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      1 /*
      2  * CDDL HEADER START
      3  *
      4  * The contents of this file are subject to the terms of the
      5  * Common Development and Distribution License (the "License").
      6  * You may not use this file except in compliance with the License.
      7  *
      8  * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
      9  * or http://www.opensolaris.org/os/licensing.
     10  * See the License for the specific language governing permissions
     11  * and limitations under the License.
     12  *
     13  * When distributing Covered Code, include this CDDL HEADER in each
     14  * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
     15  * If applicable, add the following below this CDDL HEADER, with the
     16  * fields enclosed by brackets "[]" replaced with your own identifying
     17  * information: Portions Copyright [yyyy] [name of copyright owner]
     18  *
     19  * CDDL HEADER END
     20  */
     21 
     22 /*
     23  * Copyright 2009 Sun Microsystems, Inc.  All rights reserved.
     24  * Use is subject to license terms.
     25  */
     26 
     27 /*	Copyright (c) 1984, 1986, 1987, 1988, 1989 AT&T	*/
     28 /*	  All Rights Reserved  	*/
     29 
     30 #include <sys/types.h>
     31 #include <sys/param.h>
     32 #include <sys/sysmacros.h>
     33 #include <sys/signal.h>
     34 #include <sys/cred.h>
     35 #include <sys/policy.h>
     36 #include <sys/user.h>
     37 #include <sys/systm.h>
     38 #include <sys/cpuvar.h>
     39 #include <sys/vfs.h>
     40 #include <sys/vnode.h>
     41 #include <sys/file.h>
     42 #include <sys/errno.h>
     43 #include <sys/time.h>
     44 #include <sys/proc.h>
     45 #include <sys/cmn_err.h>
     46 #include <sys/acct.h>
     47 #include <sys/tuneable.h>
     48 #include <sys/class.h>
     49 #include <sys/kmem.h>
     50 #include <sys/session.h>
     51 #include <sys/ucontext.h>
     52 #include <sys/stack.h>
     53 #include <sys/procfs.h>
     54 #include <sys/prsystm.h>
     55 #include <sys/vmsystm.h>
     56 #include <sys/vtrace.h>
     57 #include <sys/debug.h>
     58 #include <sys/shm_impl.h>
     59 #include <sys/door_data.h>
     60 #include <vm/as.h>
     61 #include <vm/rm.h>
     62 #include <c2/audit.h>
     63 #include <sys/var.h>
     64 #include <sys/schedctl.h>
     65 #include <sys/utrap.h>
     66 #include <sys/task.h>
     67 #include <sys/resource.h>
     68 #include <sys/cyclic.h>
     69 #include <sys/lgrp.h>
     70 #include <sys/rctl.h>
     71 #include <sys/contract_impl.h>
     72 #include <sys/contract/process_impl.h>
     73 #include <sys/list.h>
     74 #include <sys/dtrace.h>
     75 #include <sys/pool.h>
     76 #include <sys/zone.h>
     77 #include <sys/sdt.h>
     78 #include <sys/class.h>
     79 #include <sys/corectl.h>
     80 #include <sys/brand.h>
     81 #include <sys/fork.h>
     82 
     83 static int64_t cfork(int, int, int);
     84 static int getproc(proc_t **, pid_t, uint_t);
     85 #define	GETPROC_USER	0x0
     86 #define	GETPROC_KERNEL	0x1
     87 
     88 static void fork_fail(proc_t *);
     89 static void forklwp_fail(proc_t *);
     90 
     91 int fork_fail_pending;
     92 
     93 extern struct kmem_cache *process_cache;
     94 
     95 /*
     96  * forkall system call.
     97  */
     98 int64_t
     99 forkall(void)
    100 {
    101 	return (cfork(0, 0, 0));
    102 }
    103 
    104 /*
    105  * The parent is stopped until the child invokes relvm().
    106  */
    107 int64_t
    108 vfork(void)
    109 {
    110 	curthread->t_post_sys = 1;	/* so vfwait() will be called */
    111 	return (cfork(1, 1, 0));
    112 }
    113 
    114 /*
    115  * fork system call, aka fork1.
    116  */
    117 int64_t
    118 fork1(void)
    119 {
    120 	return (cfork(0, 1, 0));
    121 }
    122 
    123 /*
    124  * The forkall(), vfork(), and fork1() system calls are no longer
    125  * invoked by libc.  They are retained only for the benefit of
    126  * old statically-linked applications.  They should be eliminated
    127  * when we no longer care about such old and broken applications.
    128  */
    129 
    130 /*
    131  * forksys system call - forkx, forkallx, vforkx.
    132  * This is the interface now invoked by libc.
    133  */
    134 int64_t
    135 forksys(int subcode, int flags)
    136 {
    137 	switch (subcode) {
    138 	case 0:
    139 		return (cfork(0, 1, flags));	/* forkx(flags) */
    140 	case 1:
    141 		return (cfork(0, 0, flags));	/* forkallx(flags) */
    142 	case 2:
    143 		curthread->t_post_sys = 1;	/* so vfwait() will be called */
    144 		return (cfork(1, 1, flags));	/* vforkx(flags) */
    145 	default:
    146 		return ((int64_t)set_errno(EINVAL));
    147 	}
    148 }
    149 
    150 /* ARGSUSED */
    151 static int64_t
    152 cfork(int isvfork, int isfork1, int flags)
    153 {
    154 	proc_t *p = ttoproc(curthread);
    155 	struct as *as;
    156 	proc_t *cp, **orphpp;
    157 	klwp_t *clone;
    158 	kthread_t *t;
    159 	task_t *tk;
    160 	rval_t	r;
    161 	int error;
    162 	int i;
    163 	rctl_set_t *dup_set;
    164 	rctl_alloc_gp_t *dup_gp;
    165 	rctl_entity_p_t e;
    166 	lwpdir_t *ldp;
    167 	lwpent_t *lep;
    168 	lwpent_t *clep;
    169 
    170 	/*
    171 	 * Allow only these two flags.
    172 	 */
    173 	if ((flags & ~(FORK_NOSIGCHLD | FORK_WAITPID)) != 0) {
    174 		error = EINVAL;
    175 		goto forkerr;
    176 	}
    177 
    178 	/*
    179 	 * fork is not supported for the /proc agent lwp.
    180 	 */
    181 	if (curthread == p->p_agenttp) {
    182 		error = ENOTSUP;
    183 		goto forkerr;
    184 	}
    185 
    186 	if ((error = secpolicy_basic_fork(CRED())) != 0)
    187 		goto forkerr;
    188 
    189 	/*
    190 	 * If the calling lwp is doing a fork1() then the
    191 	 * other lwps in this process are not duplicated and
    192 	 * don't need to be held where their kernel stacks can be
    193 	 * cloned.  If doing forkall(), the process is held with
    194 	 * SHOLDFORK, so that the lwps are at a point where their
    195 	 * stacks can be copied which is on entry or exit from
    196 	 * the kernel.
    197 	 */
    198 	if (!holdlwps(isfork1 ? SHOLDFORK1 : SHOLDFORK)) {
    199 		aston(curthread);
    200 		error = EINTR;
    201 		goto forkerr;
    202 	}
    203 
    204 #if defined(__sparc)
    205 	/*
    206 	 * Ensure that the user stack is fully constructed
    207 	 * before creating the child process structure.
