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1 /*
2 * Copyright (c) 1995-2016 Apple Inc. All rights reserved.
3 *
4 * @APPLE_OSREFERENCE_LICENSE_HEADER_START@
5 *
6 * This file contains Original Code and/or Modifications of Original Code
7 * as defined in and that are subject to the Apple Public Source License
8 * Version 2.0 (the 'License'). You may not use this file except in
9 * compliance with the License. The rights granted to you under the License
10 * may not be used to create, or enable the creation or redistribution of,
11 * unlawful or unlicensed copies of an Apple operating system, or to
12 * circumvent, violate, or enable the circumvention or violation of, any
13 * terms of an Apple operating system software license agreement.
14 *
15 * Please obtain a copy of the License at
16 * http://www.opensource.apple.com/apsl/ and read it before using this file.
17 *
18 * The Original Code and all software distributed under the License are
19 * distributed on an 'AS IS' basis, WITHOUT WARRANTY OF ANY KIND, EITHER
20 * EXPRESS OR IMPLIED, AND APPLE HEREBY DISCLAIMS ALL SUCH WARRANTIES,
21 * INCLUDING WITHOUT LIMITATION, ANY WARRANTIES OF MERCHANTABILITY,
22 * FITNESS FOR A PARTICULAR PURPOSE, QUIET ENJOYMENT OR NON-INFRINGEMENT.
23 * Please see the License for the specific language governing rights and
24 * limitations under the License.
25 *
26 * @APPLE_OSREFERENCE_LICENSE_HEADER_END@
27 */
28 /*
29 * Copyright (c) 1982, 1986, 1989, 1991, 1993
30 * The Regents of the University of California. All rights reserved.
31 * (c) UNIX System Laboratories, Inc.
32 * All or some portions of this file are derived from material licensed
33 * to the University of California by American Telephone and Telegraph
34 * Co. or Unix System Laboratories, Inc. and are reproduced herein with
35 * the permission of UNIX System Laboratories, Inc.
36 *
37 * Redistribution and use in source and binary forms, with or without
38 * modification, are permitted provided that the following conditions
39 * are met:
40 * 1. Redistributions of source code must retain the above copyright
41 * notice, this list of conditions and the following disclaimer.
42 * 2. Redistributions in binary form must reproduce the above copyright
43 * notice, this list of conditions and the following disclaimer in the
44 * documentation and/or other materials provided with the distribution.
45 * 3. All advertising materials mentioning features or use of this software
46 * must display the following acknowledgement:
47 * This product includes software developed by the University of
48 * California, Berkeley and its contributors.
49 * 4. Neither the name of the University nor the names of its contributors
50 * may be used to endorse or promote products derived from this software
51 * without specific prior written permission.
52 *
53 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
54 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
55 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
56 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
57 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
58 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
59 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
60 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
61 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
62 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
63 * SUCH DAMAGE.
64 *
65 * @(#)kern_sig.c 8.7 (Berkeley) 4/18/94
66 */
67 /*
68 * NOTICE: This file was modified by SPARTA, Inc. in 2005 to introduce
69 * support for mandatory and extensible security protections. This notice
70 * is included in support of clause 2.2 (b) of the Apple Public License,
71 * Version 2.0.
72 */
73
74 #define SIGPROP /* include signal properties table */
75 #include <sys/param.h>
76 #include <sys/resourcevar.h>
77 #include <sys/proc_internal.h>
78 #include <sys/kauth.h>
79 #include <sys/systm.h>
80 #include <sys/timeb.h>
81 #include <sys/times.h>
82 #include <sys/acct.h>
83 #include <sys/file_internal.h>
84 #include <sys/kernel.h>
85 #include <sys/wait.h>
86 #include <sys/signalvar.h>
87 #include <sys/syslog.h>
88 #include <sys/stat.h>
89 #include <sys/lock.h>
90 #include <sys/kdebug.h>
91 #include <sys/reason.h>
92
93 #include <sys/mount.h>
94 #include <sys/sysproto.h>
95
96 #include <security/audit/audit.h>
97
98 #include <kern/cpu_number.h>
99
100 #include <sys/vm.h>
101 #include <sys/user.h> /* for coredump */
102 #include <kern/ast.h> /* for APC support */
103 #include <kern/kalloc.h>
104 #include <kern/task.h> /* extern void *get_bsdtask_info(task_t); */
105 #include <kern/thread.h>
106 #include <kern/sched_prim.h>
107 #include <kern/thread_call.h>
108 #include <kern/policy_internal.h>
109
110 #include <mach/exception.h>
111 #include <mach/task.h>
112 #include <mach/thread_act.h>
113 #include <libkern/OSAtomic.h>
114
115 #include <sys/sdt.h>
116 #include <sys/codesign.h>
117 #include <libkern/section_keywords.h>
118
119 #if CONFIG_MACF
120 #include <security/mac_framework.h>
121 #endif
122
123 /*
124 * Missing prototypes that Mach should export
125 *
126 * +++
127 */
128 extern int thread_enable_fpe(thread_t act, int onoff);
129 extern thread_t port_name_to_thread(mach_port_name_t port_name);
130 extern kern_return_t get_signalact(task_t , thread_t *, int);
131 extern unsigned int get_useraddr(void);
132 extern boolean_t task_did_exec(task_t task);
133 extern boolean_t task_is_exec_copy(task_t task);
134
135 /*
136 * ---
137 */
138
139 extern void doexception(int exc, mach_exception_code_t code,
140 mach_exception_subcode_t sub);
141
142 static void stop(proc_t, proc_t);
143 int cansignal(proc_t, kauth_cred_t, proc_t, int, int);
144 int killpg1(proc_t, int, int, int, int);
145 kern_return_t do_bsdexception(int, int, int);
146 void __posix_sem_syscall_return(kern_return_t);
147 char *proc_name_address(void *p);
148
149 /* implementations in osfmk/kern/sync_sema.c. We do not want port.h in this scope, so void * them */
150 kern_return_t semaphore_timedwait_signal_trap_internal(mach_port_name_t, mach_port_name_t, unsigned int, clock_res_t, void (*)(kern_return_t));
151 kern_return_t semaphore_timedwait_trap_internal(mach_port_name_t, unsigned int, clock_res_t, void (*)(kern_return_t));
152 kern_return_t semaphore_wait_signal_trap_internal(mach_port_name_t, mach_port_name_t, void (*)(kern_return_t));
153 kern_return_t semaphore_wait_trap_internal(mach_port_name_t, void (*)(kern_return_t));
154
155 static int filt_sigattach(struct knote *kn, struct kevent_internal_s *kev);
156 static void filt_sigdetach(struct knote *kn);
157 static int filt_signal(struct knote *kn, long hint);
158 static int filt_signaltouch(struct knote *kn, struct kevent_internal_s *kev);
159 static int filt_signalprocess(struct knote *kn, struct filt_process_s *data, struct kevent_internal_s *kev);
160
161 SECURITY_READ_ONLY_EARLY(struct filterops) sig_filtops = {
162 .f_attach = filt_sigattach,
163 .f_detach = filt_sigdetach,
164 .f_event = filt_signal,
165 .f_touch = filt_signaltouch,
166 .f_process = filt_signalprocess,
167 };
168
169 /* structures and fns for killpg1 iterartion callback and filters */
170 struct killpg1_filtargs {
171 int posix;
172 proc_t cp;
173 };
174
175 struct killpg1_iterargs {
176 proc_t cp;
177 kauth_cred_t uc;
178 int signum;
179 int * nfoundp;
180 int zombie;
181 };
182
183 static int killpg1_filt(proc_t p, void * arg);
184 static int killpg1_pgrpfilt(proc_t p, __unused void * arg);
185 static int killpg1_callback(proc_t p, void * arg);
186
187 static int pgsignal_filt(proc_t p, void * arg);
188 static int pgsignal_callback(proc_t p, void * arg);
189 static kern_return_t get_signalthread(proc_t, int, thread_t *);
190
191
192 /* flags for psignal_internal */
193 #define PSIG_LOCKED 0x1
194 #define PSIG_VFORK 0x2
195 #define PSIG_THREAD 0x4
196 #define PSIG_TRY_THREAD 0x8
197
198 static os_reason_t build_signal_reason(int signum, const char *procname);
199 static void psignal_internal(proc_t p, task_t task, thread_t thread, int flavor, int signum, os_reason_t signal_reason);
200
201 /*
202 * NOTE: Source and target may *NOT* overlap! (target is smaller)
203 */
204 static void
205 sigaltstack_kern_to_user32(struct kern_sigaltstack *in, struct user32_sigaltstack *out)
206 {
207 out->ss_sp = CAST_DOWN_EXPLICIT(user32_addr_t, in->ss_sp);
208 out->ss_size = CAST_DOWN_EXPLICIT(user32_size_t, in->ss_size);
209 out->ss_flags = in->ss_flags;
210 }
211
212 static void
213 sigaltstack_kern_to_user64(struct kern_sigaltstack *in, struct user64_sigaltstack *out)
214 {
215 out->ss_sp = in->ss_sp;
216 out->ss_size = in->ss_size;
217 out->ss_flags = in->ss_flags;
218 }
219
220 /*
221 * NOTE: Source and target may are permitted to overlap! (source is smaller);
222 * this works because we copy fields in order from the end of the struct to
223 * the beginning.
224 */
225 static void
226 sigaltstack_user32_to_kern(struct user32_sigaltstack *in, struct kern_sigaltstack *out)
227 {
228 out->ss_flags = in->ss_flags;
229 out->ss_size = in->ss_size;
230 out->ss_sp = CAST_USER_ADDR_T(in->ss_sp);
231 }
232 static void
233 sigaltstack_user64_to_kern(struct user64_sigaltstack *in, struct kern_sigaltstack *out)
234 {
235 out->ss_flags = in->ss_flags;
236 out->ss_size = in->ss_size;
237 out->ss_sp = in->ss_sp;
238 }
239
240 static void
241 sigaction_kern_to_user32(struct kern_sigaction *in, struct user32_sigaction *out)
242 {
243 /* This assumes 32 bit __sa_handler is of type sig_t */
244 out->__sigaction_u.__sa_handler = CAST_DOWN_EXPLICIT(user32_addr_t,in->__sigaction_u.__sa_handler);
245 out->sa_mask = in->sa_mask;
246 out->sa_flags = in->sa_flags;
247 }
248 static void
249 sigaction_kern_to_user64(struct kern_sigaction *in, struct user64_sigaction *out)
250 {
251 /* This assumes 32 bit __sa_handler is of type sig_t */
252 out->__sigaction_u.__sa_handler = in->__sigaction_u.__sa_handler;
253 out->sa_mask = in->sa_mask;
254 out->sa_flags = in->sa_flags;
255 }
256
257 static void
258 __sigaction_user32_to_kern(struct __user32_sigaction *in, struct __kern_sigaction *out)
259 {
260 out->__sigaction_u.__sa_handler = CAST_USER_ADDR_T(in->__sigaction_u.__sa_handler);
261 out->sa_tramp = CAST_USER_ADDR_T(in->sa_tramp);
262 out->sa_mask = in->sa_mask;
263 out->sa_flags = in->sa_flags;
264 }
265
266 static void
267 __sigaction_user64_to_kern(struct __user64_sigaction *in, struct __kern_sigaction *out)
268 {
269 out->__sigaction_u.__sa_handler = in->__sigaction_u.__sa_handler;
270 out->sa_tramp = in->sa_tramp;
271 out->sa_mask = in->sa_mask;
272 out->sa_flags = in->sa_flags;
273 }
274
275 #if SIGNAL_DEBUG
276 void ram_printf(int);
277 int ram_debug=0;
278 unsigned int rdebug_proc=0;
279 void
280 ram_printf(int x)
281 {
282 printf("x is %d",x);
283
284 }
285 #endif /* SIGNAL_DEBUG */
286
287
288 void
289 signal_setast(thread_t sig_actthread)
290 {
291 act_set_astbsd(sig_actthread);
292 }
293
294 /*
295 * Can process p, with ucred uc, send the signal signum to process q?
296 * uc is refcounted by the caller so internal fileds can be used safely
297 * when called with zombie arg, list lock is held
298 */
299 int
300 cansignal(proc_t p, kauth_cred_t uc, proc_t q, int signum, int zombie)
301 {
302 kauth_cred_t my_cred;
303 struct session * p_sessp = SESSION_NULL;
304 struct session * q_sessp = SESSION_NULL;
305 #if CONFIG_MACF
306 int error;
307
308 error = mac_proc_check_signal(p, q, signum);
309 if (error)
310 return (0);
311 #endif
312
313 /* you can signal yourself */
314 if (p == q)
315 return(1);
316
317 /* you can't send launchd SIGKILL, even if root */
318 if (signum == SIGKILL && q == initproc)
319 return(0);
320
321 if (!suser(uc, NULL))
322 return (1); /* root can always signal */
323
324 if (zombie == 0)
325 proc_list_lock();
326 if (p->p_pgrp != PGRP_NULL)
327 p_sessp = p->p_pgrp->pg_session;
328 if (q->p_pgrp != PGRP_NULL)
329 q_sessp = q->p_pgrp->pg_session;
330
331 if (signum == SIGCONT && q_sessp == p_sessp) {
332 if (zombie == 0)
333 proc_list_unlock();
334 return (1); /* SIGCONT in session */
335 }
336
337 if (zombie == 0)
338 proc_list_unlock();
339
340 /*
341 * If the real or effective UID of the sender matches the real
342 * or saved UID of the target, permit the signal to
343 * be sent.
344 */
345 if (zombie == 0)
346 my_cred = kauth_cred_proc_ref(q);
347 else
348 my_cred = proc_ucred(q);
349
350 if (kauth_cred_getruid(uc) == kauth_cred_getruid(my_cred) ||
351 kauth_cred_getruid(uc) == kauth_cred_getsvuid(my_cred) ||
352 kauth_cred_getuid(uc) == kauth_cred_getruid(my_cred) ||
353 kauth_cred_getuid(uc) == kauth_cred_getsvuid(my_cred)) {
354 if (zombie == 0)
355 kauth_cred_unref(&my_cred);
356 return (1);
357 }
358
359 if (zombie == 0)
360 kauth_cred_unref(&my_cred);
361
362 return (0);
363 }
364
365 /*
366 * <rdar://problem/21952708> Some signals can be restricted from being handled,
367 * forcing the default action for that signal. This behavior applies only to
368 * non-root (EUID != 0) processes, and is configured with the "sigrestrict=x"
369 * bootarg:
370 *
371 * 0 (default): Disallow use of restricted signals. Trying to register a handler
372 * returns ENOTSUP, which userspace may use to take special action (e.g. abort).
373 * 1: As above, but return EINVAL. Restricted signals behave similarly to SIGKILL.
374 * 2: Usual POSIX semantics.
375 */
376 unsigned sigrestrict_arg = 0;
377
378 #if PLATFORM_WatchOS
379 static int
380 sigrestrictmask(void)
381 {
382 if (kauth_getuid() != 0 && sigrestrict_arg != 2) {
383 return SIGRESTRICTMASK;
384 }
385 return 0;
386 }
387
388 static int
389 signal_is_restricted(proc_t p, int signum)
390 {
391 if (sigmask(signum) & sigrestrictmask()) {
392 if (sigrestrict_arg == 0 &&
393 task_get_apptype(p->task) == TASK_APPTYPE_APP_DEFAULT) {
394 return ENOTSUP;
395 } else {
396 return EINVAL;
397 }
398 }
399 return 0;
400 }
401
402 #else
403
404 static inline int
405 signal_is_restricted(proc_t p, int signum)
406 {
407 (void)p;
408 (void)signum;
409 return 0;
410 }
411 #endif /* !PLATFORM_WatchOS */
412
413 /*
414 * Returns: 0 Success
415 * EINVAL
416 * copyout:EFAULT
417 * copyin:EFAULT
418 *
419 * Notes: Uses current thread as a parameter to inform PPC to enable
420 * FPU exceptions via setsigvec(); this operation is not proxy
421 * safe!
