kern_sig.c revision 1.201 1 /* $NetBSD: kern_sig.c,v 1.201 2005/01/09 19:22:55 christos Exp $ */
2
3 /*
4 * Copyright (c) 1982, 1986, 1989, 1991, 1993
5 * The Regents of the University of California. All rights reserved.
6 * (c) UNIX System Laboratories, Inc.
7 * All or some portions of this file are derived from material licensed
8 * to the University of California by American Telephone and Telegraph
9 * Co. or Unix System Laboratories, Inc. and are reproduced herein with
10 * the permission of UNIX System Laboratories, Inc.
11 *
12 * Redistribution and use in source and binary forms, with or without
13 * modification, are permitted provided that the following conditions
14 * are met:
15 * 1. Redistributions of source code must retain the above copyright
16 * notice, this list of conditions and the following disclaimer.
17 * 2. Redistributions in binary form must reproduce the above copyright
18 * notice, this list of conditions and the following disclaimer in the
19 * documentation and/or other materials provided with the distribution.
20 * 3. Neither the name of the University nor the names of its contributors
21 * may be used to endorse or promote products derived from this software
22 * without specific prior written permission.
23 *
24 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
25 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
26 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
27 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
28 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
29 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
30 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
31 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
32 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
33 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
34 * SUCH DAMAGE.
35 *
36 * @(#)kern_sig.c 8.14 (Berkeley) 5/14/95
37 */
38
39 #include <sys/cdefs.h>
40 __KERNEL_RCSID(0, "$NetBSD: kern_sig.c,v 1.201 2005/01/09 19:22:55 christos Exp $");
41
42 #include "opt_ktrace.h"
43 #include "opt_compat_sunos.h"
44 #include "opt_compat_netbsd.h"
45 #include "opt_compat_netbsd32.h"
46
47 #define SIGPROP /* include signal properties table */
48 #include <sys/param.h>
49 #include <sys/signalvar.h>
50 #include <sys/resourcevar.h>
51 #include <sys/namei.h>
52 #include <sys/vnode.h>
53 #include <sys/proc.h>
54 #include <sys/systm.h>
55 #include <sys/timeb.h>
56 #include <sys/times.h>
57 #include <sys/buf.h>
58 #include <sys/acct.h>
59 #include <sys/file.h>
60 #include <sys/kernel.h>
61 #include <sys/wait.h>
62 #include <sys/ktrace.h>
63 #include <sys/syslog.h>
64 #include <sys/stat.h>
65 #include <sys/core.h>
66 #include <sys/filedesc.h>
67 #include <sys/malloc.h>
68 #include <sys/pool.h>
69 #include <sys/ucontext.h>
70 #include <sys/sa.h>
71 #include <sys/savar.h>
72 #include <sys/exec.h>
73
74 #include <sys/mount.h>
75 #include <sys/syscallargs.h>
76
77 #include <machine/cpu.h>
78
79 #include <sys/user.h> /* for coredump */
80
81 #include <uvm/uvm.h>
82 #include <uvm/uvm_extern.h>
83
84 static void child_psignal(struct proc *, int);
85 static int build_corename(struct proc *, char *, const char *, size_t);
86 static void ksiginfo_exithook(struct proc *, void *);
87 static void ksiginfo_put(struct proc *, const ksiginfo_t *);
88 static ksiginfo_t *ksiginfo_get(struct proc *, int);
89 static void kpsignal2(struct proc *, const ksiginfo_t *, int);
90
91 sigset_t contsigmask, stopsigmask, sigcantmask;
92
93 struct pool sigacts_pool; /* memory pool for sigacts structures */
94
95 /*
96 * struct sigacts memory pool allocator.
97 */
98
99 static void *
100 sigacts_poolpage_alloc(struct pool *pp, int flags)
101 {
102
103 return (void *)uvm_km_kmemalloc1(kernel_map,
104 uvm.kernel_object, (PAGE_SIZE)*2, (PAGE_SIZE)*2, UVM_UNKNOWN_OFFSET,
105 (flags & PR_WAITOK) ? 0 : UVM_KMF_NOWAIT | UVM_KMF_TRYLOCK);
106 }
107
108 static void
109 sigacts_poolpage_free(struct pool *pp, void *v)
110 {
111 uvm_km_free(kernel_map, (vaddr_t)v, (PAGE_SIZE)*2);
112 }
113
114 static struct pool_allocator sigactspool_allocator = {
115 sigacts_poolpage_alloc, sigacts_poolpage_free,
116 };
117
118 POOL_INIT(siginfo_pool, sizeof(siginfo_t), 0, 0, 0, "siginfo",
119 &pool_allocator_nointr);
120 POOL_INIT(ksiginfo_pool, sizeof(ksiginfo_t), 0, 0, 0, "ksiginfo", NULL);
121
122 /*
123 * Can process p, with pcred pc, send the signal signum to process q?
124 */
125 #define CANSIGNAL(p, pc, q, signum) \
126 ((pc)->pc_ucred->cr_uid == 0 || \
127 (pc)->p_ruid == (q)->p_cred->p_ruid || \
128 (pc)->pc_ucred->cr_uid == (q)->p_cred->p_ruid || \
129 (pc)->p_ruid == (q)->p_ucred->cr_uid || \
130 (pc)->pc_ucred->cr_uid == (q)->p_ucred->cr_uid || \
131 ((signum) == SIGCONT && (q)->p_session == (p)->p_session))
132
133 /*
134 * Remove and return the first ksiginfo element that matches our requested
135 * signal, or return NULL if one not found.
136 */
137 static ksiginfo_t *
138 ksiginfo_get(struct proc *p, int signo)
139 {
140 ksiginfo_t *ksi;
141 int s;
142
143 s = splsoftclock();
144 simple_lock(&p->p_sigctx.ps_silock);
145 CIRCLEQ_FOREACH(ksi, &p->p_sigctx.ps_siginfo, ksi_list) {
146 if (ksi->ksi_signo == signo) {
147 CIRCLEQ_REMOVE(&p->p_sigctx.ps_siginfo, ksi, ksi_list);
148 goto out;
149 }
150 }
151 ksi = NULL;
152 out:
153 simple_unlock(&p->p_sigctx.ps_silock);
154 splx(s);
155 return ksi;
156 }
157
158 /*
159 * Append a new ksiginfo element to the list of pending ksiginfo's, if
160 * we need to (SA_SIGINFO was requested). We replace non RT signals if
161 * they already existed in the queue and we add new entries for RT signals,
162 * or for non RT signals with non-existing entries.
163 */
164 static void
165 ksiginfo_put(struct proc *p, const ksiginfo_t *ksi)
166 {
167 ksiginfo_t *kp;
168 struct sigaction *sa = &SIGACTION_PS(p->p_sigacts, ksi->ksi_signo);
169 int s;
170
171 if ((sa->sa_flags & SA_SIGINFO) == 0)
172 return;
173 /*
174 * If there's no info, don't save it.
175 */
176 if (KSI_EMPTY_P(ksi))
177 return;
178
179 s = splsoftclock();
180 simple_lock(&p->p_sigctx.ps_silock);
181 #ifdef notyet /* XXX: QUEUING */
182 if (ksi->ksi_signo < SIGRTMIN)
183 #endif
184 {
185 CIRCLEQ_FOREACH(kp, &p->p_sigctx.ps_siginfo, ksi_list) {
186 if (kp->ksi_signo == ksi->ksi_signo) {
187 KSI_COPY(ksi, kp);
188 goto out;
189 }
190 }
191 }
192 kp = pool_get(&ksiginfo_pool, PR_NOWAIT);
193 if (kp == NULL) {
194 #ifdef DIAGNOSTIC
195 printf("Out of memory allocating siginfo for pid %d\n",
196 p->p_pid);
197 #endif
198 goto out;
199 }
200 *kp = *ksi;
201 CIRCLEQ_INSERT_TAIL(&p->p_sigctx.ps_siginfo, kp, ksi_list);
202 out:
203 simple_unlock(&p->p_sigctx.ps_silock);
204 splx(s);
205 }
206
207 /*
208 * free all pending ksiginfo on exit
209 */
210 static void
211 ksiginfo_exithook(struct proc *p, void *v)
212 {
213 int s;
214
215 s = splsoftclock();
216 simple_lock(&p->p_sigctx.ps_silock);
217 while (!CIRCLEQ_EMPTY(&p->p_sigctx.ps_siginfo)) {
218 ksiginfo_t *ksi = CIRCLEQ_FIRST(&p->p_sigctx.ps_siginfo);
219 CIRCLEQ_REMOVE(&p->p_sigctx.ps_siginfo, ksi, ksi_list);
220 pool_put(&ksiginfo_pool, ksi);
221 }
222 simple_unlock(&p->p_sigctx.ps_silock);
223 splx(s);
224 }
225
226 /*
227 * Initialize signal-related data structures.
228 */
229 void
230 signal_init(void)
231 {
232
233 sigactspool_allocator.pa_pagesz = (PAGE_SIZE)*2;
234
235 pool_init(&sigacts_pool, sizeof(struct sigacts), 0, 0, 0, "sigapl",
236 sizeof(struct sigacts) > PAGE_SIZE ?
237 &sigactspool_allocator : &pool_allocator_nointr);
238
239 exithook_establish(ksiginfo_exithook, NULL);
240 exechook_establish(ksiginfo_exithook, NULL);
241 }
242
243 /*
244 * Create an initial sigctx structure, using the same signal state
245 * as p. If 'share' is set, share the sigctx_proc part, otherwise just
246 * copy it from parent.
247 */
248 void
249 sigactsinit(struct proc *np, struct proc *pp, int share)
250 {
251 struct sigacts *ps;
252
253 if (share) {
254 np->p_sigacts = pp->p_sigacts;
255 pp->p_sigacts->sa_refcnt++;
256 } else {
257 ps = pool_get(&sigacts_pool, PR_WAITOK);
258 if (pp)
259 memcpy(ps, pp->p_sigacts, sizeof(struct sigacts));
260 else
261 memset(ps, '\0', sizeof(struct sigacts));
262 ps->sa_refcnt = 1;
263 np->p_sigacts = ps;
264 }
265 }
266
267 /*
268 * Make this process not share its sigctx, maintaining all
269 * signal state.
270 */
271 void
272 sigactsunshare(struct proc *p)
273 {
274 struct sigacts *oldps;
275
276 if (p->p_sigacts->sa_refcnt == 1)
277 return;
278
279 oldps = p->p_sigacts;
280 sigactsinit(p, NULL, 0);
281
282 if (--oldps->sa_refcnt == 0)
283 pool_put(&sigacts_pool, oldps);
284 }
285
286 /*
287 * Release a sigctx structure.
288 */
289 void
290 sigactsfree(struct sigacts *ps)
291 {
292
293 if (--ps->sa_refcnt > 0)
294 return;
295
296 pool_put(&sigacts_pool, ps);
297 }
298
299 int
300 sigaction1(struct proc *p, int signum, const struct sigaction *nsa,
301 struct sigaction *osa, const void *tramp, int vers)
302 {
303 struct sigacts *ps;
304 int prop;
305
306 ps = p->p_sigacts;
307 if (signum <= 0 || signum >= NSIG)
308 return (EINVAL);
309
310 /*
311 * Trampoline ABI version 0 is reserved for the legacy
312 * kernel-provided on-stack trampoline. Conversely, if we are
313 * using a non-0 ABI version, we must have a trampoline. Only
314 * validate the vers if a new sigaction was supplied. Emulations
315 * use legacy kernel trampolines with version 0, alternatively
316 * check for that too.
