kern_fork.c revision 1.188 1 1.188 rmind /* $NetBSD: kern_fork.c,v 1.188 2012/03/02 21:23:05 rmind Exp $ */
2 1.85 thorpej
3 1.85 thorpej /*-
4 1.159 ad * Copyright (c) 1999, 2001, 2004, 2006, 2007, 2008 The NetBSD Foundation, Inc.
5 1.85 thorpej * All rights reserved.
6 1.85 thorpej *
7 1.85 thorpej * This code is derived from software contributed to The NetBSD Foundation
8 1.85 thorpej * by Jason R. Thorpe of the Numerical Aerospace Simulation Facility,
9 1.151 ad * NASA Ames Research Center, by Charles M. Hannum, and by Andrew Doran.
10 1.120 perry *
11 1.120 perry * Redistribution and use in source and binary forms, with or without
12 1.85 thorpej * modification, are permitted provided that the following conditions
13 1.85 thorpej * are met:
14 1.85 thorpej * 1. Redistributions of source code must retain the above copyright
15 1.85 thorpej * notice, this list of conditions and the following disclaimer.
16 1.85 thorpej * 2. Redistributions in binary form must reproduce the above copyright
17 1.85 thorpej * notice, this list of conditions and the following disclaimer in the
18 1.85 thorpej * documentation and/or other materials provided with the distribution.
19 1.120 perry *
20 1.85 thorpej * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
21 1.85 thorpej * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
22 1.85 thorpej * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
23 1.85 thorpej * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
24 1.85 thorpej * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
25 1.85 thorpej * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
26 1.85 thorpej * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
27 1.85 thorpej * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
28 1.85 thorpej * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
29 1.85 thorpej * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
30 1.85 thorpej * POSSIBILITY OF SUCH DAMAGE.
31 1.120 perry */
32 1.19 cgd
33 1.16 cgd /*
34 1.17 cgd * Copyright (c) 1982, 1986, 1989, 1991, 1993
35 1.17 cgd * The Regents of the University of California. All rights reserved.
36 1.16 cgd * (c) UNIX System Laboratories, Inc.
37 1.16 cgd * All or some portions of this file are derived from material licensed
38 1.16 cgd * to the University of California by American Telephone and Telegraph
39 1.16 cgd * Co. or Unix System Laboratories, Inc. and are reproduced herein with
40 1.16 cgd * the permission of UNIX System Laboratories, Inc.
41 1.16 cgd *
42 1.16 cgd * Redistribution and use in source and binary forms, with or without
43 1.16 cgd * modification, are permitted provided that the following conditions
44 1.16 cgd * are met:
45 1.16 cgd * 1. Redistributions of source code must retain the above copyright
46 1.16 cgd * notice, this list of conditions and the following disclaimer.
47 1.16 cgd * 2. Redistributions in binary form must reproduce the above copyright
48 1.16 cgd * notice, this list of conditions and the following disclaimer in the
49 1.16 cgd * documentation and/or other materials provided with the distribution.
50 1.110 agc * 3. Neither the name of the University nor the names of its contributors
51 1.16 cgd * may be used to endorse or promote products derived from this software
52 1.16 cgd * without specific prior written permission.
53 1.16 cgd *
54 1.16 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
55 1.16 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
56 1.16 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
57 1.16 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
58 1.16 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
59 1.16 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
60 1.16 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
61 1.16 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
62 1.16 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
63 1.16 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
64 1.16 cgd * SUCH DAMAGE.
