2 * Copyright (c) 1982, 1986, 1989, 1991, 1993
3 * The Regents of the University of California. All rights reserved.
4 * (c) UNIX System Laboratories, Inc.
5 * All or some portions of this file are derived from material licensed
6 * to the University of California by American Telephone and Telegraph
7 * Co. or Unix System Laboratories, Inc. and are reproduced herein with
8 * the permission of UNIX System Laboratories, Inc.
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
13 * 1. Redistributions of source code must retain the above copyright
14 * notice, this list of conditions and the following disclaimer.
15 * 2. Redistributions in binary form must reproduce the above copyright
16 * notice, this list of conditions and the following disclaimer in the
17 * documentation and/or other materials provided with the distribution.
18 * 3. Neither the name of the University nor the names of its contributors
19 * may be used to endorse or promote products derived from this software
20 * without specific prior written permission.
22 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
23 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
24 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
25 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
26 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
27 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
28 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
29 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
30 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
31 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
34 * @(#)kern_sig.c 8.7 (Berkeley) 4/18/94
35 * $FreeBSD: src/sys/kern/kern_sig.c,v 1.72.2.17 2003/05/16 16:34:34 obrien Exp $
38 #include "opt_ktrace.h"
40 #include <sys/param.h>
41 #include <sys/systm.h>
42 #include <sys/kernel.h>
43 #include <sys/sysproto.h>
44 #include <sys/signalvar.h>
45 #include <sys/resourcevar.h>
46 #include <sys/vnode.h>
47 #include <sys/event.h>
49 #include <sys/nlookup.h>
50 #include <sys/pioctl.h>
52 #include <sys/fcntl.h>
55 #include <sys/ktrace.h>
56 #include <sys/syslog.h>
58 #include <sys/sysent.h>
59 #include <sys/sysctl.h>
60 #include <sys/malloc.h>
61 #include <sys/interrupt.h>
62 #include <sys/unistd.h>
63 #include <sys/kern_syscall.h>
64 #include <sys/vkernel.h>
66 #include <sys/signal2.h>
67 #include <sys/thread2.h>
68 #include <sys/spinlock2.h>
70 #include <machine/cpu.h>
71 #include <machine/smp.h>
73 static int coredump(struct lwp
*, int);
74 static char *expand_name(const char *, uid_t
, pid_t
);
75 static int dokillpg(int sig
, int pgid
, int all
);
76 static int sig_ffs(sigset_t
*set
);
77 static int sigprop(int sig
);
78 static void lwp_signotify(struct lwp
*lp
);
79 static void lwp_signotify_remote(void *arg
);
80 static int kern_sigtimedwait(sigset_t set
, siginfo_t
*info
,
81 struct timespec
*timeout
);
82 static void proc_stopwait(struct proc
*p
);
84 static int filt_sigattach(struct knote
*kn
);
85 static void filt_sigdetach(struct knote
*kn
);
86 static int filt_signal(struct knote
*kn
, long hint
);
88 struct filterops sig_filtops
=
89 { FILTEROP_MPSAFE
, filt_sigattach
, filt_sigdetach
, filt_signal
};
91 static int kern_logsigexit
= 1;
92 SYSCTL_INT(_kern
, KERN_LOGSIGEXIT
, logsigexit
, CTLFLAG_RW
,
94 "Log processes quitting on abnormal signals to syslog(3)");
97 * Can process p, with pcred pc, send the signal sig to process q?
99 #define CANSIGNAL(q, sig) \
100 (!p_trespass(curproc->p_ucred, (q)->p_ucred) || \
101 ((sig) == SIGCONT && (q)->p_session == curproc->p_session))
104 * Policy -- Can real uid ruid with ucred uc send a signal to process q?
106 #define CANSIGIO(ruid, uc, q) \
107 ((uc)->cr_uid == 0 || \
108 (ruid) == (q)->p_ucred->cr_ruid || \
109 (uc)->cr_uid == (q)->p_ucred->cr_ruid || \
110 (ruid) == (q)->p_ucred->cr_uid || \
111 (uc)->cr_uid == (q)->p_ucred->cr_uid)
114 SYSCTL_INT(_kern
, OID_AUTO
, sugid_coredump
, CTLFLAG_RW
,
115 &sugid_coredump
, 0, "Enable coredumping set user/group ID processes");
117 static int do_coredump
= 1;
118 SYSCTL_INT(_kern
, OID_AUTO
, coredump
, CTLFLAG_RW
,
119 &do_coredump
, 0, "Enable/Disable coredumps");
122 * Signal properties and actions.
123 * The array below categorizes the signals and their default actions
124 * according to the following properties:
126 #define SA_KILL 0x01 /* terminates process by default */
127 #define SA_CORE 0x02 /* ditto and coredumps */
128 #define SA_STOP 0x04 /* suspend process */
129 #define SA_TTYSTOP 0x08 /* ditto, from tty */
130 #define SA_IGNORE 0x10 /* ignore by default */
131 #define SA_CONT 0x20 /* continue if suspended */
132 #define SA_CANTMASK 0x40 /* non-maskable, catchable */
133 #define SA_CKPT 0x80 /* checkpoint process */
136 static int sigproptbl
[NSIG
] = {
137 SA_KILL
, /* SIGHUP */
138 SA_KILL
, /* SIGINT */
139 SA_KILL
|SA_CORE
, /* SIGQUIT */
140 SA_KILL
|SA_CORE
, /* SIGILL */
141 SA_KILL
|SA_CORE
, /* SIGTRAP */
142 SA_KILL
|SA_CORE
, /* SIGABRT */
143 SA_KILL
|SA_CORE
, /* SIGEMT */
144 SA_KILL
|SA_CORE
, /* SIGFPE */
145 SA_KILL
, /* SIGKILL */
146 SA_KILL
|SA_CORE
, /* SIGBUS */
147 SA_KILL
|SA_CORE
, /* SIGSEGV */
148 SA_KILL
|SA_CORE
, /* SIGSYS */
149 SA_KILL
, /* SIGPIPE */
150 SA_KILL
, /* SIGALRM */
151 SA_KILL
, /* SIGTERM */
152 SA_IGNORE
, /* SIGURG */
153 SA_STOP
, /* SIGSTOP */
154 SA_STOP
|SA_TTYSTOP
, /* SIGTSTP */
155 SA_IGNORE
|SA_CONT
, /* SIGCONT */
156 SA_IGNORE
, /* SIGCHLD */
157 SA_STOP
|SA_TTYSTOP
, /* SIGTTIN */
158 SA_STOP
|SA_TTYSTOP
, /* SIGTTOU */
159 SA_IGNORE
, /* SIGIO */
160 SA_KILL
, /* SIGXCPU */
161 SA_KILL
, /* SIGXFSZ */
162 SA_KILL
, /* SIGVTALRM */
163 SA_KILL
, /* SIGPROF */
164 SA_IGNORE
, /* SIGWINCH */
165 SA_IGNORE
, /* SIGINFO */
166 SA_KILL
, /* SIGUSR1 */
167 SA_KILL
, /* SIGUSR2 */
168 SA_IGNORE
, /* SIGTHR */
169 SA_CKPT
, /* SIGCKPT */
170 SA_KILL
|SA_CKPT
, /* SIGCKPTEXIT */
208 if (sig
> 0 && sig
< NSIG
)
209 return (sigproptbl
[_SIG_IDX(sig
)]);
214 sig_ffs(sigset_t
*set
)
218 for (i
= 0; i
< _SIG_WORDS
; i
++)
220 return (ffs(set
->__bits
[i
]) + (i
* 32));
228 kern_sigaction(int sig
, struct sigaction
*act
, struct sigaction
*oact
)
230 struct thread
*td
= curthread
;
231 struct proc
*p
= td
->td_proc
;
233 struct sigacts
*ps
= p
->p_sigacts
;
235 if (sig
<= 0 || sig
> _SIG_MAXSIG
)
238 lwkt_gettoken(&p
->p_token
);
241 oact
->sa_handler
= ps
->ps_sigact
[_SIG_IDX(sig
)];
242 oact
->sa_mask
= ps
->ps_catchmask
[_SIG_IDX(sig
)];
244 if (SIGISMEMBER(ps
->ps_sigonstack
, sig
))
245 oact
->sa_flags
|= SA_ONSTACK
;
246 if (!SIGISMEMBER(ps
->ps_sigintr
, sig
))
247 oact
->sa_flags
|= SA_RESTART
;
248 if (SIGISMEMBER(ps
->ps_sigreset
, sig
))
249 oact
->sa_flags
|= SA_RESETHAND
;
250 if (SIGISMEMBER(ps
->ps_signodefer
, sig
))
251 oact
->sa_flags
|= SA_NODEFER
;
252 if (SIGISMEMBER(ps
->ps_siginfo
, sig
))
253 oact
->sa_flags
|= SA_SIGINFO
;
254 if (sig
== SIGCHLD
&& p
->p_sigacts
->ps_flag
& PS_NOCLDSTOP
)
255 oact
->sa_flags
|= SA_NOCLDSTOP
;
256 if (sig
== SIGCHLD
&& p
->p_sigacts
->ps_flag
& PS_NOCLDWAIT
)
257 oact
->sa_flags
|= SA_NOCLDWAIT
;
261 * Check for invalid requests. KILL and STOP cannot be
264 if (sig
== SIGKILL
|| sig
== SIGSTOP
) {
265 if (act
->sa_handler
!= SIG_DFL
) {
266 lwkt_reltoken(&p
->p_token
);
272 * Change setting atomically.
