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1 /*
2 * Copyright (c) 2000-2016 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 /* Copyright (c) 1995, 1997 Apple Computer, Inc. All Rights Reserved */
29 /*
30 * Copyright (c) 1982, 1986, 1989, 1991, 1993
31 * The Regents of the University of California. All rights reserved.
32 * (c) UNIX System Laboratories, Inc.
33 * All or some portions of this file are derived from material licensed
34 * to the University of California by American Telephone and Telegraph
35 * Co. or Unix System Laboratories, Inc. and are reproduced herein with
36 * the permission of UNIX System Laboratories, Inc.
37 *
38 * Redistribution and use in source and binary forms, with or without
39 * modification, are permitted provided that the following conditions
40 * are met:
41 * 1. Redistributions of source code must retain the above copyright
42 * notice, this list of conditions and the following disclaimer.
43 * 2. Redistributions in binary form must reproduce the above copyright
44 * notice, this list of conditions and the following disclaimer in the
45 * documentation and/or other materials provided with the distribution.
46 * 3. All advertising materials mentioning features or use of this software
47 * must display the following acknowledgement:
48 * This product includes software developed by the University of
49 * California, Berkeley and its contributors.
50 * 4. Neither the name of the University nor the names of its contributors
51 * may be used to endorse or promote products derived from this software
52 * without specific prior written permission.
53 *
54 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
55 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
56 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
57 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
58 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
59 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
60 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
61 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
62 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
63 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
64 * SUCH DAMAGE.
65 *
66 * @(#)kern_exit.c 8.7 (Berkeley) 2/12/94
67 */
68 /*
69 * NOTICE: This file was modified by SPARTA, Inc. in 2005 to introduce
70 * support for mandatory and extensible security protections. This notice
71 * is included in support of clause 2.2 (b) of the Apple Public License,
72 * Version 2.0.
73 */
74
75 #include <machine/reg.h>
76 #include <machine/psl.h>
77
78 #include "compat_43.h"
79
80 #include <sys/param.h>
81 #include <sys/systm.h>
82 #include <sys/ioctl.h>
83 #include <sys/proc_internal.h>
84 #include <sys/proc.h>
85 #include <sys/kauth.h>
86 #include <sys/tty.h>
87 #include <sys/time.h>
88 #include <sys/resource.h>
89 #include <sys/kernel.h>
90 #include <sys/wait.h>
91 #include <sys/file_internal.h>
92 #include <sys/vnode_internal.h>
93 #include <sys/syslog.h>
94 #include <sys/malloc.h>
95 #include <sys/resourcevar.h>
96 #include <sys/ptrace.h>
97 #include <sys/proc_info.h>
98 #include <sys/reason.h>
99 #include <sys/_types/_timeval64.h>
100 #include <sys/user.h>
101 #include <sys/aio_kern.h>
102 #include <sys/sysproto.h>
103 #include <sys/signalvar.h>
104 #include <sys/kdebug.h>
105 #include <sys/filedesc.h> /* fdfree */
106 #if SYSV_SHM
107 #include <sys/shm_internal.h> /* shmexit */
108 #endif
109 #include <sys/acct.h> /* acct_process */
110 #if CONFIG_PERSONAS
111 #include <sys/persona.h>
112 #endif
113
114 #include <security/audit/audit.h>
115 #include <bsm/audit_kevents.h>
116
117 #include <mach/mach_types.h>
118 #include <kern/exc_resource.h>
119
120 #include <kern/kern_types.h>
121 #include <kern/kalloc.h>
122 #include <kern/task.h>
123 #include <corpses/task_corpse.h>
124 #include <kern/thread.h>
125 #include <kern/thread_call.h>
126 #include <kern/sched_prim.h>
127 #include <kern/assert.h>
128 #include <kern/policy_internal.h>
129
130 #include <sys/codesign.h>
131
132 #if CONFIG_MEMORYSTATUS
133 #include <sys/kern_memorystatus.h>
134 #endif
135
136 #if CONFIG_DTRACE
137 /* Do not include dtrace.h, it redefines kmem_[alloc/free] */
138 void dtrace_proc_exit(proc_t p);
139
140 #include <sys/dtrace_ptss.h>
141 #endif
142
143 #if CONFIG_MACF
144 #include <security/mac.h>
145 #include <security/mac_mach_internal.h>
146 #include <sys/syscall.h>
147 #endif
148
149 #include <mach/mach_types.h>
150 #include <mach/task.h>
151 #include <mach/thread_act.h>
152
153 #include <vm/vm_protos.h>
154
155 #include <sys/sdt.h>
156
157 void proc_prepareexit(proc_t p, int rv, boolean_t perf_notify);
158 void gather_populate_corpse_crashinfo(proc_t p, void *crash_info_ptr, mach_exception_data_type_t code, mach_exception_data_type_t subcode, uint64_t *udata_buffer, int num_udata);
159 mach_exception_data_type_t proc_encode_exit_exception_code(proc_t p);
160 void vfork_exit(proc_t p, int rv);
161 void vproc_exit(proc_t p);
162 __private_extern__ void munge_user64_rusage(struct rusage *a_rusage_p, struct user64_rusage *a_user_rusage_p);
163 __private_extern__ void munge_user32_rusage(struct rusage *a_rusage_p, struct user32_rusage *a_user_rusage_p);
164 static int reap_child_locked(proc_t parent, proc_t child, int deadparent, int reparentedtoinit, int locked, int droplock);
165 static void populate_corpse_crashinfo(proc_t p, void *crash_info_ptr, struct rusage_superset *rup, mach_exception_data_type_t code, mach_exception_data_type_t subcode, uint64_t *udata_buffer, int num_udata);
166 static void proc_update_corpse_exception_codes(proc_t p, mach_exception_data_type_t *code, mach_exception_data_type_t *subcode);
167 extern int proc_pidpathinfo_internal(proc_t p, uint64_t arg, char *buffer, uint32_t buffersize, int32_t *retval);
168 static void abort_with_payload_internal(proc_t p, uint32_t reason_namespace, uint64_t reason_code, user_addr_t payload,
169 uint32_t payload_size, user_addr_t reason_string, uint64_t reason_flags);
170
171 static __attribute__((noinline)) void launchd_crashed_panic(proc_t p, int rv);
172 extern void proc_piduniqidentifierinfo(proc_t p, struct proc_uniqidentifierinfo *p_uniqidinfo);
173 extern void task_coalition_ids(task_t task, uint64_t ids[COALITION_NUM_TYPES]);
174 extern uint64_t get_task_phys_footprint_limit(task_t);
175 int proc_list_uptrs(void *p, uint64_t *udata_buffer, int size);
176
177
178 /*
179 * Things which should have prototypes in headers, but don't
180 */
181 void proc_exit(proc_t p);
182 int wait1continue(int result);
183 int waitidcontinue(int result);
184 kern_return_t sys_perf_notify(thread_t thread, int pid);
185 kern_return_t task_exception_notify(exception_type_t exception,
186 mach_exception_data_type_t code, mach_exception_data_type_t subcode);
187 void delay(int);
188 void gather_rusage_info(proc_t p, rusage_info_current *ru, int flavor);
189
190 /*
191 * NOTE: Source and target may *NOT* overlap!
192 * XXX Should share code with bsd/dev/ppc/unix_signal.c
193 */
194 void
195 siginfo_user_to_user32(user_siginfo_t *in, user32_siginfo_t *out)
196 {
197 out->si_signo = in->si_signo;
198 out->si_errno = in->si_errno;
199 out->si_code = in->si_code;
200 out->si_pid = in->si_pid;
201 out->si_uid = in->si_uid;
202 out->si_status = in->si_status;
203 out->si_addr = CAST_DOWN_EXPLICIT(user32_addr_t,in->si_addr);
204 /* following cast works for sival_int because of padding */
205 out->si_value.sival_ptr = CAST_DOWN_EXPLICIT(user32_addr_t,in->si_value.sival_ptr);
206 out->si_band = in->si_band; /* range reduction */
207 }
208
209 void
210 siginfo_user_to_user64(user_siginfo_t *in, user64_siginfo_t *out)
211 {
212 out->si_signo = in->si_signo;
213 out->si_errno = in->si_errno;
214 out->si_code = in->si_code;
215 out->si_pid = in->si_pid;
216 out->si_uid = in->si_uid;
217 out->si_status = in->si_status;
218 out->si_addr = in->si_addr;
219 /* following cast works for sival_int because of padding */
220 out->si_value.sival_ptr = in->si_value.sival_ptr;
221 out->si_band = in->si_band; /* range reduction */
222 }
223
224 static int
225 copyoutsiginfo(user_siginfo_t *native, boolean_t is64, user_addr_t uaddr)
226 {
227 if (is64) {
228 user64_siginfo_t sinfo64;
229
230 bzero(&sinfo64, sizeof (sinfo64));
231 siginfo_user_to_user64(native, &sinfo64);
232 return (copyout(&sinfo64, uaddr, sizeof (sinfo64)));
233 } else {
234 user32_siginfo_t sinfo32;
235
236 bzero(&sinfo32, sizeof (sinfo32));
237 siginfo_user_to_user32(native, &sinfo32);
238 return (copyout(&sinfo32, uaddr, sizeof (sinfo32)));
239 }
240 }
241
242 void gather_populate_corpse_crashinfo(proc_t p, void *crash_info_ptr, mach_exception_data_type_t code, mach_exception_data_type_t subcode, uint64_t *udata_buffer, int num_udata)
243 {
244 struct rusage_superset rup;
245
246 gather_rusage_info(p, &rup.ri, RUSAGE_INFO_CURRENT);
247 rup.ri.ri_phys_footprint = 0;
248 populate_corpse_crashinfo(p, crash_info_ptr, &rup, code, subcode, udata_buffer, num_udata);
249 }
250
251 static void proc_update_corpse_exception_codes(proc_t p, mach_exception_data_type_t *code, mach_exception_data_type_t *subcode)
252 {
253 mach_exception_data_type_t code_update = *code;
254 mach_exception_data_type_t subcode_update = *subcode;
255 if (p->p_exit_reason == OS_REASON_NULL) {
256 return;
257 }
258
259 switch (p->p_exit_reason->osr_namespace) {
260 case OS_REASON_JETSAM:
261 if (p->p_exit_reason->osr_code == JETSAM_REASON_MEMORY_PERPROCESSLIMIT) {
262 /* Update the code with EXC_RESOURCE code for high memory watermark */
263 EXC_RESOURCE_ENCODE_TYPE(code_update, RESOURCE_TYPE_MEMORY);
264 EXC_RESOURCE_ENCODE_FLAVOR(code_update, FLAVOR_HIGH_WATERMARK);
265 EXC_RESOURCE_HWM_ENCODE_LIMIT(code_update, ((get_task_phys_footprint_limit(p->task)) >> 20));
266 subcode_update = 0;
267 break;
268 }
269
270 break;
271 default:
272 break;
273 }
274
275 *code = code_update;
276 *subcode = subcode_update;
277 return;
278 }
279
280 mach_exception_data_type_t proc_encode_exit_exception_code(proc_t p)
281 {
282 uint64_t subcode = 0;
283
284 if (p->p_exit_reason == OS_REASON_NULL) {
285 return 0;
286 }
287
288 /* Embed first 32 bits of osr_namespace and osr_code in exception code */
289 ENCODE_OSR_NAMESPACE_TO_MACH_EXCEPTION_CODE(subcode, p->p_exit_reason->osr_namespace);
290 ENCODE_OSR_CODE_TO_MACH_EXCEPTION_CODE(subcode, p->p_exit_reason->osr_code);
291 return (mach_exception_data_type_t)subcode;
292 }
293
294 static void populate_corpse_crashinfo(proc_t p, void *crash_info_ptr, struct rusage_superset *rup, mach_exception_data_type_t code, mach_exception_data_type_t subcode, uint64_t *udata_buffer, int num_udata)
295 {
296 mach_vm_address_t uaddr = 0;
297 mach_exception_data_type_t exc_codes[EXCEPTION_CODE_MAX];
298 exc_codes[0] = code;
299 exc_codes[1] = subcode;
300 cpu_type_t cputype;
301 struct proc_uniqidentifierinfo p_uniqidinfo;
