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kern_lwp.c revision 1.185.2.2
      1 /*	$NetBSD: kern_lwp.c,v 1.185.2.2 2017/04/26 02:53:26 pgoyette Exp $	*/
      2 
      3 /*-
      4  * Copyright (c) 2001, 2006, 2007, 2008, 2009 The NetBSD Foundation, Inc.
      5  * All rights reserved.
      6  *
      7  * This code is derived from software contributed to The NetBSD Foundation
      8  * by Nathan J. Williams, and Andrew Doran.
      9  *
     10  * Redistribution and use in source and binary forms, with or without
     11  * modification, are permitted provided that the following conditions
     12  * are met:
     13  * 1. Redistributions of source code must retain the above copyright
     14  *    notice, this list of conditions and the following disclaimer.
     15  * 2. Redistributions in binary form must reproduce the above copyright
     16  *    notice, this list of conditions and the following disclaimer in the
     17  *    documentation and/or other materials provided with the distribution.
     18  *
     19  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29  * POSSIBILITY OF SUCH DAMAGE.
     30  */
     31 
     32 /*
     33  * Overview
     34  *
     35  *	Lightweight processes (LWPs) are the basic unit or thread of
     36  *	execution within the kernel.  The core state of an LWP is described
     37  *	by "struct lwp", also known as lwp_t.
     38  *
     39  *	Each LWP is contained within a process (described by "struct proc"),
     40  *	Every process contains at least one LWP, but may contain more.  The
     41  *	process describes attributes shared among all of its LWPs such as a
     42  *	private address space, global execution state (stopped, active,
     43  *	zombie, ...), signal disposition and so on.  On a multiprocessor
     44  *	machine, multiple LWPs be executing concurrently in the kernel.
     45  *
     46  * Execution states
     47  *
     48  *	At any given time, an LWP has overall state that is described by
     49  *	lwp::l_stat.  The states are broken into two sets below.  The first
     50  *	set is guaranteed to represent the absolute, current state of the
     51  *	LWP:
     52  *
     53  *	LSONPROC
     54  *
     55  *		On processor: the LWP is executing on a CPU, either in the
     56  *		kernel or in user space.
     57  *
     58  *	LSRUN
     59  *
     60  *		Runnable: the LWP is parked on a run queue, and may soon be
     61  *		chosen to run by an idle processor, or by a processor that
     62  *		has been asked to preempt a currently runnning but lower
     63  *		priority LWP.
     64  *
     65  *	LSIDL
     66  *
     67  *		Idle: the LWP has been created but has not yet executed,
     68  *		or it has ceased executing a unit of work and is waiting
     69  *		to be started again.
     70  *
     71  *	LSSUSPENDED:
     72  *
     73  *		Suspended: the LWP has had its execution suspended by
     74  *		another LWP in the same process using the _lwp_suspend()
     75  *		system call.  User-level LWPs also enter the suspended
     76  *		state when the system is shutting down.
     77  *
     78  *	The second set represent a "statement of intent" on behalf of the
     79  *	LWP.  The LWP may in fact be executing on a processor, may be
     80  *	sleeping or idle. It is expected to take the necessary action to
     81  *	stop executing or become "running" again within a short timeframe.
     82  *	The LP_RUNNING flag in lwp::l_pflag indicates that an LWP is running.
     83  *	Importantly, it indicates that its state is tied to a CPU.
     84  *
     85  *	LSZOMB:
     86  *
     87  *		Dead or dying: the LWP has released most of its resources
     88  *		and is about to switch away into oblivion, or has already
     89  *		switched away.  When it switches away, its few remaining
     90  *		resources can be collected.
     91  *
     92  *	LSSLEEP:
     93  *
     94  *		Sleeping: the LWP has entered itself onto a sleep queue, and
     95  *		has switched away or will switch away shortly to allow other
     96  *		LWPs to run on the CPU.
     97  *
     98  *	LSSTOP:
     99  *
    100  *		Stopped: the LWP has been stopped as a result of a job
    101  *		control signal, or as a result of the ptrace() interface.
    102  *
    103  *		Stopped LWPs may run briefly within the kernel to handle
    104  *		signals that they receive, but will not return to user space
    105  *		until their process' state is changed away from stopped.
    106  *
    107  *		Single LWPs within a process can not be set stopped
    108  *		selectively: all actions that can stop or continue LWPs
    109  *		occur at the process level.
    110  *
    111  * State transitions
    112  *
    113  *	Note that the LSSTOP state may only be set when returning to
    114  *	user space in userret(), or when sleeping interruptably.  The
    115  *	LSSUSPENDED state may only be set in userret().  Before setting
    116  *	those states, we try to ensure that the LWPs will release all
    117  *	locks that they hold, and at a minimum try to ensure that the
    118  *	LWP can be set runnable again by a signal.
    119  *
    120  *	LWPs may transition states in the following ways:
    121  *
    122  *	 RUN -------> ONPROC		ONPROC -----> RUN
    123  *		    				    > SLEEP
    124  *		    				    > STOPPED
    125  *						    > SUSPENDED
    126  *						    > ZOMB
    127  *						    > IDL (special cases)
    128  *
    129  *	 STOPPED ---> RUN		SUSPENDED --> RUN
    130  *	            > SLEEP
    131  *
    132  *	 SLEEP -----> ONPROC		IDL --------> RUN
    133  *		    > RUN			    > SUSPENDED
    134  *		    > STOPPED			    > STOPPED
    135  *						    > ONPROC (special cases)
    136  *
    137  *	Some state transitions are only possible with kernel threads (eg
    138  *	ONPROC -> IDL) and happen under tightly controlled circumstances
    139  *	free of unwanted side effects.
    140  *
    141  * Migration
    142  *
    143  *	Migration of threads from one CPU to another could be performed
    144  *	internally by the scheduler via sched_takecpu() or sched_catchlwp()
    145  *	functions.  The universal lwp_migrate() function should be used for
    146  *	any other cases.  Subsystems in the kernel must be aware that CPU
    147  *	of LWP may change, while it is not locked.
    148  *
    149  * Locking
    150  *
    151  *	The majority of fields in 'struct lwp' are covered by a single,
    152  *	general spin lock pointed to by lwp::l_mutex.  The locks covering
    153  *	each field are documented in sys/lwp.h.
    154  *
    155  *	State transitions must be made with the LWP's general lock held,
    156  *	and may cause the LWP's lock pointer to change.  Manipulation of
    157  *	the general lock is not performed directly, but through calls to
    158  *	lwp_lock(), lwp_unlock() and others.  It should be noted that the
    159  *	adaptive locks are not allowed to be released while the LWP's lock
    160  *	is being held (unlike for other spin-locks).
    161  *
    162  *	States and their associated locks:
    163  *
    164  *	LSONPROC, LSZOMB:
    165  *
    166  *		Always covered by spc_lwplock, which protects running LWPs.
    167  *		This is a per-CPU lock and matches lwp::l_cpu.
    168  *
    169  *	LSIDL, LSRUN:
    170  *
    171  *		Always covered by spc_mutex, which protects the run queues.
    172  *		This is a per-CPU lock and matches lwp::l_cpu.
    173  *
    174  *	LSSLEEP:
    175  *
    176  *		Covered by a lock associated with the sleep queue that the
    177  *		LWP resides on.  Matches lwp::l_sleepq::sq_mutex.
    178  *
    179  *	LSSTOP, LSSUSPENDED:
    180  *
    181  *		If the LWP was previously sleeping (l_wchan != NULL), then
    182  *		l_mutex references the sleep queue lock.  If the LWP was
    183  *		runnable or on the CPU when halted, or has been removed from
    184  *		the sleep queue since halted, then the lock is spc_lwplock.
    185  *
    186  *	The lock order is as follows:
    187  *
    188  *		spc::spc_lwplock ->
    189  *		    sleeptab::st_mutex ->
    190  *			tschain_t::tc_mutex ->
    191  *			    spc::spc_mutex
    192  *
    193  *	Each process has an scheduler state lock (proc::p_lock), and a
    194  *	number of counters on LWPs and their states: p_nzlwps, p_nrlwps, and
    195  *	so on.  When an LWP is to be entered into or removed from one of the
    196  *	following states, p_lock must be held and the process wide counters
    197  *	adjusted:
    198  *
    199  *		LSIDL, LSZOMB, LSSTOP, LSSUSPENDED
    200  *
    201  *	(But not always for kernel threads.  There are some special cases
    202  *	as mentioned above.  See kern_softint.c.)
    203  *
    204  *	Note that an LWP is considered running or likely to run soon if in
    205  *	one of the following states.  This affects the value of p_nrlwps:
    206  *
    207  *		LSRUN, LSONPROC, LSSLEEP
    208  *
    209  *	p_lock does not need to be held when transitioning among these
    210  *	three states, hence p_lock is rarely taken for state transitions.
