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28 /* Copyright (c) 1995, 1997 Apple Computer, Inc. All Rights Reserved */
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.
38 * Redistribution and use in source and binary forms, with or without
39 * modification, are permitted provided that the following conditions
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.
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
66 * @(#)kern_fork.c 8.8 (Berkeley) 2/14/95
69 * NOTICE: This file was modified by McAfee Research in 2004 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,
75 * NOTICE: This file was modified by SPARTA, Inc. in 2005 to introduce
76 * support for mandatory and extensible security protections. This notice
77 * is included in support of clause 2.2 (b) of the Apple Public License,
81 #include <kern/assert.h>
82 #include <sys/param.h>
83 #include <sys/systm.h>
84 #include <sys/filedesc.h>
85 #include <sys/kernel.h>
86 #include <sys/malloc.h>
87 #include <sys/proc_internal.h>
88 #include <sys/kauth.h>
90 #include <sys/resourcevar.h>
91 #include <sys/vnode_internal.h>
92 #include <sys/file_internal.h>
94 #include <sys/codesign.h>
95 #include <sys/sysproto.h>
98 /* Do not include dtrace.h, it redefines kmem_[alloc/free] */
99 extern void dtrace_fasttrap_fork(proc_t
, proc_t
);
100 extern void (*dtrace_helpers_fork
)(proc_t
, proc_t
);
101 extern void (*dtrace_proc_waitfor_exec_ptr
)(proc_t
);
102 extern void dtrace_lazy_dofs_duplicate(proc_t
, proc_t
);
105 * Since dtrace_proc_waitfor_exec_ptr can be added/removed in dtrace_subr.c,
106 * we will store its value before actually calling it.
108 static void (*dtrace_proc_waitfor_hook
)(proc_t
) = NULL
;
110 #include <sys/dtrace_ptss.h>
113 #include <security/audit/audit.h>
115 #include <mach/mach_types.h>
116 #include <kern/coalition.h>
117 #include <kern/kern_types.h>
118 #include <kern/kalloc.h>
119 #include <kern/mach_param.h>
120 #include <kern/task.h>
121 #include <kern/thread.h>
122 #include <kern/thread_call.h>
123 #include <kern/zalloc.h>
125 #include <machine/spl.h>
128 #include <security/mac.h>
129 #include <security/mac_mach_internal.h>
132 #include <vm/vm_map.h>
133 #include <vm/vm_protos.h>
134 #include <vm/vm_shared_region.h>
136 #include <sys/shm_internal.h> /* for shmfork() */
137 #include <mach/task.h> /* for thread_create() */
138 #include <mach/thread_act.h> /* for thread_resume() */
142 #if CONFIG_MEMORYSTATUS
143 #include <sys/kern_memorystatus.h>
146 /* XXX routines which should have Mach prototypes, but don't */
147 void thread_set_parent(thread_t parent
, int pid
);
148 extern void act_thread_catt(void *ctx
);
149 void thread_set_child(thread_t child
, int pid
);
150 void *act_thread_csave(void);
153 thread_t
cloneproc(task_t
, coalition_t
*, proc_t
, int, int);
154 proc_t
forkproc(proc_t
);
155 void forkproc_free(proc_t
);
156 thread_t
fork_create_child(task_t parent_task
, coalition_t
*parent_coalitions
, proc_t child
, int inherit_memory
, int is64bit
);
157 void proc_vfork_begin(proc_t parent_proc
);
158 void proc_vfork_end(proc_t parent_proc
);
160 #define DOFORK 0x1 /* fork() system call */
161 #define DOVFORK 0x2 /* vfork() system call */
166 * Description: start a vfork on a process
168 * Parameters: parent_proc process (re)entering vfork state
172 * Notes: Although this function increments a count, a count in
173 * excess of 1 is not currently supported. According to the
174 * POSIX standard, calling anything other than execve() or
175 * _exit() following a vfork(), including calling vfork()
176 * itself again, will result in undefined behaviour
179 proc_vfork_begin(proc_t parent_proc
)
181 proc_lock(parent_proc
);
182 parent_proc
->p_lflag
|= P_LVFORK
;
183 parent_proc
->p_vforkcnt
++;
184 proc_unlock(parent_proc
);
190 * Description: stop a vfork on a process
192 * Parameters: parent_proc process leaving vfork state
196 * Notes: Decrements the count; currently, reentrancy of vfork()
197 * is unsupported on the current process
200 proc_vfork_end(proc_t parent_proc
)
202 proc_lock(parent_proc
);
203 parent_proc
->p_vforkcnt
--;
204 if (parent_proc
->p_vforkcnt
< 0)
205 panic("vfork cnt is -ve");
206 if (parent_proc
->p_vforkcnt
== 0)
207 parent_proc
->p_lflag
&= ~P_LVFORK
;
208 proc_unlock(parent_proc
);
215 * Description: vfork system call
217 * Parameters: void [no arguments]
219 * Retval: 0 (to child process)
220 * !0 pid of child (to parent process)
221 * -1 error (see "Returns:")
223 * Returns: EAGAIN Administrative limit reached
224 * EINVAL vfork() called during vfork()
225 * ENOMEM Failed to allocate new process
227 * Note: After a successful call to this function, the parent process
228 * has its task, thread, and uthread lent to the child process,
229 * and control is returned to the caller; if this function is
230 * invoked as a system call, the return is to user space, and
231 * is effectively running on the child process.
233 * Subsequent calls that operate on process state are permitted,
234 * though discouraged, and will operate on the child process; any
235 * operations on the task, thread, or uthread will result in
236 * changes in the parent state, and, if inheritable, the child
237 * state, when a task, thread, and uthread are realized for the
238 * child process at execve() time, will also be effected. Given
239 * this, it's recemmended that people use the posix_spawn() call
242 * BLOCK DIAGRAM OF VFORK
246 * ,----------------. ,-------------.
248 * | parent_thread | ------> | parent_task |
250 * `----------------' `-------------'
251 * uthread | ^ bsd_info | ^
252 * v | vc_thread v | task
253 * ,----------------. ,-------------.
255 * | parent_uthread | <.list. | parent_proc | <-- current_proc()
257 * `----------------' `-------------'
264 * ,----------------. ,-------------.
266 * ,----> | parent_thread | ------> | parent_task |
268 * | `----------------' `-------------'
269 * | uthread | ^ bsd_info | ^
270 * | v | vc_thread v | task
271 * | ,----------------. ,-------------.
273 * | | parent_uthread | <.list. | parent_proc |
275 * | `----------------' `-------------'
278 * | ,----------------.
