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sys_sig.c revision 1.15
      1  1.15   martin /*	$NetBSD: sys_sig.c,v 1.15 2008/04/28 20:24:05 martin Exp $	*/
      2   1.2       ad 
      3   1.2       ad /*-
      4  1.14       ad  * Copyright (c) 2006, 2007, 2008 The NetBSD Foundation, Inc.
      5   1.2       ad  * All rights reserved.
      6   1.2       ad  *
      7   1.2       ad  * This code is derived from software contributed to The NetBSD Foundation
      8   1.2       ad  * by Andrew Doran.
      9   1.2       ad  *
     10   1.2       ad  * Redistribution and use in source and binary forms, with or without
     11   1.2       ad  * modification, are permitted provided that the following conditions
     12   1.2       ad  * are met:
     13   1.2       ad  * 1. Redistributions of source code must retain the above copyright
     14   1.2       ad  *    notice, this list of conditions and the following disclaimer.
     15   1.2       ad  * 2. Redistributions in binary form must reproduce the above copyright
     16   1.2       ad  *    notice, this list of conditions and the following disclaimer in the
     17   1.2       ad  *    documentation and/or other materials provided with the distribution.
     18   1.2       ad  *
     19   1.2       ad  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20   1.2       ad  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21   1.2       ad  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22   1.2       ad  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23   1.2       ad  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24   1.2       ad  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25   1.2       ad  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26   1.2       ad  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27   1.2       ad  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28   1.2       ad  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29   1.2       ad  * POSSIBILITY OF SUCH DAMAGE.
     30   1.2       ad  */
     31   1.2       ad 
     32   1.2       ad /*
     33   1.2       ad  * Copyright (c) 1982, 1986, 1989, 1991, 1993
     34   1.2       ad  *	The Regents of the University of California.  All rights reserved.
     35   1.2       ad  * (c) UNIX System Laboratories, Inc.
     36   1.2       ad  * All or some portions of this file are derived from material licensed
     37   1.2       ad  * to the University of California by American Telephone and Telegraph
     38   1.2       ad  * Co. or Unix System Laboratories, Inc. and are reproduced herein with
     39   1.2       ad  * the permission of UNIX System Laboratories, Inc.
     40   1.2       ad  *
     41   1.2       ad  * Redistribution and use in source and binary forms, with or without
     42   1.2       ad  * modification, are permitted provided that the following conditions
     43   1.2       ad  * are met:
     44   1.2       ad  * 1. Redistributions of source code must retain the above copyright
     45   1.2       ad  *    notice, this list of conditions and the following disclaimer.
     46   1.2       ad  * 2. Redistributions in binary form must reproduce the above copyright
     47   1.2       ad  *    notice, this list of conditions and the following disclaimer in the
     48   1.2       ad  *    documentation and/or other materials provided with the distribution.
     49   1.2       ad  * 3. Neither the name of the University nor the names of its contributors
     50   1.2       ad  *    may be used to endorse or promote products derived from this software
     51   1.2       ad  *    without specific prior written permission.
     52   1.2       ad  *
     53   1.2       ad  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     54   1.2       ad  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     55   1.2       ad  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     56   1.2       ad  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     57   1.2       ad  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     58   1.2       ad  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     59   1.2       ad  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     60   1.2       ad  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     61   1.2       ad  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     62   1.2       ad  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     63   1.2       ad  * SUCH DAMAGE.
     64   1.2       ad  *
     65   1.2       ad  *	@(#)kern_sig.c	8.14 (Berkeley) 5/14/95
     66   1.2       ad  */
     67   1.2       ad 
     68   1.2       ad #include <sys/cdefs.h>
     69  1.15   martin __KERNEL_RCSID(0, "$NetBSD: sys_sig.c,v 1.15 2008/04/28 20:24:05 martin Exp $");
     70   1.2       ad 
     71   1.2       ad #include "opt_ptrace.h"
     72   1.2       ad #include "opt_compat_netbsd.h"
     73   1.2       ad #include "opt_compat_netbsd32.h"
     74   1.2       ad 
     75   1.2       ad #include <sys/param.h>
     76   1.2       ad #include <sys/kernel.h>
     77   1.2       ad #include <sys/signalvar.h>
     78   1.2       ad #include <sys/proc.h>
     79   1.2       ad #include <sys/pool.h>
     80   1.2       ad #include <sys/syscallargs.h>
     81   1.2       ad #include <sys/kauth.h>
     82   1.2       ad #include <sys/wait.h>