    211  */
    212 
    213 #include <sys/cdefs.h>
    214 __KERNEL_RCSID(0, "$NetBSD: kern_lwp.c,v 1.185.2.2 2017/04/26 02:53:26 pgoyette Exp $");
    215 
    216 #include "opt_ddb.h"
    217 #include "opt_lockdebug.h"
    218 #include "opt_dtrace.h"
    219 
    220 #define _LWP_API_PRIVATE
    221 
    222 #include <sys/param.h>
    223 #include <sys/systm.h>
    224 #include <sys/cpu.h>
    225 #include <sys/pool.h>
    226 #include <sys/proc.h>
    227 #include <sys/syscallargs.h>
    228 #include <sys/syscall_stats.h>
    229 #include <sys/kauth.h>
    230 #include <sys/pserialize.h>
    231 #include <sys/sleepq.h>
    232 #include <sys/lockdebug.h>
    233 #include <sys/kmem.h>
    234 #include <sys/pset.h>
    235 #include <sys/intr.h>
    236 #include <sys/lwpctl.h>
    237 #include <sys/atomic.h>
    238 #include <sys/filedesc.h>
    239 #include <sys/dtrace_bsd.h>
    240 #include <sys/sdt.h>
    241 #include <sys/xcall.h>
    242 #include <sys/uidinfo.h>
    243 #include <sys/sysctl.h>
    244 
    245 #include <uvm/uvm_extern.h>
    246 #include <uvm/uvm_object.h>
    247 
    248 static pool_cache_t	lwp_cache	__read_mostly;
    249 struct lwplist		alllwp		__cacheline_aligned;
    250 
    251 static void		lwp_dtor(void *, void *);
    252 
    253 /* DTrace proc provider probes */
    254 SDT_PROVIDER_DEFINE(proc);
    255 
    256 SDT_PROBE_DEFINE1(proc, kernel, , lwp__create, "struct lwp *");
    257 SDT_PROBE_DEFINE1(proc, kernel, , lwp__start, "struct lwp *");
    258 SDT_PROBE_DEFINE1(proc, kernel, , lwp__exit, "struct lwp *");
    259 
    260 struct turnstile turnstile0;
    261 struct lwp lwp0 __aligned(MIN_LWP_ALIGNMENT) = {
    262 #ifdef LWP0_CPU_INFO
    263 	.l_cpu = LWP0_CPU_INFO,
    264 #endif
    265 #ifdef LWP0_MD_INITIALIZER
    266 	.l_md = LWP0_MD_INITIALIZER,
    267 #endif
    268 	.l_proc = &proc0,
    269 	.l_lid = 1,
    270 	.l_flag = LW_SYSTEM,
    271 	.l_stat = LSONPROC,
    272 	.l_ts = &turnstile0,
    273 	.l_syncobj = &sched_syncobj,
    274 	.l_refcnt = 1,
    275 	.l_priority = PRI_USER + NPRI_USER - 1,
    276 	.l_inheritedprio = -1,
    277 	.l_class = SCHED_OTHER,
    278 	.l_psid = PS_NONE,
    279 	.l_pi_lenders = SLIST_HEAD_INITIALIZER(&lwp0.l_pi_lenders),
    280 	.l_name = __UNCONST("swapper"),
    281 	.l_fd = &filedesc0,
    282 };
    283 
    284 static int sysctl_kern_maxlwp(SYSCTLFN_PROTO);
    285 
    286 /*
    287  * sysctl helper routine for kern.maxlwp. Ensures that the new
    288  * values are not too low or too high.
    289  */
    290 static int
    291 sysctl_kern_maxlwp(SYSCTLFN_ARGS)
    292 {
    293 	int error, nmaxlwp;
    294 	struct sysctlnode node;
    295 
    296 	nmaxlwp = maxlwp;
    297 	node = *rnode;
    298 	node.sysctl_data = &nmaxlwp;
    299 	error = sysctl_lookup(SYSCTLFN_CALL(&node));
    300 	if (error || newp == NULL)
    301 		return error;
    302 
    303 	if (nmaxlwp < 0 || nmaxlwp >= 65536)
    304 		return EINVAL;
    305 	if (nmaxlwp > cpu_maxlwp())
    306 		return EINVAL;
    307 	maxlwp = nmaxlwp;
    308 
    309 	return 0;
    310 }
    311 
    312 static void
    313 sysctl_kern_lwp_setup(void)
    314 {
    315 	struct sysctllog *clog = NULL;
    316 
    317 	sysctl_createv(&clog, 0, NULL, NULL,
    318 		       CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
    319 		       CTLTYPE_INT, "maxlwp",
    320 		       SYSCTL_DESCR("Maximum number of simultaneous threads"),
    321 		       sysctl_kern_maxlwp, 0, NULL, 0,
    322 		       CTL_KERN, CTL_CREATE, CTL_EOL);
    323 }
    324 
    325 void
    326 lwpinit(void)
    327 {
    328 
    329 	LIST_INIT(&alllwp);
    330 	lwpinit_specificdata();
    331 	lwp_sys_init();
    332 	lwp_cache = pool_cache_init(sizeof(lwp_t), MIN_LWP_ALIGNMENT, 0, 0,
    333 	    "lwppl", NULL, IPL_NONE, NULL, lwp_dtor, NULL);
    334 
    335 	maxlwp = cpu_maxlwp();
    336 	sysctl_kern_lwp_setup();
    337 }
    338 
    339 void
    340 lwp0_init(void)
    341 {
    342 	struct lwp *l = &lwp0;
    343 
    344 	KASSERT((void *)uvm_lwp_getuarea(l) != NULL);
    345 	KASSERT(l->l_lid == proc0.p_nlwpid);
    346 
    347 	LIST_INSERT_HEAD(&alllwp, l, l_list);
    348 
    349 	callout_init(&l->l_timeout_ch, CALLOUT_MPSAFE);
    350 	callout_setfunc(&l->l_timeout_ch, sleepq_timeout, l);
    351 	cv_init(&l->l_sigcv, "sigwait");
    352 	cv_init(&l->l_waitcv, "vfork");
    353 
    354 	kauth_cred_hold(proc0.p_cred);
    355 	l->l_cred = proc0.p_cred;
    356 
    357 	kdtrace_thread_ctor(NULL, l);
    358 	lwp_initspecific(l);
    359 
    360 	SYSCALL_TIME_LWP_INIT(l);
    361 }
    362 
    363 static void
    364 lwp_dtor(void *arg, void *obj)
    365 {
    366 	lwp_t *l = obj;
    367 	uint64_t where;
    368 	(void)l;
    369 
    370 	/*
    371 	 * Provide a barrier to ensure that all mutex_oncpu() and rw_oncpu()
    372 	 * calls will exit before memory of LWP is returned to the pool, where
    373 	 * KVA of LWP structure might be freed and re-used for other purposes.
    374 	 * Kernel preemption is disabled around mutex_oncpu() and rw_oncpu()
    375 	 * callers, therefore cross-call to all CPUs will do the job.  Also,
    376 	 * the value of l->l_cpu must be still valid at this point.
    377 	 */
    378 	KASSERT(l->l_cpu != NULL);
    379 	where = xc_broadcast(0, (xcfunc_t)nullop, NULL, NULL);
    380 	xc_wait(where);
    381 }
    382 
    383 /*
    384  * Set an suspended.
    385  *
    386  * Must be called with p_lock held, and the LWP locked.  Will unlock the
    387  * LWP before return.
    388  */
    389 int
    390 lwp_suspend(struct lwp *curl, struct lwp *t)
    391 {
    392 	int error;
    393 
    394 	KASSERT(mutex_owned(t->l_proc->p_lock));
    395 	KASSERT(lwp_locked(t, NULL));
    396 
    397 	KASSERT(curl != t || curl->l_stat == LSONPROC);
    398 
    399 	/*
    400 	 * If the current LWP has been told to exit, we must not suspend anyone
    401 	 * else or deadlock could occur.  We won't return to userspace.
    402 	 */
    403 	if ((curl->l_flag & (LW_WEXIT | LW_WCORE)) != 0) {
    404 		lwp_unlock(t);
    405 		return (EDEADLK);
    406 	}
    407 
    408 	error = 0;
    409 
    410 	switch (t->l_stat) {
    411 	case LSRUN:
    412 	case LSONPROC:
    413 		t->l_flag |= LW_WSUSPEND;
    414 		lwp_need_userret(t);
    415 		lwp_unlock(t);
    416 		break;
    417 
    418 	case LSSLEEP:
    419 		t->l_flag |= LW_WSUSPEND;
    420 
    421 		/*
    422 		 * Kick the LWP and try to get it to the kernel boundary
    423 		 * so that it will release any locks that it holds.
    424 		 * setrunnable() will release the lock.
    425 		 */
    426 		if ((t->l_flag & LW_SINTR) != 0)
    427 			setrunnable(t);
    428 		else
    429 			lwp_unlock(t);
    430 		break;
    431 
    432 	case LSSUSPENDED:
    433 		lwp_unlock(t);
    434 		break;
    435 
    436 	case LSSTOP:
    437 		t->l_flag |= LW_WSUSPEND;
    438 		setrunnable(t);
    439 		break;
    440 
    441 	case LSIDL:
    442 	case LSZOMB:
    443 		error = EINTR; /* It's what Solaris does..... */
    444 		lwp_unlock(t);
    445 		break;
    446 	}
    447 
    448 	return (error);
    449 }
    450 
    451 /*
    452  * Restart a suspended LWP.
    453  *
    454  * Must be called with p_lock held, and the LWP locked.  Will unlock the
    455  * LWP before return.
    456  */
    457 void
    458 lwp_continue(struct lwp *l)
    459 {
    460 
    461 	KASSERT(mutex_owned(l->l_proc->p_lock));
    462 	KASSERT(lwp_locked(l, NULL));
    463 
    464 	/* If rebooting or not suspended, then just bail out. */
    465 	if ((l->l_flag & LW_WREBOOT) != 0) {
    466 		lwp_unlock(l);
    467 		return;
    468 	}
    469 
    470 	l->l_flag &= ~LW_WSUSPEND;
    471 
    472 	if (l->l_stat != LSSUSPENDED) {
    473 		lwp_unlock(l);
    474 		return;
    475 	}
    476 
    477 	/* setrunnable() will release the lock. */
    478 	setrunnable(l);
    479 }
    480 
    481 /*
    482  * Restart a stopped LWP.
    483  *
    484  * Must be called with p_lock held, and the LWP NOT locked.  Will unlock the
    485  * LWP before return.
    486  */
    487 void
    488 lwp_unstop(struct lwp *l)
    489 {
    490 	struct proc *p = l->l_proc;
    491 
    492 	KASSERT(mutex_owned(proc_lock));
    493 	KASSERT(mutex_owned(p->p_lock));
    494 
    495 	lwp_lock(l);
    496 
    497 	/* If not stopped, then just bail out. */
    498 	if (l->l_stat != LSSTOP) {
    499 		lwp_unlock(l);
    500 		return;
    501 	}
    502 
    503 	p->p_stat = SACTIVE;
    504 	p->p_sflag &= ~PS_STOPPING;
    505 
    506 	if (!p->p_waited)
    507 		p->p_pptr->p_nstopchild--;
    508 
    509 	if (l->l_wchan == NULL) {
    510 		/* setrunnable() will release the lock. */
    511 		setrunnable(l);
    512 	} else if (p->p_xsig && (l->l_flag & LW_SINTR) != 0) {
    513 		/* setrunnable() so we can receive the signal */
    514 		setrunnable(l);
    515 	} else {
    516 		l->l_stat = LSSLEEP;
    517 		p->p_nrlwps++;
    518 		lwp_unlock(l);
    519 	}
    520 }
    521 
    522 /*
    523  * Wait for an LWP within the current process to exit.  If 'lid' is
    524  * non-zero, we are waiting for a specific LWP.