65 1.16 cgd *
66 1.40 fvdl * @(#)kern_fork.c 8.8 (Berkeley) 2/14/95
67 1.16 cgd */
68 1.87 lukem
69 1.87 lukem #include <sys/cdefs.h>
70 1.188 rmind __KERNEL_RCSID(0, "$NetBSD: kern_fork.c,v 1.188 2012/03/02 21:23:05 rmind Exp $");
71 1.38 mrg
72 1.43 thorpej #include "opt_ktrace.h"
73 1.16 cgd
74 1.16 cgd #include <sys/param.h>
75 1.16 cgd #include <sys/systm.h>
76 1.16 cgd #include <sys/filedesc.h>
77 1.16 cgd #include <sys/kernel.h>
78 1.44 thorpej #include <sys/pool.h>
79 1.29 christos #include <sys/mount.h>
80 1.16 cgd #include <sys/proc.h>
81 1.92 gmcgarry #include <sys/ras.h>
82 1.16 cgd #include <sys/resourcevar.h>
83 1.16 cgd #include <sys/vnode.h>
84 1.16 cgd #include <sys/file.h>
85 1.16 cgd #include <sys/acct.h>
86 1.16 cgd #include <sys/ktrace.h>
87 1.53 ross #include <sys/sched.h>
88 1.56 thorpej #include <sys/signalvar.h>
89 1.124 elad #include <sys/kauth.h>
90 1.151 ad #include <sys/atomic.h>
91 1.29 christos #include <sys/syscallargs.h>
92 1.171 pooka #include <sys/uidinfo.h>
93 1.176 darran #include <sys/sdt.h>
94 1.186 christos #include <sys/ptrace.h>
95 1.16 cgd
96 1.37 mrg #include <uvm/uvm_extern.h>
97 1.37 mrg
98 1.176 darran /*
99 1.176 darran * DTrace SDT provider definitions
100 1.176 darran */
101 1.188 rmind SDT_PROBE_DEFINE(proc,,,create,
102 1.176 darran "struct proc *", NULL, /* new process */
103 1.176 darran "struct proc *", NULL, /* parent process */
104 1.176 darran "int", NULL, /* flags */
105 1.176 darran NULL, NULL, NULL, NULL);
106 1.176 darran
107 1.188 rmind u_int nprocs __cacheline_aligned = 1; /* process 0 */
108 1.26 mycroft
109 1.103 jdolecek /*
110 1.103 jdolecek * Number of ticks to sleep if fork() would fail due to process hitting
111 1.103 jdolecek * limits. Exported in miliseconds to userland via sysctl.
112 1.103 jdolecek */
113 1.103 jdolecek int forkfsleep = 0;
114 1.103 jdolecek
115 1.26 mycroft int
116 1.153 dsl sys_fork(struct lwp *l, const void *v, register_t *retval)
117 1.16 cgd {
118 1.16 cgd
119 1.188 rmind return fork1(l, 0, SIGCHLD, NULL, 0, NULL, NULL, retval, NULL);
120 1.16 cgd }
121 1.16 cgd
122 1.34 thorpej /*
123 1.34 thorpej * vfork(2) system call compatible with 4.4BSD (i.e. BSD with Mach VM).
124 1.34 thorpej * Address space is not shared, but parent is blocked until child exit.
125 1.34 thorpej */
126 1.26 mycroft int
127 1.153 dsl sys_vfork(struct lwp *l, const void *v, register_t *retval)
128 1.16 cgd {
129 1.16 cgd
130 1.188 rmind return fork1(l, FORK_PPWAIT, SIGCHLD, NULL, 0, NULL, NULL,
131 1.188 rmind retval, NULL);
132 1.16 cgd }
133 1.16 cgd
134 1.34 thorpej /*
135 1.34 thorpej * New vfork(2) system call for NetBSD, which implements original 3BSD vfork(2)
136 1.34 thorpej * semantics. Address space is shared, and parent is blocked until child exit.
137 1.34 thorpej */
138 1.26 mycroft int
139 1.153 dsl sys___vfork14(struct lwp *l, const void *v, register_t *retval)
140 1.34 thorpej {
141 1.34 thorpej
142 1.188 rmind return fork1(l, FORK_PPWAIT|FORK_SHAREVM, SIGCHLD, NULL, 0,
143 1.188 rmind NULL, NULL, retval, NULL);
144 1.85 thorpej }
145 1.85 thorpej
146 1.85 thorpej /*
147 1.85 thorpej * Linux-compatible __clone(2) system call.