280 * p_vforkact | child_proc | <-- current_proc()
285 vfork(proc_t parent_proc
, __unused
struct vfork_args
*uap
, int32_t *retval
)
287 thread_t child_thread
;
290 if ((err
= fork1(parent_proc
, &child_thread
, PROC_CREATE_VFORK
, NULL
)) != 0) {
293 uthread_t ut
= get_bsdthread_info(current_thread());
294 proc_t child_proc
= ut
->uu_proc
;
296 retval
[0] = child_proc
->p_pid
;
297 retval
[1] = 1; /* flag child return for user space */
300 * Drop the signal lock on the child which was taken on our
301 * behalf by forkproc()/cloneproc() to prevent signals being
302 * received by the child in a partially constructed state.
304 proc_signalend(child_proc
, 0);
305 proc_transend(child_proc
, 0);
307 proc_knote(parent_proc
, NOTE_FORK
| child_proc
->p_pid
);
308 DTRACE_PROC1(create
, proc_t
, child_proc
);
309 ut
->uu_flag
&= ~UT_VFORKING
;
319 * Description: common code used by all new process creation other than the
320 * bootstrap of the initial process on the system
322 * Parameters: parent_proc parent process of the process being
323 * child_threadp pointer to location to receive the
324 * Mach thread_t of the child process
326 * kind kind of creation being requested
327 * coalitions if spawn, the set of coalitions the
328 * child process should join, or NULL to
329 * inherit the parent's. On non-spawns,
330 * this param is ignored and the child
331 * always inherits the parent's
334 * Notes: Permissable values for 'kind':
336 * PROC_CREATE_FORK Create a complete process which will
337 * return actively running in both the
338 * parent and the child; the child copies
339 * the parent address space.
340 * PROC_CREATE_SPAWN Create a complete process which will
341 * return actively running in the parent
342 * only after returning actively running
343 * in the child; the child address space
344 * is newly created by an image activator,
345 * after which the child is run.
346 * PROC_CREATE_VFORK Creates a partial process which will
347 * borrow the parent task, thread, and
348 * uthread to return running in the child;
349 * the child address space and other parts
350 * are lazily created at execve() time, or
351 * the child is terminated, and the parent
352 * does not actively run until that
355 * At first it may seem strange that we return the child thread
356 * address rather than process structure, since the process is
357 * the only part guaranteed to be "new"; however, since we do
358 * not actualy adjust other references between Mach and BSD (see
359 * the block diagram above the implementation of vfork()), this
360 * is the only method which guarantees us the ability to get
361 * back to the other information.
364 fork1(proc_t parent_proc
, thread_t
*child_threadp
, int kind
, coalition_t
*coalitions
)
366 thread_t parent_thread
= (thread_t
)current_thread();
367 uthread_t parent_uthread
= (uthread_t
)get_bsdthread_info(parent_thread
);
368 proc_t child_proc
= NULL
; /* set in switch, but compiler... */
369 thread_t child_thread
= NULL
;
376 * Although process entries are dynamically created, we still keep
377 * a global limit on the maximum number we will create. Don't allow
378 * a nonprivileged user to use the last process; don't let root
379 * exceed the limit. The variable nprocs is the current number of
380 * processes, maxproc is the limit.
382 uid
= kauth_getruid();
384 if ((nprocs
>= maxproc
- 1 && uid
!= 0) || nprocs
>= maxproc
) {
392 * Increment the count of procs running with this uid. Don't allow
393 * a nonprivileged user to exceed their current limit, which is
394 * always less than what an rlim_t can hold.
395 * (locking protection is provided by list lock held in chgproccnt)
398 count
= chgproccnt(uid
, 1);
400 (rlim_t
)count
> parent_proc
->p_rlimit
[RLIMIT_NPROC
].rlim_cur
) {
407 * Determine if MAC policies applied to the process will allow
408 * it to fork. This is an advisory-only check.
410 err
= mac_proc_check_fork(parent_proc
);
417 case PROC_CREATE_VFORK
:
419 * Prevent a vfork while we are in vfork(); we should
420 * also likely preventing a fork here as well, and this
421 * check should then be outside the switch statement,
422 * since the proc struct contents will copy from the
423 * child and the tash/thread/uthread from the parent in
424 * that case. We do not support vfork() in vfork()
425 * because we don't have to; the same non-requirement
426 * is true of both fork() and posix_spawn() and any
427 * call other than execve() amd _exit(), but we've
428 * been historically lenient, so we continue to be so
431 * <rdar://6640521> Probably a source of random panics
433 if (parent_uthread
->uu_flag
& UT_VFORK
) {
434 printf("fork1 called within vfork by %s\n", parent_proc
->p_comm
);
440 * Flag us in progress; if we chose to support vfork() in
441 * vfork(), we would chain our parent at this point (in
442 * effect, a stack push). We don't, since we actually want
443 * to disallow everything not specified in the standard
445 proc_vfork_begin(parent_proc
);
447 /* The newly created process comes with signal lock held */
448 if ((child_proc
= forkproc(parent_proc
)) == NULL
) {
449 /* Failed to allocate new process */
450 proc_vfork_end(parent_proc
);
455 // XXX BEGIN: wants to move to be common code (and safe)
458 * allow policies to associate the credential/label that
459 * we referenced from the parent ... with the child
460 * JMM - this really isn't safe, as we can drop that
461 * association without informing the policy in other
462 * situations (keep long enough to get policies changed)
464 mac_cred_label_associate_fork(child_proc
->p_ucred
, child_proc
);
468 * Propogate change of PID - may get new cred if auditing.
470 * NOTE: This has no effect in the vfork case, since
471 * child_proc->task != current_task(), but we duplicate it
472 * because this is probably, ultimately, wrong, since we
473 * will be running in the "child" which is the parent task
474 * with the wrong token until we get to the execve() or
475 * _exit() call; a lot of "undefined" can happen before
478 * <rdar://6640530> disallow everything but exeve()/_exit()?
480 set_security_token(child_proc
);
482 AUDIT_ARG(pid
, child_proc
->p_pid
);
484 // XXX END: wants to move to be common code (and safe)
487 * BORROW PARENT TASK, THREAD, UTHREAD FOR CHILD
489 * Note: this is where we would "push" state instead of setting
490 * it for nested vfork() support (see proc_vfork_end() for
491 * description if issues here).