317 */
318 if ((vers != 0 && tramp == NULL) ||
319 #ifdef SIGTRAMP_VALID
320 (nsa != NULL &&
321 ((vers == 0) ?
322 (p->p_emul->e_sigcode == NULL) :
323 !SIGTRAMP_VALID(vers))) ||
324 #endif
325 (vers == 0 && tramp != NULL))
326 return (EINVAL);
327
328 if (osa)
329 *osa = SIGACTION_PS(ps, signum);
330
331 if (nsa) {
332 if (nsa->sa_flags & ~SA_ALLBITS)
333 return (EINVAL);
334
335 prop = sigprop[signum];
336 if (prop & SA_CANTMASK)
337 return (EINVAL);
338
339 (void) splsched(); /* XXXSMP */
340 SIGACTION_PS(ps, signum) = *nsa;
341 ps->sa_sigdesc[signum].sd_tramp = tramp;
342 ps->sa_sigdesc[signum].sd_vers = vers;
343 sigminusset(&sigcantmask, &SIGACTION_PS(ps, signum).sa_mask);
344 if ((prop & SA_NORESET) != 0)
345 SIGACTION_PS(ps, signum).sa_flags &= ~SA_RESETHAND;
346 if (signum == SIGCHLD) {
347 if (nsa->sa_flags & SA_NOCLDSTOP)
348 p->p_flag |= P_NOCLDSTOP;
349 else
350 p->p_flag &= ~P_NOCLDSTOP;
351 if (nsa->sa_flags & SA_NOCLDWAIT) {
352 /*
353 * Paranoia: since SA_NOCLDWAIT is implemented
354 * by reparenting the dying child to PID 1 (and
355 * trust it to reap the zombie), PID 1 itself
356 * is forbidden to set SA_NOCLDWAIT.
357 */
358 if (p->p_pid == 1)
359 p->p_flag &= ~P_NOCLDWAIT;
360 else
361 p->p_flag |= P_NOCLDWAIT;
362 } else
363 p->p_flag &= ~P_NOCLDWAIT;
364 }
365 if ((nsa->sa_flags & SA_NODEFER) == 0)
366 sigaddset(&SIGACTION_PS(ps, signum).sa_mask, signum);
367 else
368 sigdelset(&SIGACTION_PS(ps, signum).sa_mask, signum);
369 /*
370 * Set bit in p_sigctx.ps_sigignore for signals that are set to
371 * SIG_IGN, and for signals set to SIG_DFL where the default is
372 * to ignore. However, don't put SIGCONT in
373 * p_sigctx.ps_sigignore, as we have to restart the process.
374 */
375 if (nsa->sa_handler == SIG_IGN ||
376 (nsa->sa_handler == SIG_DFL && (prop & SA_IGNORE) != 0)) {
377 /* never to be seen again */
378 sigdelset(&p->p_sigctx.ps_siglist, signum);
379 if (signum != SIGCONT) {
380 /* easier in psignal */
381 sigaddset(&p->p_sigctx.ps_sigignore, signum);
382 }
383 sigdelset(&p->p_sigctx.ps_sigcatch, signum);
384 } else {
385 sigdelset(&p->p_sigctx.ps_sigignore, signum);
386 if (nsa->sa_handler == SIG_DFL)
387 sigdelset(&p->p_sigctx.ps_sigcatch, signum);
388 else
389 sigaddset(&p->p_sigctx.ps_sigcatch, signum);
390 }
391 (void) spl0();
392 }
393
394 return (0);
395 }
396
397 #ifdef COMPAT_16
398 /* ARGSUSED */
399 int
400 compat_16_sys___sigaction14(struct lwp *l, void *v, register_t *retval)
401 {
402 struct compat_16_sys___sigaction14_args /* {
403 syscallarg(int) signum;
404 syscallarg(const struct sigaction *) nsa;
405 syscallarg(struct sigaction *) osa;
406 } */ *uap = v;
407 struct proc *p;
408 struct sigaction nsa, osa;
409 int error;
410
411 if (SCARG(uap, nsa)) {
412 error = copyin(SCARG(uap, nsa), &nsa, sizeof(nsa));
413 if (error)
414 return (error);
415 }
416 p = l->l_proc;
417 error = sigaction1(p, SCARG(uap, signum),
418 SCARG(uap, nsa) ? &nsa : 0, SCARG(uap, osa) ? &osa : 0,
419 NULL, 0);
420 if (error)
421 return (error);
422 if (SCARG(uap, osa)) {
423 error = copyout(&osa, SCARG(uap, osa), sizeof(osa));
424 if (error)
425 return (error);
426 }
427 return (0);
428 }
429 #endif
430
431 /* ARGSUSED */
432 int
433 sys___sigaction_sigtramp(struct lwp *l, void *v, register_t *retval)
434 {
435 struct sys___sigaction_sigtramp_args /* {
436 syscallarg(int) signum;
437 syscallarg(const struct sigaction *) nsa;
438 syscallarg(struct sigaction *) osa;
439 syscallarg(void *) tramp;
440 syscallarg(int) vers;
441 } */ *uap = v;
442 struct proc *p = l->l_proc;
443 struct sigaction nsa, osa;
444 int error;
445
446 if (SCARG(uap, nsa)) {
447 error = copyin(SCARG(uap, nsa), &nsa, sizeof(nsa));
448 if (error)
449 return (error);
450 }
451 error = sigaction1(p, SCARG(uap, signum),
452 SCARG(uap, nsa) ? &nsa : 0, SCARG(uap, osa) ? &osa : 0,
453 SCARG(uap, tramp), SCARG(uap, vers));
454 if (error)
455 return (error);
456 if (SCARG(uap, osa)) {
457 error = copyout(&osa, SCARG(uap, osa), sizeof(osa));
458 if (error)
459 return (error);
460 }
461 return (0);
462 }
463
464 /*
465 * Initialize signal state for process 0;
466 * set to ignore signals that are ignored by default and disable the signal
467 * stack.
468 */
469 void
470 siginit(struct proc *p)
471 {
472 struct sigacts *ps;
473 int signum, prop;
474
475 ps = p->p_sigacts;
476 sigemptyset(&contsigmask);
477 sigemptyset(&stopsigmask);
478 sigemptyset(&sigcantmask);
479 for (signum = 1; signum < NSIG; signum++) {
480 prop = sigprop[signum];
481 if (prop & SA_CONT)
482 sigaddset(&contsigmask, signum);
483 if (prop & SA_STOP)
484 sigaddset(&stopsigmask, signum);
485 if (prop & SA_CANTMASK)
486 sigaddset(&sigcantmask, signum);
487 if (prop & SA_IGNORE && signum != SIGCONT)
488 sigaddset(&p->p_sigctx.ps_sigignore, signum);
489 sigemptyset(&SIGACTION_PS(ps, signum).sa_mask);
490 SIGACTION_PS(ps, signum).sa_flags = SA_RESTART;
491 }
492 sigemptyset(&p->p_sigctx.ps_sigcatch);
493 p->p_sigctx.ps_sigwaited = NULL;
494 p->p_flag &= ~P_NOCLDSTOP;
495
496 /*
497 * Reset stack state to the user stack.
498 */
499 p->p_sigctx.ps_sigstk.ss_flags = SS_DISABLE;
500 p->p_sigctx.ps_sigstk.ss_size = 0;
501 p->p_sigctx.ps_sigstk.ss_sp = 0;
502
503 /* One reference. */
504 ps->sa_refcnt = 1;
505 }
506
507 /*
508 * Reset signals for an exec of the specified process.
509 */
510 void
511 execsigs(struct proc *p)
512 {
513 struct sigacts *ps;
514 int signum, prop;
515
516 sigactsunshare(p);
517
518 ps = p->p_sigacts;
519
520 /*
521 * Reset caught signals. Held signals remain held
522 * through p_sigctx.ps_sigmask (unless they were caught,
523 * and are now ignored by default).
524 */
525 for (signum = 1; signum < NSIG; signum++) {
526 if (sigismember(&p->p_sigctx.ps_sigcatch, signum)) {
527 prop = sigprop[signum];
528 if (prop & SA_IGNORE) {
529 if ((prop & SA_CONT) == 0)
530 sigaddset(&p->p_sigctx.ps_sigignore,
531 signum);
532 sigdelset(&p->p_sigctx.ps_siglist, signum);
533 }
534 SIGACTION_PS(ps, signum).sa_handler = SIG_DFL;
535 }
536 sigemptyset(&SIGACTION_PS(ps, signum).sa_mask);
537 SIGACTION_PS(ps, signum).sa_flags = SA_RESTART;
538 }
539 sigemptyset(&p->p_sigctx.ps_sigcatch);
540 p->p_sigctx.ps_sigwaited = NULL;
541 p->p_flag &= ~P_NOCLDSTOP;
542
543 /*
544 * Reset stack state to the user stack.
545 */
546 p->p_sigctx.ps_sigstk.ss_flags = SS_DISABLE;
547 p->p_sigctx.ps_sigstk.ss_size = 0;
548 p->p_sigctx.ps_sigstk.ss_sp = 0;
549 }
550
551 int
552 sigprocmask1(struct proc *p, int how, const sigset_t *nss, sigset_t *oss)
553 {
554
555 if (oss)
556 *oss = p->p_sigctx.ps_sigmask;
557
558 if (nss) {
559 (void)splsched(); /* XXXSMP */
560 switch (how) {
561 case SIG_BLOCK:
562 sigplusset(nss, &p->p_sigctx.ps_sigmask);
563 break;
564 case SIG_UNBLOCK:
565 sigminusset(nss, &p->p_sigctx.ps_sigmask);
566 CHECKSIGS(p);
567 break;
568 case SIG_SETMASK:
569 p->p_sigctx.ps_sigmask = *nss;
570 CHECKSIGS(p);
571 break;
572 default:
573 (void)spl0(); /* XXXSMP */
574 return (EINVAL);
575 }
576 sigminusset(&sigcantmask, &p->p_sigctx.ps_sigmask);
577 (void)spl0(); /* XXXSMP */
578 }
579
580 return (0);
581 }
582
583 /*
584 * Manipulate signal mask.
585 * Note that we receive new mask, not pointer,
586 * and return old mask as return value;
587 * the library stub does the rest.