302 struct proc_workqueueinfo pwqinfo;
303 int retval = 0;
304 uint64_t crashed_threadid = thread_tid(current_thread());
305 unsigned int pflags = 0;
306 uint64_t max_footprint_mb;
307 uint64_t max_footprint;
308
309 #if CONFIG_MEMORYSTATUS
310 int memstat_dirty_flags = 0;
311 #endif
312
313 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_EXCEPTION_CODES, sizeof(exc_codes), &uaddr)) {
314 kcdata_memcpy(crash_info_ptr, uaddr, exc_codes, sizeof(exc_codes));
315 }
316
317 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_PID, sizeof(p->p_pid), &uaddr)) {
318 kcdata_memcpy(crash_info_ptr, uaddr, &p->p_pid, sizeof(p->p_pid));
319 }
320
321 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_PPID, sizeof(p->p_ppid), &uaddr)) {
322 kcdata_memcpy(crash_info_ptr, uaddr, &p->p_ppid, sizeof(p->p_ppid));
323 }
324
325 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_CRASHED_THREADID, sizeof(uint64_t), &uaddr)) {
326 kcdata_memcpy(crash_info_ptr, uaddr, &crashed_threadid, sizeof(uint64_t));
327 }
328
329 if (KERN_SUCCESS ==
330 kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_BSDINFOWITHUNIQID, sizeof(struct proc_uniqidentifierinfo), &uaddr)) {
331 proc_piduniqidentifierinfo(p, &p_uniqidinfo);
332 kcdata_memcpy(crash_info_ptr, uaddr, &p_uniqidinfo, sizeof(struct proc_uniqidentifierinfo));
333 }
334
335 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_RUSAGE_INFO, sizeof(rusage_info_current), &uaddr)) {
336 kcdata_memcpy(crash_info_ptr, uaddr, &rup->ri, sizeof(rusage_info_current));
337 }
338
339 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_PROC_CSFLAGS, sizeof(p->p_csflags), &uaddr)) {
340 kcdata_memcpy(crash_info_ptr, uaddr, &p->p_csflags, sizeof(p->p_csflags));
341 }
342
343 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_PROC_NAME, sizeof(p->p_comm), &uaddr)) {
344 kcdata_memcpy(crash_info_ptr, uaddr, &p->p_comm, sizeof(p->p_comm));
345 }
346
347 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_PROC_STARTTIME, sizeof(p->p_start), &uaddr)) {
348 struct timeval64 t64;
349 t64.tv_sec = (int64_t)p->p_start.tv_sec;
350 t64.tv_usec = (int64_t)p->p_start.tv_usec;
351 kcdata_memcpy(crash_info_ptr, uaddr, &t64, sizeof(t64));
352 }
353
354 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_USERSTACK, sizeof(p->user_stack), &uaddr)) {
355 kcdata_memcpy(crash_info_ptr, uaddr, &p->user_stack, sizeof(p->user_stack));
356 }
357
358 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_ARGSLEN, sizeof(p->p_argslen), &uaddr)) {
359 kcdata_memcpy(crash_info_ptr, uaddr, &p->p_argslen, sizeof(p->p_argslen));
360 }
361
362 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_PROC_ARGC, sizeof(p->p_argc), &uaddr)) {
363 kcdata_memcpy(crash_info_ptr, uaddr, &p->p_argc, sizeof(p->p_argc));
364 }
365
366 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_PROC_PATH, MAXPATHLEN, &uaddr)) {
367 char *buf = (char *) kalloc(MAXPATHLEN);
368 if (buf != NULL) {
369 bzero(buf, MAXPATHLEN);
370 proc_pidpathinfo_internal(p, 0, buf, MAXPATHLEN, &retval);
371 kcdata_memcpy(crash_info_ptr, uaddr, buf, MAXPATHLEN);
372 kfree(buf, MAXPATHLEN);
373 }
374 }
375
376 pflags = p->p_flag & (P_LP64 | P_SUGID);
377 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_PROC_FLAGS, sizeof(pflags), &uaddr)) {
378 kcdata_memcpy(crash_info_ptr, uaddr, &pflags, sizeof(pflags));
379 }
380
381 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_UID, sizeof(p->p_uid), &uaddr)) {
382 kcdata_memcpy(crash_info_ptr, uaddr, &p->p_uid, sizeof(p->p_uid));
383 }
384
385 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_GID, sizeof(p->p_gid), &uaddr)) {
386 kcdata_memcpy(crash_info_ptr, uaddr, &p->p_gid, sizeof(p->p_gid));
387 }
388
389 cputype = cpu_type() & ~CPU_ARCH_MASK;
390 if (IS_64BIT_PROCESS(p))
391 cputype |= CPU_ARCH_ABI64;
392
393 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_CPUTYPE, sizeof(cpu_type_t), &uaddr)) {
394 kcdata_memcpy(crash_info_ptr, uaddr, &cputype, sizeof(cpu_type_t));
395 }
396
397 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_MEMORY_LIMIT, sizeof(max_footprint_mb), &uaddr)) {
398 max_footprint = get_task_phys_footprint_limit(p->task);
399 max_footprint_mb = max_footprint >> 20;
400 kcdata_memcpy(crash_info_ptr, uaddr, &max_footprint_mb, sizeof(max_footprint_mb));
401 }
402
403 bzero(&pwqinfo, sizeof(struct proc_workqueueinfo));
404 retval = fill_procworkqueue(p, &pwqinfo);
405 if (retval == 0) {
406 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_WORKQUEUEINFO, sizeof(struct proc_workqueueinfo), &uaddr)) {
407 kcdata_memcpy(crash_info_ptr, uaddr, &pwqinfo, sizeof(struct proc_workqueueinfo));
408 }
409 }
410
411 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_RESPONSIBLE_PID, sizeof(p->p_responsible_pid), &uaddr)) {
412 kcdata_memcpy(crash_info_ptr, uaddr, &p->p_responsible_pid, sizeof(p->p_responsible_pid));
413 }
414
415 #if CONFIG_COALITIONS
416 if (KERN_SUCCESS == kcdata_get_memory_addr_for_array(crash_info_ptr, TASK_CRASHINFO_COALITION_ID, sizeof(uint64_t), COALITION_NUM_TYPES, &uaddr)) {
417 uint64_t coalition_ids[COALITION_NUM_TYPES];
418 task_coalition_ids(p->task, coalition_ids);
419 kcdata_memcpy(crash_info_ptr, uaddr, coalition_ids, sizeof(coalition_ids));
420 }
421 #endif /* CONFIG_COALITIONS */
422
423 #if CONFIG_MEMORYSTATUS
424 memstat_dirty_flags = memorystatus_dirty_get(p);
425 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, TASK_CRASHINFO_DIRTY_FLAGS, sizeof(memstat_dirty_flags), &uaddr)) {
426 kcdata_memcpy(crash_info_ptr, uaddr, &memstat_dirty_flags, sizeof(memstat_dirty_flags));
427 }
428 #endif
429
430 if (p->p_exit_reason != OS_REASON_NULL) {
431 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, EXIT_REASON_SNAPSHOT, sizeof(struct exit_reason_snapshot), &uaddr)) {
432 struct exit_reason_snapshot ers = {
433 .ers_namespace = p->p_exit_reason->osr_namespace,
434 .ers_code = p->p_exit_reason->osr_code,
435 .ers_flags = p->p_exit_reason->osr_flags
436 };
437
438 kcdata_memcpy(crash_info_ptr, uaddr, &ers, sizeof(ers));
439 }
440
441 if (p->p_exit_reason->osr_kcd_buf != 0) {
442 uint32_t reason_buf_size = kcdata_memory_get_used_bytes(&p->p_exit_reason->osr_kcd_descriptor);
443 assert(reason_buf_size != 0);
444
445 if (KERN_SUCCESS == kcdata_get_memory_addr(crash_info_ptr, KCDATA_TYPE_NESTED_KCDATA, reason_buf_size, &uaddr)) {
446 kcdata_memcpy(crash_info_ptr, uaddr, p->p_exit_reason->osr_kcd_buf, reason_buf_size);
447 }
448 }
449 }
450
451 if (num_udata > 0) {
452 if (KERN_SUCCESS == kcdata_get_memory_addr_for_array(crash_info_ptr, TASK_CRASHINFO_UDATA_PTRS,
453 sizeof(uint64_t), num_udata, &uaddr)) {
454 kcdata_memcpy(crash_info_ptr, uaddr, udata_buffer, sizeof(uint64_t) * num_udata);
455 }
456 }
457 }
458
459 /*
460 * We only parse exit reason kcdata blobs for launchd when it dies
461 * and we're going to panic.
462 *
463 * Meant to be called immediately before panicking.
464 */
465 char *
466 launchd_exit_reason_get_string_desc(os_reason_t exit_reason)
467 {
468 kcdata_iter_t iter;
469
470 if (exit_reason == OS_REASON_NULL || exit_reason->osr_kcd_buf == NULL ||
471 exit_reason->osr_bufsize == 0) {
472 return NULL;
473 }
474
475 iter = kcdata_iter(exit_reason->osr_kcd_buf, exit_reason->osr_bufsize);
476 if (!kcdata_iter_valid(iter)) {
477 #if DEBUG || DEVELOPMENT
478 printf("launchd exit reason has invalid exit reason buffer\n");
479 #endif
480 return NULL;
481 }
482
483 if (kcdata_iter_type(iter) != KCDATA_BUFFER_BEGIN_OS_REASON) {
484 #if DEBUG || DEVELOPMENT
485 printf("launchd exit reason buffer type mismatch, expected %d got %d\n",
486 KCDATA_BUFFER_BEGIN_OS_REASON, kcdata_iter_type(iter));
487 #endif
488 return NULL;
489 }
490
491 iter = kcdata_iter_find_type(iter, EXIT_REASON_USER_DESC);
492 if (!kcdata_iter_valid(iter)) {
493 return NULL;
494 }
495
496 return (char *)kcdata_iter_payload(iter);
497 }
498
499 static __attribute__((noinline)) void
500 launchd_crashed_panic(proc_t p, int rv)
501 {
502 char *launchd_exit_reason_desc = launchd_exit_reason_get_string_desc(p->p_exit_reason);
503
504 if (p->p_exit_reason == OS_REASON_NULL) {
505 printf("pid 1 exited -- no exit reason available -- (signal %d, exit %d)\n",
506 WTERMSIG(rv), WEXITSTATUS(rv));
507 } else {
508 printf("pid 1 exited -- exit reason namespace %d subcode 0x%llx, description %s\n",
509 p->p_exit_reason->osr_namespace, p->p_exit_reason->osr_code, launchd_exit_reason_desc ?
510 launchd_exit_reason_desc : "none");
511 }
512
513 #if (DEVELOPMENT || DEBUG) && CONFIG_COREDUMP
514 /*
515 * For debugging purposes, generate a core file of initproc before
516 * panicking. Leave at least 300 MB free on the root volume, and ignore
517 * the process's corefile ulimit. fsync() the file to ensure it lands on disk
518 * before the panic hits.
519 */
520
521 int err;
522 uint64_t coredump_start = mach_absolute_time();
523 uint64_t coredump_end;
524 clock_sec_t tv_sec;
525 clock_usec_t tv_usec;
526 uint32_t tv_msec;
527
528 err = coredump(p, 300, COREDUMP_IGNORE_ULIMIT | COREDUMP_FULLFSYNC);
529
530 coredump_end = mach_absolute_time();
531
532 absolutetime_to_microtime(coredump_end - coredump_start, &tv_sec, &tv_usec);
533
534 tv_msec = tv_usec / 1000;
535
536 if (err != 0) {
537 printf("Failed to generate initproc core file: error %d, took %d.%03d seconds\n",
538 err, (uint32_t)tv_sec, tv_msec);
539 } else {
540 printf("Generated initproc core file in %d.%03d seconds\n",
541 (uint32_t)tv_sec, tv_msec);
542 }
543 #endif /* (DEVELOPMENT || DEBUG) && CONFIG_COREDUMP */
544
545 sync(p, (void *)NULL, (int *)NULL);
546
547 if (p->p_exit_reason == OS_REASON_NULL) {
548 panic_plain(LAUNCHD_CRASHED_PREFIX " -- no exit reason available -- (signal %d, exit status %d %s)",
549 WTERMSIG(rv), WEXITSTATUS(rv), ((p->p_csflags & CS_KILLED) ? "CS_KILLED" : ""));
550 } else {
551 panic_plain(LAUNCHD_CRASHED_PREFIX " %s -- exit reason namespace %d subcode 0x%llx description: %." LAUNCHD_PANIC_REASON_STRING_MAXLEN "s",
552 ((p->p_csflags & CS_KILLED) ? "CS_KILLED" : ""),
553 p->p_exit_reason->osr_namespace, p->p_exit_reason->osr_code,
554 launchd_exit_reason_desc ? launchd_exit_reason_desc : "none");
555 }
556 }
557
558 static void
559 abort_with_payload_internal(proc_t p, uint32_t reason_namespace, uint64_t reason_code, user_addr_t payload, uint32_t payload_size,
560 user_addr_t reason_string, uint64_t reason_flags)
561 {
562 os_reason_t exit_reason = OS_REASON_NULL;
563
564 KERNEL_DEBUG_CONSTANT(BSDDBG_CODE(DBG_BSD_PROC, BSD_PROC_EXITREASON_CREATE) | DBG_FUNC_NONE,
565 p->p_pid, reason_namespace,
566 reason_code, 0, 0);
567
568 exit_reason = build_userspace_exit_reason(reason_namespace, reason_code, payload, payload_size, reason_string,
569 reason_flags);
570
571 /*
572 * We use SIGABRT (rather than calling exit directly from here) so that
573 * the debugger can catch abort_with_{reason,payload} calls.
