timerid] = NULL;
642 1.63 thorpej pool_put(&ptimer_pool, pt);
643 1.63 thorpej
644 1.63 thorpej return (0);
645 1.63 thorpej }
646 1.63 thorpej
647 1.63 thorpej /*
648 1.67 nathanw * Set up the given timer. The value in pt->pt_time.it_value is taken
649 1.67 nathanw * to be an absolute time for CLOCK_REALTIME timers and a relative
650 1.67 nathanw * time for virtual timers.
651 1.63 thorpej * Must be called at splclock().
652 1.63 thorpej */
653 1.63 thorpej void
654 1.63 thorpej timer_settime(struct ptimer *pt)
655 1.63 thorpej {
656 1.63 thorpej struct ptimer *ptn, *pptn;
657 1.63 thorpej struct ptlist *ptl;
658 1.63 thorpej
659 1.63 thorpej if (pt->pt_type == CLOCK_REALTIME) {
660 1.63 thorpej callout_stop(&pt->pt_ch);
661 1.63 thorpej if (timerisset(&pt->pt_time.it_value)) {
662 1.63 thorpej /*
663 1.63 thorpej * Don't need to check hzto() return value, here.
664 1.63 thorpej * callout_reset() does it for us.
665 1.63 thorpej */
666 1.63 thorpej callout_reset(&pt->pt_ch, hzto(&pt->pt_time.it_value),
667 1.63 thorpej realtimerexpire, pt);
668 1.63 thorpej }
669 1.63 thorpej } else {
670 1.63 thorpej if (pt->pt_active) {
671 1.63 thorpej ptn = LIST_NEXT(pt, pt_list);
672 1.63 thorpej LIST_REMOVE(pt, pt_list);
673 1.63 thorpej for ( ; ptn; ptn = LIST_NEXT(ptn, pt_list))
674 1.63 thorpej timeradd(&pt->pt_time.it_value,
675 1.63 thorpej &ptn->pt_time.it_value,
676 1.63 thorpej &ptn->pt_time.it_value);
677 1.63 thorpej }
678 1.63 thorpej if (timerisset(&pt->pt_time.it_value)) {
679 1.63 thorpej if (pt->pt_type == CLOCK_VIRTUAL)
680 1.63 thorpej ptl = &pt->pt_proc->p_timers->pts_virtual;
681 1.63 thorpej else
682 1.63 thorpej ptl = &pt->pt_proc->p_timers->pts_prof;
683 1.63 thorpej
684 1.63 thorpej for (ptn = LIST_FIRST(ptl), pptn = NULL;
685 1.63 thorpej ptn && timercmp(&pt->pt_time.it_value,
686 1.63 thorpej &ptn->pt_time.it_value, >);
687 1.63 thorpej pptn = ptn, ptn = LIST_NEXT(ptn, pt_list))
688 1.63 thorpej timersub(&pt->pt_time.it_value,
689 1.63 thorpej &ptn->pt_time.it_value,
690 1.63 thorpej &pt->pt_time.it_value);
691 1.63 thorpej
692 1.63 thorpej if (pptn)
693 1.63 thorpej LIST_INSERT_AFTER(pptn, pt, pt_list);
694 1.63 thorpej else
695 1.63 thorpej LIST_INSERT_HEAD(ptl, pt, pt_list);
696 1.63 thorpej
697 1.63 thorpej for ( ; ptn ; ptn = LIST_NEXT(ptn, pt_list))
698 1.63 thorpej timersub(&ptn->pt_time.it_value,
699 1.63 thorpej &pt->pt_time.it_value,
700 1.63 thorpej &ptn->pt_time.it_value);
701 1.63 thorpej
702 1.63 thorpej pt->pt_active = 1;
703 1.63 thorpej } else
704 1.63 thorpej pt->pt_active = 0;
705 1.63 thorpej }
706 1.63 thorpej }
707 1.63 thorpej
708 1.63 thorpej void
709 1.63 thorpej timer_gettime(struct ptimer *pt, struct itimerval *aitv)
710 1.63 thorpej {
711 1.63 thorpej struct ptimer *ptn;
712 1.63 thorpej
713 1.63 thorpej *aitv = pt->pt_time;
714 1.63 thorpej if (pt->pt_type == CLOCK_REALTIME) {
715 1.1 cgd /*
716 1.12 mycroft * Convert from absolute to relative time in .it_value
717 1.63 thorpej * part of real time timer. If time for real time
718 1.63 thorpej * timer has passed return 0, else return difference
719 1.63 thorpej * between current time and time for the timer to go
720 1.63 thorpej * off.