    525  *
    526  * Must be called with p->p_lock held.
    527  */
    528 int
    529 lwp_wait(struct lwp *l, lwpid_t lid, lwpid_t *departed, bool exiting)
    530 {
    531 	const lwpid_t curlid = l->l_lid;
    532 	proc_t *p = l->l_proc;
    533 	lwp_t *l2;
    534 	int error;
    535 
    536 	KASSERT(mutex_owned(p->p_lock));
    537 
    538 	p->p_nlwpwait++;
    539 	l->l_waitingfor = lid;
    540 
    541 	for (;;) {
    542 		int nfound;
    543 
    544 		/*
    545 		 * Avoid a race between exit1() and sigexit(): if the
    546 		 * process is dumping core, then we need to bail out: call
    547 		 * into lwp_userret() where we will be suspended until the
    548 		 * deed is done.
    549 		 */
    550 		if ((p->p_sflag & PS_WCORE) != 0) {
    551 			mutex_exit(p->p_lock);
    552 			lwp_userret(l);
    553 			KASSERT(false);
    554 		}
    555 
    556 		/*
    557 		 * First off, drain any detached LWP that is waiting to be
    558 		 * reaped.
    559 		 */
    560 		while ((l2 = p->p_zomblwp) != NULL) {
    561 			p->p_zomblwp = NULL;
    562 			lwp_free(l2, false, false);/* releases proc mutex */
    563 			mutex_enter(p->p_lock);
    564 		}
    565 
    566 		/*
    567 		 * Now look for an LWP to collect.  If the whole process is
    568 		 * exiting, count detached LWPs as eligible to be collected,
    569 		 * but don't drain them here.
    570 		 */
    571 		nfound = 0;
    572 		error = 0;
    573 		LIST_FOREACH(l2, &p->p_lwps, l_sibling) {
    574 			/*
    575 			 * If a specific wait and the target is waiting on
    576 			 * us, then avoid deadlock.  This also traps LWPs
    577 			 * that try to wait on themselves.
    578 			 *
    579 			 * Note that this does not handle more complicated
    580 			 * cycles, like: t1 -> t2 -> t3 -> t1.  The process
    581 			 * can still be killed so it is not a major problem.
    582 			 */
    583 			if (l2->l_lid == lid && l2->l_waitingfor == curlid) {
    584 				error = EDEADLK;
    585 				break;
    586 			}
    587 			if (l2 == l)
    588 				continue;
    589 			if ((l2->l_prflag & LPR_DETACHED) != 0) {
    590 				nfound += exiting;
    591 				continue;
    592 			}
    593 			if (lid != 0) {
    594 				if (l2->l_lid != lid)
    595 					continue;
    596 				/*
    597 				 * Mark this LWP as the first waiter, if there
    598 				 * is no other.
    599 				 */
    600 				if (l2->l_waiter == 0)
    601 					l2->l_waiter = curlid;
    602 			} else if (l2->l_waiter != 0) {
    603 				/*
    604 				 * It already has a waiter - so don't
    605 				 * collect it.  If the waiter doesn't
    606 				 * grab it we'll get another chance
    607 				 * later.
    608 				 */
    609 				nfound++;
    610 				continue;
    611 			}
    612 			nfound++;
    613 
    614 			/* No need to lock the LWP in order to see LSZOMB. */
    615 			if (l2->l_stat != LSZOMB)
    616 				continue;
    617 
    618 			/*
    619 			 * We're no longer waiting.  Reset the "first waiter"
    620 			 * pointer on the target, in case it was us.
    621 			 */
    622 			l->l_waitingfor = 0;
    623 			l2->l_waiter = 0;
    624 			p->p_nlwpwait--;
    625 			if (departed)
    626 				*departed = l2->l_lid;
    627 			sched_lwp_collect(l2);
    628 
    629 			/* lwp_free() releases the proc lock. */
    630 			lwp_free(l2, false, false);
    631 			mutex_enter(p->p_lock);
    632 			return 0;
    633 		}
    634 
    635 		if (error != 0)
    636 			break;
    637 		if (nfound == 0) {
    638 			error = ESRCH;
    639 			break;
    640 		}
    641 
    642 		/*
    643 		 * Note: since the lock will be dropped, need to restart on
    644 		 * wakeup to run all LWPs again, e.g. there may be new LWPs.
    645 		 */
    646 		if (exiting) {
    647 			KASSERT(p->p_nlwps > 1);
    648 			cv_wait(&p->p_lwpcv, p->p_lock);
    649 			error = EAGAIN;
    650 			break;
    651 		}
    652 
    653 		/*
    654 		 * If all other LWPs are waiting for exits or suspends
    655 		 * and the supply of zombies and potential zombies is
    656 		 * exhausted, then we are about to deadlock.
    657 		 *
    658 		 * If the process is exiting (and this LWP is not the one
    659 		 * that is coordinating the exit) then bail out now.
    660 		 */
    661 		if ((p->p_sflag & PS_WEXIT) != 0 ||
    662 		    p->p_nrlwps + p->p_nzlwps - p->p_ndlwps <= p->p_nlwpwait) {
    663 			error = EDEADLK;
    664 			break;
    665 		}
    666 
    667 		/*
    668 		 * Sit around and wait for something to happen.  We'll be
    669 		 * awoken if any of the conditions examined change: if an
    670 		 * LWP exits, is collected, or is detached.
    671 		 */
    672 		if ((error = cv_wait_sig(&p->p_lwpcv, p->p_lock)) != 0)
    673 			break;
    674 	}
    675 
    676 	/*
    677 	 * We didn't find any LWPs to collect, we may have received a
    678 	 * signal, or some other condition has caused us to bail out.
    679 	 *
    680 	 * If waiting on a specific LWP, clear the waiters marker: some
    681 	 * other LWP may want it.  Then, kick all the remaining waiters
    682 	 * so that they can re-check for zombies and for deadlock.
    683 	 */
    684 	if (lid != 0) {
    685 		LIST_FOREACH(l2, &p->p_lwps, l_sibling) {
    686 			if (l2->l_lid == lid) {
    687 				if (l2->l_waiter == curlid)
    688 					l2->l_waiter = 0;
    689 				break;
    690 			}
    691 		}
    692 	}
    693 	p->p_nlwpwait--;
    694 	l->l_waitingfor = 0;
    695 	cv_broadcast(&p->p_lwpcv);
    696 
    697 	return error;
    698 }
    699 
    700 static lwpid_t
    701 lwp_find_free_lid(lwpid_t try_lid, lwp_t * new_lwp, proc_t *p)
    702 {
    703 	#define LID_SCAN (1u << 31)
    704 	lwp_t *scan, *free_before;
    705 	lwpid_t nxt_lid;
    706 
    707 	/*
    708 	 * We want the first unused lid greater than or equal to
    709 	 * try_lid (modulo 2^31).
    710 	 * (If nothing else ld.elf_so doesn't want lwpid with the top bit set.)
    711 	 * We must not return 0, and avoiding 'LID_SCAN - 1' makes
    712 	 * the outer test easier.
    713 	 * This would be much easier if the list were sorted in
    714 	 * increasing order.
    715 	 * The list is kept sorted in decreasing order.
    716 	 * This code is only used after a process has generated 2^31 lwp.
    717 	 *
    718 	 * Code assumes it can always find an id.
    719 	 */
    720 
    721 	try_lid &= LID_SCAN - 1;
    722 	if (try_lid <= 1)
    723 		try_lid = 2;
    724 
    725 	free_before = NULL;
    726 	nxt_lid = LID_SCAN - 1;
    727 	LIST_FOREACH(scan, &p->p_lwps, l_sibling) {
    728 		if (scan->l_lid != nxt_lid) {
    729 			/* There are available lid before this entry */
    730 			free_before = scan;
    731 			if (try_lid > scan->l_lid)
    732 				break;
    733 		}
    734 		if (try_lid == scan->l_lid) {
    735 			/* The ideal lid is busy, take a higher one */
    736 			if (free_before != NULL) {
    737 				try_lid = free_before->l_lid + 1;
    738 				break;
    739 			}
    740 			/* No higher ones, reuse low numbers */
    741 			try_lid = 2;
    742 		}
    743 
    744 		nxt_lid = scan->l_lid - 1;
    745 		if (LIST_NEXT(scan, l_sibling) == NULL) {
    746 		    /* The value we have is lower than any existing lwp */
    747 		    LIST_INSERT_AFTER(scan, new_lwp, l_sibling);
    748 		    return try_lid;
    749 		}
    750 	}
    751 
    752 	LIST_INSERT_BEFORE(free_before, new_lwp, l_sibling);
    753 	return try_lid;
    754 }
    755 
    756 /*
    757  * Create a new LWP within process 'p2', using LWP 'l1' as a template.
    758  * The new LWP is created in state LSIDL and must be set running,
    759  * suspended, or stopped by the caller.
    760  */
    761 int
    762 lwp_create(lwp_t *l1, proc_t *p2, vaddr_t uaddr, int flags,
    763     void *stack, size_t stacksize, void (*func)(void *), void *arg,
    764     lwp_t **rnewlwpp, int sclass, const sigset_t *sigmask,
    765     const stack_t *sigstk)
    766 {
    767 	struct lwp *l2, *isfree;
    768 	turnstile_t *ts;
    769 	lwpid_t lid;
    770 
    771 	KASSERT(l1 == curlwp || l1->l_proc == &proc0);
    772 
    773 	/*
    774 	 * Enforce limits, excluding the first lwp and kthreads.
