kern_exit.c revision 1.249 1 1.249 christos /* $NetBSD: kern_exit.c,v 1.249 2016/04/02 20:38:40 christos Exp $ */
2 1.56 thorpej
3 1.56 thorpej /*-
4 1.204 ad * Copyright (c) 1998, 1999, 2006, 2007, 2008 The NetBSD Foundation, Inc.
5 1.56 thorpej * All rights reserved.
6 1.58 christos *
7 1.56 thorpej * This code is derived from software contributed to The NetBSD Foundation
8 1.56 thorpej * by Jason R. Thorpe of the Numerical Aerospace Simulation Facility,
9 1.165 ad * NASA Ames Research Center, and by Andrew Doran.
10 1.56 thorpej *
11 1.56 thorpej * Redistribution and use in source and binary forms, with or without
12 1.56 thorpej * modification, are permitted provided that the following conditions
13 1.56 thorpej * are met:
14 1.56 thorpej * 1. Redistributions of source code must retain the above copyright
15 1.56 thorpej * notice, this list of conditions and the following disclaimer.
16 1.58 christos * 2. Redistributions in binary form must reproduce the above copyright
17 1.56 thorpej * notice, this list of conditions and the following disclaimer in the
18 1.56 thorpej * documentation and/or other materials provided with the distribution.
19 1.58 christos *
20 1.56 thorpej * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
21 1.56 thorpej * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
22 1.56 thorpej * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
23 1.56 thorpej * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
24 1.56 thorpej * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
25 1.56 thorpej * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
26 1.56 thorpej * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
27 1.56 thorpej * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
28 1.56 thorpej * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
29 1.56 thorpej * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
30 1.56 thorpej * POSSIBILITY OF SUCH DAMAGE.
31 1.56 thorpej */
32 1.24 cgd
33 1.24 cgd /*
34 1.24 cgd * Copyright (c) 1982, 1986, 1989, 1991, 1993
35 1.24 cgd * The Regents of the University of California. All rights reserved.
36 1.24 cgd * (c) UNIX System Laboratories, Inc.
37 1.24 cgd * All or some portions of this file are derived from material licensed
38 1.24 cgd * to the University of California by American Telephone and Telegraph
39 1.24 cgd * Co. or Unix System Laboratories, Inc. and are reproduced herein with
40 1.24 cgd * the permission of UNIX System Laboratories, Inc.
41 1.24 cgd *
42 1.24 cgd * Redistribution and use in source and binary forms, with or without
43 1.24 cgd * modification, are permitted provided that the following conditions
44 1.24 cgd * are met:
45 1.24 cgd * 1. Redistributions of source code must retain the above copyright
46 1.24 cgd * notice, this list of conditions and the following disclaimer.
47 1.24 cgd * 2. Redistributions in binary form must reproduce the above copyright
48 1.24 cgd * notice, this list of conditions and the following disclaimer in the
49 1.24 cgd * documentation and/or other materials provided with the distribution.
50 1.119 agc * 3. Neither the name of the University nor the names of its contributors
51 1.24 cgd * may be used to endorse or promote products derived from this software
52 1.24 cgd * without specific prior written permission.
53 1.24 cgd *
54 1.24 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
55 1.24 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
56 1.24 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
57 1.24 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
58 1.24 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
59 1.24 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
60 1.24 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
61 1.24 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
62 1.24 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
63 1.24 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
64 1.24 cgd * SUCH DAMAGE.
65 1.24 cgd *
66 1.49 fvdl * @(#)kern_exit.c 8.10 (Berkeley) 2/23/95
67 1.24 cgd */
68 1.92 lukem
69 1.92 lukem #include <sys/cdefs.h>
70 1.249 christos __KERNEL_RCSID(0, "$NetBSD: kern_exit.c,v 1.249 2016/04/02 20:38:40 christos Exp $");
71 1.48 mrg
72 1.51 thorpej #include "opt_ktrace.h"
73 1.245 christos #include "opt_dtrace.h"
74 1.97 briggs #include "opt_perfctrs.h"
75 1.60 tron #include "opt_sysv.h"
76 1.24 cgd
77 1.24 cgd #include <sys/param.h>
78 1.24 cgd #include <sys/systm.h>
79 1.24 cgd #include <sys/ioctl.h>
80 1.24 cgd #include <sys/tty.h>
81 1.24 cgd #include <sys/time.h>
82 1.24 cgd #include <sys/resource.h>
83 1.24 cgd #include <sys/kernel.h>
84 1.24 cgd #include <sys/proc.h>
85 1.24 cgd #include <sys/buf.h>
86 1.24 cgd #include <sys/wait.h>
87 1.24 cgd #include <sys/file.h>
88 1.24 cgd #include <sys/vnode.h>
89 1.24 cgd #include <sys/syslog.h>
90 1.53 thorpej #include <sys/pool.h>
91 1.212 pooka #include <sys/uidinfo.h>
92 1.98 briggs #if defined(PERFCTRS)
93 1.97 briggs #include <sys/pmc.h>
94 1.98 briggs #endif
95 1.24 cgd #include <sys/ptrace.h>
96 1.29 cgd #include <sys/acct.h>
97 1.36 christos #include <sys/filedesc.h>
98 1.100 gmcgarry #include <sys/ras.h>
99 1.36 christos #include <sys/signalvar.h>
100 1.64 ross #include <sys/sched.h>
101 1.26 cgd #include <sys/mount.h>
102 1.26 cgd #include <sys/syscallargs.h>
103 1.156 elad #include <sys/kauth.h>
104 1.165 ad #include <sys/sleepq.h>
105 1.165 ad #include <sys/lockdebug.h>
106 1.165 ad #include <sys/ktrace.h>
107 1.189 ad #include <sys/cpu.h>
108 1.193 ad #include <sys/lwpctl.h>
109 1.194 ad #include <sys/atomic.h>
110 1.226 darran #include <sys/sdt.h>
111 1.24 cgd
112 1.47 mrg #include <uvm/uvm_extern.h>
113 1.47 mrg
114 1.107 thorpej #ifdef DEBUG_EXIT
115 1.107 thorpej int debug_exit = 0;
116 1.107 thorpej #define DPRINTF(x) if (debug_exit) printf x
117 1.107 thorpej #else
118 1.107 thorpej #define DPRINTF(x)
119 1.107 thorpej #endif
120 1.107 thorpej
121 1.249 christos static int find_stopped_child(struct proc *, idtype_t, id_t, int,
122 1.249 christos struct proc **, int *, struct wrusage *, siginfo_t *);
123 1.249 christos static void proc_free(struct proc *, struct wrusage *);
124 1.177 dsl
125 1.123 christos /*
126 1.226 darran * DTrace SDT provider definitions
127 1.226 darran */
128 1.245 christos SDT_PROVIDER_DECLARE(proc);
129 1.245 christos SDT_PROBE_DEFINE1(proc, kernel, , exit, "int");
130 1.245 christos
131 1.226 darran /*
132 1.132 jdolecek * Fill in the appropriate signal information, and signal the parent.