274 ps
->ps_catchmask
[_SIG_IDX(sig
)] = act
->sa_mask
;
275 SIG_CANTMASK(ps
->ps_catchmask
[_SIG_IDX(sig
)]);
276 if (act
->sa_flags
& SA_SIGINFO
) {
277 ps
->ps_sigact
[_SIG_IDX(sig
)] =
278 (__sighandler_t
*)act
->sa_sigaction
;
279 SIGADDSET(ps
->ps_siginfo
, sig
);
281 ps
->ps_sigact
[_SIG_IDX(sig
)] = act
->sa_handler
;
282 SIGDELSET(ps
->ps_siginfo
, sig
);
284 if (!(act
->sa_flags
& SA_RESTART
))
285 SIGADDSET(ps
->ps_sigintr
, sig
);
287 SIGDELSET(ps
->ps_sigintr
, sig
);
288 if (act
->sa_flags
& SA_ONSTACK
)
289 SIGADDSET(ps
->ps_sigonstack
, sig
);
291 SIGDELSET(ps
->ps_sigonstack
, sig
);
292 if (act
->sa_flags
& SA_RESETHAND
)
293 SIGADDSET(ps
->ps_sigreset
, sig
);
295 SIGDELSET(ps
->ps_sigreset
, sig
);
296 if (act
->sa_flags
& SA_NODEFER
)
297 SIGADDSET(ps
->ps_signodefer
, sig
);
299 SIGDELSET(ps
->ps_signodefer
, sig
);
300 if (sig
== SIGCHLD
) {
301 if (act
->sa_flags
& SA_NOCLDSTOP
)
302 p
->p_sigacts
->ps_flag
|= PS_NOCLDSTOP
;
304 p
->p_sigacts
->ps_flag
&= ~PS_NOCLDSTOP
;
305 if (act
->sa_flags
& SA_NOCLDWAIT
) {
307 * Paranoia: since SA_NOCLDWAIT is implemented
308 * by reparenting the dying child to PID 1 (and
309 * trust it to reap the zombie), PID 1 itself
310 * is forbidden to set SA_NOCLDWAIT.
313 p
->p_sigacts
->ps_flag
&= ~PS_NOCLDWAIT
;
315 p
->p_sigacts
->ps_flag
|= PS_NOCLDWAIT
;
317 p
->p_sigacts
->ps_flag
&= ~PS_NOCLDWAIT
;
319 if (ps
->ps_sigact
[_SIG_IDX(SIGCHLD
)] == SIG_IGN
)
320 ps
->ps_flag
|= PS_CLDSIGIGN
;
322 ps
->ps_flag
&= ~PS_CLDSIGIGN
;
325 * Set bit in p_sigignore for signals that are set to SIG_IGN,
326 * and for signals set to SIG_DFL where the default is to
327 * ignore. However, don't put SIGCONT in p_sigignore, as we
328 * have to restart the process.
330 * Also remove the signal from the process and lwp signal
333 if (ps
->ps_sigact
[_SIG_IDX(sig
)] == SIG_IGN
||
334 (sigprop(sig
) & SA_IGNORE
&&
335 ps
->ps_sigact
[_SIG_IDX(sig
)] == SIG_DFL
)) {
336 SIGDELSET_ATOMIC(p
->p_siglist
, sig
);
337 FOREACH_LWP_IN_PROC(lp
, p
) {
338 spin_lock(&lp
->lwp_spin
);
339 SIGDELSET(lp
->lwp_siglist
, sig
);
340 spin_unlock(&lp
->lwp_spin
);
342 if (sig
!= SIGCONT
) {
343 /* easier in ksignal */
344 SIGADDSET(p
->p_sigignore
, sig
);
346 SIGDELSET(p
->p_sigcatch
, sig
);
348 SIGDELSET(p
->p_sigignore
, sig
);
349 if (ps
->ps_sigact
[_SIG_IDX(sig
)] == SIG_DFL
)
350 SIGDELSET(p
->p_sigcatch
, sig
);
352 SIGADDSET(p
->p_sigcatch
, sig
);
355 lwkt_reltoken(&p
->p_token
);
360 sys_sigaction(struct sigaction_args
*uap
)
362 struct sigaction act
, oact
;
363 struct sigaction
*actp
, *oactp
;
366 actp
= (uap
->act
!= NULL
) ? &act
: NULL
;
367 oactp
= (uap
->oact
!= NULL
) ? &oact
: NULL
;
369 error
= copyin(uap
->act
, actp
, sizeof(act
));
373 error
= kern_sigaction(uap
->sig
, actp
, oactp
);
374 if (oactp
&& !error
) {
375 error
= copyout(oactp
, uap
->oact
, sizeof(oact
));
381 * Initialize signal state for process 0;
382 * set to ignore signals that are ignored by default.
385 siginit(struct proc
*p
)
389 for (i
= 1; i
<= NSIG
; i
++)
390 if (sigprop(i
) & SA_IGNORE
&& i
!= SIGCONT
)
391 SIGADDSET(p
->p_sigignore
, i
);
395 * Reset signals for an exec of the specified process.
398 execsigs(struct proc
*p
)
400 struct sigacts
*ps
= p
->p_sigacts
;
404 lp
= ONLY_LWP_IN_PROC(p
);
407 * Reset caught signals. Held signals remain held
408 * through p_sigmask (unless they were caught,
409 * and are now ignored by default).
411 while (SIGNOTEMPTY(p
->p_sigcatch
)) {
412 sig
= sig_ffs(&p
->p_sigcatch
);
413 SIGDELSET(p
->p_sigcatch
, sig
);
414 if (sigprop(sig
) & SA_IGNORE
) {
416 SIGADDSET(p
->p_sigignore
, sig
);
417 SIGDELSET_ATOMIC(p
->p_siglist
, sig
);
418 /* don't need spinlock */
419 SIGDELSET(lp
->lwp_siglist
, sig
);
421 ps
->ps_sigact
[_SIG_IDX(sig
)] = SIG_DFL
;
425 * Reset stack state to the user stack.
426 * Clear set of signals caught on the signal stack.
428 lp
->lwp_sigstk
.ss_flags
= SS_DISABLE
;
429 lp
->lwp_sigstk
.ss_size
= 0;
430 lp
->lwp_sigstk
.ss_sp
= NULL
;
431 lp
->lwp_flags
&= ~LWP_ALTSTACK
;
433 * Reset no zombies if child dies flag as Solaris does.
435 p
->p_sigacts
->ps_flag
&= ~(PS_NOCLDWAIT
| PS_CLDSIGIGN
);
436 if (ps
->ps_sigact
[_SIG_IDX(SIGCHLD
)] == SIG_IGN
)
437 ps
->ps_sigact
[_SIG_IDX(SIGCHLD
)] = SIG_DFL
;
441 * kern_sigprocmask() - MP SAFE ONLY IF p == curproc
443 * Manipulate signal mask. This routine is MP SAFE *ONLY* if
447 kern_sigprocmask(int how
, sigset_t
*set
, sigset_t
*oset
)
449 struct thread
*td
= curthread
;
450 struct lwp
*lp
= td
->td_lwp
;
451 struct proc
*p
= td
->td_proc
;
454 lwkt_gettoken(&p
->p_token
);
457 *oset
= lp
->lwp_sigmask
;
464 SIGSETOR(lp
->lwp_sigmask
, *set
);
467 SIGSETNAND(lp
->lwp_sigmask
, *set
);
471 lp
->lwp_sigmask
= *set
;
479 lwkt_reltoken(&p
->p_token
);
490 sys_sigprocmask(struct sigprocmask_args
*uap
)
493 sigset_t
*setp
, *osetp
;
496 setp
= (uap
->set
!= NULL
) ? &set
: NULL
;
497 osetp
= (uap
->oset
!= NULL
) ? &oset
: NULL
;
499 error
= copyin(uap
->set
, setp
, sizeof(set
));
503 error
= kern_sigprocmask(uap
->how
, setp
, osetp
);
504 if (osetp
&& !error
) {
505 error
= copyout(osetp
, uap
->oset
, sizeof(oset
));
514 kern_sigpending(struct __sigset
*set
)
516 struct lwp
*lp
= curthread
->td_lwp
;
518 *set
= lwp_sigpend(lp
);
527 sys_sigpending(struct sigpending_args
*uap
)
532 error
= kern_sigpending(&set
);
535 error
= copyout(&set
, uap
->set
, sizeof(set
));
540 * Suspend process until signal, providing mask to be set
546 kern_sigsuspend(struct __sigset
*set
)
548 struct thread
*td
= curthread
;
549 struct lwp
*lp
= td
->td_lwp
;
550 struct proc
*p
= td
->td_proc
;
551 struct sigacts
*ps
= p
->p_sigacts
;
554 * When returning from sigsuspend, we want
555 * the old mask to be restored after the
556 * signal handler has finished. Thus, we
557 * save it here and mark the sigacts structure
560 lp
->lwp_oldsigmask
= lp
->lwp_sigmask
;
561 lp
->lwp_flags
|= LWP_OLDMASK
;
564 lp
->lwp_sigmask
= *set
;
565 while (tsleep(ps
, PCATCH
, "pause", 0) == 0)
567 /* always return EINTR rather than ERESTART... */
572 * Note nonstandard calling convention: libc stub passes mask, not
573 * pointer, to save a copyin.