721 1.1 cgd */
722 1.63 thorpej if (timerisset(&aitv->it_value)) {
723 1.63 thorpej if (timercmp(&aitv->it_value, &time, <))
724 1.63 thorpej timerclear(&aitv->it_value);
725 1.1 cgd else
726 1.63 thorpej timersub(&aitv->it_value, &time,
727 1.63 thorpej &aitv->it_value);
728 1.36 thorpej }
729 1.63 thorpej } else if (pt->pt_active) {
730 1.63 thorpej if (pt->pt_type == CLOCK_VIRTUAL)
731 1.63 thorpej ptn = LIST_FIRST(&pt->pt_proc->p_timers->pts_virtual);
732 1.63 thorpej else
733 1.63 thorpej ptn = LIST_FIRST(&pt->pt_proc->p_timers->pts_prof);
734 1.63 thorpej for ( ; ptn && ptn != pt; ptn = LIST_NEXT(ptn, pt_list))
735 1.63 thorpej timeradd(&aitv->it_value,
736 1.63 thorpej &ptn->pt_time.it_value, &aitv->it_value);
737 1.63 thorpej KASSERT(ptn != NULL); /* pt should be findable on the list */
738 1.1 cgd } else
739 1.63 thorpej timerclear(&aitv->it_value);
740 1.63 thorpej }
741 1.63 thorpej
742 1.63 thorpej
743 1.63 thorpej
744 1.63 thorpej /* Set and arm a POSIX realtime timer */
745 1.63 thorpej int
746 1.63 thorpej sys_timer_settime(struct lwp *l, void *v, register_t *retval)
747 1.63 thorpej {
748 1.63 thorpej struct sys_timer_settime_args /* {
749 1.63 thorpej syscallarg(timer_t) timerid;
750 1.63 thorpej syscallarg(int) flags;
751 1.63 thorpej syscallarg(const struct itimerspec *) value;
752 1.63 thorpej syscallarg(struct itimerspec *) ovalue;
753 1.63 thorpej } */ *uap = v;
754 1.63 thorpej struct proc *p = l->l_proc;
755 1.63 thorpej int error, s, timerid;
756 1.63 thorpej struct itimerval val, oval;
757 1.63 thorpej struct itimerspec value, ovalue;
758 1.63 thorpej struct ptimer *pt;
759 1.63 thorpej
760 1.63 thorpej timerid = SCARG(uap, timerid);
761 1.63 thorpej
762 1.63 thorpej if ((p->p_timers == NULL) ||
763 1.63 thorpej (timerid < 2) || (timerid >= TIMER_MAX) ||
764 1.63 thorpej ((pt = p->p_timers->pts_timers[timerid]) == NULL))
765 1.63 thorpej return (EINVAL);
766 1.63 thorpej
767 1.63 thorpej if ((error = copyin(SCARG(uap, value), &value,
768 1.63 thorpej sizeof(struct itimerspec))) != 0)
769 1.63 thorpej return (error);
770 1.63 thorpej
771 1.63 thorpej TIMESPEC_TO_TIMEVAL(&val.it_value, &value.it_value);
772 1.63 thorpej TIMESPEC_TO_TIMEVAL(&val.it_interval, &value.it_interval);
773 1.63 thorpej if (itimerfix(&val.it_value) || itimerfix(&val.it_interval))
774 1.63 thorpej return (EINVAL);
775 1.63 thorpej
776 1.63 thorpej oval = pt->pt_time;
777 1.63 thorpej pt->pt_time = val;
778 1.63 thorpej
779 1.63 thorpej s = splclock();
780 1.67 nathanw /*
781 1.67 nathanw * If we've been passed a relative time for a realtime timer,
782 1.67 nathanw * convert it to absolute; if an absolute time for a virtual
783 1.67 nathanw * timer, convert it to relative and make sure we don't set it
784 1.67 nathanw * to zero, which would cancel the timer, or let it go
785 1.67 nathanw * negative, which would confuse the comparison tests.
786 1.67 nathanw */
787 1.67 nathanw if (timerisset(&pt->pt_time.it_value)) {
788 1.67 nathanw if (pt->pt_type == CLOCK_REALTIME) {
789 1.67 nathanw if ((SCARG(uap, flags) & TIMER_ABSTIME) == 0)
790 1.67 nathanw timeradd(&pt->pt_time.it_value, &time,
791 1.67 nathanw &pt->pt_time.it_value);
792 1.67 nathanw } else {
793 1.67 nathanw if ((SCARG(uap, flags) & TIMER_ABSTIME) != 0) {
794 1.67 nathanw timersub(&pt->pt_time.it_value, &time,
795 1.67 nathanw &pt->pt_time.it_value);
796 1.67 nathanw if (!timerisset(&pt->pt_time.it_value) ||
797 1.67 nathanw pt->pt_time.it_value.tv_sec < 0) {
798 1.67 nathanw pt->pt_time.it_value.tv_sec = 0;
799 1.67 nathanw pt->pt_time.it_value.tv_usec = 1;
800 1.67 nathanw }
801 1.67 nathanw }
802 1.67 nathanw }
803 1.67 nathanw }
804 1.67 nathanw
805 1.63 thorpej timer_settime(pt);
806 1.63 thorpej splx(s);
807 1.63 thorpej
808 1.63 thorpej if (SCARG(uap, ovalue)) {
809 1.63 thorpej TIMEVAL_TO_TIMESPEC(&oval.it_value, &ovalue.it_value);
810 1.63 thorpej TIMEVAL_TO_TIMESPEC(&oval.it_interval, &ovalue.it_interval);
811 1.63 thorpej return copyout(&ovalue, SCARG(uap, ovalue),
812 1.63 thorpej sizeof(struct itimerspec));
813 1.63 thorpej }
814 1.63 thorpej