574 */
575 psignal_try_thread_with_reason(p, current_thread(), SIGABRT, exit_reason);
576
577 return;
578 }
579
580 int
581 abort_with_payload(struct proc *cur_proc, struct abort_with_payload_args *args,
582 __unused void *retval)
583 {
584 abort_with_payload_internal(cur_proc, args->reason_namespace, args->reason_code, args->payload, args->payload_size,
585 args->reason_string, args->reason_flags);
586
587 return 0;
588 }
589
590
591 /*
592 * exit --
593 * Death of process.
594 */
595 __attribute__((noreturn))
596 void
597 exit(proc_t p, struct exit_args *uap, int *retval)
598 {
599 exit1(p, W_EXITCODE(uap->rval, 0), retval);
600
601 thread_exception_return();
602 /* NOTREACHED */
603 while (TRUE)
604 thread_block(THREAD_CONTINUE_NULL);
605 /* NOTREACHED */
606 }
607
608 /*
609 * Exit: deallocate address space and other resources, change proc state
610 * to zombie, and unlink proc from allproc and parent's lists. Save exit
611 * status and rusage for wait(). Check for child processes and orphan them.
612 */
613 int
614 exit1(proc_t p, int rv, int *retval)
615 {
616 return exit1_internal(p, rv, retval, TRUE, TRUE, 0);
617 }
618
619 int
620 exit1_internal(proc_t p, int rv, int *retval, boolean_t thread_can_terminate, boolean_t perf_notify,
621 int jetsam_flags)
622 {
623 return exit_with_reason(p, rv, retval, thread_can_terminate, perf_notify, jetsam_flags, OS_REASON_NULL);
624 }
625
626 /*
627 * NOTE: exit_with_reason drops a reference on the passed exit_reason
628 */
629 int
630 exit_with_reason(proc_t p, int rv, int *retval, boolean_t thread_can_terminate, boolean_t perf_notify,
631 int jetsam_flags, struct os_reason *exit_reason)
632 {
633 thread_t self = current_thread();
634 struct task *task = p->task;
635 struct uthread *ut;
636 int error = 0;
637
638 /*
639 * If a thread in this task has already
640 * called exit(), then halt any others
641 * right here.
642 */
643
644 ut = get_bsdthread_info(self);
645 if (ut->uu_flag & UT_VFORK) {
646 os_reason_free(exit_reason);
647 if (!thread_can_terminate) {
648 return EINVAL;
649 }
650
651 vfork_exit(p, rv);
652 vfork_return(p , retval, p->p_pid);
653 unix_syscall_return(0);
654 /* NOT REACHED */
655 }
656
657 /*
658 * The parameter list of audit_syscall_exit() was augmented to
659 * take the Darwin syscall number as the first parameter,
660 * which is currently required by mac_audit_postselect().
661 */
662
663 /*
664 * The BSM token contains two components: an exit status as passed
665 * to exit(), and a return value to indicate what sort of exit it
666 * was. The exit status is WEXITSTATUS(rv), but it's not clear
667 * what the return value is.
668 */
669 AUDIT_ARG(exit, WEXITSTATUS(rv), 0);
670 AUDIT_SYSCALL_EXIT(SYS_exit, p, ut, 0); /* Exit is always successfull */
671
672 DTRACE_PROC1(exit, int, CLD_EXITED);
673
674 /* mark process is going to exit and pull out of DBG/disk throttle */
675 /* TODO: This should be done after becoming exit thread */
676 proc_set_task_policy(p->task, TASK_POLICY_ATTRIBUTE,
677 TASK_POLICY_TERMINATED, TASK_POLICY_ENABLE);
678
679 proc_lock(p);
680 error = proc_transstart(p, 1, (jetsam_flags ? 1 : 0));
681 if (error == EDEADLK) {
682 /*
683 * If proc_transstart() returns EDEADLK, then another thread
684 * is either exec'ing or exiting. Return an error and allow
685 * the other thread to continue.
686 */
687 proc_unlock(p);
688 os_reason_free(exit_reason);
689 if (current_proc() == p){
690 if (p->exit_thread == self) {
691 printf("exit_thread failed to exit, leaving process %s[%d] in unkillable limbo\n",
692 p->p_comm, p->p_pid);
693 }
694
695 if (thread_can_terminate) {
696 thread_exception_return();
697 }
698 }
699
700 return error;
701 }
702
703 while (p->exit_thread != self) {
704 if (sig_try_locked(p) <= 0) {
705 proc_transend(p, 1);
706 os_reason_free(exit_reason);
707
708 if (get_threadtask(self) != task) {
709 proc_unlock(p);
710 return(0);
711 }
712 proc_unlock(p);
713
714 thread_terminate(self);
715 if (!thread_can_terminate) {
716 return 0;
717 }
718
719 thread_exception_return();
720 /* NOTREACHED */
721 }
722 sig_lock_to_exit(p);
723 }
724
725 if (exit_reason != OS_REASON_NULL) {
726 KERNEL_DEBUG_CONSTANT(BSDDBG_CODE(DBG_BSD_PROC, BSD_PROC_EXITREASON_COMMIT) | DBG_FUNC_NONE,
727 p->p_pid, exit_reason->osr_namespace,
728 exit_reason->osr_code, 0, 0);
729 }
730
731 assert(p->p_exit_reason == OS_REASON_NULL);
732 p->p_exit_reason = exit_reason;
733
734 p->p_lflag |= P_LEXIT;
735 p->p_xstat = rv;
736 p->p_lflag |= jetsam_flags;
737
738 proc_transend(p, 1);
739 proc_unlock(p);
740
741 proc_prepareexit(p, rv, perf_notify);
742
743 /* Last thread to terminate will call proc_exit() */
744 task_terminate_internal(task);
745
746 return(0);
747 }
748
749 void
750 proc_prepareexit(proc_t p, int rv, boolean_t perf_notify)
751 {
752 mach_exception_data_type_t code = 0, subcode = 0;
753
754 struct uthread *ut;
755 thread_t self = current_thread();
756 ut = get_bsdthread_info(self);
757 struct rusage_superset *rup;
758 int kr = 0;
759 int create_corpse = FALSE;
760
761 if (p == initproc) {
762 launchd_crashed_panic(p, rv);
763 /* NOTREACHED */
764 }
765
766 /*
767 * Generate a corefile/crashlog if:
768 * The process doesn't have an exit reason that indicates no crash report should be created
769 * AND any of the following are true:
770 * - The process was terminated due to a fatal signal that generates a core
771 * - The process was killed due to a code signing violation
772 * - The process has an exit reason that indicates we should generate a crash report
773 *
774 * The first condition is necessary because abort_with_reason()/payload() use SIGABRT
775 * (which normally triggers a core) but may indicate that no crash report should be created.
776 */
777 if (!(PROC_HAS_EXITREASON(p) && (PROC_EXITREASON_FLAGS(p) & OS_REASON_FLAG_NO_CRASH_REPORT)) &&
778 (hassigprop(WTERMSIG(rv), SA_CORE) || ((p->p_csflags & CS_KILLED) != 0) ||
779 (PROC_HAS_EXITREASON(p) && (PROC_EXITREASON_FLAGS(p) &
780 OS_REASON_FLAG_GENERATE_CRASH_REPORT)))) {
781 /*
782 * Workaround for processes checking up on PT_DENY_ATTACH:
783 * should be backed out post-Leopard (details in 5431025).
784 */
785 if ((SIGSEGV == WTERMSIG(rv)) &&
786 (p->p_pptr->p_lflag & P_LNOATTACH)) {
787 goto skipcheck;
788 }
789
790 /*
791 * Crash Reporter looks for the signal value, original exception
792 * type, and low 20 bits of the original code in code[0]
793 * (8, 4, and 20 bits respectively). code[1] is unmodified.
794 */
795 code = ((WTERMSIG(rv) & 0xff) << 24) |
796 ((ut->uu_exception & 0x0f) << 20) |
797 ((int)ut->uu_code & 0xfffff);
798 subcode = ut->uu_subcode;
799
800 kr = task_exception_notify(EXC_CRASH, code, subcode);
801
802 /* Nobody handled EXC_CRASH?? remember to make corpse */
803 if (kr != 0) {
804 create_corpse = TRUE;
805 }
806 }
807
808 skipcheck:
809 /* Notify the perf server? */
810 if (perf_notify) {
811 (void)sys_perf_notify(self, p->p_pid);
812 }
813
814
815 /* stash the usage into corpse data if making_corpse == true */
816 if (create_corpse == TRUE) {
817 kr = task_mark_corpse(p->task);
818 if (kr != KERN_SUCCESS) {
819 if (kr == KERN_NO_SPACE) {
820 printf("Process[%d] has no vm space for corpse info.\n", p->p_pid);
821 } else if (kr == KERN_NOT_SUPPORTED) {
822 printf("Process[%d] was destined to be corpse. But corpse is disabled by config.\n", p->p_pid);
823 } else {
824 printf("Process[%d] crashed: %s. Too many corpses being created.\n", p->p_pid, p->p_comm);
825 }
826 create_corpse = FALSE;
827 }
828 }
829
830 /*
831 * Before this process becomes a zombie, stash resource usage
832 * stats in the proc for external observers to query
833 * via proc_pid_rusage().
834 *
835 * If the zombie allocation fails, just punt the stats.
836 */
837 MALLOC_ZONE(rup, struct rusage_superset *,
838 sizeof (*rup), M_ZOMBIE, M_WAITOK);
839 if (rup != NULL) {
840 gather_rusage_info(p, &rup->ri, RUSAGE_INFO_CURRENT);
841 rup->ri.ri_phys_footprint = 0;
842 rup->ri.ri_proc_exit_abstime = mach_absolute_time();
843
844 /*
845 * Make the rusage_info visible to external observers
846 * only after it has been completely filled in.
847 */
848 p->p_ru = rup;
849 }
850 if (create_corpse) {
851 int est_knotes = 0, num_knotes = 0;
852 uint64_t *buffer = NULL;
853 int buf_size = 0;
854
855 /* Get all the udata pointers from kqueue */
856 est_knotes = proc_list_uptrs(p, NULL, 0);
857 if (est_knotes > 0) {
858 buf_size = (est_knotes + 32) * sizeof(uint64_t);
859 buffer = (uint64_t *) kalloc(buf_size);
860 num_knotes = proc_list_uptrs(p, buffer, buf_size);
861 if (num_knotes > est_knotes + 32) {
862 num_knotes = est_knotes + 32;
863 }
864 }
865
866 /* Update the code, subcode based on exit reason */
867 proc_update_corpse_exception_codes(p, &code, &subcode);
868 populate_corpse_crashinfo(p, task_get_corpseinfo(p->task), rup, code, subcode, buffer, num_knotes);
869 if (buffer != NULL) {
870 kfree(buffer, buf_size);
871 }
872 }
873 /*
874 * Remove proc from allproc queue and from pidhash chain.
875 * Need to do this before we do anything that can block.
876 * Not doing causes things like mount() find this on allproc
877 * in partially cleaned state.
878 */
879
880 proc_list_lock();
881
882 #if CONFIG_MEMORYSTATUS
883 memorystatus_remove(p, TRUE);
884 #endif
885
886 LIST_REMOVE(p, p_list);
887 LIST_INSERT_HEAD(&zombproc, p, p_list); /* Place onto zombproc. */
888 /* will not be visible via proc_find */
889 p->p_listflag |= P_LIST_EXITED;
890
891 proc_list_unlock();
892
893
894 #ifdef PGINPROF
895 vmsizmon();
896 #endif
897 /*
898 * If parent is waiting for us to exit or exec,
899 * P_LPPWAIT is set; we will wakeup the parent below.
900 */
901 proc_lock(p);
902 p->p_lflag &= ~(P_LTRACED | P_LPPWAIT);
903 p->p_sigignore = ~(sigcantmask);
904 ut->uu_siglist = 0;
905 proc_unlock(p);
906 }
907
908 void
909 proc_exit(proc_t p)
910 {
911 proc_t q;
912 proc_t pp;
913 struct task *task = p->task;
914 vnode_t tvp = NULLVP;
915 struct pgrp * pg;
916 struct session *sessp;
917 struct uthread * uth;
918 pid_t pid;
919 int exitval;
920 int knote_hint;
921
922 uth = current_uthread();
923
924 proc_lock(p);
925 proc_transstart(p, 1, 0);
926 if( !(p->p_lflag & P_LEXIT)) {
927 /*
928 * This can happen if a thread_terminate() occurs
929 * in a single-threaded process.