133 1.123 christos */
134 1.235 chs /* XXX noclone works around a gcc 4.5 bug on arm */
135 1.235 chs static void __noclone
136 1.162 yamt exit_psignal(struct proc *p, struct proc *pp, ksiginfo_t *ksi)
137 1.123 christos {
138 1.123 christos
139 1.163 yamt KSI_INIT(ksi);
140 1.140 pk if ((ksi->ksi_signo = P_EXITSIG(p)) == SIGCHLD) {
141 1.123 christos if (WIFSIGNALED(p->p_xstat)) {
142 1.123 christos if (WCOREDUMP(p->p_xstat))
143 1.140 pk ksi->ksi_code = CLD_DUMPED;
144 1.123 christos else
145 1.140 pk ksi->ksi_code = CLD_KILLED;
146 1.123 christos } else {
147 1.140 pk ksi->ksi_code = CLD_EXITED;
148 1.123 christos }
149 1.123 christos }
150 1.123 christos /*
151 1.165 ad * We fill those in, even for non-SIGCHLD.
152 1.165 ad * It's safe to access p->p_cred unlocked here.
153 1.123 christos */
154 1.140 pk ksi->ksi_pid = p->p_pid;
155 1.156 elad ksi->ksi_uid = kauth_cred_geteuid(p->p_cred);
156 1.140 pk ksi->ksi_status = p->p_xstat;
157 1.123 christos /* XXX: is this still valid? */
158 1.175 dsl ksi->ksi_utime = p->p_stats->p_ru.ru_utime.tv_sec;
159 1.175 dsl ksi->ksi_stime = p->p_stats->p_ru.ru_stime.tv_sec;
160 1.123 christos }
161 1.94 christos
162 1.24 cgd /*
163 1.24 cgd * exit --
164 1.24 cgd * Death of process.
165 1.24 cgd */
166 1.31 thorpej int
167 1.195 dsl sys_exit(struct lwp *l, const struct sys_exit_args *uap, register_t *retval)
168 1.31 thorpej {
169 1.195 dsl /* {
170 1.89 lukem syscallarg(int) rval;
171 1.195 dsl } */
172 1.165 ad struct proc *p = l->l_proc;
173 1.24 cgd
174 1.165 ad /* Don't call exit1() multiple times in the same process. */
175 1.204 ad mutex_enter(p->p_lock);
176 1.165 ad if (p->p_sflag & PS_WEXIT) {
177 1.204 ad mutex_exit(p->p_lock);
178 1.107 thorpej lwp_exit(l);
179 1.165 ad }
180 1.107 thorpej
181 1.165 ad /* exit1() will release the mutex. */
182 1.107 thorpej exit1(l, W_EXITCODE(SCARG(uap, rval), 0));
183 1.24 cgd /* NOTREACHED */
184 1.31 thorpej return (0);
185 1.24 cgd }
186 1.24 cgd
187 1.24 cgd /*
188 1.24 cgd * Exit: deallocate address space and other resources, change proc state
189 1.24 cgd * to zombie, and unlink proc from allproc and parent's lists. Save exit
190 1.24 cgd * status and rusage for wait(). Check for child processes and orphan them.
191 1.165 ad *
192 1.204 ad * Must be called with p->p_lock held. Does not return.
193 1.24 cgd */
194 1.31 thorpej void
195 1.107 thorpej exit1(struct lwp *l, int rv)
196 1.24 cgd {
197 1.241 riastrad struct proc *p, *child, *next_child, *old_parent, *new_parent;
198 1.201 ad struct pgrp *pgrp;
199 1.140 pk ksiginfo_t ksi;
200 1.165 ad ksiginfoq_t kq;
201 1.237 rmind int wakeinit;
202 1.24 cgd
203 1.107 thorpej p = l->l_proc;
204 1.107 thorpej
205 1.204 ad KASSERT(mutex_owned(p->p_lock));
206 1.238 martin KASSERT(p->p_vmspace != NULL);
207 1.165 ad
208 1.237 rmind if (__predict_false(p == initproc)) {
209 1.24 cgd panic("init died (signal %d, exit %d)",
210 1.24 cgd WTERMSIG(rv), WEXITSTATUS(rv));
211 1.213 wrstuden }
212 1.213 wrstuden
213 1.165 ad p->p_sflag |= PS_WEXIT;
214 1.165 ad
215 1.165 ad /*
216 1.165 ad * Force all other LWPs to exit before we do. Only then can we
217 1.165 ad * begin to tear down the rest of the process state.
218 1.165 ad */
219 1.237 rmind if (p->p_nlwps > 1) {
220 1.165 ad exit_lwps(l);
221 1.237 rmind }
222 1.165 ad
223 1.165 ad ksiginfo_queue_init(&kq);
224 1.165 ad
225 1.165 ad /*
226 1.165 ad * If we have been asked to stop on exit, do so now.
227 1.165 ad */
228 1.211 ad if (__predict_false(p->p_sflag & PS_STOPEXIT)) {
229 1.165 ad KERNEL_UNLOCK_ALL(l, &l->l_biglocks);
230 1.165 ad sigclearall(p, &contsigmask, &kq);
231 1.247 pgoyette
232 1.247 pgoyette if (!mutex_tryenter(proc_lock)) {
233 1.247 pgoyette mutex_exit(p->p_lock);
234 1.247 pgoyette mutex_enter(proc_lock);
235 1.247 pgoyette mutex_enter(p->p_lock);
236 1.247 pgoyette }
237 1.165 ad p->p_waited = 0;
238 1.247 pgoyette p->p_pptr->p_nstopchild++;
239 1.248 pgoyette p->p_stat = SSTOP;
240 1.247 pgoyette mutex_exit(proc_lock);
241 1.165 ad lwp_lock(l);
242 1.165 ad p->p_nrlwps--;
243 1.130 atatat l->l_stat = LSSTOP;
244 1.231 rmind lwp_unlock(l);
245 1.204 ad mutex_exit(p->p_lock);
246 1.231 rmind lwp_lock(l);
247 1.179 yamt mi_switch(l);
248 1.165 ad KERNEL_LOCK(l->l_biglocks, l);
249 1.211 ad mutex_enter(p->p_lock);
250 1.211 ad }
251 1.211 ad
252 1.211 ad /*
253 1.211 ad * Bin any remaining signals and mark the process as dying so it will
254 1.241 riastrad * not be found for, e.g. signals.
255 1.211 ad */
256 1.211 ad sigfillset(&p->p_sigctx.ps_sigignore);
257 1.211 ad sigclearall(p, NULL, &kq);
258 1.211 ad p->p_stat = SDYING;
259 1.211 ad mutex_exit(p->p_lock);
260 1.211 ad ksiginfo_queue_drain(&kq);
261 1.165 ad
262 1.193 ad /* Destroy any lwpctl info. */
263 1.193 ad if (p->p_lwpctl != NULL)
264 1.193 ad lwp_ctl_exit();
265 1.193 ad
266 1.165 ad /*
267 1.165 ad * Drain all remaining references that procfs, ptrace and others may
268 1.165 ad * have on the process.
269 1.165 ad */
270 1.191 ad rw_enter(&p->p_reflock, RW_WRITER);
271 1.112 nathanw
272 1.165 ad DPRINTF(("exit1: %d.%d exiting.\n", p->p_pid, l->l_lid));
273 1.107 thorpej
274 1.107 thorpej timers_free(p, TIMERS_ALL);
275 1.100 gmcgarry #if defined(__HAVE_RAS)
276 1.190 ad ras_purgeall();
277 1.100 gmcgarry #endif
278 1.24 cgd
279 1.24 cgd /*
280 1.165 ad * Close open files, release open-file table and free signal
281 1.165 ad * actions. This may block!
282 1.24 cgd */
283 1.200 ad fd_free();
284 1.141 pk cwdfree(p->p_cwdi);
285 1.165 ad p->p_cwdi = NULL;
286 1.93 christos doexithooks(p);
287 1.165 ad sigactsfree(p->p_sigacts);
288 1.157 ad
289 1.157 ad /*
290 1.164 ad * Write out accounting data.