     83   1.2       ad #include <sys/kmem.h>
     84   1.2       ad 
     85   1.2       ad #ifdef COMPAT_16
     86   1.2       ad /* ARGSUSED */
     87   1.2       ad int
     88   1.9      dsl compat_16_sys___sigaction14(struct lwp *l, const struct compat_16_sys___sigaction14_args *uap, register_t *retval)
     89   1.2       ad {
     90   1.9      dsl 	/* {
     91   1.2       ad 		syscallarg(int)				signum;
     92   1.2       ad 		syscallarg(const struct sigaction *)	nsa;
     93   1.2       ad 		syscallarg(struct sigaction *)		osa;
     94   1.9      dsl 	} */
     95   1.2       ad 	struct sigaction	nsa, osa;
     96   1.2       ad 	int			error;
     97   1.2       ad 
     98   1.2       ad 	if (SCARG(uap, nsa)) {
     99   1.2       ad 		error = copyin(SCARG(uap, nsa), &nsa, sizeof(nsa));
    100   1.2       ad 		if (error)
    101   1.2       ad 			return (error);
    102   1.2       ad 	}
    103   1.2       ad 	error = sigaction1(l, SCARG(uap, signum),
    104   1.2       ad 	    SCARG(uap, nsa) ? &nsa : 0, SCARG(uap, osa) ? &osa : 0,
    105   1.2       ad 	    NULL, 0);
    106   1.2       ad 	if (error)
    107   1.2       ad 		return (error);
    108   1.2       ad 	if (SCARG(uap, osa)) {
    109   1.2       ad 		error = copyout(&osa, SCARG(uap, osa), sizeof(osa));
    110   1.2       ad 		if (error)
    111   1.2       ad 			return (error);
    112   1.2       ad 	}
    113   1.2       ad 	return (0);
    114   1.2       ad }
    115   1.2       ad #endif
    116   1.2       ad 
    117   1.2       ad /* ARGSUSED */
    118   1.2       ad int
    119   1.9      dsl sys___sigaction_sigtramp(struct lwp *l, const struct sys___sigaction_sigtramp_args *uap, register_t *retval)
    120   1.2       ad {
    121   1.9      dsl 	/* {
    122   1.2       ad 		syscallarg(int)				signum;
    123   1.2       ad 		syscallarg(const struct sigaction *)	nsa;
    124   1.2       ad 		syscallarg(struct sigaction *)		osa;
    125   1.2       ad 		syscallarg(void *)			tramp;
    126   1.2       ad 		syscallarg(int)				vers;
    127   1.9      dsl 	} */
    128   1.2       ad 	struct sigaction nsa, osa;
    129   1.2       ad 	int error;
    130   1.2       ad 
    131   1.2       ad 	if (SCARG(uap, nsa)) {
    132   1.2       ad 		error = copyin(SCARG(uap, nsa), &nsa, sizeof(nsa));
    133   1.2       ad 		if (error)
    134   1.2       ad 			return (error);
    135   1.2       ad 	}
    136   1.2       ad 	error = sigaction1(l, SCARG(uap, signum),
    137   1.2       ad 	    SCARG(uap, nsa) ? &nsa : 0, SCARG(uap, osa) ? &osa : 0,
    138   1.2       ad 	    SCARG(uap, tramp), SCARG(uap, vers));
    139   1.2       ad 	if (error)
    140   1.2       ad 		return (error);
    141   1.2       ad 	if (SCARG(uap, osa)) {
    142   1.2       ad 		error = copyout(&osa, SCARG(uap, osa), sizeof(osa));
    143   1.2       ad 		if (error)
    144   1.2       ad 			return (error);
    145   1.2       ad 	}
    146   1.2       ad 	return (0);
    147   1.2       ad }
    148   1.2       ad 
    149   1.2       ad /*
    150   1.2       ad  * Manipulate signal mask.  Note that we receive new mask, not pointer, and
    151   1.2       ad  * return old mask as return value; the library stub does the rest.
    152   1.2       ad  */
    153   1.2       ad int
    154   1.9      dsl sys___sigprocmask14(struct lwp *l, const struct sys___sigprocmask14_args *uap, register_t *retval)
    155   1.2       ad {
    156   1.9      dsl 	/* {
    157   1.2       ad 		syscallarg(int)			how;
    158   1.2       ad 		syscallarg(const sigset_t *)	set;
    159   1.2       ad 		syscallarg(sigset_t *)		oset;
    160   1.9      dsl 	} */
    161   1.2       ad 	struct proc	*p = l->l_proc;
    162   1.2       ad 	sigset_t	nss, oss;
    163   1.2       ad 	int		error;
    164   1.2       ad 
    165   1.2       ad 	if (SCARG(uap, set)) {
    166   1.2       ad 		error = copyin(SCARG(uap, set), &nss, sizeof(nss));
    167   1.2       ad 		if (error)
    168   1.2       ad 			return (error);
    169   1.2       ad 	}
    170  1.14       ad 	mutex_enter(p->p_lock);
    171   1.2       ad 	error = sigprocmask1(l, SCARG(uap, how),
    172   1.2       ad 	    SCARG(uap, set) ? &nss : 0, SCARG(uap, oset) ? &oss : 0);
    173  1.14       ad 	mutex_exit(p->p_lock);
    174   1.2       ad 	if (error)
    175   1.2       ad 		return (error);
    176   1.2       ad 	if (SCARG(uap, oset)) {
    177   1.2       ad 		error = copyout(&oss, SCARG(uap, oset), sizeof(oss));
    178   1.2       ad 		if (error)
    179   1.2       ad 			return (error);
    180   1.2       ad 	}
    181   1.2       ad 	return (0);
    182   1.2       ad }
    183   1.2       ad 
    184   1.2       ad /* ARGSUSED */
    185   1.2       ad int
    186   1.9      dsl sys___sigpending14(struct lwp *l, const struct sys___sigpending14_args *uap, register_t *retval)
    187   1.2       ad {
    188   1.9      dsl 	/* {
    189   1.2       ad 		syscallarg(sigset_t *)	set;
    190   1.9      dsl 	} */
    191   1.2       ad 	sigset_t ss;
    192   1.2       ad 
    193   1.2       ad 	sigpending1(l, &ss);
    194   1.2       ad 	return (copyout(&ss, SCARG(uap, set), sizeof(ss)));
    195   1.2       ad }
    196   1.2       ad 
    197   1.2       ad /*
    198   1.2       ad  * Suspend process until signal, providing mask to be set in the meantime.