930 */
931 p->p_lflag |= P_LEXIT;
932 proc_transend(p, 1);
933 proc_unlock(p);
934 proc_prepareexit(p, 0, TRUE);
935 (void) task_terminate_internal(task);
936 proc_lock(p);
937 } else {
938 proc_transend(p, 1);
939 }
940
941 p->p_lflag |= P_LPEXIT;
942
943 /*
944 * Other kernel threads may be in the middle of signalling this process.
945 * Wait for those threads to wrap it up before making the process
946 * disappear on them.
947 */
948 if ((p->p_lflag & P_LINSIGNAL) || (p->p_sigwaitcnt > 0)) {
949 p->p_sigwaitcnt++;
950 while ((p->p_lflag & P_LINSIGNAL) || (p->p_sigwaitcnt > 1))
951 msleep(&p->p_sigmask, &p->p_mlock, PWAIT, "proc_sigdrain", NULL);
952 p->p_sigwaitcnt--;
953 }
954
955 proc_unlock(p);
956 pid = p->p_pid;
957 exitval = p->p_xstat;
958 KERNEL_DEBUG_CONSTANT_IST(KDEBUG_COMMON,
959 BSDDBG_CODE(DBG_BSD_PROC, BSD_PROC_EXIT) | DBG_FUNC_START,
960 pid, exitval, 0, 0, 0);
961
962 #if CONFIG_DTRACE
963 dtrace_proc_exit(p);
964 #endif
965
966 nspace_proc_exit(p);
967
968 /*
969 * need to cancel async IO requests that can be cancelled and wait for those
970 * already active. MAY BLOCK!
971 */
972
973 proc_refdrain(p);
974
975 /* if any pending cpu limits action, clear it */
976 task_clear_cpuusage(p->task, TRUE);
977
978 workqueue_mark_exiting(p);
979 workqueue_exit(p);
980 kqueue_dealloc(p->p_wqkqueue);
981 p->p_wqkqueue = NULL;
982
983 _aio_exit( p );
984
985 /*
986 * Close open files and release open-file table.
987 * This may block!
988 */
989 fdfree(p);
990
991 if (uth->uu_lowpri_window) {
992 /*
993 * task is marked as a low priority I/O type
994 * and the I/O we issued while in flushing files on close
995 * collided with normal I/O operations...
996 * no need to throttle this thread since its going away
997 * but we do need to update our bookeeping w/r to throttled threads
998 */
999 throttle_lowpri_io(0);
1000 }
1001
1002 #if SYSV_SHM
1003 /* Close ref SYSV Shared memory*/
1004 if (p->vm_shm)
1005 shmexit(p);
1006 #endif
1007 #if SYSV_SEM
1008 /* Release SYSV semaphores */
1009 semexit(p);
1010 #endif
1011
1012 #if PSYNCH
1013 pth_proc_hashdelete(p);
1014 #endif /* PSYNCH */
1015
1016 sessp = proc_session(p);
1017 if (SESS_LEADER(p, sessp)) {
1018
1019 if (sessp->s_ttyvp != NULLVP) {
1020 struct vnode *ttyvp;
1021 int ttyvid;
1022 int cttyflag = 0;
1023 struct vfs_context context;
1024 struct tty *tp;
1025
1026 /*
1027 * Controlling process.
1028 * Signal foreground pgrp,
1029 * drain controlling terminal
1030 * and revoke access to controlling terminal.
1031 */
1032 session_lock(sessp);
1033 tp = SESSION_TP(sessp);
1034 if ((tp != TTY_NULL) && (tp->t_session == sessp)) {
1035 session_unlock(sessp);
1036
1037 /*
1038 * We're going to SIGHUP the foreground process
1039 * group. It can't change from this point on
1040 * until the revoke is complete.
1041 * The process group changes under both the tty
1042 * lock and proc_list_lock but we need only one
1043 */
1044 tty_lock(tp);
1045 ttysetpgrphup(tp);
1046 tty_unlock(tp);
1047
1048 tty_pgsignal(tp, SIGHUP, 1);
1049
1050 session_lock(sessp);
1051 tp = SESSION_TP(sessp);
1052 }
1053 cttyflag = sessp->s_flags & S_CTTYREF;
1054 sessp->s_flags &= ~S_CTTYREF;
1055 ttyvp = sessp->s_ttyvp;
1056 ttyvid = sessp->s_ttyvid;
1057 sessp->s_ttyvp = NULLVP;
1058 sessp->s_ttyvid = 0;
1059 sessp->s_ttyp = TTY_NULL;
1060 sessp->s_ttypgrpid = NO_PID;
1061 session_unlock(sessp);
1062
1063 if ((ttyvp != NULLVP) && (vnode_getwithvid(ttyvp, ttyvid) == 0)) {
1064 if (tp != TTY_NULL) {
1065 tty_lock(tp);
1066 (void) ttywait(tp);
1067 tty_unlock(tp);
1068 }
1069 context.vc_thread = proc_thread(p); /* XXX */
1070 context.vc_ucred = kauth_cred_proc_ref(p);
1071 VNOP_REVOKE(ttyvp, REVOKEALL, &context);
1072 if (cttyflag) {
1073 /*
1074 * Release the extra usecount taken in cttyopen.
1075 * usecount should be released after VNOP_REVOKE is called.
1076 * This usecount was taken to ensure that
1077 * the VNOP_REVOKE results in a close to
1078 * the tty since cttyclose is a no-op.
1079 */
1080 vnode_rele(ttyvp);
1081 }
1082 vnode_put(ttyvp);
1083 kauth_cred_unref(&context.vc_ucred);
1084 ttyvp = NULLVP;
1085 }
1086 if (tp) {
1087 /*
1088 * This is cleared even if not set. This is also done in
1089 * spec_close to ensure that the flag is cleared.
1090 */
1091 tty_lock(tp);
1092 ttyclrpgrphup(tp);
1093 tty_unlock(tp);
1094
1095 ttyfree(tp);
1096 }
1097 }
1098 session_lock(sessp);
1099 sessp->s_leader = NULL;
1100 session_unlock(sessp);
1101 }
1102 session_rele(sessp);
1103
1104 pg = proc_pgrp(p);
1105 fixjobc(p, pg, 0);
1106 pg_rele(pg);
1107
1108 p->p_rlimit[RLIMIT_FSIZE].rlim_cur = RLIM_INFINITY;
1109 (void)acct_process(p);
1110
1111 proc_list_lock();
1112
1113 if ((p->p_listflag & P_LIST_EXITCOUNT) == P_LIST_EXITCOUNT) {
1114 p->p_listflag &= ~P_LIST_EXITCOUNT;
1115 proc_shutdown_exitcount--;
1116 if (proc_shutdown_exitcount == 0)
1117 wakeup(&proc_shutdown_exitcount);
1118 }
1119
1120 /* wait till parentrefs are dropped and grant no more */
1121 proc_childdrainstart(p);
1122 while ((q = p->p_children.lh_first) != NULL) {
1123 int reparentedtoinit = (q->p_listflag & P_LIST_DEADPARENT) ? 1 : 0;
1124 if (q->p_stat == SZOMB) {
1125 if (p != q->p_pptr)
1126 panic("parent child linkage broken");
1127 /* check for sysctl zomb lookup */
1128 while ((q->p_listflag & P_LIST_WAITING) == P_LIST_WAITING) {
1129 msleep(&q->p_stat, proc_list_mlock, PWAIT, "waitcoll", 0);
1130 }
1131 q->p_listflag |= P_LIST_WAITING;
1132 /*
1133 * This is a named reference and it is not granted
1134 * if the reap is already in progress. So we get
1135 * the reference here exclusively and their can be
1136 * no waiters. So there is no need for a wakeup
1137 * after we are done. Also the reap frees the structure
1138 * and the proc struct cannot be used for wakeups as well.
1139 * It is safe to use q here as this is system reap
1140 */
1141 (void)reap_child_locked(p, q, 1, reparentedtoinit, 1, 0);
1142 } else {
1143 /*
1144 * Traced processes are killed
1145 * since their existence means someone is messing up.
1146 */
1147 if (q->p_lflag & P_LTRACED) {
1148 struct proc *opp;
1149
1150 /*
1151 * Take a reference on the child process to
1152 * ensure it doesn't exit and disappear between
1153 * the time we drop the list_lock and attempt
1154 * to acquire its proc_lock.
1155 */
1156 if (proc_ref_locked(q) != q)
1157 continue;
1158
1159 proc_list_unlock();
1160
1161 opp = proc_find(q->p_oppid);
1162 if (opp != PROC_NULL) {
1163 proc_list_lock();
1164 q->p_oppid = 0;
1165 proc_list_unlock();
1166 proc_reparentlocked(q, opp, 0, 0);
1167 proc_rele(opp);
1168 } else {
1169 /* original parent exited while traced */
1170 proc_list_lock();
1171 q->p_listflag |= P_LIST_DEADPARENT;
1172 q->p_oppid = 0;
1173 proc_list_unlock();
1174 proc_reparentlocked(q, initproc, 0, 0);
1175 }
1176
1177 proc_lock(q);
1178 q->p_lflag &= ~P_LTRACED;
1179
1180 if (q->sigwait_thread) {
1181 thread_t thread = q->sigwait_thread;
1182
1183 proc_unlock(q);
1184 /*
1185 * The sigwait_thread could be stopped at a
1186 * breakpoint. Wake it up to kill.
1187 * Need to do this as it could be a thread which is not
1188 * the first thread in the task. So any attempts to kill
1189 * the process would result into a deadlock on q->sigwait.
1190 */
1191 thread_resume(thread);
1192 clear_wait(thread, THREAD_INTERRUPTED);
1193 threadsignal(thread, SIGKILL, 0, TRUE);
1194 } else {
1195 proc_unlock(q);
1196 }
1197
1198 psignal(q, SIGKILL);
1199 proc_list_lock();
1200 proc_rele_locked(q);
1201 } else {
1202 q->p_listflag |= P_LIST_DEADPARENT;
1203 proc_reparentlocked(q, initproc, 0, 1);
1204 }
1205 }
1206 }
1207
1208 proc_childdrainend(p);
1209 proc_list_unlock();
1210
1211 /*
1212 * Release reference to text vnode
1213 */
1214 tvp = p->p_textvp;
1215 p->p_textvp = NULL;
1216 if (tvp != NULLVP) {
1217 vnode_rele(tvp);
1218 }
1219
1220 /*
1221 * Save exit status and final rusage info, adding in child rusage
1222 * info and self times. If we were unable to allocate a zombie
1223 * structure, this information is lost.
1224 */
1225 if (p->p_ru != NULL) {
1226 calcru(p, &p->p_stats->p_ru.ru_utime, &p->p_stats->p_ru.ru_stime, NULL);
1227 p->p_ru->ru = p->p_stats->p_ru;
1228
1229 ruadd(&(p->p_ru->ru), &p->p_stats->p_cru);
1230 }
1231
1232 /*
1233 * Free up profiling buffers.
1234 */
1235 {
1236 struct uprof *p0 = &p->p_stats->p_prof, *p1, *pn;
1237
1238 p1 = p0->pr_next;
1239 p0->pr_next = NULL;
1240 p0->pr_scale = 0;
1241
1242 for (; p1 != NULL; p1 = pn) {
1243 pn = p1->pr_next;
1244 kfree(p1, sizeof *p1);
1245 }
1246 }
1247
1248 proc_free_realitimer(p);
1249
1250 /*
1251 * Other substructures are freed from wait().
1252 */
1253 FREE_ZONE(p->p_stats, sizeof *p->p_stats, M_PSTATS);
1254 p->p_stats = NULL;
1255
1256 FREE_ZONE(p->p_sigacts, sizeof *p->p_sigacts, M_SIGACTS);
1257 p->p_sigacts = NULL;
1258
1259 proc_limitdrop(p, 1);
1260 p->p_limit = NULL;
1261
1262 vm_purgeable_disown(p->task);
1263
1264 /*
1265 * Finish up by terminating the task
1266 * and halt this thread (only if a
1267 * member of the task exiting).
1268 */
1269 p->task = TASK_NULL;
1270 set_bsdtask_info(task, NULL);
1271
1272 knote_hint = NOTE_EXIT | (p->p_xstat & 0xffff);
1273 proc_knote(p, knote_hint);
1274
1275 /* mark the thread as the one that is doing proc_exit
1276 * no need to hold proc lock in uthread_free
1277 */
1278 uth->uu_flag |= UT_PROCEXIT;
1279 /*
1280 * Notify parent that we're gone.
1281 */
1282 pp = proc_parent(p);
1283 if (pp->p_flag & P_NOCLDWAIT) {
1284
1285 if (p->p_ru != NULL) {
1286 proc_lock(pp);
1287 #if 3839178
1288 /*
1289 * If the parent is ignoring SIGCHLD, then POSIX requires
1290 * us to not add the resource usage to the parent process -
1291 * we are only going to hand it off to init to get reaped.