291 1.157 ad */
292 1.154 christos (void)acct_process(l);
293 1.157 ad
294 1.24 cgd #ifdef KTRACE
295 1.145 perry /*
296 1.157 ad * Release trace file.
297 1.24 cgd */
298 1.165 ad if (p->p_tracep != NULL) {
299 1.185 ad mutex_enter(&ktrace_lock);
300 1.165 ad ktrderef(p);
301 1.185 ad mutex_exit(&ktrace_lock);
302 1.165 ad }
303 1.94 christos #endif
304 1.157 ad
305 1.24 cgd /*
306 1.99 manu * If emulation has process exit hook, call it now.
307 1.158 manu * Set the exit status now so that the exit hook has
308 1.158 manu * an opportunity to tweak it (COMPAT_LINUX requires
309 1.158 manu * this for thread group emulation)
310 1.99 manu */
311 1.158 manu p->p_xstat = rv;
312 1.99 manu if (p->p_emul->e_proc_exit)
313 1.99 manu (*p->p_emul->e_proc_exit)(p);
314 1.99 manu
315 1.160 thorpej /*
316 1.140 pk * Free the VM resources we're still holding on to.
317 1.140 pk * We must do this from a valid thread because doing
318 1.140 pk * so may block. This frees vmspace, which we don't
319 1.140 pk * need anymore. The only remaining lwp is the one
320 1.140 pk * we run at this moment, nothing runs in userland
321 1.140 pk * anymore.
322 1.140 pk */
323 1.140 pk uvm_proc_exit(p);
324 1.140 pk
325 1.140 pk /*
326 1.165 ad * Stop profiling.
327 1.140 pk */
328 1.211 ad if (__predict_false((p->p_stflag & PST_PROFIL) != 0)) {
329 1.165 ad mutex_spin_enter(&p->p_stmutex);
330 1.165 ad stopprofclock(p);
331 1.165 ad mutex_spin_exit(&p->p_stmutex);
332 1.165 ad }
333 1.140 pk
334 1.140 pk /*
335 1.214 yamt * If parent is waiting for us to exit or exec, PL_PPWAIT is set; we
336 1.165 ad * wake up the parent early to avoid deadlock. We can do this once
337 1.165 ad * the VM resources are released.
338 1.140 pk */
339 1.203 ad mutex_enter(proc_lock);
340 1.211 ad if (p->p_lflag & PL_PPWAIT) {
341 1.240 christos #if 0
342 1.239 rmind lwp_t *lp;
343 1.239 rmind
344 1.232 pooka l->l_lwpctl = NULL; /* was on loan from blocked parent */
345 1.211 ad p->p_lflag &= ~PL_PPWAIT;
346 1.239 rmind
347 1.239 rmind lp = p->p_vforklwp;
348 1.239 rmind p->p_vforklwp = NULL;
349 1.239 rmind lp->l_pflag &= ~LP_VFORKWAIT; /* XXX */
350 1.239 rmind cv_broadcast(&lp->l_waitcv);
351 1.240 christos #else
352 1.240 christos l->l_lwpctl = NULL; /* was on loan from blocked parent */
353 1.240 christos p->p_lflag &= ~PL_PPWAIT;
354 1.240 christos cv_broadcast(&p->p_pptr->p_waitcv);
355 1.240 christos #endif
356 1.165 ad }
357 1.165 ad
358 1.165 ad if (SESS_LEADER(p)) {
359 1.165 ad struct vnode *vprele = NULL, *vprevoke = NULL;
360 1.165 ad struct session *sp = p->p_session;
361 1.165 ad struct tty *tp;
362 1.165 ad
363 1.165 ad if (sp->s_ttyvp) {
364 1.165 ad /*
365 1.165 ad * Controlling process.
366 1.165 ad * Signal foreground pgrp,
367 1.165 ad * drain controlling terminal
368 1.165 ad * and revoke access to controlling terminal.
369 1.165 ad */
370 1.165 ad tp = sp->s_ttyp;
371 1.192 ad mutex_spin_enter(&tty_lock);
372 1.165 ad if (tp->t_session == sp) {
373 1.165 ad /* we can't guarantee the revoke will do this */
374 1.201 ad pgrp = tp->t_pgrp;
375 1.165 ad tp->t_pgrp = NULL;
376 1.165 ad tp->t_session = NULL;
377 1.192 ad mutex_spin_exit(&tty_lock);
378 1.201 ad if (pgrp != NULL) {
379 1.201 ad pgsignal(pgrp, SIGHUP, 1);
380 1.201 ad }
381 1.203 ad mutex_exit(proc_lock);
382 1.165 ad (void) ttywait(tp);
383 1.203 ad mutex_enter(proc_lock);
384 1.165 ad
385 1.198 ad /* The tty could have been revoked. */
386 1.165 ad vprevoke = sp->s_ttyvp;
387 1.192 ad } else
388 1.192 ad mutex_spin_exit(&tty_lock);
389 1.165 ad vprele = sp->s_ttyvp;
390 1.165 ad sp->s_ttyvp = NULL;
391 1.165 ad /*
392 1.165 ad * s_ttyp is not zero'd; we use this to indicate
393 1.165 ad * that the session once had a controlling terminal.
394 1.165 ad * (for logging and informational purposes)
395 1.165 ad */
396 1.165 ad }
397 1.165 ad sp->s_leader = NULL;
398 1.140 pk
399 1.165 ad if (vprevoke != NULL || vprele != NULL) {
400 1.198 ad if (vprevoke != NULL) {
401 1.220 rmind /* Releases proc_lock. */
402 1.220 rmind proc_sessrele(sp);
403 1.165 ad VOP_REVOKE(vprevoke, REVOKEALL);
404 1.198 ad } else
405 1.203 ad mutex_exit(proc_lock);
406 1.165 ad if (vprele != NULL)
407 1.165 ad vrele(vprele);
408 1.203 ad mutex_enter(proc_lock);
409 1.165 ad }
410 1.165 ad }
411 1.165 ad fixjobc(p, p->p_pgrp, 0);
412 1.140 pk
413 1.140 pk /*
414 1.171 ad * Finalize the last LWP's specificdata, as well as the
415 1.171 ad * specificdata for the proc itself.
416 1.171 ad */
417 1.171 ad lwp_finispecific(l);
418 1.171 ad proc_finispecific(p);
419 1.171 ad
420 1.171 ad /*
421 1.140 pk * Notify interested parties of our demise.
422 1.140 pk */
423 1.140 pk KNOTE(&p->p_klist, NOTE_EXIT);
424 1.140 pk
425 1.245 christos SDT_PROBE(proc, kernel, , exit,
426 1.226 darran (WCOREDUMP(rv) ? CLD_DUMPED :
427 1.226 darran (WIFSIGNALED(rv) ? CLD_KILLED : CLD_EXITED)),
428 1.226 darran 0,0,0,0);
429 1.226 darran
430 1.140 pk #if PERFCTRS
431 1.140 pk /*
432 1.140 pk * Save final PMC information in parent process & clean up.
433 1.140 pk */
434 1.140 pk if (PMC_ENABLED(p)) {
435 1.140 pk pmc_save_context(p);
436 1.140 pk pmc_accumulate(p->p_pptr, p);
437 1.140 pk pmc_process_exit(p);
438 1.140 pk }
439 1.140 pk #endif
440 1.140 pk
441 1.140 pk /*
442 1.128 dsl * Reset p_opptr pointer of all former children which got
443 1.128 dsl * traced by another process and were reparented. We reset
444 1.128 dsl * it to NULL here; the trace detach code then reparents
445 1.128 dsl * the child to initproc. We only check allproc list, since
446 1.128 dsl * eventual former children on zombproc list won't reference
447 1.128 dsl * p_opptr anymore.