815 1.63 thorpej return (0);
816 1.63 thorpej }
817 1.63 thorpej
818 1.63 thorpej /* Return the time remaining until a POSIX timer fires. */
819 1.63 thorpej int
820 1.63 thorpej sys_timer_gettime(struct lwp *l, void *v, register_t *retval)
821 1.63 thorpej {
822 1.63 thorpej struct sys_timer_gettime_args /* {
823 1.63 thorpej syscallarg(timer_t) timerid;
824 1.63 thorpej syscallarg(struct itimerspec *) value;
825 1.63 thorpej } */ *uap = v;
826 1.63 thorpej struct itimerval aitv;
827 1.63 thorpej struct itimerspec its;
828 1.63 thorpej struct proc *p = l->l_proc;
829 1.63 thorpej int s, timerid;
830 1.63 thorpej struct ptimer *pt;
831 1.63 thorpej
832 1.63 thorpej timerid = SCARG(uap, timerid);
833 1.63 thorpej
834 1.63 thorpej if ((p->p_timers == NULL) ||
835 1.63 thorpej (timerid < 2) || (timerid >= TIMER_MAX) ||
836 1.63 thorpej ((pt = p->p_timers->pts_timers[timerid]) == NULL))
837 1.63 thorpej return (EINVAL);
838 1.63 thorpej
839 1.63 thorpej s = splclock();
840 1.63 thorpej timer_gettime(pt, &aitv);
841 1.1 cgd splx(s);
842 1.63 thorpej
843 1.63 thorpej TIMEVAL_TO_TIMESPEC(&aitv.it_interval, &its.it_interval);
844 1.63 thorpej TIMEVAL_TO_TIMESPEC(&aitv.it_value, &its.it_value);
845 1.63 thorpej
846 1.63 thorpej return copyout(&its, SCARG(uap, value), sizeof(its));
847 1.63 thorpej }
848 1.63 thorpej
849 1.63 thorpej /*
850 1.63 thorpej * Return the count of the number of times a periodic timer expired
851 1.63 thorpej * while a notification was already pending. The counter is reset when
852 1.63 thorpej * a timer expires and a notification can be posted.
853 1.63 thorpej */
854 1.63 thorpej int
855 1.63 thorpej sys_timer_getoverrun(struct lwp *l, void *v, register_t *retval)
856 1.63 thorpej {
857 1.63 thorpej struct sys_timer_getoverrun_args /* {
858 1.63 thorpej syscallarg(timer_t) timerid;
859 1.63 thorpej } */ *uap = v;
860 1.63 thorpej struct proc *p = l->l_proc;
861 1.63 thorpej int timerid;
862 1.63 thorpej struct ptimer *pt;
863 1.63 thorpej
864 1.63 thorpej timerid = SCARG(uap, timerid);
865 1.63 thorpej
866 1.63 thorpej if ((p->p_timers == NULL) ||
867 1.63 thorpej (timerid < 2) || (timerid >= TIMER_MAX) ||
868 1.63 thorpej ((pt = p->p_timers->pts_timers[timerid]) == NULL))
869 1.63 thorpej return (EINVAL);
870 1.63 thorpej
871 1.63 thorpej *retval = pt->pt_poverruns;
872 1.63 thorpej
873 1.63 thorpej return (0);
874 1.63 thorpej }
875 1.63 thorpej
876 1.63 thorpej /* Glue function that triggers an upcall; called from userret(). */
877 1.63 thorpej static void
878 1.63 thorpej timerupcall(struct lwp *l, void *arg)
879 1.63 thorpej {
880 1.64 nathanw struct ptimers *pt = (struct ptimers *)arg;
881 1.64 nathanw unsigned int i, fired, done;
882 1.74 cl
883 1.81 cl KDASSERT(l->l_proc->p_sa);
884 1.81 cl /* Bail out if we do not own the virtual processor */
885 1.82 cl if (l->l_savp->savp_lwp != l)
886 1.81 cl return ;
887 1.87 perry
888 1.63 thorpej KERNEL_PROC_LOCK(l);
889 1.71 fvdl
890 1.64 nathanw fired = pt->pts_fired;
891 1.64 nathanw done = 0;
892 1.64 nathanw while ((i = ffs(fired)) != 0) {
893 1.74 cl siginfo_t *si;
894 1.73 christos int mask = 1 << --i;
895 1.74 cl int f;
896 1.73 christos
897 1.74 cl f = l->l_flag & L_SA;
898 1.74 cl l->l_flag &= ~L_SA;
899 1.88.2.1 riz si = siginfo_alloc(PR_WAITOK);
900 1.77 thorpej si->_info = pt->pts_timers[i]->pt_info.ksi_info;
901 1.64 nathanw if (sa_upcall(l, SA_UPCALL_SIGEV | SA_UPCALL_DEFER, NULL, l,
902 1.88.2.1 riz sizeof(*si), si, siginfo_free) != 0) {
903 1.88.2.1 riz siginfo_free(si);
904 1.86 mycroft /* XXX What do we do here?? */
905 1.86 mycroft } else
906 1.73 christos done |= mask;
907 1.73 christos fired &= ~mask;
908 1.74 cl l->l_flag |= f;
909 1.64 nathanw }
910 1.64 nathanw pt->pts_fired &= ~done;
911 1.64 nathanw if (pt->pts_fired == 0)
912 1.63 thorpej l->l_proc->p_userret = NULL;
913 1.63 thorpej
914 1.63 thorpej KERNEL_PROC_UNLOCK(l);
915 1.63 thorpej }
916 1.63 thorpej
917 1.63 thorpej
918 1.63 thorpej /*
919 1.63 thorpej * Real interval timer expired:
920 1.63 thorpej * send process whose timer expired an alarm signal.