    208 	 */
    209 	(void) flush_user_windows_to_stack(NULL);
    210 #endif
    211 
    212 	mutex_enter(&p->p_lock);
    213 	/*
    214 	 * If this is vfork(), cancel any suspend request we might
    215 	 * have gotten from some other thread via lwp_suspend().
    216 	 * Otherwise we could end up with a deadlock on return
    217 	 * from the vfork() in both the parent and the child.
    218 	 */
    219 	if (isvfork)
    220 		curthread->t_proc_flag &= ~TP_HOLDLWP;
    221 	/*
    222 	 * Prevent our resource set associations from being changed during fork.
    223 	 */
    224 	pool_barrier_enter();
    225 	mutex_exit(&p->p_lock);
    226 
    227 	/*
    228 	 * Create a child proc struct. Place a VN_HOLD on appropriate vnodes.
    229 	 */
    230 	if (getproc(&cp, 0, GETPROC_USER) < 0) {
    231 		mutex_enter(&p->p_lock);
    232 		pool_barrier_exit();
    233 		continuelwps(p);
    234 		mutex_exit(&p->p_lock);
    235 		error = EAGAIN;
    236 		goto forkerr;
    237 	}
    238 
    239 	TRACE_2(TR_FAC_PROC, TR_PROC_FORK, "proc_fork:cp %p p %p", cp, p);
    240 
    241 	/*
    242 	 * Assign an address space to child
    243 	 */
    244 	if (isvfork) {
    245 		/*
    246 		 * Clear any watched areas and remember the
    247 		 * watched pages for restoring in vfwait().
    248 		 */
    249 		as = p->p_as;
    250 		if (avl_numnodes(&as->a_wpage) != 0) {
    251 			AS_LOCK_ENTER(as, &as->a_lock, RW_WRITER);
    252 			as_clearwatch(as);
    253 			p->p_wpage = as->a_wpage;
    254 			avl_create(&as->a_wpage, wp_compare,
    255 			    sizeof (struct watched_page),
    256 			    offsetof(struct watched_page, wp_link));
    257 			AS_LOCK_EXIT(as, &as->a_lock);
    258 		}
    259 		cp->p_as = as;
    260 		cp->p_flag |= SVFORK;
    261 	} else {
    262 		/*
    263 		 * We need to hold P_PR_LOCK until the address space has
    264 		 * been duplicated and we've had a chance to remove from the
    265 		 * child any DTrace probes that were in the parent. Holding
    266 		 * P_PR_LOCK prevents any new probes from being added and any
    267 		 * extant probes from being removed.
    268 		 */
    269 		mutex_enter(&p->p_lock);
    270 		sprlock_proc(p);
    271 		p->p_flag |= SFORKING;
    272 		mutex_exit(&p->p_lock);
    273 
    274 		error = as_dup(p->p_as, cp);
    275 		if (error != 0) {
    276 			mutex_enter(&p->p_lock);
    277 			sprunlock(p);
    278 			fork_fail(cp);
    279 			mutex_enter(&pidlock);
    280 			orphpp = &p->p_orphan;
    281 			while (*orphpp != cp)
    282 				orphpp = &(*orphpp)->p_nextorph;
    283 			*orphpp = cp->p_nextorph;
    284 			if (p->p_child == cp)
    285 				p->p_child = cp->p_sibling;
    286 			if (cp->p_sibling)
    287 				cp->p_sibling->p_psibling = cp->p_psibling;
    288 			if (cp->p_psibling)
    289 				cp->p_psibling->p_sibling = cp->p_sibling;
    290 			mutex_enter(&cp->p_lock);
    291 			tk = cp->p_task;
    292 			task_detach(cp);
    293 			ASSERT(cp->p_pool->pool_ref > 0);
    294 			atomic_add_32(&cp->p_pool->pool_ref, -1);
    295 			mutex_exit(&cp->p_lock);
    296 			pid_exit(cp);
    297 			mutex_exit(&pidlock);
    298 			task_rele(tk);
    299 
    300 			mutex_enter(&p->p_lock);
    301 			p->p_flag &= ~SFORKING;
    302 			pool_barrier_exit();
    303 			continuelwps(p);
    304 			mutex_exit(&p->p_lock);
    305 			/*
    306 			 * Preserve ENOMEM error condition but
    307 			 * map all others to EAGAIN.
    308 			 */
    309 			error = (error == ENOMEM) ? ENOMEM : EAGAIN;
    310 			goto forkerr;
    311 		}
    312 
    313 		/*
    314 		 * Remove all DTrace tracepoints from the child process. We
    315 		 * need to do this _before_ duplicating USDT providers since
    316 		 * any associated probes may be immediately enabled.
    317 		 */
    318 		if (p->p_dtrace_count > 0)
    319 			dtrace_fasttrap_fork(p, cp);
    320 
    321 		mutex_enter(&p->p_lock);
    322 		sprunlock(p);
    323 
    324 		/* Duplicate parent's shared memory */
    325 		if (p->p_segacct)
    326 			shmfork(p, cp);
    327 
    328 		/*
    329 		 * Duplicate any helper actions and providers. The SFORKING
    330 		 * we set above informs the code to enable USDT probes that
    331 		 * sprlock() may fail because the child is being forked.
    332 		 */
    333 		if (p->p_dtrace_helpers != NULL) {
    334 			ASSERT(dtrace_helpers_fork != NULL);
    335 			(*dtrace_helpers_fork)(p, cp);
    336 		}
    337 
    338 		mutex_enter(&p->p_lock);
    339 		p->p_flag &= ~SFORKING;
    340 		mutex_exit(&p->p_lock);
    341 	}
    342 
    343 	/*
    344 	 * Duplicate parent's resource controls.
    345 	 */
    346 	dup_set = rctl_set_create();
    347 	for (;;) {
    348 		dup_gp = rctl_set_dup_prealloc(p->p_rctls);
    349 		mutex_enter(&p->p_rctls->rcs_lock);
    350 		if (rctl_set_dup_ready(p->p_rctls, dup_gp))
    351 			break;
    352 		mutex_exit(&p->p_rctls->rcs_lock);
    353 		rctl_prealloc_destroy(dup_gp);
    354 	}
    355 	e.rcep_p.proc = cp;
    356 	e.rcep_t = RCENTITY_PROCESS;
    357 	cp->p_rctls = rctl_set_dup(p->p_rctls, p, cp, &e, dup_set, dup_gp,
    358 	    RCD_DUP | RCD_CALLBACK);
    359 	mutex_exit(&p->p_rctls->rcs_lock);
    360 
    361 	rctl_prealloc_destroy(dup_gp);
    362 
    363 	/*
    364 	 * Allocate the child's lwp directory and lwpid hash table.
    365 	 */
    366 	if (isfork1)
    367 		cp->p_lwpdir_sz = 2;
    368 	else
    369 		cp->p_lwpdir_sz = p->p_lwpdir_sz;
    370 	cp->p_lwpdir = cp->p_lwpfree = ldp =
    371 	    kmem_zalloc(cp->p_lwpdir_sz * sizeof (lwpdir_t), KM_SLEEP);
    372 	for (i = 1; i < cp->p_lwpdir_sz; i++, ldp++)
    373 		ldp->ld_next = ldp + 1;
    374 	cp->p_tidhash_sz = (cp->p_lwpdir_sz + 2) / 2;
    375 	cp->p_tidhash =
    376 	    kmem_zalloc(cp->p_tidhash_sz * sizeof (tidhash_t), KM_SLEEP);
    377 
    378 	/*
    379 	 * Duplicate parent's lwps.