448 1.128 dsl */
449 1.208 ad if (__predict_false(p->p_slflag & PSL_CHTRACED)) {
450 1.241 riastrad struct proc *q;
451 1.143 yamt PROCLIST_FOREACH(q, &allproc) {
452 1.128 dsl if (q->p_opptr == p)
453 1.128 dsl q->p_opptr = NULL;
454 1.128 dsl }
455 1.128 dsl }
456 1.128 dsl
457 1.128 dsl /*
458 1.72 thorpej * Give orphaned children to init(8).
459 1.72 thorpej */
460 1.241 riastrad child = LIST_FIRST(&p->p_children);
461 1.241 riastrad wakeinit = (child != NULL);
462 1.241 riastrad for (; child != NULL; child = next_child) {
463 1.241 riastrad next_child = LIST_NEXT(child, p_sibling);
464 1.104 jdolecek
465 1.24 cgd /*
466 1.104 jdolecek * Traced processes are killed since their existence
467 1.104 jdolecek * means someone is screwing up. Since we reset the
468 1.104 jdolecek * trace flags, the logic in sys_wait4() would not be
469 1.104 jdolecek * triggered to reparent the process to its
470 1.106 jdolecek * original parent, so we must do this here.
471 1.24 cgd */
472 1.241 riastrad if (__predict_false(child->p_slflag & PSL_TRACED)) {
473 1.204 ad mutex_enter(p->p_lock);
474 1.241 riastrad child->p_slflag &=
475 1.241 riastrad ~(PSL_TRACED|PSL_FSTRACE|PSL_SYSCALL);
476 1.204 ad mutex_exit(p->p_lock);
477 1.241 riastrad if (child->p_opptr != child->p_pptr) {
478 1.241 riastrad struct proc *t = child->p_opptr;
479 1.241 riastrad proc_reparent(child, t ? t : initproc);
480 1.241 riastrad child->p_opptr = NULL;
481 1.105 jdolecek } else
482 1.241 riastrad proc_reparent(child, initproc);
483 1.241 riastrad killproc(child, "orphaned traced process");
484 1.165 ad } else
485 1.241 riastrad proc_reparent(child, initproc);
486 1.24 cgd }
487 1.115 dsl
488 1.115 dsl /*
489 1.165 ad * Move proc from allproc to zombproc, it's now nearly ready to be
490 1.165 ad * collected by parent.
491 1.115 dsl */
492 1.165 ad LIST_REMOVE(l, l_list);
493 1.115 dsl LIST_REMOVE(p, p_list);
494 1.115 dsl LIST_INSERT_HEAD(&zombproc, p, p_list);
495 1.133 jdolecek
496 1.165 ad /*
497 1.165 ad * Mark the process as dead. We must do this before we signal
498 1.165 ad * the parent.
499 1.165 ad */
500 1.165 ad p->p_stat = SDEAD;
501 1.133 jdolecek
502 1.133 jdolecek /* Put in front of parent's sibling list for parent to collect it */
503 1.241 riastrad old_parent = p->p_pptr;
504 1.241 riastrad old_parent->p_nstopchild++;
505 1.241 riastrad if (LIST_FIRST(&old_parent->p_children) != p) {
506 1.133 jdolecek /* Put child where it can be found quickly */
507 1.133 jdolecek LIST_REMOVE(p, p_sibling);
508 1.241 riastrad LIST_INSERT_HEAD(&old_parent->p_children, p, p_sibling);
509 1.133 jdolecek }
510 1.133 jdolecek
511 1.59 christos /*
512 1.59 christos * Notify parent that we're gone. If parent has the P_NOCLDWAIT
513 1.59 christos * flag set, notify init instead (and hope it will handle
514 1.59 christos * this situation).
515 1.59 christos */
516 1.241 riastrad if (old_parent->p_flag & (PK_NOCLDWAIT|PK_CLDSIGIGN)) {
517 1.59 christos proc_reparent(p, initproc);
518 1.165 ad wakeinit = 1;
519 1.133 jdolecek
520 1.59 christos /*
521 1.59 christos * If this was the last child of our parent, notify
522 1.59 christos * parent, so in case he was wait(2)ing, he will
523 1.59 christos * continue.
524 1.59 christos */
525 1.241 riastrad if (LIST_FIRST(&old_parent->p_children) == NULL)
526 1.241 riastrad cv_broadcast(&old_parent->p_waitcv);
527 1.59 christos }
528 1.24 cgd
529 1.140 pk /* Reload parent pointer, since p may have been reparented above */
530 1.241 riastrad new_parent = p->p_pptr;
531 1.140 pk
532 1.241 riastrad if (__predict_false((p->p_slflag & PSL_FSTRACE) == 0 &&
533 1.222 yamt p->p_exitsig != 0)) {
534 1.241 riastrad exit_psignal(p, new_parent, &ksi);
535 1.241 riastrad kpsignal(new_parent, &ksi, NULL);
536 1.140 pk }
537 1.140 pk
538 1.175 dsl /* Calculate the final rusage info. */
539 1.175 dsl calcru(p, &p->p_stats->p_ru.ru_utime, &p->p_stats->p_ru.ru_stime,
540 1.175 dsl NULL, NULL);
541 1.140 pk
542 1.165 ad if (wakeinit)
543 1.184 ad cv_broadcast(&initproc->p_waitcv);
544 1.165 ad
545 1.187 ad callout_destroy(&l->l_timeout_ch);
546 1.183 ad
547 1.165 ad /*
548 1.234 matt * Release any PCU resources before becoming a zombie.
549 1.234 matt */
550 1.234 matt pcu_discard_all(l);
551 1.234 matt
552 1.204 ad mutex_enter(p->p_lock);
553 1.244 christos /* Free the linux lwp id */
554 1.244 christos if ((l->l_pflag & LP_PIDLID) != 0 && l->l_lid != p->p_pid)
555 1.244 christos proc_free_pid(l->l_lid);
556 1.165 ad lwp_drainrefs(l);
557 1.165 ad lwp_lock(l);
558 1.165 ad l->l_prflag &= ~LPR_DETACHED;
559 1.165 ad l->l_stat = LSZOMB;
560 1.165 ad lwp_unlock(l);
561 1.165 ad KASSERT(curlwp == l);
562 1.165 ad KASSERT(p->p_nrlwps == 1);
563 1.165 ad KASSERT(p->p_nlwps == 1);
564 1.165 ad p->p_stat = SZOMB;
565 1.165 ad p->p_nrlwps--;
566 1.165 ad p->p_nzlwps++;
567 1.165 ad p->p_ndlwps = 0;
568 1.204 ad mutex_exit(p->p_lock);
569 1.140 pk
570 1.165 ad /*
571 1.165 ad * Signal the parent to collect us, and drop the proclist lock.
572 1.191 ad * Drop debugger/procfs lock; no new references can be gained.
573 1.165 ad */
574 1.184 ad cv_broadcast(&p->p_pptr->p_waitcv);
575 1.221 yamt rw_exit(&p->p_reflock);
576 1.203 ad mutex_exit(proc_lock);
577 1.140 pk
578 1.165 ad /* Verify that we hold no locks other than the kernel lock. */
579 1.165 ad LOCKDEBUG_BARRIER(&kernel_lock, 0);
580 1.85 thorpej
581 1.165 ad /*
582 1.165 ad * NOTE: WE ARE NO LONGER ALLOWED TO SLEEP!