1292 * We should contest the standard in this case on the basis
1293 * of RLIMIT_CPU.
1294 */
1295 #else /* !3839178 */
1296 /*
1297 * Add child resource usage to parent before giving
1298 * zombie to init. If we were unable to allocate a
1299 * zombie structure, this information is lost.
1300 */
1301 ruadd(&pp->p_stats->p_cru, &p->p_ru->ru);
1302 #endif /* !3839178 */
1303 update_rusage_info_child(&pp->p_stats->ri_child, &p->p_ru->ri);
1304 proc_unlock(pp);
1305 }
1306
1307 /* kernel can reap this one, no need to move it to launchd */
1308 proc_list_lock();
1309 p->p_listflag |= P_LIST_DEADPARENT;
1310 proc_list_unlock();
1311 }
1312 if ((p->p_listflag & P_LIST_DEADPARENT) == 0 || p->p_oppid) {
1313 if (pp != initproc) {
1314 proc_lock(pp);
1315 pp->si_pid = p->p_pid;
1316 pp->si_status = p->p_xstat;
1317 pp->si_code = CLD_EXITED;
1318 /*
1319 * p_ucred usage is safe as it is an exiting process
1320 * and reference is dropped in reap
1321 */
1322 pp->si_uid = kauth_cred_getruid(p->p_ucred);
1323 proc_unlock(pp);
1324 }
1325 /* mark as a zombie */
1326 /* No need to take proc lock as all refs are drained and
1327 * no one except parent (reaping ) can look at this.
1328 * The write is to an int and is coherent. Also parent is
1329 * keyed off of list lock for reaping
1330 */
1331 KERNEL_DEBUG_CONSTANT_IST(KDEBUG_COMMON,
1332 BSDDBG_CODE(DBG_BSD_PROC, BSD_PROC_EXIT) | DBG_FUNC_END,
1333 pid, exitval, 0, 0, 0);
1334 p->p_stat = SZOMB;
1335 /*
1336 * The current process can be reaped so, no one
1337 * can depend on this
1338 */
1339
1340 psignal(pp, SIGCHLD);
1341
1342 /* and now wakeup the parent */
1343 proc_list_lock();
1344 wakeup((caddr_t)pp);
1345 proc_list_unlock();
1346 } else {
1347 /* should be fine as parent proc would be initproc */
1348 /* mark as a zombie */
1349 /* No need to take proc lock as all refs are drained and
1350 * no one except parent (reaping ) can look at this.
1351 * The write is to an int and is coherent. Also parent is
1352 * keyed off of list lock for reaping
1353 */
1354 proc_list_lock();
1355 KERNEL_DEBUG_CONSTANT_IST(KDEBUG_COMMON,
1356 BSDDBG_CODE(DBG_BSD_PROC, BSD_PROC_EXIT) | DBG_FUNC_END,
1357 pid, exitval, 0, 0, 0);
1358 /* check for sysctl zomb lookup */
1359 while ((p->p_listflag & P_LIST_WAITING) == P_LIST_WAITING) {
1360 msleep(&p->p_stat, proc_list_mlock, PWAIT, "waitcoll", 0);
1361 }
1362 /* safe to use p as this is a system reap */
1363 p->p_stat = SZOMB;
1364 p->p_listflag |= P_LIST_WAITING;
1365
1366 /*
1367 * This is a named reference and it is not granted
1368 * if the reap is already in progress. So we get
1369 * the reference here exclusively and their can be
1370 * no waiters. So there is no need for a wakeup
1371 * after we are done. AlsO the reap frees the structure
1372 * and the proc struct cannot be used for wakeups as well.
1373 * It is safe to use p here as this is system reap
1374 */
1375 (void)reap_child_locked(pp, p, 1, 0, 1, 1);
1376 /* list lock dropped by reap_child_locked */
1377 }
1378 if (uth->uu_lowpri_window) {
1379 /*
1380 * task is marked as a low priority I/O type and we've
1381 * somehow picked up another throttle during exit processing...
1382 * no need to throttle this thread since its going away
1383 * but we do need to update our bookeeping w/r to throttled threads
1384 */
1385 throttle_lowpri_io(0);
1386 }
1387
1388 proc_rele(pp);
1389
1390 }
1391
1392
1393 /*
1394 * reap_child_locked
1395 *
1396 * Description: Given a process from which all status information needed
1397 * has already been extracted, if the process is a ptrace
1398 * attach process, detach it and give it back to its real
1399 * parent, else recover all resources remaining associated
1400 * with it.
1401 *
1402 * Parameters: proc_t parent Parent of process being reaped
1403 * proc_t child Process to reap
1404 *
1405 * Returns: 0 Process was not reaped because it
1406 * came from an attach
1407 * 1 Process was reaped
1408 */
1409 static int
1410 reap_child_locked(proc_t parent, proc_t child, int deadparent, int reparentedtoinit, int locked, int droplock)
1411 {
1412 proc_t trace_parent = PROC_NULL; /* Traced parent process, if tracing */
1413
1414 if (locked == 1)
1415 proc_list_unlock();
1416
1417 /*
1418 * If we got the child via a ptrace 'attach',
1419 * we need to give it back to the old parent.
1420 *
1421 * Exception: someone who has been reparented to launchd before being
1422 * ptraced can simply be reaped, refer to radar 5677288
1423 * p_oppid -> ptraced
1424 * trace_parent == initproc -> away from launchd
1425 * reparentedtoinit -> came to launchd by reparenting
1426 */
1427 if (child->p_oppid) {
1428 int knote_hint;
1429 pid_t oppid;
1430
1431 proc_lock(child);
1432 oppid = child->p_oppid;
1433 child->p_oppid = 0;
1434 knote_hint = NOTE_EXIT | (child->p_xstat & 0xffff);
1435 proc_unlock(child);
1436
1437 if ((trace_parent = proc_find(oppid))
1438 && !((trace_parent == initproc) && reparentedtoinit)) {
1439
1440 if (trace_parent != initproc) {
1441 /*
1442 * proc internal fileds and p_ucred usage safe
1443 * here as child is dead and is not reaped or
1444 * reparented yet
1445 */
1446 proc_lock(trace_parent);
1447 trace_parent->si_pid = child->p_pid;
1448 trace_parent->si_status = child->p_xstat;
1449 trace_parent->si_code = CLD_CONTINUED;
1450 trace_parent->si_uid = kauth_cred_getruid(child->p_ucred);
1451 proc_unlock(trace_parent);
1452 }
1453 proc_reparentlocked(child, trace_parent, 1, 0);
1454
1455 /* resend knote to original parent (and others) after reparenting */
1456 proc_knote(child, knote_hint);
1457
1458 psignal(trace_parent, SIGCHLD);
1459 proc_list_lock();
1460 wakeup((caddr_t)trace_parent);
1461 child->p_listflag &= ~P_LIST_WAITING;
1462 wakeup(&child->p_stat);
1463 proc_list_unlock();
1464 proc_rele(trace_parent);
1465 if ((locked == 1) && (droplock == 0))
1466 proc_list_lock();
1467 return (0);
1468 }
1469
1470 /*
1471 * If we can't reparent (e.g. the original parent exited while child was being debugged, or
1472 * original parent is the same as the debugger currently exiting), we still need to satisfy
1473 * the knote lifecycle for other observers on the system. While the debugger was attached,
1474 * the NOTE_EXIT would not have been broadcast during initial child termination.
1475 */
1476 proc_knote(child, knote_hint);
1477
1478 if (trace_parent != PROC_NULL) {
1479 proc_rele(trace_parent);
1480 }
1481 }
1482
1483 #pragma clang diagnostic push
1484 #pragma clang diagnostic ignored "-Wdeprecated-declarations"
1485 proc_knote(child, NOTE_REAP);
1486 #pragma clang diagnostic pop
1487
1488 proc_knote_drain(child);
1489
1490 child->p_xstat = 0;
1491 if (child->p_ru) {
1492 proc_lock(parent);
1493 #if 3839178
1494 /*
1495 * If the parent is ignoring SIGCHLD, then POSIX requires
1496 * us to not add the resource usage to the parent process -
1497 * we are only going to hand it off to init to get reaped.
1498 * We should contest the standard in this case on the basis
1499 * of RLIMIT_CPU.
1500 */
1501 if (!(parent->p_flag & P_NOCLDWAIT))
1502 #endif /* 3839178 */
1503 ruadd(&parent->p_stats->p_cru, &child->p_ru->ru);
1504 update_rusage_info_child(&parent->p_stats->ri_child, &child->p_ru->ri);
1505 proc_unlock(parent);
1506 FREE_ZONE(child->p_ru, sizeof *child->p_ru, M_ZOMBIE);
1507 child->p_ru = NULL;
1508 } else {
1509 printf("Warning : lost p_ru for %s\n", child->p_comm);
1510 }
1511
1512 AUDIT_SESSION_PROCEXIT(child);
1513
1514 /*
1515 * Decrement the count of procs running with this uid.
1516 * p_ucred usage is safe here as it is an exited process.
1517 * and refernce is dropped after these calls down below
1518 * (locking protection is provided by list lock held in chgproccnt)
1519 */
1520 #if CONFIG_PERSONAS
1521 /*
1522 * persona_proc_drop calls chgproccnt(-1) on the persona uid,
1523 * and (+1) on the child->p_ucred uid
1524 */
1525 persona_proc_drop(child);
1526 #endif
1527 (void)chgproccnt(kauth_cred_getruid(child->p_ucred), -1);
1528
1529 os_reason_free(child->p_exit_reason);
1530
1531 /*
1532 * Free up credentials.
1533 */
1534 if (IS_VALID_CRED(child->p_ucred)) {
1535 kauth_cred_unref(&child->p_ucred);
1536 }
1537
1538 /* XXXX Note NOT SAFE TO USE p_ucred from this point onwards */
1539
1540 /*
1541 * Finally finished with old proc entry.
1542 * Unlink it from its process group and free it.