148 1.85 thorpej */
149 1.85 thorpej int
150 1.188 rmind sys___clone(struct lwp *l, const struct sys___clone_args *uap,
151 1.188 rmind register_t *retval)
152 1.85 thorpej {
153 1.153 dsl /* {
154 1.85 thorpej syscallarg(int) flags;
155 1.85 thorpej syscallarg(void *) stack;
156 1.153 dsl } */
157 1.85 thorpej int flags, sig;
158 1.85 thorpej
159 1.85 thorpej /*
160 1.85 thorpej * We don't support the CLONE_PID or CLONE_PTRACE flags.
161 1.85 thorpej */
162 1.85 thorpej if (SCARG(uap, flags) & (CLONE_PID|CLONE_PTRACE))
163 1.188 rmind return EINVAL;
164 1.86 fvdl
165 1.118 jdolecek /*
166 1.118 jdolecek * Linux enforces CLONE_VM with CLONE_SIGHAND, do same.
167 1.118 jdolecek */
168 1.118 jdolecek if (SCARG(uap, flags) & CLONE_SIGHAND
169 1.118 jdolecek && (SCARG(uap, flags) & CLONE_VM) == 0)
170 1.188 rmind return EINVAL;
171 1.118 jdolecek
172 1.86 fvdl flags = 0;
173 1.85 thorpej
174 1.85 thorpej if (SCARG(uap, flags) & CLONE_VM)
175 1.85 thorpej flags |= FORK_SHAREVM;
176 1.85 thorpej if (SCARG(uap, flags) & CLONE_FS)
177 1.85 thorpej flags |= FORK_SHARECWD;
178 1.85 thorpej if (SCARG(uap, flags) & CLONE_FILES)
179 1.85 thorpej flags |= FORK_SHAREFILES;
180 1.85 thorpej if (SCARG(uap, flags) & CLONE_SIGHAND)
181 1.85 thorpej flags |= FORK_SHARESIGS;
182 1.85 thorpej if (SCARG(uap, flags) & CLONE_VFORK)
183 1.85 thorpej flags |= FORK_PPWAIT;
184 1.85 thorpej
185 1.85 thorpej sig = SCARG(uap, flags) & CLONE_CSIGNAL;
186 1.85 thorpej if (sig < 0 || sig >= _NSIG)
187 1.188 rmind return EINVAL;
188 1.85 thorpej
189 1.85 thorpej /*
190 1.85 thorpej * Note that the Linux API does not provide a portable way of
191 1.85 thorpej * specifying the stack area; the caller must know if the stack
192 1.85 thorpej * grows up or down. So, we pass a stack size of 0, so that the
193 1.85 thorpej * code that makes this adjustment is a noop.
194 1.85 thorpej */
195 1.188 rmind return fork1(l, flags, sig, SCARG(uap, stack), 0,
196 1.188 rmind NULL, NULL, retval, NULL);
197 1.49 thorpej }
198 1.49 thorpej
199 1.188 rmind /*
200 1.188 rmind * Print the 'table full' message once per 10 seconds.
201 1.188 rmind */
202 1.188 rmind static struct timeval fork_tfmrate = { 10, 0 };
203 1.101 jdolecek
204 1.130 ad /*
205 1.130 ad * General fork call. Note that another LWP in the process may call exec()
206 1.130 ad * or exit() while we are forking. It's safe to continue here, because
207 1.130 ad * neither operation will complete until all LWPs have exited the process.
208 1.188 rmind */
209 1.34 thorpej int
210 1.105 thorpej fork1(struct lwp *l1, int flags, int exitsig, void *stack, size_t stacksize,
211 1.70 thorpej void (*func)(void *), void *arg, register_t *retval,
212 1.70 thorpej struct proc **rnewprocp)
213 1.16 cgd {
214 1.113 dsl struct proc *p1, *p2, *parent;
215 1.144 dsl struct plimit *p1_lim;
216 1.84 lukem uid_t uid;
217 1.105 thorpej struct lwp *l2;
218 1.130 ad int count;
219 1.84 lukem vaddr_t uaddr;
220 1.151 ad int tnprocs;
221 1.186 christos int tracefork;
222 1.156 elad int error = 0;
223 1.16 cgd
224 1.105 thorpej p1 = l1->l_proc;
225 1.162 ad uid = kauth_cred_getuid(l1->l_cred);
226 1.151 ad tnprocs = atomic_inc_uint_nv(&nprocs);
227 1.156 elad
228 1.156 elad /*
229 1.156 elad * Although process entries are dynamically created, we still keep
230 1.156 elad * a global limit on the maximum number we will create.