588 */
589 int
590 sys___sigprocmask14(struct lwp *l, void *v, register_t *retval)
591 {
592 struct sys___sigprocmask14_args /* {
593 syscallarg(int) how;
594 syscallarg(const sigset_t *) set;
595 syscallarg(sigset_t *) oset;
596 } */ *uap = v;
597 struct proc *p;
598 sigset_t nss, oss;
599 int error;
600
601 if (SCARG(uap, set)) {
602 error = copyin(SCARG(uap, set), &nss, sizeof(nss));
603 if (error)
604 return (error);
605 }
606 p = l->l_proc;
607 error = sigprocmask1(p, SCARG(uap, how),
608 SCARG(uap, set) ? &nss : 0, SCARG(uap, oset) ? &oss : 0);
609 if (error)
610 return (error);
611 if (SCARG(uap, oset)) {
612 error = copyout(&oss, SCARG(uap, oset), sizeof(oss));
613 if (error)
614 return (error);
615 }
616 return (0);
617 }
618
619 void
620 sigpending1(struct proc *p, sigset_t *ss)
621 {
622
623 *ss = p->p_sigctx.ps_siglist;
624 sigminusset(&p->p_sigctx.ps_sigmask, ss);
625 }
626
627 /* ARGSUSED */
628 int
629 sys___sigpending14(struct lwp *l, void *v, register_t *retval)
630 {
631 struct sys___sigpending14_args /* {
632 syscallarg(sigset_t *) set;
633 } */ *uap = v;
634 struct proc *p;
635 sigset_t ss;
636
637 p = l->l_proc;
638 sigpending1(p, &ss);
639 return (copyout(&ss, SCARG(uap, set), sizeof(ss)));
640 }
641
642 int
643 sigsuspend1(struct proc *p, const sigset_t *ss)
644 {
645 struct sigacts *ps;
646
647 ps = p->p_sigacts;
648 if (ss) {
649 /*
650 * When returning from sigpause, we want
651 * the old mask to be restored after the
652 * signal handler has finished. Thus, we
653 * save it here and mark the sigctx structure
654 * to indicate this.
655 */
656 p->p_sigctx.ps_oldmask = p->p_sigctx.ps_sigmask;
657 p->p_sigctx.ps_flags |= SAS_OLDMASK;
658 (void) splsched(); /* XXXSMP */
659 p->p_sigctx.ps_sigmask = *ss;
660 CHECKSIGS(p);
661 sigminusset(&sigcantmask, &p->p_sigctx.ps_sigmask);
662 (void) spl0(); /* XXXSMP */
663 }
664
665 while (tsleep((caddr_t) ps, PPAUSE|PCATCH, "pause", 0) == 0)
666 /* void */;
667
668 /* always return EINTR rather than ERESTART... */
669 return (EINTR);
670 }
671
672 /*
673 * Suspend process until signal, providing mask to be set
674 * in the meantime. Note nonstandard calling convention:
675 * libc stub passes mask, not pointer, to save a copyin.
676 */
677 /* ARGSUSED */
678 int
679 sys___sigsuspend14(struct lwp *l, void *v, register_t *retval)
680 {
681 struct sys___sigsuspend14_args /* {
682 syscallarg(const sigset_t *) set;
683 } */ *uap = v;
684 struct proc *p;
685 sigset_t ss;
686 int error;
687
688 if (SCARG(uap, set)) {
689 error = copyin(SCARG(uap, set), &ss, sizeof(ss));
690 if (error)
691 return (error);
692 }
693
694 p = l->l_proc;
695 return (sigsuspend1(p, SCARG(uap, set) ? &ss : 0));
696 }
697
698 int
699 sigaltstack1(struct proc *p, const struct sigaltstack *nss,
700 struct sigaltstack *oss)
701 {
702
703 if (oss)
704 *oss = p->p_sigctx.ps_sigstk;
705
706 if (nss) {
707 if (nss->ss_flags & ~SS_ALLBITS)
708 return (EINVAL);
709
710 if (nss->ss_flags & SS_DISABLE) {
711 if (p->p_sigctx.ps_sigstk.ss_flags & SS_ONSTACK)
712 return (EINVAL);
713 } else {
714 if (nss->ss_size < MINSIGSTKSZ)
715 return (ENOMEM);
716 }
717 p->p_sigctx.ps_sigstk = *nss;
718 }
719
720 return (0);
721 }
722
723 /* ARGSUSED */
724 int
725 sys___sigaltstack14(struct lwp *l, void *v, register_t *retval)
726 {
727 struct sys___sigaltstack14_args /* {
728 syscallarg(const struct sigaltstack *) nss;
729 syscallarg(struct sigaltstack *) oss;
730 } */ *uap = v;
731 struct proc *p;
732 struct sigaltstack nss, oss;
733 int error;
734
735 if (SCARG(uap, nss)) {
736 error = copyin(SCARG(uap, nss), &nss, sizeof(nss));
737 if (error)
738 return (error);
739 }
740 p = l->l_proc;
741 error = sigaltstack1(p,
742 SCARG(uap, nss) ? &nss : 0, SCARG(uap, oss) ? &oss : 0);
743 if (error)
744 return (error);
745 if (SCARG(uap, oss)) {
746 error = copyout(&oss, SCARG(uap, oss), sizeof(oss));
747 if (error)
748 return (error);
749 }
750 return (0);
751 }
752
753 /* ARGSUSED */
754 int
755 sys_kill(struct lwp *l, void *v, register_t *retval)
756 {
757 struct sys_kill_args /* {
758 syscallarg(int) pid;
759 syscallarg(int) signum;
760 } */ *uap = v;
761 struct proc *cp, *p;
762 struct pcred *pc;
763 ksiginfo_t ksi;
764
765 cp = l->l_proc;
766 pc = cp->p_cred;
767 if ((u_int)SCARG(uap, signum) >= NSIG)
768 return (EINVAL);
769 KSI_INIT(&ksi);
770 ksi.ksi_signo = SCARG(uap, signum);
771 ksi.ksi_code = SI_USER;
772 ksi.ksi_pid = cp->p_pid;
773 ksi.ksi_uid = cp->p_ucred->cr_uid;
774 if (SCARG(uap, pid) > 0) {
775 /* kill single process */
776 if ((p = pfind(SCARG(uap, pid))) == NULL)
777 return (ESRCH);
778 if (!CANSIGNAL(cp, pc, p, SCARG(uap, signum)))
779 return (EPERM);
780 if (SCARG(uap, signum))
781 kpsignal2(p, &ksi, 1);
782 return (0);
783 }
784 switch (SCARG(uap, pid)) {
785 case -1: /* broadcast signal */
786 return (killpg1(cp, &ksi, 0, 1));
787 case 0: /* signal own process group */
788 return (killpg1(cp, &ksi, 0, 0));
789 default: /* negative explicit process group */
790 return (killpg1(cp, &ksi, -SCARG(uap, pid), 0));
791 }
792 /* NOTREACHED */
793 }
794
795 /*
796 * Common code for kill process group/broadcast kill.
797 * cp is calling process.
798 */
799 int
800 killpg1(struct proc *cp, ksiginfo_t *ksi, int pgid, int all)
801 {
802 struct proc *p;
803 struct pcred *pc;
804 struct pgrp *pgrp;
805 int nfound;
806 int signum = ksi->ksi_signo;
807
808 pc = cp->p_cred;
809 nfound = 0;
810 if (all) {
811 /*
812 * broadcast
813 */
814 proclist_lock_read();
815 PROCLIST_FOREACH(p, &allproc) {
816 if (p->p_pid <= 1 || p->p_flag & P_SYSTEM ||
817 p == cp || !CANSIGNAL(cp, pc, p, signum))
818 continue;
819 nfound++;
820 if (signum)
821 kpsignal2(p, ksi, 1);
822 }
823 proclist_unlock_read();
824 } else {
825 if (pgid == 0)
826 /*
827 * zero pgid means send to my process group.
828 */
829 pgrp = cp->p_pgrp;
830 else {
831 pgrp = pgfind(pgid);
832 if (pgrp == NULL)
833 return (ESRCH);
834 }
835 LIST_FOREACH(p, &pgrp->pg_members, p_pglist) {
836 if (p->p_pid <= 1 || p->p_flag & P_SYSTEM ||
837 !CANSIGNAL(cp, pc, p, signum))
838 continue;
839 nfound++;
840 if (signum && P_ZOMBIE(p) == 0)
841 kpsignal2(p, ksi, 1);
842 }
843 }
844 return (nfound ? 0 : ESRCH);
845 }
846
847 /*
848 * Send a signal to a process group.
849 */
850 void
851 gsignal(int pgid, int signum)
852 {
853 ksiginfo_t ksi;
854 KSI_INIT_EMPTY(&ksi);
855 ksi.ksi_signo = signum;
856 kgsignal(pgid, &ksi, NULL);
857 }
858
859 void
860 kgsignal(int pgid, ksiginfo_t *ksi, void *data)
861 {
862 struct pgrp *pgrp;
863
864 if (pgid && (pgrp = pgfind(pgid)))
865 kpgsignal(pgrp, ksi, data, 0);
866 }
867
868 /*
869 * Send a signal to a process group. If checktty is 1,
870 * limit to members which have a controlling terminal.
871 */
872 void
873 pgsignal(struct pgrp *pgrp, int sig, int checkctty)
874 {
875 ksiginfo_t ksi;
876 KSI_INIT_EMPTY(&ksi);
877 ksi.ksi_signo = sig;
878 kpgsignal(pgrp, &ksi, NULL, checkctty);
879 }
880
881 void
882 kpgsignal(struct pgrp *pgrp, ksiginfo_t *ksi, void *data, int checkctty)
883 {
884 struct proc *p;
885
886 if (pgrp)
887 LIST_FOREACH(p, &pgrp->pg_members, p_pglist)
888 if (checkctty == 0 || p->p_flag & P_CONTROLT)
889 kpsignal(p, ksi, data);
890 }
891
892 /*
893 * Send a signal caused by a trap to the current process.
894 * If it will be caught immediately, deliver it with correct code.
895 * Otherwise, post it normally.
896 */
897 void
898 trapsignal(struct lwp *l, const ksiginfo_t *ksi)
899 {
900 struct proc *p;
901 struct sigacts *ps;
902 int signum = ksi->ksi_signo;
903
904 KASSERT(KSI_TRAP_P(ksi));
905
906 p = l->l_proc;
907 ps = p->p_sigacts;
908 if ((p->p_flag & P_TRACED) == 0 &&
909 sigismember(&p->p_sigctx.ps_sigcatch, signum) &&
910 !sigismember(&p->p_sigctx.ps_sigmask, signum)) {
911 p->p_stats->p_ru.ru_nsignals++;
912 #ifdef KTRACE
913 if (KTRPOINT(p, KTR_PSIG))
914 ktrpsig(p, signum, SIGACTION_PS(ps, signum).sa_handler,
915 &p->p_sigctx.ps_sigmask, ksi);
916 #endif
917 kpsendsig(l, ksi, &p->p_sigctx.ps_sigmask);
918 (void) splsched(); /* XXXSMP */
919 sigplusset(&SIGACTION_PS(ps, signum).sa_mask,
920 &p->p_sigctx.ps_sigmask);
921 if (SIGACTION_PS(ps, signum).sa_flags & SA_RESETHAND) {
922 sigdelset(&p->p_sigctx.ps_sigcatch, signum);
923 if (signum != SIGCONT && sigprop[signum] & SA_IGNORE)
924 sigaddset(&p->p_sigctx.ps_sigignore, signum);
925 SIGACTION_PS(ps, signum).sa_handler = SIG_DFL;
926 }
927 (void) spl0(); /* XXXSMP */
928 } else {
929 p->p_sigctx.ps_lwp = l->l_lid;
930 /* XXX for core dump/debugger */
931 p->p_sigctx.ps_signo = ksi->ksi_signo;
932 p->p_sigctx.ps_code = ksi->ksi_trap;
933 kpsignal2(p, ksi, 1);
934 }
935 }
936
937 /*
938 * Fill in signal information and signal the parent for a child status change.