422 */
423 /* ARGSUSED */
424 int
425 sigaction(proc_t p, struct sigaction_args *uap, __unused int32_t *retval)
426 {
427 struct kern_sigaction vec;
428 struct __kern_sigaction __vec;
429
430 struct kern_sigaction *sa = &vec;
431 struct sigacts *ps = p->p_sigacts;
432
433 int signum;
434 int bit, error=0;
435
436 signum = uap->signum;
437 if (signum <= 0 || signum >= NSIG ||
438 signum == SIGKILL || signum == SIGSTOP)
439 return (EINVAL);
440
441 if (uap->nsa) {
442 if (IS_64BIT_PROCESS(p)) {
443 struct __user64_sigaction __vec64;
444 error = copyin(uap->nsa, &__vec64, sizeof(__vec64));
445 __sigaction_user64_to_kern(&__vec64, &__vec);
446 } else {
447 struct __user32_sigaction __vec32;
448 error = copyin(uap->nsa, &__vec32, sizeof(__vec32));
449 __sigaction_user32_to_kern(&__vec32, &__vec);
450 }
451 if (error)
452 return (error);
453 __vec.sa_flags &= SA_USERSPACE_MASK; /* Only pass on valid sa_flags */
454
455 if ((__vec.sa_flags & SA_SIGINFO) || __vec.sa_handler != SIG_DFL) {
456 if ((error = signal_is_restricted(p, signum))) {
457 if (error == ENOTSUP) {
458 printf("%s(%d): denied attempt to register action for signal %d\n",
459 proc_name_address(p), proc_pid(p), signum);
460 }
461 return error;
462 }
463 }
464 }
465
466 if (uap->osa) {
467 sa->sa_handler = ps->ps_sigact[signum];
468 sa->sa_mask = ps->ps_catchmask[signum];
469 bit = sigmask(signum);
470 sa->sa_flags = 0;
471 if ((ps->ps_sigonstack & bit) != 0)
472 sa->sa_flags |= SA_ONSTACK;
473 if ((ps->ps_sigintr & bit) == 0)
474 sa->sa_flags |= SA_RESTART;
475 if (ps->ps_siginfo & bit)
476 sa->sa_flags |= SA_SIGINFO;
477 if (ps->ps_signodefer & bit)
478 sa->sa_flags |= SA_NODEFER;
479 if (ps->ps_64regset & bit)
480 sa->sa_flags |= SA_64REGSET;
481 if ((signum == SIGCHLD) && (p->p_flag & P_NOCLDSTOP))
482 sa->sa_flags |= SA_NOCLDSTOP;
483 if ((signum == SIGCHLD) && (p->p_flag & P_NOCLDWAIT))
484 sa->sa_flags |= SA_NOCLDWAIT;
485
486 if (IS_64BIT_PROCESS(p)) {
487 struct user64_sigaction vec64 = {};
488 sigaction_kern_to_user64(sa, &vec64);
489 error = copyout(&vec64, uap->osa, sizeof(vec64));
490 } else {
491 struct user32_sigaction vec32 = {};
492 sigaction_kern_to_user32(sa, &vec32);
493 error = copyout(&vec32, uap->osa, sizeof(vec32));
494 }
495 if (error)
496 return (error);
497 }
498
499 if (uap->nsa) {
500 error = setsigvec(p, current_thread(), signum, &__vec, FALSE);
501 }
502
503 return (error);
504 }
505
506 /* Routines to manipulate bits on all threads */
507 int
508 clear_procsiglist(proc_t p, int bit, boolean_t in_signalstart)
509 {
510 struct uthread * uth;
511 thread_t thact;
512
513 proc_lock(p);
514 if (!in_signalstart)
515 proc_signalstart(p, 1);
516
517 if ((p->p_lflag & P_LINVFORK) && p->p_vforkact) {
518 thact = p->p_vforkact;
519 uth = (struct uthread *)get_bsdthread_info(thact);
520 if (uth) {
521 uth->uu_siglist &= ~bit;
522 }
523 if (!in_signalstart)
524 proc_signalend(p, 1);
525 proc_unlock(p);
526 return(0);
527 }
528
529 TAILQ_FOREACH(uth, &p->p_uthlist, uu_list) {
530 uth->uu_siglist &= ~bit;
531 }
532 p->p_siglist &= ~bit;
533 if (!in_signalstart)
534 proc_signalend(p, 1);
535 proc_unlock(p);
536
537 return(0);
538 }
539
540
541 static int
542 unblock_procsigmask(proc_t p, int bit)
543 {
544 struct uthread * uth;
545 thread_t thact;
546
547 proc_lock(p);
548 proc_signalstart(p, 1);
549
550 if ((p->p_lflag & P_LINVFORK) && p->p_vforkact) {
551 thact = p->p_vforkact;
552 uth = (struct uthread *)get_bsdthread_info(thact);
553 if (uth) {
554 uth->uu_sigmask &= ~bit;
555 }
556 p->p_sigmask &= ~bit;
557 proc_signalend(p, 1);
558 proc_unlock(p);
559 return(0);
560 }
561 TAILQ_FOREACH(uth, &p->p_uthlist, uu_list) {
562 uth->uu_sigmask &= ~bit;
563 }
564 p->p_sigmask &= ~bit;
565
566 proc_signalend(p, 1);
567 proc_unlock(p);
568 return(0);
569 }
570
571 static int
572 block_procsigmask(proc_t p, int bit)
573 {
574 struct uthread * uth;
575 thread_t thact;
576
577 proc_lock(p);
578 proc_signalstart(p, 1);
579
580 if ((p->p_lflag & P_LINVFORK) && p->p_vforkact) {
581 thact = p->p_vforkact;
582 uth = (struct uthread *)get_bsdthread_info(thact);
583 if (uth) {
584 uth->uu_sigmask |= bit;
585 }
586 p->p_sigmask |= bit;
587 proc_signalend(p, 1);
588 proc_unlock(p);
589 return(0);
590 }
591 TAILQ_FOREACH(uth, &p->p_uthlist, uu_list) {
592 uth->uu_sigmask |= bit;
593 }
594 p->p_sigmask |= bit;
595
596 proc_signalend(p, 1);
597 proc_unlock(p);
598 return(0);
599 }
600
601 int
602 set_procsigmask(proc_t p, int bit)
603 {
604 struct uthread * uth;
605 thread_t thact;
606
607 proc_lock(p);
608 proc_signalstart(p, 1);
609
610 if ((p->p_lflag & P_LINVFORK) && p->p_vforkact) {
611 thact = p->p_vforkact;
612 uth = (struct uthread *)get_bsdthread_info(thact);
613 if (uth) {
614 uth->uu_sigmask = bit;
615 }
616 p->p_sigmask = bit;
617 proc_signalend(p, 1);
618 proc_unlock(p);
619 return(0);
620 }
621 TAILQ_FOREACH(uth, &p->p_uthlist, uu_list) {
622 uth->uu_sigmask = bit;
623 }
624 p->p_sigmask = bit;
625 proc_signalend(p, 1);
626 proc_unlock(p);
627
628 return(0);
629 }
630
631 /* XXX should be static? */
632 /*
633 * Notes: The thread parameter is used in the PPC case to select the
634 * thread on which the floating point exception will be enabled
635 * or disabled. We can't simply take current_thread(), since
636 * this is called from posix_spawn() on the not currently running
637 * process/thread pair.
638 *
639 * We mark thread as unused to alow compilation without warning
640 * on non-PPC platforms.
641 */
642 int
643 setsigvec(proc_t p, __unused thread_t thread, int signum, struct __kern_sigaction *sa, boolean_t in_sigstart)
644 {
645 struct sigacts *ps = p->p_sigacts;
646 int bit;
647
648 assert(signum < NSIG);
649
650 if ((signum == SIGKILL || signum == SIGSTOP) &&
651 sa->sa_handler != SIG_DFL)
652 return(EINVAL);
653 bit = sigmask(signum);
654 /*
655 * Change setting atomically.
656 */
657 ps->ps_sigact[signum] = sa->sa_handler;
658 ps->ps_trampact[signum] = sa->sa_tramp;
659 ps->ps_catchmask[signum] = sa->sa_mask &~ sigcantmask;
660 if (sa->sa_flags & SA_SIGINFO)
661 ps->ps_siginfo |= bit;
662 else
663 ps->ps_siginfo &= ~bit;
664 if (sa->sa_flags & SA_64REGSET)
665 ps->ps_64regset |= bit;
666 else
667 ps->ps_64regset &= ~bit;
668 if ((sa->sa_flags & SA_RESTART) == 0)
669 ps->ps_sigintr |= bit;
670 else
671 ps->ps_sigintr &= ~bit;
672 if (sa->sa_flags & SA_ONSTACK)
673 ps->ps_sigonstack |= bit;
674 else
675 ps->ps_sigonstack &= ~bit;
676 if (sa->sa_flags & SA_USERTRAMP)
677 ps->ps_usertramp |= bit;
678 else
679 ps->ps_usertramp &= ~bit;
680 if (sa->sa_flags & SA_RESETHAND)
681 ps->ps_sigreset |= bit;
682 else
683 ps->ps_sigreset &= ~bit;
684 if (sa->sa_flags & SA_NODEFER)
685 ps->ps_signodefer |= bit;
686 else
687 ps->ps_signodefer &= ~bit;
688 if (signum == SIGCHLD) {
689 if (sa->sa_flags & SA_NOCLDSTOP)
690 OSBitOrAtomic(P_NOCLDSTOP, &p->p_flag);
691 else
692 OSBitAndAtomic(~((uint32_t)P_NOCLDSTOP), &p->p_flag);
693 if ((sa->sa_flags & SA_NOCLDWAIT) || (sa->sa_handler == SIG_IGN))
694 OSBitOrAtomic(P_NOCLDWAIT, &p->p_flag);
695 else
696 OSBitAndAtomic(~((uint32_t)P_NOCLDWAIT), &p->p_flag);
697 }
698
699 /*
700 * Set bit in p_sigignore for signals that are set to SIG_IGN,
701 * and for signals set to SIG_DFL where the default is to ignore.
702 * However, don't put SIGCONT in p_sigignore,
703 * as we have to restart the process.
704 */
705 if (sa->sa_handler == SIG_IGN ||
706 (sigprop[signum] & SA_IGNORE && sa->sa_handler == SIG_DFL)) {
707
708 clear_procsiglist(p, bit, in_sigstart);
709 if (signum != SIGCONT)
710 p->p_sigignore |= bit; /* easier in psignal */
711 p->p_sigcatch &= ~bit;
712 } else {
713 p->p_sigignore &= ~bit;
714 if (sa->sa_handler == SIG_DFL)
715 p->p_sigcatch &= ~bit;
716 else
717 p->p_sigcatch |= bit;
718 }
719 return(0);
720 }
721
722 /*
723 * Initialize signal state for process 0;
724 * set to ignore signals that are ignored by default.
725 */
726 void
727 siginit(proc_t p)
728 {
729 int i;
730
731 for (i = 1; i < NSIG; i++)
732 if (sigprop[i] & SA_IGNORE && i != SIGCONT)
733 p->p_sigignore |= sigmask(i);
734 }
735
736 /*
737 * Reset signals for an exec of the specified process.
738 */
739 void
740 execsigs(proc_t p, thread_t thread)
741 {
742 struct sigacts *ps = p->p_sigacts;
743 int nc, mask;
744 struct uthread *ut;
745
746 ut = (struct uthread *)get_bsdthread_info(thread);
747
748 /*
749 * transfer saved signal states from the process
750 * back to the current thread.
751 *
752 * NOTE: We do this without the process locked,
753 * because we are guaranteed to be single-threaded
754 * by this point in exec and the p_siglist is
755 * only accessed by threads inside the process.
756 */
757 ut->uu_siglist |= p->p_siglist;
758 p->p_siglist = 0;
759
760 /*
761 * Reset caught signals. Held signals remain held
762 * through p_sigmask (unless they were caught,
763 * and are now ignored by default).
764 */
765 while (p->p_sigcatch) {
766 nc = ffs((long)p->p_sigcatch);
767 mask = sigmask(nc);
768 p->p_sigcatch &= ~mask;
769 if (sigprop[nc] & SA_IGNORE) {
770 if (nc != SIGCONT)
771 p->p_sigignore |= mask;
772 ut->uu_siglist &= ~mask;
773 }
774 ps->ps_sigact[nc] = SIG_DFL;
775 }
776
777 /*
778 * Reset stack state to the user stack.
779 * Clear set of signals caught on the signal stack.
780 */
781 /* thread */
782 ut->uu_sigstk.ss_flags = SA_DISABLE;
783 ut->uu_sigstk.ss_size = 0;
784 ut->uu_sigstk.ss_sp = USER_ADDR_NULL;
785 ut->uu_flag &= ~UT_ALTSTACK;
786 /* process */
787 ps->ps_sigonstack = 0;
788 }
789
790 /*
791 * Manipulate signal mask.
792 * Note that we receive new mask, not pointer,
793 * and return old mask as return value;
794 * the library stub does the rest.
795 */
796 int
797 sigprocmask(proc_t p, struct sigprocmask_args *uap, __unused int32_t *retval)
798 {
799 int error = 0;
800 sigset_t oldmask, nmask;
801 user_addr_t omask = uap->omask;
802 struct uthread *ut;
803
804 ut = (struct uthread *)get_bsdthread_info(current_thread());
805 oldmask = ut->uu_sigmask;
806
807 if (uap->mask == USER_ADDR_NULL) {
808 /* just want old mask */
809 goto out;
810 }
811 error = copyin(uap->mask, &nmask, sizeof(sigset_t));
812 if (error)
813 goto out;
814
815 switch (uap->how) {
816 case SIG_BLOCK:
817 block_procsigmask(p, (nmask & ~sigcantmask));
818 signal_setast(current_thread());
819 break;
820
821 case SIG_UNBLOCK:
822 unblock_procsigmask(p, (nmask & ~sigcantmask));
823 signal_setast(current_thread());
824 break;
825
826 case SIG_SETMASK:
827 set_procsigmask(p, (nmask & ~sigcantmask));
828 signal_setast(current_thread());
829 break;
830
831 default:
832 error = EINVAL;
833 break;
834 }
835 out:
836 if (!error && omask != USER_ADDR_NULL)
837 copyout(&oldmask, omask, sizeof(sigset_t));
838 return (error);
839 }
840
841 int
842 sigpending(__unused proc_t p, struct sigpending_args *uap, __unused int32_t *retval)
843 {
844 struct uthread *ut;
845 sigset_t pendlist;
846
847 ut = (struct uthread *)get_bsdthread_info(current_thread());
848 pendlist = ut->uu_siglist;
849
850 if (uap->osv)
851 copyout(&pendlist, uap->osv, sizeof(sigset_t));
852 return(0);
853 }
854
855 /*
856 * Suspend process until signal, providing mask to be set
857 * in the meantime. Note nonstandard calling convention:
858 * libc stub passes mask, not pointer, to save a copyin.
859 */
860
861 static int
862 sigcontinue(__unused int error)
863 {
864 // struct uthread *ut = get_bsdthread_info(current_thread());
865 unix_syscall_return(EINTR);
866 }
867
868 int
869 sigsuspend(proc_t p, struct sigsuspend_args *uap, int32_t *retval)
870 {
871 __pthread_testcancel(1);
872 return(sigsuspend_nocancel(p, (struct sigsuspend_nocancel_args *)uap, retval));
873 }
874
875 int
876 sigsuspend_nocancel(proc_t p, struct sigsuspend_nocancel_args *uap, __unused int32_t *retval)
877 {
878 struct uthread *ut;
879
880 ut = (struct uthread *)get_bsdthread_info(current_thread());
881
882 /*
883 * When returning from sigpause, we want
884 * the old mask to be restored after the
885 * signal handler has finished. Thus, we
886 * save it here and mark the sigacts structure
887 * to indicate this.