921 1.63 thorpej * If time is not set up to reload, then just return.
922 1.63 thorpej * Else compute next time timer should go off which is > current time.
923 1.63 thorpej * This is where delay in processing this timeout causes multiple
924 1.63 thorpej * SIGALRM calls to be compressed into one.
925 1.63 thorpej */
926 1.63 thorpej void
927 1.63 thorpej realtimerexpire(void *arg)
928 1.63 thorpej {
929 1.63 thorpej struct ptimer *pt;
930 1.63 thorpej int s;
931 1.63 thorpej
932 1.63 thorpej pt = (struct ptimer *)arg;
933 1.63 thorpej
934 1.63 thorpej itimerfire(pt);
935 1.63 thorpej
936 1.63 thorpej if (!timerisset(&pt->pt_time.it_interval)) {
937 1.63 thorpej timerclear(&pt->pt_time.it_value);
938 1.63 thorpej return;
939 1.63 thorpej }
940 1.63 thorpej for (;;) {
941 1.63 thorpej s = splclock();
942 1.63 thorpej timeradd(&pt->pt_time.it_value,
943 1.63 thorpej &pt->pt_time.it_interval, &pt->pt_time.it_value);
944 1.63 thorpej if (timercmp(&pt->pt_time.it_value, &time, >)) {
945 1.63 thorpej /*
946 1.63 thorpej * Don't need to check hzto() return value, here.
947 1.63 thorpej * callout_reset() does it for us.
948 1.63 thorpej */
949 1.63 thorpej callout_reset(&pt->pt_ch, hzto(&pt->pt_time.it_value),
950 1.63 thorpej realtimerexpire, pt);
951 1.63 thorpej splx(s);
952 1.63 thorpej return;
953 1.63 thorpej }
954 1.63 thorpej splx(s);
955 1.63 thorpej pt->pt_overruns++;
956 1.63 thorpej }
957 1.63 thorpej }
958 1.63 thorpej
959 1.63 thorpej /* BSD routine to get the value of an interval timer. */
960 1.63 thorpej /* ARGSUSED */
961 1.63 thorpej int
962 1.63 thorpej sys_getitimer(struct lwp *l, void *v, register_t *retval)
963 1.63 thorpej {
964 1.63 thorpej struct sys_getitimer_args /* {
965 1.63 thorpej syscallarg(int) which;
966 1.63 thorpej syscallarg(struct itimerval *) itv;
967 1.63 thorpej } */ *uap = v;
968 1.63 thorpej struct proc *p = l->l_proc;
969 1.63 thorpej struct itimerval aitv;
970 1.63 thorpej int s, which;
971 1.63 thorpej
972 1.63 thorpej which = SCARG(uap, which);
973 1.63 thorpej
974 1.63 thorpej if ((u_int)which > ITIMER_PROF)
975 1.63 thorpej return (EINVAL);
976 1.63 thorpej
977 1.63 thorpej if ((p->p_timers == NULL) || (p->p_timers->pts_timers[which] == NULL)){
978 1.63 thorpej timerclear(&aitv.it_value);
979 1.63 thorpej timerclear(&aitv.it_interval);
980 1.63 thorpej } else {
981 1.63 thorpej s = splclock();
982 1.63 thorpej timer_gettime(p->p_timers->pts_timers[which], &aitv);
983 1.63 thorpej splx(s);
984 1.63 thorpej }
985 1.63 thorpej
986 1.35 perry return (copyout(&aitv, SCARG(uap, itv), sizeof(struct itimerval)));
987 1.63 thorpej
988 1.1 cgd }
989 1.1 cgd
990 1.63 thorpej /* BSD routine to set/arm an interval timer. */
991 1.1 cgd /* ARGSUSED */
992 1.3 andrew int
993 1.63 thorpej sys_setitimer(struct lwp *l, void *v, register_t *retval)
994 1.15 thorpej {
995 1.45 augustss struct sys_setitimer_args /* {
996 1.30 mycroft syscallarg(int) which;
997 1.24 cgd syscallarg(const struct itimerval *) itv;
998 1.11 cgd syscallarg(struct itimerval *) oitv;
999 1.15 thorpej } */ *uap = v;
1000 1.63 thorpej struct proc *p = l->l_proc;
1001 1.30 mycroft int which = SCARG(uap, which);
1002 1.21 cgd struct sys_getitimer_args getargs;
1003 1.1 cgd struct itimerval aitv;
1004 1.45 augustss const struct itimerval *itvp;
1005 1.63 thorpej struct ptimer *pt;
1006 1.1 cgd int s, error;
1007 1.1 cgd
1008 1.30 mycroft if ((u_int)which > ITIMER_PROF)
1009 1.1 cgd return (EINVAL);
1010 1.11 cgd itvp = SCARG(uap, itv);
1011 1.63 thorpej if (itvp &&
1012 1.56 manu (error = copyin(itvp, &aitv, sizeof(struct itimerval)) != 0))
1013 1.1 cgd return (error);
1014 1.21 cgd if (SCARG(uap, oitv) != NULL) {
1015 1.30 mycroft SCARG(&getargs, which) = which;
1016 1.21 cgd SCARG(&getargs, itv) = SCARG(uap, oitv);
1017 1.63 thorpej if ((error = sys_getitimer(l, &getargs, retval)) != 0)
1018 1.21 cgd return (error);
1019 1.21 cgd }
1020 1.1 cgd if (itvp == 0)
1021 1.1 cgd return (0);
1022 1.1 cgd if (itimerfix(&aitv.it_value) || itimerfix(&aitv.it_interval))
1023 1.1 cgd return (EINVAL);
1024 1.63 thorpej
1025 1.63 thorpej /*
1026 1.63 thorpej * Don't bother allocating data structures if the process just
1027 1.63 thorpej * wants to clear the timer.