939 */
940 static void
941 child_psignal(struct proc *p, int dolock)
942 {
943 ksiginfo_t ksi;
944
945 KSI_INIT(&ksi);
946 ksi.ksi_signo = SIGCHLD;
947 ksi.ksi_code = p->p_xstat == SIGCONT ? CLD_CONTINUED : CLD_STOPPED;
948 ksi.ksi_pid = p->p_pid;
949 ksi.ksi_uid = p->p_ucred->cr_uid;
950 ksi.ksi_status = p->p_xstat;
951 ksi.ksi_utime = p->p_stats->p_ru.ru_utime.tv_sec;
952 ksi.ksi_stime = p->p_stats->p_ru.ru_stime.tv_sec;
953 kpsignal2(p->p_pptr, &ksi, dolock);
954 }
955
956 /*
957 * Send the signal to the process. If the signal has an action, the action
958 * is usually performed by the target process rather than the caller; we add
959 * the signal to the set of pending signals for the process.
960 *
961 * Exceptions:
962 * o When a stop signal is sent to a sleeping process that takes the
963 * default action, the process is stopped without awakening it.
964 * o SIGCONT restarts stopped processes (or puts them back to sleep)
965 * regardless of the signal action (eg, blocked or ignored).
966 *
967 * Other ignored signals are discarded immediately.
968 *
969 * XXXSMP: Invoked as psignal() or sched_psignal().
970 */
971 void
972 psignal1(struct proc *p, int signum, int dolock)
973 {
974 ksiginfo_t ksi;
975
976 KSI_INIT_EMPTY(&ksi);
977 ksi.ksi_signo = signum;
978 kpsignal2(p, &ksi, dolock);
979 }
980
981 void
982 kpsignal1(struct proc *p, ksiginfo_t *ksi, void *data, int dolock)
983 {
984
985 if ((p->p_flag & P_WEXIT) == 0 && data) {
986 size_t fd;
987 struct filedesc *fdp = p->p_fd;
988
989 ksi->ksi_fd = -1;
990 for (fd = 0; fd < fdp->fd_nfiles; fd++) {
991 struct file *fp = fdp->fd_ofiles[fd];
992 /* XXX: lock? */
993 if (fp && fp->f_data == data) {
994 ksi->ksi_fd = fd;
995 break;
996 }
997 }
998 }
999 kpsignal2(p, ksi, dolock);
1000 }
1001
1002 static void
1003 kpsignal2(struct proc *p, const ksiginfo_t *ksi, int dolock)
1004 {
1005 struct lwp *l, *suspended = NULL;
1006 struct sadata_vp *vp;
1007 int s = 0, prop, allsusp;
1008 sig_t action;
1009 int signum = ksi->ksi_signo;
1010
1011 #ifdef DIAGNOSTIC
1012 if (signum <= 0 || signum >= NSIG)
1013 panic("psignal signal number %d", signum);
1014
1015 /* XXXSMP: works, but icky */
1016 if (dolock)
1017 SCHED_ASSERT_UNLOCKED();
1018 else
1019 SCHED_ASSERT_LOCKED();
1020 #endif
1021
1022 /*
1023 * Notify any interested parties in the signal.
1024 */
1025 KNOTE(&p->p_klist, NOTE_SIGNAL | signum);
1026
1027 prop = sigprop[signum];
1028
1029 /*
1030 * If proc is traced, always give parent a chance.
1031 */
1032 if (p->p_flag & P_TRACED) {
1033 action = SIG_DFL;
1034
1035 /*
1036 * If the process is being traced and the signal is being
1037 * caught, make sure to save any ksiginfo.
1038 */
1039 if (sigismember(&p->p_sigctx.ps_sigcatch, signum))
1040 ksiginfo_put(p, ksi);
1041 } else {
1042 /*
1043 * If the signal was the result of a trap, reset it
1044 * to default action if it's currently masked, so that it would
1045 * coredump immediatelly instead of spinning repeatedly
1046 * taking the signal.
1047 */
1048 if (KSI_TRAP_P(ksi)
1049 && sigismember(&p->p_sigctx.ps_sigmask, signum)
1050 && !sigismember(&p->p_sigctx.ps_sigcatch, signum)) {
1051 sigdelset(&p->p_sigctx.ps_sigignore, signum);
1052 sigdelset(&p->p_sigctx.ps_sigcatch, signum);
1053 sigdelset(&p->p_sigctx.ps_sigmask, signum);
1054 SIGACTION(p, signum).sa_handler = SIG_DFL;
1055 }
1056
1057 /*
1058 * If the signal is being ignored,
1059 * then we forget about it immediately.
1060 * (Note: we don't set SIGCONT in p_sigctx.ps_sigignore,
1061 * and if it is set to SIG_IGN,
1062 * action will be SIG_DFL here.)
1063 */
1064 if (sigismember(&p->p_sigctx.ps_sigignore, signum))
1065 return;
1066 if (sigismember(&p->p_sigctx.ps_sigmask, signum))
1067 action = SIG_HOLD;
1068 else if (sigismember(&p->p_sigctx.ps_sigcatch, signum))
1069 action = SIG_CATCH;
1070 else {
1071 action = SIG_DFL;
1072
1073 if (prop & SA_KILL && p->p_nice > NZERO)
1074 p->p_nice = NZERO;
1075
1076 /*
1077 * If sending a tty stop signal to a member of an
1078 * orphaned process group, discard the signal here if
1079 * the action is default; don't stop the process below
1080 * if sleeping, and don't clear any pending SIGCONT.
1081 */
1082 if (prop & SA_TTYSTOP && p->p_pgrp->pg_jobc == 0)
1083 return;
1084 }
1085 }
1086
1087 if (prop & SA_CONT)
1088 sigminusset(&stopsigmask, &p->p_sigctx.ps_siglist);
1089
1090 if (prop & SA_STOP)
1091 sigminusset(&contsigmask, &p->p_sigctx.ps_siglist);
1092
1093 /*
1094 * If the signal doesn't have SA_CANTMASK (no override for SIGKILL,
1095 * please!), check if anything waits on it. If yes, save the
1096 * info into provided ps_sigwaited, and wake-up the waiter.
1097 * The signal won't be processed further here.
1098 */
1099 if ((prop & SA_CANTMASK) == 0
1100 && p->p_sigctx.ps_sigwaited
1101 && sigismember(p->p_sigctx.ps_sigwait, signum)
1102 && p->p_stat != SSTOP) {
1103 p->p_sigctx.ps_sigwaited->ksi_info = ksi->ksi_info;
1104 p->p_sigctx.ps_sigwaited = NULL;
1105 if (dolock)
1106 wakeup_one(&p->p_sigctx.ps_sigwait);
1107 else
1108 sched_wakeup(&p->p_sigctx.ps_sigwait);
1109 return;
1110 }
1111
1112 sigaddset(&p->p_sigctx.ps_siglist, signum);
1113
1114 /* CHECKSIGS() is "inlined" here. */
1115 p->p_sigctx.ps_sigcheck = 1;
1116
1117 /*
1118 * Defer further processing for signals which are held,
1119 * except that stopped processes must be continued by SIGCONT.
1120 */
1121 if (action == SIG_HOLD &&
1122 ((prop & SA_CONT) == 0 || p->p_stat != SSTOP)) {
1123 ksiginfo_put(p, ksi);
1124 return;
1125 }
1126 /* XXXSMP: works, but icky */
1127 if (dolock)
1128 SCHED_LOCK(s);
1129
1130 if (p->p_flag & P_SA) {
1131 allsusp = 0;
1132 l = NULL;
1133 if (p->p_stat == SACTIVE) {
1134 SLIST_FOREACH(vp, &p->p_sa->sa_vps, savp_next) {
1135 l = vp->savp_lwp;
1136 KDASSERT(l != NULL);
1137 if (l->l_flag & L_SA_IDLE) {
1138 /* wakeup idle LWP */
1139 goto found;
1140 /*NOTREACHED*/
1141 } else if (l->l_flag & L_SA_YIELD) {
1142 /* idle LWP is already waking up */
1143 goto out;
1144 /*NOTREACHED*/
1145 }
1146 }
1147 SLIST_FOREACH(vp, &p->p_sa->sa_vps, savp_next) {
1148 l = vp->savp_lwp;
1149 if (l->l_stat == LSRUN ||
1150 l->l_stat == LSONPROC) {
1151 signotify(p);
1152 goto out;
1153 /*NOTREACHED*/
1154 }
1155 if (l->l_stat == LSSLEEP &&
1156 l->l_flag & L_SINTR) {
1157 /* ok to signal vp lwp */
1158 } else
1159 l = NULL;
1160 }
1161 if (l == NULL)
1162 allsusp = 1;
1163 } else if (p->p_stat == SSTOP) {
1164 SLIST_FOREACH(vp, &p->p_sa->sa_vps, savp_next) {
1165 l = vp->savp_lwp;
1166 if (l->l_stat == LSSLEEP && (l->l_flag & L_SINTR) != 0)
1167 break;
1168 l = NULL;
1169 }
1170 }
1171 } else if (p->p_nrlwps > 0 && (p->p_stat != SSTOP)) {
1172 /*
1173 * At least one LWP is running or on a run queue.
1174 * The signal will be noticed when one of them returns
1175 * to userspace.
1176 */
1177 signotify(p);
1178 /*
1179 * The signal will be noticed very soon.
1180 */
1181 goto out;
1182 /*NOTREACHED*/
1183 } else {
1184 /*
1185 * Find out if any of the sleeps are interruptable,
1186 * and if all the live LWPs remaining are suspended.
1187 */
1188 allsusp = 1;
1189 LIST_FOREACH(l, &p->p_lwps, l_sibling) {
1190 if (l->l_stat == LSSLEEP &&
1191 l->l_flag & L_SINTR)
1192 break;
1193 if (l->l_stat == LSSUSPENDED)
1194 suspended = l;
1195 else if ((l->l_stat != LSZOMB) &&
1196 (l->l_stat != LSDEAD))
1197 allsusp = 0;
1198 }
1199 }
1200
1201 found:
1202 switch (p->p_stat) {
1203 case SACTIVE:
1204
1205 if (l != NULL && (p->p_flag & P_TRACED))
1206 goto run;
1207
1208 /*
1209 * If SIGCONT is default (or ignored) and process is
1210 * asleep, we are finished; the process should not
1211 * be awakened.
1212 */
1213 if ((prop & SA_CONT) && action == SIG_DFL) {
1214 sigdelset(&p->p_sigctx.ps_siglist, signum);
1215 goto done;
1216 }
1217
1218 /*
1219 * When a sleeping process receives a stop
1220 * signal, process immediately if possible.
1221 */
1222 if ((prop & SA_STOP) && action == SIG_DFL) {
1223 /*
1224 * If a child holding parent blocked,
1225 * stopping could cause deadlock.
1226 */
1227 if (p->p_flag & P_PPWAIT) {
1228 goto out;
1229 }
1230 sigdelset(&p->p_sigctx.ps_siglist, signum);
1231 p->p_xstat = signum;
1232 if ((p->p_pptr->p_flag & P_NOCLDSTOP) == 0) {
1233 /*
1234 * XXXSMP: recursive call; don't lock
1235 * the second time around.