493 child_proc
->task
= parent_proc
->task
;
495 child_proc
->p_lflag
|= P_LINVFORK
;
496 child_proc
->p_vforkact
= parent_thread
;
497 child_proc
->p_stat
= SRUN
;
500 * Until UT_VFORKING is cleared at the end of the vfork
501 * syscall, the process identity of this thread is slightly
504 * As long as UT_VFORK and it's associated field (uu_proc)
505 * is set, current_proc() will always return the child process.
507 * However dtrace_proc_selfpid() returns the parent pid to
508 * ensure that e.g. the proc:::create probe actions accrue
509 * to the parent. (Otherwise the child magically seems to
510 * have created itself!)
512 parent_uthread
->uu_flag
|= UT_VFORK
| UT_VFORKING
;
513 parent_uthread
->uu_proc
= child_proc
;
514 parent_uthread
->uu_userstate
= (void *)act_thread_csave();
515 parent_uthread
->uu_vforkmask
= parent_uthread
->uu_sigmask
;
517 /* temporarily drop thread-set-id state */
518 if (parent_uthread
->uu_flag
& UT_SETUID
) {
519 parent_uthread
->uu_flag
|= UT_WASSETUID
;
520 parent_uthread
->uu_flag
&= ~UT_SETUID
;
523 /* blow thread state information */
524 /* XXX is this actually necessary, given syscall return? */
525 thread_set_child(parent_thread
, child_proc
->p_pid
);
527 child_proc
->p_acflag
= AFORK
; /* forked but not exec'ed */
530 * Preserve synchronization semantics of vfork. If
531 * waiting for child to exec or exit, set P_PPWAIT
532 * on child, and sleep on our proc (in case of exit).
534 child_proc
->p_lflag
|= P_LPPWAIT
;
535 pinsertchild(parent_proc
, child_proc
); /* set visible */
539 case PROC_CREATE_SPAWN
:
541 * A spawned process differs from a forked process in that
542 * the spawned process does not carry around the parents
543 * baggage with regard to address space copying, dtrace,
550 case PROC_CREATE_FORK
:
552 * When we clone the parent process, we are going to inherit
553 * its task attributes and memory, since when we fork, we
554 * will, in effect, create a duplicate of it, with only minor
555 * differences. Contrarily, spawned processes do not inherit.
557 if ((child_thread
= cloneproc(parent_proc
->task
,
558 spawn
? coalitions
: NULL
,
560 spawn
? FALSE
: TRUE
,
562 /* Failed to create thread */
567 /* copy current thread state into the child thread (only for fork) */
569 thread_dup(child_thread
);
572 /* child_proc = child_thread->task->proc; */
573 child_proc
= (proc_t
)(get_bsdtask_info(get_threadtask(child_thread
)));
575 // XXX BEGIN: wants to move to be common code (and safe)
578 * allow policies to associate the credential/label that
579 * we referenced from the parent ... with the child
580 * JMM - this really isn't safe, as we can drop that
581 * association without informing the policy in other
582 * situations (keep long enough to get policies changed)
584 mac_cred_label_associate_fork(child_proc
->p_ucred
, child_proc
);
588 * Propogate change of PID - may get new cred if auditing.
590 * NOTE: This has no effect in the vfork case, since
591 * child_proc->task != current_task(), but we duplicate it
592 * because this is probably, ultimately, wrong, since we
593 * will be running in the "child" which is the parent task
594 * with the wrong token until we get to the execve() or
595 * _exit() call; a lot of "undefined" can happen before
598 * <rdar://6640530> disallow everything but exeve()/_exit()?
600 set_security_token(child_proc
);
602 AUDIT_ARG(pid
, child_proc
->p_pid
);
604 // XXX END: wants to move to be common code (and safe)
607 * Blow thread state information; this is what gives the child
608 * process its "return" value from a fork() call.
610 * Note: this should probably move to fork() proper, since it
611 * is not relevent to spawn, and the value won't matter
612 * until we resume the child there. If you are in here
613 * refactoring code, consider doing this at the same time.
615 thread_set_child(child_thread
, child_proc
->p_pid
);
617 child_proc
->p_acflag
= AFORK
; /* forked but not exec'ed */
619 // <rdar://6598155> dtrace code cleanup needed
622 * This code applies to new processes who are copying the task
623 * and thread state and address spaces of their parent process.
626 // <rdar://6598155> call dtrace specific function here instead of all this...
628 * APPLE NOTE: Solaris does a sprlock() and drops the
629 * proc_lock here. We're cheating a bit and only taking
630 * the p_dtrace_sprlock lock. A full sprlock would
631 * task_suspend the parent.
633 lck_mtx_lock(&parent_proc
->p_dtrace_sprlock
);
636 * Remove all DTrace tracepoints from the child process. We
637 * need to do this _before_ duplicating USDT providers since
638 * any associated probes may be immediately enabled.
640 if (parent_proc
->p_dtrace_count
> 0) {
641 dtrace_fasttrap_fork(parent_proc
, child_proc
);
644 lck_mtx_unlock(&parent_proc
->p_dtrace_sprlock
);
647 * Duplicate any lazy dof(s). This must be done while NOT
648 * holding the parent sprlock! Lock ordering is
649 * dtrace_dof_mode_lock, then sprlock. It is imperative we
650 * always call dtrace_lazy_dofs_duplicate, rather than null
651 * check and call if !NULL. If we NULL test, during lazy dof
652 * faulting we can race with the faulting code and proceed
653 * from here to beyond the helpers copy. The lazy dof
654 * faulting will then fail to copy the helpers to the child
657 dtrace_lazy_dofs_duplicate(parent_proc
, child_proc
);
660 * Duplicate any helper actions and providers. The SFORKING
661 * we set above informs the code to enable USDT probes that
662 * sprlock() may fail because the child is being forked.
665 * APPLE NOTE: As best I can tell, Apple's sprlock() equivalent
666 * never fails to find the child. We do not set SFORKING.
668 if (parent_proc
->p_dtrace_helpers
!= NULL
&& dtrace_helpers_fork
) {
669 (*dtrace_helpers_fork
)(parent_proc
, child_proc
);
673 #endif /* CONFIG_DTRACE */
678 panic("fork1 called with unknown kind %d", kind
);
683 /* return the thread pointer to the caller */
684 *child_threadp
= child_thread
;
688 * In the error case, we return a 0 value for the returned pid (but
689 * it is ignored in the trampoline due to the error return); this
690 * is probably not necessary.
693 (void)chgproccnt(uid
, -1);
703 * Description: "Return" to parent vfork thread() following execve/_exit;
704 * this is done by reassociating the parent process structure
705 * with the task, thread, and uthread.
707 * Refer to the ASCII art above vfork() to figure out the
708 * state we're undoing.