    199   1.2       ad  * Note nonstandard calling convention: libc stub passes mask, not pointer,
    200   1.2       ad  * to save a copyin.
    201   1.2       ad  */
    202   1.2       ad /* ARGSUSED */
    203   1.2       ad int
    204   1.9      dsl sys___sigsuspend14(struct lwp *l, const struct sys___sigsuspend14_args *uap, register_t *retval)
    205   1.2       ad {
    206   1.9      dsl 	/* {
    207   1.2       ad 		syscallarg(const sigset_t *)	set;
    208   1.9      dsl 	} */
    209   1.2       ad 	sigset_t	ss;
    210   1.2       ad 	int		error;
    211   1.2       ad 
    212   1.2       ad 	if (SCARG(uap, set)) {
    213   1.2       ad 		error = copyin(SCARG(uap, set), &ss, sizeof(ss));
    214   1.2       ad 		if (error)
    215   1.2       ad 			return (error);
    216   1.2       ad 	}
    217   1.2       ad 
    218   1.2       ad 	return (sigsuspend1(l, SCARG(uap, set) ? &ss : 0));
    219   1.2       ad }
    220   1.2       ad 
    221   1.2       ad /* ARGSUSED */
    222   1.2       ad int
    223   1.9      dsl sys___sigaltstack14(struct lwp *l, const struct sys___sigaltstack14_args *uap, register_t *retval)
    224   1.2       ad {
    225   1.9      dsl 	/* {
    226   1.2       ad 		syscallarg(const struct sigaltstack *)	nss;
    227   1.2       ad 		syscallarg(struct sigaltstack *)	oss;
    228   1.9      dsl 	} */
    229   1.2       ad 	struct sigaltstack	nss, oss;
    230   1.2       ad 	int			error;
    231   1.2       ad 
    232   1.2       ad 	if (SCARG(uap, nss)) {
    233   1.2       ad 		error = copyin(SCARG(uap, nss), &nss, sizeof(nss));
    234   1.2       ad 		if (error)
    235   1.2       ad 			return (error);
    236   1.2       ad 	}
    237   1.2       ad 	error = sigaltstack1(l,
    238   1.2       ad 	    SCARG(uap, nss) ? &nss : 0, SCARG(uap, oss) ? &oss : 0);
    239   1.2       ad 	if (error)
    240   1.2       ad 		return (error);
    241   1.2       ad 	if (SCARG(uap, oss)) {
    242   1.2       ad 		error = copyout(&oss, SCARG(uap, oss), sizeof(oss));
    243   1.2       ad 		if (error)
    244   1.2       ad 			return (error);
    245   1.2       ad 	}
    246   1.2       ad 	return (0);
    247   1.2       ad }
    248   1.2       ad 
    249   1.2       ad /* ARGSUSED */
    250   1.2       ad int
    251   1.9      dsl sys_kill(struct lwp *l, const struct sys_kill_args *uap, register_t *retval)
    252   1.2       ad {
    253   1.9      dsl 	/* {
    254   1.2       ad 		syscallarg(int)	pid;
    255   1.2       ad 		syscallarg(int)	signum;
    256   1.9      dsl 	} */
    257   1.2       ad 	struct proc	*p;
    258   1.2       ad 	ksiginfo_t	ksi;
    259   1.2       ad 	int signum = SCARG(uap, signum);
    260   1.2       ad 	int error;
    261   1.2       ad 
    262   1.2       ad 	if ((u_int)signum >= NSIG)
    263   1.2       ad 		return (EINVAL);
    264   1.2       ad 	KSI_INIT(&ksi);
    265   1.2       ad 	ksi.ksi_signo = signum;
    266   1.2       ad 	ksi.ksi_code = SI_USER;
    267   1.2       ad 	ksi.ksi_pid = l->l_proc->p_pid;
    268   1.2       ad 	ksi.ksi_uid = kauth_cred_geteuid(l->l_cred);
    269   1.2       ad 	if (SCARG(uap, pid) > 0) {
    270   1.2       ad 		/* kill single process */
    271  1.13       ad 		mutex_enter(proc_lock);
    272  1.13       ad 		if ((p = p_find(SCARG(uap, pid), PFIND_LOCKED)) == NULL) {
    273  1.13       ad 			mutex_exit(proc_lock);
    274   1.2       ad 			return (ESRCH);
    275  1.13       ad 		}
    276  1.14       ad 		mutex_enter(p->p_lock);
    277   1.2       ad 		error = kauth_authorize_process(l->l_cred,
    278  1.11     elad 		    KAUTH_PROCESS_SIGNAL, p, KAUTH_ARG(signum),
    279   1.2       ad 		    NULL, NULL);
    280   1.2       ad 		if (!error && signum) {
    281   1.2       ad 			kpsignal2(p, &ksi);
    282   1.2       ad 		}
    283  1.14       ad 		mutex_exit(p->p_lock);
    284  1.13       ad 		mutex_exit(proc_lock);
    285   1.2       ad 		return (error);
    286   1.2       ad 	}
    287   1.2       ad 	switch (SCARG(uap, pid)) {
    288   1.2       ad 	case -1:		/* broadcast signal */
    289   1.2       ad 		return (killpg1(l, &ksi, 0, 1));