    380 	 * Mutual exclusion is not needed because the process is
    381 	 * in the hold state and only the current lwp is running.
    382 	 */
    383 	klgrpset_clear(cp->p_lgrpset);
    384 	if (isfork1) {
    385 		clone = forklwp(ttolwp(curthread), cp, curthread->t_tid);
    386 		if (clone == NULL)
    387 			goto forklwperr;
    388 		/*
    389 		 * Inherit only the lwp_wait()able flag,
    390 		 * Daemon threads should not call fork1(), but oh well...
    391 		 */
    392 		lwptot(clone)->t_proc_flag |=
    393 		    (curthread->t_proc_flag & TP_TWAIT);
    394 	} else {
    395 		/* this is forkall(), no one can be in lwp_wait() */
    396 		ASSERT(p->p_lwpwait == 0 && p->p_lwpdwait == 0);
    397 		/* for each entry in the parent's lwp directory... */
    398 		for (i = 0, ldp = p->p_lwpdir; i < p->p_lwpdir_sz; i++, ldp++) {
    399 			klwp_t *clwp;
    400 			kthread_t *ct;
    401 
    402 			if ((lep = ldp->ld_entry) == NULL)
    403 				continue;
    404 
    405 			if ((t = lep->le_thread) != NULL) {
    406 				clwp = forklwp(ttolwp(t), cp, t->t_tid);
    407 				if (clwp == NULL)
    408 					goto forklwperr;
    409 				ct = lwptot(clwp);
    410 				/*
    411 				 * Inherit lwp_wait()able and daemon flags.
    412 				 */
    413 				ct->t_proc_flag |=
    414 				    (t->t_proc_flag & (TP_TWAIT|TP_DAEMON));
    415 				/*
    416 				 * Keep track of the clone of curthread to
    417 				 * post return values through lwp_setrval().
    418 				 * Mark other threads for special treatment
    419 				 * by lwp_rtt() / post_syscall().
    420 				 */
    421 				if (t == curthread)
    422 					clone = clwp;
    423 				else
    424 					ct->t_flag |= T_FORKALL;
    425 			} else {
    426 				/*
    427 				 * Replicate zombie lwps in the child.
    428 				 */
    429 				clep = kmem_zalloc(sizeof (*clep), KM_SLEEP);
    430 				clep->le_lwpid = lep->le_lwpid;
    431 				clep->le_start = lep->le_start;
    432 				lwp_hash_in(cp, clep,
    433 				    cp->p_tidhash, cp->p_tidhash_sz, 0);
    434 			}
    435 		}
    436 	}
    437 
    438 	/*
    439 	 * Put new process in the parent's process contract, or put it
    440 	 * in a new one if there is an active process template.  Send a
    441 	 * fork event (if requested) to whatever contract the child is
    442 	 * a member of.  Fails if the parent has been SIGKILLed.
    443 	 */
    444 	if (contract_process_fork(NULL, cp, p, B_TRUE) == NULL)
    445 		goto forklwperr;
    446 
    447 	/*
    448 	 * No fork failures occur beyond this point.
    449 	 */
    450 
    451 	cp->p_lwpid = p->p_lwpid;
    452 	if (!isfork1) {
    453 		cp->p_lwpdaemon = p->p_lwpdaemon;
    454 		cp->p_zombcnt = p->p_zombcnt;
    455 		/*
    456 		 * If the parent's lwp ids have wrapped around, so have the
    457 		 * child's.
    458 		 */
    459 		cp->p_flag |= p->p_flag & SLWPWRAP;
    460 	}
    461 
    462 	mutex_enter(&p->p_lock);
    463 	corectl_path_hold(cp->p_corefile = p->p_corefile);
    464 	corectl_content_hold(cp->p_content = p->p_content);
    465 	mutex_exit(&p->p_lock);
    466 
    467 	/*
    468 	 * Duplicate process context ops, if any.
    469 	 */
    470 	if (p->p_pctx)
    471 		forkpctx(p, cp);
    472 
    473 #ifdef __sparc
    474 	utrap_dup(p, cp);
    475 #endif
    476 	/*
    477 	 * If the child process has been marked to stop on exit
    478 	 * from this fork, arrange for all other lwps to stop in
    479 	 * sympathy with the active lwp.
    480 	 */
    481 	if (PTOU(cp)->u_systrap &&
    482 	    prismember(&PTOU(cp)->u_exitmask, curthread->t_sysnum)) {
    483 		mutex_enter(&cp->p_lock);
    484 		t = cp->p_tlist;
    485 		do {
    486 			t->t_proc_flag |= TP_PRSTOP;
    487 			aston(t);	/* so TP_PRSTOP will be seen */
    488 		} while ((t = t->t_forw) != cp->p_tlist);
    489 		mutex_exit(&cp->p_lock);
    490 	}
    491 	/*
    492 	 * If the parent process has been marked to stop on exit
    493 	 * from this fork, and its asynchronous-stop flag has not
    494 	 * been set, arrange for all other lwps to stop before
    495 	 * they return back to user level.
    496 	 */
    497 	if (!(p->p_proc_flag & P_PR_ASYNC) && PTOU(p)->u_systrap &&
    498 	    prismember(&PTOU(p)->u_exitmask, curthread->t_sysnum)) {
    499 		mutex_enter(&p->p_lock);
    500 		t = p->p_tlist;
    501 		do {
    502 			t->t_proc_flag |= TP_PRSTOP;
    503 			aston(t);	/* so TP_PRSTOP will be seen */
    504 		} while ((t = t->t_forw) != p->p_tlist);
    505 		mutex_exit(&p->p_lock);
    506 	}
    507 
    508 	if (PROC_IS_BRANDED(p))
    509 		BROP(p)->b_lwp_setrval(clone, p->p_pid, 1);
    510 	else
    511 		lwp_setrval(clone, p->p_pid, 1);
    512 
    513 	/* set return values for parent */
    514 	r.r_val1 = (int)cp->p_pid;
    515 	r.r_val2 = 0;
    516 
    517 	/*
    518 	 * pool_barrier_exit() can now be called because the child process has:
    519 	 * - all identifying features cloned or set (p_pid, p_task, p_pool)
    520 	 * - all resource sets associated (p_tlist->*->t_cpupart, p_as->a_mset)
    521 	 * - any other fields set which are used in resource set binding.
    522 	 */
    523 	mutex_enter(&p->p_lock);
    524 	pool_barrier_exit();
    525 	mutex_exit(&p->p_lock);
    526 
    527 	mutex_enter(&pidlock);
    528 	mutex_enter(&cp->p_lock);
    529 
    530 	/*
    531 	 * Set flags telling the child what (not) to do on exit.
    532 	 */
    533 	if (flags & FORK_NOSIGCHLD)
    534 		cp->p_pidflag |= CLDNOSIGCHLD;
    535 	if (flags & FORK_WAITPID)
    536 		cp->p_pidflag |= CLDWAITPID;
    537 
    538 	/*
    539 	 * Now that there are lwps and threads attached, add the new
    540 	 * process to the process group.