1543 */
1544 leavepgrp(child);
1545
1546 proc_list_lock();
1547 LIST_REMOVE(child, p_list); /* off zombproc */
1548 parent->p_childrencnt--;
1549 LIST_REMOVE(child, p_sibling);
1550 /* If there are no more children wakeup parent */
1551 if ((deadparent != 0) && (LIST_EMPTY(&parent->p_children)))
1552 wakeup((caddr_t)parent); /* with list lock held */
1553 child->p_listflag &= ~P_LIST_WAITING;
1554 wakeup(&child->p_stat);
1555
1556 /* Take it out of process hash */
1557 LIST_REMOVE(child, p_hash);
1558 child->p_listflag &= ~P_LIST_INHASH;
1559 proc_checkdeadrefs(child);
1560 nprocs--;
1561
1562 if (deadparent) {
1563 /*
1564 * If a child zombie is being reaped because its parent
1565 * is exiting, make sure we update the list flag
1566 */
1567 child->p_listflag |= P_LIST_DEADPARENT;
1568 }
1569
1570 proc_list_unlock();
1571
1572 #if CONFIG_FINE_LOCK_GROUPS
1573 lck_mtx_destroy(&child->p_mlock, proc_mlock_grp);
1574 lck_mtx_destroy(&child->p_fdmlock, proc_fdmlock_grp);
1575 lck_mtx_destroy(&child->p_ucred_mlock, proc_ucred_mlock_grp);
1576 #if CONFIG_DTRACE
1577 lck_mtx_destroy(&child->p_dtrace_sprlock, proc_lck_grp);
1578 #endif
1579 lck_spin_destroy(&child->p_slock, proc_slock_grp);
1580 #else /* CONFIG_FINE_LOCK_GROUPS */
1581 lck_mtx_destroy(&child->p_mlock, proc_lck_grp);
1582 lck_mtx_destroy(&child->p_fdmlock, proc_lck_grp);
1583 lck_mtx_destroy(&child->p_ucred_mlock, proc_lck_grp);
1584 #if CONFIG_DTRACE
1585 lck_mtx_destroy(&child->p_dtrace_sprlock, proc_lck_grp);
1586 #endif
1587 lck_spin_destroy(&child->p_slock, proc_lck_grp);
1588 #endif /* CONFIG_FINE_LOCK_GROUPS */
1589
1590 FREE_ZONE(child, sizeof *child, M_PROC);
1591 if ((locked == 1) && (droplock == 0))
1592 proc_list_lock();
1593
1594 return (1);
1595 }
1596
1597
1598 int
1599 wait1continue(int result)
1600 {
1601 proc_t p;
1602 thread_t thread;
1603 uthread_t uth;
1604 struct _wait4_data *wait4_data;
1605 struct wait4_nocancel_args *uap;
1606 int *retval;
1607
1608 if (result)
1609 return(result);
1610
1611 p = current_proc();
1612 thread = current_thread();
1613 uth = (struct uthread *)get_bsdthread_info(thread);
1614
1615 wait4_data = &uth->uu_kevent.uu_wait4_data;
1616 uap = wait4_data->args;
1617 retval = wait4_data->retval;
1618 return(wait4_nocancel(p, uap, retval));
1619 }
1620
1621 int
1622 wait4(proc_t q, struct wait4_args *uap, int32_t *retval)
1623 {
1624 __pthread_testcancel(1);
1625 return(wait4_nocancel(q, (struct wait4_nocancel_args *)uap, retval));
1626 }
1627
1628 int
1629 wait4_nocancel(proc_t q, struct wait4_nocancel_args *uap, int32_t *retval)
1630 {
1631 int nfound;
1632 int sibling_count;
1633 proc_t p;
1634 int status, error;
1635 uthread_t uth;
1636 struct _wait4_data *wait4_data;
1637
1638 AUDIT_ARG(pid, uap->pid);
1639
1640 if (uap->pid == 0)
1641 uap->pid = -q->p_pgrpid;
1642
1643 loop:
1644 proc_list_lock();
1645 loop1:
1646 nfound = 0;
1647 sibling_count = 0;
1648
1649 PCHILDREN_FOREACH(q, p) {
1650 if ( p->p_sibling.le_next != 0 )
1651 sibling_count++;
1652 if (uap->pid != WAIT_ANY &&
1653 p->p_pid != uap->pid &&
1654 p->p_pgrpid != -(uap->pid))
1655 continue;
1656
1657 nfound++;
1658
1659 /* XXX This is racy because we don't get the lock!!!! */
1660
1661 if (p->p_listflag & P_LIST_WAITING) {
1662 (void)msleep(&p->p_stat, proc_list_mlock, PWAIT, "waitcoll", 0);
1663 goto loop1;
1664 }
1665 p->p_listflag |= P_LIST_WAITING; /* only allow single thread to wait() */
1666
1667
1668 if (p->p_stat == SZOMB) {
1669 int reparentedtoinit = (p->p_listflag & P_LIST_DEADPARENT) ? 1 : 0;
1670
1671 proc_list_unlock();
1672 #if CONFIG_MACF
1673 if ((error = mac_proc_check_wait(q, p)) != 0)
1674 goto out;
1675 #endif
1676 retval[0] = p->p_pid;
1677 if (uap->status) {
1678 /* Legacy apps expect only 8 bits of status */
1679 status = 0xffff & p->p_xstat; /* convert to int */
1680 error = copyout((caddr_t)&status,
1681 uap->status,
1682 sizeof(status));
1683 if (error)
1684 goto out;
1685 }
1686 if (uap->rusage) {
1687 if (p->p_ru == NULL) {
1688 error = ENOMEM;
1689 } else {
1690 if (IS_64BIT_PROCESS(q)) {
1691 struct user64_rusage my_rusage;
1692 munge_user64_rusage(&p->p_ru->ru, &my_rusage);
1693 error = copyout((caddr_t)&my_rusage,
1694 uap->rusage,
1695 sizeof (my_rusage));
1696 }
1697 else {
1698 struct user32_rusage my_rusage;
1699 munge_user32_rusage(&p->p_ru->ru, &my_rusage);
1700 error = copyout((caddr_t)&my_rusage,
1701 uap->rusage,
1702 sizeof (my_rusage));
1703 }
1704 }
1705 /* information unavailable? */
1706 if (error)
1707 goto out;
1708 }
1709
1710 /* Conformance change for 6577252.
1711 * When SIGCHLD is blocked and wait() returns because the status
1712 * of a child process is available and there are no other
1713 * children processes, then any pending SIGCHLD signal is cleared.
1714 */
1715 if ( sibling_count == 0 ) {
1716 int mask = sigmask(SIGCHLD);
1717 uth = current_uthread();
1718
1719 if ( (uth->uu_sigmask & mask) != 0 ) {
1720 /* we are blocking SIGCHLD signals. clear any pending SIGCHLD.
1721 * This locking looks funny but it is protecting access to the
1722 * thread via p_uthlist.
1723 */
1724 proc_lock(q);
1725 uth->uu_siglist &= ~mask; /* clear pending signal */
1726 proc_unlock(q);
1727 }
1728 }
1729
1730 /* Clean up */
1731 (void)reap_child_locked(q, p, 0, reparentedtoinit, 0, 0);
1732
1733 return (0);
1734 }
1735 if (p->p_stat == SSTOP && (p->p_lflag & P_LWAITED) == 0 &&
1736 (p->p_lflag & P_LTRACED || uap->options & WUNTRACED)) {
1737 proc_list_unlock();
1738 #if CONFIG_MACF
1739 if ((error = mac_proc_check_wait(q, p)) != 0)
1740 goto out;
1741 #endif
1742 proc_lock(p);
1743 p->p_lflag |= P_LWAITED;
1744 proc_unlock(p);
1745 retval[0] = p->p_pid;
1746 if (uap->status) {
1747 status = W_STOPCODE(p->p_xstat);
1748 error = copyout((caddr_t)&status,
1749 uap->status,
1750 sizeof(status));
1751 } else
1752 error = 0;
1753 goto out;
1754 }
1755 /*
1756 * If we are waiting for continued processses, and this
1757 * process was continued
1758 */
1759 if ((uap->options & WCONTINUED) &&
1760 (p->p_flag & P_CONTINUED)) {
1761 proc_list_unlock();
1762 #if CONFIG_MACF
1763 if ((error = mac_proc_check_wait(q, p)) != 0)
1764 goto out;
1765 #endif
1766
1767 /* Prevent other process for waiting for this event */
1768 OSBitAndAtomic(~((uint32_t)P_CONTINUED), &p->p_flag);
1769 retval[0] = p->p_pid;
1770 if (uap->status) {
1771 status = W_STOPCODE(SIGCONT);
1772 error = copyout((caddr_t)&status,
1773 uap->status,
1774 sizeof(status));
1775 } else
1776 error = 0;
1777 goto out;
1778 }
1779 p->p_listflag &= ~P_LIST_WAITING;
1780 wakeup(&p->p_stat);
1781 }
1782 /* list lock is held when we get here any which way */
1783 if (nfound == 0) {
1784 proc_list_unlock();
1785 return (ECHILD);
1786 }
1787
1788 if (uap->options & WNOHANG) {
1789 retval[0] = 0;
1790 proc_list_unlock();
1791 return (0);
1792 }
1793
1794 /* Save arguments for continuation. Backing storage is in uthread->uu_arg, and will not be deallocated */
1795 uth = current_uthread();
1796 wait4_data = &uth->uu_kevent.uu_wait4_data;
1797 wait4_data->args = uap;
1798 wait4_data->retval = retval;
1799
1800 if ((error = msleep0((caddr_t)q, proc_list_mlock, PWAIT | PCATCH | PDROP, "wait", 0, wait1continue)))
1801 return (error);
1802
1803 goto loop;
1804 out:
1805 proc_list_lock();
1806 p->p_listflag &= ~P_LIST_WAITING;
1807 wakeup(&p->p_stat);
1808 proc_list_unlock();
1809 return (error);
1810 }
1811
1812 #if DEBUG
1813 #define ASSERT_LCK_MTX_OWNED(lock) \
1814 lck_mtx_assert(lock, LCK_MTX_ASSERT_OWNED)
1815 #else
1816 #define ASSERT_LCK_MTX_OWNED(lock) /* nothing */
1817 #endif
1818
1819 int
1820 waitidcontinue(int result)
1821 {
1822 proc_t p;
1823 thread_t thread;
1824 uthread_t uth;
1825 struct _waitid_data *waitid_data;
1826 struct waitid_nocancel_args *uap;
1827 int *retval;
1828
1829 if (result)
1830 return (result);
1831
1832 p = current_proc();
1833 thread = current_thread();
1834 uth = (struct uthread *)get_bsdthread_info(thread);
1835
1836 waitid_data = &uth->uu_kevent.uu_waitid_data;
1837 uap = waitid_data->args;
1838 retval = waitid_data->retval;
1839 return(waitid_nocancel(p, uap, retval));
1840 }
1841
1842 /*
1843 * Description: Suspend the calling thread until one child of the process
1844 * containing the calling thread changes state.
1845 *
1846 * Parameters: uap->idtype one of P_PID, P_PGID, P_ALL
1847 * uap->id pid_t or gid_t or ignored
1848 * uap->infop Address of siginfo_t struct in
1849 * user space into which to return status
1850 * uap->options flag values
1851 *
1852 * Returns: 0 Success
1853 * !0 Error returning status to user space
1854 */
1855 int
1856 waitid(proc_t q, struct waitid_args *uap, int32_t *retval)
1857 {
1858 __pthread_testcancel(1);
1859 return (waitid_nocancel(q, (struct waitid_nocancel_args *)uap, retval));
1860 }
1861
1862 int
1863 waitid_nocancel(proc_t q, struct waitid_nocancel_args *uap,
1864 __unused int32_t *retval)
1865 {
1866 user_siginfo_t siginfo; /* siginfo data to return to caller */
1867 boolean_t caller64 = IS_64BIT_PROCESS(q);
1868 int nfound;
1869 proc_t p;
1870 int error;
1871 uthread_t uth;
1872 struct _waitid_data *waitid_data;
1873
1874 if (uap->options == 0 ||
1875 (uap->options & ~(WNOHANG|WNOWAIT|WCONTINUED|WSTOPPED|WEXITED)))
1876 return (EINVAL); /* bits set that aren't recognized */
1877
1878 switch (uap->idtype) {
1879 case P_PID: /* child with process ID equal to... */
1880 case P_PGID: /* child with process group ID equal to... */
1881 if (((int)uap->id) < 0)
1882 return (EINVAL);
1883 break;
1884 case P_ALL: /* any child */
1885 break;
1886 }
1887
1888 loop:
1889 proc_list_lock();
1890 loop1:
1891 nfound = 0;
1892
1893 PCHILDREN_FOREACH(q, p) {
1894 switch (uap->idtype) {
1895 case P_PID: /* child with process ID equal to... */
1896 if (p->p_pid != (pid_t)uap->id)
1897 continue;
1898 break;
1899 case P_PGID: /* child with process group ID equal to... */
1900 if (p->p_pgrpid != (pid_t)uap->id)
1901 continue;
1902 break;
1903 case P_ALL: /* any child */
1904 break;
1905 }
1906
1907 /* XXX This is racy because we don't get the lock!!!! */
1908
1909 /*
1910 * Wait collision; go to sleep and restart; used to maintain
1911 * the single return for waited process guarantee.
1912 */
1913 if (p->p_listflag & P_LIST_WAITING) {
1914 (void) msleep(&p->p_stat, proc_list_mlock,
1915 PWAIT, "waitidcoll", 0);
1916 goto loop1;
1917 }
1918 p->p_listflag |= P_LIST_WAITING; /* mark busy */
1919
1920 nfound++;
1921
1922 bzero(&siginfo, sizeof (siginfo));
1923
1924 switch (p->p_stat) {
1925 case SZOMB: /* Exited */
1926 if (!(uap->options & WEXITED))
1927 break;
1928 proc_list_unlock();
1929 #if CONFIG_MACF
1930 if ((error = mac_proc_check_wait(q, p)) != 0)
1931 goto out;
1932 #endif
1933 siginfo.si_signo = SIGCHLD;
1934 siginfo.si_pid = p->p_pid;
1935 siginfo.si_status = WEXITSTATUS(p->p_xstat);
1936 if (WIFSIGNALED(p->p_xstat)) {
1937 siginfo.si_code = WCOREDUMP(p->p_xstat) ?
1938 CLD_DUMPED : CLD_KILLED;
1939 } else
1940 siginfo.si_code = CLD_EXITED;
1941
1942 if ((error = copyoutsiginfo(&siginfo,
1943 caller64, uap->infop)) != 0)
1944 goto out;
1945
1946 /* Prevent other process for waiting for this event? */
1947 if (!(uap->options & WNOWAIT)) {
1948 (void) reap_child_locked(q, p, 0, 0, 0, 0);
1949 return (0);
1950 }
1951 goto out;
1952
1953 case SSTOP: /* Stopped */
1954 /*
1955 * If we are not interested in stopped processes, then
1956 * ignore this one.
1957 */
1958 if (!(uap->options & WSTOPPED))
1959 break;
1960
1961 /*
1962 * If someone has already waited it, we lost a race
1963 * to be the one to return status.