578 sys_sigsuspend(struct sigsuspend_args
*uap
)
583 error
= copyin(uap
->sigmask
, &mask
, sizeof(mask
));
587 error
= kern_sigsuspend(&mask
);
596 kern_sigaltstack(struct sigaltstack
*ss
, struct sigaltstack
*oss
)
598 struct thread
*td
= curthread
;
599 struct lwp
*lp
= td
->td_lwp
;
600 struct proc
*p
= td
->td_proc
;
602 if ((lp
->lwp_flags
& LWP_ALTSTACK
) == 0)
603 lp
->lwp_sigstk
.ss_flags
|= SS_DISABLE
;
606 *oss
= lp
->lwp_sigstk
;
609 if (ss
->ss_flags
& ~SS_DISABLE
)
611 if (ss
->ss_flags
& SS_DISABLE
) {
612 if (lp
->lwp_sigstk
.ss_flags
& SS_ONSTACK
)
614 lp
->lwp_flags
&= ~LWP_ALTSTACK
;
615 lp
->lwp_sigstk
.ss_flags
= ss
->ss_flags
;
617 if (ss
->ss_size
< p
->p_sysent
->sv_minsigstksz
)
619 lp
->lwp_flags
|= LWP_ALTSTACK
;
620 lp
->lwp_sigstk
= *ss
;
631 sys_sigaltstack(struct sigaltstack_args
*uap
)
637 error
= copyin(uap
->ss
, &ss
, sizeof(ss
));
642 error
= kern_sigaltstack(uap
->ss
? &ss
: NULL
, uap
->oss
? &oss
: NULL
);
644 if (error
== 0 && uap
->oss
)
645 error
= copyout(&oss
, uap
->oss
, sizeof(*uap
->oss
));
650 * Common code for kill process group/broadcast kill.
651 * cp is calling process.
658 static int killpg_all_callback(struct proc
*p
, void *data
);
661 dokillpg(int sig
, int pgid
, int all
)
663 struct killpg_info info
;
664 struct proc
*cp
= curproc
;
675 allproc_scan(killpg_all_callback
, &info
, 0);
679 * zero pgid means send to my process group.
690 * Must interlock all signals against fork
692 lockmgr(&pgrp
->pg_lock
, LK_EXCLUSIVE
);
693 LIST_FOREACH(p
, &pgrp
->pg_members
, p_pglist
) {
695 p
->p_stat
== SZOMB
||
696 (p
->p_flags
& P_SYSTEM
) ||
697 !CANSIGNAL(p
, sig
)) {
704 lockmgr(&pgrp
->pg_lock
, LK_RELEASE
);
707 return (info
.nfound
? 0 : ESRCH
);
711 killpg_all_callback(struct proc
*p
, void *data
)
713 struct killpg_info
*info
= data
;
715 if (p
->p_pid
<= 1 || (p
->p_flags
& P_SYSTEM
) ||
716 p
== curproc
|| !CANSIGNAL(p
, info
->sig
)) {
721 ksignal(p
, info
->sig
);
726 * Send a general signal to a process or LWPs within that process.
728 * Note that new signals cannot be sent if a process is exiting or already
729 * a zombie, but we return success anyway as userland is likely to not handle
735 kern_kill(int sig
, pid_t pid
, lwpid_t tid
)
739 if ((u_int
)sig
> _SIG_MAXSIG
)
744 struct lwp
*lp
= NULL
;
747 * Send a signal to a single process. If the kill() is
748 * racing an exiting process which has not yet been reaped
749 * act as though the signal was delivered successfully but
750 * don't actually try to deliver the signal.
752 if ((p
= pfind(pid
)) == NULL
) {
753 if ((p
= zpfind(pid
)) == NULL
)
759 lwkt_gettoken_shared(&p
->p_token
);
760 if (!CANSIGNAL(p
, sig
)) {
761 lwkt_reltoken(&p
->p_token
);
765 lwkt_reltoken(&p
->p_token
);
769 * NOP if the process is exiting. Note that lwpsignal() is
770 * called directly with P_WEXIT set to kill individual LWPs
771 * during exit, which is allowed.
773 if (p
->p_flags
& P_WEXIT
) {
778 lwkt_gettoken_shared(&p
->p_token
);
779 lp
= lwp_rb_tree_RB_LOOKUP(&p
->p_lwp_tree
, tid
);
781 lwkt_reltoken(&p
->p_token
);
786 lwkt_reltoken(&p
->p_token
);
789 lwpsignal(p
, lp
, sig
);
798 * If we come here, pid is a special broadcast pid.
799 * This doesn't mix with a tid.
805 case -1: /* broadcast signal */
806 t
= (dokillpg(sig
, 0, 1));
808 case 0: /* signal own process group */
809 t
= (dokillpg(sig
, 0, 0));
811 default: /* negative explicit process group */
812 t
= (dokillpg(sig
, -pid
, 0));
819 sys_kill(struct kill_args
*uap
)
823 error
= kern_kill(uap
->signum
, uap
->pid
, -1);
828 sys_lwp_kill(struct lwp_kill_args
*uap
)
831 pid_t pid
= uap
->pid
;
834 * A tid is mandatory for lwp_kill(), otherwise
835 * you could simply use kill().
841 * To save on a getpid() function call for intra-process
842 * signals, pid == -1 means current process.
845 pid
= curproc
->p_pid
;
847 error
= kern_kill(uap
->signum
, pid
, uap
->tid
);
852 * Send a signal to a process group.
855 gsignal(int pgid
, int sig
)
859 if (pgid
&& (pgrp
= pgfind(pgid
)))
860 pgsignal(pgrp
, sig
, 0);
864 * Send a signal to a process group. If checktty is 1,
865 * limit to members which have a controlling terminal.
867 * pg_lock interlocks against a fork that might be in progress, to
868 * ensure that the new child process picks up the signal.
871 pgsignal(struct pgrp
*pgrp
, int sig
, int checkctty
)
876 * Must interlock all signals against fork
880 lockmgr(&pgrp
->pg_lock
, LK_EXCLUSIVE
);
881 LIST_FOREACH(p
, &pgrp
->pg_members
, p_pglist
) {
882 if (checkctty
== 0 || p
->p_flags
& P_CONTROLT
)
885 lockmgr(&pgrp
->pg_lock
, LK_RELEASE
);
891 * Send a signal caused by a trap to the current lwp. If it will be caught
892 * immediately, deliver it with correct code. Otherwise, post it normally.
894 * These signals may ONLY be delivered to the specified lwp and may never
895 * be delivered to the process generically.
898 trapsignal(struct lwp
*lp
, int sig
, u_long code
)
900 struct proc
*p
= lp
->lwp_proc
;
901 struct sigacts
*ps
= p
->p_sigacts
;
904 * If we are a virtual kernel running an emulated user process
905 * context, switch back to the virtual kernel context before
906 * trying to post the signal.
908 if (lp
->lwp_vkernel
&& lp
->lwp_vkernel
->ve
) {
909 struct trapframe
*tf
= lp
->lwp_md
.md_regs
;
911 vkernel_trap(lp
, tf
);
914 if ((p
->p_flags
& P_TRACED
) == 0 && SIGISMEMBER(p
->p_sigcatch
, sig
) &&
915 !SIGISMEMBER(lp
->lwp_sigmask
, sig
)) {
916 lp
->lwp_ru
.ru_nsignals
++;
918 if (KTRPOINT(lp
->lwp_thread
, KTR_PSIG
))
919 ktrpsig(lp
, sig
, ps
->ps_sigact
[_SIG_IDX(sig
)],
920 &lp
->lwp_sigmask
, code
);
922 (*p
->p_sysent
->sv_sendsig
)(ps
->ps_sigact
[_SIG_IDX(sig
)], sig
,
923 &lp
->lwp_sigmask
, code
);
924 SIGSETOR(lp
->lwp_sigmask
, ps
->ps_catchmask
[_SIG_IDX(sig
)]);
925 if (!SIGISMEMBER(ps
->ps_signodefer
, sig
))
926 SIGADDSET(lp
->lwp_sigmask
, sig
);
927 if (SIGISMEMBER(ps
->ps_sigreset
, sig
)) {
929 * See kern_sigaction() for origin of this code.