583 1.165 ad */
584 1.157 ad
585 1.165 ad /*
586 1.165 ad * Give machine-dependent code a chance to free any MD LWP
587 1.165 ad * resources. This must be done before uvm_lwp_exit(), in
588 1.165 ad * case these resources are in the PCB.
589 1.165 ad */
590 1.165 ad cpu_lwp_free(l, 1);
591 1.238 martin
592 1.238 martin pmap_deactivate(l);
593 1.133 jdolecek
594 1.140 pk /* This process no longer needs to hold the kernel lock. */
595 1.165 ad #ifdef notyet
596 1.165 ad /* XXXSMP hold in lwp_userret() */
597 1.165 ad KERNEL_UNLOCK_LAST(l);
598 1.165 ad #else
599 1.165 ad KERNEL_UNLOCK_ALL(l, NULL);
600 1.165 ad #endif
601 1.140 pk
602 1.179 yamt lwp_exit_switchaway(l);
603 1.107 thorpej }
604 1.107 thorpej
605 1.107 thorpej void
606 1.107 thorpej exit_lwps(struct lwp *l)
607 1.107 thorpej {
608 1.242 rmind proc_t *p = l->l_proc;
609 1.242 rmind lwp_t *l2;
610 1.165 ad int nlocks;
611 1.165 ad
612 1.165 ad KERNEL_UNLOCK_ALL(l, &nlocks);
613 1.242 rmind retry:
614 1.242 rmind KASSERT(mutex_owned(p->p_lock));
615 1.107 thorpej
616 1.107 thorpej /*
617 1.107 thorpej * Interrupt LWPs in interruptable sleep, unsuspend suspended
618 1.165 ad * LWPs and then wait for everyone else to finish.
619 1.107 thorpej */
620 1.107 thorpej LIST_FOREACH(l2, &p->p_lwps, l_sibling) {
621 1.165 ad if (l2 == l)
622 1.165 ad continue;
623 1.165 ad lwp_lock(l2);
624 1.167 pavel l2->l_flag |= LW_WEXIT;
625 1.167 pavel if ((l2->l_stat == LSSLEEP && (l2->l_flag & LW_SINTR)) ||
626 1.118 fvdl l2->l_stat == LSSUSPENDED || l2->l_stat == LSSTOP) {
627 1.165 ad /* setrunnable() will release the lock. */
628 1.107 thorpej setrunnable(l2);
629 1.165 ad continue;
630 1.107 thorpej }
631 1.165 ad lwp_unlock(l2);
632 1.107 thorpej }
633 1.242 rmind
634 1.242 rmind /*
635 1.242 rmind * Wait for every LWP to exit. Note: LWPs can get suspended/slept
636 1.242 rmind * behind us or there may even be new LWPs created. Therefore, a
637 1.242 rmind * full retry is required on error.
638 1.242 rmind */
639 1.107 thorpej while (p->p_nlwps > 1) {
640 1.242 rmind if (lwp_wait(l, 0, NULL, true)) {
641 1.150 yamt goto retry;
642 1.150 yamt }
643 1.145 perry }
644 1.107 thorpej
645 1.209 ad KERNEL_LOCK(nlocks, l);
646 1.181 yamt KASSERT(p->p_nlwps == 1);
647 1.24 cgd }
648 1.24 cgd
649 1.249 christos static int
650 1.249 christos do_sys_waitid(idtype_t idtype, id_t id, int *pid, int *status, int options,
651 1.249 christos struct wrusage *wru, siginfo_t *si)
652 1.177 dsl {
653 1.225 rmind proc_t *child;
654 1.225 rmind int error;
655 1.177 dsl
656 1.249 christos
657 1.249 christos if (wru != NULL)
658 1.249 christos memset(wru, 0, sizeof(*wru));
659 1.249 christos if (si != NULL)
660 1.249 christos memset(si, 0, sizeof(*si));
661 1.249 christos
662 1.203 ad mutex_enter(proc_lock);
663 1.249 christos error = find_stopped_child(curproc, idtype, id, options, &child, status,
664 1.249 christos wru, si);
665 1.177 dsl if (child == NULL) {
666 1.203 ad mutex_exit(proc_lock);
667 1.177 dsl *pid = 0;
668 1.177 dsl return error;
669 1.177 dsl }
670 1.177 dsl *pid = child->p_pid;
671 1.177 dsl
672 1.177 dsl if (child->p_stat == SZOMB) {
673 1.203 ad /* proc_free() will release the proc_lock. */
674 1.224 rmind if (options & WNOWAIT) {
675 1.203 ad mutex_exit(proc_lock);
676 1.224 rmind } else {
677 1.249 christos proc_free(child, wru);
678 1.177 dsl }
679 1.177 dsl } else {
680 1.177 dsl /* Child state must have been SSTOP. */
681 1.224 rmind mutex_exit(proc_lock);
682 1.177 dsl *status = W_STOPCODE(*status);
683 1.177 dsl }
684 1.177 dsl return 0;
685 1.177 dsl }
686 1.177 dsl
687 1.177 dsl int
688 1.249 christos do_sys_wait(int *pid, int *status, int options, struct rusage *ru)
689 1.249 christos {
690 1.249 christos idtype_t idtype;
691 1.249 christos id_t id;
692 1.249 christos int ret;
693 1.249 christos struct wrusage wru;
694 1.249 christos
695 1.249 christos /*
696 1.249 christos * Translate the special pid values into the (idtype, pid)
697 1.249 christos * pair for wait6. The WAIT_MYPGRP case is handled by
698 1.249 christos * find_stopped_child() on its own.