231 1.156 elad */
232 1.156 elad if (__predict_false(tnprocs >= maxproc))
233 1.156 elad error = -1;
234 1.156 elad else
235 1.157 ad error = kauth_authorize_process(l1->l_cred,
236 1.156 elad KAUTH_PROCESS_FORK, p1, KAUTH_ARG(tnprocs), NULL, NULL);
237 1.156 elad
238 1.156 elad if (error) {
239 1.101 jdolecek static struct timeval lasttfm;
240 1.151 ad atomic_dec_uint(&nprocs);
241 1.101 jdolecek if (ratecheck(&lasttfm, &fork_tfmrate))
242 1.101 jdolecek tablefull("proc", "increase kern.maxproc or NPROC");
243 1.103 jdolecek if (forkfsleep)
244 1.166 ad kpause("forkmx", false, forkfsleep, NULL);
245 1.188 rmind return EAGAIN;
246 1.16 cgd }
247 1.21 mycroft
248 1.17 cgd /*
249 1.150 elad * Enforce limits.
250 1.17 cgd */
251 1.17 cgd count = chgproccnt(uid, 1);
252 1.173 christos if (kauth_authorize_generic(l1->l_cred, KAUTH_GENERIC_ISSUSER, NULL) !=
253 1.173 christos 0 && __predict_false(count > p1->p_rlimit[RLIMIT_NPROC].rlim_cur)) {
254 1.17 cgd (void)chgproccnt(uid, -1);
255 1.151 ad atomic_dec_uint(&nprocs);
256 1.103 jdolecek if (forkfsleep)
257 1.166 ad kpause("forkulim", false, forkfsleep, NULL);
258 1.188 rmind return EAGAIN;
259 1.17 cgd }
260 1.17 cgd
261 1.41 thorpej /*
262 1.41 thorpej * Allocate virtual address space for the U-area now, while it
263 1.41 thorpej * is still easy to abort the fork operation if we're out of
264 1.174 rmind * kernel virtual address space.
265 1.41 thorpej */
266 1.174 rmind uaddr = uvm_uarea_alloc();
267 1.64 thorpej if (__predict_false(uaddr == 0)) {
268 1.41 thorpej (void)chgproccnt(uid, -1);
269 1.151 ad atomic_dec_uint(&nprocs);
270 1.188 rmind return ENOMEM;
271 1.41 thorpej }
272 1.41 thorpej
273 1.41 thorpej /*
274 1.41 thorpej * We are now committed to the fork. From here on, we may
275 1.41 thorpej * block on resources, but resource allocation may NOT fail.
276 1.41 thorpej */
277 1.41 thorpej
278 1.17 cgd /* Allocate new proc. */
279 1.107 dsl p2 = proc_alloc();
280 1.16 cgd
281 1.16 cgd /*
282 1.16 cgd * Make a proc table entry for the new process.
283 1.16 cgd * Start by zeroing the section of proc that is zero-initialized,
284 1.16 cgd * then copy the section that is copied directly from the parent.
285 1.16 cgd */
286 1.45 perry memset(&p2->p_startzero, 0,
287 1.135 christos (unsigned) ((char *)&p2->p_endzero - (char *)&p2->p_startzero));
288 1.45 perry memcpy(&p2->p_startcopy, &p1->p_startcopy,
289 1.135 christos (unsigned) ((char *)&p2->p_endcopy - (char *)&p2->p_startcopy));
290 1.66 thorpej
291 1.130 ad CIRCLEQ_INIT(&p2->p_sigpend.sp_info);
292 1.130 ad
293 1.105 thorpej LIST_INIT(&p2->p_lwps);
294 1.130 ad LIST_INIT(&p2->p_sigwaiters);
295 1.16 cgd
296 1.16 cgd /*
297 1.16 cgd * Duplicate sub-structures as needed.