931 SIGDELSET(p
->p_sigcatch
, sig
);
932 if (sig
!= SIGCONT
&&
933 sigprop(sig
) & SA_IGNORE
)
934 SIGADDSET(p
->p_sigignore
, sig
);
935 ps
->ps_sigact
[_SIG_IDX(sig
)] = SIG_DFL
;
938 lp
->lwp_code
= code
; /* XXX for core dump/debugger */
939 lp
->lwp_sig
= sig
; /* XXX to verify code */
940 lwpsignal(p
, lp
, sig
);
945 * Find a suitable lwp to deliver the signal to. Returns NULL if all
946 * lwps hold the signal blocked.
948 * Caller must hold p->p_token.
950 * Returns a lp or NULL. If non-NULL the lp is held and its token is
954 find_lwp_for_signal(struct proc
*p
, int sig
)
957 struct lwp
*run
, *sleep
, *stop
;
960 * If the running/preempted thread belongs to the proc to which
961 * the signal is being delivered and this thread does not block
962 * the signal, then we can avoid a context switch by delivering
963 * the signal to this thread, because it will return to userland
966 lp
= lwkt_preempted_proc();
967 if (lp
!= NULL
&& lp
->lwp_proc
== p
) {
969 lwkt_gettoken(&lp
->lwp_token
);
970 if (!SIGISMEMBER(lp
->lwp_sigmask
, sig
)) {
971 /* return w/ token held */
974 lwkt_reltoken(&lp
->lwp_token
);
978 run
= sleep
= stop
= NULL
;
979 FOREACH_LWP_IN_PROC(lp
, p
) {
981 * If the signal is being blocked by the lwp, then this
982 * lwp is not eligible for receiving the signal.
985 lwkt_gettoken(&lp
->lwp_token
);
987 if (SIGISMEMBER(lp
->lwp_sigmask
, sig
)) {
988 lwkt_reltoken(&lp
->lwp_token
);
993 switch (lp
->lwp_stat
) {
997 lwkt_reltoken(&sleep
->lwp_token
);
1003 lwkt_reltoken(&stop
->lwp_token
);
1012 if (lp
->lwp_flags
& LWP_SINTR
) {
1014 lwkt_reltoken(&lp
->lwp_token
);
1018 lwkt_reltoken(&stop
->lwp_token
);
1026 lwkt_reltoken(&lp
->lwp_token
);
1032 lwkt_reltoken(&lp
->lwp_token
);
1035 lwkt_reltoken(&lp
->lwp_token
);
1048 else if (sleep
!= NULL
)
1055 * Send the signal to the process. If the signal has an action, the action
1056 * is usually performed by the target process rather than the caller; we add
1057 * the signal to the set of pending signals for the process.
1060 * o When a stop signal is sent to a sleeping process that takes the
1061 * default action, the process is stopped without awakening it.
1062 * o SIGCONT restarts stopped processes (or puts them back to sleep)
1063 * regardless of the signal action (eg, blocked or ignored).
1065 * Other ignored signals are discarded immediately.
1067 * If the caller wishes to call this function from a hard code section the
1068 * caller must already hold p->p_token (see kern_clock.c).
1073 ksignal(struct proc
*p
, int sig
)
1075 lwpsignal(p
, NULL
, sig
);
1079 * The core for ksignal. lp may be NULL, then a suitable thread
1080 * will be chosen. If not, lp MUST be a member of p.
1082 * If the caller wishes to call this function from a hard code section the
1083 * caller must already hold p->p_token.
1088 lwpsignal(struct proc
*p
, struct lwp
*lp
, int sig
)
1094 if (sig
> _SIG_MAXSIG
|| sig
<= 0) {
1095 kprintf("lwpsignal: signal %d\n", sig
);
1096 panic("lwpsignal signal number");
1099 KKASSERT(lp
== NULL
|| lp
->lwp_proc
== p
);
1102 * We don't want to race... well, all sorts of things. Get appropriate
1105 * Don't try to deliver a generic signal to an exiting process,
1106 * the signal structures could be in flux. We check the LWP later
1112 lwkt_gettoken(&lp
->lwp_token
);
1114 lwkt_gettoken(&p
->p_token
);
1115 if (p
->p_flags
& P_WEXIT
)
1119 prop
= sigprop(sig
);
1122 * If proc is traced, always give parent a chance;
1123 * if signal event is tracked by procfs, give *that*
1124 * a chance, as well.
1126 if ((p
->p_flags
& P_TRACED
) || (p
->p_stops
& S_SIG
)) {
1130 * Do not try to deliver signals to an exiting lwp other
1131 * than SIGKILL. Note that we must still deliver the signal
1132 * if P_WEXIT is set in the process flags.
1134 if (lp
&& (lp
->lwp_mpflags
& LWP_MP_WEXIT
) && sig
!= SIGKILL
) {
1135 lwkt_reltoken(&lp
->lwp_token
);
1142 * If the signal is being ignored, then we forget about
1143 * it immediately. NOTE: We don't set SIGCONT in p_sigignore,
1144 * and if it is set to SIG_IGN, action will be SIG_DFL here.
1146 if (SIGISMEMBER(p
->p_sigignore
, sig
)) {
1148 * Even if a signal is set SIG_IGN, it may still be
1149 * lurking in a kqueue.
1151 KNOTE(&p
->p_klist
, NOTE_SIGNAL
| sig
);
1153 lwkt_reltoken(&lp
->lwp_token
);
1156 lwkt_reltoken(&p
->p_token
);
1161 if (SIGISMEMBER(p
->p_sigcatch
, sig
))
1168 * If continuing, clear any pending STOP signals for the whole
1171 if (prop
& SA_CONT
) {
1172 lwkt_gettoken(&p
->p_token
);
1173 SIG_STOPSIGMASK_ATOMIC(p
->p_siglist
);
1174 lwkt_reltoken(&p
->p_token
);
1177 if (prop
& SA_STOP
) {
1179 * If sending a tty stop signal to a member of an orphaned
1180 * process group, discard the signal here if the action
1181 * is default; don't stop the process below if sleeping,
1182 * and don't clear any pending SIGCONT.
1184 if ((prop
& SA_TTYSTOP
) && p
->p_pgrp
->pg_jobc
== 0 &&
1185 action
== SIG_DFL
) {
1187 lwkt_reltoken(&lp
->lwp_token
);
1190 lwkt_reltoken(&p
->p_token
);
1195 lwkt_gettoken(&p
->p_token
);
1196 SIG_CONTSIGMASK_ATOMIC(p
->p_siglist
);
1197 p
->p_flags
&= ~P_CONTINUED
;
1198 lwkt_reltoken(&p
->p_token
);
1201 if (p
->p_stat
== SSTOP
) {
1203 * Nobody can handle this signal, add it to the lwp or
1204 * process pending list
1206 lwkt_gettoken(&p
->p_token
);
1207 if (p
->p_stat
!= SSTOP
) {
1208 lwkt_reltoken(&p
->p_token
);
1212 spin_lock(&lp
->lwp_spin
);
1213 SIGADDSET(lp
->lwp_siglist
, sig
);
1214 spin_unlock(&lp
->lwp_spin
);
1216 SIGADDSET_ATOMIC(p
->p_siglist
, sig
);
1220 * If the process is stopped and is being traced, then no
1221 * further action is necessary.
1223 if (p
->p_flags
& P_TRACED
) {
1224 lwkt_reltoken(&p
->p_token
);
1229 * If the process is stopped and receives a KILL signal,
1230 * make the process runnable.
1232 if (sig
== SIGKILL
) {
1233 proc_unstop(p
, SSTOP
);
1234 lwkt_reltoken(&p
->p_token
);
1235 goto active_process
;
1239 * If the process is stopped and receives a CONT signal,
1240 * then try to make the process runnable again.
1242 if (prop
& SA_CONT
) {
1244 * If SIGCONT is default (or ignored), we continue the
1245 * process but don't leave the signal in p_siglist, as
1246 * it has no further action. If SIGCONT is held, we
1247 * continue the process and leave the signal in
1248 * p_siglist. If the process catches SIGCONT, let it
1249 * handle the signal itself.
1251 * XXX what if the signal is being held blocked?
1253 * Token required to interlock kern_wait().
1254 * Reparenting can also cause a race so we have to
1259 lwkt_gettoken(&q
->p_token
);
1260 p
->p_flags
|= P_CONTINUED
;
1262 if (action
== SIG_DFL
)
1263 SIGDELSET_ATOMIC(p
->p_siglist
, sig
);
1264 proc_unstop(p
, SSTOP
);
1265 lwkt_reltoken(&q
->p_token
);
1267 lwkt_reltoken(&p
->p_token
);
1268 if (action
== SIG_CATCH
)
1269 goto active_process
;
1274 * If the process is stopped and receives another STOP
1275 * signal, we do not need to stop it again. If we did
1276 * the shell could get confused.
1278 * However, if the current/preempted lwp is part of the
1279 * process receiving the signal, we need to keep it,
1280 * so that this lwp can stop in issignal() later, as
1281 * we don't want to wait until it reaches userret!