699 1.249 christos */
700 1.249 christos if (*pid == WAIT_ANY) {
701 1.249 christos idtype = P_ALL;
702 1.249 christos id = 0;
703 1.249 christos } else if (*pid < 0) {
704 1.249 christos idtype = P_PGID;
705 1.249 christos id = (id_t)-*pid;
706 1.249 christos } else {
707 1.249 christos idtype = P_PID;
708 1.249 christos id = (id_t)*pid;
709 1.249 christos }
710 1.249 christos options |= WEXITED | WTRAPPED;
711 1.249 christos ret = do_sys_waitid(idtype, id, pid, status, options, ru ? &wru : NULL,
712 1.249 christos NULL);
713 1.249 christos if (ru)
714 1.249 christos *ru = wru.wru_self;
715 1.249 christos return ret;
716 1.249 christos }
717 1.249 christos
718 1.249 christos int
719 1.225 rmind sys___wait450(struct lwp *l, const struct sys___wait450_args *uap,
720 1.225 rmind register_t *retval)
721 1.31 thorpej {
722 1.195 dsl /* {
723 1.89 lukem syscallarg(int) pid;
724 1.89 lukem syscallarg(int *) status;
725 1.89 lukem syscallarg(int) options;
726 1.89 lukem syscallarg(struct rusage *) rusage;
727 1.195 dsl } */
728 1.225 rmind int error, status, pid = SCARG(uap, pid);
729 1.225 rmind struct rusage ru;
730 1.24 cgd
731 1.225 rmind error = do_sys_wait(&pid, &status, SCARG(uap, options),
732 1.225 rmind SCARG(uap, rusage) != NULL ? &ru : NULL);
733 1.107 thorpej
734 1.195 dsl retval[0] = pid;
735 1.225 rmind if (pid == 0) {
736 1.109 dsl return error;
737 1.225 rmind }
738 1.225 rmind if (SCARG(uap, status)) {
739 1.225 rmind error = copyout(&status, SCARG(uap, status), sizeof(status));
740 1.225 rmind }
741 1.225 rmind if (SCARG(uap, rusage) && error == 0) {
742 1.177 dsl error = copyout(&ru, SCARG(uap, rusage), sizeof(ru));
743 1.225 rmind }
744 1.177 dsl return error;
745 1.109 dsl }
746 1.109 dsl
747 1.249 christos int
748 1.249 christos sys_wait6(struct lwp *l, const struct sys_wait6_args *uap, register_t *retval)
749 1.249 christos {
750 1.249 christos /* {
751 1.249 christos syscallarg(idtype_t) idtype;
752 1.249 christos syscallarg(id_t) id;
753 1.249 christos syscallarg(int *) status;
754 1.249 christos syscallarg(int) options;
755 1.249 christos syscallarg(struct wrusage *) wru;
756 1.249 christos syscallarg(siginfo_t *) si;
757 1.249 christos } */
758 1.249 christos struct wrusage wru, *wrup;
759 1.249 christos siginfo_t si, *sip;
760 1.249 christos idtype_t idtype;
761 1.249 christos int pid;
762 1.249 christos id_t id;
763 1.249 christos int error, status;
764 1.249 christos
765 1.249 christos idtype = SCARG(uap, idtype);
766 1.249 christos id = SCARG(uap, id);
767 1.249 christos
768 1.249 christos if (SCARG(uap, wru) != NULL)
769 1.249 christos wrup = &wru;
770 1.249 christos else
771 1.249 christos wrup = NULL;
772 1.249 christos
773 1.249 christos if (SCARG(uap, info) != NULL)
774 1.249 christos sip = &si;
775 1.249 christos else
776 1.249 christos sip = NULL;
777 1.249 christos
778 1.249 christos /*
779 1.249 christos * We expect all callers of wait6() to know about WEXITED and
780 1.249 christos * WTRAPPED.
781 1.249 christos */
782 1.249 christos error = do_sys_waitid(idtype, id, &pid, &status, SCARG(uap, options),
783 1.249 christos wrup, sip);
784 1.249 christos
785 1.249 christos if (SCARG(uap, status) != NULL && error == 0)
786 1.249 christos error = copyout(&status, SCARG(uap, status), sizeof(status));
787 1.249 christos if (SCARG(uap, wru) != NULL && error == 0)
788 1.249 christos error = copyout(&wru, SCARG(uap, wru), sizeof(wru));
789 1.249 christos if (SCARG(uap, info) != NULL && error == 0)
790 1.249 christos error = copyout(&si, SCARG(uap, info), sizeof(si));
791 1.249 christos return error;
792 1.249 christos }
793 1.249 christos
794 1.249 christos
795 1.249 christos static int
796 1.249 christos match_process(struct proc *pp, struct proc **q, idtype_t idtype, id_t id,
797 1.249 christos int options, struct wrusage *wrusage, siginfo_t *siginfo)
798 1.249 christos {
799 1.249 christos struct rusage *rup;
800 1.249 christos struct proc *p = *q;
801 1.249 christos
802 1.249 christos mutex_enter(p->p_lock);
803 1.249 christos switch (idtype) {
804 1.249 christos case P_ALL:
805 1.249 christos break;
806 1.249 christos case P_PID:
807 1.249 christos if (p->p_pid != (pid_t)id) {
808 1.249 christos mutex_exit(p->p_lock);
809 1.249 christos p = *q = proc_find_raw((pid_t)id);
810 1.249 christos if (p == NULL || p->p_stat == SIDL || p->p_pptr != pp) {
811 1.249 christos *q = NULL;
812 1.249 christos return -1;
813 1.249 christos }
814 1.249 christos mutex_enter(p->p_lock);
815 1.249 christos }
816 1.249 christos break;
817 1.249 christos case P_PGID:
818 1.249 christos if (p->p_pgid != (pid_t)id)
819 1.249 christos goto out;
820 1.249 christos break;
821 1.249 christos case P_SID:
822 1.249 christos if (p->p_session->s_sid != (pid_t)id)
823 1.249 christos goto out;
824 1.249 christos break;
825 1.249 christos case P_UID:
826 1.249 christos if (kauth_cred_getuid(p->p_cred) != (uid_t)id)
827 1.249 christos goto out;
828 1.249 christos break;
829 1.249 christos case P_GID:
830 1.249 christos if (kauth_cred_getgid(p->p_cred) != (gid_t)id)
831 1.249 christos goto out;
832 1.249 christos break;
833 1.249 christos case P_CID:
834 1.249 christos case P_PSETID:
835 1.249 christos case P_CPUID:
836 1.249 christos /* XXX: Implement me */
837 1.249 christos default:
838 1.249 christos out:
839 1.249 christos mutex_exit(p->p_lock);
840 1.249 christos return 0;
841 1.249 christos }
842 1.249 christos
843 1.249 christos if ((options & WEXITED) == 0 && p->p_stat == SZOMB)
844 1.249 christos goto out;
845 1.249 christos
846 1.249 christos if (siginfo != NULL) {
847 1.249 christos siginfo->si_errno = 0;
848 1.249 christos
849 1.249 christos /*
850 1.249 christos * SUSv4 requires that the si_signo value is always
851 1.249 christos * SIGCHLD. Obey it despite the rfork(2) interface
852 1.249 christos * allows to request other signal for child exit
853 1.249 christos * notification.
854 1.249 christos */
855 1.249 christos siginfo->si_signo = SIGCHLD;
856 1.249 christos
857 1.249 christos /*
858 1.249 christos * This is still a rough estimate. We will fix the
859 1.249 christos * cases TRAPPED, STOPPED, and CONTINUED later.
860 1.249 christos */
861 1.249 christos if (WCOREDUMP(p->p_xstat)) {
862 1.249 christos siginfo->si_code = CLD_DUMPED;
863 1.249 christos siginfo->si_status = WTERMSIG(p->p_xstat);
864 1.249 christos } else if (WIFSIGNALED(p->p_xstat)) {
865 1.249 christos siginfo->si_code = CLD_KILLED;
866 1.249 christos siginfo->si_status = WTERMSIG(p->p_xstat);
867 1.249 christos } else {
868 1.249 christos siginfo->si_code = CLD_EXITED;
869 1.249 christos siginfo->si_status = WEXITSTATUS(p->p_xstat);
870 1.249 christos }
871 1.249 christos
872 1.249 christos siginfo->si_pid = p->p_pid;
873 1.249 christos siginfo->si_uid = kauth_cred_getuid(p->p_cred);
874 1.249 christos
875 1.249 christos /*
876 1.249 christos * The si_addr field would be useful additional
877 1.249 christos * detail, but apparently the PC value may be lost
878 1.249 christos * when we reach this point. bzero() above sets
879 1.249 christos * siginfo->si_addr to NULL.
880 1.249 christos */
881 1.249 christos }
882 1.249 christos
883 1.249 christos /*
884 1.249 christos * There should be no reason to limit resources usage info to
885 1.249 christos * exited processes only. A snapshot about any resources used
886 1.249 christos * by a stopped process may be exactly what is needed.