710 * Parameters: child_proc Child process
711 * retval System call return value array
712 * rval Return value to present to parent
716 * Notes: The caller resumes or exits the parent, as appropriate, after
717 * calling this function.
720 vfork_return(proc_t child_proc
, int32_t *retval
, int rval
)
722 task_t parent_task
= get_threadtask(child_proc
->p_vforkact
);
723 proc_t parent_proc
= get_bsdtask_info(parent_task
);
724 thread_t th
= current_thread();
725 uthread_t uth
= get_bsdthread_info(th
);
727 act_thread_catt(uth
->uu_userstate
);
729 /* clear vfork state in parent proc structure */
730 proc_vfork_end(parent_proc
);
732 /* REPATRIATE PARENT TASK, THREAD, UTHREAD */
733 uth
->uu_userstate
= 0;
734 uth
->uu_flag
&= ~UT_VFORK
;
735 /* restore thread-set-id state */
736 if (uth
->uu_flag
& UT_WASSETUID
) {
737 uth
->uu_flag
|= UT_SETUID
;
738 uth
->uu_flag
&= UT_WASSETUID
;
741 uth
->uu_sigmask
= uth
->uu_vforkmask
;
743 proc_lock(child_proc
);
744 child_proc
->p_lflag
&= ~P_LINVFORK
;
745 child_proc
->p_vforkact
= 0;
746 proc_unlock(child_proc
);
748 thread_set_parent(th
, rval
);
752 retval
[1] = 0; /* mark parent */
760 * Description: Common operations associated with the creation of a child
763 * Parameters: parent_task parent task
764 * parent_coalitions parent's set of coalitions
765 * child_proc child process
766 * inherit_memory TRUE, if the parents address space is
767 * to be inherited by the child
768 * is64bit TRUE, if the child being created will
769 * be associated with a 64 bit process
770 * rather than a 32 bit process
772 * Note: This code is called in the fork() case, from the execve() call
773 * graph, if implementing an execve() following a vfork(), from
774 * the posix_spawn() call graph (which implicitly includes a
775 * vfork() equivalent call, and in the system bootstrap case.
777 * It creates a new task and thread (and as a side effect of the
778 * thread creation, a uthread) in the parent coalition set, which is
779 * then associated with the process 'child'. If the parent
780 * process address space is to be inherited, then a flag
781 * indicates that the newly created task should inherit this from
784 * As a special concession to bootstrapping the initial process
785 * in the system, it's possible for 'parent_task' to be TASK_NULL;
786 * in this case, 'inherit_memory' MUST be FALSE.
789 fork_create_child(task_t parent_task
, coalition_t
*parent_coalitions
, proc_t child_proc
, int inherit_memory
, int is64bit
)
791 thread_t child_thread
= NULL
;
793 kern_return_t result
;
795 /* Create a new task for the child process */
796 result
= task_create_internal(parent_task
,
801 if (result
!= KERN_SUCCESS
) {
802 printf("%s: task_create_internal failed. Code: %d\n",
807 /* Set the child process task to the new task */
808 child_proc
->task
= child_task
;
810 /* Set child task process to child proc */
811 set_bsdtask_info(child_task
, child_proc
);
813 /* Propagate CPU limit timer from parent */
814 if (timerisset(&child_proc
->p_rlim_cpu
))
815 task_vtimer_set(child_task
, TASK_VTIMER_RLIM
);
817 /* Set/clear 64 bit vm_map flag */
819 vm_map_set_64bit(get_task_map(child_task
));
821 vm_map_set_32bit(get_task_map(child_task
));
824 * Set child process BSD visible scheduler priority if nice value
825 * inherited from parent
827 if (child_proc
->p_nice
!= 0)
828 resetpriority(child_proc
);
830 /* Create a new thread for the child process */
831 result
= thread_create_with_continuation(child_task
, &child_thread
, (thread_continue_t
)proc_wait_to_return
);
832 if (result
!= KERN_SUCCESS
) {
833 printf("%s: thread_create failed. Code: %d\n",
835 task_deallocate(child_task
);
840 * Tag thread as being the first thread in its task.
842 thread_set_tag(child_thread
, THREAD_TAG_MAINTHREAD
);
845 thread_yield_internal(1);
847 return(child_thread
);
854 * Description: fork system call.
856 * Parameters: parent Parent process to fork
857 * uap (void) [unused]
858 * retval Return value
861 * EAGAIN Resource unavailable, try again
863 * Notes: Attempts to create a new child process which inherits state
864 * from the parent process. If successful, the call returns
865 * having created an initially suspended child process with an
866 * extra Mach task and thread reference, for which the thread
867 * is initially suspended. Until we resume the child process,
868 * it is not yet running.
870 * The return information to the child is contained in the
871 * thread state structure of the new child, and does not
872 * become visible to the child through a normal return process,
873 * since it never made the call into the kernel itself in the
876 * After resuming the thread, this function returns directly to
877 * the parent process which invoked the fork() system call.
879 * Important: The child thread_resume occurs before the parent returns;
880 * depending on scheduling latency, this means that it is not
881 * deterministic as to whether the parent or child is scheduled
882 * to run first. It is entirely possible that the child could
883 * run to completion prior to the parent running.
886 fork(proc_t parent_proc
, __unused
struct fork_args
*uap
, int32_t *retval
)
888 thread_t child_thread
;
891 retval
[1] = 0; /* flag parent return for user space */
893 if ((err
= fork1(parent_proc
, &child_thread
, PROC_CREATE_FORK
, NULL
)) == 0) {
897 /* Return to the parent */
898 child_proc
= (proc_t
)get_bsdthreadtask_info(child_thread
);
899 retval
[0] = child_proc
->p_pid
;
902 * Drop the signal lock on the child which was taken on our
903 * behalf by forkproc()/cloneproc() to prevent signals being
904 * received by the child in a partially constructed state.
906 proc_signalend(child_proc
, 0);
907 proc_transend(child_proc
, 0);
909 /* flag the fork has occurred */
910 proc_knote(parent_proc
, NOTE_FORK
| child_proc
->p_pid
);
911 DTRACE_PROC1(create
, proc_t
, child_proc
);
914 if ((dtrace_proc_waitfor_hook
= dtrace_proc_waitfor_exec_ptr
) != NULL
)
915 (*dtrace_proc_waitfor_hook
)(child_proc
);
918 /* "Return" to the child */
919 proc_clear_return_wait(child_proc
, child_thread
);
921 /* drop the extra references we got during the creation */
922 if ((child_task
= (task_t
)get_threadtask(child_thread
)) != NULL
) {
923 task_deallocate(child_task
);
925 thread_deallocate(child_thread
);
935 * Description: Create a new process from a specified process.