    775 	 */
    776 	if (p2->p_nlwps != 0 && p2 != &proc0) {
    777 		uid_t uid = kauth_cred_getuid(l1->l_cred);
    778 		int count = chglwpcnt(uid, 1);
    779 		if (__predict_false(count >
    780 		    p2->p_rlimit[RLIMIT_NTHR].rlim_cur)) {
    781 			if (kauth_authorize_process(l1->l_cred,
    782 			    KAUTH_PROCESS_RLIMIT, p2,
    783 			    KAUTH_ARG(KAUTH_REQ_PROCESS_RLIMIT_BYPASS),
    784 			    &p2->p_rlimit[RLIMIT_NTHR], KAUTH_ARG(RLIMIT_NTHR))
    785 			    != 0) {
    786 				(void)chglwpcnt(uid, -1);
    787 				return EAGAIN;
    788 			}
    789 		}
    790 	}
    791 
    792 	/*
    793 	 * First off, reap any detached LWP waiting to be collected.
    794 	 * We can re-use its LWP structure and turnstile.
    795 	 */
    796 	isfree = NULL;
    797 	if (p2->p_zomblwp != NULL) {
    798 		mutex_enter(p2->p_lock);
    799 		if ((isfree = p2->p_zomblwp) != NULL) {
    800 			p2->p_zomblwp = NULL;
    801 			lwp_free(isfree, true, false);/* releases proc mutex */
    802 		} else
    803 			mutex_exit(p2->p_lock);
    804 	}
    805 	if (isfree == NULL) {
    806 		l2 = pool_cache_get(lwp_cache, PR_WAITOK);
    807 		memset(l2, 0, sizeof(*l2));
    808 		l2->l_ts = pool_cache_get(turnstile_cache, PR_WAITOK);
    809 		SLIST_INIT(&l2->l_pi_lenders);
    810 	} else {
    811 		l2 = isfree;
    812 		ts = l2->l_ts;
    813 		KASSERT(l2->l_inheritedprio == -1);
    814 		KASSERT(SLIST_EMPTY(&l2->l_pi_lenders));
    815 		memset(l2, 0, sizeof(*l2));
    816 		l2->l_ts = ts;
    817 	}
    818 
    819 	l2->l_stat = LSIDL;
    820 	l2->l_proc = p2;
    821 	l2->l_refcnt = 1;
    822 	l2->l_class = sclass;
    823 
    824 	/*
    825 	 * If vfork(), we want the LWP to run fast and on the same CPU
    826 	 * as its parent, so that it can reuse the VM context and cache
    827 	 * footprint on the local CPU.
    828 	 */
    829 	l2->l_kpriority = ((flags & LWP_VFORK) ? true : false);
    830 	l2->l_kpribase = PRI_KERNEL;
    831 	l2->l_priority = l1->l_priority;
    832 	l2->l_inheritedprio = -1;
    833 	l2->l_protectprio = -1;
    834 	l2->l_auxprio = -1;
    835 	l2->l_flag = 0;
    836 	l2->l_pflag = LP_MPSAFE;
    837 	TAILQ_INIT(&l2->l_ld_locks);
    838 
    839 	/*
    840 	 * For vfork, borrow parent's lwpctl context if it exists.
    841 	 * This also causes us to return via lwp_userret.
    842 	 */
    843 	if (flags & LWP_VFORK && l1->l_lwpctl) {
    844 		l2->l_lwpctl = l1->l_lwpctl;
    845 		l2->l_flag |= LW_LWPCTL;
    846 	}
    847 
    848 	/*
    849 	 * If not the first LWP in the process, grab a reference to the
    850 	 * descriptor table.
    851 	 */
    852 	l2->l_fd = p2->p_fd;
    853 	if (p2->p_nlwps != 0) {
    854 		KASSERT(l1->l_proc == p2);
    855 		fd_hold(l2);
    856 	} else {
    857 		KASSERT(l1->l_proc != p2);
    858 	}
    859 
    860 	if (p2->p_flag & PK_SYSTEM) {
    861 		/* Mark it as a system LWP. */
    862 		l2->l_flag |= LW_SYSTEM;
    863 	}
    864 
    865 	kpreempt_disable();
    866 	l2->l_mutex = l1->l_cpu->ci_schedstate.spc_mutex;
    867 	l2->l_cpu = l1->l_cpu;
    868 	kpreempt_enable();
    869 
    870 	kdtrace_thread_ctor(NULL, l2);
    871 	lwp_initspecific(l2);
    872 	sched_lwp_fork(l1, l2);
    873 	lwp_update_creds(l2);
    874 	callout_init(&l2->l_timeout_ch, CALLOUT_MPSAFE);
    875 	callout_setfunc(&l2->l_timeout_ch, sleepq_timeout, l2);
    876 	cv_init(&l2->l_sigcv, "sigwait");
    877 	cv_init(&l2->l_waitcv, "vfork");
    878 	l2->l_syncobj = &sched_syncobj;
    879 
    880 	if (rnewlwpp != NULL)
    881 		*rnewlwpp = l2;
    882 
    883 	/*
    884 	 * PCU state needs to be saved before calling uvm_lwp_fork() so that
    885 	 * the MD cpu_lwp_fork() can copy the saved state to the new LWP.
    886 	 */
    887 	pcu_save_all(l1);
    888 
    889 	uvm_lwp_setuarea(l2, uaddr);
    890 	uvm_lwp_fork(l1, l2, stack, stacksize, func,
    891 	    (arg != NULL) ? arg : l2);
    892 
    893 	if ((flags & LWP_PIDLID) != 0) {
    894 		lid = proc_alloc_pid(p2);
    895 		l2->l_pflag |= LP_PIDLID;
    896 	} else {
    897 		lid = 0;
    898 	}
    899 
    900 	mutex_enter(p2->p_lock);
    901 
    902 	if ((flags & LWP_DETACHED) != 0) {
    903 		l2->l_prflag = LPR_DETACHED;
    904 		p2->p_ndlwps++;
    905 	} else
    906 		l2->l_prflag = 0;
    907 
    908 	l2->l_sigstk = *sigstk;
    909 	l2->l_sigmask = *sigmask;
    910 	TAILQ_INIT(&l2->l_sigpend.sp_info);
    911 	sigemptyset(&l2->l_sigpend.sp_set);
    912 
    913 	if (__predict_true(lid == 0)) {
    914 		/*
    915 		 * XXX: l_lid are expected to be unique (for a process)
    916 		 * if LWP_PIDLID is sometimes set this won't be true.
    917 		 * Once 2^31 threads have been allocated we have to
    918 		 * scan to ensure we allocate a unique value.
    919 		 */
    920 		lid = ++p2->p_nlwpid;
    921 		if (__predict_false(lid & LID_SCAN)) {
    922 			lid = lwp_find_free_lid(lid, l2, p2);
    923 			p2->p_nlwpid = lid | LID_SCAN;
    924 			/* l2 as been inserted into p_lwps in order */
    925 			goto skip_insert;
    926 		}
    927 		p2->p_nlwpid = lid;
    928 	}
    929 	LIST_INSERT_HEAD(&p2->p_lwps, l2, l_sibling);
    930     skip_insert:
    931 	l2->l_lid = lid;
    932 	p2->p_nlwps++;
    933 	p2->p_nrlwps++;
    934 
    935 	KASSERT(l2->l_affinity == NULL);
    936 
    937 	if ((p2->p_flag & PK_SYSTEM) == 0) {
    938 		/* Inherit the affinity mask. */
    939 		if (l1->l_affinity) {
    940 			/*
    941 			 * Note that we hold the state lock while inheriting
    942 			 * the affinity to avoid race with sched_setaffinity().
    943 			 */
    944 			lwp_lock(l1);
    945 			if (l1->l_affinity) {
    946 				kcpuset_use(l1->l_affinity);
    947 				l2->l_affinity = l1->l_affinity;
    948 			}
    949 			lwp_unlock(l1);
    950 		}
    951 		lwp_lock(l2);
    952 		/* Inherit a processor-set */
    953 		l2->l_psid = l1->l_psid;
    954 		/* Look for a CPU to start */
    955 		l2->l_cpu = sched_takecpu(l2);
    956 		lwp_unlock_to(l2, l2->l_cpu->ci_schedstate.spc_mutex);
    957 	}
    958 	mutex_exit(p2->p_lock);
    959 
    960 	SDT_PROBE(proc, kernel, , lwp__create, l2, 0, 0, 0, 0);
    961 
    962 	mutex_enter(proc_lock);
    963 	LIST_INSERT_HEAD(&alllwp, l2, l_list);
    964 	mutex_exit(proc_lock);
    965 
    966 	SYSCALL_TIME_LWP_INIT(l2);
    967 
    968 	if (p2->p_emul->e_lwp_fork)
    969 		(*p2->p_emul->e_lwp_fork)(l1, l2);
    970 
    971 	/* If the process is traced, report lwp creation to a debugger */
    972 	if ((p2->p_slflag & (PSL_TRACED|PSL_TRACELWP_CREATE|PSL_SYSCALL)) ==
    973 	    (PSL_TRACED|PSL_TRACELWP_CREATE)) {
    974 		ksiginfo_t ksi;
    975 
    976 		/* Tracing */
    977 		KASSERT((l2->l_flag & LW_SYSTEM) == 0);
    978 
    979 		p2->p_lwp_created = l2->l_lid;
    980 
    981 		KSI_INIT_EMPTY(&ksi);
    982 		ksi.ksi_signo = SIGTRAP;
    983 		ksi.ksi_code = TRAP_LWP;
    984 		mutex_enter(proc_lock);
    985 		kpsignal(p2, &ksi, NULL);
    986 		mutex_exit(proc_lock);
    987 	}
    988 
    989 	return (0);
    990 }
    991 
    992 /*
    993  * Called by MD code when a new LWP begins execution.  Must be called
    994  * with the previous LWP locked (so at splsched), or if there is no
    995  * previous LWP, at splsched.
    996  */
    997 void
    998 lwp_startup(struct lwp *prev, struct lwp *new_lwp)
    999 {
   1000 	KASSERTMSG(new_lwp == curlwp, "l %p curlwp %p prevlwp %p", new_lwp, curlwp, prev);
   1001 
   1002 	SDT_PROBE(proc, kernel, , lwp__start, new_lwp, 0, 0, 0, 0);
   1003 
   1004 	KASSERT(kpreempt_disabled());
   1005 	if (prev != NULL) {
   1006 		/*
   1007 		 * Normalize the count of the spin-mutexes, it was
   1008 		 * increased in mi_switch().  Unmark the state of
   1009 		 * context switch - it is finished for previous LWP.