888 */
889 ut->uu_oldmask = ut->uu_sigmask;
890 ut->uu_flag |= UT_SAS_OLDMASK;
891 ut->uu_sigmask = (uap->mask & ~sigcantmask);
892 (void) tsleep0((caddr_t) p, PPAUSE|PCATCH, "pause", 0, sigcontinue);
893 /* always return EINTR rather than ERESTART... */
894 return (EINTR);
895 }
896
897
898 int
899 __disable_threadsignal(__unused proc_t p,
900 __unused struct __disable_threadsignal_args *uap,
901 __unused int32_t *retval)
902 {
903 struct uthread *uth;
904
905 uth = (struct uthread *)get_bsdthread_info(current_thread());
906
907 /* No longer valid to have any signal delivered */
908 uth->uu_flag |= (UT_NO_SIGMASK | UT_CANCELDISABLE);
909
910 return(0);
911
912 }
913
914 void
915 __pthread_testcancel(int presyscall)
916 {
917
918 thread_t self = current_thread();
919 struct uthread * uthread;
920
921 uthread = (struct uthread *)get_bsdthread_info(self);
922
923
924 uthread->uu_flag &= ~UT_NOTCANCELPT;
925
926 if ((uthread->uu_flag & (UT_CANCELDISABLE | UT_CANCEL | UT_CANCELED)) == UT_CANCEL) {
927 if(presyscall != 0) {
928 unix_syscall_return(EINTR);
929 /* NOTREACHED */
930 } else
931 thread_abort_safely(self);
932 }
933 }
934
935
936
937 int
938 __pthread_markcancel(__unused proc_t p,
939 struct __pthread_markcancel_args *uap, __unused int32_t *retval)
940 {
941 thread_act_t target_act;
942 int error = 0;
943 struct uthread *uth;
944
945 target_act = (thread_act_t)port_name_to_thread(uap->thread_port);
946
947 if (target_act == THR_ACT_NULL)
948 return (ESRCH);
949
950 uth = (struct uthread *)get_bsdthread_info(target_act);
951
952 /* if the thread is in vfork do not cancel */
953 if ((uth->uu_flag & (UT_VFORK | UT_CANCEL | UT_CANCELED )) == 0) {
954 uth->uu_flag |= (UT_CANCEL | UT_NO_SIGMASK);
955 if (((uth->uu_flag & UT_NOTCANCELPT) == 0)
956 && ((uth->uu_flag & UT_CANCELDISABLE) == 0))
957 thread_abort_safely(target_act);
958 }
959
960 thread_deallocate(target_act);
961 return (error);
962 }
963
964 /* if action =0 ; return the cancellation state ,
965 * if marked for cancellation, make the thread canceled
966 * if action = 1 ; Enable the cancel handling
967 * if action = 2; Disable the cancel handling
968 */
969 int
970 __pthread_canceled(__unused proc_t p,
971 struct __pthread_canceled_args *uap, __unused int32_t *retval)
972 {
973 thread_act_t thread;
974 struct uthread *uth;
975 int action = uap->action;
976
977 thread = current_thread();
978 uth = (struct uthread *)get_bsdthread_info(thread);
979
980 switch (action) {
981 case 1:
982 uth->uu_flag &= ~UT_CANCELDISABLE;
983 return(0);
984 case 2:
985 uth->uu_flag |= UT_CANCELDISABLE;
986 return(0);
987 case 0:
988 default:
989 /* if the thread is in vfork do not cancel */
990 if((uth->uu_flag & ( UT_CANCELDISABLE | UT_CANCEL | UT_CANCELED)) == UT_CANCEL) {
991 uth->uu_flag &= ~UT_CANCEL;
992 uth->uu_flag |= (UT_CANCELED | UT_NO_SIGMASK);
993 return(0);
994 }
995 return(EINVAL);
996 }
997 return(EINVAL);
998 }
999
1000 __attribute__((noreturn))
1001 void
1002 __posix_sem_syscall_return(kern_return_t kern_result)
1003 {
1004 int error = 0;
1005
1006 if (kern_result == KERN_SUCCESS)
1007 error = 0;
1008 else if (kern_result == KERN_ABORTED)
1009 error = EINTR;
1010 else if (kern_result == KERN_OPERATION_TIMED_OUT)
1011 error = ETIMEDOUT;
1012 else
1013 error = EINVAL;
1014 unix_syscall_return(error);
1015 /* does not return */
1016 }
1017
1018 #if OLD_SEMWAIT_SIGNAL
1019 /*
1020 * Returns: 0 Success
1021 * EINTR
1022 * ETIMEDOUT
1023 * EINVAL
1024 * EFAULT if timespec is NULL
1025 */
1026 int
1027 __old_semwait_signal(proc_t p, struct __old_semwait_signal_args *uap,
1028 int32_t *retval)
1029 {
1030 __pthread_testcancel(0);
1031 return(__old_semwait_signal_nocancel(p, (struct __old_semwait_signal_nocancel_args *)uap, retval));
1032 }
1033
1034 int
1035 __old_semwait_signal_nocancel(proc_t p, struct __old_semwait_signal_nocancel_args *uap,
1036 __unused int32_t *retval)
1037 {
1038
1039 kern_return_t kern_result;
1040 int error;
1041 mach_timespec_t then;
1042 struct timespec now;
1043 struct user_timespec ts;
1044 boolean_t truncated_timeout = FALSE;
1045
1046 if(uap->timeout) {
1047
1048 if (IS_64BIT_PROCESS(p)) {
1049 struct user64_timespec ts64;
1050 error = copyin(uap->ts, &ts64, sizeof(ts64));
1051 ts.tv_sec = ts64.tv_sec;
1052 ts.tv_nsec = ts64.tv_nsec;
1053 } else {
1054 struct user32_timespec ts32;
1055 error = copyin(uap->ts, &ts32, sizeof(ts32));
1056 ts.tv_sec = ts32.tv_sec;
1057 ts.tv_nsec = ts32.tv_nsec;
1058 }
1059
1060 if (error) {
1061 return error;
1062 }
1063
1064 if ((ts.tv_sec & 0xFFFFFFFF00000000ULL) != 0) {
1065 ts.tv_sec = 0xFFFFFFFF;
1066 ts.tv_nsec = 0;
1067 truncated_timeout = TRUE;
1068 }
1069
1070 if (uap->relative) {
1071 then.tv_sec = ts.tv_sec;
1072 then.tv_nsec = ts.tv_nsec;
1073 } else {
1074 nanotime(&now);
1075
1076 /* if time has elapsed, set time to null timepsec to bailout rightaway */
1077 if (now.tv_sec == ts.tv_sec ?
1078 now.tv_nsec > ts.tv_nsec :
1079 now.tv_sec > ts.tv_sec) {
1080 then.tv_sec = 0;
1081 then.tv_nsec = 0;
1082 } else {
1083 then.tv_sec = ts.tv_sec - now.tv_sec;
1084 then.tv_nsec = ts.tv_nsec - now.tv_nsec;
1085 if (then.tv_nsec < 0) {
1086 then.tv_nsec += NSEC_PER_SEC;
1087 then.tv_sec--;
1088 }
1089 }
1090 }
1091
1092 if (uap->mutex_sem == 0)
1093 kern_result = semaphore_timedwait_trap_internal((mach_port_name_t)uap->cond_sem, then.tv_sec, then.tv_nsec, __posix_sem_syscall_return);
1094 else
1095 kern_result = semaphore_timedwait_signal_trap_internal(uap->cond_sem, uap->mutex_sem, then.tv_sec, then.tv_nsec, __posix_sem_syscall_return);
1096
1097 } else {
1098
1099 if (uap->mutex_sem == 0)
1100 kern_result = semaphore_wait_trap_internal(uap->cond_sem, __posix_sem_syscall_return);
1101 else
1102
1103 kern_result = semaphore_wait_signal_trap_internal(uap->cond_sem, uap->mutex_sem, __posix_sem_syscall_return);
1104 }
1105
1106 if (kern_result == KERN_SUCCESS && !truncated_timeout)
1107 return(0);
1108 else if (kern_result == KERN_SUCCESS && truncated_timeout)
1109 return(EINTR); /* simulate an exceptional condition because Mach doesn't support a longer timeout */
1110 else if (kern_result == KERN_ABORTED)
1111 return(EINTR);
1112 else if (kern_result == KERN_OPERATION_TIMED_OUT)
1113 return(ETIMEDOUT);
1114 else
1115 return(EINVAL);
1116 }
1117 #endif /* OLD_SEMWAIT_SIGNAL*/
1118
1119 /*
1120 * Returns: 0 Success
1121 * EINTR
1122 * ETIMEDOUT
1123 * EINVAL
1124 * EFAULT if timespec is NULL
1125 */
1126 int
1127 __semwait_signal(proc_t p, struct __semwait_signal_args *uap,
1128 int32_t *retval)
1129 {
1130 __pthread_testcancel(0);
1131 return(__semwait_signal_nocancel(p, (struct __semwait_signal_nocancel_args *)uap, retval));
1132 }
1133
1134 int
1135 __semwait_signal_nocancel(__unused proc_t p, struct __semwait_signal_nocancel_args *uap,
1136 __unused int32_t *retval)
1137 {
1138
1139 kern_return_t kern_result;
1140 mach_timespec_t then;
1141 struct timespec now;
1142 struct user_timespec ts;
1143 boolean_t truncated_timeout = FALSE;
1144
1145 if(uap->timeout) {
1146
1147 ts.tv_sec = uap->tv_sec;
1148 ts.tv_nsec = uap->tv_nsec;
1149
1150 if ((ts.tv_sec & 0xFFFFFFFF00000000ULL) != 0) {
1151 ts.tv_sec = 0xFFFFFFFF;
1152 ts.tv_nsec = 0;
1153 truncated_timeout = TRUE;
1154 }
1155
1156 if (uap->relative) {
1157 then.tv_sec = ts.tv_sec;
1158 then.tv_nsec = ts.tv_nsec;
1159 } else {
1160 nanotime(&now);
1161
1162 /* if time has elapsed, set time to null timepsec to bailout rightaway */
1163 if (now.tv_sec == ts.tv_sec ?
1164 now.tv_nsec > ts.tv_nsec :
1165 now.tv_sec > ts.tv_sec) {
1166 then.tv_sec = 0;
1167 then.tv_nsec = 0;
1168 } else {
1169 then.tv_sec = ts.tv_sec - now.tv_sec;
1170 then.tv_nsec = ts.tv_nsec - now.tv_nsec;
1171 if (then.tv_nsec < 0) {
1172 then.tv_nsec += NSEC_PER_SEC;
1173 then.tv_sec--;
1174 }
1175 }
1176 }
1177
1178 if (uap->mutex_sem == 0)
1179 kern_result = semaphore_timedwait_trap_internal((mach_port_name_t)uap->cond_sem, then.tv_sec, then.tv_nsec, __posix_sem_syscall_return);
1180 else
1181 kern_result = semaphore_timedwait_signal_trap_internal(uap->cond_sem, uap->mutex_sem, then.tv_sec, then.tv_nsec, __posix_sem_syscall_return);
1182
1183 } else {
1184
1185 if (uap->mutex_sem == 0)
1186 kern_result = semaphore_wait_trap_internal(uap->cond_sem, __posix_sem_syscall_return);
1187 else
1188
1189 kern_result = semaphore_wait_signal_trap_internal(uap->cond_sem, uap->mutex_sem, __posix_sem_syscall_return);
1190 }
1191
1192 if (kern_result == KERN_SUCCESS && !truncated_timeout)
1193 return(0);
1194 else if (kern_result == KERN_SUCCESS && truncated_timeout)
1195 return(EINTR); /* simulate an exceptional condition because Mach doesn't support a longer timeout */
1196 else if (kern_result == KERN_ABORTED)
1197 return(EINTR);
1198 else if (kern_result == KERN_OPERATION_TIMED_OUT)
1199 return(ETIMEDOUT);
1200 else
1201 return(EINVAL);
1202 }
1203
1204
1205 int
1206 __pthread_kill(__unused proc_t p, struct __pthread_kill_args *uap,
1207 __unused int32_t *retval)
1208 {
1209 thread_t target_act;
1210 int error = 0;
1211 int signum = uap->sig;
1212 struct uthread *uth;
1213
1214 target_act = (thread_t)port_name_to_thread(uap->thread_port);
1215
1216 if (target_act == THREAD_NULL)
1217 return (ESRCH);
1218 if ((u_int)signum >= NSIG) {
1219 error = EINVAL;
1220 goto out;
1221 }
1222
1223 uth = (struct uthread *)get_bsdthread_info(target_act);
1224
1225 if (uth->uu_flag & UT_NO_SIGMASK) {
1226 error = ESRCH;
1227 goto out;
1228 }
1229
1230 if (signum)
1231 psignal_uthread(target_act, signum);
1232 out:
1233 thread_deallocate(target_act);
1234 return (error);
1235 }
1236
1237
1238 int
1239 __pthread_sigmask(__unused proc_t p, struct __pthread_sigmask_args *uap,
1240 __unused int32_t *retval)
1241 {
1242 user_addr_t set = uap->set;
1243 user_addr_t oset = uap->oset;
1244 sigset_t nset;
1245 int error = 0;
1246 struct uthread *ut;
1247 sigset_t oldset;
1248
1249 ut = (struct uthread *)get_bsdthread_info(current_thread());
1250 oldset = ut->uu_sigmask;
1251
1252 if (set == USER_ADDR_NULL) {
1253 /* need only old mask */
1254 goto out;
1255 }
1256
1257 error = copyin(set, &nset, sizeof(sigset_t));
1258 if (error)
1259 goto out;
1260
1261 switch (uap->how) {
1262 case SIG_BLOCK:
1263 ut->uu_sigmask |= (nset & ~sigcantmask);
1264 break;
1265
1266 case SIG_UNBLOCK:
1267 ut->uu_sigmask &= ~(nset);
1268 signal_setast(current_thread());
1269 break;
1270
1271 case SIG_SETMASK:
1272 ut->uu_sigmask = (nset & ~sigcantmask);
1273 signal_setast(current_thread());
1274 break;
1275
1276 default:
1277 error = EINVAL;
1278
1279 }
1280 out:
1281 if (!error && oset != USER_ADDR_NULL)
1282 copyout(&oldset, oset, sizeof(sigset_t));
1283
1284 return(error);
1285 }
1286
1287 /*
1288 * Returns: 0 Success
1289 * EINVAL
1290 * copyin:EFAULT
1291 * copyout:EFAULT
1292 */
1293 int
1294 __sigwait(proc_t p, struct __sigwait_args *uap, int32_t *retval)
1295 {
1296 __pthread_testcancel(1);
1297 return(__sigwait_nocancel(p, (struct __sigwait_nocancel_args *)uap, retval));
1298 }
1299
1300 int
1301 __sigwait_nocancel(proc_t p, struct __sigwait_nocancel_args *uap, __unused int32_t *retval)
1302 {
1303 struct uthread *ut;
1304 struct uthread *uth;
1305 int error = 0;
1306 sigset_t mask;
1307 sigset_t siglist;
1308 sigset_t sigw=0;
1309 int signum;
1310
1311 ut = (struct uthread *)get_bsdthread_info(current_thread());
1312
1313 if (uap->set == USER_ADDR_NULL)
1314 return(EINVAL);
1315
1316 error = copyin(uap->set, &mask, sizeof(sigset_t));
1317 if (error)
1318 return(error);
1319
1320 siglist = (mask & ~sigcantmask);
1321
1322 if (siglist == 0)
1323 return(EINVAL);
1324
1325 proc_lock(p);
1326 if ((p->p_lflag & P_LINVFORK) && p->p_vforkact) {
1327 proc_unlock(p);
1328 return(EINVAL);
1329 } else {
1330 proc_signalstart(p, 1);
1331 TAILQ_FOREACH(uth, &p->p_uthlist, uu_list) {
1332 if ( (sigw = uth->uu_siglist & siglist) ) {
1333 break;
1334 }
1335 }
1336 proc_signalend(p, 1);
1337 }
1338
1339 if (sigw) {
1340 /* The signal was pending on a thread */
1341 goto sigwait1;
1342 }
1343 /*
1344 * When returning from sigwait, we want
1345 * the old mask to be restored after the
1346 * signal handler has finished. Thus, we
1347 * save it here and mark the sigacts structure
1348 * to indicate this.