    541 	 */
    542 	pgjoin(cp, p->p_pgidp);
    543 	cp->p_stat = SRUN;
    544 	/*
    545 	 * We are now done with all the lwps in the child process.
    546 	 */
    547 	t = cp->p_tlist;
    548 	do {
    549 		/*
    550 		 * Set the lwp_suspend()ed lwps running.
    551 		 * They will suspend properly at syscall exit.
    552 		 */
    553 		if (t->t_proc_flag & TP_HOLDLWP)
    554 			lwp_create_done(t);
    555 		else {
    556 			/* set TS_CREATE to allow continuelwps() to work */
    557 			thread_lock(t);
    558 			ASSERT(t->t_state == TS_STOPPED &&
    559 			    !(t->t_schedflag & (TS_CREATE|TS_CSTART)));
    560 			t->t_schedflag |= TS_CREATE;
    561 			thread_unlock(t);
    562 		}
    563 	} while ((t = t->t_forw) != cp->p_tlist);
    564 	mutex_exit(&cp->p_lock);
    565 
    566 	if (isvfork) {
    567 		CPU_STATS_ADDQ(CPU, sys, sysvfork, 1);
    568 		mutex_enter(&p->p_lock);
    569 		p->p_flag |= SVFWAIT;
    570 		curthread->t_flag |= T_VFPARENT;
    571 		DTRACE_PROC1(create, proc_t *, cp);
    572 		cv_broadcast(&pr_pid_cv[p->p_slot]);	/* inform /proc */
    573 		mutex_exit(&p->p_lock);
    574 		/*
    575 		 * Grab child's p_lock before dropping pidlock to ensure
    576 		 * the process will not disappear before we set it running.
    577 		 */
    578 		mutex_enter(&cp->p_lock);
    579 		mutex_exit(&pidlock);
    580 		sigdefault(cp);
    581 		continuelwps(cp);
    582 		mutex_exit(&cp->p_lock);
    583 	} else {
    584 		CPU_STATS_ADDQ(CPU, sys, sysfork, 1);
    585 		DTRACE_PROC1(create, proc_t *, cp);
    586 		/*
    587 		 * It is CL_FORKRET's job to drop pidlock.
    588 		 * If we do it here, the process could be set running
    589 		 * and disappear before CL_FORKRET() is called.
    590 		 */
    591 		CL_FORKRET(curthread, cp->p_tlist);
    592 		schedctl_set_cidpri(curthread);
    593 		ASSERT(MUTEX_NOT_HELD(&pidlock));
    594 	}
    595 
    596 	return (r.r_vals);
    597 
    598 forklwperr:
    599 	if (isvfork) {
    600 		if (avl_numnodes(&p->p_wpage) != 0) {
    601 			/* restore watchpoints to parent */
    602 			as = p->p_as;
    603 			AS_LOCK_ENTER(as, &as->a_lock, RW_WRITER);
    604 			as->a_wpage = p->p_wpage;
    605 			avl_create(&p->p_wpage, wp_compare,
    606 			    sizeof (struct watched_page),
    607 			    offsetof(struct watched_page, wp_link));
    608 			as_setwatch(as);
    609 			AS_LOCK_EXIT(as, &as->a_lock);
    610 		}
    611 	} else {
    612 		if (cp->p_segacct)
    613 			shmexit(cp);
    614 		as = cp->p_as;
    615 		cp->p_as = &kas;
    616 		as_free(as);
    617 	}
    618 
    619 	if (cp->p_lwpdir) {
    620 		for (i = 0, ldp = cp->p_lwpdir; i < cp->p_lwpdir_sz; i++, ldp++)
    621 			if ((lep = ldp->ld_entry) != NULL)
    622 				kmem_free(lep, sizeof (*lep));
    623 		kmem_free(cp->p_lwpdir,
    624 		    cp->p_lwpdir_sz * sizeof (*cp->p_lwpdir));
    625 	}
    626 	cp->p_lwpdir = NULL;
    627 	cp->p_lwpfree = NULL;
    628 	cp->p_lwpdir_sz = 0;
    629 
    630 	if (cp->p_tidhash)
    631 		kmem_free(cp->p_tidhash,
    632 		    cp->p_tidhash_sz * sizeof (*cp->p_tidhash));
    633 	cp->p_tidhash = NULL;
    634 	cp->p_tidhash_sz = 0;
    635 
    636 	forklwp_fail(cp);
    637 	fork_fail(cp);
    638 	rctl_set_free(cp->p_rctls);
    639 	mutex_enter(&pidlock);
    640 
    641 	/*
    642 	 * Detach failed child from task.
    643 	 */
    644 	mutex_enter(&cp->p_lock);
    645 	tk = cp->p_task;
    646 	task_detach(cp);
    647 	ASSERT(cp->p_pool->pool_ref > 0);
    648 	atomic_add_32(&cp->p_pool->pool_ref, -1);
    649 	mutex_exit(&cp->p_lock);
    650 
    651 	orphpp = &p->p_orphan;
    652 	while (*orphpp != cp)
    653 		orphpp = &(*orphpp)->p_nextorph;
    654 	*orphpp = cp->p_nextorph;
    655 	if (p->p_child == cp)
    656 		p->p_child = cp->p_sibling;
    657 	if (cp->p_sibling)
    658 		cp->p_sibling->p_psibling = cp->p_psibling;
    659 	if (cp->p_psibling)
    660 		cp->p_psibling->p_sibling = cp->p_sibling;
    661 	pid_exit(cp);
    662 	mutex_exit(&pidlock);
    663 
    664 	task_rele(tk);
    665 
    666 	mutex_enter(&p->p_lock);
    667 	pool_barrier_exit();
    668 	continuelwps(p);
    669 	mutex_exit(&p->p_lock);
    670 	error = EAGAIN;
    671 forkerr:
    672 	return ((int64_t)set_errno(error));
    673 }
    674 
    675 /*
    676  * Free allocated resources from getproc() if a fork failed.
    677  */
    678 static void
    679 fork_fail(proc_t *cp)
    680 {
    681 	uf_info_t *fip = P_FINFO(cp);
    682 
    683 	fcnt_add(fip, -1);
    684 	sigdelq(cp, NULL, 0);
    685 
    686 	mutex_enter(&pidlock);
    687 	upcount_dec(crgetruid(cp->p_cred), crgetzoneid(cp->p_cred));
    688 	mutex_exit(&pidlock);
    689 
    690 	/*
    691 	 * single threaded, so no locking needed here
    692 	 */
    693 	crfree(cp->p_cred);
    694 
    695 	kmem_free(fip->fi_list, fip->fi_nfiles * sizeof (uf_entry_t));
    696 
    697 	VN_RELE(PTOU(curproc)->u_cdir);
    698 	if (PTOU(curproc)->u_rdir)
    699 		VN_RELE(PTOU(curproc)->u_rdir);
    700 	if (cp->p_exec)
    701 		VN_RELE(cp->p_exec);
    702 	if (cp->p_execdir)
    703 		VN_RELE(cp->p_execdir);
    704 	if (PTOU(curproc)->u_cwd)
    705 		refstr_rele(PTOU(curproc)->u_cwd);
    706 }
    707 
    708 /*
    709  * Clean up the lwps already created for this child process.
    710  * The fork failed while duplicating all the lwps of the parent
    711  * and those lwps already created must be freed.