   1010 		 */
   1011 		curcpu()->ci_mtx_count++;
   1012 		membar_exit();
   1013 		prev->l_ctxswtch = 0;
   1014 	}
   1015 	KPREEMPT_DISABLE(new_lwp);
   1016 	if (__predict_true(new_lwp->l_proc->p_vmspace))
   1017 		pmap_activate(new_lwp);
   1018 	spl0();
   1019 
   1020 	/* Note trip through cpu_switchto(). */
   1021 	pserialize_switchpoint();
   1022 
   1023 	LOCKDEBUG_BARRIER(NULL, 0);
   1024 	KPREEMPT_ENABLE(new_lwp);
   1025 	if ((new_lwp->l_pflag & LP_MPSAFE) == 0) {
   1026 		KERNEL_LOCK(1, new_lwp);
   1027 	}
   1028 }
   1029 
   1030 /*
   1031  * Exit an LWP.
   1032  */
   1033 void
   1034 lwp_exit(struct lwp *l)
   1035 {
   1036 	struct proc *p = l->l_proc;
   1037 	struct lwp *l2;
   1038 	bool current;
   1039 
   1040 	current = (l == curlwp);
   1041 
   1042 	KASSERT(current || (l->l_stat == LSIDL && l->l_target_cpu == NULL));
   1043 	KASSERT(p == curproc);
   1044 
   1045 	SDT_PROBE(proc, kernel, , lwp__exit, l, 0, 0, 0, 0);
   1046 
   1047 	/*
   1048 	 * Verify that we hold no locks other than the kernel lock.
   1049 	 */
   1050 	LOCKDEBUG_BARRIER(&kernel_lock, 0);
   1051 
   1052 	/* If the process is traced, report lwp termination to a debugger */
   1053 	if ((p->p_slflag & (PSL_TRACED|PSL_TRACELWP_EXIT|PSL_SYSCALL)) ==
   1054 	    (PSL_TRACED|PSL_TRACELWP_EXIT)) {
   1055 		ksiginfo_t ksi;
   1056 
   1057 		/* Tracing */
   1058 		KASSERT((l->l_flag & LW_SYSTEM) == 0);
   1059 
   1060 		p->p_lwp_exited = l->l_lid;
   1061 
   1062 		KSI_INIT_EMPTY(&ksi);
   1063 		ksi.ksi_signo = SIGTRAP;
   1064 		ksi.ksi_code = TRAP_LWP;
   1065 		mutex_enter(proc_lock);
   1066 		kpsignal(p, &ksi, NULL);
   1067 		mutex_exit(proc_lock);
   1068 	}
   1069 
   1070 	/*
   1071 	 * If we are the last live LWP in a process, we need to exit the
   1072 	 * entire process.  We do so with an exit status of zero, because
   1073 	 * it's a "controlled" exit, and because that's what Solaris does.
   1074 	 *
   1075 	 * We are not quite a zombie yet, but for accounting purposes we
   1076 	 * must increment the count of zombies here.
   1077 	 *
   1078 	 * Note: the last LWP's specificdata will be deleted here.
   1079 	 */
   1080 	mutex_enter(p->p_lock);
   1081 	if (p->p_nlwps - p->p_nzlwps == 1) {
   1082 		KASSERT(current == true);
   1083 		KASSERT(p != &proc0);
   1084 		/* XXXSMP kernel_lock not held */
   1085 		exit1(l, 0, 0);
   1086 		/* NOTREACHED */
   1087 	}
   1088 	p->p_nzlwps++;
   1089 	mutex_exit(p->p_lock);
   1090 
   1091 	if (p->p_emul->e_lwp_exit)
   1092 		(*p->p_emul->e_lwp_exit)(l);
   1093 
   1094 	/* Drop filedesc reference. */
   1095 	fd_free();
   1096 
   1097 	/* Delete the specificdata while it's still safe to sleep. */
   1098 	lwp_finispecific(l);
   1099 
   1100 	/*
   1101 	 * Release our cached credentials.
   1102 	 */
   1103 	kauth_cred_free(l->l_cred);
   1104 	callout_destroy(&l->l_timeout_ch);
   1105 
   1106 	/*
   1107 	 * Remove the LWP from the global list.
   1108 	 * Free its LID from the PID namespace if needed.
   1109 	 */
   1110 	mutex_enter(proc_lock);
   1111 	LIST_REMOVE(l, l_list);
   1112 	if ((l->l_pflag & LP_PIDLID) != 0 && l->l_lid != p->p_pid) {
   1113 		proc_free_pid(l->l_lid);
   1114 	}
   1115 	mutex_exit(proc_lock);
   1116 
   1117 	/*
   1118 	 * Get rid of all references to the LWP that others (e.g. procfs)
   1119 	 * may have, and mark the LWP as a zombie.  If the LWP is detached,
   1120 	 * mark it waiting for collection in the proc structure.  Note that
   1121 	 * before we can do that, we need to free any other dead, deatched
   1122 	 * LWP waiting to meet its maker.
   1123 	 */
   1124 	mutex_enter(p->p_lock);
   1125 	lwp_drainrefs(l);
   1126 
   1127 	if ((l->l_prflag & LPR_DETACHED) != 0) {
   1128 		while ((l2 = p->p_zomblwp) != NULL) {
   1129 			p->p_zomblwp = NULL;
   1130 			lwp_free(l2, false, false);/* releases proc mutex */
   1131 			mutex_enter(p->p_lock);
   1132 			l->l_refcnt++;
   1133 			lwp_drainrefs(l);
   1134 		}
   1135 		p->p_zomblwp = l;
   1136 	}
   1137 
   1138 	/*
   1139 	 * If we find a pending signal for the process and we have been
   1140 	 * asked to check for signals, then we lose: arrange to have
   1141 	 * all other LWPs in the process check for signals.
   1142 	 */
   1143 	if ((l->l_flag & LW_PENDSIG) != 0 &&
   1144 	    firstsig(&p->p_sigpend.sp_set) != 0) {
   1145 		LIST_FOREACH(l2, &p->p_lwps, l_sibling) {
   1146 			lwp_lock(l2);
   1147 			l2->l_flag |= LW_PENDSIG;
   1148 			lwp_unlock(l2);
   1149 		}
   1150 	}
   1151 
   1152 	/*
   1153 	 * Release any PCU resources before becoming a zombie.
   1154 	 */
   1155 	pcu_discard_all(l);
   1156 
   1157 	lwp_lock(l);
   1158 	l->l_stat = LSZOMB;
   1159 	if (l->l_name != NULL) {
   1160 		strcpy(l->l_name, "(zombie)");
   1161 	}
   1162 	lwp_unlock(l);
   1163 	p->p_nrlwps--;
   1164 	cv_broadcast(&p->p_lwpcv);
   1165 	if (l->l_lwpctl != NULL)
   1166 		l->l_lwpctl->lc_curcpu = LWPCTL_CPU_EXITED;
   1167 	mutex_exit(p->p_lock);
   1168 
   1169 	/*
   1170 	 * We can no longer block.  At this point, lwp_free() may already
   1171 	 * be gunning for us.  On a multi-CPU system, we may be off p_lwps.
   1172 	 *
   1173 	 * Free MD LWP resources.
   1174 	 */
   1175 	cpu_lwp_free(l, 0);
   1176 
   1177 	if (current) {
   1178 		pmap_deactivate(l);
   1179 
   1180 		/*
   1181 		 * Release the kernel lock, and switch away into
   1182 		 * oblivion.
   1183 		 */
   1184 #ifdef notyet
   1185 		/* XXXSMP hold in lwp_userret() */
   1186 		KERNEL_UNLOCK_LAST(l);
   1187 #else
   1188 		KERNEL_UNLOCK_ALL(l, NULL);
   1189 #endif
   1190 		lwp_exit_switchaway(l);
   1191 	}
   1192 }
   1193 
   1194 /*
   1195  * Free a dead LWP's remaining resources.
   1196  *
   1197  * XXXLWP limits.
   1198  */
   1199 void
   1200 lwp_free(struct lwp *l, bool recycle, bool last)
   1201 {
   1202 	struct proc *p = l->l_proc;
   1203 	struct rusage *ru;
   1204 	ksiginfoq_t kq;
   1205 
   1206 	KASSERT(l != curlwp);
   1207 	KASSERT(last || mutex_owned(p->p_lock));
   1208 
   1209 	/*
   1210 	 * We use the process credentials instead of the lwp credentials here
   1211 	 * because the lwp credentials maybe cached (just after a setuid call)
   1212 	 * and we don't want pay for syncing, since the lwp is going away
   1213 	 * anyway
   1214 	 */
   1215 	if (p != &proc0 && p->p_nlwps != 1)
   1216 		(void)chglwpcnt(kauth_cred_getuid(p->p_cred), -1);
   1217 	/*
   1218 	 * If this was not the last LWP in the process, then adjust
   1219 	 * counters and unlock.
   1220 	 */
   1221 	if (!last) {
   1222 		/*
   1223 		 * Add the LWP's run time to the process' base value.
   1224 		 * This needs to co-incide with coming off p_lwps.
   1225 		 */
   1226 		bintime_add(&p->p_rtime, &l->l_rtime);
   1227 		p->p_pctcpu += l->l_pctcpu;
   1228 		ru = &p->p_stats->p_ru;
   1229 		ruadd(ru, &l->l_ru);
   1230 		ru->ru_nvcsw += (l->l_ncsw - l->l_nivcsw);
   1231 		ru->ru_nivcsw += l->l_nivcsw;
   1232 		LIST_REMOVE(l, l_sibling);
   1233 		p->p_nlwps--;
   1234 		p->p_nzlwps--;
   1235 		if ((l->l_prflag & LPR_DETACHED) != 0)
   1236 			p->p_ndlwps--;
   1237 
   1238 		/*
   1239 		 * Have any LWPs sleeping in lwp_wait() recheck for
   1240 		 * deadlock.