1349 */
1350 uth = ut; /* wait for it to be delivered to us */
1351 ut->uu_oldmask = ut->uu_sigmask;
1352 ut->uu_flag |= UT_SAS_OLDMASK;
1353 if (siglist == (sigset_t)0) {
1354 proc_unlock(p);
1355 return(EINVAL);
1356 }
1357 /* SIGKILL and SIGSTOP are not maskable as well */
1358 ut->uu_sigmask = ~(siglist|sigcantmask);
1359 ut->uu_sigwait = siglist;
1360
1361 /* No Continuations for now */
1362 error = msleep((caddr_t)&ut->uu_sigwait, &p->p_mlock, PPAUSE|PCATCH, "pause", 0);
1363
1364 if (error == ERESTART)
1365 error = 0;
1366
1367 sigw = (ut->uu_sigwait & siglist);
1368 ut->uu_sigmask = ut->uu_oldmask;
1369 ut->uu_oldmask = 0;
1370 ut->uu_flag &= ~UT_SAS_OLDMASK;
1371 sigwait1:
1372 ut->uu_sigwait = 0;
1373 if (!error) {
1374 signum = ffs((unsigned int)sigw);
1375 if (!signum)
1376 panic("sigwait with no signal wakeup");
1377 /* Clear the pending signal in the thread it was delivered */
1378 uth->uu_siglist &= ~(sigmask(signum));
1379
1380 #if CONFIG_DTRACE
1381 DTRACE_PROC2(signal__clear, int, signum, siginfo_t *, &(ut->t_dtrace_siginfo));
1382 #endif
1383
1384 proc_unlock(p);
1385 if (uap->sig != USER_ADDR_NULL)
1386 error = copyout(&signum, uap->sig, sizeof(int));
1387 } else
1388 proc_unlock(p);
1389
1390 return(error);
1391
1392 }
1393
1394 int
1395 sigaltstack(__unused proc_t p, struct sigaltstack_args *uap, __unused int32_t *retval)
1396 {
1397 struct kern_sigaltstack ss;
1398 struct kern_sigaltstack *pstk;
1399 int error;
1400 struct uthread *uth;
1401 int onstack;
1402
1403 uth = (struct uthread *)get_bsdthread_info(current_thread());
1404
1405 pstk = &uth->uu_sigstk;
1406 if ((uth->uu_flag & UT_ALTSTACK) == 0)
1407 uth->uu_sigstk.ss_flags |= SA_DISABLE;
1408 onstack = pstk->ss_flags & SA_ONSTACK;
1409 if (uap->oss) {
1410 if (IS_64BIT_PROCESS(p)) {
1411 struct user64_sigaltstack ss64 = {};
1412 sigaltstack_kern_to_user64(pstk, &ss64);
1413 error = copyout(&ss64, uap->oss, sizeof(ss64));
1414 } else {
1415 struct user32_sigaltstack ss32 = {};
1416 sigaltstack_kern_to_user32(pstk, &ss32);
1417 error = copyout(&ss32, uap->oss, sizeof(ss32));
1418 }
1419 if (error)
1420 return (error);
1421 }
1422 if (uap->nss == USER_ADDR_NULL)
1423 return (0);
1424 if (IS_64BIT_PROCESS(p)) {
1425 struct user64_sigaltstack ss64;
1426 error = copyin(uap->nss, &ss64, sizeof(ss64));
1427 sigaltstack_user64_to_kern(&ss64, &ss);
1428 } else {
1429 struct user32_sigaltstack ss32;
1430 error = copyin(uap->nss, &ss32, sizeof(ss32));
1431 sigaltstack_user32_to_kern(&ss32, &ss);
1432 }
1433 if (error)
1434 return (error);
1435 if ((ss.ss_flags & ~SA_DISABLE) != 0) {
1436 return(EINVAL);
1437 }
1438
1439 if (ss.ss_flags & SA_DISABLE) {
1440 /* if we are here we are not in the signal handler ;so no need to check */
1441 if (uth->uu_sigstk.ss_flags & SA_ONSTACK)
1442 return (EINVAL);
1443 uth->uu_flag &= ~UT_ALTSTACK;
1444 uth->uu_sigstk.ss_flags = ss.ss_flags;
1445 return (0);
1446 }
1447 if (onstack)
1448 return (EPERM);
1449 /* The older stacksize was 8K, enforce that one so no compat problems */
1450 #define OLDMINSIGSTKSZ 8*1024
1451 if (ss.ss_size < OLDMINSIGSTKSZ)
1452 return (ENOMEM);
1453 uth->uu_flag |= UT_ALTSTACK;
1454 uth->uu_sigstk= ss;
1455 return (0);
1456 }
1457
1458 int
1459 kill(proc_t cp, struct kill_args *uap, __unused int32_t *retval)
1460 {
1461 proc_t p;
1462 kauth_cred_t uc = kauth_cred_get();
1463 int posix = uap->posix; /* !0 if posix behaviour desired */
1464
1465 AUDIT_ARG(pid, uap->pid);
1466 AUDIT_ARG(signum, uap->signum);
1467
1468 if ((u_int)uap->signum >= NSIG)
1469 return (EINVAL);
1470 if (uap->pid > 0) {
1471 /* kill single process */
1472 if ((p = proc_find(uap->pid)) == NULL) {
1473 if ((p = pzfind(uap->pid)) != NULL) {
1474 /*
1475 * IEEE Std 1003.1-2001: return success
1476 * when killing a zombie.
1477 */
1478 return (0);
1479 }
1480 return (ESRCH);
1481 }
1482 AUDIT_ARG(process, p);
1483 if (!cansignal(cp, uc, p, uap->signum, 0)) {
1484 proc_rele(p);
1485 return(EPERM);
1486 }
1487 if (uap->signum)
1488 psignal(p, uap->signum);
1489 proc_rele(p);
1490 return (0);
1491 }
1492 switch (uap->pid) {
1493 case -1: /* broadcast signal */
1494 return (killpg1(cp, uap->signum, 0, 1, posix));
1495 case 0: /* signal own process group */
1496 return (killpg1(cp, uap->signum, 0, 0, posix));
1497 default: /* negative explicit process group */
1498 return (killpg1(cp, uap->signum, -(uap->pid), 0, posix));
1499 }
1500 /* NOTREACHED */
1501 }
1502
1503 os_reason_t
1504 build_userspace_exit_reason(uint32_t reason_namespace, uint64_t reason_code, user_addr_t payload, uint32_t payload_size,
1505 user_addr_t reason_string, uint64_t reason_flags)
1506 {
1507 os_reason_t exit_reason = OS_REASON_NULL;
1508
1509 int error = 0;
1510 int num_items_to_copy = 0;
1511 uint32_t user_data_to_copy = 0;
1512 char *reason_user_desc = NULL;
1513 size_t reason_user_desc_len = 0;
1514
1515 exit_reason = os_reason_create(reason_namespace, reason_code);
1516 if (exit_reason == OS_REASON_NULL) {
1517 printf("build_userspace_exit_reason: failed to allocate exit reason\n");
1518 return exit_reason;
1519 }
1520
1521 exit_reason->osr_flags |= OS_REASON_FLAG_FROM_USERSPACE;
1522
1523 /*
1524 * Only apply flags that are allowed to be passed from userspace.
1525 */
1526 exit_reason->osr_flags |= (reason_flags & OS_REASON_FLAG_MASK_ALLOWED_FROM_USER);
1527 if ((reason_flags & OS_REASON_FLAG_MASK_ALLOWED_FROM_USER) != reason_flags) {
1528 printf("build_userspace_exit_reason: illegal flags passed from userspace (some masked off) 0x%llx, ns: %u, code 0x%llx\n",
1529 reason_flags, reason_namespace, reason_code);
1530 }
1531
1532 if (!(exit_reason->osr_flags & OS_REASON_FLAG_NO_CRASH_REPORT)) {
1533 exit_reason->osr_flags |= OS_REASON_FLAG_GENERATE_CRASH_REPORT;
1534 }
1535
1536 if (payload != USER_ADDR_NULL) {
1537 if (payload_size == 0) {
1538 printf("build_userspace_exit_reason: exit reason with namespace %u, nonzero payload but zero length\n",
1539 reason_namespace);
1540 exit_reason->osr_flags |= OS_REASON_FLAG_BAD_PARAMS;
1541 payload = USER_ADDR_NULL;
1542 } else {
1543 num_items_to_copy++;
1544
1545 if (payload_size > EXIT_REASON_PAYLOAD_MAX_LEN) {
1546 exit_reason->osr_flags |= OS_REASON_FLAG_PAYLOAD_TRUNCATED;
1547 payload_size = EXIT_REASON_PAYLOAD_MAX_LEN;
1548 }
1549
1550 user_data_to_copy += payload_size;
1551 }
1552 }
1553
1554 if (reason_string != USER_ADDR_NULL) {
1555 reason_user_desc = (char *) kalloc(EXIT_REASON_USER_DESC_MAX_LEN);
1556
1557 if (reason_user_desc != NULL) {
1558 error = copyinstr(reason_string, (void *) reason_user_desc,
1559 EXIT_REASON_USER_DESC_MAX_LEN, &reason_user_desc_len);
1560
1561 if (error == 0) {
1562 num_items_to_copy++;
1563 user_data_to_copy += reason_user_desc_len;
1564 } else if (error == ENAMETOOLONG) {
1565 num_items_to_copy++;
1566 reason_user_desc[EXIT_REASON_USER_DESC_MAX_LEN - 1] = '\0';
1567 user_data_to_copy += reason_user_desc_len;
1568 } else {
1569 exit_reason->osr_flags |= OS_REASON_FLAG_FAILED_DATA_COPYIN;
1570 kfree(reason_user_desc, EXIT_REASON_USER_DESC_MAX_LEN);
1571 reason_user_desc = NULL;
1572 reason_user_desc_len = 0;
1573 }
1574 }
1575 }
1576
1577 if (num_items_to_copy != 0) {
1578 uint32_t reason_buffer_size_estimate = 0;
1579 mach_vm_address_t data_addr = 0;
1580
1581 reason_buffer_size_estimate = kcdata_estimate_required_buffer_size(num_items_to_copy, user_data_to_copy);
1582
1583 error = os_reason_alloc_buffer(exit_reason, reason_buffer_size_estimate);
1584 if (error != 0) {
1585 printf("build_userspace_exit_reason: failed to allocate signal reason buffer\n");
1586 goto out_failed_copyin;
1587 }
1588
1589 if (reason_user_desc != NULL && reason_user_desc_len != 0) {
1590 if (KERN_SUCCESS == kcdata_get_memory_addr(&exit_reason->osr_kcd_descriptor,
1591 EXIT_REASON_USER_DESC,
1592 reason_user_desc_len,
1593 &data_addr)) {
1594
1595 kcdata_memcpy(&exit_reason->osr_kcd_descriptor, (mach_vm_address_t) data_addr,
1596 reason_user_desc, reason_user_desc_len);
1597 } else {
1598 printf("build_userspace_exit_reason: failed to allocate space for reason string\n");
1599 goto out_failed_copyin;
1600 }
1601 }
1602
1603 if (payload != USER_ADDR_NULL) {
1604 if (KERN_SUCCESS ==
1605 kcdata_get_memory_addr(&exit_reason->osr_kcd_descriptor,
1606 EXIT_REASON_USER_PAYLOAD,
1607 payload_size,
1608 &data_addr)) {
1609 error = copyin(payload, (void *) data_addr, payload_size);
1610 if (error) {
1611 printf("build_userspace_exit_reason: failed to copy in payload data with error %d\n", error);
1612 goto out_failed_copyin;
1613 }
1614 } else {
1615 printf("build_userspace_exit_reason: failed to allocate space for payload data\n");
1616 goto out_failed_copyin;
1617 }
1618 }
1619 }
1620
1621 if (reason_user_desc != NULL) {
1622 kfree(reason_user_desc, EXIT_REASON_USER_DESC_MAX_LEN);
1623 reason_user_desc = NULL;
1624 reason_user_desc_len = 0;
1625 }
1626
1627 return exit_reason;
1628
1629 out_failed_copyin:
1630
1631 if (reason_user_desc != NULL) {
1632 kfree(reason_user_desc, EXIT_REASON_USER_DESC_MAX_LEN);
1633 reason_user_desc = NULL;
1634 reason_user_desc_len = 0;
1635 }
1636
1637 exit_reason->osr_flags |= OS_REASON_FLAG_FAILED_DATA_COPYIN;
1638 os_reason_alloc_buffer(exit_reason, 0);
1639 return exit_reason;
1640 }
1641
1642 static int
1643 terminate_with_payload_internal(struct proc *cur_proc, int target_pid, uint32_t reason_namespace,
1644 uint64_t reason_code, user_addr_t payload, uint32_t payload_size,
1645 user_addr_t reason_string, uint64_t reason_flags)
1646 {
1647 proc_t target_proc = PROC_NULL;
1648 kauth_cred_t cur_cred = kauth_cred_get();
1649
1650 os_reason_t signal_reason = OS_REASON_NULL;
1651
1652 AUDIT_ARG(pid, target_pid);
1653 if ((target_pid <= 0)) {
1654 return EINVAL;
1655 }
1656
1657 target_proc = proc_find(target_pid);
1658 if (target_proc == PROC_NULL) {
1659 return ESRCH;
1660 }
1661
1662 AUDIT_ARG(process, target_proc);
1663
1664 if (!cansignal(cur_proc, cur_cred, target_proc, SIGKILL, 0)) {
1665 proc_rele(target_proc);
1666 return EPERM;
1667 }
1668
1669 KERNEL_DEBUG_CONSTANT(BSDDBG_CODE(DBG_BSD_PROC, BSD_PROC_EXITREASON_CREATE) | DBG_FUNC_NONE,
1670 target_proc->p_pid, reason_namespace,
1671 reason_code, 0, 0);
1672
1673 signal_reason = build_userspace_exit_reason(reason_namespace, reason_code, payload, payload_size,
1674 reason_string, (reason_flags | OS_REASON_FLAG_NO_CRASHED_TID));
1675
1676 if (target_pid == cur_proc->p_pid) {
1677 /*
1678 * psignal_thread_with_reason() will pend a SIGKILL on the specified thread or
1679 * return if the thread and/or task are already terminating. Either way, the
1680 * current thread won't return to userspace.
1681 */
1682 psignal_thread_with_reason(target_proc, current_thread(), SIGKILL, signal_reason);
1683 } else {
1684 psignal_with_reason(target_proc, SIGKILL, signal_reason);
1685 }
1686
1687 proc_rele(target_proc);
1688
1689 return 0;
1690 }
1691
1692 int
1693 terminate_with_payload(struct proc *cur_proc, struct terminate_with_payload_args *args,
1694 __unused int32_t *retval)
1695 {
1696 return terminate_with_payload_internal(cur_proc, args->pid, args->reason_namespace, args->reason_code, args->payload,
1697 args->payload_size, args->reason_string, args->reason_flags);
1698 }
1699
1700 static int
1701 killpg1_filt(proc_t p, void * arg)
1702 {
1703 struct killpg1_filtargs * kfargp = (struct killpg1_filtargs *)arg;
1704 proc_t cp = kfargp->cp;
1705 int posix = kfargp->posix;
1706
1707
1708 if (p->p_pid <= 1 || p->p_flag & P_SYSTEM ||
1709 (!posix && p == cp))
1710 return(0);
1711 else
1712 return(1);
1713 }
1714
1715
1716 static int
1717 killpg1_pgrpfilt(proc_t p, __unused void * arg)
1718 {
1719 if (p->p_pid <= 1 || p->p_flag & P_SYSTEM ||
1720 (p->p_stat == SZOMB))
1721 return(0);
1722 else
1723 return(1);
1724 }
1725
1726
1727
1728 static int
1729 killpg1_callback(proc_t p, void * arg)
1730 {
1731 struct killpg1_iterargs * kargp = (struct killpg1_iterargs *)arg;
1732 proc_t cp = kargp->cp;
1733 kauth_cred_t uc = kargp->uc; /* refcounted by the caller safe to use internal fields */
1734 int signum = kargp->signum;
1735 int * nfoundp = kargp->nfoundp;
1736 int n;
1737 int zombie = 0;
1738 int error = 0;
1739
1740 if ((kargp->zombie != 0) && ((p->p_listflag & P_LIST_EXITED) == P_LIST_EXITED))
1741 zombie = 1;
1742
1743 if (zombie != 0) {
1744 proc_list_lock();
1745 error = cansignal(cp, uc, p, signum, zombie);
1746 proc_list_unlock();
1747
1748 if (error != 0 && nfoundp != NULL) {
1749 n = *nfoundp;
1750 *nfoundp = n+1;
1751 }
1752 } else {
1753 if (cansignal(cp, uc, p, signum, 0) == 0)
1754 return(PROC_RETURNED);
1755
1756 if (nfoundp != NULL) {
1757 n = *nfoundp;
1758 *nfoundp = n+1;
1759 }
1760 if (signum != 0)
1761 psignal(p, signum);
1762 }
1763
1764 return(PROC_RETURNED);
1765 }
1766
1767 /*
1768 * Common code for kill process group/broadcast kill.
1769 * cp is calling process.
1770 */
1771 int
1772 killpg1(proc_t cp, int signum, int pgid, int all, int posix)
1773 {
1774 kauth_cred_t uc;
1775 struct pgrp *pgrp;
1776 int nfound = 0;
1777 struct killpg1_iterargs karg;
1778 struct killpg1_filtargs kfarg;
1779 int error = 0;
1780
1781 uc = kauth_cred_proc_ref(cp);
1782 if (all) {
1783 /*
1784 * broadcast
1785 */
1786 kfarg.posix = posix;
1787 kfarg.cp = cp;
1788
1789 karg.cp = cp;
1790 karg.uc = uc;
1791 karg.nfoundp = &nfound;
1792 karg.signum = signum;
1793 karg.zombie = 1;
1794
1795 proc_iterate((PROC_ALLPROCLIST | PROC_ZOMBPROCLIST), killpg1_callback, &karg, killpg1_filt, (void *)&kfarg);
1796
1797 } else {
1798 if (pgid == 0) {
1799 /*
1800 * zero pgid means send to my process group.