    290   1.2       ad 	case 0:			/* signal own process group */
    291   1.2       ad 		return (killpg1(l, &ksi, 0, 0));
    292   1.2       ad 	default:		/* negative explicit process group */
    293   1.2       ad 		return (killpg1(l, &ksi, -SCARG(uap, pid), 0));
    294   1.2       ad 	}
    295   1.2       ad 	/* NOTREACHED */
    296   1.2       ad }
    297   1.2       ad 
    298   1.2       ad /* ARGSUSED */
    299   1.2       ad int
    300   1.9      dsl sys_getcontext(struct lwp *l, const struct sys_getcontext_args *uap, register_t *retval)
    301   1.2       ad {
    302   1.9      dsl 	/* {
    303   1.2       ad 		syscallarg(struct __ucontext *) ucp;
    304   1.9      dsl 	} */
    305   1.2       ad 	struct proc *p = l->l_proc;
    306   1.2       ad 	ucontext_t uc;
    307   1.2       ad 
    308  1.14       ad 	mutex_enter(p->p_lock);
    309   1.2       ad 	getucontext(l, &uc);
    310  1.14       ad 	mutex_exit(p->p_lock);
    311   1.2       ad 
    312   1.2       ad 	return (copyout(&uc, SCARG(uap, ucp), sizeof (*SCARG(uap, ucp))));
    313   1.2       ad }
    314   1.2       ad 
    315   1.2       ad /* ARGSUSED */
    316   1.2       ad int
    317   1.9      dsl sys_setcontext(struct lwp *l, const struct sys_setcontext_args *uap, register_t *retval)
    318   1.2       ad {
    319   1.9      dsl 	/* {
    320   1.2       ad 		syscallarg(const ucontext_t *) ucp;
    321   1.9      dsl 	} */
    322   1.2       ad 	struct proc *p = l->l_proc;
    323   1.2       ad 	ucontext_t uc;
    324   1.2       ad 	int error;
    325   1.2       ad 
    326   1.2       ad 	error = copyin(SCARG(uap, ucp), &uc, sizeof (uc));
    327   1.2       ad 	if (error)
    328   1.2       ad 		return (error);
    329   1.2       ad 	if (!(uc.uc_flags & _UC_CPU))
    330   1.2       ad 		return (EINVAL);
    331  1.14       ad 	mutex_enter(p->p_lock);
    332   1.2       ad 	error = setucontext(l, &uc);
    333  1.14       ad 	mutex_exit(p->p_lock);
    334   1.2       ad 	if (error)
    335   1.2       ad  		return (error);
    336   1.2       ad 
    337   1.2       ad 	return (EJUSTRETURN);
    338   1.2       ad }
    339   1.2       ad 
    340   1.2       ad /*
    341   1.2       ad  * sigtimedwait(2) system call, used also for implementation
    342   1.2       ad  * of sigwaitinfo() and sigwait().
    343   1.2       ad  *
    344   1.2       ad  * This only handles single LWP in signal wait. libpthread provides
    345   1.2       ad  * it's own sigtimedwait() wrapper to DTRT WRT individual threads.
    346   1.2       ad  */
    347   1.2       ad int
    348   1.9      dsl sys___sigtimedwait(struct lwp *l, const struct sys___sigtimedwait_args *uap, register_t *retval)
    349   1.2       ad {
    350   1.2       ad 
    351   1.9      dsl 	return __sigtimedwait1(l, uap, retval, copyout, copyin, copyout);
    352   1.2       ad }
    353   1.2       ad 
    354   1.2       ad int
    355   1.2       ad sigaction1(struct lwp *l, int signum, const struct sigaction *nsa,
    356   1.2       ad 	struct sigaction *osa, const void *tramp, int vers)
    357   1.2       ad {
    358   1.2       ad 	struct proc *p;
    359   1.2       ad 	struct sigacts *ps;
    360   1.2       ad 	sigset_t tset;
    361   1.2       ad 	int prop, error;
    362   1.2       ad 	ksiginfoq_t kq;
    363   1.2       ad 
    364   1.2       ad 	if (signum <= 0 || signum >= NSIG)
    365   1.2       ad 		return (EINVAL);
    366   1.2       ad 
    367   1.2       ad 	p = l->l_proc;
    368   1.2       ad 	error = 0;
    369   1.2       ad 	ksiginfo_queue_init(&kq);
    370   1.2       ad 
    371   1.2       ad 	/*
    372   1.2       ad 	 * Trampoline ABI version 0 is reserved for the legacy kernel
    373   1.2       ad 	 * provided on-stack trampoline.  Conversely, if we are using a
    374   1.2       ad 	 * non-0 ABI version, we must have a trampoline.  Only validate the
    375   1.2       ad 	 * vers if a new sigaction was supplied. Emulations use legacy
    376   1.2       ad 	 * kernel trampolines with version 0, alternatively check for that
    377   1.2       ad 	 * too.