1283 if (prop
& SA_STOP
) {
1284 if (lwkt_preempted_proc() == NULL
||
1285 lwkt_preempted_proc()->lwp_proc
!= p
) {
1286 SIGDELSET_ATOMIC(p
->p_siglist
, sig
);
1291 * Otherwise the process is stopped and it received some
1292 * signal, which does not change its stopped state. When
1293 * the process is continued a wakeup(p) will be issued which
1294 * will wakeup any threads sleeping in tstop().
1296 lwkt_reltoken(&p
->p_token
);
1302 /* else not stopped */
1306 * Never deliver a lwp-specific signal to a random lwp.
1309 /* NOTE: returns lp w/ token held */
1310 lp
= find_lwp_for_signal(p
, sig
);
1312 if (SIGISMEMBER(lp
->lwp_sigmask
, sig
)) {
1313 lwkt_reltoken(&lp
->lwp_token
);
1316 /* maintain proc token */
1319 lwkt_reltoken(&p
->p_token
);
1320 /* maintain lp token */
1326 * Deliver to the process generically if (1) the signal is being
1327 * sent to any thread or (2) we could not find a thread to deliver
1331 KNOTE(&p
->p_klist
, NOTE_SIGNAL
| sig
);
1332 SIGADDSET_ATOMIC(p
->p_siglist
, sig
);
1337 * Deliver to a specific LWP whether it masks it or not. It will
1338 * not be dispatched if masked but we must still deliver it.
1340 if (p
->p_nice
> NZERO
&& action
== SIG_DFL
&& (prop
& SA_KILL
) &&
1341 (p
->p_flags
& P_TRACED
) == 0) {
1342 lwkt_gettoken(&p
->p_token
);
1344 lwkt_reltoken(&p
->p_token
);
1348 * If the process receives a STOP signal which indeed needs to
1349 * stop the process, do so. If the process chose to catch the
1350 * signal, it will be treated like any other signal.
1352 if ((prop
& SA_STOP
) && action
== SIG_DFL
) {
1354 * If a child holding parent blocked, stopping
1355 * could cause deadlock. Take no action at this
1358 lwkt_gettoken(&p
->p_token
);
1359 if (p
->p_flags
& P_PPWAIT
) {
1360 SIGADDSET_ATOMIC(p
->p_siglist
, sig
);
1361 lwkt_reltoken(&p
->p_token
);
1366 * Do not actually try to manipulate the process, but simply
1367 * stop it. Lwps will stop as soon as they safely can.
1369 * Ignore stop if the process is exiting.
1371 if ((p
->p_flags
& P_WEXIT
) == 0) {
1373 proc_stop(p
, SSTOP
);
1375 lwkt_reltoken(&p
->p_token
);
1380 * If it is a CONT signal with default action, just ignore it.
1382 if ((prop
& SA_CONT
) && action
== SIG_DFL
)
1386 * Mark signal pending at this specific thread.
1388 spin_lock(&lp
->lwp_spin
);
1389 SIGADDSET(lp
->lwp_siglist
, sig
);
1390 spin_unlock(&lp
->lwp_spin
);
1396 lwkt_reltoken(&lp
->lwp_token
);
1399 lwkt_reltoken(&p
->p_token
);
1405 * Notify the LWP that a signal has arrived. The LWP does not have to be
1406 * sleeping on the current cpu.
1408 * p->p_token and lp->lwp_token must be held on call.
1410 * We can only safely schedule the thread on its current cpu and only if
1411 * one of the SINTR flags is set. If an SINTR flag is set AND we are on
1412 * the correct cpu we are properly interlocked, otherwise we could be
1413 * racing other thread transition states (or the lwp is on the user scheduler
1414 * runq but not scheduled) and must not do anything.
1416 * Since we hold the lwp token we know the lwp cannot be ripped out from
1417 * under us so we can safely hold it to prevent it from being ripped out
1418 * from under us if we are forced to IPI another cpu to make the local
1421 * Adjustment of lp->lwp_stat can only occur when we hold the lwp_token,
1422 * which we won't in an IPI so any fixups have to be done here, effectively
1423 * replicating part of what setrunnable() does.
1426 lwp_signotify(struct lwp
*lp
)
1430 ASSERT_LWKT_TOKEN_HELD(&lp
->lwp_token
);
1431 dtd
= lp
->lwp_thread
;
1434 if (lp
== lwkt_preempted_proc()) {
1436 * lwp is on the current cpu AND it is currently running
1437 * (we preempted it).
1440 } else if (lp
->lwp_flags
& LWP_SINTR
) {
1442 * lwp is sitting in tsleep() with PCATCH set
1444 if (dtd
->td_gd
== mycpu
) {
1448 * We can only adjust lwp_stat while we hold the
1449 * lwp_token, and we won't in the IPI function.
1452 if (lp
->lwp_stat
== LSSTOP
)
1453 lp
->lwp_stat
= LSSLEEP
;
1454 lwkt_send_ipiq(dtd
->td_gd
, lwp_signotify_remote
, lp
);
1456 } else if (dtd
->td_flags
& TDF_SINTR
) {
1458 * lwp is sitting in lwkt_sleep() with PCATCH set.
1460 if (dtd
->td_gd
== mycpu
) {
1464 * We can only adjust lwp_stat while we hold the
1465 * lwp_token, and we won't in the IPI function.
1468 if (lp
->lwp_stat
== LSSTOP
)
1469 lp
->lwp_stat
= LSSLEEP
;
1470 lwkt_send_ipiq(dtd
->td_gd
, lwp_signotify_remote
, lp
);
1474 * Otherwise the lwp is either in some uninterruptible state
1475 * or it is on the userland scheduler's runqueue waiting to
1476 * be scheduled to a cpu, or it is running in userland. We
1477 * generally want to send an IPI so a running target gets the
1478 * signal ASAP, otherwise a scheduler-tick worth of latency
1481 * Issue an IPI to the remote cpu to knock it into the kernel,
1482 * remote cpu will issue the cpu-local signotify() if the IPI
1483 * preempts the desired thread.
1485 if (dtd
->td_gd
!= mycpu
) {
1487 lwkt_send_ipiq(dtd
->td_gd
, lwp_signotify_remote
, lp
);
1494 * This function is called via an IPI so we cannot call setrunnable() here
1495 * (because while we hold the lp we don't own its token, and can't get it
1498 * We are interlocked by virtue of being on the same cpu as the target. If
1499 * we still are and LWP_SINTR or TDF_SINTR is set we can safely schedule
1500 * the target thread.
1503 lwp_signotify_remote(void *arg
)
1505 struct lwp
*lp
= arg
;
1506 thread_t td
= lp
->lwp_thread
;
1508 if (lp
== lwkt_preempted_proc()) {
1511 } else if (td
->td_gd
== mycpu
) {
1512 if ((lp
->lwp_flags
& LWP_SINTR
) ||
1513 (td
->td_flags
& TDF_SINTR
)) {
1518 lwkt_send_ipiq(td
->td_gd
, lwp_signotify_remote
, lp
);
1519 /* LWPHOLD() is forwarded to the target cpu */
1524 * Caller must hold p->p_token
1527 proc_stop(struct proc
*p
, int sig
)
1532 ASSERT_LWKT_TOKEN_HELD(&p
->p_token
);
1535 * If somebody raced us, be happy with it. SCORE overrides SSTOP.
1538 if (p
->p_stat
== SCORE
|| p
->p_stat
== SZOMB
)
1541 if (p
->p_stat
== SSTOP
|| p
->p_stat
== SCORE
||
1542 p
->p_stat
== SZOMB
) {
1548 FOREACH_LWP_IN_PROC(lp
, p
) {
1550 lwkt_gettoken(&lp
->lwp_token
);
1552 switch (lp
->lwp_stat
) {
1555 * Do nothing, we are already counted in
1562 * We're sleeping, but we will stop before
1563 * returning to userspace, so count us
1564 * as stopped as well. We set LWP_MP_WSTOP
1565 * to signal the lwp that it should not
1566 * increase p_nstopped when reaching tstop().
1568 * LWP_MP_WSTOP is protected by lp->lwp_token.
1570 if ((lp
->lwp_mpflags
& LWP_MP_WSTOP
) == 0) {
1571 atomic_set_int(&lp
->lwp_mpflags
, LWP_MP_WSTOP
);
1578 * We might notify ourself, but that's not
1584 lwkt_reltoken(&lp
->lwp_token
);
1588 if (p
->p_nstopped
== p
->p_nthreads
) {
1590 * Token required to interlock kern_wait(). Reparenting can
1591 * also cause a race so we have to hold (q).
1595 lwkt_gettoken(&q
->p_token
);
1596 p
->p_flags
&= ~P_WAITED
;
1598 if ((q
->p_sigacts
->ps_flag
& PS_NOCLDSTOP
) == 0)
1599 ksignal(p
->p_pptr
, SIGCHLD
);
1600 lwkt_reltoken(&q
->p_token
);
1606 * Caller must hold p_token
1609 proc_unstop(struct proc
*p
, int sig
)
1613 ASSERT_LWKT_TOKEN_HELD(&p
->p_token
);
1615 if (p
->p_stat
!= sig
)
1618 p
->p_stat
= SACTIVE
;
1620 FOREACH_LWP_IN_PROC(lp
, p
) {
1622 lwkt_gettoken(&lp
->lwp_token
);
1624 switch (lp
->lwp_stat
) {
1627 * Uh? Not stopped? Well, I guess that's okay.