    712  * This process is invisible to the rest of the system,
    713  * so we don't need to hold p->p_lock to protect the list.
    714  */
    715 static void
    716 forklwp_fail(proc_t *p)
    717 {
    718 	kthread_t *t;
    719 	task_t *tk;
    720 
    721 	while ((t = p->p_tlist) != NULL) {
    722 		/*
    723 		 * First remove the lwp from the process's p_tlist.
    724 		 */
    725 		if (t != t->t_forw)
    726 			p->p_tlist = t->t_forw;
    727 		else
    728 			p->p_tlist = NULL;
    729 		p->p_lwpcnt--;
    730 		t->t_forw->t_back = t->t_back;
    731 		t->t_back->t_forw = t->t_forw;
    732 
    733 		tk = p->p_task;
    734 		mutex_enter(&p->p_zone->zone_nlwps_lock);
    735 		tk->tk_nlwps--;
    736 		tk->tk_proj->kpj_nlwps--;
    737 		p->p_zone->zone_nlwps--;
    738 		mutex_exit(&p->p_zone->zone_nlwps_lock);
    739 
    740 		ASSERT(t->t_schedctl == NULL);
    741 
    742 		if (t->t_door != NULL) {
    743 			kmem_free(t->t_door, sizeof (door_data_t));
    744 			t->t_door = NULL;
    745 		}
    746 		lwp_ctmpl_clear(ttolwp(t));
    747 
    748 		/*
    749 		 * Remove the thread from the all threads list.
    750 		 * We need to hold pidlock for this.
    751 		 */
    752 		mutex_enter(&pidlock);
    753 		t->t_next->t_prev = t->t_prev;
    754 		t->t_prev->t_next = t->t_next;
    755 		CL_EXIT(t);	/* tell the scheduler that we're exiting */
    756 		cv_broadcast(&t->t_joincv);	/* tell anyone in thread_join */
    757 		mutex_exit(&pidlock);
    758 
    759 		/*
    760 		 * Let the lgroup load averages know that this thread isn't
    761 		 * going to show up (i.e. un-do what was done on behalf of
    762 		 * this thread by the earlier lgrp_move_thread()).
    763 		 */
    764 		kpreempt_disable();
    765 		lgrp_move_thread(t, NULL, 1);
    766 		kpreempt_enable();
    767 
    768 		/*
    769 		 * The thread was created TS_STOPPED.
    770 		 * We change it to TS_FREE to avoid an
    771 		 * ASSERT() panic in thread_free().
    772 		 */
    773 		t->t_state = TS_FREE;
    774 		thread_rele(t);
    775 		thread_free(t);
    776 	}
    777 }
    778 
    779 extern struct as kas;
    780 
    781 /*
    782  * fork a kernel process.
    783  */
    784 int
    785 newproc(void (*pc)(), caddr_t arg, id_t cid, int pri, struct contract **ct,
    786     pid_t pid)
    787 {
    788 	proc_t *p;
    789 	struct user *up;
    790 	kthread_t *t;
    791 	cont_process_t *ctp = NULL;
    792 	rctl_entity_p_t e;
    793 
    794 	ASSERT(cid != sysdccid);
    795 	ASSERT(cid != syscid || ct == NULL);
    796 	if (CLASS_KERNEL(cid)) {
    797 		rctl_alloc_gp_t *init_gp;
    798 		rctl_set_t *init_set;
    799 
    800 		ASSERT(pid != 1);
    801 
    802 		if (getproc(&p, pid, GETPROC_KERNEL) < 0)
    803 			return (EAGAIN);
    804 
    805 		/*
    806 		 * Release the hold on the p_exec and p_execdir, these
    807 		 * were acquired in getproc()
    808 		 */
    809 		if (p->p_execdir != NULL)
    810 			VN_RELE(p->p_execdir);
    811 		if (p->p_exec != NULL)
    812 			VN_RELE(p->p_exec);
    813 		p->p_flag |= SNOWAIT;
    814 		p->p_exec = NULL;
    815 		p->p_execdir = NULL;
    816 
    817 		init_set = rctl_set_create();
    818 		init_gp = rctl_set_init_prealloc(RCENTITY_PROCESS);
    819 
    820 		/*
    821 		 * kernel processes do not inherit /proc tracing flags.
    822 		 */
    823 		sigemptyset(&p->p_sigmask);
    824 		premptyset(&p->p_fltmask);
    825 		up = PTOU(p);
    826 		up->u_systrap = 0;
    827 		premptyset(&(up->u_entrymask));
    828 		premptyset(&(up->u_exitmask));
    829 		mutex_enter(&p->p_lock);
    830 		e.rcep_p.proc = p;
    831 		e.rcep_t = RCENTITY_PROCESS;
    832 		p->p_rctls = rctl_set_init(RCENTITY_PROCESS, p, &e, init_set,
    833 		    init_gp);
    834 		mutex_exit(&p->p_lock);
    835 
    836 		rctl_prealloc_destroy(init_gp);
    837 
    838 		t = lwp_kernel_create(p, pc, arg, TS_STOPPED, pri);
    839 	} else {
    840 		rctl_alloc_gp_t *init_gp, *default_gp;
    841 		rctl_set_t *init_set;
    842 		task_t *tk, *tk_old;
    843 		klwp_t *lwp;
    844 
    845 		if (getproc(&p, pid, GETPROC_USER) < 0)
    846 			return (EAGAIN);
    847 		/*
    848 		 * init creates a new task, distinct from the task
    849 		 * containing kernel "processes".
    850 		 */
    851 		tk = task_create(0, p->p_zone);
    852 		mutex_enter(&tk->tk_zone->zone_nlwps_lock);
    853 		tk->tk_proj->kpj_ntasks++;
    854 		mutex_exit(&tk->tk_zone->zone_nlwps_lock);
    855 
    856 		default_gp = rctl_rlimit_set_prealloc(RLIM_NLIMITS);
    857 		init_gp = rctl_set_init_prealloc(RCENTITY_PROCESS);
    858 		init_set = rctl_set_create();
    859 
    860 		mutex_enter(&pidlock);
    861 		mutex_enter(&p->p_lock);
    862 		tk_old = p->p_task;	/* switch to new task */
    863 
    864 		task_detach(p);
    865 		task_begin(tk, p);
    866 		mutex_exit(&pidlock);
    867 
    868 		e.rcep_p.proc = p;
    869 		e.rcep_t = RCENTITY_PROCESS;
    870 		p->p_rctls = rctl_set_init(RCENTITY_PROCESS, p, &e, init_set,
    871 		    init_gp);
    872 		rctlproc_default_init(p, default_gp);
    873 		mutex_exit(&p->p_lock);
    874 
    875 		task_rele(tk_old);
    876 		rctl_prealloc_destroy(default_gp);
    877 		rctl_prealloc_destroy(init_gp);
    878 
    879 		if ((lwp = lwp_create(pc, arg, 0, p, TS_STOPPED, pri,
    880 		    &curthread->t_hold, cid, 1)) == NULL) {
    881 			task_t *tk;
    882 			fork_fail(p);
    883 			mutex_enter(&pidlock);
    884 			mutex_enter(&p->p_lock);
    885 			tk = p->p_task;
    886 			task_detach(p);
    887 			ASSERT(p->p_pool->pool_ref > 0);
    888 			atomic_add_32(&p->p_pool->pool_ref, -1);
    889 			mutex_exit(&p->p_lock);
    890 			pid_exit(p);
    891 			mutex_exit(&pidlock);
    892 			task_rele(tk);
    893 
    894 			return (EAGAIN);
    895 		}
    896 		t = lwptot(lwp);
    897 
    898 		ctp = contract_process_fork(sys_process_tmpl, p, curproc,
    899 		    B_FALSE);
    900 		ASSERT(ctp != NULL);
    901 		if (ct != NULL)
    902 			*ct = &ctp->conp_contract;
    903 	}
    904 
    905 	ASSERT3U(t->t_tid, ==, 1);
    906 	p->p_lwpid = 1;
    907 	mutex_enter(&pidlock);
    908 	pgjoin(p, p->p_parent->p_pgidp);
    909 	p->p_stat = SRUN;
    910 	mutex_enter(&p->p_lock);
    911 	t->t_proc_flag &= ~TP_HOLDLWP;
    912 	lwp_create_done(t);
    913 	mutex_exit(&p->p_lock);
    914 	mutex_exit(&pidlock);
    915 	return (0);
    916 }
    917 
    918 /*
    919  * create a child proc struct.