1236 */
1237 child_psignal(p, 0);
1238 }
1239 proc_stop(p, 1); /* XXXSMP: recurse? */
1240 goto done;
1241 }
1242
1243 if (l == NULL) {
1244 /*
1245 * Special case: SIGKILL of a process
1246 * which is entirely composed of
1247 * suspended LWPs should succeed. We
1248 * make this happen by unsuspending one of
1249 * them.
1250 */
1251 if (allsusp && (signum == SIGKILL)) {
1252 if (p->p_flag & P_SA) {
1253 /*
1254 * get a suspended lwp from
1255 * the cache to send KILL
1256 * signal
1257 * XXXcl add signal checks at resume points
1258 */
1259 suspended = sa_getcachelwp
1260 (SLIST_FIRST(&p->p_sa->sa_vps));
1261 }
1262 lwp_continue(suspended);
1263 }
1264 goto done;
1265 }
1266 /*
1267 * All other (caught or default) signals
1268 * cause the process to run.
1269 */
1270 goto runfast;
1271 /*NOTREACHED*/
1272 case SSTOP:
1273 /* Process is stopped */
1274 /*
1275 * If traced process is already stopped,
1276 * then no further action is necessary.
1277 */
1278 if (p->p_flag & P_TRACED)
1279 goto done;
1280
1281 /*
1282 * Kill signal always sets processes running,
1283 * if possible.
1284 */
1285 if (signum == SIGKILL) {
1286 l = proc_unstop(p);
1287 if (l)
1288 goto runfast;
1289 goto done;
1290 }
1291
1292 if (prop & SA_CONT) {
1293 /*
1294 * If SIGCONT is default (or ignored),
1295 * we continue the process but don't
1296 * leave the signal in ps_siglist, as
1297 * it has no further action. If
1298 * SIGCONT is held, we continue the
1299 * process and leave the signal in
1300 * ps_siglist. If the process catches
1301 * SIGCONT, let it handle the signal
1302 * itself. If it isn't waiting on an
1303 * event, then it goes back to run
1304 * state. Otherwise, process goes
1305 * back to sleep state.
1306 */
1307 if (action == SIG_DFL)
1308 sigdelset(&p->p_sigctx.ps_siglist,
1309 signum);
1310 l = proc_unstop(p);
1311 if (l && (action == SIG_CATCH))
1312 goto runfast;
1313 goto out;
1314 }
1315
1316 if (prop & SA_STOP) {
1317 /*
1318 * Already stopped, don't need to stop again.
1319 * (If we did the shell could get confused.)
1320 */
1321 sigdelset(&p->p_sigctx.ps_siglist, signum);
1322 goto done;
1323 }
1324
1325 /*
1326 * If a lwp is sleeping interruptibly, then
1327 * wake it up; it will run until the kernel
1328 * boundary, where it will stop in issignal(),
1329 * since p->p_stat is still SSTOP. When the
1330 * process is continued, it will be made
1331 * runnable and can look at the signal.
1332 */
1333 if (l)
1334 goto run;
1335 goto out;
1336 case SIDL:
1337 /* Process is being created by fork */
1338 /* XXX: We are not ready to receive signals yet */
1339 goto done;
1340 default:
1341 /* Else what? */
1342 panic("psignal: Invalid process state %d.", p->p_stat);
1343 }
1344 /*NOTREACHED*/
1345
1346 runfast:
1347 if (action == SIG_CATCH) {
1348 ksiginfo_put(p, ksi);
1349 action = SIG_HOLD;
1350 }
1351 /*
1352 * Raise priority to at least PUSER.
1353 */
1354 if (l->l_priority > PUSER)
1355 l->l_priority = PUSER;
1356 run:
1357 if (action == SIG_CATCH) {
1358 ksiginfo_put(p, ksi);
1359 action = SIG_HOLD;
1360 }
1361
1362 setrunnable(l); /* XXXSMP: recurse? */
1363 out:
1364 if (action == SIG_CATCH)
1365 ksiginfo_put(p, ksi);
1366 done:
1367 /* XXXSMP: works, but icky */
1368 if (dolock)
1369 SCHED_UNLOCK(s);
1370 }
1371
1372 void
1373 kpsendsig(struct lwp *l, const ksiginfo_t *ksi, const sigset_t *mask)
1374 {
1375 struct proc *p = l->l_proc;
1376 struct lwp *le, *li;
1377 siginfo_t *si;
1378 int f;
1379
1380 if (p->p_flag & P_SA) {
1381
1382 /* XXXUPSXXX What if not on sa_vp ? */
1383
1384 f = l->l_flag & L_SA;
1385 l->l_flag &= ~L_SA;
1386 si = pool_get(&siginfo_pool, PR_WAITOK);
1387 si->_info = ksi->ksi_info;
1388 le = li = NULL;
1389 if (KSI_TRAP_P(ksi))
1390 le = l;
1391 else
1392 li = l;
1393 if (sa_upcall(l, SA_UPCALL_SIGNAL | SA_UPCALL_DEFER, le, li,
1394 sizeof(*si), si) != 0) {
1395 pool_put(&siginfo_pool, si);
1396 if (KSI_TRAP_P(ksi))
1397 /* XXX What do we do here?? */;
1398 }
1399 l->l_flag |= f;
1400 return;
1401 }
1402
1403 (*p->p_emul->e_sendsig)(ksi, mask);
1404 }
1405
1406 static __inline int firstsig(const sigset_t *);
1407
1408 static __inline int
1409 firstsig(const sigset_t *ss)
1410 {
1411 int sig;
1412
1413 sig = ffs(ss->__bits[0]);
1414 if (sig != 0)
1415 return (sig);
1416 #if NSIG > 33
1417 sig = ffs(ss->__bits[1]);
1418 if (sig != 0)
1419 return (sig + 32);
1420 #endif
1421 #if NSIG > 65
1422 sig = ffs(ss->__bits[2]);
1423 if (sig != 0)
1424 return (sig + 64);
1425 #endif
1426 #if NSIG > 97
1427 sig = ffs(ss->__bits[3]);
1428 if (sig != 0)
1429 return (sig + 96);
1430 #endif
1431 return (0);
1432 }
1433
1434 /*
1435 * If the current process has received a signal (should be caught or cause
1436 * termination, should interrupt current syscall), return the signal number.
1437 * Stop signals with default action are processed immediately, then cleared;
1438 * they aren't returned. This is checked after each entry to the system for
1439 * a syscall or trap (though this can usually be done without calling issignal
1440 * by checking the pending signal masks in the CURSIG macro.) The normal call
1441 * sequence is
1442 *
1443 * while (signum = CURSIG(curlwp))
1444 * postsig(signum);
1445 */
1446 int
1447 issignal(struct lwp *l)
1448 {
1449 struct proc *p = l->l_proc;
1450 int s = 0, signum, prop;
1451 int dolock = (l->l_flag & L_SINTR) == 0, locked = !dolock;
1452 sigset_t ss;
1453
1454 /* Bail out if we do not own the virtual processor */
1455 if (l->l_flag & L_SA && l->l_savp->savp_lwp != l)
1456 return 0;
1457
1458 if (p->p_stat == SSTOP) {
1459 /*
1460 * The process is stopped/stopping. Stop ourselves now that
1461 * we're on the kernel/userspace boundary.
1462 */
1463 if (dolock)
1464 SCHED_LOCK(s);
1465 l->l_stat = LSSTOP;
1466 p->p_nrlwps--;
1467 if (p->p_flag & P_TRACED)
1468 goto sigtraceswitch;
1469 else
1470 goto sigswitch;
1471 }
1472 for (;;) {
1473 sigpending1(p, &ss);
1474 if (p->p_flag & P_PPWAIT)
1475 sigminusset(&stopsigmask, &ss);
1476 signum = firstsig(&ss);
1477 if (signum == 0) { /* no signal to send */
1478 p->p_sigctx.ps_sigcheck = 0;
1479 if (locked && dolock)
1480 SCHED_LOCK(s);
1481 return (0);
1482 }
1483 /* take the signal! */
1484 sigdelset(&p->p_sigctx.ps_siglist, signum);
1485
1486 /*
1487 * We should see pending but ignored signals
1488 * only if P_TRACED was on when they were posted.
1489 */
1490 if (sigismember(&p->p_sigctx.ps_sigignore, signum) &&
1491 (p->p_flag & P_TRACED) == 0)
1492 continue;
1493
1494 if (p->p_flag & P_TRACED && (p->p_flag & P_PPWAIT) == 0) {
1495 /*
1496 * If traced, always stop, and stay
1497 * stopped until released by the debugger.
1498 */
1499 p->p_xstat = signum;
1500
1501 /* Emulation-specific handling of signal trace */
1502 if ((p->p_emul->e_tracesig != NULL) &&
1503 ((*p->p_emul->e_tracesig)(p, signum) != 0))
1504 goto childresumed;
1505
1506 if ((p->p_flag & P_FSTRACE) == 0)
1507 child_psignal(p, dolock);
1508 if (dolock)
1509 SCHED_LOCK(s);
1510 proc_stop(p, 1);
1511 sigtraceswitch:
1512 mi_switch(l, NULL);
1513 SCHED_ASSERT_UNLOCKED();
1514 if (dolock)
1515 splx(s);
1516 else
1517 dolock = 1;
1518
1519 childresumed:
1520 /*
1521 * If we are no longer being traced, or the parent
1522 * didn't give us a signal, look for more signals.
1523 */
1524 if ((p->p_flag & P_TRACED) == 0 || p->p_xstat == 0)
1525 continue;
1526
1527 /*
1528 * If the new signal is being masked, look for other
1529 * signals.
1530 */
1531 signum = p->p_xstat;
1532 p->p_xstat = 0;
1533 /*
1534 * `p->p_sigctx.ps_siglist |= mask' is done
1535 * in setrunnable().
1536 */
1537 if (sigismember(&p->p_sigctx.ps_sigmask, signum))
1538 continue;
1539 /* take the signal! */
1540 sigdelset(&p->p_sigctx.ps_siglist, signum);
1541 }
1542
1543 prop = sigprop[signum];
1544
1545 /*
1546 * Decide whether the signal should be returned.
1547 * Return the signal's number, or fall through
1548 * to clear it from the pending mask.
1549 */
1550 switch ((long)SIGACTION(p, signum).sa_handler) {
1551
1552 case (long)SIG_DFL:
1553 /*
1554 * Don't take default actions on system processes.
1555 */
1556 if (p->p_pid <= 1) {
1557 #ifdef DIAGNOSTIC
1558 /*
1559 * Are you sure you want to ignore SIGSEGV
1560 * in init? XXX
1561 */
1562 printf("Process (pid %d) got signal %d\n",
1563 p->p_pid, signum);
1564 #endif
1565 break; /* == ignore */
1566 }
1567 /*
1568 * If there is a pending stop signal to process
1569 * with default action, stop here,
1570 * then clear the signal. However,
1571 * if process is member of an orphaned
1572 * process group, ignore tty stop signals.