1028 1.63 thorpej */
1029 1.63 thorpej if (!timerisset(&aitv.it_value) &&
1030 1.63 thorpej ((p->p_timers == NULL) ||(p->p_timers->pts_timers[which] == NULL)))
1031 1.63 thorpej return (0);
1032 1.63 thorpej
1033 1.63 thorpej if (p->p_timers == NULL)
1034 1.63 thorpej timers_alloc(p);
1035 1.63 thorpej if (p->p_timers->pts_timers[which] == NULL) {
1036 1.63 thorpej pt = pool_get(&ptimer_pool, PR_WAITOK);
1037 1.63 thorpej pt->pt_ev.sigev_notify = SIGEV_SIGNAL;
1038 1.76 christos pt->pt_ev.sigev_value.sival_int = which;
1039 1.63 thorpej pt->pt_overruns = 0;
1040 1.63 thorpej pt->pt_proc = p;
1041 1.63 thorpej pt->pt_type = which;
1042 1.64 nathanw pt->pt_entry = which;
1043 1.63 thorpej switch (which) {
1044 1.63 thorpej case ITIMER_REAL:
1045 1.63 thorpej callout_init(&pt->pt_ch);
1046 1.63 thorpej pt->pt_ev.sigev_signo = SIGALRM;
1047 1.63 thorpej break;
1048 1.63 thorpej case ITIMER_VIRTUAL:
1049 1.63 thorpej pt->pt_active = 0;
1050 1.63 thorpej pt->pt_ev.sigev_signo = SIGVTALRM;
1051 1.63 thorpej break;
1052 1.63 thorpej case ITIMER_PROF:
1053 1.63 thorpej pt->pt_active = 0;
1054 1.63 thorpej pt->pt_ev.sigev_signo = SIGPROF;
1055 1.63 thorpej break;
1056 1.1 cgd }
1057 1.1 cgd } else
1058 1.63 thorpej pt = p->p_timers->pts_timers[which];
1059 1.63 thorpej
1060 1.63 thorpej pt->pt_time = aitv;
1061 1.63 thorpej p->p_timers->pts_timers[which] = pt;
1062 1.63 thorpej
1063 1.63 thorpej s = splclock();
1064 1.67 nathanw if ((which == ITIMER_REAL) && timerisset(&pt->pt_time.it_value)) {
1065 1.67 nathanw /* Convert to absolute time */
1066 1.67 nathanw timeradd(&pt->pt_time.it_value, &time, &pt->pt_time.it_value);
1067 1.67 nathanw }
1068 1.63 thorpej timer_settime(pt);
1069 1.1 cgd splx(s);
1070 1.63 thorpej
1071 1.1 cgd return (0);
1072 1.1 cgd }
1073 1.1 cgd
1074 1.63 thorpej /* Utility routines to manage the array of pointers to timers. */
1075 1.63 thorpej void
1076 1.63 thorpej timers_alloc(struct proc *p)
1077 1.63 thorpej {
1078 1.63 thorpej int i;
1079 1.63 thorpej struct ptimers *pts;
1080 1.63 thorpej
1081 1.63 thorpej pts = malloc(sizeof (struct ptimers), M_SUBPROC, 0);
1082 1.63 thorpej LIST_INIT(&pts->pts_virtual);
1083 1.63 thorpej LIST_INIT(&pts->pts_prof);
1084 1.63 thorpej for (i = 0; i < TIMER_MAX; i++)
1085 1.63 thorpej pts->pts_timers[i] = NULL;
1086 1.64 nathanw pts->pts_fired = 0;
1087 1.63 thorpej p->p_timers = pts;
1088 1.63 thorpej }
1089 1.63 thorpej
1090 1.1 cgd /*
1091 1.63 thorpej * Clean up the per-process timers. If "which" is set to TIMERS_ALL,
1092 1.63 thorpej * then clean up all timers and free all the data structures. If
1093 1.63 thorpej * "which" is set to TIMERS_POSIX, only clean up the timers allocated
1094 1.63 thorpej * by timer_create(), not the BSD setitimer() timers, and only free the
1095 1.63 thorpej * structure if none of those remain.