937 * Parameters: parent_task The parent task to be cloned, or
938 * TASK_NULL is task characteristics
939 * are not to be inherited
940 * be cloned, or TASK_NULL if the new
941 * task is not to inherit the VM
942 * characteristics of the parent
943 * parent_proc The parent process to be cloned
944 * inherit_memory True if the child is to inherit
945 * memory from the parent; if this is
946 * non-NULL, then the parent_task must
948 * memstat_internal Whether to track the process in the
949 * jetsam priority list (if configured)
951 * Returns: !NULL pointer to new child thread
952 * NULL Failure (unspecified)
954 * Note: On return newly created child process has signal lock held
955 * to block delivery of signal to it if called with lock set.
956 * fork() code needs to explicity remove this lock before
957 * signals can be delivered
959 * In the case of bootstrap, this function can be called from
960 * bsd_utaskbootstrap() in order to bootstrap the first process;
961 * the net effect is to provide a uthread structure for the
962 * kernel process associated with the kernel task.
964 * XXX: Tristating using the value parent_task as the major key
965 * and inherit_memory as the minor key is something we should
966 * refactor later; we owe the current semantics, ultimately,
967 * to the semantics of task_create_internal. For now, we will
968 * live with this being somewhat awkward.
971 cloneproc(task_t parent_task
, coalition_t
*parent_coalitions
, proc_t parent_proc
, int inherit_memory
, int memstat_internal
)
973 #if !CONFIG_MEMORYSTATUS
974 #pragma unused(memstat_internal)
978 thread_t child_thread
= NULL
;
980 if ((child_proc
= forkproc(parent_proc
)) == NULL
) {
981 /* Failed to allocate new process */
985 child_thread
= fork_create_child(parent_task
, parent_coalitions
, child_proc
, inherit_memory
, (parent_task
== TASK_NULL
) ? FALSE
: (parent_proc
->p_flag
& P_LP64
));
987 if (child_thread
== NULL
) {
989 * Failed to create thread; now we must deconstruct the new
990 * process previously obtained from forkproc().
992 forkproc_free(child_proc
);
996 child_task
= get_threadtask(child_thread
);
997 if (parent_proc
->p_flag
& P_LP64
) {
998 task_set_64bit(child_task
, TRUE
);
999 OSBitOrAtomic(P_LP64
, (UInt32
*)&child_proc
->p_flag
);
1001 task_set_64bit(child_task
, FALSE
);
1002 OSBitAndAtomic(~((uint32_t)P_LP64
), (UInt32
*)&child_proc
->p_flag
);
1005 #if CONFIG_MEMORYSTATUS
1006 if (memstat_internal
) {
1008 child_proc
->p_memstat_state
|= P_MEMSTAT_INTERNAL
;
1013 /* make child visible */
1014 pinsertchild(parent_proc
, child_proc
);
1017 * Make child runnable, set start time.
1019 child_proc
->p_stat
= SRUN
;
1021 return(child_thread
);
1026 * Destroy a process structure that resulted from a call to forkproc(), but
1027 * which must be returned to the system because of a subsequent failure
1028 * preventing it from becoming active.
1030 * Parameters: p The incomplete process from forkproc()
1034 * Note: This function should only be used in an error handler following
1035 * a call to forkproc().
1037 * Operations occur in reverse order of those in forkproc().
1040 forkproc_free(proc_t p
)
1043 /* We held signal and a transition locks; drop them */
1044 proc_signalend(p
, 0);
1045 proc_transend(p
, 0);
1048 * If we have our own copy of the resource limits structure, we
1049 * need to free it. If it's a shared copy, we need to drop our
1052 proc_limitdrop(p
, 0);
1056 /* Need to drop references to the shared memory segment(s), if any */
1059 * Use shmexec(): we have no address space, so no mappings
1061 * XXX Yes, the routine is badly named.
1067 /* Need to undo the effects of the fdcopy(), if any */
1071 * Drop the reference on a text vnode pointer, if any
1072 * XXX This code is broken in forkproc(); see <rdar://4256419>;
1073 * XXX if anyone ever uses this field, we will be extremely unhappy.
1076 vnode_rele(p
->p_textvp
);
1080 /* Stop the profiling clock */
1083 /* Update the audit session proc count */
1084 AUDIT_SESSION_PROCEXIT(p
);
1086 /* Release the credential reference */
1087 kauth_cred_unref(&p
->p_ucred
);
1090 /* Decrement the count of processes in the system */
1094 thread_call_free(p
->p_rcall
);
1096 /* Free allocated memory */
1097 FREE_ZONE(p
->p_sigacts
, sizeof *p
->p_sigacts
, M_SIGACTS
);
1098 FREE_ZONE(p
->p_stats
, sizeof *p
->p_stats
, M_PSTATS
);
1099 proc_checkdeadrefs(p
);
1100 FREE_ZONE(p
, sizeof *p
, M_PROC
);
1107 * Description: Create a new process structure, given a parent process
1110 * Parameters: parent_proc The parent process
1112 * Returns: !NULL The new process structure
1113 * NULL Error (insufficient free memory)
1115 * Note: When successful, the newly created process structure is
1116 * partially initialized; if a caller needs to deconstruct the
1117 * returned structure, they must call forkproc_free() to do so.
1120 forkproc(proc_t parent_proc
)
1122 proc_t child_proc
; /* Our new process */
1123 static int nextpid
= 0, pidwrap
= 0, nextpidversion
= 0;
1124 static uint64_t nextuniqueid
= 0;
1126 struct session
*sessp
;
1127 uthread_t parent_uthread
= (uthread_t
)get_bsdthread_info(current_thread());
1129 MALLOC_ZONE(child_proc
, proc_t
, sizeof *child_proc
, M_PROC
, M_WAITOK
);
1130 if (child_proc
== NULL
) {
1131 printf("forkproc: M_PROC zone exhausted\n");
1134 /* zero it out as we need to insert in hash */
1135 bzero(child_proc
, sizeof *child_proc
);
1137 MALLOC_ZONE(child_proc
->p_stats
, struct pstats
*,
1138 sizeof *child_proc
->p_stats
, M_PSTATS
, M_WAITOK
);
1139 if (child_proc
->p_stats
== NULL
) {
1140 printf("forkproc: M_SUBPROC zone exhausted (p_stats)\n");
1141 FREE_ZONE(child_proc
, sizeof *child_proc
, M_PROC
);
1145 MALLOC_ZONE(child_proc
->p_sigacts
, struct sigacts
*,
1146 sizeof *child_proc
->p_sigacts
, M_SIGACTS
, M_WAITOK
);
1147 if (child_proc
->p_sigacts
== NULL
) {
1148 printf("forkproc: M_SUBPROC zone exhausted (p_sigacts)\n");
1149 FREE_ZONE(child_proc
->p_stats
, sizeof *child_proc
->p_stats
, M_PSTATS
);
1150 FREE_ZONE(child_proc
, sizeof *child_proc
, M_PROC
);
1155 /* allocate a callout for use by interval timers */
1156 child_proc
->p_rcall
= thread_call_allocate((thread_call_func_t
)realitexpire
, child_proc
);
1157 if (child_proc
->p_rcall
== NULL
) {
1158 FREE_ZONE(child_proc
->p_sigacts
, sizeof *child_proc
->p_sigacts
, M_SIGACTS
);
1159 FREE_ZONE(child_proc
->p_stats
, sizeof *child_proc
->p_stats
, M_PSTATS
);
1160 FREE_ZONE(child_proc
, sizeof *child_proc
, M_PROC
);
1167 * Find an unused PID.
