thr_sig.c revision 230430
1/*
2 * Copyright (c) 2005, David Xu <davidxu@freebsd.org>
3 * All rights reserved.
4 *
5 * Redistribution and use in source and binary forms, with or without
6 * modification, are permitted provided that the following conditions
7 * are met:
8 * 1. Redistributions of source code must retain the above copyright
9 *    notice unmodified, this list of conditions, and the following
10 *    disclaimer.
11 * 2. Redistributions in binary form must reproduce the above copyright
12 *    notice, this list of conditions and the following disclaimer in the
13 *    documentation and/or other materials provided with the distribution.
14 *
15 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
16 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
17 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
18 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
19 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
20 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
21 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
22 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
23 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
24 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
25 *
26 * $FreeBSD: head/lib/libthr/thread/thr_sig.c 230430 2012-01-21 18:06:18Z kib $
27 */
28
29#include "namespace.h"
30#include <sys/param.h>
31#include <sys/types.h>
32#include <sys/signalvar.h>
33#include <signal.h>
34#include <errno.h>
35#include <stdlib.h>
36#include <string.h>
37#include <pthread.h>
38#include "un-namespace.h"
39#include "libc_private.h"
40
41#include "thr_private.h"
42
43/* #define DEBUG_SIGNAL */
44#ifdef DEBUG_SIGNAL
45#define DBG_MSG		stdout_debug
46#else
47#define DBG_MSG(x...)
48#endif
49
50struct usigaction {
51	struct sigaction sigact;
52	struct urwlock   lock;
53};
54
55static struct usigaction _thr_sigact[_SIG_MAXSIG];
56
57static void thr_sighandler(int, siginfo_t *, void *);
58static void handle_signal(struct sigaction *, int, siginfo_t *, ucontext_t *);
59static void check_deferred_signal(struct pthread *);
60static void check_suspend(struct pthread *);
61static void check_cancel(struct pthread *curthread, ucontext_t *ucp);
62
63int	___pause(void);
64int	_raise(int);
65int	__sigtimedwait(const sigset_t *set, siginfo_t *info,
66	const struct timespec * timeout);
67int	_sigtimedwait(const sigset_t *set, siginfo_t *info,
68	const struct timespec * timeout);
69int	__sigwaitinfo(const sigset_t *set, siginfo_t *info);
70int	_sigwaitinfo(const sigset_t *set, siginfo_t *info);
71int	___sigwait(const sigset_t *set, int *sig);
72int	_sigwait(const sigset_t *set, int *sig);
73int	__sigsuspend(const sigset_t *sigmask);
74int	_sigaction(int, const struct sigaction *, struct sigaction *);
75int	_setcontext(const ucontext_t *);
76int	_swapcontext(ucontext_t *, const ucontext_t *);
77
78static const sigset_t _thr_deferset={{
79	0xffffffff & ~(_SIG_BIT(SIGBUS)|_SIG_BIT(SIGILL)|_SIG_BIT(SIGFPE)|
80	_SIG_BIT(SIGSEGV)|_SIG_BIT(SIGTRAP)|_SIG_BIT(SIGSYS)),
81	0xffffffff,
82	0xffffffff,
83	0xffffffff}};
84
85static const sigset_t _thr_maskset={{
86	0xffffffff,
87	0xffffffff,
88	0xffffffff,
89	0xffffffff}};
90
91void
92_thr_signal_block(struct pthread *curthread)
93{
94
95	if (curthread->sigblock > 0) {
96		curthread->sigblock++;
97		return;
98	}
99	__sys_sigprocmask(SIG_BLOCK, &_thr_maskset, &curthread->sigmask);
100	curthread->sigblock++;
101}
102
103void
104_thr_signal_unblock(struct pthread *curthread)
105{
106	if (--curthread->sigblock == 0)
107		__sys_sigprocmask(SIG_SETMASK, &curthread->sigmask, NULL);
108}
109
110int
111_thr_send_sig(struct pthread *thread, int sig)
112{
113	return thr_kill(thread->tid, sig);
114}
115
116static inline void
117remove_thr_signals(sigset_t *set)
118{
119	if (SIGISMEMBER(*set, SIGCANCEL))
120		SIGDELSET(*set, SIGCANCEL);
121}
122
123static const sigset_t *
124thr_remove_thr_signals(const sigset_t *set, sigset_t *newset)
125{
126	*newset = *set;
127	remove_thr_signals(newset);
128	return (newset);
129}
130
131static void
132sigcancel_handler(int sig __unused,
133	siginfo_t *info __unused, ucontext_t *ucp)
134{
135	struct pthread *curthread = _get_curthread();
136	int err;
137
138	if (THR_IN_CRITICAL(curthread))
139		return;
140	err = errno;
141	check_suspend(curthread);
142	check_cancel(curthread, ucp);
143	errno = err;
144}
145
146typedef void (*ohandler)(int sig, int code,
147	struct sigcontext *scp, char *addr, __sighandler_t *catcher);
148
149/*
150 * The signal handler wrapper is entered with all signal masked.