   1241 		 */
   1242 		cv_broadcast(&p->p_lwpcv);
   1243 		mutex_exit(p->p_lock);
   1244 	}
   1245 
   1246 #ifdef MULTIPROCESSOR
   1247 	/*
   1248 	 * In the unlikely event that the LWP is still on the CPU,
   1249 	 * then spin until it has switched away.  We need to release
   1250 	 * all locks to avoid deadlock against interrupt handlers on
   1251 	 * the target CPU.
   1252 	 */
   1253 	if ((l->l_pflag & LP_RUNNING) != 0 || l->l_cpu->ci_curlwp == l) {
   1254 		int count;
   1255 		(void)count; /* XXXgcc */
   1256 		KERNEL_UNLOCK_ALL(curlwp, &count);
   1257 		while ((l->l_pflag & LP_RUNNING) != 0 ||
   1258 		    l->l_cpu->ci_curlwp == l)
   1259 			SPINLOCK_BACKOFF_HOOK;
   1260 		KERNEL_LOCK(count, curlwp);
   1261 	}
   1262 #endif
   1263 
   1264 	/*
   1265 	 * Destroy the LWP's remaining signal information.
   1266 	 */
   1267 	ksiginfo_queue_init(&kq);
   1268 	sigclear(&l->l_sigpend, NULL, &kq);
   1269 	ksiginfo_queue_drain(&kq);
   1270 	cv_destroy(&l->l_sigcv);
   1271 	cv_destroy(&l->l_waitcv);
   1272 
   1273 	/*
   1274 	 * Free lwpctl structure and affinity.
   1275 	 */
   1276 	if (l->l_lwpctl) {
   1277 		lwp_ctl_free(l);
   1278 	}
   1279 	if (l->l_affinity) {
   1280 		kcpuset_unuse(l->l_affinity, NULL);
   1281 		l->l_affinity = NULL;
   1282 	}
   1283 
   1284 	/*
   1285 	 * Free the LWP's turnstile and the LWP structure itself unless the
   1286 	 * caller wants to recycle them.  Also, free the scheduler specific
   1287 	 * data.
   1288 	 *
   1289 	 * We can't return turnstile0 to the pool (it didn't come from it),
   1290 	 * so if it comes up just drop it quietly and move on.
   1291 	 *
   1292 	 * We don't recycle the VM resources at this time.
   1293 	 */
   1294 
   1295 	if (!recycle && l->l_ts != &turnstile0)
   1296 		pool_cache_put(turnstile_cache, l->l_ts);
   1297 	if (l->l_name != NULL)
   1298 		kmem_free(l->l_name, MAXCOMLEN);
   1299 
   1300 	cpu_lwp_free2(l);
   1301 	uvm_lwp_exit(l);
   1302 
   1303 	KASSERT(SLIST_EMPTY(&l->l_pi_lenders));
   1304 	KASSERT(l->l_inheritedprio == -1);
   1305 	KASSERT(l->l_blcnt == 0);
   1306 	kdtrace_thread_dtor(NULL, l);
   1307 	if (!recycle)
   1308 		pool_cache_put(lwp_cache, l);
   1309 }
   1310 
   1311 /*
   1312  * Migrate the LWP to the another CPU.  Unlocks the LWP.
   1313  */
   1314 void
   1315 lwp_migrate(lwp_t *l, struct cpu_info *tci)
   1316 {
   1317 	struct schedstate_percpu *tspc;
   1318 	int lstat = l->l_stat;
   1319 
   1320 	KASSERT(lwp_locked(l, NULL));
   1321 	KASSERT(tci != NULL);
   1322 
   1323 	/* If LWP is still on the CPU, it must be handled like LSONPROC */
   1324 	if ((l->l_pflag & LP_RUNNING) != 0) {
   1325 		lstat = LSONPROC;
   1326 	}
   1327 
   1328 	/*
   1329 	 * The destination CPU could be changed while previous migration
   1330 	 * was not finished.
   1331 	 */
   1332 	if (l->l_target_cpu != NULL) {
   1333 		l->l_target_cpu = tci;
   1334 		lwp_unlock(l);
   1335 		return;
   1336 	}
   1337 
   1338 	/* Nothing to do if trying to migrate to the same CPU */
   1339 	if (l->l_cpu == tci) {
   1340 		lwp_unlock(l);
   1341 		return;
   1342 	}
   1343 
   1344 	KASSERT(l->l_target_cpu == NULL);
   1345 	tspc = &tci->ci_schedstate;
   1346 	switch (lstat) {
   1347 	case LSRUN:
   1348 		l->l_target_cpu = tci;
   1349 		break;
   1350 	case LSIDL:
   1351 		l->l_cpu = tci;
   1352 		lwp_unlock_to(l, tspc->spc_mutex);
   1353 		return;
   1354 	case LSSLEEP:
   1355 		l->l_cpu = tci;
   1356 		break;
   1357 	case LSSTOP:
   1358 	case LSSUSPENDED:
   1359 		l->l_cpu = tci;
   1360 		if (l->l_wchan == NULL) {
   1361 			lwp_unlock_to(l, tspc->spc_lwplock);
   1362 			return;
   1363 		}
   1364 		break;
   1365 	case LSONPROC:
   1366 		l->l_target_cpu = tci;
   1367 		spc_lock(l->l_cpu);
   1368 		cpu_need_resched(l->l_cpu, RESCHED_KPREEMPT);
   1369 		spc_unlock(l->l_cpu);
   1370 		break;
   1371 	}
   1372 	lwp_unlock(l);
   1373 }
   1374 
   1375 /*
   1376  * Find the LWP in the process.  Arguments may be zero, in such case,
   1377  * the calling process and first LWP in the list will be used.
   1378  * On success - returns proc locked.
   1379  */
   1380 struct lwp *
   1381 lwp_find2(pid_t pid, lwpid_t lid)
   1382 {
   1383 	proc_t *p;
   1384 	lwp_t *l;
   1385 
   1386 	/* Find the process. */
   1387 	if (pid != 0) {
   1388 		mutex_enter(proc_lock);
   1389 		p = proc_find(pid);
   1390 		if (p == NULL) {
   1391 			mutex_exit(proc_lock);
   1392 			return NULL;
   1393 		}
   1394 		mutex_enter(p->p_lock);
   1395 		mutex_exit(proc_lock);
   1396 	} else {
   1397 		p = curlwp->l_proc;
   1398 		mutex_enter(p->p_lock);
   1399 	}
   1400 	/* Find the thread. */
   1401 	if (lid != 0) {
   1402 		l = lwp_find(p, lid);
   1403 	} else {
   1404 		l = LIST_FIRST(&p->p_lwps);
   1405 	}
   1406 	if (l == NULL) {
   1407 		mutex_exit(p->p_lock);
   1408 	}
   1409 	return l;
   1410 }
   1411 
   1412 /*
   1413  * Look up a live LWP within the specified process.
   1414  *
   1415  * Must be called with p->p_lock held.
   1416  */
   1417 struct lwp *
   1418 lwp_find(struct proc *p, lwpid_t id)
   1419 {
   1420 	struct lwp *l;
   1421 
   1422 	KASSERT(mutex_owned(p->p_lock));
   1423 
   1424 	LIST_FOREACH(l, &p->p_lwps, l_sibling) {
   1425 		if (l->l_lid == id)
   1426 			break;
   1427 	}
   1428 
   1429 	/*
   1430 	 * No need to lock - all of these conditions will
   1431 	 * be visible with the process level mutex held.
   1432 	 */
   1433 	if (l != NULL && (l->l_stat == LSIDL || l->l_stat == LSZOMB))
   1434 		l = NULL;
   1435 
   1436 	return l;
   1437 }
   1438 
   1439 /*
   1440  * Update an LWP's cached credentials to mirror the process' master copy.
   1441  *
   1442  * This happens early in the syscall path, on user trap, and on LWP
   1443  * creation.  A long-running LWP can also voluntarily choose to update
   1444  * its credentials by calling this routine.  This may be called from
   1445  * LWP_CACHE_CREDS(), which checks l->l_cred != p->p_cred beforehand.
   1446  */
   1447 void
   1448 lwp_update_creds(struct lwp *l)
   1449 {
   1450 	kauth_cred_t oc;
   1451 	struct proc *p;
   1452 
   1453 	p = l->l_proc;
   1454 	oc = l->l_cred;
   1455 
   1456 	mutex_enter(p->p_lock);
   1457 	kauth_cred_hold(p->p_cred);
   1458 	l->l_cred = p->p_cred;
   1459 	l->l_prflag &= ~LPR_CRMOD;
   1460 	mutex_exit(p->p_lock);
   1461 	if (oc != NULL)
   1462 		kauth_cred_free(oc);
   1463 }
   1464 
   1465 /*
   1466  * Verify that an LWP is locked, and optionally verify that the lock matches
   1467  * one we specify.
   1468  */
   1469 int
   1470 lwp_locked(struct lwp *l, kmutex_t *mtx)
   1471 {
   1472 	kmutex_t *cur = l->l_mutex;
   1473 
   1474 	return mutex_owned(cur) && (mtx == cur || mtx == NULL);
   1475 }
   1476 
   1477 /*
   1478  * Lend a new mutex to an LWP.  The old mutex must be held.
   1479  */
   1480 void
   1481 lwp_setlock(struct lwp *l, kmutex_t *mtx)
   1482 {
   1483 
   1484 	KASSERT(mutex_owned(l->l_mutex));
   1485 
   1486 	membar_exit();
   1487 	l->l_mutex = mtx;
   1488 }
   1489 
   1490 /*
   1491  * Lend a new mutex to an LWP, and release the old mutex.  The old mutex
   1492  * must be held.
   1493  */
   1494 void
   1495 lwp_unlock_to(struct lwp *l, kmutex_t *mtx)
   1496 {
   1497 	kmutex_t *old;
   1498 
   1499 	KASSERT(lwp_locked(l, NULL));
   1500 
   1501 	old = l->l_mutex;
   1502 	membar_exit();
   1503 	l->l_mutex = mtx;
   1504 	mutex_spin_exit(old);
   1505 }
   1506 
   1507 int
   1508 lwp_trylock(struct lwp *l)
   1509 {
   1510 	kmutex_t *old;
   1511 
   1512 	for (;;) {
   1513 		if (!mutex_tryenter(old = l->l_mutex))
   1514 			return 0;
   1515 		if (__predict_true(l->l_mutex == old))
   1516 			return 1;
   1517 		mutex_spin_exit(old);
   1518 	}
   1519 }
   1520 
   1521 void
   1522 lwp_unsleep(lwp_t *l, bool cleanup)
   1523 {
   1524 
   1525 	KASSERT(mutex_owned(l->l_mutex));
   1526 	(*l->l_syncobj->sobj_unsleep)(l, cleanup);
   1527 }
   1528 
   1529 /*
   1530  * Handle exceptions for mi_userret().  Called if a member of LW_USERRET is
   1531  * set.