    378   1.2       ad 	 */
    379   1.2       ad 	if ((vers != 0 && tramp == NULL) ||
    380   1.2       ad #ifdef SIGTRAMP_VALID
    381   1.2       ad 	    (nsa != NULL &&
    382   1.2       ad 	    ((vers == 0) ?
    383   1.2       ad 		(p->p_emul->e_sigcode == NULL) :
    384   1.2       ad 		!SIGTRAMP_VALID(vers))) ||
    385   1.2       ad #endif
    386   1.2       ad 	    (vers == 0 && tramp != NULL)) {
    387   1.2       ad 		return (EINVAL);
    388   1.2       ad 	}
    389   1.2       ad 
    390  1.14       ad 	mutex_enter(p->p_lock);
    391   1.2       ad 
    392   1.2       ad 	ps = p->p_sigacts;
    393   1.2       ad 	if (osa)
    394   1.2       ad 		*osa = SIGACTION_PS(ps, signum);
    395   1.2       ad 	if (!nsa)
    396   1.2       ad 		goto out;
    397   1.2       ad 
    398   1.2       ad 	prop = sigprop[signum];
    399   1.2       ad 	if ((nsa->sa_flags & ~SA_ALLBITS) || (prop & SA_CANTMASK)) {
    400   1.2       ad 		error = EINVAL;
    401   1.2       ad 		goto out;
    402   1.2       ad 	}
    403   1.2       ad 
    404   1.2       ad 	SIGACTION_PS(ps, signum) = *nsa;
    405   1.2       ad 	ps->sa_sigdesc[signum].sd_tramp = tramp;
    406   1.2       ad 	ps->sa_sigdesc[signum].sd_vers = vers;
    407   1.2       ad 	sigminusset(&sigcantmask, &SIGACTION_PS(ps, signum).sa_mask);
    408   1.2       ad 
    409   1.2       ad 	if ((prop & SA_NORESET) != 0)
    410   1.2       ad 		SIGACTION_PS(ps, signum).sa_flags &= ~SA_RESETHAND;
    411   1.2       ad 
    412   1.2       ad 	if (signum == SIGCHLD) {
    413   1.2       ad 		if (nsa->sa_flags & SA_NOCLDSTOP)
    414   1.2       ad 			p->p_sflag |= PS_NOCLDSTOP;
    415   1.2       ad 		else
    416   1.2       ad 			p->p_sflag &= ~PS_NOCLDSTOP;
    417   1.2       ad 		if (nsa->sa_flags & SA_NOCLDWAIT) {
    418   1.2       ad 			/*
    419   1.2       ad 			 * Paranoia: since SA_NOCLDWAIT is implemented by
    420   1.2       ad 			 * reparenting the dying child to PID 1 (and trust
    421   1.2       ad 			 * it to reap the zombie), PID 1 itself is forbidden
    422   1.2       ad 			 * to set SA_NOCLDWAIT.
    423   1.2       ad 			 */
    424   1.2       ad 			if (p->p_pid == 1)
    425   1.4    pavel 				p->p_flag &= ~PK_NOCLDWAIT;
    426   1.2       ad 			else
    427   1.4    pavel 				p->p_flag |= PK_NOCLDWAIT;
    428   1.2       ad 		} else
    429   1.4    pavel 			p->p_flag &= ~PK_NOCLDWAIT;
    430   1.2       ad 
    431   1.2       ad 		if (nsa->sa_handler == SIG_IGN) {
    432   1.2       ad 			/*
    433   1.2       ad 			 * Paranoia: same as above.
    434   1.2       ad 			 */
    435   1.2       ad 			if (p->p_pid == 1)
    436   1.4    pavel 				p->p_flag &= ~PK_CLDSIGIGN;
    437   1.2       ad 			else
    438   1.4    pavel 				p->p_flag |= PK_CLDSIGIGN;
    439   1.2       ad 		} else
    440   1.4    pavel 			p->p_flag &= ~PK_CLDSIGIGN;
    441   1.2       ad 	}
    442   1.2       ad 
    443   1.2       ad 	if ((nsa->sa_flags & SA_NODEFER) == 0)
    444   1.2       ad 		sigaddset(&SIGACTION_PS(ps, signum).sa_mask, signum);
    445   1.2       ad 	else
    446   1.2       ad 		sigdelset(&SIGACTION_PS(ps, signum).sa_mask, signum);
    447   1.2       ad 
    448   1.2       ad 	/*
    449   1.2       ad 	 * Set bit in p_sigctx.ps_sigignore for signals that are set to
    450   1.2       ad 	 * SIG_IGN, and for signals set to SIG_DFL where the default is to
    451   1.2       ad 	 * ignore. However, don't put SIGCONT in p_sigctx.ps_sigignore, as
    452   1.2       ad 	 * we have to restart the process.