    920  */
    921 static int
    922 getproc(proc_t **cpp, pid_t pid, uint_t flags)
    923 {
    924 	proc_t		*pp, *cp;
    925 	pid_t		newpid;
    926 	struct user	*uarea;
    927 	extern uint_t	nproc;
    928 	struct cred	*cr;
    929 	uid_t		ruid;
    930 	zoneid_t	zoneid;
    931 
    932 	if (!page_mem_avail(tune.t_minarmem))
    933 		return (-1);
    934 	if (zone_status_get(curproc->p_zone) >= ZONE_IS_SHUTTING_DOWN)
    935 		return (-1);	/* no point in starting new processes */
    936 
    937 	pp = (flags & GETPROC_KERNEL) ? &p0 : curproc;
    938 	cp = kmem_cache_alloc(process_cache, KM_SLEEP);
    939 	bzero(cp, sizeof (proc_t));
    940 
    941 	/*
    942 	 * Make proc entry for child process
    943 	 */
    944 	mutex_init(&cp->p_splock, NULL, MUTEX_DEFAULT, NULL);
    945 	mutex_init(&cp->p_crlock, NULL, MUTEX_DEFAULT, NULL);
    946 	mutex_init(&cp->p_pflock, NULL, MUTEX_DEFAULT, NULL);
    947 #if defined(__x86)
    948 	mutex_init(&cp->p_ldtlock, NULL, MUTEX_DEFAULT, NULL);
    949 #endif
    950 	mutex_init(&cp->p_maplock, NULL, MUTEX_DEFAULT, NULL);
    951 	cp->p_stat = SIDL;
    952 	cp->p_mstart = gethrtime();
    953 	cp->p_as = &kas;
    954 	/*
    955 	 * p_zone must be set before we call pid_allocate since the process
    956 	 * will be visible after that and code such as prfind_zone will
    957 	 * look at the p_zone field.
    958 	 */
    959 	cp->p_zone = pp->p_zone;
    960 	cp->p_t1_lgrpid = LGRP_NONE;
    961 	cp->p_tr_lgrpid = LGRP_NONE;
    962 
    963 	if ((newpid = pid_allocate(cp, pid, PID_ALLOC_PROC)) == -1) {
    964 		if (nproc == v.v_proc) {
    965 			CPU_STATS_ADDQ(CPU, sys, procovf, 1);
    966 			cmn_err(CE_WARN, "out of processes");
    967 		}
    968 		goto bad;
    969 	}
    970 
    971 	/*
    972 	 * If not privileged make sure that this user hasn't exceeded
    973 	 * v.v_maxup processes, and that users collectively haven't
    974 	 * exceeded v.v_maxupttl processes.
    975 	 */
    976 	mutex_enter(&pidlock);
    977 	ASSERT(nproc < v.v_proc);	/* otherwise how'd we get our pid? */
    978 	cr = CRED();
    979 	ruid = crgetruid(cr);
    980 	zoneid = crgetzoneid(cr);
    981 	if (nproc >= v.v_maxup && 	/* short-circuit; usually false */
    982 	    (nproc >= v.v_maxupttl ||
    983 	    upcount_get(ruid, zoneid) >= v.v_maxup) &&
    984 	    secpolicy_newproc(cr) != 0) {
    985 		mutex_exit(&pidlock);
    986 		zcmn_err(zoneid, CE_NOTE,
    987 		    "out of per-user processes for uid %d", ruid);
    988 		goto bad;
    989 	}
    990 
    991 	/*
    992 	 * Everything is cool, put the new proc on the active process list.
    993 	 * It is already on the pid list and in /proc.
    994 	 * Increment the per uid process count (upcount).
    995 	 */
    996 	nproc++;
    997 	upcount_inc(ruid, zoneid);
    998 
    999 	cp->p_next = practive;
   1000 	practive->p_prev = cp;
   1001 	practive = cp;
   1002 
   1003 	cp->p_ignore = pp->p_ignore;
   1004 	cp->p_siginfo = pp->p_siginfo;
   1005 	cp->p_flag = pp->p_flag & (SJCTL|SNOWAIT|SNOCD);
   1006 	cp->p_sessp = pp->p_sessp;
   1007 	sess_hold(pp);
   1008 	cp->p_exec = pp->p_exec;
   1009 	cp->p_execdir = pp->p_execdir;
   1010 	cp->p_brand = pp->p_brand;
   1011 	if (PROC_IS_BRANDED(pp))
   1012 		BROP(pp)->b_copy_procdata(cp, pp);
   1013 
   1014 	cp->p_bssbase = pp->p_bssbase;
   1015 	cp->p_brkbase = pp->p_brkbase;
   1016 	cp->p_brksize = pp->p_brksize;
   1017 	cp->p_brkpageszc = pp->p_brkpageszc;
   1018 	cp->p_stksize = pp->p_stksize;
   1019 	cp->p_stkpageszc = pp->p_stkpageszc;
   1020 	cp->p_stkprot = pp->p_stkprot;
   1021 	cp->p_datprot = pp->p_datprot;
   1022 	cp->p_usrstack = pp->p_usrstack;
   1023 	cp->p_model = pp->p_model;
   1024 	cp->p_ppid = pp->p_pid;
   1025 	cp->p_ancpid = pp->p_pid;
   1026 	cp->p_portcnt = pp->p_portcnt;
   1027 
   1028 	/*
   1029 	 * Initialize watchpoint structures
   1030 	 */
   1031 	avl_create(&cp->p_warea, wa_compare, sizeof (struct watched_area),
   1032 	    offsetof(struct watched_area, wa_link));
   1033 
   1034 	/*
   1035 	 * Initialize immediate resource control values.
   1036 	 */
   1037 	cp->p_stk_ctl = pp->p_stk_ctl;
   1038 	cp->p_fsz_ctl = pp->p_fsz_ctl;
   1039 	cp->p_vmem_ctl = pp->p_vmem_ctl;
   1040 	cp->p_fno_ctl = pp->p_fno_ctl;
   1041 
   1042 	/*
   1043 	 * Link up to parent-child-sibling chain.  No need to lock
   1044 	 * in general since only a call to freeproc() (done by the
   1045 	 * same parent as newproc()) diddles with the child chain.