1573 */
1574 if (prop & SA_STOP) {
1575 if (p->p_flag & P_TRACED ||
1576 (p->p_pgrp->pg_jobc == 0 &&
1577 prop & SA_TTYSTOP))
1578 break; /* == ignore */
1579 p->p_xstat = signum;
1580 if ((p->p_pptr->p_flag & P_NOCLDSTOP) == 0)
1581 child_psignal(p, dolock);
1582 if (dolock)
1583 SCHED_LOCK(s);
1584 proc_stop(p, 1);
1585 sigswitch:
1586 mi_switch(l, NULL);
1587 SCHED_ASSERT_UNLOCKED();
1588 if (dolock)
1589 splx(s);
1590 else
1591 dolock = 1;
1592 break;
1593 } else if (prop & SA_IGNORE) {
1594 /*
1595 * Except for SIGCONT, shouldn't get here.
1596 * Default action is to ignore; drop it.
1597 */
1598 break; /* == ignore */
1599 } else
1600 goto keep;
1601 /*NOTREACHED*/
1602
1603 case (long)SIG_IGN:
1604 /*
1605 * Masking above should prevent us ever trying
1606 * to take action on an ignored signal other
1607 * than SIGCONT, unless process is traced.
1608 */
1609 #ifdef DEBUG_ISSIGNAL
1610 if ((prop & SA_CONT) == 0 &&
1611 (p->p_flag & P_TRACED) == 0)
1612 printf("issignal\n");
1613 #endif
1614 break; /* == ignore */
1615
1616 default:
1617 /*
1618 * This signal has an action, let
1619 * postsig() process it.
1620 */
1621 goto keep;
1622 }
1623 }
1624 /* NOTREACHED */
1625
1626 keep:
1627 /* leave the signal for later */
1628 sigaddset(&p->p_sigctx.ps_siglist, signum);
1629 CHECKSIGS(p);
1630 if (locked && dolock)
1631 SCHED_LOCK(s);
1632 return (signum);
1633 }
1634
1635 /*
1636 * Put the argument process into the stopped state and notify the parent
1637 * via wakeup. Signals are handled elsewhere. The process must not be
1638 * on the run queue.
1639 */
1640 void
1641 proc_stop(struct proc *p, int wakeup)
1642 {
1643 struct lwp *l;
1644 struct proc *parent;
1645 struct sadata_vp *vp;
1646
1647 SCHED_ASSERT_LOCKED();
1648
1649 /* XXX lock process LWP state */
1650 p->p_flag &= ~P_WAITED;
1651 p->p_stat = SSTOP;
1652 parent = p->p_pptr;
1653 parent->p_nstopchild++;
1654
1655 if (p->p_flag & P_SA) {
1656 /*
1657 * Only (try to) put the LWP on the VP in stopped
1658 * state.
1659 * All other LWPs will suspend in sa_setwoken()
1660 * because the VP-LWP in stopped state cannot be
1661 * repossessed.
1662 */
1663 SLIST_FOREACH(vp, &p->p_sa->sa_vps, savp_next) {
1664 l = vp->savp_lwp;
1665 if (l->l_stat == LSONPROC && l->l_cpu == curcpu()) {
1666 l->l_stat = LSSTOP;
1667 p->p_nrlwps--;
1668 } else if (l->l_stat == LSRUN) {
1669 /* Remove LWP from the run queue */
1670 remrunqueue(l);
1671 l->l_stat = LSSTOP;
1672 p->p_nrlwps--;
1673 } else if (l->l_stat == LSSLEEP &&
1674 l->l_flag & L_SA_IDLE) {
1675 l->l_flag &= ~L_SA_IDLE;
1676 l->l_stat = LSSTOP;
1677 }
1678 }
1679 goto out;
1680 }
1681
1682 /*
1683 * Put as many LWP's as possible in stopped state.
1684 * Sleeping ones will notice the stopped state as they try to
1685 * return to userspace.
1686 */
1687
1688 LIST_FOREACH(l, &p->p_lwps, l_sibling) {
1689 if (l->l_stat == LSONPROC) {
1690 /* XXX SMP this assumes that a LWP that is LSONPROC
1691 * is curlwp and hence is about to be mi_switched
1692 * away; the only callers of proc_stop() are:
1693 * - psignal
1694 * - issignal()
1695 * For the former, proc_stop() is only called when
1696 * no processes are running, so we don't worry.
1697 * For the latter, proc_stop() is called right
1698 * before mi_switch().
1699 */
1700 l->l_stat = LSSTOP;
1701 p->p_nrlwps--;
1702 } else if (l->l_stat == LSRUN) {
1703 /* Remove LWP from the run queue */
1704 remrunqueue(l);
1705 l->l_stat = LSSTOP;
1706 p->p_nrlwps--;
1707 } else if ((l->l_stat == LSSLEEP) ||
1708 (l->l_stat == LSSUSPENDED) ||
1709 (l->l_stat == LSZOMB) ||
1710 (l->l_stat == LSDEAD)) {
1711 /*
1712 * Don't do anything; let sleeping LWPs
1713 * discover the stopped state of the process
1714 * on their way out of the kernel; otherwise,
1715 * things like NFS threads that sleep with
1716 * locks will block the rest of the system
1717 * from getting any work done.
1718 *
1719 * Suspended/dead/zombie LWPs aren't going
1720 * anywhere, so we don't need to touch them.
1721 */
1722 }
1723 #ifdef DIAGNOSTIC
1724 else {
1725 panic("proc_stop: process %d lwp %d "
1726 "in unstoppable state %d.\n",
1727 p->p_pid, l->l_lid, l->l_stat);
1728 }
1729 #endif
1730 }
1731
1732 out:
1733 /* XXX unlock process LWP state */
1734
1735 if (wakeup)
1736 sched_wakeup((caddr_t)p->p_pptr);
1737 }
1738
1739 /*
1740 * Given a process in state SSTOP, set the state back to SACTIVE and
1741 * move LSSTOP'd LWPs to LSSLEEP or make them runnable.
1742 *
1743 * If no LWPs ended up runnable (and therefore able to take a signal),
1744 * return a LWP that is sleeping interruptably. The caller can wake
1745 * that LWP up to take a signal.
1746 */
1747 struct lwp *
1748 proc_unstop(struct proc *p)
1749 {
1750 struct lwp *l, *lr = NULL;
1751 struct sadata_vp *vp;
1752 int cantake = 0;
1753
1754 SCHED_ASSERT_LOCKED();
1755
1756 /*
1757 * Our caller wants to be informed if there are only sleeping
1758 * and interruptable LWPs left after we have run so that it
1759 * can invoke setrunnable() if required - return one of the
1760 * interruptable LWPs if this is the case.
1761 */
1762
1763 if (!(p->p_flag & P_WAITED))
1764 p->p_pptr->p_nstopchild--;
1765 p->p_stat = SACTIVE;
1766 LIST_FOREACH(l, &p->p_lwps, l_sibling) {
1767 if (l->l_stat == LSRUN) {
1768 lr = NULL;
1769 cantake = 1;
1770 }
1771 if (l->l_stat != LSSTOP)
1772 continue;
1773
1774 if (l->l_wchan != NULL) {
1775 l->l_stat = LSSLEEP;
1776 if ((cantake == 0) && (l->l_flag & L_SINTR)) {
1777 lr = l;
1778 cantake = 1;
1779 }
1780 } else {
1781 setrunnable(l);
1782 lr = NULL;
1783 cantake = 1;
1784 }
1785 }
1786 if (p->p_flag & P_SA) {
1787 /* Only consider returning the LWP on the VP. */
1788 SLIST_FOREACH(vp, &p->p_sa->sa_vps, savp_next) {
1789 lr = vp->savp_lwp;
1790 if (lr->l_stat == LSSLEEP) {
1791 if (lr->l_flag & L_SA_YIELD) {
1792 setrunnable(lr);
1793 break;
1794 } else if (lr->l_flag & L_SINTR)
1795 return lr;
1796 }
1797 }
1798 return NULL;
1799 }
1800 return lr;
1801 }
1802
1803 /*
1804 * Take the action for the specified signal
1805 * from the current set of pending signals.
1806 */
1807 void
1808 postsig(int signum)
1809 {
1810 struct lwp *l;
1811 struct proc *p;
1812 struct sigacts *ps;
1813 sig_t action;
1814 sigset_t *returnmask;
1815
1816 l = curlwp;
1817 p = l->l_proc;
1818 ps = p->p_sigacts;
1819 #ifdef DIAGNOSTIC
1820 if (signum == 0)
1821 panic("postsig");
1822 #endif
1823
1824 KERNEL_PROC_LOCK(l);
1825
1826 #ifdef MULTIPROCESSOR
1827 /*
1828 * On MP, issignal() can return the same signal to multiple
1829 * LWPs. The LWPs will block above waiting for the kernel
1830 * lock and the first LWP which gets through will then remove
1831 * the signal from ps_siglist. All other LWPs exit here.
1832 */
1833 if (!sigismember(&p->p_sigctx.ps_siglist, signum)) {
1834 KERNEL_PROC_UNLOCK(l);
1835 return;
1836 }
1837 #endif
1838 sigdelset(&p->p_sigctx.ps_siglist, signum);
1839 action = SIGACTION_PS(ps, signum).sa_handler;
1840 if (action == SIG_DFL) {
1841 #ifdef KTRACE
1842 if (KTRPOINT(p, KTR_PSIG))
1843 ktrpsig(p, signum, action,
1844 p->p_sigctx.ps_flags & SAS_OLDMASK ?
1845 &p->p_sigctx.ps_oldmask : &p->p_sigctx.ps_sigmask,
1846 NULL);
1847 #endif
1848 /*
1849 * Default action, where the default is to kill
1850 * the process. (Other cases were ignored above.)
1851 */
1852 sigexit(l, signum);
1853 /* NOTREACHED */
1854 } else {
1855 ksiginfo_t *ksi;
1856 /*
1857 * If we get here, the signal must be caught.
1858 */
1859 #ifdef DIAGNOSTIC
1860 if (action == SIG_IGN ||
1861 sigismember(&p->p_sigctx.ps_sigmask, signum))
1862 panic("postsig action");
1863 #endif
1864 /*
1865 * Set the new mask value and also defer further
1866 * occurrences of this signal.
1867 *
1868 * Special case: user has done a sigpause. Here the
1869 * current mask is not of interest, but rather the
1870 * mask from before the sigpause is what we want
1871 * restored after the signal processing is completed.
1872 */
1873 if (p->p_sigctx.ps_flags & SAS_OLDMASK) {
1874 returnmask = &p->p_sigctx.ps_oldmask;
1875 p->p_sigctx.ps_flags &= ~SAS_OLDMASK;
1876 } else
1877 returnmask = &p->p_sigctx.ps_sigmask;
1878 p->p_stats->p_ru.ru_nsignals++;
1879 ksi = ksiginfo_get(p, signum);
1880 #ifdef KTRACE
1881 if (KTRPOINT(p, KTR_PSIG))
1882 ktrpsig(p, signum, action,
1883 p->p_sigctx.ps_flags & SAS_OLDMASK ?