    453   1.2       ad 	 */
    454   1.2       ad 	if (nsa->sa_handler == SIG_IGN ||
    455   1.2       ad 	    (nsa->sa_handler == SIG_DFL && (prop & SA_IGNORE) != 0)) {
    456   1.2       ad 		/* Never to be seen again. */
    457   1.2       ad 		sigemptyset(&tset);
    458   1.2       ad 		sigaddset(&tset, signum);
    459   1.2       ad 		sigclearall(p, &tset, &kq);
    460   1.2       ad 		if (signum != SIGCONT) {
    461   1.2       ad 			/* Easier in psignal */
    462   1.2       ad 			sigaddset(&p->p_sigctx.ps_sigignore, signum);
    463   1.2       ad 		}
    464   1.2       ad 		sigdelset(&p->p_sigctx.ps_sigcatch, signum);
    465   1.2       ad 	} else {
    466   1.2       ad 		sigdelset(&p->p_sigctx.ps_sigignore, signum);
    467   1.2       ad 		if (nsa->sa_handler == SIG_DFL)
    468   1.2       ad 			sigdelset(&p->p_sigctx.ps_sigcatch, signum);
    469   1.2       ad 		else
    470   1.2       ad 			sigaddset(&p->p_sigctx.ps_sigcatch, signum);
    471   1.2       ad 	}
    472   1.2       ad 
    473   1.2       ad 	/*
    474   1.2       ad 	 * Previously held signals may now have become visible.  Ensure that
    475   1.2       ad 	 * we check for them before returning to userspace.
    476   1.2       ad 	 */
    477   1.6       ad 	if (sigispending(l, 0)) {
    478   1.6       ad 		lwp_lock(l);
    479   1.6       ad 		l->l_flag |= LW_PENDSIG;
    480   1.6       ad 		lwp_unlock(l);
    481   1.6       ad 	}
    482   1.2       ad  out:
    483  1.14       ad 	mutex_exit(p->p_lock);
    484   1.2       ad 	ksiginfo_queue_drain(&kq);
    485   1.2       ad 
    486   1.2       ad 	return (error);
    487   1.2       ad }
    488   1.2       ad 
    489   1.2       ad int
    490   1.2       ad sigprocmask1(struct lwp *l, int how, const sigset_t *nss, sigset_t *oss)
    491   1.2       ad {
    492   1.2       ad 	int more;
    493   1.2       ad 
    494  1.14       ad 	KASSERT(mutex_owned(l->l_proc->p_lock));
    495   1.2       ad 
    496   1.2       ad 	if (oss)
    497   1.2       ad 		*oss = l->l_sigmask;
    498   1.2       ad 	if (nss) {
    499   1.2       ad 		switch (how) {
    500   1.2       ad 		case SIG_BLOCK:
    501   1.2       ad 			sigplusset(nss, &l->l_sigmask);
    502   1.2       ad 			more = 0;
    503   1.2       ad 			break;
    504   1.2       ad 		case SIG_UNBLOCK:
    505   1.2       ad 			sigminusset(nss, &l->l_sigmask);
    506   1.2       ad 			more = 1;
    507   1.2       ad 			break;
    508   1.2       ad 		case SIG_SETMASK:
    509   1.2       ad 			l->l_sigmask = *nss;
    510   1.2       ad 			more = 1;
    511   1.2       ad 			break;
    512   1.2       ad 		default:
    513   1.2       ad 			return (EINVAL);
    514   1.2       ad 		}
    515   1.2       ad 		sigminusset(&sigcantmask, &l->l_sigmask);
    516   1.6       ad 		if (more && sigispending(l, 0)) {
    517   1.2       ad 			/*
    518   1.2       ad 			 * Check for pending signals on return to user.
    519   1.2       ad 			 */
    520   1.2       ad 			lwp_lock(l);
    521   1.4    pavel 			l->l_flag |= LW_PENDSIG;
    522   1.2       ad 			lwp_unlock(l);
    523   1.2       ad 		}
    524   1.2       ad 	}
    525   1.2       ad 
    526   1.2       ad 	return (0);
    527   1.2       ad }
    528   1.2       ad 
    529   1.2       ad void
    530   1.2       ad sigpending1(struct lwp *l, sigset_t *ss)
    531   1.2       ad {
    532   1.2       ad 	struct proc *p = l->l_proc;
    533   1.2       ad 
    534  1.14       ad 	mutex_enter(p->p_lock);
    535   1.2       ad 	*ss = l->l_sigpend.sp_set;
    536   1.2       ad 	sigplusset(&p->p_sigpend.sp_set, ss);
    537   1.2       ad 	sigminusset(&l->l_sigmask, ss);
    538  1.14       ad 	mutex_exit(p->p_lock);
    539   1.2       ad }
    540   1.2       ad 
    541   1.2       ad int
    542   1.2       ad sigsuspend1(struct lwp *l, const sigset_t *ss)
    543   1.2       ad {
    544   1.2       ad 	struct proc *p;
    545   1.2       ad 
    546   1.2       ad 	p = l->l_proc;
    547   1.2       ad 
    548   1.2       ad 	if (ss) {
    549   1.2       ad 		/*
    550  1.12     yamt 		 * When returning from sigsuspend, we want
    551   1.2       ad 		 * the old mask to be restored after the
    552   1.2       ad 		 * signal handler has finished.  Thus, we
    553   1.2       ad 		 * save it here and mark the sigctx structure
    554   1.2       ad 		 * to indicate this.