151 */
152static void
153thr_sighandler(int sig, siginfo_t *info, void *_ucp)
154{
155	struct pthread *curthread = _get_curthread();
156	ucontext_t *ucp = _ucp;
157	struct sigaction act;
158	int err;
159
160	err = errno;
161	_thr_rwl_rdlock(&_thr_sigact[sig-1].lock);
162	act = _thr_sigact[sig-1].sigact;
163	_thr_rwl_unlock(&_thr_sigact[sig-1].lock);
164	errno = err;
165
166	/*
167	 * if a thread is in critical region, for example it holds low level locks,
168	 * try to defer the signal processing, however if the signal is synchronous
169	 * signal, it means a bad thing has happened, this is a programming error,
170	 * resuming fault point can not help anything (normally causes deadloop),
171	 * so here we let user code handle it immediately.
172	 */
173	if (THR_IN_CRITICAL(curthread) && SIGISMEMBER(_thr_deferset, sig)) {
174		memcpy(&curthread->deferred_sigact, &act, sizeof(struct sigaction));
175		memcpy(&curthread->deferred_siginfo, info, sizeof(siginfo_t));
176		curthread->deferred_sigmask = ucp->uc_sigmask;
177		/* mask all signals, we will restore it later. */
178		ucp->uc_sigmask = _thr_deferset;
179		return;
180	}
181
182	handle_signal(&act, sig, info, ucp);
183}
184
185static void
186handle_signal(struct sigaction *actp, int sig, siginfo_t *info, ucontext_t *ucp)
187{
188	struct pthread *curthread = _get_curthread();
189	ucontext_t uc2;
190	__siginfohandler_t *sigfunc;
191	int cancel_point;
192	int cancel_async;
193	int cancel_enable;
194	int in_sigsuspend;
195	int err;
196
197	/* add previous level mask */
198	SIGSETOR(actp->sa_mask, ucp->uc_sigmask);
199
200	/* add this signal's mask */
201	if (!(actp->sa_flags & SA_NODEFER))
202		SIGADDSET(actp->sa_mask, sig);
203
204	in_sigsuspend = curthread->in_sigsuspend;
205	curthread->in_sigsuspend = 0;
206
207	/*
208	 * if thread is in deferred cancellation mode, disable cancellation
209	 * in signal handler.
210	 * if user signal handler calls a cancellation point function, e.g,
211	 * it calls write() to write data to file, because write() is a
212	 * cancellation point, the thread is immediately cancelled if
213	 * cancellation is pending, to avoid this problem while thread is in
214	 * deferring mode, cancellation is temporarily disabled.
215	 */
216	cancel_point = curthread->cancel_point;
217	cancel_async = curthread->cancel_async;
218	cancel_enable = curthread->cancel_enable;
219	curthread->cancel_point = 0;
220	if (!cancel_async)
221		curthread->cancel_enable = 0;
222
223	/* restore correct mask before calling user handler */
224	__sys_sigprocmask(SIG_SETMASK, &actp->sa_mask, NULL);
225
226	sigfunc = actp->sa_sigaction;
227
228	/*
229	 * We have already reset cancellation point flags, so if user's code
230	 * longjmp()s out of its signal handler, wish its jmpbuf was set
231	 * outside of a cancellation point, in most cases, this would be
232	 * true. however, ther is no way to save cancel_enable in jmpbuf,
233	 * so after setjmps() returns once more, the user code may need to
234	 * re-set cancel_enable flag by calling pthread_setcancelstate().