1884 &p->p_sigctx.ps_oldmask : &p->p_sigctx.ps_sigmask,
1885 ksi);
1886 #endif
1887 if (ksi == NULL) {
1888 ksiginfo_t ksi1;
1889 /*
1890 * we did not save any siginfo for this, either
1891 * because the signal was not caught, or because the
1892 * user did not request SA_SIGINFO
1893 */
1894 KSI_INIT_EMPTY(&ksi1);
1895 ksi1.ksi_signo = signum;
1896 kpsendsig(l, &ksi1, returnmask);
1897 } else {
1898 kpsendsig(l, ksi, returnmask);
1899 pool_put(&ksiginfo_pool, ksi);
1900 }
1901 p->p_sigctx.ps_lwp = 0;
1902 p->p_sigctx.ps_code = 0;
1903 p->p_sigctx.ps_signo = 0;
1904 (void) splsched(); /* XXXSMP */
1905 sigplusset(&SIGACTION_PS(ps, signum).sa_mask,
1906 &p->p_sigctx.ps_sigmask);
1907 if (SIGACTION_PS(ps, signum).sa_flags & SA_RESETHAND) {
1908 sigdelset(&p->p_sigctx.ps_sigcatch, signum);
1909 if (signum != SIGCONT && sigprop[signum] & SA_IGNORE)
1910 sigaddset(&p->p_sigctx.ps_sigignore, signum);
1911 SIGACTION_PS(ps, signum).sa_handler = SIG_DFL;
1912 }
1913 (void) spl0(); /* XXXSMP */
1914 }
1915
1916 KERNEL_PROC_UNLOCK(l);
1917 }
1918
1919 /*
1920 * Kill the current process for stated reason.
1921 */
1922 void
1923 killproc(struct proc *p, const char *why)
1924 {
1925 log(LOG_ERR, "pid %d was killed: %s\n", p->p_pid, why);
1926 uprintf("sorry, pid %d was killed: %s\n", p->p_pid, why);
1927 psignal(p, SIGKILL);
1928 }
1929
1930 /*
1931 * Force the current process to exit with the specified signal, dumping core
1932 * if appropriate. We bypass the normal tests for masked and caught signals,
1933 * allowing unrecoverable failures to terminate the process without changing
1934 * signal state. Mark the accounting record with the signal termination.
1935 * If dumping core, save the signal number for the debugger. Calls exit and
1936 * does not return.
1937 */
1938
1939 #if defined(DEBUG)
1940 int kern_logsigexit = 1; /* not static to make public for sysctl */
1941 #else
1942 int kern_logsigexit = 0; /* not static to make public for sysctl */
1943 #endif
1944
1945 static const char logcoredump[] =
1946 "pid %d (%s), uid %d: exited on signal %d (core dumped)\n";
1947 static const char lognocoredump[] =
1948 "pid %d (%s), uid %d: exited on signal %d (core not dumped, err = %d)\n";
1949
1950 /* Wrapper function for use in p_userret */
1951 static void
1952 lwp_coredump_hook(struct lwp *l, void *arg)
1953 {
1954 int s;
1955
1956 /*
1957 * Suspend ourselves, so that the kernel stack and therefore
1958 * the userland registers saved in the trapframe are around
1959 * for coredump() to write them out.
1960 */
1961 KERNEL_PROC_LOCK(l);
1962 l->l_flag &= ~L_DETACHED;
1963 SCHED_LOCK(s);
1964 l->l_stat = LSSUSPENDED;
1965 l->l_proc->p_nrlwps--;
1966 /* XXX NJWLWP check if this makes sense here: */
1967 l->l_proc->p_stats->p_ru.ru_nvcsw++;
1968 mi_switch(l, NULL);
1969 SCHED_ASSERT_UNLOCKED();
1970 splx(s);
1971
1972 lwp_exit(l);
1973 }
1974
1975 void
1976 sigexit(struct lwp *l, int signum)
1977 {
1978 struct proc *p;
1979 #if 0
1980 struct lwp *l2;
1981 #endif
1982 int error, exitsig;
1983
1984 p = l->l_proc;
1985
1986 /*
1987 * Don't permit coredump() or exit1() multiple times
1988 * in the same process.
1989 */
1990 if (p->p_flag & P_WEXIT) {
1991 KERNEL_PROC_UNLOCK(l);
1992 (*p->p_userret)(l, p->p_userret_arg);
1993 }
1994 p->p_flag |= P_WEXIT;
1995 /* We don't want to switch away from exiting. */
1996 /* XXX multiprocessor: stop LWPs on other processors. */
1997 #if 0
1998 if (p->p_flag & P_SA) {
1999 LIST_FOREACH(l2, &p->p_lwps, l_sibling)
2000 l2->l_flag &= ~L_SA;
2001 p->p_flag &= ~P_SA;
2002 }
2003 #endif
2004
2005 /* Make other LWPs stick around long enough to be dumped */
2006 p->p_userret = lwp_coredump_hook;
2007 p->p_userret_arg = NULL;
2008
2009 exitsig = signum;
2010 p->p_acflag |= AXSIG;
2011 if (sigprop[signum] & SA_CORE) {
2012 p->p_sigctx.ps_signo = signum;
2013 if ((error = coredump(l, NULL)) == 0)
2014 exitsig |= WCOREFLAG;
2015
2016 if (kern_logsigexit) {
2017 /* XXX What if we ever have really large UIDs? */
2018 int uid = p->p_cred && p->p_ucred ?
2019 (int) p->p_ucred->cr_uid : -1;
2020
2021 if (error)
2022 log(LOG_INFO, lognocoredump, p->p_pid,
2023 p->p_comm, uid, signum, error);
2024 else
2025 log(LOG_INFO, logcoredump, p->p_pid,
2026 p->p_comm, uid, signum);
2027 }
2028
2029 }
2030
2031 exit1(l, W_EXITCODE(0, exitsig));
2032 /* NOTREACHED */
2033 }
2034
2035 /*
2036 * Dump core, into a file named "progname.core" or "core" (depending on the
2037 * value of shortcorename), unless the process was setuid/setgid.
2038 */
2039 int
2040 coredump(struct lwp *l, const char *pattern)
2041 {
2042 struct vnode *vp;
2043 struct proc *p;
2044 struct vmspace *vm;
2045 struct ucred *cred;
2046 struct nameidata nd;
2047 struct vattr vattr;
2048 struct mount *mp;
2049 int error, error1;
2050 char name[MAXPATHLEN];
2051
2052 p = l->l_proc;
2053 vm = p->p_vmspace;
2054 cred = p->p_cred->pc_ucred;
2055
2056 /*
2057 * Make sure the process has not set-id, to prevent data leaks.
2058 */
2059 if (p->p_flag & P_SUGID)
2060 return (EPERM);
2061
2062 /*
2063 * Refuse to core if the data + stack + user size is larger than
2064 * the core dump limit. XXX THIS IS WRONG, because of mapped
2065 * data.
2066 */
2067 if (USPACE + ctob(vm->vm_dsize + vm->vm_ssize) >=
2068 p->p_rlimit[RLIMIT_CORE].rlim_cur)
2069 return (EFBIG); /* better error code? */
2070
2071 restart:
2072 /*
2073 * The core dump will go in the current working directory. Make
2074 * sure that the directory is still there and that the mount flags
2075 * allow us to write core dumps there.
2076 */
2077 vp = p->p_cwdi->cwdi_cdir;
2078 if (vp->v_mount == NULL ||
2079 (vp->v_mount->mnt_flag & MNT_NOCOREDUMP) != 0)
2080 return (EPERM);
2081
2082 if (pattern == NULL)
2083 pattern = p->p_limit->pl_corename;
2084 if ((error = build_corename(p, name, pattern, sizeof(name))) != 0)
2085 return error;
2086
2087 NDINIT(&nd, LOOKUP, NOFOLLOW, UIO_SYSSPACE, name, p);
2088 error = vn_open(&nd, O_CREAT | O_NOFOLLOW | FWRITE, S_IRUSR | S_IWUSR);
2089 if (error)
2090 return (error);
2091 vp = nd.ni_vp;
2092
2093 if (vn_start_write(vp, &mp, V_NOWAIT) != 0) {
2094 VOP_UNLOCK(vp, 0);
2095 if ((error = vn_close(vp, FWRITE, cred, p)) != 0)
2096 return (error);
2097 if ((error = vn_start_write(NULL, &mp,
2098 V_WAIT | V_SLEEPONLY | V_PCATCH)) != 0)
2099 return (error);
2100 goto restart;
2101 }
2102
2103 /* Don't dump to non-regular files or files with links. */
2104 if (vp->v_type != VREG ||
2105 VOP_GETATTR(vp, &vattr, cred, p) || vattr.va_nlink != 1) {
2106 error = EINVAL;
2107 goto out;
2108 }
2109 VATTR_NULL(&vattr);
2110 vattr.va_size = 0;
2111 VOP_LEASE(vp, p, cred, LEASE_WRITE);
2112 VOP_SETATTR(vp, &vattr, cred, p);
2113 p->p_acflag |= ACORE;
2114
2115 /* Now dump the actual core file. */
2116 error = (*p->p_execsw->es_coredump)(l, vp, cred);
2117 out:
2118 VOP_UNLOCK(vp, 0);
2119 vn_finished_write(mp, 0);
2120 error1 = vn_close(vp, FWRITE, cred, p);
2121 if (error == 0)
2122 error = error1;
2123 return (error);
2124 }
2125
2126 /*
2127 * Nonexistent system call-- signal process (may want to handle it).
2128 * Flag error in case process won't see signal immediately (blocked or ignored).
2129 */
2130 /* ARGSUSED */
2131 int
2132 sys_nosys(struct lwp *l, void *v, register_t *retval)
2133 {
2134 struct proc *p;
2135
2136 p = l->l_proc;
2137 psignal(p, SIGSYS);
2138 return (ENOSYS);
2139 }
2140
2141 static int
2142 build_corename(struct proc *p, char *dst, const char *src, size_t len)
2143 {
2144 const char *s;
2145 char *d, *end;
2146 int i;
2147
2148 for (s = src, d = dst, end = d + len; *s != '\0'; s++) {
2149 if (*s == '%') {
2150 switch (*(s + 1)) {
2151 case 'n':
2152 i = snprintf(d, end - d, "%s", p->p_comm);
2153 break;
2154 case 'p':
2155 i = snprintf(d, end - d, "%d", p->p_pid);
2156 break;
2157 case 'u':
2158 i = snprintf(d, end - d, "%.*s",
2159 (int)sizeof p->p_pgrp->pg_session->s_login,
2160 p->p_pgrp->pg_session->s_login);
2161 break;
2162 case 't':
2163 i = snprintf(d, end - d, "%ld",
2164 p->p_stats->p_start.tv_sec);
2165 break;
2166 default:
2167 goto copy;
2168 }
2169 d += i;
2170 s++;
2171 } else {
2172 copy: *d = *s;
2173 d++;
2174 }
2175 if (d >= end)
2176 return (ENAMETOOLONG);
2177 }
2178 *d = '\0';
2179 return 0;
2180 }
2181
2182 void
2183 getucontext(struct lwp *l, ucontext_t *ucp)
2184 {
2185 struct proc *p;
2186
2187 p = l->l_proc;
2188
2189 ucp->uc_flags = 0;
2190 ucp->uc_link = l->l_ctxlink;
2191
2192 (void)sigprocmask1(p, 0, NULL, &ucp->uc_sigmask);
2193 ucp->uc_flags |= _UC_SIGMASK;
2194
2195 /*
2196 * The (unsupplied) definition of the `current execution stack'
2197 * in the System V Interface Definition appears to allow returning
2198 * the main context stack.