   1532  */
   1533 void
   1534 lwp_userret(struct lwp *l)
   1535 {
   1536 	struct proc *p;
   1537 	int sig;
   1538 
   1539 	KASSERT(l == curlwp);
   1540 	KASSERT(l->l_stat == LSONPROC);
   1541 	p = l->l_proc;
   1542 
   1543 #ifndef __HAVE_FAST_SOFTINTS
   1544 	/* Run pending soft interrupts. */
   1545 	if (l->l_cpu->ci_data.cpu_softints != 0)
   1546 		softint_overlay();
   1547 #endif
   1548 
   1549 	/*
   1550 	 * It is safe to do this read unlocked on a MP system..
   1551 	 */
   1552 	while ((l->l_flag & LW_USERRET) != 0) {
   1553 		/*
   1554 		 * Process pending signals first, unless the process
   1555 		 * is dumping core or exiting, where we will instead
   1556 		 * enter the LW_WSUSPEND case below.
   1557 		 */
   1558 		if ((l->l_flag & (LW_PENDSIG | LW_WCORE | LW_WEXIT)) ==
   1559 		    LW_PENDSIG) {
   1560 			mutex_enter(p->p_lock);
   1561 			while ((sig = issignal(l)) != 0)
   1562 				postsig(sig);
   1563 			mutex_exit(p->p_lock);
   1564 		}
   1565 
   1566 		/*
   1567 		 * Core-dump or suspend pending.
   1568 		 *
   1569 		 * In case of core dump, suspend ourselves, so that the kernel
   1570 		 * stack and therefore the userland registers saved in the
   1571 		 * trapframe are around for coredump() to write them out.
   1572 		 * We also need to save any PCU resources that we have so that
   1573 		 * they accessible for coredump().  We issue a wakeup on
   1574 		 * p->p_lwpcv so that sigexit() will write the core file out
   1575 		 * once all other LWPs are suspended.
   1576 		 */
   1577 		if ((l->l_flag & LW_WSUSPEND) != 0) {
   1578 			pcu_save_all(l);
   1579 			mutex_enter(p->p_lock);
   1580 			p->p_nrlwps--;
   1581 			cv_broadcast(&p->p_lwpcv);
   1582 			lwp_lock(l);
   1583 			l->l_stat = LSSUSPENDED;
   1584 			lwp_unlock(l);
   1585 			mutex_exit(p->p_lock);
   1586 			lwp_lock(l);
   1587 			mi_switch(l);
   1588 		}
   1589 
   1590 		/* Process is exiting. */
   1591 		if ((l->l_flag & LW_WEXIT) != 0) {
   1592 			lwp_exit(l);
   1593 			KASSERT(0);
   1594 			/* NOTREACHED */
   1595 		}
   1596 
   1597 		/* update lwpctl processor (for vfork child_return) */
   1598 		if (l->l_flag & LW_LWPCTL) {
   1599 			lwp_lock(l);
   1600 			KASSERT(kpreempt_disabled());
   1601 			l->l_lwpctl->lc_curcpu = (int)cpu_index(l->l_cpu);
   1602 			l->l_lwpctl->lc_pctr++;
   1603 			l->l_flag &= ~LW_LWPCTL;
   1604 			lwp_unlock(l);
   1605 		}
   1606 	}
   1607 }
   1608 
   1609 /*
   1610  * Force an LWP to enter the kernel, to take a trip through lwp_userret().
   1611  */
   1612 void
   1613 lwp_need_userret(struct lwp *l)
   1614 {
   1615 	KASSERT(lwp_locked(l, NULL));
   1616 
   1617 	/*
   1618 	 * Since the tests in lwp_userret() are done unlocked, make sure
   1619 	 * that the condition will be seen before forcing the LWP to enter
   1620 	 * kernel mode.
   1621 	 */
   1622 	membar_producer();
   1623 	cpu_signotify(l);
   1624 }
   1625 
   1626 /*
   1627  * Add one reference to an LWP.  This will prevent the LWP from
   1628  * exiting, thus keep the lwp structure and PCB around to inspect.
   1629  */
   1630 void
   1631 lwp_addref(struct lwp *l)
   1632 {
   1633 
   1634 	KASSERT(mutex_owned(l->l_proc->p_lock));
   1635 	KASSERT(l->l_stat != LSZOMB);
   1636 	KASSERT(l->l_refcnt != 0);
   1637 
   1638 	l->l_refcnt++;
   1639 }
   1640 
   1641 /*
   1642  * Remove one reference to an LWP.  If this is the last reference,
   1643  * then we must finalize the LWP's death.
   1644  */
   1645 void
   1646 lwp_delref(struct lwp *l)
   1647 {
   1648 	struct proc *p = l->l_proc;
   1649 
   1650 	mutex_enter(p->p_lock);
   1651 	lwp_delref2(l);
   1652 	mutex_exit(p->p_lock);
   1653 }
   1654 
   1655 /*
   1656  * Remove one reference to an LWP.  If this is the last reference,
   1657  * then we must finalize the LWP's death.  The proc mutex is held
   1658  * on entry.
   1659  */
   1660 void
   1661 lwp_delref2(struct lwp *l)
   1662 {
   1663 	struct proc *p = l->l_proc;
   1664 
   1665 	KASSERT(mutex_owned(p->p_lock));
   1666 	KASSERT(l->l_stat != LSZOMB);
   1667 	KASSERT(l->l_refcnt > 0);
   1668 	if (--l->l_refcnt == 0)
   1669 		cv_broadcast(&p->p_lwpcv);
   1670 }
   1671 
   1672 /*
   1673  * Drain all references to the current LWP.
   1674  */
   1675 void
   1676 lwp_drainrefs(struct lwp *l)
   1677 {
   1678 	struct proc *p = l->l_proc;
   1679 
   1680 	KASSERT(mutex_owned(p->p_lock));
   1681 	KASSERT(l->l_refcnt != 0);
   1682 
   1683 	l->l_refcnt--;
   1684 	while (l->l_refcnt != 0)
   1685 		cv_wait(&p->p_lwpcv, p->p_lock);
   1686 }
   1687 
   1688 /*
   1689  * Return true if the specified LWP is 'alive'.  Only p->p_lock need
   1690  * be held.
   1691  */
   1692 bool
   1693 lwp_alive(lwp_t *l)
   1694 {
   1695 
   1696 	KASSERT(mutex_owned(l->l_proc->p_lock));
   1697 
   1698 	switch (l->l_stat) {
   1699 	case LSSLEEP:
   1700 	case LSRUN:
   1701 	case LSONPROC:
   1702 	case LSSTOP:
   1703 	case LSSUSPENDED:
   1704 		return true;
   1705 	default:
   1706 		return false;
   1707 	}
   1708 }
   1709 
   1710 /*
   1711  * Return first live LWP in the process.
   1712  */
   1713 lwp_t *
   1714 lwp_find_first(proc_t *p)
   1715 {
   1716 	lwp_t *l;
   1717 
   1718 	KASSERT(mutex_owned(p->p_lock));
   1719 
   1720 	LIST_FOREACH(l, &p->p_lwps, l_sibling) {
   1721 		if (lwp_alive(l)) {
   1722 			return l;
   1723 		}
   1724 	}
   1725 
   1726 	return NULL;
   1727 }
   1728 
   1729 /*
   1730  * Allocate a new lwpctl structure for a user LWP.
   1731  */
   1732 int
   1733 lwp_ctl_alloc(vaddr_t *uaddr)
   1734 {
   1735 	lcproc_t *lp;
   1736 	u_int bit, i, offset;
   1737 	struct uvm_object *uao;
   1738 	int error;
   1739 	lcpage_t *lcp;
   1740 	proc_t *p;
   1741 	lwp_t *l;
   1742 
   1743 	l = curlwp;
   1744 	p = l->l_proc;
   1745 
   1746 	/* don't allow a vforked process to create lwp ctls */
   1747 	if (p->p_lflag & PL_PPWAIT)
   1748 		return EBUSY;
   1749 
   1750 	if (l->l_lcpage != NULL) {
   1751 		lcp = l->l_lcpage;
   1752 		*uaddr = lcp->lcp_uaddr + (vaddr_t)l->l_lwpctl - lcp->lcp_kaddr;
   1753 		return 0;
   1754 	}
   1755 
   1756 	/* First time around, allocate header structure for the process. */
   1757 	if ((lp = p->p_lwpctl) == NULL) {
   1758 		lp = kmem_alloc(sizeof(*lp), KM_SLEEP);
   1759 		mutex_init(&lp->lp_lock, MUTEX_DEFAULT, IPL_NONE);
   1760 		lp->lp_uao = NULL;
   1761 		TAILQ_INIT(&lp->lp_pages);
   1762 		mutex_enter(p->p_lock);
   1763 		if (p->p_lwpctl == NULL) {
   1764 			p->p_lwpctl = lp;
   1765 			mutex_exit(p->p_lock);
   1766 		} else {
   1767 			mutex_exit(p->p_lock);
   1768 			mutex_destroy(&lp->lp_lock);
   1769 			kmem_free(lp, sizeof(*lp));
   1770 			lp = p->p_lwpctl;
   1771 		}
   1772 	}
   1773 
   1774  	/*
   1775  	 * Set up an anonymous memory region to hold the shared pages.
   1776  	 * Map them into the process' address space.  The user vmspace
   1777  	 * gets the first reference on the UAO.