298 1.16 cgd * Increase reference counts on shared objects.
299 1.122 cube * Inherit flags we want to keep. The flags related to SIGCHLD
300 1.122 cube * handling are important in order to keep a consistent behaviour
301 1.179 matt * for the child after the fork. If we are a 32-bit process, the
302 1.179 matt * child will be too.
303 1.16 cgd */
304 1.179 matt p2->p_flag =
305 1.179 matt p1->p_flag & (PK_SUGID | PK_NOCLDWAIT | PK_CLDSIGIGN | PK_32);
306 1.21 mycroft p2->p_emul = p1->p_emul;
307 1.88 thorpej p2->p_execsw = p1->p_execsw;
308 1.83 fvdl
309 1.130 ad if (flags & FORK_SYSTEM) {
310 1.130 ad /*
311 1.130 ad * Mark it as a system process. Set P_NOCLDWAIT so that
312 1.188 rmind * children are reparented to init(8) when they exit.
313 1.130 ad * init(8) can easily wait them out for us.
314 1.130 ad */
315 1.132 pavel p2->p_flag |= (PK_SYSTEM | PK_NOCLDWAIT);
316 1.130 ad }
317 1.130 ad
318 1.152 ad mutex_init(&p2->p_stmutex, MUTEX_DEFAULT, IPL_HIGH);
319 1.155 ad mutex_init(&p2->p_auxlock, MUTEX_DEFAULT, IPL_NONE);
320 1.147 ad rw_init(&p2->p_reflock);
321 1.130 ad cv_init(&p2->p_waitcv, "wait");
322 1.130 ad cv_init(&p2->p_lwpcv, "lwpwait");
323 1.124 elad
324 1.162 ad /*
325 1.162 ad * Share a lock between the processes if they are to share signal
326 1.162 ad * state: we must synchronize access to it.
327 1.162 ad */
328 1.162 ad if (flags & FORK_SHARESIGS) {
329 1.162 ad p2->p_lock = p1->p_lock;
330 1.162 ad mutex_obj_hold(p1->p_lock);
331 1.162 ad } else
332 1.162 ad p2->p_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
333 1.162 ad
334 1.129 elad kauth_proc_fork(p1, p2);
335 1.92 gmcgarry
336 1.145 ad p2->p_raslist = NULL;
337 1.92 gmcgarry #if defined(__HAVE_RAS)
338 1.92 gmcgarry ras_fork(p1, p2);
339 1.92 gmcgarry #endif
340 1.51 sommerfe
341 1.17 cgd /* bump references to the text vnode (for procfs) */
342 1.17 cgd p2->p_textvp = p1->p_textvp;
343 1.17 cgd if (p2->p_textvp)
344 1.175 pooka vref(p2->p_textvp);
345 1.16 cgd
346 1.57 thorpej if (flags & FORK_SHAREFILES)
347 1.159 ad fd_share(p2);
348 1.91 pooka else if (flags & FORK_CLEANFILES)
349 1.159 ad p2->p_fd = fd_init(NULL);
350 1.57 thorpej else
351 1.159 ad p2->p_fd = fd_copy();
352 1.57 thorpej
353 1.181 rmind /* XXX racy */
354 1.181 rmind p2->p_mqueue_cnt = p1->p_mqueue_cnt;
355 1.181 rmind
356 1.57 thorpej if (flags & FORK_SHARECWD)
357 1.159 ad cwdshare(p2);
358 1.57 thorpej else
359 1.159 ad p2->p_cwdi = cwdinit();
360 1.55 thorpej
361 1.16 cgd /*
362 1.183 rmind * Note: p_limit (rlimit stuff) is copy-on-write, so normally
363 1.183 rmind * we just need increase pl_refcnt.