1630 kprintf("proc_unstop: lwp %d/%d not sleeping\n",
1631 p
->p_pid
, lp
->lwp_tid
);
1636 * Still sleeping. Don't bother waking it up.
1637 * However, if this thread was counted as
1638 * stopped, undo this.
1640 * Nevertheless we call setrunnable() so that it
1641 * will wake up in case a signal or timeout arrived
1644 * LWP_MP_WSTOP is protected by lp->lwp_token.
1646 if (lp
->lwp_mpflags
& LWP_MP_WSTOP
) {
1647 atomic_clear_int(&lp
->lwp_mpflags
,
1652 kprintf("proc_unstop: lwp %d/%d sleeping, not stopped\n",
1653 p
->p_pid
, lp
->lwp_tid
);
1659 * This handles any lwp's waiting in a tsleep with
1666 lwkt_reltoken(&lp
->lwp_token
);
1671 * This handles any lwp's waiting in tstop(). We have interlocked
1672 * the setting of p_stat by acquiring and releasing each lpw's
1679 * Wait for all threads except the current thread to stop.
1682 proc_stopwait(struct proc
*p
)
1684 while ((p
->p_stat
== SSTOP
|| p
->p_stat
== SCORE
) &&
1685 p
->p_nstopped
< p
->p_nthreads
- 1) {
1686 tsleep_interlock(&p
->p_nstopped
, 0);
1687 if (p
->p_nstopped
< p
->p_nthreads
- 1) {
1688 tsleep(&p
->p_nstopped
, PINTERLOCKED
, "stopwt", hz
);
1697 kern_sigtimedwait(sigset_t waitset
, siginfo_t
*info
, struct timespec
*timeout
)
1699 sigset_t savedmask
, set
;
1700 struct proc
*p
= curproc
;
1701 struct lwp
*lp
= curthread
->td_lwp
;
1702 int error
, sig
, hz
, timevalid
= 0;
1703 struct timespec rts
, ets
, ts
;
1708 ets
.tv_sec
= 0; /* silence compiler warning */
1709 ets
.tv_nsec
= 0; /* silence compiler warning */
1710 SIG_CANTMASK(waitset
);
1711 savedmask
= lp
->lwp_sigmask
;
1714 if (timeout
->tv_sec
>= 0 && timeout
->tv_nsec
>= 0 &&
1715 timeout
->tv_nsec
< 1000000000) {
1717 getnanouptime(&rts
);
1719 timespecadd(&ets
, timeout
);
1724 set
= lwp_sigpend(lp
);
1725 SIGSETAND(set
, waitset
);
1726 if ((sig
= sig_ffs(&set
)) != 0) {
1727 SIGFILLSET(lp
->lwp_sigmask
);
1728 SIGDELSET(lp
->lwp_sigmask
, sig
);
1729 SIG_CANTMASK(lp
->lwp_sigmask
);
1730 sig
= issignal(lp
, 1, 0);
1732 * It may be a STOP signal, in the case, issignal
1733 * returns 0, because we may stop there, and new
1734 * signal can come in, we should restart if we got
1744 * Previous checking got nothing, and we retried but still
1745 * got nothing, we should return the error status.
1751 * POSIX says this must be checked after looking for pending
1755 if (timevalid
== 0) {
1759 getnanouptime(&rts
);
1760 if (timespeccmp(&rts
, &ets
, >=)) {
1765 timespecsub(&ts
, &rts
);
1766 TIMESPEC_TO_TIMEVAL(&tv
, &ts
);
1767 hz
= tvtohz_high(&tv
);
1772 lp
->lwp_sigmask
= savedmask
;
1773 SIGSETNAND(lp
->lwp_sigmask
, waitset
);
1775 * We won't ever be woken up. Instead, our sleep will
1776 * be broken in lwpsignal().
1778 error
= tsleep(&p
->p_sigacts
, PCATCH
, "sigwt", hz
);
1780 if (error
== ERESTART
) {
1781 /* can not restart a timeout wait. */
1783 } else if (error
== EAGAIN
) {
1784 /* will calculate timeout by ourself. */
1791 lp
->lwp_sigmask
= savedmask
;
1794 bzero(info
, sizeof(*info
));
1795 info
->si_signo
= sig
;
1796 spin_lock(&lp
->lwp_spin
);
1797 lwp_delsig(lp
, sig
, 1); /* take the signal! */
1798 spin_unlock(&lp
->lwp_spin
);
1800 if (sig
== SIGKILL
) {
1813 sys_sigtimedwait(struct sigtimedwait_args
*uap
)
1816 struct timespec
*timeout
;
1822 error
= copyin(uap
->timeout
, &ts
, sizeof(ts
));
1829 error
= copyin(uap
->set
, &set
, sizeof(set
));
1832 error
= kern_sigtimedwait(set
, &info
, timeout
);
1836 error
= copyout(&info
, uap
->info
, sizeof(info
));
1837 /* Repost if we got an error. */
1841 * This could transform a thread-specific signal to another
1842 * thread / process pending signal.
1845 ksignal(curproc
, info
.si_signo
);
1847 uap
->sysmsg_result
= info
.si_signo
;
1856 sys_sigwaitinfo(struct sigwaitinfo_args
*uap
)
1862 error
= copyin(uap
->set
, &set
, sizeof(set
));
1865 error
= kern_sigtimedwait(set
, &info
, NULL
);
1869 error
= copyout(&info
, uap
->info
, sizeof(info
));
1870 /* Repost if we got an error. */
1874 * This could transform a thread-specific signal to another
1875 * thread / process pending signal.
1878 ksignal(curproc
, info
.si_signo
);
1880 uap
->sysmsg_result
= info
.si_signo
;
1886 * If the current process has received a signal that would interrupt a
1887 * system call, return EINTR or ERESTART as appropriate.
1890 iscaught(struct lwp
*lp
)
1892 struct proc
*p
= lp
->lwp_proc
;
1896 if ((sig
= CURSIG(lp
)) != 0) {
1897 if (SIGISMEMBER(p
->p_sigacts
->ps_sigintr
, sig
))
1902 return(EWOULDBLOCK
);
1906 * If the current lwp/proc has received a signal (should be caught or cause
1907 * termination, should interrupt current syscall), return the signal number.
1908 * Stop signals with default action are processed immediately, then cleared;
1909 * they aren't returned. This is checked after each entry to the system for
1910 * a syscall or trap (though this can usually be done without calling issignal
1911 * by checking the pending signal masks in the CURSIG macro).
1913 * This routine is called via CURSIG/__cursig. We will acquire and release
1914 * p->p_token but if the caller needs to interlock the test the caller must
1915 * also hold p->p_token.
1917 * while (sig = CURSIG(curproc))
1921 issignal(struct lwp
*lp
, int maytrace
, int *ptokp
)
1923 struct proc
*p
= lp
->lwp_proc
;
1929 int traced
= (p
->p_flags
& P_TRACED
) || (p
->p_stops
& S_SIG
);
1934 * If this process is supposed to stop, stop this thread.
1936 if (STOPLWP(p
, lp
)) {
1937 lwkt_gettoken(&p
->p_token
);
1939 lwkt_reltoken(&p
->p_token
);
1943 * Quick check without token
1945 mask
= lwp_sigpend(lp
);
1946 SIGSETNAND(mask
, lp
->lwp_sigmask
);
1947 if (p
->p_flags
& P_PPWAIT
)
1948 SIG_STOPSIGMASK(mask
);
1949 if (SIGISEMPTY(mask
)) /* no signal to send */
1953 * If the signal is a member of the process signal set
1954 * we need p_token (even if it is also a member of the
1957 sig
= sig_ffs(&mask
);
1958 if (SIGISMEMBER(p
->p_siglist
, sig
)) {
1960 * Recheck with token
1963 lwkt_gettoken(&p
->p_token
);
1965 mask
= lwp_sigpend(lp
);
1966 SIGSETNAND(mask
, lp
->lwp_sigmask
);
1967 if (p
->p_flags
& P_PPWAIT
)
1968 SIG_STOPSIGMASK(mask
);
1969 if (SIGISEMPTY(mask
)) { /* no signal to send */
1970 /* haveptok is TRUE */
1971 lwkt_reltoken(&p
->p_token
);
1974 sig
= sig_ffs(&mask
);
1977 STOPEVENT(p
, S_SIG
, sig
);
1980 * We should see pending but ignored signals
1981 * only if P_TRACED was on when they were posted.
1983 if (SIGISMEMBER(p
->p_sigignore
, sig
) && (traced
== 0)) {
1984 spin_lock(&lp
->lwp_spin
);
1985 lwp_delsig(lp
, sig
, haveptok
);
1986 spin_unlock(&lp
->lwp_spin
);
1988 lwkt_reltoken(&p
->p_token
);
1992 (p
->p_flags
& P_TRACED
) &&
1993 (p
->p_flags
& P_PPWAIT
) == 0) {
1995 * If traced, always stop, and stay stopped until
1996 * released by the parent.