   1778  	 */
   1779 	mutex_enter(&lp->lp_lock);
   1780 	if (lp->lp_uao == NULL) {
   1781 		lp->lp_uao = uao_create(LWPCTL_UAREA_SZ, 0);
   1782 		lp->lp_cur = 0;
   1783 		lp->lp_max = LWPCTL_UAREA_SZ;
   1784 		lp->lp_uva = p->p_emul->e_vm_default_addr(p,
   1785 		     (vaddr_t)p->p_vmspace->vm_daddr, LWPCTL_UAREA_SZ,
   1786 		     p->p_vmspace->vm_map.flags & VM_MAP_TOPDOWN);
   1787 		error = uvm_map(&p->p_vmspace->vm_map, &lp->lp_uva,
   1788 		    LWPCTL_UAREA_SZ, lp->lp_uao, 0, 0, UVM_MAPFLAG(UVM_PROT_RW,
   1789 		    UVM_PROT_RW, UVM_INH_NONE, UVM_ADV_NORMAL, 0));
   1790 		if (error != 0) {
   1791 			uao_detach(lp->lp_uao);
   1792 			lp->lp_uao = NULL;
   1793 			mutex_exit(&lp->lp_lock);
   1794 			return error;
   1795 		}
   1796 	}
   1797 
   1798 	/* Get a free block and allocate for this LWP. */
   1799 	TAILQ_FOREACH(lcp, &lp->lp_pages, lcp_chain) {
   1800 		if (lcp->lcp_nfree != 0)
   1801 			break;
   1802 	}
   1803 	if (lcp == NULL) {
   1804 		/* Nothing available - try to set up a free page. */
   1805 		if (lp->lp_cur == lp->lp_max) {
   1806 			mutex_exit(&lp->lp_lock);
   1807 			return ENOMEM;
   1808 		}
   1809 		lcp = kmem_alloc(LWPCTL_LCPAGE_SZ, KM_SLEEP);
   1810 		if (lcp == NULL) {
   1811 			mutex_exit(&lp->lp_lock);
   1812 			return ENOMEM;
   1813 		}
   1814 		/*
   1815 		 * Wire the next page down in kernel space.  Since this
   1816 		 * is a new mapping, we must add a reference.
   1817 		 */
   1818 		uao = lp->lp_uao;
   1819 		(*uao->pgops->pgo_reference)(uao);
   1820 		lcp->lcp_kaddr = vm_map_min(kernel_map);
   1821 		error = uvm_map(kernel_map, &lcp->lcp_kaddr, PAGE_SIZE,
   1822 		    uao, lp->lp_cur, PAGE_SIZE,
   1823 		    UVM_MAPFLAG(UVM_PROT_RW, UVM_PROT_RW,
   1824 		    UVM_INH_NONE, UVM_ADV_RANDOM, 0));
   1825 		if (error != 0) {
   1826 			mutex_exit(&lp->lp_lock);
   1827 			kmem_free(lcp, LWPCTL_LCPAGE_SZ);
   1828 			(*uao->pgops->pgo_detach)(uao);
   1829 			return error;
   1830 		}
   1831 		error = uvm_map_pageable(kernel_map, lcp->lcp_kaddr,
   1832 		    lcp->lcp_kaddr + PAGE_SIZE, FALSE, 0);
   1833 		if (error != 0) {
   1834 			mutex_exit(&lp->lp_lock);
   1835 			uvm_unmap(kernel_map, lcp->lcp_kaddr,
   1836 			    lcp->lcp_kaddr + PAGE_SIZE);
   1837 			kmem_free(lcp, LWPCTL_LCPAGE_SZ);
   1838 			return error;
   1839 		}
   1840 		/* Prepare the page descriptor and link into the list. */
   1841 		lcp->lcp_uaddr = lp->lp_uva + lp->lp_cur;
   1842 		lp->lp_cur += PAGE_SIZE;
   1843 		lcp->lcp_nfree = LWPCTL_PER_PAGE;
   1844 		lcp->lcp_rotor = 0;
   1845 		memset(lcp->lcp_bitmap, 0xff, LWPCTL_BITMAP_SZ);
   1846 		TAILQ_INSERT_HEAD(&lp->lp_pages, lcp, lcp_chain);
   1847 	}
   1848 	for (i = lcp->lcp_rotor; lcp->lcp_bitmap[i] == 0;) {
   1849 		if (++i >= LWPCTL_BITMAP_ENTRIES)
   1850 			i = 0;
   1851 	}
   1852 	bit = ffs(lcp->lcp_bitmap[i]) - 1;
   1853 	lcp->lcp_bitmap[i] ^= (1 << bit);
   1854 	lcp->lcp_rotor = i;
   1855 	lcp->lcp_nfree--;
   1856 	l->l_lcpage = lcp;
   1857 	offset = (i << 5) + bit;
   1858 	l->l_lwpctl = (lwpctl_t *)lcp->lcp_kaddr + offset;
   1859 	*uaddr = lcp->lcp_uaddr + offset * sizeof(lwpctl_t);
   1860 	mutex_exit(&lp->lp_lock);
   1861 
   1862 	KPREEMPT_DISABLE(l);
   1863 	l->l_lwpctl->lc_curcpu = (int)curcpu()->ci_data.cpu_index;
   1864 	KPREEMPT_ENABLE(l);
   1865 
   1866 	return 0;
   1867 }
   1868 
   1869 /*
   1870  * Free an lwpctl structure back to the per-process list.
   1871  */
   1872 void
   1873 lwp_ctl_free(lwp_t *l)
   1874 {
   1875 	struct proc *p = l->l_proc;
   1876 	lcproc_t *lp;
   1877 	lcpage_t *lcp;
   1878 	u_int map, offset;
   1879 
   1880 	/* don't free a lwp context we borrowed for vfork */
   1881 	if (p->p_lflag & PL_PPWAIT) {
   1882 		l->l_lwpctl = NULL;
   1883 		return;
   1884 	}
   1885 
   1886 	lp = p->p_lwpctl;
   1887 	KASSERT(lp != NULL);
   1888 
   1889 	lcp = l->l_lcpage;
   1890 	offset = (u_int)((lwpctl_t *)l->l_lwpctl - (lwpctl_t *)lcp->lcp_kaddr);
   1891 	KASSERT(offset < LWPCTL_PER_PAGE);
   1892 
   1893 	mutex_enter(&lp->lp_lock);
   1894 	lcp->lcp_nfree++;
   1895 	map = offset >> 5;
   1896 	lcp->lcp_bitmap[map] |= (1 << (offset & 31));
   1897 	if (lcp->lcp_bitmap[lcp->lcp_rotor] == 0)
   1898 		lcp->lcp_rotor = map;
   1899 	if (TAILQ_FIRST(&lp->lp_pages)->lcp_nfree == 0) {
   1900 		TAILQ_REMOVE(&lp->lp_pages, lcp, lcp_chain);
   1901 		TAILQ_INSERT_HEAD(&lp->lp_pages, lcp, lcp_chain);
   1902 	}
   1903 	mutex_exit(&lp->lp_lock);
   1904 }
   1905 
   1906 /*
   1907  * Process is exiting; tear down lwpctl state.  This can only be safely
   1908  * called by the last LWP in the process.
   1909  */
   1910 void
   1911 lwp_ctl_exit(void)
   1912 {
   1913 	lcpage_t *lcp, *next;
   1914 	lcproc_t *lp;
   1915 	proc_t *p;
   1916 	lwp_t *l;
   1917 
   1918 	l = curlwp;
   1919 	l->l_lwpctl = NULL;
   1920 	l->l_lcpage = NULL;
   1921 	p = l->l_proc;
   1922 	lp = p->p_lwpctl;
   1923 
   1924 	KASSERT(lp != NULL);
   1925 	KASSERT(p->p_nlwps == 1);
   1926 
   1927 	for (lcp = TAILQ_FIRST(&lp->lp_pages); lcp != NULL; lcp = next) {
   1928 		next = TAILQ_NEXT(lcp, lcp_chain);
   1929 		uvm_unmap(kernel_map, lcp->lcp_kaddr,
   1930 		    lcp->lcp_kaddr + PAGE_SIZE);
   1931 		kmem_free(lcp, LWPCTL_LCPAGE_SZ);
   1932 	}
   1933 
   1934 	if (lp->lp_uao != NULL) {
   1935 		uvm_unmap(&p->p_vmspace->vm_map, lp->lp_uva,
   1936 		    lp->lp_uva + LWPCTL_UAREA_SZ);
   1937 	}
   1938 
   1939 	mutex_destroy(&lp->lp_lock);
   1940 	kmem_free(lp, sizeof(*lp));
   1941 	p->p_lwpctl = NULL;
   1942 }
   1943 
   1944 /*
   1945  * Return the current LWP's "preemption counter".  Used to detect
   1946  * preemption across operations that can tolerate preemption without
   1947  * crashing, but which may generate incorrect results if preempted.
   1948  */
   1949 uint64_t
   1950 lwp_pctr(void)
   1951 {
   1952 
   1953 	return curlwp->l_ncsw;
   1954 }
   1955 
   1956 /*
   1957  * Set an LWP's private data pointer.
   1958  */
   1959 int
   1960 lwp_setprivate(struct lwp *l, void *ptr)
   1961 {
   1962 	int error = 0;
   1963 
   1964 	l->l_private = ptr;
   1965 #ifdef __HAVE_CPU_LWP_SETPRIVATE
   1966 	error = cpu_lwp_setprivate(l, ptr);
   1967 #endif
   1968 	return error;
   1969 }
   1970 
   1971 #if defined(DDB)
   1972 #include <machine/pcb.h>
   1973 
   1974 void
   1975 lwp_whatis(uintptr_t addr, void (*pr)(const char *, ...))
   1976 {
   1977 	lwp_t *l;
   1978 
   1979 	LIST_FOREACH(l, &alllwp, l_list) {
   1980 		uintptr_t stack = (uintptr_t)KSTACK_LOWEST_ADDR(l);
   1981 
   1982 		if (addr < stack || stack + KSTACK_SIZE <= addr) {
   1983 			continue;
   1984 		}
   1985 		(*pr)("%p is %p+%zu, LWP %p's stack\n",
   1986 		    (void *)addr, (void *)stack,
   1987 		    (size_t)(addr - stack), l);
   1988 	}
   1989 }
   1990 #endif /* defined(DDB) */
   1991