364 1.144 dsl */
365 1.144 dsl p1_lim = p1->p_limit;
366 1.183 rmind if (!p1_lim->pl_writeable) {
367 1.144 dsl lim_addref(p1_lim);
368 1.144 dsl p2->p_limit = p1_lim;
369 1.183 rmind } else {
370 1.183 rmind p2->p_limit = lim_copy(p1_lim);
371 1.16 cgd }
372 1.16 cgd
373 1.170 ad p2->p_lflag = ((flags & FORK_PPWAIT) ? PL_PPWAIT : 0);
374 1.170 ad p2->p_sflag = 0;
375 1.130 ad p2->p_slflag = 0;
376 1.113 dsl parent = (flags & FORK_NOWAIT) ? initproc : p1;
377 1.113 dsl p2->p_pptr = parent;
378 1.169 ad p2->p_ppid = parent->p_pid;
379 1.107 dsl LIST_INIT(&p2->p_children);
380 1.107 dsl
381 1.138 rmind p2->p_aio = NULL;
382 1.62 thorpej
383 1.16 cgd #ifdef KTRACE
384 1.16 cgd /*
385 1.16 cgd * Copy traceflag and tracefile if enabled.
386 1.16 cgd * If not inherited, these were zeroed above.
387 1.16 cgd */
388 1.83 fvdl if (p1->p_traceflag & KTRFAC_INHERIT) {
389 1.142 ad mutex_enter(&ktrace_lock);
390 1.16 cgd p2->p_traceflag = p1->p_traceflag;
391 1.16 cgd if ((p2->p_tracep = p1->p_tracep) != NULL)
392 1.42 christos ktradref(p2);
393 1.142 ad mutex_exit(&ktrace_lock);
394 1.16 cgd }
395 1.16 cgd #endif
396 1.83 fvdl
397 1.56 thorpej /*
398 1.56 thorpej * Create signal actions for the child process.
399 1.56 thorpej */
400 1.148 ad p2->p_sigacts = sigactsinit(p1, flags & FORK_SHARESIGS);
401 1.162 ad mutex_enter(p1->p_lock);
402 1.130 ad p2->p_sflag |=
403 1.130 ad (p1->p_sflag & (PS_STOPFORK | PS_STOPEXEC | PS_NOCLDSTOP));
404 1.139 yamt sched_proc_fork(p1, p2);
405 1.162 ad mutex_exit(p1->p_lock);
406 1.130 ad
407 1.130 ad p2->p_stflag = p1->p_stflag;
408 1.75 jdolecek
409 1.75 jdolecek /*
410 1.120 perry * p_stats.
411 1.105 thorpej * Copy parts of p_stats, and zero out the rest.
412 1.105 thorpej */
413 1.105 thorpej p2->p_stats = pstatscopy(p1->p_stats);
414 1.105 thorpej
415 1.105 thorpej /*
416 1.178 chs * Set up the new process address space.
417 1.178 chs */
418 1.178 chs uvm_proc_fork(p1, p2, (flags & FORK_SHAREVM) ? true : false);
419 1.178 chs
420 1.178 chs /*
421 1.178 chs * Finish creating the child process.
422 1.178 chs * It will return through a different path later.
423 1.178 chs */
424 1.178 chs lwp_create(l1, p2, uaddr, (flags & FORK_PPWAIT) ? LWP_VFORK : 0,
425 1.178 chs stack, stacksize, (func != NULL) ? func : child_return, arg, &l2,
426 1.178 chs l1->l_class);
427 1.185 christos
428 1.185 christos /*
429 1.185 christos * Inherit l_private from the parent.
430 1.185 christos * Note that we cannot use lwp_setprivate() here since that
431 1.185 christos * also sets the CPU TLS register, which is incorrect if the
432 1.185 christos * process has changed that without letting the kernel know.
433 1.185 christos */
434 1.185 christos l2->l_private = l1->l_private;
435 1.178 chs
436 1.178 chs /*
437 1.178 chs * If emulation has a process fork hook, call it now.
438 1.75 jdolecek */
439 1.75 jdolecek if (p2->p_emul->e_proc_fork)
440 1.178 chs (*p2->p_emul->e_proc_fork)(p2, l1, flags);
441 1.106 thorpej
442 1.106 thorpej /*
443 1.106 thorpej * ...and finally, any other random fork hooks that subsystems
444 1.106 thorpej * might have registered.