1964 */
1965 if ((p->p_lflag & P_LWAITED) != 0)
1966 break;
1967 proc_list_unlock();
1968 #if CONFIG_MACF
1969 if ((error = mac_proc_check_wait(q, p)) != 0)
1970 goto out;
1971 #endif
1972 siginfo.si_signo = SIGCHLD;
1973 siginfo.si_pid = p->p_pid;
1974 siginfo.si_status = p->p_xstat; /* signal number */
1975 siginfo.si_code = CLD_STOPPED;
1976
1977 if ((error = copyoutsiginfo(&siginfo,
1978 caller64, uap->infop)) != 0)
1979 goto out;
1980
1981 /* Prevent other process for waiting for this event? */
1982 if (!(uap->options & WNOWAIT)) {
1983 proc_lock(p);
1984 p->p_lflag |= P_LWAITED;
1985 proc_unlock(p);
1986 }
1987 goto out;
1988
1989 default: /* All other states => Continued */
1990 if (!(uap->options & WCONTINUED))
1991 break;
1992
1993 /*
1994 * If the flag isn't set, then this process has not
1995 * been stopped and continued, or the status has
1996 * already been reaped by another caller of waitid().
1997 */
1998 if ((p->p_flag & P_CONTINUED) == 0)
1999 break;
2000 proc_list_unlock();
2001 #if CONFIG_MACF
2002 if ((error = mac_proc_check_wait(q, p)) != 0)
2003 goto out;
2004 #endif
2005 siginfo.si_signo = SIGCHLD;
2006 siginfo.si_code = CLD_CONTINUED;
2007 proc_lock(p);
2008 siginfo.si_pid = p->p_contproc;
2009 siginfo.si_status = p->p_xstat;
2010 proc_unlock(p);
2011
2012 if ((error = copyoutsiginfo(&siginfo,
2013 caller64, uap->infop)) != 0)
2014 goto out;
2015
2016 /* Prevent other process for waiting for this event? */
2017 if (!(uap->options & WNOWAIT)) {
2018 OSBitAndAtomic(~((uint32_t)P_CONTINUED),
2019 &p->p_flag);
2020 }
2021 goto out;
2022 }
2023 ASSERT_LCK_MTX_OWNED(proc_list_mlock);
2024
2025 /* Not a process we are interested in; go on to next child */
2026
2027 p->p_listflag &= ~P_LIST_WAITING;
2028 wakeup(&p->p_stat);
2029 }
2030 ASSERT_LCK_MTX_OWNED(proc_list_mlock);
2031
2032 /* No child processes that could possibly satisfy the request? */
2033
2034 if (nfound == 0) {
2035 proc_list_unlock();
2036 return (ECHILD);
2037 }
2038
2039 if (uap->options & WNOHANG) {
2040 proc_list_unlock();
2041 #if CONFIG_MACF
2042 if ((error = mac_proc_check_wait(q, p)) != 0)
2043 return (error);
2044 #endif
2045 /*
2046 * The state of the siginfo structure in this case
2047 * is undefined. Some implementations bzero it, some
2048 * (like here) leave it untouched for efficiency.
2049 *
2050 * Thus the most portable check for "no matching pid with
2051 * WNOHANG" is to store a zero into si_pid before
2052 * invocation, then check for a non-zero value afterwards.
2053 */
2054 return (0);
2055 }
2056
2057 /* Save arguments for continuation. Backing storage is in uthread->uu_arg, and will not be deallocated */
2058 uth = current_uthread();
2059 waitid_data = &uth->uu_kevent.uu_waitid_data;
2060 waitid_data->args = uap;
2061 waitid_data->retval = retval;
2062
2063 if ((error = msleep0(q, proc_list_mlock,
2064 PWAIT | PCATCH | PDROP, "waitid", 0, waitidcontinue)) != 0)
2065 return (error);
2066
2067 goto loop;
2068 out:
2069 proc_list_lock();
2070 p->p_listflag &= ~P_LIST_WAITING;
2071 wakeup(&p->p_stat);
2072 proc_list_unlock();
2073 return (error);
2074 }
2075
2076 /*
2077 * make process 'parent' the new parent of process 'child'.
2078 */
2079 void
2080 proc_reparentlocked(proc_t child, proc_t parent, int cansignal, int locked)
2081 {
2082 proc_t oldparent = PROC_NULL;
2083
2084 if (child->p_pptr == parent)
2085 return;
2086
2087 if (locked == 0)
2088 proc_list_lock();
2089
2090 oldparent = child->p_pptr;
2091 #if __PROC_INTERNAL_DEBUG
2092 if (oldparent == PROC_NULL)
2093 panic("proc_reparent: process %p does not have a parent\n", child);
2094 #endif
2095
2096 LIST_REMOVE(child, p_sibling);
2097 #if __PROC_INTERNAL_DEBUG
2098 if (oldparent->p_childrencnt == 0)
2099 panic("process children count already 0\n");
2100 #endif
2101 oldparent->p_childrencnt--;
2102 #if __PROC_INTERNAL_DEBUG1
2103 if (oldparent->p_childrencnt < 0)
2104 panic("process children count -ve\n");
2105 #endif
2106 LIST_INSERT_HEAD(&parent->p_children, child, p_sibling);
2107 parent->p_childrencnt++;
2108 child->p_pptr = parent;
2109 child->p_ppid = parent->p_pid;
2110
2111 proc_list_unlock();
2112
2113 if ((cansignal != 0) && (initproc == parent) && (child->p_stat == SZOMB))
2114 psignal(initproc, SIGCHLD);
2115 if (locked == 1)
2116 proc_list_lock();
2117 }
2118
2119 /*
2120 * Exit: deallocate address space and other resources, change proc state
2121 * to zombie, and unlink proc from allproc and parent's lists. Save exit
2122 * status and rusage for wait(). Check for child processes and orphan them.
2123 */
2124
2125 void
2126 vfork_exit(proc_t p, int rv)
2127 {
2128 vfork_exit_internal(p, rv, 0);
2129 }
2130
2131 void
2132 vfork_exit_internal(proc_t p, int rv, int forceexit)
2133 {
2134 thread_t self = current_thread();
2135 #ifdef FIXME
2136 struct task *task = p->task;
2137 #endif
2138 struct uthread *ut;
2139
2140 /*
2141 * If a thread in this task has already
2142 * called exit(), then halt any others
2143 * right here.
2144 */
2145
2146 ut = get_bsdthread_info(self);
2147
2148
2149 proc_lock(p);
2150 if ((p->p_lflag & P_LPEXIT) == P_LPEXIT) {
2151 /*
2152 * This happens when a parent exits/killed and vfork is in progress
2153 * other threads. But shutdown code for ex has already called exit1()
2154 */
2155 proc_unlock(p);
2156 return;
2157 }
2158 p->p_lflag |= (P_LEXIT | P_LPEXIT);
2159 proc_unlock(p);
2160
2161 if (forceexit == 0) {
2162 /*
2163 * parent of a vfork child has already called exit() and the
2164 * thread that has vfork in proress terminates. So there is no
2165 * separate address space here and it has already been marked for
2166 * termination. This was never covered before and could cause problems
2167 * if we block here for outside code.
2168 */
2169 /* Notify the perf server */
2170 (void)sys_perf_notify(self, p->p_pid);
2171 }
2172
2173 /*
2174 * Remove proc from allproc queue and from pidhash chain.
2175 * Need to do this before we do anything that can block.
2176 * Not doing causes things like mount() find this on allproc
2177 * in partially cleaned state.
2178 */
2179
2180 proc_list_lock();
2181
2182 #if CONFIG_MEMORYSTATUS
2183 memorystatus_remove(p, TRUE);
2184 #endif
2185
2186 LIST_REMOVE(p, p_list);
2187 LIST_INSERT_HEAD(&zombproc, p, p_list); /* Place onto zombproc. */
2188 /* will not be visible via proc_find */
2189 p->p_listflag |= P_LIST_EXITED;
2190
2191 proc_list_unlock();
2192
2193 proc_lock(p);
2194 p->p_xstat = rv;
2195 p->p_lflag &= ~(P_LTRACED | P_LPPWAIT);
2196 p->p_sigignore = ~0;
2197 proc_unlock(p);
2198
2199 proc_free_realitimer(p);
2200
2201 ut->uu_siglist = 0;
2202
2203 vproc_exit(p);
2204 }
2205
2206 void
2207 vproc_exit(proc_t p)
2208 {
2209 proc_t q;
2210 proc_t pp;
2211
2212 vnode_t tvp;
2213 #ifdef FIXME
2214 struct task *task = p->task;
2215 #endif
2216 struct pgrp * pg;
2217 struct session *sessp;
2218 struct rusage_superset *rup;
2219
2220 /* XXX Zombie allocation may fail, in which case stats get lost */
2221 MALLOC_ZONE(rup, struct rusage_superset *,
2222 sizeof (*rup), M_ZOMBIE, M_WAITOK);
2223
2224 proc_refdrain(p);
2225
2226 /*
2227 * Close open files and release open-file table.
2228 * This may block!
2229 */
2230 fdfree(p);
2231
2232 sessp = proc_session(p);
2233 if (SESS_LEADER(p, sessp)) {
2234
2235 if (sessp->s_ttyvp != NULLVP) {
2236 struct vnode *ttyvp;
2237 int ttyvid;
2238 int cttyflag = 0;
2239 struct vfs_context context;
2240 struct tty *tp;
2241
2242 /*
2243 * Controlling process.
2244 * Signal foreground pgrp,
2245 * drain controlling terminal
2246 * and revoke access to controlling terminal.
2247 */
2248 session_lock(sessp);
2249 tp = SESSION_TP(sessp);
2250 if ((tp != TTY_NULL) && (tp->t_session == sessp)) {
2251 session_unlock(sessp);
2252
2253 /*
2254 * We're going to SIGHUP the foreground process
2255 * group. It can't change from this point on
2256 * until the revoke is complete.
2257 * The process group changes under both the tty
2258 * lock and proc_list_lock but we need only one
2259 */
2260 tty_lock(tp);
2261 ttysetpgrphup(tp);
2262 tty_unlock(tp);
2263
2264 tty_pgsignal(tp, SIGHUP, 1);
2265
2266 session_lock(sessp);
2267 tp = SESSION_TP(sessp);
2268 }
2269 cttyflag = sessp->s_flags & S_CTTYREF;
2270 sessp->s_flags &= ~S_CTTYREF;
2271 ttyvp = sessp->s_ttyvp;
2272 ttyvid = sessp->s_ttyvid;
2273 sessp->s_ttyvp = NULL;
2274 sessp->s_ttyvid = 0;
2275 sessp->s_ttyp = TTY_NULL;
2276 sessp->s_ttypgrpid = NO_PID;
2277 session_unlock(sessp);
2278
2279 if ((ttyvp != NULLVP) && (vnode_getwithvid(ttyvp, ttyvid) == 0)) {
2280 if (tp != TTY_NULL) {
2281 tty_lock(tp);
2282 (void) ttywait(tp);
2283 tty_unlock(tp);
2284 }
2285 context.vc_thread = proc_thread(p); /* XXX */
2286 context.vc_ucred = kauth_cred_proc_ref(p);
2287 VNOP_REVOKE(ttyvp, REVOKEALL, &context);
2288 if (cttyflag) {
2289 /*
2290 * Release the extra usecount taken in cttyopen.
2291 * usecount should be released after VNOP_REVOKE is called.
2292 * This usecount was taken to ensure that
2293 * the VNOP_REVOKE results in a close to
2294 * the tty since cttyclose is a no-op.
2295 */
2296 vnode_rele(ttyvp);
2297 }
2298 vnode_put(ttyvp);
2299 kauth_cred_unref(&context.vc_ucred);
2300 ttyvp = NULLVP;
2301 }
2302 if (tp) {
2303 /*
2304 * This is cleared even if not set. This is also done in
2305 * spec_close to ensure that the flag is cleared.
2306 */
2307 tty_lock(tp);
2308 ttyclrpgrphup(tp);
2309 tty_unlock(tp);
2310
2311 ttyfree(tp);
2312 }
2313 }
2314 session_lock(sessp);
2315 sessp->s_leader = NULL;
2316 session_unlock(sessp);
2317 }
2318 session_rele(sessp);
2319
2320 pg = proc_pgrp(p);
2321 fixjobc(p, pg, 0);
2322 pg_rele(pg);
2323
2324 p->p_rlimit[RLIMIT_FSIZE].rlim_cur = RLIM_INFINITY;
2325
2326 proc_list_lock();
2327 proc_childdrainstart(p);
2328 while ((q = p->p_children.lh_first) != NULL) {
2329 if (q->p_stat == SZOMB) {
2330 if (p != q->p_pptr)
2331 panic("parent child linkage broken");
2332 /* check for lookups by zomb sysctl */
2333 while ((q->p_listflag & P_LIST_WAITING) == P_LIST_WAITING) {
2334 msleep(&q->p_stat, proc_list_mlock, PWAIT, "waitcoll", 0);
2335 }
2336 q->p_listflag |= P_LIST_WAITING;
2337 /*
2338 * This is a named reference and it is not granted
2339 * if the reap is already in progress. So we get
2340 * the reference here exclusively and their can be
2341 * no waiters. So there is no need for a wakeup
2342 * after we are done. AlsO the reap frees the structure
2343 * and the proc struct cannot be used for wakeups as well.