1096 1.1 cgd */
1097 1.3 andrew void
1098 1.63 thorpej timers_free(struct proc *p, int which)
1099 1.6 cgd {
1100 1.63 thorpej int i, s;
1101 1.63 thorpej struct ptimers *pts;
1102 1.63 thorpej struct ptimer *pt, *ptn;
1103 1.63 thorpej struct timeval tv;
1104 1.63 thorpej
1105 1.63 thorpej if (p->p_timers) {
1106 1.63 thorpej pts = p->p_timers;
1107 1.63 thorpej if (which == TIMERS_ALL)
1108 1.63 thorpej i = 0;
1109 1.63 thorpej else {
1110 1.63 thorpej s = splclock();
1111 1.63 thorpej timerclear(&tv);
1112 1.63 thorpej for (ptn = LIST_FIRST(&p->p_timers->pts_virtual);
1113 1.63 thorpej ptn && ptn != pts->pts_timers[ITIMER_VIRTUAL];
1114 1.63 thorpej ptn = LIST_NEXT(ptn, pt_list))
1115 1.63 thorpej timeradd(&tv, &ptn->pt_time.it_value, &tv);
1116 1.63 thorpej LIST_FIRST(&p->p_timers->pts_virtual) = NULL;
1117 1.63 thorpej if (ptn) {
1118 1.63 thorpej timeradd(&tv, &ptn->pt_time.it_value,
1119 1.63 thorpej &ptn->pt_time.it_value);
1120 1.63 thorpej LIST_INSERT_HEAD(&p->p_timers->pts_virtual,
1121 1.63 thorpej ptn, pt_list);
1122 1.63 thorpej }
1123 1.63 thorpej
1124 1.63 thorpej timerclear(&tv);
1125 1.63 thorpej for (ptn = LIST_FIRST(&p->p_timers->pts_prof);
1126 1.63 thorpej ptn && ptn != pts->pts_timers[ITIMER_PROF];
1127 1.63 thorpej ptn = LIST_NEXT(ptn, pt_list))
1128 1.63 thorpej timeradd(&tv, &ptn->pt_time.it_value, &tv);
1129 1.63 thorpej LIST_FIRST(&p->p_timers->pts_prof) = NULL;
1130 1.63 thorpej if (ptn) {
1131 1.63 thorpej timeradd(&tv, &ptn->pt_time.it_value,
1132 1.63 thorpej &ptn->pt_time.it_value);
1133 1.63 thorpej LIST_INSERT_HEAD(&p->p_timers->pts_prof, ptn,
1134 1.63 thorpej pt_list);
1135 1.63 thorpej }
1136 1.1 cgd splx(s);
1137 1.63 thorpej i = 3;
1138 1.63 thorpej }
1139 1.63 thorpej for ( ; i < TIMER_MAX; i++)
1140 1.63 thorpej if ((pt = pts->pts_timers[i]) != NULL) {
1141 1.63 thorpej if (pt->pt_type == CLOCK_REALTIME)
1142 1.63 thorpej callout_stop(&pt->pt_ch);
1143 1.63 thorpej pts->pts_timers[i] = NULL;
1144 1.63 thorpej pool_put(&ptimer_pool, pt);
1145 1.63 thorpej }
1146 1.63 thorpej if ((pts->pts_timers[0] == NULL) &&
1147 1.63 thorpej (pts->pts_timers[1] == NULL) &&
1148 1.63 thorpej (pts->pts_timers[2] == NULL)) {
1149 1.63 thorpej p->p_timers = NULL;
1150 1.63 thorpej free(pts, M_SUBPROC);
1151 1.1 cgd }
1152 1.1 cgd }
1153 1.1 cgd }
1154 1.1 cgd
1155 1.1 cgd /*
1156 1.1 cgd * Check that a proposed value to load into the .it_value or
1157 1.1 cgd * .it_interval part of an interval timer is acceptable, and
1158 1.1 cgd * fix it to have at least minimal value (i.e. if it is less
1159 1.1 cgd * than the resolution of the clock, round it up.)
1160 1.1 cgd */
1161 1.3 andrew int
1162 1.63 thorpej itimerfix(struct timeval *tv)
1163 1.1 cgd {
1164 1.1 cgd
1165 1.59 christos if (tv->tv_sec < 0 || tv->tv_usec < 0 || tv->tv_usec >= 1000000)
1166 1.1 cgd return (EINVAL);
1167 1.1 cgd if (tv->tv_sec == 0 && tv->tv_usec != 0 && tv->tv_usec < tick)
1168 1.1 cgd tv->tv_usec = tick;
1169 1.1 cgd return (0);
1170 1.1 cgd }
1171 1.1 cgd
1172 1.1 cgd /*
1173 1.1 cgd * Decrement an interval timer by a specified number
1174 1.1 cgd * of microseconds, which must be less than a second,
1175 1.1 cgd * i.e. < 1000000. If the timer expires, then reload
1176 1.1 cgd * it. In this case, carry over (usec - old value) to
1177 1.8 cgd * reduce the value reloaded into the timer so that
1178 1.1 cgd * the timer does not drift. This routine assumes
1179 1.1 cgd * that it is called in a context where the timers
1180 1.1 cgd * on which it is operating cannot change in value.