445 1.106 thorpej */
446 1.106 thorpej doforkhooks(p2, p1);
447 1.16 cgd
448 1.176 darran SDT_PROBE(proc,,,create, p2, p1, flags, 0, 0);
449 1.176 darran
450 1.26 mycroft /*
451 1.130 ad * It's now safe for the scheduler and other processes to see the
452 1.130 ad * child process.
453 1.130 ad */
454 1.161 ad mutex_enter(proc_lock);
455 1.130 ad
456 1.130 ad if (p1->p_session->s_ttyvp != NULL && p1->p_lflag & PL_CONTROLT)
457 1.130 ad p2->p_lflag |= PL_CONTROLT;
458 1.130 ad
459 1.130 ad LIST_INSERT_HEAD(&parent->p_children, p2, p_sibling);
460 1.95 christos p2->p_exitsig = exitsig; /* signal for parent on exit */
461 1.130 ad
462 1.187 christos /*
463 1.187 christos * We don't want to tracefork vfork()ed processes because they
464 1.187 christos * will not receive the SIGTRAP until it is too late.
465 1.187 christos */
466 1.186 christos tracefork = (p1->p_slflag & (PSL_TRACEFORK|PSL_TRACED)) ==
467 1.187 christos (PSL_TRACEFORK|PSL_TRACED) && (flags && FORK_PPWAIT) == 0;
468 1.186 christos if (tracefork) {
469 1.186 christos p2->p_slflag |= PSL_TRACED;
470 1.186 christos p2->p_opptr = p2->p_pptr;
471 1.186 christos if (p2->p_pptr != p1->p_pptr) {
472 1.186 christos struct proc *parent1 = p2->p_pptr;
473 1.186 christos
474 1.186 christos if (parent1->p_lock < p2->p_lock) {
475 1.186 christos if (!mutex_tryenter(parent1->p_lock)) {
476 1.186 christos mutex_exit(p2->p_lock);
477 1.186 christos mutex_enter(parent1->p_lock);
478 1.186 christos }
479 1.186 christos } else if (parent1->p_lock > p2->p_lock) {
480 1.186 christos mutex_enter(parent1->p_lock);
481 1.186 christos }
482 1.186 christos parent1->p_slflag |= PSL_CHTRACED;
483 1.186 christos proc_reparent(p2, p1->p_pptr);
484 1.186 christos if (parent1->p_lock != p2->p_lock)
485 1.186 christos mutex_exit(parent1->p_lock);
486 1.186 christos }
487 1.186 christos
488 1.186 christos /*
489 1.186 christos * Set ptrace status.
490 1.186 christos */
491 1.186 christos p1->p_fpid = p2->p_pid;
492 1.186 christos p2->p_fpid = p1->p_pid;
493 1.186 christos }
494 1.186 christos
495 1.130 ad LIST_INSERT_AFTER(p1, p2, p_pglist);
496 1.95 christos LIST_INSERT_HEAD(&allproc, p2, p_list);
497 1.130 ad
498 1.158 dsl p2->p_trace_enabled = trace_is_enabled(p2);
499 1.98 provos #ifdef __HAVE_SYSCALL_INTERN
500 1.98 provos (*p2->p_emul->e_syscall_intern)(p2);
501 1.98 provos #endif
502 1.16 cgd
503 1.16 cgd /*
504 1.34 thorpej * Update stats now that we know the fork was successful.
505 1.34 thorpej */
506 1.37 mrg uvmexp.forks++;
507 1.37 mrg if (flags & FORK_PPWAIT)
508 1.37 mrg uvmexp.forks_ppwait++;
509 1.37 mrg if (flags & FORK_SHAREVM)
510 1.37 mrg uvmexp.forks_sharevm++;
511 1.35 thorpej
512 1.35 thorpej /*
513 1.35 thorpej * Pass a pointer to the new process to the caller.
514 1.35 thorpej */
515 1.35 thorpej if (rnewprocp != NULL)
516 1.35 thorpej *rnewprocp = p2;
517 1.34 thorpej
518 1.142 ad if (ktrpoint(KTR_EMUL))
519 1.114 enami p2->p_traceflag |= KTRFAC_TRC_EMUL;
520 1.78 jdolecek
521 1.34 thorpej /*
522 1.161 ad * Notify any interested parties about the new process.