1801 */
1802 pgrp = proc_pgrp(cp);
1803 } else {
1804 pgrp = pgfind(pgid);
1805 if (pgrp == NULL) {
1806 error = ESRCH;
1807 goto out;
1808 }
1809 }
1810
1811 karg.nfoundp = &nfound;
1812 karg.uc = uc;
1813 karg.signum = signum;
1814 karg.cp = cp;
1815 karg.zombie = 0;
1816
1817
1818 /* PGRP_DROPREF drops the pgrp refernce */
1819 pgrp_iterate(pgrp, PGRP_DROPREF, killpg1_callback, &karg,
1820 killpg1_pgrpfilt, NULL);
1821 }
1822 error = (nfound ? 0 : (posix ? EPERM : ESRCH));
1823 out:
1824 kauth_cred_unref(&uc);
1825 return (error);
1826 }
1827
1828
1829 /*
1830 * Send a signal to a process group.
1831 */
1832 void
1833 gsignal(int pgid, int signum)
1834 {
1835 struct pgrp *pgrp;
1836
1837 if (pgid && (pgrp = pgfind(pgid))) {
1838 pgsignal(pgrp, signum, 0);
1839 pg_rele(pgrp);
1840 }
1841 }
1842
1843 /*
1844 * Send a signal to a process group. If checkctty is 1,
1845 * limit to members which have a controlling terminal.
1846 */
1847
1848 static int
1849 pgsignal_filt(proc_t p, void * arg)
1850 {
1851 int checkctty = *(int*)arg;
1852
1853 if ((checkctty == 0) || p->p_flag & P_CONTROLT)
1854 return(1);
1855 else
1856 return(0);
1857 }
1858
1859
1860 static int
1861 pgsignal_callback(proc_t p, void * arg)
1862 {
1863 int signum = *(int*)arg;
1864
1865 psignal(p, signum);
1866 return(PROC_RETURNED);
1867 }
1868
1869
1870 void
1871 pgsignal(struct pgrp *pgrp, int signum, int checkctty)
1872 {
1873 if (pgrp != PGRP_NULL) {
1874 pgrp_iterate(pgrp, 0, pgsignal_callback, &signum, pgsignal_filt, &checkctty);
1875 }
1876 }
1877
1878
1879 void
1880 tty_pgsignal(struct tty *tp, int signum, int checkctty)
1881 {
1882 struct pgrp * pg;
1883
1884 pg = tty_pgrp(tp);
1885 if (pg != PGRP_NULL) {
1886 pgrp_iterate(pg, 0, pgsignal_callback, &signum, pgsignal_filt, &checkctty);
1887 pg_rele(pg);
1888 }
1889 }
1890 /*
1891 * Send a signal caused by a trap to a specific thread.
1892 */
1893 void
1894 threadsignal(thread_t sig_actthread, int signum, mach_exception_code_t code, boolean_t set_exitreason)
1895 {
1896 struct uthread *uth;
1897 struct task * sig_task;
1898 proc_t p;
1899 int mask;
1900
1901 if ((u_int)signum >= NSIG || signum == 0)
1902 return;
1903
1904 mask = sigmask(signum);
1905 if ((mask & threadmask) == 0)
1906 return;
1907 sig_task = get_threadtask(sig_actthread);
1908 p = (proc_t)(get_bsdtask_info(sig_task));
1909
1910 uth = get_bsdthread_info(sig_actthread);
1911 if (uth->uu_flag & UT_VFORK)
1912 p = uth->uu_proc;
1913
1914 proc_lock(p);
1915 if (!(p->p_lflag & P_LTRACED) && (p->p_sigignore & mask)) {
1916 proc_unlock(p);
1917 return;
1918 }
1919
1920 uth->uu_siglist |= mask;
1921 uth->uu_code = code;
1922
1923 /* Attempt to establish whether the signal will be fatal (mirrors logic in psignal_internal()) */
1924 if (set_exitreason && ((p->p_lflag & P_LTRACED) || (!(uth->uu_sigwait & mask)
1925 && !(uth->uu_sigmask & mask) && !(p->p_sigcatch & mask))) &&
1926 !(mask & stopsigmask) && !(mask & contsigmask)) {
1927
1928 if (uth->uu_exit_reason == OS_REASON_NULL) {
1929 KERNEL_DEBUG_CONSTANT(BSDDBG_CODE(DBG_BSD_PROC, BSD_PROC_EXITREASON_CREATE) | DBG_FUNC_NONE,
1930 p->p_pid, OS_REASON_SIGNAL, signum, 0, 0);
1931
1932 os_reason_t signal_reason = build_signal_reason(signum, "exc handler");
1933
1934 set_thread_exit_reason(sig_actthread, signal_reason, TRUE);
1935
1936 /* We dropped/consumed the reference in set_thread_exit_reason() */
1937 signal_reason = OS_REASON_NULL;
1938 }
1939 }
1940
1941 proc_unlock(p);
1942
1943 /* mark on process as well */
1944 signal_setast(sig_actthread);
1945 }
1946
1947 void
1948 set_thread_exit_reason(void *th, void *reason, boolean_t proc_locked)
1949 {
1950 struct uthread *targ_uth = get_bsdthread_info(th);
1951 struct task *targ_task = NULL;
1952 proc_t targ_proc = NULL;
1953
1954 os_reason_t exit_reason = (os_reason_t)reason;
1955
1956 if (exit_reason == OS_REASON_NULL)
1957 return;
1958
1959 if (!proc_locked) {
1960 targ_task = get_threadtask(th);
1961 targ_proc = (proc_t)(get_bsdtask_info(targ_task));
1962
1963 proc_lock(targ_proc);
1964 }
1965
1966 if (targ_uth->uu_exit_reason == OS_REASON_NULL) {
1967 targ_uth->uu_exit_reason = exit_reason;
1968 } else {
1969 /* The caller expects that we drop a reference on the exit reason */
1970 os_reason_free(exit_reason);
1971 }
1972
1973 if (!proc_locked) {
1974 assert(targ_proc != NULL);
1975 proc_unlock(targ_proc);
1976 }
1977 }
1978
1979 /*
1980 * get_signalthread
1981 *
1982 * Picks an appropriate thread from a process to target with a signal.
1983 *
1984 * Called with proc locked.
1985 * Returns thread with BSD ast set.
1986 *
1987 * We attempt to deliver a proc-wide signal to the first thread in the task.
1988 * This allows single threaded applications which use signals to
1989 * be able to be linked with multithreaded libraries.
1990 */
1991 static kern_return_t
1992 get_signalthread(proc_t p, int signum, thread_t * thr)
1993 {
1994 struct uthread *uth;
1995 sigset_t mask = sigmask(signum);
1996 thread_t sig_thread;
1997 struct task * sig_task = p->task;
1998 kern_return_t kret;
1999
2000 *thr = THREAD_NULL;
2001
2002 if ((p->p_lflag & P_LINVFORK) && p->p_vforkact) {
2003 sig_thread = p->p_vforkact;
2004 kret = check_actforsig(sig_task, sig_thread, 1);
2005 if (kret == KERN_SUCCESS) {
2006 *thr = sig_thread;
2007 return(KERN_SUCCESS);
2008 }else
2009 return(KERN_FAILURE);
2010 }
2011
2012 TAILQ_FOREACH(uth, &p->p_uthlist, uu_list) {
2013 if(((uth->uu_flag & UT_NO_SIGMASK)== 0) &&
2014 (((uth->uu_sigmask & mask) == 0) || (uth->uu_sigwait & mask))) {
2015 if (check_actforsig(p->task, uth->uu_context.vc_thread, 1) == KERN_SUCCESS) {
2016 *thr = uth->uu_context.vc_thread;
2017 return(KERN_SUCCESS);
2018 }
2019 }
2020 }
2021 if (get_signalact(p->task, thr, 1) == KERN_SUCCESS) {
2022 return(KERN_SUCCESS);
2023 }
2024
2025 return(KERN_FAILURE);
2026 }
2027
2028 static os_reason_t
2029 build_signal_reason(int signum, const char *procname)
2030 {
2031 os_reason_t signal_reason = OS_REASON_NULL;
2032 proc_t sender_proc = current_proc();
2033 uint32_t reason_buffer_size_estimate = 0, proc_name_length = 0;
2034 const char *default_sender_procname = "unknown";
2035 mach_vm_address_t data_addr;
2036 int ret;
2037
2038 signal_reason = os_reason_create(OS_REASON_SIGNAL, signum);
2039 if (signal_reason == OS_REASON_NULL) {
2040 printf("build_signal_reason: unable to allocate signal reason structure.\n");
2041 return signal_reason;
2042 }
2043
2044 reason_buffer_size_estimate = kcdata_estimate_required_buffer_size(2, sizeof(sender_proc->p_name) +
2045 sizeof(sender_proc->p_pid));
2046
2047 ret = os_reason_alloc_buffer_noblock(signal_reason, reason_buffer_size_estimate);
2048 if (ret != 0) {
2049 printf("build_signal_reason: unable to allocate signal reason buffer.\n");
2050 return signal_reason;
2051 }
2052
2053 if (KERN_SUCCESS == kcdata_get_memory_addr(&signal_reason->osr_kcd_descriptor, KCDATA_TYPE_PID,
2054 sizeof(sender_proc->p_pid), &data_addr)) {
2055 kcdata_memcpy(&signal_reason->osr_kcd_descriptor, data_addr, &sender_proc->p_pid,
2056 sizeof(sender_proc->p_pid));
2057 } else {
2058 printf("build_signal_reason: exceeded space in signal reason buf, unable to log PID\n");
2059 }
2060
2061 proc_name_length = sizeof(sender_proc->p_name);
2062 if (KERN_SUCCESS == kcdata_get_memory_addr(&signal_reason->osr_kcd_descriptor, KCDATA_TYPE_PROCNAME,
2063 proc_name_length, &data_addr)) {
2064 if (procname) {
2065 char truncated_procname[proc_name_length];
2066 strncpy((char *) &truncated_procname, procname, proc_name_length);
2067 truncated_procname[proc_name_length - 1] = '\0';
2068
2069 kcdata_memcpy(&signal_reason->osr_kcd_descriptor, data_addr, truncated_procname,
2070 strlen((char *) &truncated_procname));
2071 } else if (*sender_proc->p_name) {
2072 kcdata_memcpy(&signal_reason->osr_kcd_descriptor, data_addr, &sender_proc->p_name,
2073 sizeof(sender_proc->p_name));
2074 } else {
2075 kcdata_memcpy(&signal_reason->osr_kcd_descriptor, data_addr, &default_sender_procname,
2076 strlen(default_sender_procname) + 1);
2077 }
2078 } else {
2079 printf("build_signal_reason: exceeded space in signal reason buf, unable to log procname\n");
2080 }
2081
2082 return signal_reason;
2083 }
2084
2085 /*
2086 * Send the signal to the process. If the signal has an action, the action
2087 * is usually performed by the target process rather than the caller; we add
2088 * the signal to the set of pending signals for the process.
2089 *
2090 * Always drops a reference on a signal_reason if one is provided, whether via
2091 * passing it to a thread or deallocating directly.
2092 *
2093 * Exceptions:
2094 * o When a stop signal is sent to a sleeping process that takes the
2095 * default action, the process is stopped without awakening it.
2096 * o SIGCONT restarts stopped processes (or puts them back to sleep)
2097 * regardless of the signal action (eg, blocked or ignored).
2098 *
2099 * Other ignored signals are discarded immediately.
2100 */
2101 static void
2102 psignal_internal(proc_t p, task_t task, thread_t thread, int flavor, int signum, os_reason_t signal_reason)
2103 {
2104 int prop;
2105 user_addr_t action = USER_ADDR_NULL;
2106 proc_t sig_proc;
2107 thread_t sig_thread;
2108 task_t sig_task;
2109 int mask;
2110 struct uthread *uth;
2111 kern_return_t kret;
2112 uid_t r_uid;
2113 proc_t pp;
2114 kauth_cred_t my_cred;
2115 char *launchd_exit_reason_desc = NULL;
2116 boolean_t update_thread_policy = FALSE;
2117
2118 if ((u_int)signum >= NSIG || signum == 0)
2119 panic("psignal: bad signal number %d", signum);
2120
2121 mask = sigmask(signum);
2122 prop = sigprop[signum];
2123
2124 #if SIGNAL_DEBUG
2125 if(rdebug_proc && (p != PROC_NULL) && (p == rdebug_proc)) {
2126 ram_printf(3);
2127 }
2128 #endif /* SIGNAL_DEBUG */
2129
2130 /* catch unexpected initproc kills early for easier debuggging */
2131 if (signum == SIGKILL && p == initproc) {
2132 if (signal_reason == NULL) {
2133 panic_plain("unexpected SIGKILL of %s %s (no reason provided)",
2134 (p->p_name[0] != '\0' ? p->p_name : "initproc"),
2135 ((p->p_csflags & CS_KILLED) ? "(CS_KILLED)" : ""));
2136 } else {
2137 launchd_exit_reason_desc = launchd_exit_reason_get_string_desc(signal_reason);
2138 panic_plain("unexpected SIGKILL of %s %s with reason -- namespace %d code 0x%llx description %." LAUNCHD_PANIC_REASON_STRING_MAXLEN "s",
2139 (p->p_name[0] != '\0' ? p->p_name : "initproc"),
2140 ((p->p_csflags & CS_KILLED) ? "(CS_KILLED)" : ""),
2141 signal_reason->osr_namespace, signal_reason->osr_code,
2142 launchd_exit_reason_desc ? launchd_exit_reason_desc : "none");
2143 }
2144 }
2145
2146 /*
2147 * We will need the task pointer later. Grab it now to
2148 * check for a zombie process. Also don't send signals
2149 * to kernel internal tasks.
2150 */
2151 if (flavor & PSIG_VFORK) {
2152 sig_task = task;
2153 sig_thread = thread;
2154 sig_proc = p;
2155 } else if (flavor & PSIG_THREAD) {
2156 sig_task = get_threadtask(thread);
2157 sig_thread = thread;
2158 sig_proc = (proc_t)get_bsdtask_info(sig_task);
2159 } else if (flavor & PSIG_TRY_THREAD) {
2160 assert((thread == current_thread()) && (p == current_proc()));
2161 sig_task = p->task;
2162 sig_thread = thread;
2163 sig_proc = p;
2164 } else {
2165 sig_task = p->task;
2166 sig_thread = THREAD_NULL;
2167 sig_proc = p;
2168 }
2169
2170 if ((sig_task == TASK_NULL) || is_kerneltask(sig_task)) {
2171 os_reason_free(signal_reason);
2172 return;
2173 }
2174
2175 /*
2176 * do not send signals to the process that has the thread
2177 * doing a reboot(). Not doing so will mark that thread aborted
2178 * and can cause IO failures wich will cause data loss. There's
2179 * also no need to send a signal to a process that is in the middle
2180 * of being torn down.
2181 */
2182 if (ISSET(sig_proc->p_flag, P_REBOOT) || ISSET(sig_proc->p_lflag, P_LEXIT)) {
2183 DTRACE_PROC3(signal__discard, thread_t, sig_thread, proc_t, sig_proc, int, signum);
2184 os_reason_free(signal_reason);
2185 return;
2186 }
2187
2188 if( (flavor & (PSIG_VFORK | PSIG_THREAD)) == 0) {
2189 proc_knote(sig_proc, NOTE_SIGNAL | signum);
2190 }
2191
2192 if ((flavor & PSIG_LOCKED)== 0)
2193 proc_signalstart(sig_proc, 0);
2194
2195 /* Don't send signals to a process that has ignored them. */
2196 if (((flavor & PSIG_VFORK) == 0) && ((sig_proc->p_lflag & P_LTRACED) == 0) && (sig_proc->p_sigignore & mask)) {
2197 DTRACE_PROC3(signal__discard, thread_t, sig_thread, proc_t, sig_proc, int, signum);
2198 goto sigout_unlocked;
2199 }
2200
2201 /*
2202 * The proc_lock prevents the targeted thread from being deallocated
2203 * or handling the signal until we're done signaling it.
2204 *
2205 * Once the proc_lock is dropped, we have no guarantee the thread or uthread exists anymore.
2206 *
2207 * XXX: What if the thread goes inactive after the thread passes bsd ast point?