235	 */
236	if ((actp->sa_flags & SA_SIGINFO) != 0)
237		(*(sigfunc))(sig, info, ucp);
238	else {
239		((ohandler)(*sigfunc))(
240			sig, info->si_code, (struct sigcontext *)ucp,
241			info->si_addr, (__sighandler_t *)sigfunc);
242	}
243	err = errno;
244
245	curthread->in_sigsuspend = in_sigsuspend;
246	curthread->cancel_point = cancel_point;
247	curthread->cancel_enable = cancel_enable;
248
249	memcpy(&uc2, ucp, sizeof(uc2));
250	SIGDELSET(uc2.uc_sigmask, SIGCANCEL);
251
252	/* reschedule cancellation */
253	check_cancel(curthread, &uc2);
254	errno = err;
255	__sys_sigreturn(&uc2);
256}
257
258void
259_thr_ast(struct pthread *curthread)
260{
261
262	if (!THR_IN_CRITICAL(curthread)) {
263		check_deferred_signal(curthread);
264		check_suspend(curthread);
265		check_cancel(curthread, NULL);
266	}
267}
268
269/* reschedule cancellation */
270static void
271check_cancel(struct pthread *curthread, ucontext_t *ucp)
272{
273
274	if (__predict_true(!curthread->cancel_pending ||
275	    !curthread->cancel_enable || curthread->no_cancel))
276		return;
277
278	/*
279 	 * Otherwise, we are in defer mode, and we are at
280	 * cancel point, tell kernel to not block the current
281	 * thread on next cancelable system call.
282	 *
283	 * There are three cases we should call thr_wake() to
284	 * turn on TDP_WAKEUP or send SIGCANCEL in kernel:
285	 * 1) we are going to call a cancelable system call,
286	 *    non-zero cancel_point means we are already in
287	 *    cancelable state, next system call is cancelable.
288	 * 2) because _thr_ast() may be called by
289	 *    THR_CRITICAL_LEAVE() which is used by rtld rwlock
290	 *    and any libthr internal locks, when rtld rwlock
291	 *    is used, it is mostly caused my an unresolved PLT.
292	 *    those routines may clear the TDP_WAKEUP flag by
293	 *    invoking some system calls, in those cases, we
294	 *    also should reenable the flag.
295	 * 3) thread is in sigsuspend(), and the syscall insists
296	 *    on getting a signal before it agrees to return.
297 	 */
298	if (curthread->cancel_point) {
299		if (curthread->in_sigsuspend && ucp) {
300			SIGADDSET(ucp->uc_sigmask, SIGCANCEL);
301			curthread->unblock_sigcancel = 1;
302			_thr_send_sig(curthread, SIGCANCEL);
303		} else
304			thr_wake(curthread->tid);
305	} else if (curthread->cancel_async) {
306		/*
307		 * asynchronous cancellation mode, act upon
308		 * immediately.
309		 */
310		_pthread_exit_mask(PTHREAD_CANCELED,
311		    ucp? &ucp->uc_sigmask : NULL);
312	}
313}
314
315static void
316check_deferred_signal(struct pthread *curthread)
317{
318	ucontext_t *uc;
319	struct sigaction act;
320	siginfo_t info;
321
322	if (__predict_true(curthread->deferred_siginfo.si_signo == 0))
323		return;
324
325#if defined(__amd64__) || defined(__i386__)
326	uc = alloca(__getcontextx_size());
327	__fillcontextx((char *)uc);
328#else
329	ucontext_t ucv;
330	uc = &ucv;
331	getcontext(uc);
332#endif
333	if (curthread->deferred_siginfo.si_signo != 0) {
334		act = curthread->deferred_sigact;
335		uc->uc_sigmask = curthread->deferred_sigmask;
336		memcpy(&info, &curthread->deferred_siginfo, sizeof(siginfo_t));
337		/* remove signal */
338		curthread->deferred_siginfo.si_signo = 0;
339		if (act.sa_flags & SA_RESETHAND) {
340			struct sigaction tact;
341
342			tact = act;
343			tact.sa_handler = SIG_DFL;
344			_sigaction(info.si_signo, &tact, NULL);
345		}
346		handle_signal(&act, info.si_signo, &info, uc);
347	}
348}
349
350static void
351check_suspend(struct pthread *curthread)
352{
353	uint32_t cycle;
354
355	if (__predict_true((curthread->flags &
356		(THR_FLAGS_NEED_SUSPEND | THR_FLAGS_SUSPENDED))
357		!= THR_FLAGS_NEED_SUSPEND))
358		return;
359
360	if (curthread->force_exit)
361		return;
362
363	/*
364	 * Blocks SIGCANCEL which other threads must send.