523 1.161 ad */
524 1.161 ad if (!SLIST_EMPTY(&p1->p_klist)) {
525 1.161 ad mutex_exit(proc_lock);
526 1.161 ad KNOTE(&p1->p_klist, NOTE_FORK | p2->p_pid);
527 1.161 ad mutex_enter(proc_lock);
528 1.161 ad }
529 1.161 ad
530 1.161 ad /*
531 1.130 ad * Make child runnable, set start time, and add to run queue except
532 1.130 ad * if the parent requested the child to start in SSTOP state.
533 1.130 ad */
534 1.162 ad mutex_enter(p2->p_lock);
535 1.130 ad
536 1.165 ad /*
537 1.165 ad * Start profiling.
538 1.165 ad */
539 1.165 ad if ((p2->p_stflag & PST_PROFIL) != 0) {
540 1.165 ad mutex_spin_enter(&p2->p_stmutex);
541 1.165 ad startprofclock(p2);
542 1.165 ad mutex_spin_exit(&p2->p_stmutex);
543 1.165 ad }
544 1.165 ad
545 1.130 ad getmicrotime(&p2->p_stats->p_start);
546 1.130 ad p2->p_acflag = AFORK;
547 1.165 ad lwp_lock(l2);
548 1.177 yamt KASSERT(p2->p_nrlwps == 1);
549 1.130 ad if (p2->p_sflag & PS_STOPFORK) {
550 1.184 rmind struct schedstate_percpu *spc = &l2->l_cpu->ci_schedstate;
551 1.130 ad p2->p_nrlwps = 0;
552 1.130 ad p2->p_stat = SSTOP;
553 1.130 ad p2->p_waited = 0;
554 1.130 ad p1->p_nstopchild++;
555 1.130 ad l2->l_stat = LSSTOP;
556 1.184 rmind KASSERT(l2->l_wchan == NULL);
557 1.184 rmind lwp_unlock_to(l2, spc->spc_lwplock);
558 1.130 ad } else {
559 1.130 ad p2->p_nrlwps = 1;
560 1.130 ad p2->p_stat = SACTIVE;
561 1.130 ad l2->l_stat = LSRUN;
562 1.139 yamt sched_enqueue(l2, false);
563 1.130 ad lwp_unlock(l2);
564 1.130 ad }
565 1.167 ad mutex_exit(p2->p_lock);
566 1.130 ad
567 1.130 ad /*
568 1.17 cgd * Preserve synchronization semantics of vfork. If waiting for
569 1.170 ad * child to exec or exit, set PL_PPWAIT on child, and sleep on our
570 1.17 cgd * proc (in case of exit).
571 1.16 cgd */
572 1.170 ad while (p2->p_lflag & PL_PPWAIT)
573 1.170 ad cv_wait(&p1->p_waitcv, proc_lock);
574 1.130 ad
575 1.188 rmind /*
576 1.188 rmind * Let the parent know that we are tracing its child.
577 1.188 rmind */
578 1.186 christos if (tracefork) {
579 1.186 christos ksiginfo_t ksi;
580 1.188 rmind
581 1.188 rmind KSI_INIT_EMPTY(&ksi);
582 1.188 rmind ksi.ksi_signo = SIGTRAP;
583 1.188 rmind ksi.ksi_lid = l1->l_lid;
584 1.188 rmind kpsignal(p1, &ksi, NULL);
585 1.186 christos }
586 1.186 christos
587 1.167 ad mutex_exit(proc_lock);
588 1.16 cgd
589 1.16 cgd /*
590 1.16 cgd * Return child pid to parent process,
591 1.16 cgd * marking us as parent via retval[1].
592 1.16 cgd */
593 1.36 thorpej if (retval != NULL) {
594 1.36 thorpej retval[0] = p2->p_pid;
595 1.36 thorpej retval[1] = 0;
596 1.36 thorpej }
597 1.74 jdolecek
598 1.188 rmind return 0;
599 1.16 cgd }
600