    555   1.2       ad 		 */
    556  1.14       ad 		mutex_enter(p->p_lock);
    557   1.2       ad 		l->l_sigrestore = 1;
    558   1.2       ad 		l->l_sigoldmask = l->l_sigmask;
    559   1.2       ad 		l->l_sigmask = *ss;
    560   1.2       ad 		sigminusset(&sigcantmask, &l->l_sigmask);
    561   1.2       ad 
    562   1.2       ad 		/* Check for pending signals when sleeping. */
    563   1.6       ad 		if (sigispending(l, 0)) {
    564   1.6       ad 			lwp_lock(l);
    565   1.6       ad 			l->l_flag |= LW_PENDSIG;
    566   1.6       ad 			lwp_unlock(l);
    567   1.6       ad 		}
    568  1.14       ad 		mutex_exit(p->p_lock);
    569   1.2       ad 	}
    570   1.2       ad 
    571   1.5  thorpej 	while (kpause("pause", true, 0, NULL) == 0)
    572   1.2       ad 		;
    573   1.2       ad 
    574   1.2       ad 	/* always return EINTR rather than ERESTART... */
    575   1.2       ad 	return (EINTR);
    576   1.2       ad }
    577   1.2       ad 
    578   1.2       ad int
    579   1.2       ad sigaltstack1(struct lwp *l, const struct sigaltstack *nss,
    580   1.2       ad 	     struct sigaltstack *oss)
    581   1.2       ad {
    582   1.2       ad 	struct proc *p = l->l_proc;
    583   1.2       ad 	int error = 0;
    584   1.2       ad 
    585  1.14       ad 	mutex_enter(p->p_lock);
    586   1.2       ad 
    587   1.2       ad 	if (oss)
    588   1.2       ad 		*oss = l->l_sigstk;
    589   1.2       ad 
    590   1.2       ad 	if (nss) {
    591   1.2       ad 		if (nss->ss_flags & ~SS_ALLBITS)
    592   1.2       ad 			error = EINVAL;
    593   1.2       ad 		else if (nss->ss_flags & SS_DISABLE) {
    594   1.2       ad 			if (l->l_sigstk.ss_flags & SS_ONSTACK)
    595   1.2       ad 				error = EINVAL;
    596   1.2       ad 		} else if (nss->ss_size < MINSIGSTKSZ)
    597   1.2       ad 			error = ENOMEM;
    598   1.2       ad 
    599   1.2       ad 		if (!error)
    600   1.2       ad 			l->l_sigstk = *nss;
    601   1.2       ad 	}
    602   1.2       ad 
    603  1.14       ad 	mutex_exit(p->p_lock);
    604   1.2       ad 
    605   1.2       ad 	return (error);
    606   1.2       ad }
    607   1.2       ad 
    608   1.2       ad int
    609   1.9      dsl __sigtimedwait1(struct lwp *l, const struct sys___sigtimedwait_args *uap, register_t *retval,
    610   1.2       ad     copyout_t put_info, copyin_t fetch_timeout, copyout_t put_timeout)
    611   1.2       ad {
    612   1.9      dsl 	/* {
    613   1.2       ad 		syscallarg(const sigset_t *) set;
    614   1.2       ad 		syscallarg(siginfo_t *) info;
    615   1.2       ad 		syscallarg(struct timespec *) timeout;
    616   1.9      dsl 	} */
    617   1.2       ad 	struct proc *p = l->l_proc;
    618   1.2       ad 	int error, signum;
    619   1.2       ad 	int timo = 0;
    620   1.2       ad 	struct timespec ts, tsstart, tsnow;
    621   1.2       ad 	ksiginfo_t *ksi;
    622   1.2       ad 
    623   1.2       ad 	memset(&tsstart, 0, sizeof tsstart);	 /* XXX gcc */
    624   1.2       ad 
    625   1.2       ad 	/*
    626   1.2       ad 	 * Calculate timeout, if it was specified.
    627   1.2       ad 	 */
    628   1.2       ad 	if (SCARG(uap, timeout)) {
    629   1.2       ad 		uint64_t ms;
    630   1.2       ad 
    631   1.2       ad 		if ((error = (*fetch_timeout)(SCARG(uap, timeout), &ts, sizeof(ts))))
    632   1.2       ad 			return (error);
    633   1.2       ad 
    634   1.2       ad 		ms = (ts.tv_sec * 1000) + (ts.tv_nsec / 1000000);
    635   1.2       ad 		timo = mstohz(ms);
    636   1.2       ad 		if (timo == 0 && ts.tv_sec == 0 && ts.tv_nsec > 0)
    637   1.2       ad 			timo = 1;
    638   1.2       ad 		if (timo <= 0)
    639   1.2       ad 			return (EAGAIN);
    640   1.2       ad 
    641   1.2       ad 		/*
    642   1.2       ad 		 * Remember current uptime, it would be used in
    643   1.2       ad 		 * ECANCELED/ERESTART case.
    644   1.2       ad 		 */
    645   1.2       ad 		getnanouptime(&tsstart);
    646   1.2       ad 	}
    647   1.2       ad 
    648   1.2       ad 	error = copyin(SCARG(uap, set), &l->l_sigwaitset,
    649   1.2       ad 	    sizeof(l->l_sigwaitset));
    650   1.2       ad 	if (error != 0)
    651   1.2       ad 		return (error);
    652   1.2       ad 
    653   1.2       ad 	/*
    654   1.2       ad 	 * Silently ignore SA_CANTMASK signals. psignal1() would ignore
    655   1.2       ad 	 * SA_CANTMASK signals in waitset, we do this only for the below
    656   1.2       ad 	 * siglist check.