887 1.249 christos */
888 1.249 christos if (wrusage != NULL) {
889 1.249 christos rup = &wrusage->wru_self;
890 1.249 christos *rup = p->p_stats->p_ru;
891 1.249 christos calcru(p, &rup->ru_utime, &rup->ru_stime, NULL, NULL);
892 1.249 christos
893 1.249 christos rup = &wrusage->wru_children;
894 1.249 christos *rup = p->p_stats->p_cru;
895 1.249 christos calcru(p, &rup->ru_utime, &rup->ru_stime, NULL, NULL);
896 1.249 christos }
897 1.249 christos
898 1.249 christos mutex_exit(p->p_lock);
899 1.249 christos return 1;
900 1.249 christos }
901 1.249 christos
902 1.109 dsl /*
903 1.109 dsl * Scan list of child processes for a child process that has stopped or
904 1.109 dsl * exited. Used by sys_wait4 and 'compat' equivalents.
905 1.165 ad *
906 1.203 ad * Must be called with the proc_lock held, and may release while waiting.
907 1.109 dsl */
908 1.177 dsl static int
909 1.249 christos find_stopped_child(struct proc *parent, idtype_t idtype, id_t id, int options,
910 1.249 christos struct proc **child_p, int *status_p, struct wrusage *wru, siginfo_t *si)
911 1.109 dsl {
912 1.165 ad struct proc *child, *dead;
913 1.128 dsl int error;
914 1.68 thorpej
915 1.203 ad KASSERT(mutex_owned(proc_lock));
916 1.165 ad
917 1.249 christos if (options & ~(WUNTRACED|WNOHANG|WALTSIG|WALLSIG|WTRAPPED|WEXITED|
918 1.249 christos WNOWAIT|WCONTINUED)
919 1.177 dsl && !(options & WOPTSCHECKED)) {
920 1.177 dsl *child_p = NULL;
921 1.177 dsl return EINVAL;
922 1.177 dsl }
923 1.177 dsl
924 1.249 christos if ((options & (WEXITED|WUNTRACED|WCONTINUED|WTRAPPED)) == 0) {
925 1.249 christos /*
926 1.249 christos * We will be unable to find any matching processes,
927 1.249 christos * because there are no known events to look for.
928 1.249 christos * Prefer to return error instead of blocking
929 1.249 christos * indefinitely.
930 1.249 christos */
931 1.249 christos *child_p = NULL;
932 1.249 christos return EINVAL;
933 1.249 christos }
934 1.249 christos
935 1.249 christos if ((pid_t)id == WAIT_MYPGRP && (idtype == P_PID || idtype == P_PGID)) {
936 1.249 christos mutex_enter(parent->p_lock);
937 1.249 christos id = (id_t)parent->p_pgid;
938 1.249 christos mutex_exit(parent->p_lock);
939 1.249 christos idtype = P_PGID;
940 1.249 christos }
941 1.177 dsl
942 1.120 yamt for (;;) {
943 1.128 dsl error = ECHILD;
944 1.165 ad dead = NULL;
945 1.165 ad
946 1.109 dsl LIST_FOREACH(child, &parent->p_children, p_sibling) {
947 1.249 christos int rv = match_process(parent, &child, idtype, id,
948 1.249 christos options, wru, si);
949 1.249 christos if (rv == -1)
950 1.249 christos break;
951 1.249 christos if (rv == 0)
952 1.165 ad continue;
953 1.165 ad
954 1.109 dsl /*
955 1.109 dsl * Wait for processes with p_exitsig != SIGCHLD
956 1.109 dsl * processes only if WALTSIG is set; wait for
957 1.109 dsl * processes with p_exitsig == SIGCHLD only
958 1.109 dsl * if WALTSIG is clear.
959 1.109 dsl */
960 1.109 dsl if (((options & WALLSIG) == 0) &&
961 1.109 dsl (options & WALTSIG ? child->p_exitsig == SIGCHLD
962 1.128 dsl : P_EXITSIG(child) != SIGCHLD)){
963 1.109 dsl continue;
964 1.128 dsl }
965 1.109 dsl
966 1.128 dsl error = 0;
967 1.165 ad if ((options & WNOZOMBIE) == 0) {
968 1.165 ad if (child->p_stat == SZOMB)
969 1.165 ad break;
970 1.165 ad if (child->p_stat == SDEAD) {
971 1.165 ad /*
972 1.165 ad * We may occasionally arrive here
973 1.165 ad * after receiving a signal, but
974 1.228 pooka * immediately before the child
975 1.165 ad * process is zombified. The wait
976 1.165 ad * will be short, so avoid returning
977 1.165 ad * to userspace.
978 1.165 ad */
979 1.165 ad dead = child;
980 1.165 ad }
981 1.165 ad }
982 1.109 dsl
983 1.249 christos if ((options & WTRAPPED) != 0 &&
984 1.249 christos child->p_stat == SSTOP &&
985 1.165 ad child->p_waited == 0 &&
986 1.165 ad (child->p_slflag & PSL_TRACED ||
987 1.165 ad options & WUNTRACED)) {
988 1.128 dsl if ((options & WNOWAIT) == 0) {
989 1.165 ad child->p_waited = 1;
990 1.128 dsl parent->p_nstopchild--;
991 1.128 dsl }
992 1.249 christos if (si) {
993 1.249 christos si->si_status = child->p_xstat;
994 1.249 christos si->si_code = CLD_TRAPPED;
995 1.249 christos }
996 1.128 dsl break;
997 1.128 dsl }
998 1.249 christos if (parent->p_nstopchild == 0) {
999 1.128 dsl child = NULL;
1000 1.128 dsl break;
1001 1.24 cgd }
1002 1.109 dsl }
1003 1.249 christos /* XXX: WCONTINUED? */
1004 1.165 ad
1005 1.165 ad if (child != NULL || error != 0 ||
1006 1.165 ad ((options & WNOHANG) != 0 && dead == NULL)) {
1007 1.176 dsl if (child != NULL) {
1008 1.165 ad *status_p = child->p_xstat;
1009 1.176 dsl }
1010 1.128 dsl *child_p = child;
1011 1.128 dsl return error;
1012 1.109 dsl }
1013 1.165 ad
1014 1.165 ad /*
1015 1.165 ad * Wait for another child process to stop.
1016 1.165 ad */
1017 1.203 ad error = cv_wait_sig(&parent->p_waitcv, proc_lock);
1018 1.165 ad
1019 1.177 dsl if (error != 0) {
1020 1.177 dsl *child_p = NULL;
1021 1.109 dsl return error;
1022 1.177 dsl }
1023 1.109 dsl }
1024 1.109 dsl }
1025 1.109 dsl
1026 1.109 dsl /*
1027 1.165 ad * Free a process after parent has taken all the state info. Must be called
1028 1.169 ad * with the proclist lock held, and will release before returning.
1029 1.165 ad *
1030 1.165 ad * *ru is returned to the caller, and must be freed by the caller.
1031 1.109 dsl */
1032 1.178 dsl static void
1033 1.249 christos proc_free(struct proc *p, struct wrusage *wru)
1034 1.109 dsl {
1035 1.219 rmind struct proc *parent = p->p_pptr;
1036 1.165 ad struct lwp *l;
1037 1.140 pk ksiginfo_t ksi;
1038 1.182 ad kauth_cred_t cred1, cred2;
1039 1.165 ad uid_t uid;
1040 1.24 cgd
1041 1.203 ad KASSERT(mutex_owned(proc_lock));
1042 1.165 ad KASSERT(p->p_nlwps == 1);
1043 1.165 ad KASSERT(p->p_nzlwps == 1);
1044 1.137 yamt KASSERT(p->p_nrlwps == 0);
1045 1.165 ad KASSERT(p->p_stat == SZOMB);
1046 1.137 yamt
1047 1.109 dsl /*
1048 1.109 dsl * If we got the child via ptrace(2) or procfs, and
1049 1.109 dsl * the parent is different (meaning the process was
1050 1.109 dsl * attached, rather than run as a child), then we need
1051 1.109 dsl * to give it back to the old parent, and send the
1052 1.109 dsl * parent the exit signal. The rest of the cleanup
1053 1.109 dsl * will be done when the old parent waits on the child.