1175 * If the process ID prototype has wrapped around,
1176 * restart somewhat above 0, as the low-numbered procs
1177 * tend to include daemons that don't exit.
1179 if (nextpid
>= PID_MAX
) {
1185 /* if the pid stays in hash both for zombie and runniing state */
1186 if (pfind_locked(nextpid
) != PROC_NULL
) {
1191 if (pgfind_internal(nextpid
) != PGRP_NULL
) {
1195 if (session_find_internal(nextpid
) != SESSION_NULL
) {
1201 child_proc
->p_pid
= nextpid
;
1202 child_proc
->p_responsible_pid
= nextpid
; /* initially responsible for self */
1203 child_proc
->p_idversion
= nextpidversion
++;
1204 /* kernel process is handcrafted and not from fork, so start from 1 */
1205 child_proc
->p_uniqueid
= ++nextuniqueid
;
1207 if (child_proc
->p_pid
!= 0) {
1208 if (pfind_locked(child_proc
->p_pid
) != PROC_NULL
)
1209 panic("proc in the list already\n");
1212 /* Insert in the hash */
1213 child_proc
->p_listflag
|= (P_LIST_INHASH
| P_LIST_INCREATE
);
1214 LIST_INSERT_HEAD(PIDHASH(child_proc
->p_pid
), child_proc
, p_hash
);
1219 * We've identified the PID we are going to use; initialize the new
1220 * process structure.
1222 child_proc
->p_stat
= SIDL
;
1223 child_proc
->p_pgrpid
= PGRPID_DEAD
;
1226 * The zero'ing of the proc was at the allocation time due to need
1227 * for insertion to hash. Copy the section that is to be copied
1228 * directly from the parent.
1230 bcopy(&parent_proc
->p_startcopy
, &child_proc
->p_startcopy
,
1231 (unsigned) ((caddr_t
)&child_proc
->p_endcopy
- (caddr_t
)&child_proc
->p_startcopy
));
1234 * Some flags are inherited from the parent.
1235 * Duplicate sub-structures as needed.
1236 * Increase reference counts on shared objects.
1237 * The p_stats and p_sigacts substructs are set in vm_fork.
1239 child_proc
->p_flag
= (parent_proc
->p_flag
& (P_LP64
| P_DISABLE_ASLR
| P_DELAYIDLESLEEP
| P_SUGID
));
1240 if (parent_proc
->p_flag
& P_PROFIL
)
1241 startprofclock(child_proc
);
1243 child_proc
->p_vfs_iopolicy
= (parent_proc
->p_vfs_iopolicy
& (P_VFS_IOPOLICY_FORCE_HFS_CASE_SENSITIVITY
));
1246 * Note that if the current thread has an assumed identity, this
1247 * credential will be granted to the new process.
1249 child_proc
->p_ucred
= kauth_cred_get_with_ref();
1250 /* update cred on proc */
1251 PROC_UPDATE_CREDS_ONPROC(child_proc
);
1252 /* update audit session proc count */
1253 AUDIT_SESSION_PROCNEW(child_proc
);
1255 #if CONFIG_FINE_LOCK_GROUPS
1256 lck_mtx_init(&child_proc
->p_mlock
, proc_mlock_grp
, proc_lck_attr
);
1257 lck_mtx_init(&child_proc
->p_fdmlock
, proc_fdmlock_grp
, proc_lck_attr
);
1258 lck_mtx_init(&child_proc
->p_ucred_mlock
, proc_ucred_mlock_grp
, proc_lck_attr
);
1260 lck_mtx_init(&child_proc
->p_dtrace_sprlock
, proc_lck_grp
, proc_lck_attr
);
1262 lck_spin_init(&child_proc
->p_slock
, proc_slock_grp
, proc_lck_attr
);
1263 #else /* !CONFIG_FINE_LOCK_GROUPS */
1264 lck_mtx_init(&child_proc
->p_mlock
, proc_lck_grp
, proc_lck_attr
);
1265 lck_mtx_init(&child_proc
->p_fdmlock
, proc_lck_grp
, proc_lck_attr
);
1266 lck_mtx_init(&child_proc
->p_ucred_mlock
, proc_lck_grp
, proc_lck_attr
);
1268 lck_mtx_init(&child_proc
->p_dtrace_sprlock
, proc_lck_grp
, proc_lck_attr
);
1270 lck_spin_init(&child_proc
->p_slock
, proc_lck_grp
, proc_lck_attr
);
1271 #endif /* !CONFIG_FINE_LOCK_GROUPS */
1272 klist_init(&child_proc
->p_klist
);
1274 if (child_proc
->p_textvp
!= NULLVP
) {
1275 /* bump references to the text vnode */
1276 /* Need to hold iocount across the ref call */
1277 if (vnode_getwithref(child_proc
->p_textvp
) == 0) {
1278 error
= vnode_ref(child_proc
->p_textvp
);
1279 vnode_put(child_proc
->p_textvp
);
1281 child_proc
->p_textvp
= NULLVP
;
1286 * Copy the parents per process open file table to the child; if
1287 * there is a per-thread current working directory, set the childs
1288 * per-process current working directory to that instead of the
1291 * XXX may fail to copy descriptors to child
1293 child_proc
->p_fd
= fdcopy(parent_proc
, parent_uthread
->uu_cdir
);
1296 if (parent_proc
->vm_shm
) {
1297 /* XXX may fail to attach shm to child */
1298 (void)shmfork(parent_proc
, child_proc
);
1302 * inherit the limit structure to child
1304 proc_limitfork(parent_proc
, child_proc
);
1306 if (child_proc
->p_limit
->pl_rlimit
[RLIMIT_CPU
].rlim_cur
!= RLIM_INFINITY
) {
1307 uint64_t rlim_cur
= child_proc
->p_limit
->pl_rlimit
[RLIMIT_CPU
].rlim_cur
;
1308 child_proc
->p_rlim_cpu
.tv_sec
= (rlim_cur
> __INT_MAX__
) ? __INT_MAX__
: rlim_cur
;
1311 /* Intialize new process stats, including start time */
1312 /* <rdar://6640543> non-zeroed portion contains garbage AFAICT */
1313 bzero(child_proc
->p_stats
, sizeof(*child_proc
->p_stats
));
1314 microtime_with_abstime(&child_proc
->p_start
, &child_proc
->p_stats
->ps_start
);
1316 if (parent_proc
->p_sigacts
!= NULL
)
1317 (void)memcpy(child_proc
->p_sigacts
,
1318 parent_proc
->p_sigacts
, sizeof *child_proc
->p_sigacts
);
1320 (void)memset(child_proc
->p_sigacts
, 0, sizeof *child_proc
->p_sigacts
);
1322 sessp
= proc_session(parent_proc
);
1323 if (sessp
->s_ttyvp
!= NULL
&& parent_proc
->p_flag
& P_CONTROLT
)
1324 OSBitOrAtomic(P_CONTROLT
, &child_proc
->p_flag
);
1325 session_rele(sessp
);
1328 * block all signals to reach the process.