2208 */
2209 proc_lock(sig_proc);
2210
2211 if (flavor & PSIG_VFORK) {
2212 action = SIG_DFL;
2213 act_set_astbsd(sig_thread);
2214 kret = KERN_SUCCESS;
2215 } else if (flavor & PSIG_TRY_THREAD) {
2216 uth = get_bsdthread_info(sig_thread);
2217 if (((uth->uu_flag & UT_NO_SIGMASK) == 0) &&
2218 (((uth->uu_sigmask & mask) == 0) || (uth->uu_sigwait & mask)) &&
2219 ((kret = check_actforsig(sig_proc->task, sig_thread, 1)) == KERN_SUCCESS)) {
2220 /* deliver to specified thread */
2221 } else {
2222 /* deliver to any willing thread */
2223 kret = get_signalthread(sig_proc, signum, &sig_thread);
2224 }
2225 } else if (flavor & PSIG_THREAD) {
2226 /* If successful return with ast set */
2227 kret = check_actforsig(sig_task, sig_thread, 1);
2228 } else {
2229 /* If successful return with ast set */
2230 kret = get_signalthread(sig_proc, signum, &sig_thread);
2231 }
2232
2233 if (kret != KERN_SUCCESS) {
2234 DTRACE_PROC3(signal__discard, thread_t, sig_thread, proc_t, sig_proc, int, signum);
2235 proc_unlock(sig_proc);
2236 goto sigout_unlocked;
2237 }
2238
2239 uth = get_bsdthread_info(sig_thread);
2240
2241 /*
2242 * If proc is traced, always give parent a chance.
2243 */
2244
2245 if ((flavor & PSIG_VFORK) == 0) {
2246 if (sig_proc->p_lflag & P_LTRACED)
2247 action = SIG_DFL;
2248 else {
2249 /*
2250 * If the signal is being ignored,
2251 * then we forget about it immediately.
2252 * (Note: we don't set SIGCONT in p_sigignore,
2253 * and if it is set to SIG_IGN,
2254 * action will be SIG_DFL here.)
2255 */
2256 if (sig_proc->p_sigignore & mask)
2257 goto sigout_locked;
2258
2259 if (uth->uu_sigwait & mask)
2260 action = KERN_SIG_WAIT;
2261 else if (uth->uu_sigmask & mask)
2262 action = KERN_SIG_HOLD;
2263 else if (sig_proc->p_sigcatch & mask)
2264 action = KERN_SIG_CATCH;
2265 else
2266 action = SIG_DFL;
2267 }
2268 }
2269
2270 /* TODO: p_nice isn't hooked up to the scheduler... */
2271 if (sig_proc->p_nice > NZERO && action == SIG_DFL && (prop & SA_KILL) &&
2272 (sig_proc->p_lflag & P_LTRACED) == 0)
2273 sig_proc->p_nice = NZERO;
2274
2275 if (prop & SA_CONT)
2276 uth->uu_siglist &= ~stopsigmask;
2277
2278 if (prop & SA_STOP) {
2279 struct pgrp *pg;
2280 /*
2281 * If sending a tty stop signal to a member of an orphaned
2282 * process group, discard the signal here if the action
2283 * is default; don't stop the process below if sleeping,
2284 * and don't clear any pending SIGCONT.
2285 */
2286 pg = proc_pgrp(sig_proc);
2287 if (prop & SA_TTYSTOP && pg->pg_jobc == 0 &&
2288 action == SIG_DFL) {
2289 pg_rele(pg);
2290 goto sigout_locked;
2291 }
2292 pg_rele(pg);
2293 uth->uu_siglist &= ~contsigmask;
2294 }
2295
2296 uth->uu_siglist |= mask;
2297
2298 /*
2299 * Defer further processing for signals which are held,
2300 * except that stopped processes must be continued by SIGCONT.
2301 */
2302 /* vfork will not go thru as action is SIG_DFL */
2303 if ((action == KERN_SIG_HOLD) && ((prop & SA_CONT) == 0 || sig_proc->p_stat != SSTOP))
2304 goto sigout_locked;
2305
2306 /*
2307 * SIGKILL priority twiddling moved here from above because
2308 * it needs sig_thread. Could merge it into large switch
2309 * below if we didn't care about priority for tracing
2310 * as SIGKILL's action is always SIG_DFL.
2311 *
2312 * TODO: p_nice isn't hooked up to the scheduler...
2313 */
2314 if ((signum == SIGKILL) && (sig_proc->p_nice > NZERO)) {
2315 sig_proc->p_nice = NZERO;
2316 }
2317
2318 /*
2319 * Process is traced - wake it up (if not already
2320 * stopped) so that it can discover the signal in
2321 * issig() and stop for the parent.
2322 */
2323 if (sig_proc->p_lflag & P_LTRACED) {
2324 if (sig_proc->p_stat != SSTOP)
2325 goto runlocked;
2326 else
2327 goto sigout_locked;
2328 }
2329
2330 if ((flavor & PSIG_VFORK) != 0)
2331 goto runlocked;
2332
2333 if (action == KERN_SIG_WAIT) {
2334 #if CONFIG_DTRACE
2335 /*
2336 * DTrace proc signal-clear returns a siginfo_t. Collect the needed info.
2337 */
2338 r_uid = kauth_getruid(); /* per thread credential; protected by our thread context */
2339
2340 bzero((caddr_t)&(uth->t_dtrace_siginfo), sizeof(uth->t_dtrace_siginfo));
2341
2342 uth->t_dtrace_siginfo.si_signo = signum;
2343 uth->t_dtrace_siginfo.si_pid = current_proc()->p_pid;
2344 uth->t_dtrace_siginfo.si_status = W_EXITCODE(signum, 0);
2345 uth->t_dtrace_siginfo.si_uid = r_uid;
2346 uth->t_dtrace_siginfo.si_code = 0;
2347 #endif
2348 uth->uu_sigwait = mask;
2349 uth->uu_siglist &= ~mask;
2350 wakeup(&uth->uu_sigwait);
2351 /* if it is SIGCONT resume whole process */
2352 if (prop & SA_CONT) {
2353 OSBitOrAtomic(P_CONTINUED, &sig_proc->p_flag);
2354 sig_proc->p_contproc = current_proc()->p_pid;
2355 (void) task_resume_internal(sig_task);
2356 }
2357 goto sigout_locked;
2358 }
2359
2360 if (action != SIG_DFL) {
2361 /*
2362 * User wants to catch the signal.
2363 * Wake up the thread, but don't un-suspend it
2364 * (except for SIGCONT).
2365 */
2366 if (prop & SA_CONT) {
2367 OSBitOrAtomic(P_CONTINUED, &sig_proc->p_flag);
2368 (void) task_resume_internal(sig_task);
2369 sig_proc->p_stat = SRUN;
2370 } else if (sig_proc->p_stat == SSTOP) {
2371 goto sigout_locked;
2372 }
2373 /*
2374 * Fill out siginfo structure information to pass to the
2375 * signalled process/thread sigaction handler, when it
2376 * wakes up. si_code is 0 because this is an ordinary
2377 * signal, not a SIGCHLD, and so si_status is the signal
2378 * number itself, instead of the child process exit status.
2379 * We shift this left because it will be shifted right before
2380 * it is passed to user space. kind of ugly to use W_EXITCODE
2381 * this way, but it beats defining a new macro.
2382 *
2383 * Note: Avoid the SIGCHLD recursion case!
2384 */
2385 if (signum != SIGCHLD) {
2386 r_uid = kauth_getruid();
2387
2388 sig_proc->si_pid = current_proc()->p_pid;
2389 sig_proc->si_status = W_EXITCODE(signum, 0);
2390 sig_proc->si_uid = r_uid;
2391 sig_proc->si_code = 0;
2392 }
2393
2394 goto runlocked;
2395 } else {
2396 /* Default action - varies */
2397 if (mask & stopsigmask) {
2398 assert(signal_reason == NULL);
2399 /*
2400 * These are the signals which by default
2401 * stop a process.
2402 *
2403 * Don't clog system with children of init
2404 * stopped from the keyboard.
2405 */
2406 if (!(prop & SA_STOP) && sig_proc->p_pptr == initproc) {
2407 uth->uu_siglist &= ~mask;
2408 proc_unlock(sig_proc);
2409 /* siglock still locked, proc_lock not locked */
2410 psignal_locked(sig_proc, SIGKILL);
2411 goto sigout_unlocked;
2412 }
2413
2414 /*
2415 * Stop the task
2416 * if task hasn't already been stopped by
2417 * a signal.
2418 */
2419 uth->uu_siglist &= ~mask;
2420 if (sig_proc->p_stat != SSTOP) {
2421 sig_proc->p_xstat = signum;
2422 sig_proc->p_stat = SSTOP;
2423 OSBitAndAtomic(~((uint32_t)P_CONTINUED), &sig_proc->p_flag);
2424 sig_proc->p_lflag &= ~P_LWAITED;
2425 proc_unlock(sig_proc);
2426
2427 pp = proc_parentholdref(sig_proc);
2428 stop(sig_proc, pp);
2429 if (( pp != PROC_NULL) && ((pp->p_flag & P_NOCLDSTOP) == 0)) {
2430
2431 my_cred = kauth_cred_proc_ref(sig_proc);
2432 r_uid = kauth_cred_getruid(my_cred);
2433 kauth_cred_unref(&my_cred);
2434
2435 proc_lock(sig_proc);
2436 pp->si_pid = sig_proc->p_pid;
2437 /*
2438 * POSIX: sigaction for a stopped child
2439 * when sent to the parent must set the
2440 * child's signal number into si_status.
2441 */
2442 if (signum != SIGSTOP)
2443 pp->si_status = WEXITSTATUS(sig_proc->p_xstat);
2444 else
2445 pp->si_status = W_EXITCODE(signum, signum);
2446 pp->si_code = CLD_STOPPED;
2447 pp->si_uid = r_uid;
2448 proc_unlock(sig_proc);
2449
2450 psignal(pp, SIGCHLD);
2451 }
2452 if (pp != PROC_NULL) {
2453 proc_parentdropref(pp, 0);
2454 }
2455
2456 goto sigout_unlocked;
2457 }
2458
2459 goto sigout_locked;
2460 }
2461
2462 DTRACE_PROC3(signal__send, thread_t, sig_thread, proc_t, p, int, signum);
2463
2464 switch (signum) {
2465 /*
2466 * Signals ignored by default have been dealt
2467 * with already, since their bits are on in
2468 * p_sigignore.
2469 */
2470
2471 case SIGKILL:
2472 /*
2473 * Kill signal always sets process running and
2474 * unsuspends it.
2475 */
2476 /*
2477 * Process will be running after 'run'
2478 */
2479 sig_proc->p_stat = SRUN;
2480 /*
2481 * In scenarios where suspend/resume are racing
2482 * the signal we are missing AST_BSD by the time
2483 * we get here, set again to avoid races. This
2484 * was the scenario with spindump enabled shutdowns.
2485 * We would need to cover this approp down the line.
2486 */
2487 act_set_astbsd(sig_thread);
2488 kret = thread_abort(sig_thread);
2489 update_thread_policy = (kret == KERN_SUCCESS);
2490
2491 if (uth->uu_exit_reason == OS_REASON_NULL) {
2492 if (signal_reason == OS_REASON_NULL) {
2493 KERNEL_DEBUG_CONSTANT(BSDDBG_CODE(DBG_BSD_PROC, BSD_PROC_EXITREASON_CREATE) | DBG_FUNC_NONE,
2494 sig_proc->p_pid, OS_REASON_SIGNAL, signum, 0, 0);
2495
2496 signal_reason = build_signal_reason(signum, NULL);
2497 }
2498
2499 os_reason_ref(signal_reason);
2500 set_thread_exit_reason(sig_thread, signal_reason, TRUE);
2501 }
2502
2503 goto sigout_locked;
2504
2505 case SIGCONT:
2506 /*
2507 * Let the process run. If it's sleeping on an
2508 * event, it remains so.
2509 */
2510 assert(signal_reason == NULL);
2511 OSBitOrAtomic(P_CONTINUED, &sig_proc->p_flag);
2512 sig_proc->p_contproc = sig_proc->p_pid;
2513 sig_proc->p_xstat = signum;
2514
2515 (void) task_resume_internal(sig_task);
2516
2517 /*
2518 * When processing a SIGCONT, we need to check
2519 * to see if there are signals pending that
2520 * were not delivered because we had been
2521 * previously stopped. If that's the case,
2522 * we need to thread_abort_safely() to trigger
2523 * interruption of the current system call to
2524 * cause their handlers to fire. If it's only
2525 * the SIGCONT, then don't wake up.
2526 */
2527 if (((flavor & (PSIG_VFORK|PSIG_THREAD)) == 0) && (((uth->uu_siglist & ~uth->uu_sigmask) & ~sig_proc->p_sigignore) & ~mask)) {
2528 uth->uu_siglist &= ~mask;
2529 sig_proc->p_stat = SRUN;
2530 goto runlocked;
2531 }
2532
2533 uth->uu_siglist &= ~mask;
2534 sig_proc->p_stat = SRUN;
2535 goto sigout_locked;
2536
2537 default:
2538 /*
2539 * A signal which has a default action of killing
2540 * the process, and for which there is no handler,
2541 * needs to act like SIGKILL
2542 */
2543 if (((flavor & (PSIG_VFORK|PSIG_THREAD)) == 0) && (action == SIG_DFL) && (prop & SA_KILL)) {
2544 sig_proc->p_stat = SRUN;
2545 kret = thread_abort(sig_thread);
2546 update_thread_policy = (kret == KERN_SUCCESS);
2547
2548 if (uth->uu_exit_reason == OS_REASON_NULL) {
2549 if (signal_reason == OS_REASON_NULL) {
2550 KERNEL_DEBUG_CONSTANT(BSDDBG_CODE(DBG_BSD_PROC, BSD_PROC_EXITREASON_CREATE) | DBG_FUNC_NONE,
2551 sig_proc->p_pid, OS_REASON_SIGNAL, signum, 0, 0);
2552
2553 signal_reason = build_signal_reason(signum, NULL);
2554 }
2555
2556 os_reason_ref(signal_reason);
2557 set_thread_exit_reason(sig_thread, signal_reason, TRUE);
2558 }
2559
2560 goto sigout_locked;
2561 }
2562
2563 /*
2564 * All other signals wake up the process, but don't
2565 * resume it.
2566 */
2567 if (sig_proc->p_stat == SSTOP) {
2568 goto sigout_locked;
2569 }
2570 goto runlocked;
2571 }
2572 }
2573 /*NOTREACHED*/
2574
2575 runlocked:
2576 /*
2577 * If we're being traced (possibly because someone attached us
2578 * while we were stopped), check for a signal from the debugger.
2579 */
2580 if (sig_proc->p_stat == SSTOP) {
2581 if ((sig_proc->p_lflag & P_LTRACED) != 0 && sig_proc->p_xstat != 0)
2582 uth->uu_siglist |= sigmask(sig_proc->p_xstat);
2583
2584 if ((flavor & PSIG_VFORK) != 0) {
2585 sig_proc->p_stat = SRUN;
2586 }
2587 } else {
2588 /*
2589 * setrunnable(p) in BSD and
2590 * Wake up the thread if it is interruptible.
2591 */
2592 sig_proc->p_stat = SRUN;
2593 if ((flavor & PSIG_VFORK) == 0)
2594 thread_abort_safely(sig_thread);
2595 }
2596
2597 sigout_locked:
2598 if (update_thread_policy) {
2599 /*
2600 * Update the thread policy to heading to terminate, increase priority if
2601 * necessary. This needs to be done before we drop the proc lock because the
2602 * thread can take the fatal signal once it's dropped.
2603 */
2604 proc_set_thread_policy(sig_thread, TASK_POLICY_ATTRIBUTE, TASK_POLICY_TERMINATED, TASK_POLICY_ENABLE);
2605 }
2606
2607 proc_unlock(sig_proc);
2608
2609 sigout_unlocked:
2610 os_reason_free(signal_reason);
2611 if ((flavor & PSIG_LOCKED)== 0) {
2612 proc_signalend(sig_proc, 0);
2613 }
2614 }
2615
2616 void
2617 psignal(proc_t p, int signum)
2618 {
2619 psignal_internal(p, NULL, NULL, 0, signum, NULL);
2620 }
2621
2622 void
2623 psignal_with_reason(proc_t p, int signum, struct os_reason *signal_reason)
2624 {
2625 psignal_internal(p, NULL, NULL, 0, signum, signal_reason);
2626 }
2627
2628 void
2629 psignal_locked(proc_t p, int signum)
2630 {
2631 psignal_internal(p, NULL, NULL, PSIG_LOCKED, signum, NULL);
2632 }
2633
2634 void
2635 psignal_vfork_with_reason(proc_t p, task_t new_task, thread_t thread, int signum, struct os_reason *signal_reason)
2636 {
2637 psignal_internal(p, new_task, thread, PSIG_VFORK, signum, signal_reason);
2638 }
2639
2640
2641 void
2642 psignal_vfork(proc_t p, task_t new_task, thread_t thread, int signum)
2643 {
2644 psignal_internal(p, new_task, thread, PSIG_VFORK, signum, NULL);
2645 }
2646
2647 void
2648 psignal_uthread(thread_t thread, int signum)
2649 {
2650 psignal_internal(PROC_NULL, TASK_NULL, thread, PSIG_THREAD, signum, NULL);
2651 }
2652
2653 /* same as psignal(), but prefer delivery to 'thread' if possible */
2654 void
2655 psignal_try_thread(proc_t p, thread_t thread, int signum)
2656 {
2657 psignal_internal(p, NULL, thread, PSIG_TRY_THREAD, signum, NULL);
2658 }
2659
2660 void
2661 psignal_try_thread_with_reason(proc_t p, thread_t thread, int signum, struct os_reason *signal_reason)
2662 {
2663 psignal_internal(p, TASK_NULL, thread, PSIG_TRY_THREAD, signum, signal_reason);
2664 }
2665
2666 void
2667 psignal_thread_with_reason(proc_t p, thread_t thread, int signum, struct os_reason *signal_reason)
2668 {
2669 psignal_internal(p, TASK_NULL, thread, PSIG_THREAD, signum, signal_reason);
2670 }
2671
2672 /*
2673 * If the current process has received a signal (should be caught or cause
2674 * termination, should interrupt current syscall), return the signal number.