1054 1.109 dsl */
1055 1.219 rmind if ((p->p_slflag & PSL_TRACED) != 0 && p->p_opptr != parent) {
1056 1.219 rmind mutex_enter(p->p_lock);
1057 1.219 rmind p->p_slflag &= ~(PSL_TRACED|PSL_FSTRACE|PSL_SYSCALL);
1058 1.219 rmind mutex_exit(p->p_lock);
1059 1.219 rmind parent = (p->p_opptr == NULL) ? initproc : p->p_opptr;
1060 1.219 rmind proc_reparent(p, parent);
1061 1.219 rmind p->p_opptr = NULL;
1062 1.219 rmind if (p->p_exitsig != 0) {
1063 1.219 rmind exit_psignal(p, parent, &ksi);
1064 1.219 rmind kpsignal(parent, &ksi, NULL);
1065 1.140 pk }
1066 1.219 rmind cv_broadcast(&parent->p_waitcv);
1067 1.219 rmind mutex_exit(proc_lock);
1068 1.219 rmind return;
1069 1.109 dsl }
1070 1.109 dsl
1071 1.179 yamt sched_proc_exit(parent, p);
1072 1.202 ad
1073 1.178 dsl /*
1074 1.178 dsl * Add child times of exiting process onto its own times.
1075 1.178 dsl * This cannot be done any earlier else it might get done twice.
1076 1.178 dsl */
1077 1.202 ad l = LIST_FIRST(&p->p_lwps);
1078 1.202 ad p->p_stats->p_ru.ru_nvcsw += (l->l_ncsw - l->l_nivcsw);
1079 1.202 ad p->p_stats->p_ru.ru_nivcsw += l->l_nivcsw;
1080 1.202 ad ruadd(&p->p_stats->p_ru, &l->l_ru);
1081 1.178 dsl ruadd(&p->p_stats->p_ru, &p->p_stats->p_cru);
1082 1.175 dsl ruadd(&parent->p_stats->p_cru, &p->p_stats->p_ru);
1083 1.249 christos if (wru != NULL) {
1084 1.249 christos wru->wru_self = p->p_stats->p_ru;
1085 1.249 christos wru->wru_children = p->p_stats->p_cru;
1086 1.249 christos }
1087 1.109 dsl p->p_xstat = 0;
1088 1.115 dsl
1089 1.115 dsl /*
1090 1.165 ad * At this point we are going to start freeing the final resources.
1091 1.165 ad * If anyone tries to access the proc structure after here they will
1092 1.165 ad * get a shock - bits are missing. Attempt to make it hard! We
1093 1.165 ad * don't bother with any further locking past this point.
1094 1.115 dsl */
1095 1.165 ad p->p_stat = SIDL; /* not even a zombie any more */
1096 1.165 ad LIST_REMOVE(p, p_list); /* off zombproc */
1097 1.219 rmind parent->p_nstopchild--;
1098 1.165 ad LIST_REMOVE(p, p_sibling);
1099 1.115 dsl
1100 1.188 ad /*
1101 1.188 ad * Let pid be reallocated.
1102 1.188 ad */
1103 1.230 chs proc_free_pid(p->p_pid);
1104 1.220 rmind
1105 1.220 rmind /*
1106 1.220 rmind * Unlink process from its process group.
1107 1.220 rmind * Releases the proc_lock.
1108 1.220 rmind */
1109 1.220 rmind proc_leavepgrp(p);
1110 1.182 ad
1111 1.109 dsl /*
1112 1.188 ad * Delay release until after lwp_free.
1113 1.109 dsl */
1114 1.182 ad cred2 = l->l_cred;
1115 1.182 ad
1116 1.182 ad /*
1117 1.188 ad * Free the last LWP's resources.
1118 1.188 ad *
1119 1.188 ad * lwp_free ensures the LWP is no longer running on another CPU.
1120 1.182 ad */
1121 1.182 ad lwp_free(l, false, true);
1122 1.56 thorpej
1123 1.165 ad /*
1124 1.188 ad * Now no one except us can reach the process p.
1125 1.165 ad */
1126 1.35 mycroft
1127 1.109 dsl /*
1128 1.109 dsl * Decrement the count of procs running with this uid.
1129 1.109 dsl */
1130 1.188 ad cred1 = p->p_cred;
1131 1.188 ad uid = kauth_cred_getuid(cred1);
1132 1.165 ad (void)chgproccnt(uid, -1);
1133 1.24 cgd
1134 1.109 dsl /*
1135 1.165 ad * Release substructures.
1136 1.109 dsl */
1137 1.188 ad
1138 1.233 rmind lim_free(p->p_limit);
1139 1.188 ad pstatsfree(p->p_stats);
1140 1.182 ad kauth_cred_free(cred1);
1141 1.182 ad kauth_cred_free(cred2);
1142 1.107 thorpej
1143 1.109 dsl /*
1144 1.109 dsl * Release reference to text vnode
1145 1.109 dsl */
1146 1.188 ad if (p->p_textvp)
1147 1.188 ad vrele(p->p_textvp);
1148 1.188 ad
1149 1.198 ad mutex_destroy(&p->p_auxlock);
1150 1.204 ad mutex_obj_free(p->p_lock);
1151 1.188 ad mutex_destroy(&p->p_stmutex);
1152 1.188 ad cv_destroy(&p->p_waitcv);
1153 1.188 ad cv_destroy(&p->p_lwpcv);
1154 1.191 ad rw_destroy(&p->p_reflock);
1155 1.188 ad
1156 1.196 ad proc_free_mem(p);
1157 1.24 cgd }
1158 1.24 cgd
1159 1.24 cgd /*
1160 1.24 cgd * make process 'parent' the new parent of process 'child'.
1161 1.128 dsl *
1162 1.203 ad * Must be called with proc_lock held.
1163 1.24 cgd */
1164 1.24 cgd void
1165 1.82 thorpej proc_reparent(struct proc *child, struct proc *parent)
1166 1.24 cgd {
1167 1.24 cgd
1168 1.203 ad KASSERT(mutex_owned(proc_lock));
1169 1.165 ad
1170 1.24 cgd if (child->p_pptr == parent)
1171 1.24 cgd return;
1172 1.70 thorpej
1173 1.246 pgoyette if (child->p_stat == SZOMB || child->p_stat == SDEAD ||
1174 1.165 ad (child->p_stat == SSTOP && !child->p_waited)) {
1175 1.128 dsl child->p_pptr->p_nstopchild--;
1176 1.128 dsl parent->p_nstopchild++;
1177 1.128 dsl }
1178 1.70 thorpej if (parent == initproc)
1179 1.70 thorpej child->p_exitsig = SIGCHLD;
1180 1.24 cgd
1181 1.25 mycroft LIST_REMOVE(child, p_sibling);
1182 1.25 mycroft LIST_INSERT_HEAD(&parent->p_children, child, p_sibling);
1183 1.24 cgd child->p_pptr = parent;
1184 1.210 ad child->p_ppid = parent->p_pid;
1185 1.24 cgd }
1186