365	 */
366	_thr_signal_block(curthread);
367
368	/*
369	 * Increase critical_count, here we don't use THR_LOCK/UNLOCK
370	 * because we are leaf code, we don't want to recursively call
371	 * ourself.
372	 */
373	curthread->critical_count++;
374	THR_UMUTEX_LOCK(curthread, &(curthread)->lock);
375	while ((curthread->flags & (THR_FLAGS_NEED_SUSPEND |
376		THR_FLAGS_SUSPENDED)) == THR_FLAGS_NEED_SUSPEND) {
377		curthread->cycle++;
378		cycle = curthread->cycle;
379
380		/* Wake the thread suspending us. */
381		_thr_umtx_wake(&curthread->cycle, INT_MAX, 0);
382
383		/*
384		 * if we are from pthread_exit, we don't want to
385		 * suspend, just go and die.
386		 */
387		if (curthread->state == PS_DEAD)
388			break;
389		curthread->flags |= THR_FLAGS_SUSPENDED;
390		THR_UMUTEX_UNLOCK(curthread, &(curthread)->lock);
391		_thr_umtx_wait_uint(&curthread->cycle, cycle, NULL, 0);
392		THR_UMUTEX_LOCK(curthread, &(curthread)->lock);
393		curthread->flags &= ~THR_FLAGS_SUSPENDED;
394	}
395	THR_UMUTEX_UNLOCK(curthread, &(curthread)->lock);
396	curthread->critical_count--;
397
398	_thr_signal_unblock(curthread);
399}
400
401void
402_thr_signal_init(void)
403{
404	struct sigaction act;
405
406	/* Install SIGCANCEL handler. */
407	SIGFILLSET(act.sa_mask);
408	act.sa_flags = SA_SIGINFO;
409	act.sa_sigaction = (__siginfohandler_t *)&sigcancel_handler;
410	__sys_sigaction(SIGCANCEL, &act, NULL);
411
412	/* Unblock SIGCANCEL */
413	SIGEMPTYSET(act.sa_mask);
414	SIGADDSET(act.sa_mask, SIGCANCEL);
415	__sys_sigprocmask(SIG_UNBLOCK, &act.sa_mask, NULL);
416}
417
418void
419_thr_sigact_unload(struct dl_phdr_info *phdr_info)
420{
421#if 0
422	struct pthread *curthread = _get_curthread();
423	struct urwlock *rwlp;
424	struct sigaction *actp;
425	struct sigaction kact;
426	void (*handler)(int);
427	int sig;
428
429	_thr_signal_block(curthread);
430	for (sig = 1; sig <= _SIG_MAXSIG; sig++) {
431		actp = &_thr_sigact[sig-1].sigact;
432retry:
433		handler = actp->sa_handler;
434		if (handler != SIG_DFL && handler != SIG_IGN &&
435		    __elf_phdr_match_addr(phdr_info, handler)) {
436			rwlp = &_thr_sigact[sig-1].lock;
437			_thr_rwl_wrlock(rwlp);
438			if (handler != actp->sa_handler) {
439				_thr_rwl_unlock(rwlp);
440				goto retry;
441			}
442			actp->sa_handler = SIG_DFL;
443			actp->sa_flags = SA_SIGINFO;
444			SIGEMPTYSET(actp->sa_mask);
445			if (__sys_sigaction(sig, NULL, &kact) == 0 &&
446				kact.sa_handler != SIG_DFL &&
447				kact.sa_handler != SIG_IGN)
448				__sys_sigaction(sig, actp, NULL);
449			_thr_rwl_unlock(rwlp);
450		}
451	}
452	_thr_signal_unblock(curthread);
453#endif
454}
455
456void
457_thr_signal_prefork(void)
458{
459	int i;
460
461	for (i = 1; i < _SIG_MAXSIG; ++i)
462		_thr_rwl_rdlock(&_thr_sigact[i-1].lock);
463}
464
465void
466_thr_signal_postfork(void)
467{
468	int i;
469
470	for (i = 1; i < _SIG_MAXSIG; ++i)
471		_thr_rwl_unlock(&_thr_sigact[i-1].lock);
472}
473
474void
475_thr_signal_postfork_child(void)
476{
477	int i;
478
479	for (i = 1; i < _SIG_MAXSIG; ++i)
480		bzero(&_thr_sigact[i-1].lock, sizeof(struct urwlock));
481}
482
483void
484_thr_signal_deinit(void)
485{
486}
487
488__weak_reference(___pause, pause);