2675 * Stop signals with default action are processed immediately, then cleared;
2676 * they aren't returned. This is checked after each entry to the system for
2677 * a syscall or trap (though this can usually be done without calling issignal
2678 * by checking the pending signal masks in the CURSIG macro.) The normal call
2679 * sequence is
2680 *
2681 * while (signum = CURSIG(curproc))
2682 * postsig(signum);
2683 */
2684 int
2685 issignal_locked(proc_t p)
2686 {
2687 int signum, mask, prop, sigbits;
2688 thread_t cur_act;
2689 struct uthread * ut;
2690 proc_t pp;
2691 kauth_cred_t my_cred;
2692 int retval = 0;
2693 uid_t r_uid;
2694
2695 cur_act = current_thread();
2696
2697 #if SIGNAL_DEBUG
2698 if(rdebug_proc && (p == rdebug_proc)) {
2699 ram_printf(3);
2700 }
2701 #endif /* SIGNAL_DEBUG */
2702
2703 /*
2704 * Try to grab the signal lock.
2705 */
2706 if (sig_try_locked(p) <= 0) {
2707 return 0;
2708 }
2709
2710 proc_signalstart(p, 1);
2711
2712 ut = get_bsdthread_info(cur_act);
2713 for (;;) {
2714 sigbits = ut->uu_siglist & ~ut->uu_sigmask;
2715
2716 if (p->p_lflag & P_LPPWAIT)
2717 sigbits &= ~stopsigmask;
2718 if (sigbits == 0) { /* no signal to send */
2719 retval = 0;
2720 goto out;
2721 }
2722
2723 signum = ffs((long)sigbits);
2724 mask = sigmask(signum);
2725 prop = sigprop[signum];
2726
2727 /*
2728 * We should see pending but ignored signals
2729 * only if P_LTRACED was on when they were posted.
2730 */
2731 if (mask & p->p_sigignore && (p->p_lflag & P_LTRACED) == 0) {
2732 ut->uu_siglist &= ~mask;
2733 continue;
2734 }
2735
2736 if (p->p_lflag & P_LTRACED && (p->p_lflag & P_LPPWAIT) == 0) {
2737 /*
2738 * If traced, deliver the signal to the debugger, and wait to be
2739 * released.
2740 */
2741 task_t task;
2742 p->p_xstat = signum;
2743
2744 if (p->p_lflag & P_LSIGEXC) {
2745 p->sigwait = TRUE;
2746 p->sigwait_thread = cur_act;
2747 p->p_stat = SSTOP;
2748 OSBitAndAtomic(~((uint32_t)P_CONTINUED), &p->p_flag);
2749 p->p_lflag &= ~P_LWAITED;
2750 ut->uu_siglist &= ~mask; /* clear the current signal from the pending list */
2751 proc_signalend(p, 1);
2752 proc_unlock(p);
2753 do_bsdexception(EXC_SOFTWARE, EXC_SOFT_SIGNAL, signum);
2754 proc_lock(p);
2755 proc_signalstart(p, 1);
2756 } else {
2757 proc_unlock(p);
2758 my_cred = kauth_cred_proc_ref(p);
2759 r_uid = kauth_cred_getruid(my_cred);
2760 kauth_cred_unref(&my_cred);
2761
2762 pp = proc_parentholdref(p);
2763 if (pp != PROC_NULL) {
2764 proc_lock(pp);
2765
2766 pp->si_pid = p->p_pid;
2767 pp->p_xhighbits = p->p_xhighbits;
2768 p->p_xhighbits = 0;
2769 pp->si_status = p->p_xstat;
2770 pp->si_code = CLD_TRAPPED;
2771 pp->si_uid = r_uid;
2772
2773 proc_unlock(pp);
2774 }
2775
2776 /*
2777 * XXX Have to really stop for debuggers;
2778 * XXX stop() doesn't do the right thing.
2779 */
2780 task = p->task;
2781 task_suspend_internal(task);
2782
2783 proc_lock(p);
2784 p->sigwait = TRUE;
2785 p->sigwait_thread = cur_act;
2786 p->p_stat = SSTOP;
2787 OSBitAndAtomic(~((uint32_t)P_CONTINUED), &p->p_flag);
2788 p->p_lflag &= ~P_LWAITED;
2789 ut->uu_siglist &= ~mask;
2790
2791 proc_signalend(p, 1);
2792 proc_unlock(p);
2793
2794 if (pp != PROC_NULL) {
2795 psignal(pp, SIGCHLD);
2796 proc_list_lock();
2797 wakeup((caddr_t)pp);
2798 proc_parentdropref(pp, 1);
2799 proc_list_unlock();
2800 }
2801
2802 assert_wait((caddr_t)&p->sigwait, (THREAD_INTERRUPTIBLE));
2803 thread_block(THREAD_CONTINUE_NULL);
2804 proc_lock(p);
2805 proc_signalstart(p, 1);
2806 }
2807
2808 p->sigwait = FALSE;
2809 p->sigwait_thread = NULL;
2810 wakeup((caddr_t)&p->sigwait_thread);
2811
2812 if (signum == SIGKILL || ut->uu_siglist & sigmask(SIGKILL)) {
2813 /*
2814 * Deliver a pending sigkill even if it's not the current signal.
2815 * Necessary for PT_KILL, which should not be delivered to the
2816 * debugger, but we can't differentiate it from any other KILL.
2817 */
2818 signum = SIGKILL;
2819 goto deliver_sig;
2820 }
2821
2822 /* We may have to quit. */
2823 if (thread_should_abort(current_thread())) {
2824 retval = 0;
2825 goto out;
2826 }
2827
2828 /*
2829 * If parent wants us to take the signal,
2830 * then it will leave it in p->p_xstat;
2831 * otherwise we just look for signals again.
2832 */
2833 signum = p->p_xstat;
2834 if (signum == 0)
2835 continue;
2836
2837 /*
2838 * Put the new signal into p_siglist. If the
2839 * signal is being masked, look for other signals.
2840 */
2841 mask = sigmask(signum);
2842 ut->uu_siglist |= mask;
2843 if (ut->uu_sigmask & mask)
2844 continue;
2845 }
2846
2847 /*
2848 * Decide whether the signal should be returned.
2849 * Return the signal's number, or fall through
2850 * to clear it from the pending mask.
2851 */
2852
2853 switch ((long)p->p_sigacts->ps_sigact[signum]) {
2854
2855 case (long)SIG_DFL:
2856 /*
2857 * If there is a pending stop signal to process
2858 * with default action, stop here,
2859 * then clear the signal. However,
2860 * if process is member of an orphaned
2861 * process group, ignore tty stop signals.
2862 */
2863 if (prop & SA_STOP) {
2864 struct pgrp * pg;
2865
2866 proc_unlock(p);
2867 pg = proc_pgrp(p);
2868 if (p->p_lflag & P_LTRACED ||
2869 (pg->pg_jobc == 0 &&
2870 prop & SA_TTYSTOP)) {
2871 proc_lock(p);
2872 pg_rele(pg);
2873 break; /* ignore signal */
2874 }
2875 pg_rele(pg);
2876 if (p->p_stat != SSTOP) {
2877 proc_lock(p);
2878 p->p_xstat = signum;
2879 p->p_stat = SSTOP;
2880 p->p_lflag &= ~P_LWAITED;
2881 proc_unlock(p);
2882
2883 pp = proc_parentholdref(p);
2884 stop(p, pp);
2885 if ((pp != PROC_NULL) && ((pp->p_flag & P_NOCLDSTOP) == 0)) {
2886 my_cred = kauth_cred_proc_ref(p);
2887 r_uid = kauth_cred_getruid(my_cred);
2888 kauth_cred_unref(&my_cred);
2889
2890 proc_lock(pp);
2891 pp->si_pid = p->p_pid;
2892 pp->si_status = WEXITSTATUS(p->p_xstat);
2893 pp->si_code = CLD_STOPPED;
2894 pp->si_uid = r_uid;
2895 proc_unlock(pp);
2896
2897 psignal(pp, SIGCHLD);
2898 }
2899 if (pp != PROC_NULL)
2900 proc_parentdropref(pp, 0);
2901 }
2902 proc_lock(p);
2903 break;
2904 } else if (prop & SA_IGNORE) {
2905 /*
2906 * Except for SIGCONT, shouldn't get here.
2907 * Default action is to ignore; drop it.
2908 */
2909 break; /* ignore signal */
2910 } else {
2911 goto deliver_sig;
2912 }
2913
2914 case (long)SIG_IGN:
2915 /*
2916 * Masking above should prevent us ever trying
2917 * to take action on an ignored signal other
2918 * than SIGCONT, unless process is traced.
2919 */
2920 if ((prop & SA_CONT) == 0 &&
2921 (p->p_lflag & P_LTRACED) == 0)
2922 printf("issignal\n");
2923 break; /* ignore signal */
2924
2925 default:
2926 /* This signal has an action - deliver it. */
2927 goto deliver_sig;
2928 }
2929
2930 /* If we dropped through, the signal was ignored - remove it from pending list. */
2931 ut->uu_siglist &= ~mask;
2932
2933 } /* for(;;) */
2934
2935 /* NOTREACHED */
2936
2937 deliver_sig:
2938 ut->uu_siglist &= ~mask;
2939 retval = signum;
2940
2941 out:
2942 proc_signalend(p, 1);
2943 return retval;
2944 }
2945
2946 /* called from _sleep */
2947 int
2948 CURSIG(proc_t p)
2949 {
2950 int signum, mask, prop, sigbits;
2951 thread_t cur_act;
2952 struct uthread * ut;
2953 int retnum = 0;
2954
2955
2956 cur_act = current_thread();
2957
2958 ut = get_bsdthread_info(cur_act);
2959
2960 if (ut->uu_siglist == 0)
2961 return (0);
2962
2963 if (((ut->uu_siglist & ~ut->uu_sigmask) == 0) && ((p->p_lflag & P_LTRACED) == 0))
2964 return (0);
2965
2966 sigbits = ut->uu_siglist & ~ut->uu_sigmask;
2967
2968 for(;;) {
2969 if (p->p_lflag & P_LPPWAIT)
2970 sigbits &= ~stopsigmask;
2971 if (sigbits == 0) { /* no signal to send */
2972 return (retnum);
2973 }
2974
2975 signum = ffs((long)sigbits);
2976 mask = sigmask(signum);
2977 prop = sigprop[signum];
2978 sigbits &= ~mask; /* take the signal out */
2979
2980 /*
2981 * We should see pending but ignored signals
2982 * only if P_LTRACED was on when they were posted.
2983 */
2984 if (mask & p->p_sigignore && (p->p_lflag & P_LTRACED) == 0) {
2985 continue;
2986 }
2987
2988 if (p->p_lflag & P_LTRACED && (p->p_lflag & P_LPPWAIT) == 0) {
2989 return(signum);
2990 }
2991
2992 /*
2993 * Decide whether the signal should be returned.
2994 * Return the signal's number, or fall through
2995 * to clear it from the pending mask.
2996 */
2997
2998 switch ((long)p->p_sigacts->ps_sigact[signum]) {
2999
3000 case (long)SIG_DFL:
3001 /*
3002 * If there is a pending stop signal to process
3003 * with default action, stop here,
3004 * then clear the signal. However,
3005 * if process is member of an orphaned
3006 * process group, ignore tty stop signals.
3007 */
3008 if (prop & SA_STOP) {
3009 struct pgrp *pg;
3010
3011 pg = proc_pgrp(p);
3012
3013 if (p->p_lflag & P_LTRACED ||
3014 (pg->pg_jobc == 0 &&
3015 prop & SA_TTYSTOP)) {
3016 pg_rele(pg);
3017 break; /* == ignore */
3018 }
3019 pg_rele(pg);
3020 retnum = signum;
3021 break;
3022 } else if (prop & SA_IGNORE) {
3023 /*
3024 * Except for SIGCONT, shouldn't get here.
3025 * Default action is to ignore; drop it.
3026 */
3027 break; /* == ignore */
3028 } else {
3029 return (signum);
3030 }
3031 /*NOTREACHED*/
3032
3033 case (long)SIG_IGN:
3034 /*
3035 * Masking above should prevent us ever trying
3036 * to take action on an ignored signal other
3037 * than SIGCONT, unless process is traced.
3038 */
3039 if ((prop & SA_CONT) == 0 &&
3040 (p->p_lflag & P_LTRACED) == 0)
3041 printf("issignal\n");
3042 break; /* == ignore */
3043
3044 default:
3045 /*
3046 * This signal has an action, let
3047 * postsig() process it.
3048 */
3049 return (signum);
3050 }
3051 }
3052 /* NOTREACHED */
3053 }
3054
3055 /*
3056 * Put the argument process into the stopped state and notify the parent
3057 * via wakeup. Signals are handled elsewhere. The process must not be
3058 * on the run queue.
3059 */
3060 static void
3061 stop(proc_t p, proc_t parent)
3062 {
3063 OSBitAndAtomic(~((uint32_t)P_CONTINUED), &p->p_flag);
3064 if ((parent != PROC_NULL) && (parent->p_stat != SSTOP)) {
3065 proc_list_lock();
3066 wakeup((caddr_t)parent);
3067 proc_list_unlock();
3068 }
3069 (void) task_suspend_internal(p->task);
3070 }
3071
3072 /*
3073 * Take the action for the specified signal
3074 * from the current set of pending signals.
3075 */
3076 void
3077 postsig_locked(int signum)
3078 {
3079 proc_t p = current_proc();
3080 struct sigacts *ps = p->p_sigacts;
3081 user_addr_t catcher;
3082 uint32_t code;
3083 int mask, returnmask;
3084 struct uthread * ut;
3085
3086 #if DIAGNOSTIC
3087 if (signum == 0)
3088 panic("postsig");
3089 /*
3090 * This must be called on master cpu
3091 */
3092 if (cpu_number() != master_cpu)
3093 panic("psig not on master");
3094 #endif
3095
3096 /*
3097 * Try to grab the signal lock.
3098 */
3099 if (sig_try_locked(p) <= 0) {
3100 return;
3101 }
3102
3103 proc_signalstart(p, 1);
3104
3105 ut = (struct uthread *)get_bsdthread_info(current_thread());
3106 mask = sigmask(signum);
3107 ut->uu_siglist &= ~mask;
3108 catcher = ps->ps_sigact[signum];
3109 if (catcher == SIG_DFL) {
3110 /*
3111 * Default catcher, where the default is to kill
3112 * the process. (Other cases were ignored above.)