   1046 	 */
   1047 	cp->p_sibling = pp->p_child;
   1048 	if (pp->p_child)
   1049 		pp->p_child->p_psibling = cp;
   1050 
   1051 	cp->p_parent = pp;
   1052 	pp->p_child = cp;
   1053 
   1054 	cp->p_child_ns = NULL;
   1055 	cp->p_sibling_ns = NULL;
   1056 
   1057 	cp->p_nextorph = pp->p_orphan;
   1058 	cp->p_nextofkin = pp;
   1059 	pp->p_orphan = cp;
   1060 
   1061 	/*
   1062 	 * Inherit profiling state; do not inherit REALPROF profiling state.
   1063 	 */
   1064 	cp->p_prof = pp->p_prof;
   1065 	cp->p_rprof_cyclic = CYCLIC_NONE;
   1066 
   1067 	/*
   1068 	 * Inherit pool pointer from the parent.  Kernel processes are
   1069 	 * always bound to the default pool.
   1070 	 */
   1071 	mutex_enter(&pp->p_lock);
   1072 	if (flags & GETPROC_KERNEL) {
   1073 		cp->p_pool = pool_default;
   1074 		cp->p_flag |= SSYS;
   1075 	} else {
   1076 		cp->p_pool = pp->p_pool;
   1077 	}
   1078 	atomic_add_32(&cp->p_pool->pool_ref, 1);
   1079 	mutex_exit(&pp->p_lock);
   1080 
   1081 	/*
   1082 	 * Add the child process to the current task.  Kernel processes
   1083 	 * are always attached to task0.
   1084 	 */
   1085 	mutex_enter(&cp->p_lock);
   1086 	if (flags & GETPROC_KERNEL)
   1087 		task_attach(task0p, cp);
   1088 	else
   1089 		task_attach(pp->p_task, cp);
   1090 	mutex_exit(&cp->p_lock);
   1091 	mutex_exit(&pidlock);
   1092 
   1093 	avl_create(&cp->p_ct_held, contract_compar, sizeof (contract_t),
   1094 	    offsetof(contract_t, ct_ctlist));
   1095 
   1096 	/*
   1097 	 * Duplicate any audit information kept in the process table
   1098 	 */
   1099 	if (audit_active)	/* copy audit data to cp */
   1100 		audit_newproc(cp);
   1101 
   1102 	crhold(cp->p_cred = cr);
   1103 
   1104 	/*
   1105 	 * Bump up the counts on the file structures pointed at by the
   1106 	 * parent's file table since the child will point at them too.
   1107 	 */
   1108 	fcnt_add(P_FINFO(pp), 1);
   1109 
   1110 	if (PTOU(pp)->u_cdir) {
   1111 		VN_HOLD(PTOU(pp)->u_cdir);
   1112 	} else {
   1113 		ASSERT(pp == &p0);
   1114 		/*
   1115 		 * We must be at or before vfs_mountroot(); it will take care of
   1116 		 * assigning our current directory.
   1117 		 */
   1118 	}
   1119 	if (PTOU(pp)->u_rdir)
   1120 		VN_HOLD(PTOU(pp)->u_rdir);
   1121 	if (PTOU(pp)->u_cwd)
   1122 		refstr_hold(PTOU(pp)->u_cwd);
   1123 
   1124 	/*
   1125 	 * copy the parent's uarea.
   1126 	 */
   1127 	uarea = PTOU(cp);
   1128 	bcopy(PTOU(pp), uarea, sizeof (*uarea));
   1129 	flist_fork(P_FINFO(pp), P_FINFO(cp));
   1130 
   1131 	gethrestime(&uarea->u_start);
   1132 	uarea->u_ticks = ddi_get_lbolt();
   1133 	uarea->u_mem = rm_asrss(pp->p_as);
   1134 	uarea->u_acflag = AFORK;
   1135 
   1136 	/*
   1137 	 * If inherit-on-fork, copy /proc tracing flags to child.
   1138 	 */
   1139 	if ((pp->p_proc_flag & P_PR_FORK) != 0) {
   1140 		cp->p_proc_flag |= pp->p_proc_flag & (P_PR_TRACE|P_PR_FORK);
   1141 		cp->p_sigmask = pp->p_sigmask;
   1142 		cp->p_fltmask = pp->p_fltmask;
   1143 	} else {
   1144 		sigemptyset(&cp->p_sigmask);
   1145 		premptyset(&cp->p_fltmask);
   1146 		uarea->u_systrap = 0;
   1147 		premptyset(&uarea->u_entrymask);
   1148 		premptyset(&uarea->u_exitmask);
   1149 	}
   1150 	/*
   1151 	 * If microstate accounting is being inherited, mark child
   1152 	 */
   1153 	if ((pp->p_flag & SMSFORK) != 0)
   1154 		cp->p_flag |= pp->p_flag & (SMSFORK|SMSACCT);
   1155 
   1156 	/*
   1157 	 * Inherit fixalignment flag from the parent
   1158 	 */
   1159 	cp->p_fixalignment = pp->p_fixalignment;
   1160 
   1161 	if (cp->p_exec)
   1162 		VN_HOLD(cp->p_exec);
   1163 	if (cp->p_execdir)
   1164 		VN_HOLD(cp->p_execdir);
   1165 	*cpp = cp;
   1166 	return (0);
   1167 
   1168 bad:
   1169 	ASSERT(MUTEX_NOT_HELD(&pidlock));
   1170 
   1171 	mutex_destroy(&cp->p_crlock);
   1172 	mutex_destroy(&cp->p_pflock);
   1173 #if defined(__x86)
   1174 	mutex_destroy(&cp->p_ldtlock);
   1175 #endif
   1176 	if (newpid != -1) {
   1177 		proc_entry_free(cp->p_pidp);
   1178 		(void) pid_rele(cp->p_pidp);
   1179 	}
   1180 	kmem_cache_free(process_cache, cp);
   1181 
   1182 	/*
   1183 	 * We most likely got into this situation because some process is
   1184 	 * forking out of control.  As punishment, put it to sleep for a
   1185 	 * bit so it can't eat the machine alive.  Sleep interval is chosen
   1186 	 * to allow no more than one fork failure per cpu per clock tick
   1187 	 * on average (yes, I just made this up).  This has two desirable
   1188 	 * properties: (1) it sets a constant limit on the fork failure
   1189 	 * rate, and (2) the busier the system is, the harsher the penalty
   1190 	 * for abusing it becomes.
   1191 	 */
   1192 	INCR_COUNT(&fork_fail_pending, &pidlock);
   1193 	delay(fork_fail_pending / ncpus + 1);
   1194 	DECR_COUNT(&fork_fail_pending, &pidlock);
   1195 
   1196 	return (-1); /* out of memory or proc slots */
   1197 }
   1198 
   1199 /*
   1200  * Release virtual memory.
   1201  * In the case of vfork(), the child was given exclusive access to its
   1202  * parent's address space.  The parent is waiting in vfwait() for the
   1203  * child to release its exclusive claim via relvm().
   1204  */
   1205 void
   1206 relvm()
   1207 {
   1208 	proc_t *p = curproc;
   1209 
   1210 	ASSERT((unsigned)p->p_lwpcnt <= 1);
   1211 
   1212 	prrelvm();	/* inform /proc */
   1213 
   1214 	if (p->p_flag & SVFORK) {
   1215 		proc_t *pp = p->p_parent;
   1216 		/*
   1217 		 * The child process is either exec'ing or exit'ing.