489
490int
491___pause(void)
492{
493	sigset_t oset;
494
495	if (_sigprocmask(SIG_BLOCK, NULL, &oset) == -1)
496		return (-1);
497	return (__sigsuspend(&oset));
498}
499
500__weak_reference(_raise, raise);
501
502int
503_raise(int sig)
504{
505	return _thr_send_sig(_get_curthread(), sig);
506}
507
508__weak_reference(_sigaction, sigaction);
509
510int
511_sigaction(int sig, const struct sigaction * act, struct sigaction * oact)
512{
513	struct sigaction newact, oldact, oldact2;
514	sigset_t oldset;
515	int ret = 0, err = 0;
516
517	if (!_SIG_VALID(sig) || sig == SIGCANCEL) {
518		errno = EINVAL;
519		return (-1);
520	}
521
522	if (act)
523		newact = *act;
524
525	__sys_sigprocmask(SIG_SETMASK, &_thr_maskset, &oldset);
526	_thr_rwl_wrlock(&_thr_sigact[sig-1].lock);
527
528	if (act != NULL) {
529		oldact2 = _thr_sigact[sig-1].sigact;
530
531 		/*
532		 * if a new sig handler is SIG_DFL or SIG_IGN,
533		 * don't remove old handler from _thr_sigact[],
534		 * so deferred signals still can use the handlers,
535		 * multiple threads invoking sigaction itself is
536		 * a race condition, so it is not a problem.
537		 */
538		if (newact.sa_handler != SIG_DFL &&
539		    newact.sa_handler != SIG_IGN) {
540			_thr_sigact[sig-1].sigact = newact;
541			remove_thr_signals(
542				&_thr_sigact[sig-1].sigact.sa_mask);
543			newact.sa_flags &= ~SA_NODEFER;
544			newact.sa_flags |= SA_SIGINFO;
545			newact.sa_sigaction = thr_sighandler;
546			newact.sa_mask = _thr_maskset; /* mask all signals */
547		}
548		if ((ret = __sys_sigaction(sig, &newact, &oldact))) {
549			err = errno;
550			_thr_sigact[sig-1].sigact = oldact2;
551		}
552	} else if (oact != NULL) {
553		ret = __sys_sigaction(sig, NULL, &oldact);
554		err = errno;
555	}
556
557	if (oldact.sa_handler != SIG_DFL &&
558	    oldact.sa_handler != SIG_IGN) {
559		if (act != NULL)
560			oldact = oldact2;
561		else if (oact != NULL)
562			oldact = _thr_sigact[sig-1].sigact;
563	}
564
565	_thr_rwl_unlock(&_thr_sigact[sig-1].lock);
566	__sys_sigprocmask(SIG_SETMASK, &oldset, NULL);
567
568	if (ret == 0) {
569		if (oact != NULL)
570			*oact = oldact;
571	} else {
572		errno = err;
573	}
574	return (ret);
575}
576
577__weak_reference(_sigprocmask, sigprocmask);
578
579int
580_sigprocmask(int how, const sigset_t *set, sigset_t *oset)
581{
582	const sigset_t *p = set;
583	sigset_t newset;
584
585	if (how != SIG_UNBLOCK) {
586		if (set != NULL) {
587			newset = *set;
588			SIGDELSET(newset, SIGCANCEL);
589			p = &newset;
590		}
591	}
592	return (__sys_sigprocmask(how, p, oset));
593}
594
595__weak_reference(_pthread_sigmask, pthread_sigmask);
596
597int
598_pthread_sigmask(int how, const sigset_t *set, sigset_t *oset)
599{
600	if (_sigprocmask(how, set, oset))
601		return (errno);
602	return (0);
603}
604
605__weak_reference(__sigsuspend, sigsuspend);
606
607int
608_sigsuspend(const sigset_t * set)
609{
610	sigset_t newset;
611
612	return (__sys_sigsuspend(thr_remove_thr_signals(set, &newset)));
613}
614
615int
616__sigsuspend(const sigset_t * set)
617{
618	struct pthread *curthread;
619	sigset_t newset;
620	int ret, old;
621
622	curthread = _get_curthread();
623