1181 1.1 cgd */
1182 1.3 andrew int
1183 1.63 thorpej itimerdecr(struct ptimer *pt, int usec)
1184 1.63 thorpej {
1185 1.45 augustss struct itimerval *itp;
1186 1.1 cgd
1187 1.63 thorpej itp = &pt->pt_time;
1188 1.1 cgd if (itp->it_value.tv_usec < usec) {
1189 1.1 cgd if (itp->it_value.tv_sec == 0) {
1190 1.1 cgd /* expired, and already in next interval */
1191 1.1 cgd usec -= itp->it_value.tv_usec;
1192 1.1 cgd goto expire;
1193 1.1 cgd }
1194 1.1 cgd itp->it_value.tv_usec += 1000000;
1195 1.1 cgd itp->it_value.tv_sec--;
1196 1.1 cgd }
1197 1.1 cgd itp->it_value.tv_usec -= usec;
1198 1.1 cgd usec = 0;
1199 1.1 cgd if (timerisset(&itp->it_value))
1200 1.1 cgd return (1);
1201 1.1 cgd /* expired, exactly at end of interval */
1202 1.1 cgd expire:
1203 1.1 cgd if (timerisset(&itp->it_interval)) {
1204 1.1 cgd itp->it_value = itp->it_interval;
1205 1.1 cgd itp->it_value.tv_usec -= usec;
1206 1.1 cgd if (itp->it_value.tv_usec < 0) {
1207 1.1 cgd itp->it_value.tv_usec += 1000000;
1208 1.1 cgd itp->it_value.tv_sec--;
1209 1.1 cgd }
1210 1.63 thorpej timer_settime(pt);
1211 1.1 cgd } else
1212 1.1 cgd itp->it_value.tv_usec = 0; /* sec is already 0 */
1213 1.1 cgd return (0);
1214 1.42 cgd }
1215 1.42 cgd
1216 1.63 thorpej void
1217 1.63 thorpej itimerfire(struct ptimer *pt)
1218 1.63 thorpej {
1219 1.63 thorpej struct proc *p = pt->pt_proc;
1220 1.82 cl struct sadata_vp *vp;
1221 1.64 nathanw int s;
1222 1.82 cl unsigned int i;
1223 1.78 cl
1224 1.63 thorpej if (pt->pt_ev.sigev_notify == SIGEV_SIGNAL) {
1225 1.63 thorpej /*
1226 1.63 thorpej * No RT signal infrastructure exists at this time;
1227 1.63 thorpej * just post the signal number and throw away the
1228 1.63 thorpej * value.
1229 1.63 thorpej */
1230 1.63 thorpej if (sigismember(&p->p_sigctx.ps_siglist, pt->pt_ev.sigev_signo))
1231 1.63 thorpej pt->pt_overruns++;
1232 1.63 thorpej else {
1233 1.75 christos ksiginfo_t ksi;
1234 1.75 christos (void)memset(&ksi, 0, sizeof(ksi));
1235 1.75 christos ksi.ksi_signo = pt->pt_ev.sigev_signo;
1236 1.75 christos ksi.ksi_code = SI_TIMER;
1237 1.75 christos ksi.ksi_sigval = pt->pt_ev.sigev_value;
1238 1.63 thorpej pt->pt_poverruns = pt->pt_overruns;
1239 1.63 thorpej pt->pt_overruns = 0;
1240 1.75 christos kpsignal(p, &ksi, NULL);
1241 1.63 thorpej }
1242 1.63 thorpej } else if (pt->pt_ev.sigev_notify == SIGEV_SA && (p->p_flag & P_SA)) {
1243 1.63 thorpej /* Cause the process to generate an upcall when it returns. */
1244 1.63 thorpej
1245 1.63 thorpej if (p->p_userret == NULL) {
1246 1.70 nathanw /*
1247 1.70 nathanw * XXX stop signals can be processed inside tsleep,
1248 1.70 nathanw * which can be inside sa_yield's inner loop, which
1249 1.70 nathanw * makes testing for sa_idle alone insuffucent to
1250 1.70 nathanw * determine if we really should call setrunnable.