2199 */
2200 if ((p->p_sigctx.ps_sigstk.ss_flags & SS_ONSTACK) == 0) {
2201 ucp->uc_stack.ss_sp = (void *)USRSTACK;
2202 ucp->uc_stack.ss_size = ctob(p->p_vmspace->vm_ssize);
2203 ucp->uc_stack.ss_flags = 0; /* XXX, def. is Very Fishy */
2204 } else {
2205 /* Simply copy alternate signal execution stack. */
2206 ucp->uc_stack = p->p_sigctx.ps_sigstk;
2207 }
2208 ucp->uc_flags |= _UC_STACK;
2209
2210 cpu_getmcontext(l, &ucp->uc_mcontext, &ucp->uc_flags);
2211 }
2212
2213 /* ARGSUSED */
2214 int
2215 sys_getcontext(struct lwp *l, void *v, register_t *retval)
2216 {
2217 struct sys_getcontext_args /* {
2218 syscallarg(struct __ucontext *) ucp;
2219 } */ *uap = v;
2220 ucontext_t uc;
2221
2222 getucontext(l, &uc);
2223
2224 return (copyout(&uc, SCARG(uap, ucp), sizeof (*SCARG(uap, ucp))));
2225 }
2226
2227 int
2228 setucontext(struct lwp *l, const ucontext_t *ucp)
2229 {
2230 struct proc *p;
2231 int error;
2232
2233 p = l->l_proc;
2234 if ((error = cpu_setmcontext(l, &ucp->uc_mcontext, ucp->uc_flags)) != 0)
2235 return (error);
2236 l->l_ctxlink = ucp->uc_link;
2237
2238 if ((ucp->uc_flags & _UC_SIGMASK) != 0)
2239 sigprocmask1(p, SIG_SETMASK, &ucp->uc_sigmask, NULL);
2240
2241 /*
2242 * If there was stack information, update whether or not we are
2243 * still running on an alternate signal stack.
2244 */
2245 if ((ucp->uc_flags & _UC_STACK) != 0) {
2246 if (ucp->uc_stack.ss_flags & SS_ONSTACK)
2247 p->p_sigctx.ps_sigstk.ss_flags |= SS_ONSTACK;
2248 else
2249 p->p_sigctx.ps_sigstk.ss_flags &= ~SS_ONSTACK;
2250 }
2251
2252 return 0;
2253 }
2254
2255 /* ARGSUSED */
2256 int
2257 sys_setcontext(struct lwp *l, void *v, register_t *retval)
2258 {
2259 struct sys_setcontext_args /* {
2260 syscallarg(const ucontext_t *) ucp;
2261 } */ *uap = v;
2262 ucontext_t uc;
2263 int error;
2264
2265 if (SCARG(uap, ucp) == NULL) /* i.e. end of uc_link chain */
2266 exit1(l, W_EXITCODE(0, 0));
2267 else if ((error = copyin(SCARG(uap, ucp), &uc, sizeof (uc))) != 0 ||
2268 (error = setucontext(l, &uc)) != 0)
2269 return (error);
2270
2271 return (EJUSTRETURN);
2272 }
2273
2274 /*
2275 * sigtimedwait(2) system call, used also for implementation
2276 * of sigwaitinfo() and sigwait().
2277 *
2278 * This only handles single LWP in signal wait. libpthread provides
2279 * it's own sigtimedwait() wrapper to DTRT WRT individual threads.
2280 */
2281 int
2282 sys___sigtimedwait(struct lwp *l, void *v, register_t *retval)
2283 {
2284 struct sys___sigtimedwait_args /* {
2285 syscallarg(const sigset_t *) set;
2286 syscallarg(siginfo_t *) info;
2287 syscallarg(struct timespec *) timeout;
2288 } */ *uap = v;
2289 sigset_t *waitset, twaitset;
2290 struct proc *p = l->l_proc;
2291 int error, signum, s;
2292 int timo = 0;
2293 struct timeval tvstart;
2294 struct timespec ts;
2295 ksiginfo_t *ksi;
2296
2297 MALLOC(waitset, sigset_t *, sizeof(sigset_t), M_TEMP, M_WAITOK);
2298
2299 if ((error = copyin(SCARG(uap, set), waitset, sizeof(sigset_t)))) {
2300 FREE(waitset, M_TEMP);
2301 return (error);
2302 }
2303
2304 /*
2305 * Silently ignore SA_CANTMASK signals. psignal1() would
2306 * ignore SA_CANTMASK signals in waitset, we do this
2307 * only for the below siglist check.
2308 */
2309 sigminusset(&sigcantmask, waitset);
2310
2311 /*
2312 * First scan siglist and check if there is signal from
2313 * our waitset already pending.
2314 */
2315 twaitset = *waitset;
2316 __sigandset(&p->p_sigctx.ps_siglist, &twaitset);
2317 if ((signum = firstsig(&twaitset))) {
2318 /* found pending signal */
2319 sigdelset(&p->p_sigctx.ps_siglist, signum);
2320 ksi = ksiginfo_get(p, signum);
2321 if (!ksi) {
2322 /* No queued siginfo, manufacture one */
2323 ksi = pool_get(&ksiginfo_pool, PR_WAITOK);
2324 KSI_INIT(ksi);
2325 ksi->ksi_info._signo = signum;
2326 ksi->ksi_info._code = SI_USER;
2327 }
2328
2329 goto sig;
2330 }
2331
2332 /*
2333 * Calculate timeout, if it was specified.
2334 */
2335 if (SCARG(uap, timeout)) {
2336 uint64_t ms;
2337
2338 if ((error = copyin(SCARG(uap, timeout), &ts, sizeof(ts))))
2339 return (error);
2340
2341 ms = (ts.tv_sec * 1000) + (ts.tv_nsec / 1000000);
2342 timo = mstohz(ms);
2343 if (timo == 0 && ts.tv_sec == 0 && ts.tv_nsec > 0)
2344 timo = 1;
2345 if (timo <= 0)
2346 return (EAGAIN);
2347
2348 /*
2349 * Remember current mono_time, it would be used in
2350 * ECANCELED/ERESTART case.
2351 */
2352 s = splclock();
2353 tvstart = mono_time;
2354 splx(s);
2355 }
2356
2357 /*
2358 * Setup ps_sigwait list. Pass pointer to malloced memory
2359 * here; it's not possible to pass pointer to a structure
2360 * on current process's stack, the current process might
2361 * be swapped out at the time the signal would get delivered.
2362 */
2363 ksi = pool_get(&ksiginfo_pool, PR_WAITOK);
2364 p->p_sigctx.ps_sigwaited = ksi;
2365 p->p_sigctx.ps_sigwait = waitset;
2366
2367 /*
2368 * Wait for signal to arrive. We can either be woken up or
2369 * time out.
2370 */
2371 error = tsleep(&p->p_sigctx.ps_sigwait, PPAUSE|PCATCH, "sigwait", timo);
2372
2373 /*
2374 * Need to find out if we woke as a result of lwp_wakeup()
2375 * or a signal outside our wait set.
2376 */
2377 if (error == EINTR && p->p_sigctx.ps_sigwaited
2378 && !firstsig(&p->p_sigctx.ps_siglist)) {
2379 /* wakeup via _lwp_wakeup() */
2380 error = ECANCELED;
2381 } else if (!error && p->p_sigctx.ps_sigwaited) {
2382 /* spurious wakeup - arrange for syscall restart */
2383 error = ERESTART;
2384 goto fail;
2385 }
2386
2387 /*
2388 * On error, clear sigwait indication. psignal1() clears it
2389 * in !error case.
2390 */
2391 if (error) {
2392 p->p_sigctx.ps_sigwaited = NULL;
2393
2394 /*
2395 * If the sleep was interrupted (either by signal or wakeup),
2396 * update the timeout and copyout new value back.
2397 * It would be used when the syscall would be restarted
2398 * or called again.
2399 */
2400 if (timo && (error == ERESTART || error == ECANCELED)) {
2401 struct timeval tvnow, tvtimo;
2402 int err;
2403
2404 s = splclock();
2405 tvnow = mono_time;
2406 splx(s);
2407
2408 TIMESPEC_TO_TIMEVAL(&tvtimo, &ts);
2409
2410 /* compute how much time has passed since start */
2411 timersub(&tvnow, &tvstart, &tvnow);
2412 /* substract passed time from timeout */
2413 timersub(&tvtimo, &tvnow, &tvtimo);
2414
2415 if (tvtimo.tv_sec < 0) {
2416 error = EAGAIN;
2417 goto fail;
2418 }
2419
2420 TIMEVAL_TO_TIMESPEC(&tvtimo, &ts);
2421
2422 /* copy updated timeout to userland */
2423 if ((err = copyout(&ts, SCARG(uap, timeout), sizeof(ts)))) {
2424 error = err;
2425 goto fail;
2426 }
2427 }
2428
2429 goto fail;
2430 }
2431
2432 /*
2433 * If a signal from the wait set arrived, copy it to userland.
2434 * Copy only the used part of siginfo, the padding part is
2435 * left unchanged (userland is not supposed to touch it anyway).
2436 */
2437 sig:
2438 error = copyout(&ksi->ksi_info, SCARG(uap, info), sizeof(ksi->ksi_info));
2439
2440 fail:
2441 FREE(waitset, M_TEMP);
2442 pool_put(&ksiginfo_pool, ksi);
2443 p->p_sigctx.ps_sigwait = NULL;
2444
2445 return (error);
2446 }
2447
2448 /*
2449 * Returns true if signal is ignored or masked for passed process.
2450 */
2451 int
2452 sigismasked(struct proc *p, int sig)
2453 {
2454
2455 return (sigismember(&p->p_sigctx.ps_sigignore, sig) ||
2456 sigismember(&p->p_sigctx.ps_sigmask, sig));
2457 }
2458
2459 static int
2460 filt_sigattach(struct knote *kn)
2461 {
2462 struct proc *p = curproc;
2463
2464 kn->kn_ptr.p_proc = p;
2465 kn->kn_flags |= EV_CLEAR; /* automatically set */
2466
2467 SLIST_INSERT_HEAD(&p->p_klist, kn, kn_selnext);
2468
2469 return (0);
2470 }
2471
2472 static void
2473 filt_sigdetach(struct knote *kn)
2474 {
2475 struct proc *p = kn->kn_ptr.p_proc;
2476
2477 SLIST_REMOVE(&p->p_klist, kn, knote, kn_selnext);
2478 }
2479
2480 /*
2481 * signal knotes are shared with proc knotes, so we apply a mask to
2482 * the hint in order to differentiate them from process hints. This
2483 * could be avoided by using a signal-specific knote list, but probably
2484 * isn't worth the trouble.
2485 */
2486 static int
2487 filt_signal(struct knote *kn, long hint)
2488 {
2489
2490 if (hint & NOTE_SIGNAL) {
2491 hint &= ~NOTE_SIGNAL;
2492
2493 if (kn->kn_id == hint)
2494 kn->kn_data++;
2495 }
2496 return (kn->kn_data != 0);
2497 }
2498
2499 const struct filterops sig_filtops = {
2500 0, filt_sigattach, filt_sigdetach, filt_signal
2501 };
2502