1329 * no transition race should be occuring with the child yet,
1330 * but indicate that the process is in (the creation) transition.
1332 proc_signalstart(child_proc
, 0);
1333 proc_transstart(child_proc
, 0, 0);
1334 proc_set_return_wait(child_proc
);
1336 child_proc
->p_pcaction
= 0;
1338 TAILQ_INIT(&child_proc
->p_uthlist
);
1339 TAILQ_INIT(&child_proc
->p_aio_activeq
);
1340 TAILQ_INIT(&child_proc
->p_aio_doneq
);
1342 /* Inherit the parent flags for code sign */
1343 child_proc
->p_csflags
= (parent_proc
->p_csflags
& ~CS_KILLED
);
1346 * All processes have work queue locks; cleaned up by
1347 * reap_child_locked()
1349 workqueue_init_lock(child_proc
);
1352 * Copy work queue information
1354 * Note: This should probably only happen in the case where we are
1355 * creating a child that is a copy of the parent; since this
1356 * routine is called in the non-duplication case of vfork()
1357 * or posix_spawn(), then this information should likely not
1360 * <rdar://6640553> Work queue pointers that no longer point to code
1362 child_proc
->p_wqthread
= parent_proc
->p_wqthread
;
1363 child_proc
->p_threadstart
= parent_proc
->p_threadstart
;
1364 child_proc
->p_pthsize
= parent_proc
->p_pthsize
;
1365 child_proc
->p_targconc
= parent_proc
->p_targconc
;
1366 if ((parent_proc
->p_lflag
& P_LREGISTER
) != 0) {
1367 child_proc
->p_lflag
|= P_LREGISTER
;
1369 child_proc
->p_wqkqueue
= NULL
;
1370 child_proc
->p_dispatchqueue_offset
= parent_proc
->p_dispatchqueue_offset
;
1371 child_proc
->p_dispatchqueue_serialno_offset
= parent_proc
->p_dispatchqueue_serialno_offset
;
1373 pth_proc_hashinit(child_proc
);
1376 #if CONFIG_MEMORYSTATUS
1377 /* Memorystatus + jetsam init */
1378 child_proc
->p_memstat_state
= 0;
1379 child_proc
->p_memstat_effectivepriority
= JETSAM_PRIORITY_DEFAULT
;
1380 child_proc
->p_memstat_requestedpriority
= JETSAM_PRIORITY_DEFAULT
;
1381 child_proc
->p_memstat_userdata
= 0;
1383 child_proc
->p_memstat_suspendedfootprint
= 0;
1385 child_proc
->p_memstat_dirty
= 0;
1386 child_proc
->p_memstat_idledeadline
= 0;
1387 #endif /* CONFIG_MEMORYSTATUS */
1396 lck_mtx_assert(proc_list_mlock
, LCK_MTX_ASSERT_NOTOWNED
);
1397 lck_mtx_lock(&p
->p_mlock
);
1401 proc_unlock(proc_t p
)
1403 lck_mtx_unlock(&p
->p_mlock
);
1407 proc_spinlock(proc_t p
)
1409 lck_spin_lock(&p
->p_slock
);
1413 proc_spinunlock(proc_t p
)
1415 lck_spin_unlock(&p
->p_slock
);
1419 proc_list_lock(void)
1421 lck_mtx_lock(proc_list_mlock
);
1425 proc_list_unlock(void)
1427 lck_mtx_unlock(proc_list_mlock
);
1431 proc_ucred_lock(proc_t p
)
1433 lck_mtx_lock(&p
->p_ucred_mlock
);
1437 proc_ucred_unlock(proc_t p
)
1439 lck_mtx_unlock(&p
->p_ucred_mlock
);
1442 #include <kern/zalloc.h>
1444 struct zone
*uthread_zone
;
1445 static int uthread_zone_inited
= 0;
1448 uthread_zone_init(void)
1450 if (!uthread_zone_inited
) {
1451 uthread_zone
= zinit(sizeof(struct uthread
),
1452 thread_max
* sizeof(struct uthread
),
1453 THREAD_CHUNK
* sizeof(struct uthread
),
1455 uthread_zone_inited
= 1;
1460 uthread_alloc(task_t task
, thread_t thread
, int noinherit
)
1464 uthread_t uth_parent
;
1467 if (!uthread_zone_inited
)
1468 uthread_zone_init();
1470 ut
= (void *)zalloc(uthread_zone
);
1471 bzero(ut
, sizeof(struct uthread
));
1473 p
= (proc_t
) get_bsdtask_info(task
);
1474 uth
= (uthread_t
)ut
;
1475 uth
->uu_thread
= thread
;
1478 * Thread inherits credential from the creating thread, if both
1479 * are in the same task.
1481 * If the creating thread has no credential or is from another
1482 * task we can leave the new thread credential NULL. If it needs
1483 * one later, it will be lazily assigned from the task's process.