1251 1.70 nathanw */
1252 1.63 thorpej pt->pt_poverruns = pt->pt_overruns;
1253 1.63 thorpej pt->pt_overruns = 0;
1254 1.64 nathanw i = 1 << pt->pt_entry;
1255 1.64 nathanw p->p_timers->pts_fired = i;
1256 1.63 thorpej p->p_userret = timerupcall;
1257 1.64 nathanw p->p_userret_arg = p->p_timers;
1258 1.87 perry
1259 1.78 cl SCHED_LOCK(s);
1260 1.82 cl SLIST_FOREACH(vp, &p->p_sa->sa_vps, savp_next) {
1261 1.82 cl if (vp->savp_lwp->l_flag & L_SA_IDLE) {
1262 1.82 cl vp->savp_lwp->l_flag &= ~L_SA_IDLE;
1263 1.82 cl sched_wakeup(vp->savp_lwp);
1264 1.82 cl break;
1265 1.82 cl }
1266 1.78 cl }
1267 1.78 cl SCHED_UNLOCK(s);
1268 1.64 nathanw } else if (p->p_userret == timerupcall) {
1269 1.64 nathanw i = 1 << pt->pt_entry;
1270 1.64 nathanw if ((p->p_timers->pts_fired & i) == 0) {
1271 1.64 nathanw pt->pt_poverruns = pt->pt_overruns;
1272 1.64 nathanw pt->pt_overruns = 0;
1273 1.66 jdolecek p->p_timers->pts_fired |= i;
1274 1.64 nathanw } else
1275 1.64 nathanw pt->pt_overruns++;
1276 1.64 nathanw } else {
1277 1.63 thorpej pt->pt_overruns++;
1278 1.78 cl if ((p->p_flag & P_WEXIT) == 0)
1279 1.78 cl printf("itimerfire(%d): overrun %d on timer %x (userret is %p)\n",
1280 1.78 cl p->p_pid, pt->pt_overruns,
1281 1.78 cl pt->pt_ev.sigev_value.sival_int,
1282 1.78 cl p->p_userret);
1283 1.64 nathanw }
1284 1.63 thorpej }
1285 1.63 thorpej
1286 1.63 thorpej }
1287 1.63 thorpej
1288 1.42 cgd /*
1289 1.42 cgd * ratecheck(): simple time-based rate-limit checking. see ratecheck(9)
1290 1.42 cgd * for usage and rationale.
1291 1.42 cgd */
1292 1.42 cgd int
1293 1.63 thorpej ratecheck(struct timeval *lasttime, const struct timeval *mininterval)
1294 1.42 cgd {
1295 1.49 itojun struct timeval tv, delta;
1296 1.42 cgd int s, rv = 0;
1297 1.42 cgd
1298 1.63 thorpej s = splclock();
1299 1.49 itojun tv = mono_time;
1300 1.49 itojun splx(s);
1301 1.49 itojun
1302 1.49 itojun timersub(&tv, lasttime, &delta);
1303 1.42 cgd
1304 1.42 cgd /*
1305 1.42 cgd * check for 0,0 is so that the message will be seen at least once,
1306 1.42 cgd * even if interval is huge.
1307 1.42 cgd */
1308 1.42 cgd if (timercmp(&delta, mininterval, >=) ||
1309 1.42 cgd (lasttime->tv_sec == 0 && lasttime->tv_usec == 0)) {
1310 1.49 itojun *lasttime = tv;
1311 1.42 cgd rv = 1;
1312 1.42 cgd }
1313 1.50 itojun
1314 1.50 itojun return (rv);
1315 1.50 itojun }
1316 1.50 itojun
1317 1.50 itojun /*
1318 1.50 itojun * ppsratecheck(): packets (or events) per second limitation.
1319 1.50 itojun */
1320 1.50 itojun int
1321 1.63 thorpej ppsratecheck(struct timeval *lasttime, int *curpps, int maxpps)
1322 1.50 itojun {
1323 1.50 itojun struct timeval tv, delta;
1324 1.50 itojun int s, rv;
1325 1.50 itojun
1326 1.63 thorpej s = splclock();
1327 1.50 itojun tv = mono_time;
1328 1.50 itojun splx(s);
1329 1.50 itojun
1330 1.50 itojun timersub(&tv, lasttime, &delta);
1331 1.50 itojun
1332 1.50 itojun /*
1333 1.50 itojun * check for 0,0 is so that the message will be seen at least once.
1334 1.50 itojun * if more than one second have passed since the last update of
1335 1.50 itojun * lasttime, reset the counter.
1336 1.50 itojun *
1337 1.50 itojun * we do increment *curpps even in *curpps < maxpps case, as some may
1338 1.50 itojun * try to use *curpps for stat purposes as well.
1339 1.50 itojun */
1340 1.50 itojun if ((lasttime->tv_sec == 0 && lasttime->tv_usec == 0) ||
1341 1.50 itojun delta.tv_sec >= 1) {
1342 1.50 itojun *lasttime = tv;
1343 1.50 itojun *curpps = 0;
1344 1.69 dyoung }
1345 1.69 dyoung if (maxpps < 0)
1346 1.53 itojun rv = 1;
1347 1.53 itojun else if (*curpps < maxpps)
1348 1.50 itojun rv = 1;
1349 1.50 itojun else
1350 1.50 itojun rv = 0;
1351 1.50 itojun
1352 1.51 jhawk #if 1 /*DIAGNOSTIC?*/
1353 1.50 itojun /* be careful about wrap-around */
1354 1.50 itojun if (*curpps + 1 > *curpps)
1355 1.50 itojun *curpps = *curpps + 1;
1356 1.50 itojun #else
1357 1.50 itojun /*
1358 1.50 itojun * assume that there's not too many calls to this function.
1359 1.50 itojun * not sure if the assumption holds, as it depends on *caller's*
1360 1.50 itojun * behavior, not the behavior of this function.
1361 1.50 itojun * IMHO it is wrong to make assumption on the caller's behavior,
1362 1.51 jhawk * so the above #if is #if 1, not #ifdef DIAGNOSTIC.
1363 1.50 itojun */
1364 1.50 itojun *curpps = *curpps + 1;
1365 1.50 itojun #endif
1366 1.42 cgd
1367 1.42 cgd return (rv);
1368 1.1 cgd }
1369