   1218 		 * The child is now separated from the parent's address
   1219 		 * space.  The parent process is made dispatchable.
   1220 		 *
   1221 		 * This is a delicate locking maneuver, involving
   1222 		 * both the parent's p_lock and the child's p_lock.
   1223 		 * As soon as the SVFORK flag is turned off, the
   1224 		 * parent is free to run, but it must not run until
   1225 		 * we wake it up using its p_cv because it might
   1226 		 * exit and we would be referencing invalid memory.
   1227 		 * Therefore, we hold the parent with its p_lock
   1228 		 * while protecting our p_flags with our own p_lock.
   1229 		 */
   1230 try_again:
   1231 		mutex_enter(&p->p_lock);	/* grab child's lock first */
   1232 		prbarrier(p);		/* make sure /proc is blocked out */
   1233 		mutex_enter(&pp->p_lock);
   1234 
   1235 		/*
   1236 		 * Check if parent is locked by /proc.
   1237 		 */
   1238 		if (pp->p_proc_flag & P_PR_LOCK) {
   1239 			/*
   1240 			 * Delay until /proc is done with the parent.
   1241 			 * We must drop our (the child's) p->p_lock, wait
   1242 			 * via prbarrier() on the parent, then start over.
   1243 			 */
   1244 			mutex_exit(&p->p_lock);
   1245 			prbarrier(pp);
   1246 			mutex_exit(&pp->p_lock);
   1247 			goto try_again;
   1248 		}
   1249 		p->p_flag &= ~SVFORK;
   1250 		kpreempt_disable();
   1251 		p->p_as = &kas;
   1252 
   1253 		/*
   1254 		 * notify hat of change in thread's address space
   1255 		 */
   1256 		hat_thread_exit(curthread);
   1257 		kpreempt_enable();
   1258 
   1259 		/*
   1260 		 * child sizes are copied back to parent because
   1261 		 * child may have grown.
   1262 		 */
   1263 		pp->p_brkbase = p->p_brkbase;
   1264 		pp->p_brksize = p->p_brksize;
   1265 		pp->p_stksize = p->p_stksize;
   1266 		/*
   1267 		 * The parent is no longer waiting for the vfork()d child.
   1268 		 * Restore the parent's watched pages, if any.  This is
   1269 		 * safe because we know the parent is not locked by /proc
   1270 		 */
   1271 		pp->p_flag &= ~SVFWAIT;
   1272 		if (avl_numnodes(&pp->p_wpage) != 0) {
   1273 			pp->p_as->a_wpage = pp->p_wpage;
   1274 			avl_create(&pp->p_wpage, wp_compare,
   1275 			    sizeof (struct watched_page),
   1276 			    offsetof(struct watched_page, wp_link));
   1277 		}
   1278 		cv_signal(&pp->p_cv);
   1279 		mutex_exit(&pp->p_lock);
   1280 		mutex_exit(&p->p_lock);
   1281 	} else {
   1282 		if (p->p_as != &kas) {
   1283 			struct as *as;
   1284 
   1285 			if (p->p_segacct)
   1286 				shmexit(p);
   1287 
   1288 			/*
   1289 			 * We grab p_lock for the benefit of /proc
   1290 			 */
   1291 			kpreempt_disable();
   1292 			mutex_enter(&p->p_lock);
   1293 			prbarrier(p);	/* make sure /proc is blocked out */
   1294 			as = p->p_as;
   1295 			p->p_as = &kas;
   1296 			mutex_exit(&p->p_lock);
   1297 
   1298 			/*
   1299 			 * notify hat of change in thread's address space
   1300 			 */
   1301 			hat_thread_exit(curthread);
   1302 			kpreempt_enable();
   1303 
   1304 			as_free(as);
   1305 			p->p_tr_lgrpid = LGRP_NONE;
   1306 		}
   1307 	}
   1308 }
   1309 
   1310 /*
   1311  * Wait for child to exec or exit.
   1312  * Called by parent of vfork'ed process.
   1313  * See important comments in relvm(), above.
   1314  */
   1315 void
   1316 vfwait(pid_t pid)
   1317 {
   1318 	int signalled = 0;
   1319 	proc_t *pp = ttoproc(curthread);
   1320 	proc_t *cp;
   1321 
   1322 	/*
   1323 	 * Wait for child to exec or exit.
   1324 	 */
   1325 	for (;;) {
   1326 		mutex_enter(&pidlock);
   1327 		cp = prfind(pid);
   1328 		if (cp == NULL || cp->p_parent != pp) {
   1329 			/*
   1330 			 * Child has exit()ed.
   1331 			 */
   1332 			mutex_exit(&pidlock);
   1333 			break;
   1334 		}
   1335 		/*
   1336 		 * Grab the child's p_lock before releasing pidlock.
   1337 		 * Otherwise, the child could exit and we would be
   1338 		 * referencing invalid memory.
   1339 		 */
   1340 		mutex_enter(&cp->p_lock);
   1341 		mutex_exit(&pidlock);
   1342 		if (!(cp->p_flag & SVFORK)) {
   1343 			/*
   1344 			 * Child has exec()ed or is exit()ing.
   1345 			 */
   1346 			mutex_exit(&cp->p_lock);
   1347 			break;
   1348 		}
   1349 		mutex_enter(&pp->p_lock);
   1350 		mutex_exit(&cp->p_lock);
   1351 		/*
   1352 		 * We might be waked up spuriously from the cv_wait().
   1353 		 * We have to do the whole operation over again to be
   1354 		 * sure the child's SVFORK flag really is turned off.
   1355 		 * We cannot make reference to the child because it can
   1356 		 * exit before we return and we would be referencing
   1357 		 * invalid memory.
   1358 		 *
   1359 		 * Because this is potentially a very long-term wait,
   1360 		 * we call cv_wait_sig() (for its jobcontrol and /proc
   1361 		 * side-effects) unless there is a current signal, in
   1362 		 * which case we use cv_wait() because we cannot return
   1363 		 * from this function until the child has released the
   1364 		 * address space.  Calling cv_wait_sig() with a current
   1365 		 * signal would lead to an indefinite loop here because
   1366 		 * cv_wait_sig() returns immediately in this case.
   1367 		 */
   1368 		if (signalled)
   1369 			cv_wait(&pp->p_cv, &pp->p_lock);
   1370 		else
   1371 			signalled = !cv_wait_sig(&pp->p_cv, &pp->p_lock);
   1372 		mutex_exit(&pp->p_lock);
   1373 	}
   1374 
   1375 	/* restore watchpoints to parent */
   1376 	if (pr_watch_active(pp)) {
   1377 		struct as *as = pp->p_as;
   1378 		AS_LOCK_ENTER(as, &as->a_lock, RW_WRITER);
   1379 		as_setwatch(as);
   1380 		AS_LOCK_EXIT(as, &as->a_lock);
   1381 	}
   1382 
   1383 	mutex_enter(&pp->p_lock);
   1384 	prbarrier(pp);	/* barrier against /proc locking */
   1385 	continuelwps(pp);
   1386 	mutex_exit(&pp->p_lock);
   1387 }
   1388