1998 * NOTE: SSTOP may get cleared during the loop,
1999 * but we do not re-notify the parent if we have
2000 * to loop several times waiting for the parent
2001 * to let us continue.
2003 * XXX not sure if this is still true
2005 if (haveptok
== 0) {
2006 lwkt_gettoken(&p
->p_token
);
2010 proc_stop(p
, SSTOP
);
2013 } while (!trace_req(p
) && (p
->p_flags
& P_TRACED
));
2016 * If parent wants us to take the signal,
2017 * then it will leave it in p->p_xstat;
2018 * otherwise we just look for signals again.
2020 spin_lock(&lp
->lwp_spin
);
2021 lwp_delsig(lp
, sig
, 1); /* clear old signal */
2022 spin_unlock(&lp
->lwp_spin
);
2025 /* haveptok is TRUE */
2026 lwkt_reltoken(&p
->p_token
);
2031 * Put the new signal into p_siglist. If the
2032 * signal is being masked, look for other signals.
2034 * XXX lwp might need a call to ksignal()
2036 SIGADDSET_ATOMIC(p
->p_siglist
, sig
);
2037 if (SIGISMEMBER(lp
->lwp_sigmask
, sig
)) {
2038 /* haveptok is TRUE */
2039 lwkt_reltoken(&p
->p_token
);
2044 * If the traced bit got turned off, go back up
2045 * to the top to rescan signals. This ensures
2046 * that p_sig* and ps_sigact are consistent.
2048 if ((p
->p_flags
& P_TRACED
) == 0) {
2049 /* haveptok is TRUE */
2050 lwkt_reltoken(&p
->p_token
);
2056 * p_token may be held here
2058 prop
= sigprop(sig
);
2061 * Decide whether the signal should be returned.
2062 * Return the signal's number, or fall through
2063 * to clear it from the pending mask.
2065 switch ((intptr_t)p
->p_sigacts
->ps_sigact
[_SIG_IDX(sig
)]) {
2066 case (intptr_t)SIG_DFL
:
2068 * Don't take default actions on system processes.
2070 if (p
->p_pid
<= 1) {
2073 * Are you sure you want to ignore SIGSEGV
2076 kprintf("Process (pid %lu) got signal %d\n",
2077 (u_long
)p
->p_pid
, sig
);
2079 break; /* == ignore */
2083 * Handle the in-kernel checkpoint action
2085 if (prop
& SA_CKPT
) {
2086 if (haveptok
== 0) {
2087 lwkt_gettoken(&p
->p_token
);
2090 checkpoint_signal_handler(lp
);
2095 * If there is a pending stop signal to process
2096 * with default action, stop here,
2097 * then clear the signal. However,
2098 * if process is member of an orphaned
2099 * process group, ignore tty stop signals.
2101 if (prop
& SA_STOP
) {
2102 if (haveptok
== 0) {
2103 lwkt_gettoken(&p
->p_token
);
2106 if (p
->p_flags
& P_TRACED
||
2107 (p
->p_pgrp
->pg_jobc
== 0 &&
2109 break; /* == ignore */
2110 if ((p
->p_flags
& P_WEXIT
) == 0) {
2112 proc_stop(p
, SSTOP
);
2116 } else if (prop
& SA_IGNORE
) {
2118 * Except for SIGCONT, shouldn't get here.
2119 * Default action is to ignore; drop it.
2121 break; /* == ignore */
2126 lwkt_reltoken(&p
->p_token
);
2132 case (intptr_t)SIG_IGN
:
2134 * Masking above should prevent us ever trying
2135 * to take action on an ignored signal other
2136 * than SIGCONT, unless process is traced.
2138 if ((prop
& SA_CONT
) == 0 &&
2139 (p
->p_flags
& P_TRACED
) == 0)
2140 kprintf("issignal\n");
2141 break; /* == ignore */
2145 * This signal has an action, let
2146 * postsig() process it.
2151 lwkt_reltoken(&p
->p_token
);
2154 spin_lock(&lp
->lwp_spin
);
2155 lwp_delsig(lp
, sig
, haveptok
); /* take the signal! */
2156 spin_unlock(&lp
->lwp_spin
);
2159 lwkt_reltoken(&p
->p_token
);
2165 * Take the action for the specified signal from the current set of
2168 * haveptok indicates whether the caller is holding p->p_token. If the
2169 * caller is, we are responsible for releasing it.
2171 * This routine can only be called from the top-level trap from usermode.
2172 * It is expecting to be able to modify the top-level stack frame.
2175 postsig(int sig
, int haveptok
)
2177 struct lwp
*lp
= curthread
->td_lwp
;
2178 struct proc
*p
= lp
->lwp_proc
;
2179 struct sigacts
*ps
= p
->p_sigacts
;
2181 sigset_t returnmask
;
2184 KASSERT(sig
!= 0, ("postsig"));
2187 * If we are a virtual kernel running an emulated user process
2188 * context, switch back to the virtual kernel context before
2189 * trying to post the signal.
2191 if (lp
->lwp_vkernel
&& lp
->lwp_vkernel
->ve
) {
2192 struct trapframe
*tf
= lp
->lwp_md
.md_regs
;
2194 vkernel_trap(lp
, tf
);
2197 KNOTE(&p
->p_klist
, NOTE_SIGNAL
| sig
);
2199 spin_lock(&lp
->lwp_spin
);
2200 lwp_delsig(lp
, sig
, haveptok
);
2201 spin_unlock(&lp
->lwp_spin
);
2202 action
= ps
->ps_sigact
[_SIG_IDX(sig
)];
2204 if (KTRPOINT(lp
->lwp_thread
, KTR_PSIG
))
2205 ktrpsig(lp
, sig
, action
, lp
->lwp_flags
& LWP_OLDMASK
?
2206 &lp
->lwp_oldsigmask
: &lp
->lwp_sigmask
, 0);
2209 * We don't need p_token after this point.
2212 lwkt_reltoken(&p
->p_token
);
2214 STOPEVENT(p
, S_SIG
, sig
);
2216 if (action
== SIG_DFL
) {
2218 * Default action, where the default is to kill
2219 * the process. (Other cases were ignored above.)
2225 * If we get here, the signal must be caught.
2227 KASSERT(action
!= SIG_IGN
&& !SIGISMEMBER(lp
->lwp_sigmask
, sig
),
2228 ("postsig action"));
2231 * Reset the signal handler if asked to
2233 if (SIGISMEMBER(ps
->ps_sigreset
, sig
)) {
2235 * See kern_sigaction() for origin of this code.
2237 SIGDELSET(p
->p_sigcatch
, sig
);
2238 if (sig
!= SIGCONT
&&
2239 sigprop(sig
) & SA_IGNORE
)
2240 SIGADDSET(p
->p_sigignore
, sig
);
2241 ps
->ps_sigact
[_SIG_IDX(sig
)] = SIG_DFL
;
2245 * Set the signal mask and calculate the mask to restore
2246 * when the signal function returns.
2248 * Special case: user has done a sigsuspend. Here the
2249 * current mask is not of interest, but rather the
2250 * mask from before the sigsuspend is what we want
2251 * restored after the signal processing is completed.
2253 if (lp
->lwp_flags
& LWP_OLDMASK
) {
2254 returnmask
= lp
->lwp_oldsigmask
;
2255 lp
->lwp_flags
&= ~LWP_OLDMASK
;
2257 returnmask
= lp
->lwp_sigmask
;
2260 SIGSETOR(lp
->lwp_sigmask
, ps
->ps_catchmask
[_SIG_IDX(sig
)]);
2261 if (!SIGISMEMBER(ps
->ps_signodefer
, sig
))
2262 SIGADDSET(lp
->lwp_sigmask
, sig
);
2264 lp
->lwp_ru
.ru_nsignals
++;
2265 if (lp
->lwp_sig
!= sig
) {
2268 code
= lp
->lwp_code
;
2272 (*p
->p_sysent
->sv_sendsig
)(action
, sig
, &returnmask
, code
);
2277 * Kill the current process for stated reason.
2280 killproc(struct proc
*p
, char *why
)
2282 log(LOG_ERR
, "pid %d (%s), uid %d, was killed: %s\n",
2283 p
->p_pid
, p
->p_comm
,
2284 p
->p_ucred
? p
->p_ucred
->cr_uid
: -1, why
);
2285 ksignal(p
, SIGKILL
);
2289 * Force the current process to exit with the specified signal, dumping core
2290 * if appropriate. We bypass the normal tests for masked and caught signals,
2291 * allowing unrecoverable failures to terminate the process without changing
2292 * signal state. Mark the accounting record with the signal termination.
2293 * If dumping core, save the signal number for the debugger. Calls exit and
2296 * This routine does not return.