1485 uth_parent
= (uthread_t
)get_bsdthread_info(current_thread());
1486 if ((noinherit
== 0) && task
== current_task() &&
1487 uth_parent
!= NULL
&&
1488 IS_VALID_CRED(uth_parent
->uu_ucred
)) {
1490 * XXX The new thread is, in theory, being created in context
1491 * XXX of parent thread, so a direct reference to the parent
1494 kauth_cred_ref(uth_parent
->uu_ucred
);
1495 uth
->uu_ucred
= uth_parent
->uu_ucred
;
1496 /* the credential we just inherited is an assumed credential */
1497 if (uth_parent
->uu_flag
& UT_SETUID
)
1498 uth
->uu_flag
|= UT_SETUID
;
1500 /* sometimes workqueue threads are created out task context */
1501 if ((task
!= kernel_task
) && (p
!= PROC_NULL
))
1502 uth
->uu_ucred
= kauth_cred_proc_ref(p
);
1504 uth
->uu_ucred
= NOCRED
;
1508 if ((task
!= kernel_task
) && p
) {
1511 if (noinherit
!= 0) {
1512 /* workq threads will not inherit masks */
1513 uth
->uu_sigmask
= ~workq_threadmask
;
1514 } else if (uth_parent
) {
1515 if (uth_parent
->uu_flag
& UT_SAS_OLDMASK
)
1516 uth
->uu_sigmask
= uth_parent
->uu_oldmask
;
1518 uth
->uu_sigmask
= uth_parent
->uu_sigmask
;
1520 uth
->uu_context
.vc_thread
= thread
;
1521 TAILQ_INSERT_TAIL(&p
->p_uthlist
, uth
, uu_list
);
1525 if (p
->p_dtrace_ptss_pages
!= NULL
) {
1526 uth
->t_dtrace_scratch
= dtrace_ptss_claim_entry(p
);
1535 * This routine frees the thread name field of the uthread_t structure. Split out of
1536 * uthread_cleanup() so it can be called separately on the threads of a corpse after
1537 * the corpse notification has been sent, and the handler has had a chance to extract
1541 uthread_cleanup_name(void *uthread
)
1543 uthread_t uth
= (uthread_t
)uthread
;
1547 * Set pth_name to NULL before calling free().
1548 * Previously there was a race condition in the
1549 * case this code was executing during a stackshot
1550 * where the stackshot could try and copy pth_name
1551 * after it had been freed and before if was marked
1554 if (uth
->pth_name
!= NULL
) {
1555 void *pth_name
= uth
->pth_name
;
1556 uth
->pth_name
= NULL
;
1557 kfree(pth_name
, MAXTHREADNAMESIZE
);
1563 * This routine frees all the BSD context in uthread except the credential.
1564 * It does not free the uthread structure as well
1567 uthread_cleanup(task_t task
, void *uthread
, void * bsd_info
, boolean_t is_corpse
)
1569 struct _select
*sel
;
1570 uthread_t uth
= (uthread_t
)uthread
;
1571 proc_t p
= (proc_t
)bsd_info
;
1574 if (__improbable(uthread_get_proc_refcount(uthread
) != 0)) {
1575 panic("uthread_cleanup called for uthread %p with uu_proc_refcount != 0", uthread
);
1579 if (uth
->uu_lowpri_window
|| uth
->uu_throttle_info
) {
1581 * task is marked as a low priority I/O type
1582 * and we've somehow managed to not dismiss the throttle
1583 * through the normal exit paths back to user space...
1584 * no need to throttle this thread since its going away
1585 * but we do need to update our bookeeping w/r to throttled threads
1587 * Calling this routine will clean up any throttle info reference
1588 * still inuse by the thread.
1590 throttle_lowpri_io(0);
1593 * Per-thread audit state should never last beyond system
1594 * call return. Since we don't audit the thread creation/
1595 * removal, the thread state pointer should never be
1596 * non-NULL when we get here.
1598 assert(uth
->uu_ar
== NULL
);
1600 sel
= &uth
->uu_select
;
1601 /* cleanup the select bit space */
1603 FREE(sel
->ibits
, M_TEMP
);
1604 FREE(sel
->obits
, M_TEMP
);
1609 vnode_rele(uth
->uu_cdir
);
1610 uth
->uu_cdir
= NULLVP
;
1613 if (uth
->uu_wqset
) {
1614 if (waitq_set_is_valid(uth
->uu_wqset
))
1615 waitq_set_deinit(uth
->uu_wqset
);
1616 FREE(uth
->uu_wqset
, M_SELECT
);
1617 uth
->uu_wqset
= NULL
;
1618 uth
->uu_wqstate_sz
= 0;
1622 * defer the removal of the thread name on process corpses until the corpse has
1626 uthread_cleanup_name(uth
);
1629 if ((task
!= kernel_task
) && p
) {
1631 if (((uth
->uu_flag
& UT_VFORK
) == UT_VFORK
) && (uth
->uu_proc
!= PROC_NULL
)) {
1632 vfork_exit_internal(uth
->uu_proc
, 0, 1);
1635 * Remove the thread from the process list and
1636 * transfer [appropriate] pending signals to the process.
1638 if (get_bsdtask_info(task
) == p
) {
1640 TAILQ_REMOVE(&p
->p_uthlist
, uth
, uu_list
);
1641 p
->p_siglist
|= (uth
->uu_siglist
& execmask
& (~p
->p_sigignore
| sigcantmask
));
1645 struct dtrace_ptss_page_entry
*tmpptr
= uth
->t_dtrace_scratch
;
1646 uth
->t_dtrace_scratch
= NULL
;
1647 if (tmpptr
!= NULL
) {
1648 dtrace_ptss_release_entry(p
, tmpptr
);
1654 /* This routine releases the credential stored in uthread */
1656 uthread_cred_free(void *uthread
)
1658 uthread_t uth
= (uthread_t
)uthread
;
1660 /* and free the uthread itself */
1661 if (IS_VALID_CRED(uth
->uu_ucred
)) {
1662 kauth_cred_t oldcred
= uth
->uu_ucred
;
1663 uth
->uu_ucred
= NOCRED
;
1664 kauth_cred_unref(&oldcred
);
1668 /* This routine frees the uthread structure held in thread structure */
1670 uthread_zone_free(void *uthread
)
1672 uthread_t uth
= (uthread_t
)uthread
;
1674 if (uth
->t_tombstone
) {
1675 kfree(uth
->t_tombstone
, sizeof(struct doc_tombstone
));
1676 uth
->t_tombstone
= NULL
;
1679 /* and free the uthread itself */
1680 zfree(uthread_zone
, uthread
);