2344 * It is safe to use q here as this is system reap
2345 */
2346 (void)reap_child_locked(p, q, 1, 0, 1, 0);
2347 } else {
2348 /*
2349 * Traced processes are killed
2350 * since their existence means someone is messing up.
2351 */
2352 if (q->p_lflag & P_LTRACED) {
2353 struct proc *opp;
2354
2355 proc_list_unlock();
2356
2357 opp = proc_find(q->p_oppid);
2358 if (opp != PROC_NULL) {
2359 proc_list_lock();
2360 q->p_oppid = 0;
2361 proc_list_unlock();
2362 proc_reparentlocked(q, opp, 0, 0);
2363 proc_rele(opp);
2364 } else {
2365 /* original parent exited while traced */
2366 proc_list_lock();
2367 q->p_listflag |= P_LIST_DEADPARENT;
2368 q->p_oppid = 0;
2369 proc_list_unlock();
2370 proc_reparentlocked(q, initproc, 0, 0);
2371 }
2372
2373 proc_lock(q);
2374 q->p_lflag &= ~P_LTRACED;
2375
2376 if (q->sigwait_thread) {
2377 thread_t thread = q->sigwait_thread;
2378
2379 proc_unlock(q);
2380 /*
2381 * The sigwait_thread could be stopped at a
2382 * breakpoint. Wake it up to kill.
2383 * Need to do this as it could be a thread which is not
2384 * the first thread in the task. So any attempts to kill
2385 * the process would result into a deadlock on q->sigwait.
2386 */
2387 thread_resume(thread);
2388 clear_wait(thread, THREAD_INTERRUPTED);
2389 threadsignal(thread, SIGKILL, 0, TRUE);
2390 } else {
2391 proc_unlock(q);
2392 }
2393
2394 psignal(q, SIGKILL);
2395 proc_list_lock();
2396 } else {
2397 q->p_listflag |= P_LIST_DEADPARENT;
2398 proc_reparentlocked(q, initproc, 0, 1);
2399 }
2400 }
2401 }
2402
2403 proc_childdrainend(p);
2404 proc_list_unlock();
2405
2406 /*
2407 * Release reference to text vnode
2408 */
2409 tvp = p->p_textvp;
2410 p->p_textvp = NULL;
2411 if (tvp != NULLVP) {
2412 vnode_rele(tvp);
2413 }
2414
2415 /*
2416 * Save exit status and final rusage info, adding in child rusage
2417 * info and self times. If we were unable to allocate a zombie
2418 * structure, this information is lost.
2419 */
2420 if (rup != NULL) {
2421 rup->ru = p->p_stats->p_ru;
2422 timerclear(&rup->ru.ru_utime);
2423 timerclear(&rup->ru.ru_stime);
2424
2425 #ifdef FIXME
2426 if (task) {
2427 mach_task_basic_info_data_t tinfo;
2428 task_thread_times_info_data_t ttimesinfo;
2429 int task_info_stuff, task_ttimes_stuff;
2430 struct timeval ut,st;
2431
2432 task_info_stuff = MACH_TASK_BASIC_INFO_COUNT;
2433 task_info(task, MACH_TASK_BASIC_INFO,
2434 &tinfo, &task_info_stuff);
2435 p->p_ru->ru.ru_utime.tv_sec = tinfo.user_time.seconds;
2436 p->p_ru->ru.ru_utime.tv_usec = tinfo.user_time.microseconds;
2437 p->p_ru->ru.ru_stime.tv_sec = tinfo.system_time.seconds;
2438 p->p_ru->ru.ru_stime.tv_usec = tinfo.system_time.microseconds;
2439
2440 task_ttimes_stuff = TASK_THREAD_TIMES_INFO_COUNT;
2441 task_info(task, TASK_THREAD_TIMES_INFO,
2442 &ttimesinfo, &task_ttimes_stuff);
2443
2444 ut.tv_sec = ttimesinfo.user_time.seconds;
2445 ut.tv_usec = ttimesinfo.user_time.microseconds;
2446 st.tv_sec = ttimesinfo.system_time.seconds;
2447 st.tv_usec = ttimesinfo.system_time.microseconds;
2448 timeradd(&ut,&p->p_ru->ru.ru_utime,&p->p_ru->ru.ru_utime);
2449 timeradd(&st,&p->p_ru->ru.ru_stime,&p->p_ru->ru.ru_stime);
2450 }
2451 #endif /* FIXME */
2452
2453 ruadd(&rup->ru, &p->p_stats->p_cru);
2454
2455 gather_rusage_info(p, &rup->ri, RUSAGE_INFO_CURRENT);
2456 rup->ri.ri_phys_footprint = 0;
2457 rup->ri.ri_proc_exit_abstime = mach_absolute_time();
2458
2459 /*
2460 * Now that we have filled in the rusage info, make it
2461 * visible to an external observer via proc_pid_rusage().
2462 */
2463 p->p_ru = rup;
2464 }
2465
2466 /*
2467 * Free up profiling buffers.
2468 */
2469 {
2470 struct uprof *p0 = &p->p_stats->p_prof, *p1, *pn;
2471
2472 p1 = p0->pr_next;
2473 p0->pr_next = NULL;
2474 p0->pr_scale = 0;
2475
2476 for (; p1 != NULL; p1 = pn) {
2477 pn = p1->pr_next;
2478 kfree(p1, sizeof *p1);
2479 }
2480 }
2481
2482 #if PSYNCH
2483 pth_proc_hashdelete(p);
2484 #endif /* PSYNCH */
2485
2486 /*
2487 * Other substructures are freed from wait().
2488 */
2489 FREE_ZONE(p->p_stats, sizeof *p->p_stats, M_PSTATS);
2490 p->p_stats = NULL;
2491
2492 FREE_ZONE(p->p_sigacts, sizeof *p->p_sigacts, M_SIGACTS);
2493 p->p_sigacts = NULL;
2494
2495 proc_limitdrop(p, 1);
2496 p->p_limit = NULL;
2497
2498 /*
2499 * Finish up by terminating the task
2500 * and halt this thread (only if a
2501 * member of the task exiting).
2502 */
2503 p->task = TASK_NULL;
2504
2505 /*
2506 * Notify parent that we're gone.
2507 */
2508 pp = proc_parent(p);
2509 if ((p->p_listflag & P_LIST_DEADPARENT) == 0) {
2510 if (pp != initproc) {
2511 proc_lock(pp);
2512 pp->si_pid = p->p_pid;
2513 pp->si_status = p->p_xstat;
2514 pp->si_code = CLD_EXITED;
2515 /*
2516 * p_ucred usage is safe as it is an exiting process
2517 * and reference is dropped in reap
2518 */
2519 pp->si_uid = kauth_cred_getruid(p->p_ucred);
2520 proc_unlock(pp);
2521 }
2522 /* mark as a zombie */
2523 /* mark as a zombie */
2524 /* No need to take proc lock as all refs are drained and
2525 * no one except parent (reaping ) can look at this.
2526 * The write is to an int and is coherent. Also parent is
2527 * keyed off of list lock for reaping
2528 */
2529 p->p_stat = SZOMB;
2530
2531 psignal(pp, SIGCHLD);
2532
2533 /* and now wakeup the parent */
2534 proc_list_lock();
2535 wakeup((caddr_t)pp);
2536 proc_list_unlock();
2537 } else {
2538 proc_list_lock();
2539 /* check for lookups by zomb sysctl */
2540 while ((p->p_listflag & P_LIST_WAITING) == P_LIST_WAITING) {
2541 msleep(&p->p_stat, proc_list_mlock, PWAIT, "waitcoll", 0);
2542 }
2543 p->p_stat = SZOMB;
2544 p->p_listflag |= P_LIST_WAITING;
2545
2546 /*
2547 * This is a named reference and it is not granted
2548 * if the reap is already in progress. So we get
2549 * the reference here exclusively and their can be
2550 * no waiters. So there is no need for a wakeup
2551 * after we are done. AlsO the reap frees the structure
2552 * and the proc struct cannot be used for wakeups as well.
2553 * It is safe to use p here as this is system reap
2554 */
2555 (void)reap_child_locked(pp, p, 0, 0, 1, 1);
2556 /* list lock dropped by reap_child_locked */
2557 }
2558 proc_rele(pp);
2559 }
2560
2561
2562 /*
2563 * munge_rusage
2564 * LP64 support - long is 64 bits if we are dealing with a 64 bit user
2565 * process. We munge the kernel version of rusage into the
2566 * 64 bit version.
2567 */
2568 __private_extern__ void
2569 munge_user64_rusage(struct rusage *a_rusage_p, struct user64_rusage *a_user_rusage_p)
2570 {
2571 /* timeval changes size, so utime and stime need special handling */
2572 a_user_rusage_p->ru_utime.tv_sec = a_rusage_p->ru_utime.tv_sec;
2573 a_user_rusage_p->ru_utime.tv_usec = a_rusage_p->ru_utime.tv_usec;
2574 a_user_rusage_p->ru_stime.tv_sec = a_rusage_p->ru_stime.tv_sec;
2575 a_user_rusage_p->ru_stime.tv_usec = a_rusage_p->ru_stime.tv_usec;
2576 /*
2577 * everything else can be a direct assign, since there is no loss
2578 * of precision implied boing 32->64.
2579 */
2580 a_user_rusage_p->ru_maxrss = a_rusage_p->ru_maxrss;
2581 a_user_rusage_p->ru_ixrss = a_rusage_p->ru_ixrss;
2582 a_user_rusage_p->ru_idrss = a_rusage_p->ru_idrss;
2583 a_user_rusage_p->ru_isrss = a_rusage_p->ru_isrss;
2584 a_user_rusage_p->ru_minflt = a_rusage_p->ru_minflt;
2585 a_user_rusage_p->ru_majflt = a_rusage_p->ru_majflt;
2586 a_user_rusage_p->ru_nswap = a_rusage_p->ru_nswap;
2587 a_user_rusage_p->ru_inblock = a_rusage_p->ru_inblock;
2588 a_user_rusage_p->ru_oublock = a_rusage_p->ru_oublock;
2589 a_user_rusage_p->ru_msgsnd = a_rusage_p->ru_msgsnd;
2590 a_user_rusage_p->ru_msgrcv = a_rusage_p->ru_msgrcv;
2591 a_user_rusage_p->ru_nsignals = a_rusage_p->ru_nsignals;
2592 a_user_rusage_p->ru_nvcsw = a_rusage_p->ru_nvcsw;
2593 a_user_rusage_p->ru_nivcsw = a_rusage_p->ru_nivcsw;
2594 }
2595
2596 /* For a 64-bit kernel and 32-bit userspace, munging may be needed */
2597 __private_extern__ void
2598 munge_user32_rusage(struct rusage *a_rusage_p, struct user32_rusage *a_user_rusage_p)
2599 {
2600 /* timeval changes size, so utime and stime need special handling */
2601 a_user_rusage_p->ru_utime.tv_sec = a_rusage_p->ru_utime.tv_sec;
2602 a_user_rusage_p->ru_utime.tv_usec = a_rusage_p->ru_utime.tv_usec;
2603 a_user_rusage_p->ru_stime.tv_sec = a_rusage_p->ru_stime.tv_sec;
2604 a_user_rusage_p->ru_stime.tv_usec = a_rusage_p->ru_stime.tv_usec;
2605 /*
2606 * everything else can be a direct assign. We currently ignore
2607 * the loss of precision
2608 */
2609 a_user_rusage_p->ru_maxrss = a_rusage_p->ru_maxrss;
2610 a_user_rusage_p->ru_ixrss = a_rusage_p->ru_ixrss;
2611 a_user_rusage_p->ru_idrss = a_rusage_p->ru_idrss;
2612 a_user_rusage_p->ru_isrss = a_rusage_p->ru_isrss;
2613 a_user_rusage_p->ru_minflt = a_rusage_p->ru_minflt;
2614 a_user_rusage_p->ru_majflt = a_rusage_p->ru_majflt;
2615 a_user_rusage_p->ru_nswap = a_rusage_p->ru_nswap;
2616 a_user_rusage_p->ru_inblock = a_rusage_p->ru_inblock;
2617 a_user_rusage_p->ru_oublock = a_rusage_p->ru_oublock;
2618 a_user_rusage_p->ru_msgsnd = a_rusage_p->ru_msgsnd;
2619 a_user_rusage_p->ru_msgrcv = a_rusage_p->ru_msgrcv;
2620 a_user_rusage_p->ru_nsignals = a_rusage_p->ru_nsignals;
2621 a_user_rusage_p->ru_nvcsw = a_rusage_p->ru_nvcsw;
2622 a_user_rusage_p->ru_nivcsw = a_rusage_p->ru_nivcsw;
2623 }