2299 sigexit(struct lwp
*lp
, int sig
)
2301 struct proc
*p
= lp
->lwp_proc
;
2303 lwkt_gettoken(&p
->p_token
);
2304 p
->p_acflag
|= AXSIG
;
2305 if (sigprop(sig
) & SA_CORE
) {
2309 * All threads must be stopped before we can safely coredump.
2310 * Stop threads using SCORE, which cannot be overridden.
2312 if (p
->p_stat
!= SCORE
) {
2313 proc_stop(p
, SCORE
);
2316 if (coredump(lp
, sig
) == 0)
2322 * Log signals which would cause core dumps
2323 * (Log as LOG_INFO to appease those who don't want
2325 * XXX : Todo, as well as euid, write out ruid too
2327 if (kern_logsigexit
) {
2329 "pid %d (%s), uid %d: exited on signal %d%s\n",
2330 p
->p_pid
, p
->p_comm
,
2331 p
->p_ucred
? p
->p_ucred
->cr_uid
: -1,
2333 sig
& WCOREFLAG
? " (core dumped)" : "");
2336 lwkt_reltoken(&p
->p_token
);
2337 exit1(W_EXITCODE(0, sig
));
2341 static char corefilename
[MAXPATHLEN
+1] = {"%N.core"};
2342 SYSCTL_STRING(_kern
, OID_AUTO
, corefile
, CTLFLAG_RW
, corefilename
,
2343 sizeof(corefilename
), "process corefile name format string");
2346 * expand_name(name, uid, pid)
2347 * Expand the name described in corefilename, using name, uid, and pid.
2348 * corefilename is a kprintf-like string, with three format specifiers:
2349 * %N name of process ("name")
2350 * %P process id (pid)
2352 * For example, "%N.core" is the default; they can be disabled completely
2353 * by using "/dev/null", or all core files can be stored in "/cores/%U/%N-%P".
2354 * This is controlled by the sysctl variable kern.corefile (see above).
2358 expand_name(const char *name
, uid_t uid
, pid_t pid
)
2361 char buf
[11]; /* Buffer for pid/uid -- max 4B */
2363 char *format
= corefilename
;
2366 temp
= kmalloc(MAXPATHLEN
+ 1, M_TEMP
, M_NOWAIT
);
2369 namelen
= strlen(name
);
2370 for (i
= 0, n
= 0; n
< MAXPATHLEN
&& format
[i
]; i
++) {
2372 switch (format
[i
]) {
2373 case '%': /* Format character */
2375 switch (format
[i
]) {
2379 case 'N': /* process name */
2380 if ((n
+ namelen
) > MAXPATHLEN
) {
2381 log(LOG_ERR
, "pid %d (%s), uid (%u): Path `%s%s' is too long\n",
2382 pid
, name
, uid
, temp
, name
);
2383 kfree(temp
, M_TEMP
);
2386 memcpy(temp
+n
, name
, namelen
);
2389 case 'P': /* process id */
2390 l
= ksprintf(buf
, "%u", pid
);
2391 if ((n
+ l
) > MAXPATHLEN
) {
2392 log(LOG_ERR
, "pid %d (%s), uid (%u): Path `%s%s' is too long\n",
2393 pid
, name
, uid
, temp
, name
);
2394 kfree(temp
, M_TEMP
);
2397 memcpy(temp
+n
, buf
, l
);
2400 case 'U': /* user id */
2401 l
= ksprintf(buf
, "%u", uid
);
2402 if ((n
+ l
) > MAXPATHLEN
) {
2403 log(LOG_ERR
, "pid %d (%s), uid (%u): Path `%s%s' is too long\n",
2404 pid
, name
, uid
, temp
, name
);
2405 kfree(temp
, M_TEMP
);
2408 memcpy(temp
+n
, buf
, l
);
2412 log(LOG_ERR
, "Unknown format character %c in `%s'\n", format
[i
], format
);
2416 temp
[n
++] = format
[i
];
2424 * Dump a process' core. The main routine does some
2425 * policy checking, and creates the name of the coredump;
2426 * then it passes on a vnode and a size limit to the process-specific
2427 * coredump routine if there is one; if there _is not_ one, it returns
2428 * ENOSYS; otherwise it returns the error from the process-specific routine.
2430 * The parameter `lp' is the lwp which triggered the coredump.
2434 coredump(struct lwp
*lp
, int sig
)
2436 struct proc
*p
= lp
->lwp_proc
;
2438 struct ucred
*cred
= p
->p_ucred
;
2440 struct nlookupdata nd
;
2443 char *name
; /* name of corefile */
2446 STOPEVENT(p
, S_CORE
, 0);
2448 if (((sugid_coredump
== 0) && p
->p_flags
& P_SUGID
) || do_coredump
== 0)
2452 * Note that the bulk of limit checking is done after
2453 * the corefile is created. The exception is if the limit
2454 * for corefiles is 0, in which case we don't bother
2455 * creating the corefile at all. This layout means that
2456 * a corefile is truncated instead of not being created,
2457 * if it is larger than the limit.
2459 limit
= p
->p_rlimit
[RLIMIT_CORE
].rlim_cur
;
2463 name
= expand_name(p
->p_comm
, p
->p_ucred
->cr_uid
, p
->p_pid
);
2466 error
= nlookup_init(&nd
, name
, UIO_SYSSPACE
, NLC_LOCKVP
);
2468 error
= vn_open(&nd
, NULL
,
2469 O_CREAT
| FWRITE
| O_NOFOLLOW
,
2471 kfree(name
, M_TEMP
);
2477 nd
.nl_open_vp
= NULL
;
2481 lf
.l_whence
= SEEK_SET
;
2484 lf
.l_type
= F_WRLCK
;
2485 error
= VOP_ADVLOCK(vp
, (caddr_t
)p
, F_SETLK
, &lf
, 0);
2489 /* Don't dump to non-regular files or files with links. */
2490 if (vp
->v_type
!= VREG
||
2491 VOP_GETATTR(vp
, &vattr
) || vattr
.va_nlink
!= 1) {
2496 /* Don't dump to files current user does not own */
2497 if (vattr
.va_uid
!= p
->p_ucred
->cr_uid
) {
2503 vn_lock(vp
, LK_EXCLUSIVE
| LK_RETRY
);
2505 VOP_SETATTR(vp
, &vattr
, cred
);
2506 p
->p_acflag
|= ACORE
;
2509 error
= p
->p_sysent
->sv_coredump
?
2510 p
->p_sysent
->sv_coredump(lp
, sig
, vp
, limit
) : ENOSYS
;
2513 lf
.l_type
= F_UNLCK
;
2514 VOP_ADVLOCK(vp
, (caddr_t
)p
, F_UNLCK
, &lf
, 0);
2516 error1
= vn_close(vp
, FWRITE
, NULL
);
2523 * Nonexistent system call-- signal process (may want to handle it).
2524 * Flag error in case process won't see signal immediately (blocked or ignored).
2530 sys_nosys(struct nosys_args
*args
)
2532 lwpsignal(curproc
, curthread
->td_lwp
, SIGSYS
);
2537 * Send a SIGIO or SIGURG signal to a process or process group using
2538 * stored credentials rather than those of the current process.
2541 pgsigio(struct sigio
*sigio
, int sig
, int checkctty
)
2546 if (sigio
->sio_pgid
> 0) {
2547 if (CANSIGIO(sigio
->sio_ruid
, sigio
->sio_ucred
,
2549 ksignal(sigio
->sio_proc
, sig
);
2550 } else if (sigio
->sio_pgid
< 0) {
2552 struct pgrp
*pg
= sigio
->sio_pgrp
;
2555 * Must interlock all signals against fork
2558 lockmgr(&pg
->pg_lock
, LK_EXCLUSIVE
);
2559 LIST_FOREACH(p
, &pg
->pg_members
, p_pglist
) {
2560 if (CANSIGIO(sigio
->sio_ruid
, sigio
->sio_ucred
, p
) &&
2561 (checkctty
== 0 || (p
->p_flags
& P_CONTROLT
)))
2564 lockmgr(&pg
->pg_lock
, LK_RELEASE
);
2570 filt_sigattach(struct knote
*kn
)
2572 struct proc
*p
= curproc
;
2574 kn
->kn_ptr
.p_proc
= p
;
2575 kn
->kn_flags
|= EV_CLEAR
; /* automatically set */
2577 /* XXX lock the proc here while adding to the list? */
2578 knote_insert(&p
->p_klist
, kn
);
2584 filt_sigdetach(struct knote
*kn
)
2586 struct proc
*p
= kn
->kn_ptr
.p_proc
;
2588 knote_remove(&p
->p_klist
, kn
);
2592 * signal knotes are shared with proc knotes, so we apply a mask to
2593 * the hint in order to differentiate them from process hints. This
2594 * could be avoided by using a signal-specific knote list, but probably
2595 * isn't worth the trouble.
2598 filt_signal(struct knote
*kn
, long hint
)
2600 if (hint
& NOTE_SIGNAL
) {
2601 hint
&= ~NOTE_SIGNAL
;
2603 if (kn
->kn_id
== hint
)
2606 return (kn
->kn_data
!= 0);