3113 */
3114 sig_lock_to_exit(p);
3115 p->p_acflag |= AXSIG;
3116 if (sigprop[signum] & SA_CORE) {
3117 p->p_sigacts->ps_sig = signum;
3118 proc_signalend(p, 1);
3119 proc_unlock(p);
3120 #if CONFIG_COREDUMP
3121 if (coredump(p, 0, 0) == 0)
3122 signum |= WCOREFLAG;
3123 #endif
3124 } else {
3125 proc_signalend(p, 1);
3126 proc_unlock(p);
3127 }
3128
3129 #if CONFIG_DTRACE
3130 bzero((caddr_t)&(ut->t_dtrace_siginfo), sizeof(ut->t_dtrace_siginfo));
3131
3132 ut->t_dtrace_siginfo.si_signo = signum;
3133 ut->t_dtrace_siginfo.si_pid = p->si_pid;
3134 ut->t_dtrace_siginfo.si_uid = p->si_uid;
3135 ut->t_dtrace_siginfo.si_status = WEXITSTATUS(p->si_status);
3136
3137 /* Fire DTrace proc:::fault probe when signal is generated by hardware. */
3138 switch (signum) {
3139 case SIGILL: case SIGBUS: case SIGSEGV: case SIGFPE: case SIGTRAP:
3140 DTRACE_PROC2(fault, int, (int)(ut->uu_code), siginfo_t *, &(ut->t_dtrace_siginfo));
3141 break;
3142 default:
3143 break;
3144 }
3145
3146
3147 DTRACE_PROC3(signal__handle, int, signum, siginfo_t *, &(ut->t_dtrace_siginfo),
3148 void (*)(void), SIG_DFL);
3149 #endif
3150
3151 KERNEL_DEBUG_CONSTANT(BSDDBG_CODE(DBG_BSD_PROC, BSD_PROC_FRCEXIT) | DBG_FUNC_NONE,
3152 p->p_pid, W_EXITCODE(0, signum), 3, 0, 0);
3153
3154 /*
3155 * exit_with_reason() will consume a reference to the thread's exit reason, so we take another
3156 * reference for the thread. This reference will be destroyed in uthread_cleanup().
3157 */
3158 os_reason_ref(ut->uu_exit_reason);
3159 exit_with_reason(p, W_EXITCODE(0, signum), (int *)NULL, TRUE, TRUE, 0, ut->uu_exit_reason);
3160
3161 proc_lock(p);
3162 return;
3163 } else {
3164 /*
3165 * If we get here, the signal must be caught.
3166 */
3167 #if DIAGNOSTIC
3168 if (catcher == SIG_IGN || (ut->uu_sigmask & mask))
3169 log(LOG_WARNING,
3170 "postsig: processing masked or ignored signal\n");
3171 #endif
3172
3173 /*
3174 * Set the new mask value and also defer further
3175 * occurences of this signal.
3176 *
3177 * Special case: user has done a sigpause. Here the
3178 * current mask is not of interest, but rather the
3179 * mask from before the sigpause is what we want
3180 * restored after the signal processing is completed.
3181 */
3182 if (ut->uu_flag & UT_SAS_OLDMASK) {
3183 returnmask = ut->uu_oldmask;
3184 ut->uu_flag &= ~UT_SAS_OLDMASK;
3185 ut->uu_oldmask = 0;
3186 } else
3187 returnmask = ut->uu_sigmask;
3188 ut->uu_sigmask |= ps->ps_catchmask[signum];
3189 if ((ps->ps_signodefer & mask) == 0)
3190 ut->uu_sigmask |= mask;
3191 if ((signum != SIGILL) && (signum != SIGTRAP) && (ps->ps_sigreset & mask)) {
3192 if ((signum != SIGCONT) && (sigprop[signum] & SA_IGNORE))
3193 p->p_sigignore |= mask;
3194 ps->ps_sigact[signum] = SIG_DFL;
3195 ps->ps_siginfo &= ~mask;
3196 ps->ps_signodefer &= ~mask;
3197 }
3198
3199 if (ps->ps_sig != signum) {
3200 code = 0;
3201 } else {
3202 code = ps->ps_code;
3203 ps->ps_code = 0;
3204 }
3205 OSIncrementAtomicLong(&p->p_stats->p_ru.ru_nsignals);
3206 sendsig(p, catcher, signum, returnmask, code);
3207 }
3208 proc_signalend(p, 1);
3209 }
3210
3211 /*
3212 * Attach a signal knote to the list of knotes for this process.
3213 *
3214 * Signal knotes share the knote list with proc knotes. This
3215 * could be avoided by using a signal-specific knote list, but
3216 * probably isn't worth the trouble.
3217 */
3218
3219 static int
3220 filt_sigattach(struct knote *kn, __unused struct kevent_internal_s *kev)
3221 {
3222 proc_t p = current_proc(); /* can attach only to oneself */
3223
3224 proc_klist_lock();
3225
3226 kn->kn_ptr.p_proc = p;
3227
3228 KNOTE_ATTACH(&p->p_klist, kn);
3229
3230 proc_klist_unlock();
3231
3232 /* edge-triggered events can't have fired before we attached */
3233 return (0);
3234 }
3235
3236 /*
3237 * remove the knote from the process list, if it hasn't already
3238 * been removed by exit processing.
3239 */
3240
3241 static void
3242 filt_sigdetach(struct knote *kn)
3243 {
3244 proc_t p = kn->kn_ptr.p_proc;
3245
3246 proc_klist_lock();
3247 kn->kn_ptr.p_proc = NULL;
3248 KNOTE_DETACH(&p->p_klist, kn);
3249 proc_klist_unlock();
3250 }
3251
3252 /*
3253 * Post an event to the signal filter. Because we share the same list
3254 * as process knotes, we have to filter out and handle only signal events.
3255 *
3256 * We assume that we process fdfree() before we post the NOTE_EXIT for
3257 * a process during exit. Therefore, since signal filters can only be
3258 * set up "in-process", we should have already torn down the kqueue
3259 * hosting the EVFILT_SIGNAL knote and should never see NOTE_EXIT.
3260 */
3261 static int
3262 filt_signal(struct knote *kn, long hint)
3263 {
3264
3265 if (hint & NOTE_SIGNAL) {
3266 hint &= ~NOTE_SIGNAL;
3267
3268 if (kn->kn_id == (unsigned int)hint)
3269 kn->kn_data++;
3270 } else if (hint & NOTE_EXIT) {
3271 panic("filt_signal: detected NOTE_EXIT event");
3272 }
3273
3274 return (kn->kn_data != 0);
3275 }
3276
3277 static int
3278 filt_signaltouch(
3279 struct knote *kn,
3280 struct kevent_internal_s *kev)
3281 {
3282 #pragma unused(kev)
3283
3284 int res;
3285
3286 proc_klist_lock();
3287
3288 if ((kn->kn_status & KN_UDATA_SPECIFIC) == 0)
3289 kn->kn_udata = kev->udata;
3290 /*
3291 * No data to save -
3292 * just capture if it is already fired
3293 */
3294 res = (kn->kn_data > 0);
3295
3296 proc_klist_unlock();
3297
3298 return res;
3299 }
3300
3301 static int
3302 filt_signalprocess(
3303 struct knote *kn,
3304 __unused struct filt_process_s *data,
3305 struct kevent_internal_s *kev)
3306 {
3307 proc_klist_lock();
3308
3309 if (kn->kn_data == 0) {
3310 proc_klist_unlock();
3311 return 0;
3312 }
3313
3314 /*
3315 * Snapshot the event data.
3316 * All signal events are EV_CLEAR, so
3317 * add that and clear out the data field.
3318 */
3319 *kev = kn->kn_kevent;
3320 kev->flags |= EV_CLEAR;
3321 kn->kn_data = 0;
3322
3323 proc_klist_unlock();
3324 return 1;
3325 }
3326
3327 void
3328 bsd_ast(thread_t thread)
3329 {
3330 proc_t p = current_proc();
3331 struct uthread *ut = get_bsdthread_info(thread);
3332 int signum;
3333 user_addr_t pc;
3334 static int bsd_init_done = 0;
3335
3336 if (p == NULL)
3337 return;
3338
3339 /* don't run bsd ast on exec copy or exec'ed tasks */
3340 if (task_did_exec(current_task()) || task_is_exec_copy(current_task())) {
3341 return;
3342 }
3343
3344 if ((p->p_flag & P_OWEUPC) && (p->p_flag & P_PROFIL)) {
3345 pc = get_useraddr();
3346 addupc_task(p, pc, 1);
3347 OSBitAndAtomic(~((uint32_t)P_OWEUPC), &p->p_flag);
3348 }
3349
3350 if (timerisset(&p->p_vtimer_user.it_value)) {
3351 uint32_t microsecs;
3352
3353 task_vtimer_update(p->task, TASK_VTIMER_USER, &microsecs);
3354
3355 if (!itimerdecr(p, &p->p_vtimer_user, microsecs)) {
3356 if (timerisset(&p->p_vtimer_user.it_value))
3357 task_vtimer_set(p->task, TASK_VTIMER_USER);
3358 else
3359 task_vtimer_clear(p->task, TASK_VTIMER_USER);
3360
3361 psignal_try_thread(p, thread, SIGVTALRM);
3362 }
3363 }
3364
3365 if (timerisset(&p->p_vtimer_prof.it_value)) {
3366 uint32_t microsecs;
3367
3368 task_vtimer_update(p->task, TASK_VTIMER_PROF, &microsecs);
3369
3370 if (!itimerdecr(p, &p->p_vtimer_prof, microsecs)) {
3371 if (timerisset(&p->p_vtimer_prof.it_value))
3372 task_vtimer_set(p->task, TASK_VTIMER_PROF);
3373 else
3374 task_vtimer_clear(p->task, TASK_VTIMER_PROF);
3375
3376 psignal_try_thread(p, thread, SIGPROF);
3377 }
3378 }
3379
3380 if (timerisset(&p->p_rlim_cpu)) {
3381 struct timeval tv;
3382
3383 task_vtimer_update(p->task, TASK_VTIMER_RLIM, (uint32_t *) &tv.tv_usec);
3384
3385 proc_spinlock(p);
3386 if (p->p_rlim_cpu.tv_sec > 0 || p->p_rlim_cpu.tv_usec > tv.tv_usec) {
3387 tv.tv_sec = 0;
3388 timersub(&p->p_rlim_cpu, &tv, &p->p_rlim_cpu);
3389 proc_spinunlock(p);
3390 } else {
3391
3392 timerclear(&p->p_rlim_cpu);
3393 proc_spinunlock(p);
3394
3395 task_vtimer_clear(p->task, TASK_VTIMER_RLIM);
3396
3397 psignal_try_thread(p, thread, SIGXCPU);
3398 }
3399 }
3400
3401 #if CONFIG_DTRACE
3402 if (ut->t_dtrace_sig) {
3403 uint8_t dt_action_sig = ut->t_dtrace_sig;
3404 ut->t_dtrace_sig = 0;
3405 psignal(p, dt_action_sig);
3406 }
3407
3408 if (ut->t_dtrace_stop) {
3409 ut->t_dtrace_stop = 0;
3410 proc_lock(p);
3411 p->p_dtrace_stop = 1;
3412 proc_unlock(p);
3413 (void)task_suspend_internal(p->task);
3414 }
3415
3416 if (ut->t_dtrace_resumepid) {
3417 proc_t resumeproc = proc_find(ut->t_dtrace_resumepid);
3418 ut->t_dtrace_resumepid = 0;
3419 if (resumeproc != PROC_NULL) {
3420 proc_lock(resumeproc);
3421 /* We only act on processes stopped by dtrace */
3422 if (resumeproc->p_dtrace_stop) {
3423 resumeproc->p_dtrace_stop = 0;
3424 proc_unlock(resumeproc);
3425 task_resume_internal(resumeproc->task);
3426 }
3427 else {
3428 proc_unlock(resumeproc);
3429 }
3430 proc_rele(resumeproc);
3431 }
3432 }
3433
3434 #endif /* CONFIG_DTRACE */
3435
3436 proc_lock(p);
3437 if (CHECK_SIGNALS(p, current_thread(), ut)) {
3438 while ( (signum = issignal_locked(p)) )
3439 postsig_locked(signum);
3440 }
3441 proc_unlock(p);
3442
3443 if (!bsd_init_done) {
3444 bsd_init_done = 1;
3445 bsdinit_task();
3446 }
3447
3448 }
3449
3450 /* ptrace set runnable */
3451 void
3452 pt_setrunnable(proc_t p)
3453 {
3454 task_t task;
3455
3456 task = p->task;
3457
3458 if (p->p_lflag & P_LTRACED) {
3459 proc_lock(p);
3460 p->p_stat = SRUN;
3461 proc_unlock(p);
3462 if (p->sigwait) {
3463 wakeup((caddr_t)&(p->sigwait));
3464 if ((p->p_lflag & P_LSIGEXC) == 0) { // 5878479
3465 task_release(task);
3466 }
3467 }
3468 }
3469 }
3470
3471 kern_return_t
3472 do_bsdexception(
3473 int exc,
3474 int code,
3475 int sub)
3476 {
3477 mach_exception_data_type_t codes[EXCEPTION_CODE_MAX];
3478
3479 codes[0] = code;
3480 codes[1] = sub;
3481 return(bsd_exception(exc, codes, 2));
3482 }
3483
3484 int
3485 proc_pendingsignals(proc_t p, sigset_t mask)
3486 {
3487 struct uthread * uth;
3488 thread_t th;
3489 sigset_t bits = 0;
3490
3491 proc_lock(p);
3492 /* If the process is in proc exit return no signal info */
3493 if (p->p_lflag & P_LPEXIT) {
3494 goto out;
3495 }
3496
3497 if ((p->p_lflag & P_LINVFORK) && p->p_vforkact) {
3498 th = p->p_vforkact;
3499 uth = (struct uthread *)get_bsdthread_info(th);
3500 if (uth) {
3501 bits = (((uth->uu_siglist & ~uth->uu_sigmask) & ~p->p_sigignore) & mask);
3502 }
3503 goto out;
3504 }
3505
3506 bits = 0;
3507 TAILQ_FOREACH(uth, &p->p_uthlist, uu_list) {
3508 bits |= (((uth->uu_siglist & ~uth->uu_sigmask) & ~p->p_sigignore) & mask);
3509 }
3510 out:
3511 proc_unlock(p);
3512 return(bits);
3513 }
3514
3515 int
3516 thread_issignal(proc_t p, thread_t th, sigset_t mask)
3517 {
3518 struct uthread * uth;
3519 sigset_t bits=0;
3520
3521 proc_lock(p);
3522 uth = (struct uthread *)get_bsdthread_info(th);
3523 if (uth) {
3524 bits = (((uth->uu_siglist & ~uth->uu_sigmask) & ~p->p_sigignore) & mask);
3525 }
3526 proc_unlock(p);
3527 return(bits);
3528 }
3529
3530 /*
3531 * Allow external reads of the sigprop array.
3532 */
3533 int
3534 hassigprop(int sig, int prop)
3535 {
3536 return (sigprop[sig] & prop);
3537 }
3538
3539 void
3540 pgsigio(pid_t pgid, int sig)
3541 {
3542 proc_t p = PROC_NULL;
3543
3544 if (pgid < 0)
3545 gsignal(-(pgid), sig);
3546
3547 else if (pgid > 0 && (p = proc_find(pgid)) != 0)
3548 psignal(p, sig);
3549 if (p != PROC_NULL)
3550 proc_rele(p);
3551 }
3552
3553 void
3554 proc_signalstart(proc_t p, int locked)
3555 {
3556 if (!locked)
3557 proc_lock(p);
3558
3559 if(p->p_signalholder == current_thread())
3560 panic("proc_signalstart: thread attempting to signal a process for which it holds the signal lock");
3561
3562 p->p_sigwaitcnt++;
3563 while ((p->p_lflag & P_LINSIGNAL) == P_LINSIGNAL)
3564 msleep(&p->p_sigmask, &p->p_mlock, 0, "proc_signstart", NULL);
3565 p->p_sigwaitcnt--;
3566
3567 p->p_lflag |= P_LINSIGNAL;
3568 p->p_signalholder = current_thread();
3569 if (!locked)
3570 proc_unlock(p);
3571 }
3572
3573 void
3574 proc_signalend(proc_t p, int locked)
3575 {
3576 if (!locked)
3577 proc_lock(p);
3578 p->p_lflag &= ~P_LINSIGNAL;
3579
3580 if (p->p_sigwaitcnt > 0)
3581 wakeup(&p->p_sigmask);
3582
3583 p->p_signalholder = NULL;
3584 if (!locked)
3585 proc_unlock(p);
3586 }
3587
3588 void
3589 sig_lock_to_exit(proc_t p)
3590 {
3591 thread_t self = current_thread();
3592
3593 p->exit_thread = self;
3594 proc_unlock(p);
3595
3596 task_hold(p->task);
3597 task_wait(p->task, FALSE);
3598
3599 proc_lock(p);
3600 }
3601
3602 int
3603 sig_try_locked(proc_t p)
3604 {
3605 thread_t self = current_thread();
3606
3607 while (p->sigwait || p->exit_thread) {
3608 if (p->exit_thread) {
3609 return(0);
3610 }
3611 msleep((caddr_t)&p->sigwait_thread, &p->p_mlock, PCATCH | PDROP, 0, 0);
3612 if (thread_should_abort(self)) {
3613 /*
3614 * Terminate request - clean up.
3615 */
3616 proc_lock(p);
3617 return -1;
3618 }
3619 proc_lock(p);
3620 }
3621 return 1;
3622 }