    657   1.2       ad 	 */
    658   1.2       ad 	sigminusset(&sigcantmask, &l->l_sigwaitset);
    659   1.2       ad 
    660   1.2       ad 	/*
    661   1.2       ad 	 * Allocate a ksi up front.  We can't sleep with the mutex held.
    662   1.2       ad 	 */
    663   1.2       ad 	ksi = ksiginfo_alloc(p, NULL, PR_WAITOK);
    664   1.2       ad 	if (ksi == NULL)
    665   1.2       ad 		return (ENOMEM);
    666   1.2       ad 
    667  1.14       ad 	mutex_enter(p->p_lock);
    668   1.2       ad 
    669   1.2       ad 	if ((signum = sigget(&p->p_sigpend, ksi, 0, &l->l_sigwaitset)) == 0)
    670   1.2       ad 		signum = sigget(&l->l_sigpend, ksi, 0, &l->l_sigwaitset);
    671   1.2       ad 
    672   1.2       ad 	if (signum != 0) {
    673   1.2       ad 		/*
    674   1.2       ad 		 * We found a pending signal - copy it out to the user.
    675   1.2       ad 		 */
    676  1.14       ad 		mutex_exit(p->p_lock);
    677   1.2       ad 		goto out;
    678   1.2       ad 	}
    679   1.2       ad 
    680   1.2       ad 	/*
    681   1.2       ad 	 * Set up the sigwait list.
    682   1.2       ad 	 */
    683   1.2       ad 	l->l_sigwaited = ksi;
    684   1.2       ad 	LIST_INSERT_HEAD(&p->p_sigwaiters, l, l_sigwaiter);
    685   1.2       ad 
    686   1.2       ad 	/*
    687   1.2       ad 	 * Wait for signal to arrive. We can either be woken up or time out.
    688   1.2       ad 	 */
    689  1.14       ad 	error = cv_timedwait_sig(&l->l_sigcv, p->p_lock, timo);
    690   1.2       ad 
    691   1.2       ad 	/*
    692   1.2       ad 	 * Need to find out if we woke as a result of lwp_wakeup() or a
    693   1.2       ad 	 * signal outside our wait set.
    694   1.2       ad 	 */
    695   1.2       ad 	if (l->l_sigwaited != NULL) {
    696   1.2       ad 		if (error == EINTR) {
    697   1.2       ad 			/* wakeup via _lwp_wakeup() */
    698   1.2       ad 			error = ECANCELED;
    699   1.2       ad 		} else if (!error) {
    700   1.2       ad 			/* spurious wakeup - arrange for syscall restart */
    701   1.2       ad 			error = ERESTART;
    702   1.2       ad 		}
    703   1.2       ad 		l->l_sigwaited = NULL;
    704   1.2       ad 		LIST_REMOVE(l, l_sigwaiter);
    705   1.2       ad 	}
    706   1.2       ad 
    707  1.14       ad 	mutex_exit(p->p_lock);
    708   1.2       ad 
    709   1.2       ad 	/*
    710   1.2       ad 	 * If the sleep was interrupted (either by signal or wakeup), update
    711   1.2       ad 	 * the timeout and copyout new value back.  It would be used when
    712   1.2       ad 	 * the syscall would be restarted or called again.
    713   1.2       ad 	 */
    714   1.2       ad 	if (timo && (error == ERESTART || error == ECANCELED)) {
    715   1.2       ad 		getnanouptime(&tsnow);
    716   1.2       ad 
    717   1.2       ad 		/* compute how much time has passed since start */
    718   1.2       ad 		timespecsub(&tsnow, &tsstart, &tsnow);
    719   1.2       ad 		/* substract passed time from timeout */
    720   1.2       ad 		timespecsub(&ts, &tsnow, &ts);
    721   1.2       ad 
    722   1.2       ad 		if (ts.tv_sec < 0)
    723   1.2       ad 			error = EAGAIN;
    724   1.2       ad 		else {
    725   1.2       ad 			/* copy updated timeout to userland */
    726   1.2       ad 			error = (*put_timeout)(&ts, SCARG(uap, timeout),
    727   1.2       ad 			    sizeof(ts));
    728   1.2       ad 		}
    729   1.2       ad 	}
    730   1.2       ad 
    731   1.2       ad 	/*
    732   1.2       ad 	 * If a signal from the wait set arrived, copy it to userland.
    733   1.2       ad 	 * Copy only the used part of siginfo, the padding part is
    734   1.2       ad 	 * left unchanged (userland is not supposed to touch it anyway).
    735   1.2       ad 	 */
    736   1.2       ad  out:
    737   1.2       ad 	if (error == 0)
    738   1.2       ad 		error = (*put_info)(&ksi->ksi_info, SCARG(uap, info),
    739   1.2       ad 		    sizeof(ksi->ksi_info));
    740   1.2       ad 
    741   1.2       ad 	ksiginfo_free(ksi);
    742   1.2       ad 
    743   1.2       ad 	return error;
    744   1.2       ad }
    745