624	old = curthread->in_sigsuspend;
625	curthread->in_sigsuspend = 1;
626	_thr_cancel_enter(curthread);
627	ret = __sys_sigsuspend(thr_remove_thr_signals(set, &newset));
628	_thr_cancel_leave(curthread, 1);
629	curthread->in_sigsuspend = old;
630	if (curthread->unblock_sigcancel) {
631		curthread->unblock_sigcancel = 0;
632		SIGEMPTYSET(newset);
633		SIGADDSET(newset, SIGCANCEL);
634		__sys_sigprocmask(SIG_UNBLOCK, &newset, NULL);
635	}
636
637	return (ret);
638}
639
640__weak_reference(___sigwait, sigwait);
641__weak_reference(__sigtimedwait, sigtimedwait);
642__weak_reference(__sigwaitinfo, sigwaitinfo);
643
644int
645_sigtimedwait(const sigset_t *set, siginfo_t *info,
646	const struct timespec * timeout)
647{
648	sigset_t newset;
649
650	return (__sys_sigtimedwait(thr_remove_thr_signals(set, &newset), info,
651	    timeout));
652}
653
654/*
655 * Cancellation behavior:
656 *   Thread may be canceled at start, if thread got signal,
657 *   it is not canceled.
658 */
659int
660__sigtimedwait(const sigset_t *set, siginfo_t *info,
661	const struct timespec * timeout)
662{
663	struct pthread	*curthread = _get_curthread();
664	sigset_t newset;
665	int ret;
666
667	_thr_cancel_enter(curthread);
668	ret = __sys_sigtimedwait(thr_remove_thr_signals(set, &newset), info,
669	    timeout);
670	_thr_cancel_leave(curthread, (ret == -1));
671	return (ret);
672}
673
674int
675_sigwaitinfo(const sigset_t *set, siginfo_t *info)
676{
677	sigset_t newset;
678
679	return (__sys_sigwaitinfo(thr_remove_thr_signals(set, &newset), info));
680}
681
682/*
683 * Cancellation behavior:
684 *   Thread may be canceled at start, if thread got signal,
685 *   it is not canceled.
686 */
687int
688__sigwaitinfo(const sigset_t *set, siginfo_t *info)
689{
690	struct pthread	*curthread = _get_curthread();
691	sigset_t newset;
692	int ret;
693
694	_thr_cancel_enter(curthread);
695	ret = __sys_sigwaitinfo(thr_remove_thr_signals(set, &newset), info);
696	_thr_cancel_leave(curthread, ret == -1);
697	return (ret);
698}
699
700int
701_sigwait(const sigset_t *set, int *sig)
702{
703	sigset_t newset;
704
705	return (__sys_sigwait(thr_remove_thr_signals(set, &newset), sig));
706}
707
708/*
709 * Cancellation behavior:
710 *   Thread may be canceled at start, if thread got signal,
711 *   it is not canceled.
712 */
713int
714___sigwait(const sigset_t *set, int *sig)
715{
716	struct pthread	*curthread = _get_curthread();
717	sigset_t newset;
718	int ret;
719
720	do {
721		_thr_cancel_enter(curthread);
722		ret = __sys_sigwait(thr_remove_thr_signals(set, &newset), sig);
723		_thr_cancel_leave(curthread, (ret != 0));
724	} while (ret == EINTR);
725	return (ret);
726}
727
728__weak_reference(_setcontext, setcontext);
729int
730_setcontext(const ucontext_t *ucp)
731{
732	ucontext_t uc;
733
734	(void) memcpy(&uc, ucp, sizeof(uc));
735	remove_thr_signals(&uc.uc_sigmask);
736	return __sys_setcontext(&uc);
737}
738
739__weak_reference(_swapcontext, swapcontext);
740int
741_swapcontext(ucontext_t *oucp, const ucontext_t *ucp)
742{
743	ucontext_t uc;
744
745	(void) memcpy(&uc, ucp, sizeof(uc));
746	remove_thr_signals(&uc.uc_sigmask);
747	return __sys_swapcontext(oucp, &uc);
748}
749