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kern_lwp.c revision 1.55.2.2
      1  1.55.2.1      yamt /*	$NetBSD: kern_lwp.c,v 1.55.2.2 2007/02/18 13:09:03 yamt Exp $	*/
      2       1.2   thorpej 
      3       1.2   thorpej /*-
      4      1.52        ad  * Copyright (c) 2001, 2006, 2007 The NetBSD Foundation, Inc.
      5       1.2   thorpej  * All rights reserved.
      6       1.2   thorpej  *
      7       1.2   thorpej  * This code is derived from software contributed to The NetBSD Foundation
      8      1.52        ad  * by Nathan J. Williams, and Andrew Doran.
      9       1.2   thorpej  *
     10       1.2   thorpej  * Redistribution and use in source and binary forms, with or without
     11       1.2   thorpej  * modification, are permitted provided that the following conditions
     12       1.2   thorpej  * are met:
     13       1.2   thorpej  * 1. Redistributions of source code must retain the above copyright
     14       1.2   thorpej  *    notice, this list of conditions and the following disclaimer.
     15       1.2   thorpej  * 2. Redistributions in binary form must reproduce the above copyright
     16       1.2   thorpej  *    notice, this list of conditions and the following disclaimer in the
     17       1.2   thorpej  *    documentation and/or other materials provided with the distribution.
     18       1.2   thorpej  * 3. All advertising materials mentioning features or use of this software
     19       1.2   thorpej  *    must display the following acknowledgement:
     20       1.2   thorpej  *        This product includes software developed by the NetBSD
     21       1.2   thorpej  *        Foundation, Inc. and its contributors.
     22       1.2   thorpej  * 4. Neither the name of The NetBSD Foundation nor the names of its
     23       1.2   thorpej  *    contributors may be used to endorse or promote products derived
     24       1.2   thorpej  *    from this software without specific prior written permission.
     25       1.2   thorpej  *
     26       1.2   thorpej  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     27       1.2   thorpej  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     28       1.2   thorpej  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     29       1.2   thorpej  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     30       1.2   thorpej  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     31       1.2   thorpej  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     32       1.2   thorpej  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     33       1.2   thorpej  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     34       1.2   thorpej  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     35       1.2   thorpej  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     36       1.2   thorpej  * POSSIBILITY OF SUCH DAMAGE.
     37       1.2   thorpej  */
     38       1.9     lukem 
     39      1.52        ad /*
     40      1.52        ad  * Overview
     41      1.52        ad  *
     42      1.52        ad  *	Lightweight processes (LWPs) are the basic unit (or thread) of
     43      1.52        ad  *	execution within the kernel.  The core state of an LWP is described
     44      1.52        ad  *	by "struct lwp".
     45      1.52        ad  *
     46      1.52        ad  *	Each LWP is contained within a process (described by "struct proc"),
     47      1.52        ad  *	Every process contains at least one LWP, but may contain more.  The
     48      1.52        ad  *	process describes attributes shared among all of its LWPs such as a
     49      1.52        ad  *	private address space, global execution state (stopped, active,
     50      1.52        ad  *	zombie, ...), signal disposition and so on.  On a multiprocessor
     51      1.52        ad  *	machine, multiple LWPs be executing in kernel simultaneously.
     52      1.52        ad  *
     53      1.52        ad  *	Note that LWPs differ from kernel threads (kthreads) in that kernel
     54      1.52        ad  *	threads are distinct processes (system processes) with no user space
     55      1.52        ad  *	component, which themselves may contain one or more LWPs.
     56      1.52        ad  *
     57      1.52        ad  * Execution states
     58      1.52        ad  *
     59      1.52        ad  *	At any given time, an LWP has overall state that is described by
     60      1.52        ad  *	lwp::l_stat.  The states are broken into two sets below.  The first
     61      1.52        ad  *	set is guaranteed to represent the absolute, current state of the
     62      1.52        ad  *	LWP:
     63      1.52        ad  *
     64      1.52        ad  * 	LSONPROC
     65      1.52        ad  *
     66      1.52        ad  * 		On processor: the LWP is executing on a CPU, either in the
     67      1.52        ad  * 		kernel or in user space.
     68      1.52        ad  *
     69      1.52        ad  * 	LSRUN
     70      1.52        ad  *
     71      1.52        ad  * 		Runnable: the LWP is parked on a run queue, and may soon be
     72      1.52        ad  * 		chosen to run by a idle processor, or by a processor that
     73      1.52        ad  * 		has been asked to preempt a currently runnning but lower
     74      1.52        ad  * 		priority LWP.  If the LWP is not swapped in (L_INMEM == 0)
     75      1.52        ad  *		then the LWP is not on a run queue, but may be soon.
     76      1.52        ad  *
     77      1.52        ad  * 	LSIDL
     78      1.52        ad  *
     79      1.52        ad  * 		Idle: the LWP has been created but has not yet executed.
     80      1.52        ad  * 		Whoever created the new LWP can be expected to set it to
     81      1.52        ad  * 		another state shortly.
     82      1.52        ad  *
     83      1.52        ad  * 	LSSUSPENDED:
     84      1.52        ad  *
     85      1.52        ad  * 		Suspended: the LWP has had its execution suspended by
     86      1.52        ad  *		another LWP in the same process using the _lwp_suspend()
     87      1.52        ad  *		system call.  User-level LWPs also enter the suspended
     88      1.52        ad  *		state when the system is shutting down.
     89      1.52        ad  *
     90      1.52        ad  *	The second set represent a "statement of intent" on behalf of the
     91      1.52        ad  *	LWP.  The LWP may in fact be executing on a processor, may be
     92      1.52        ad  *	sleeping, idle, or on a run queue. It is expected to take the
     93      1.52        ad  *	necessary action to stop executing or become "running" again within
     94      1.52        ad  *	a short timeframe.
     95      1.52        ad  *
     96      1.52        ad  * 	LSZOMB:
     97      1.52        ad  *
     98      1.52        ad  * 		Dead: the LWP has released most of its resources and is
     99      1.52        ad  * 		about to switch away into oblivion.  When it switches away,
    100      1.52        ad  * 		its few remaining resources will be collected.
    101      1.52        ad  *
    102      1.52        ad  * 	LSSLEEP:
    103      1.52        ad  *
    104      1.52        ad  * 		Sleeping: the LWP has entered itself onto a sleep queue, and
    105      1.52        ad  * 		will switch away shortly to allow other LWPs to run on the
    106      1.52        ad  * 		CPU.
    107      1.52        ad  *
    108      1.52        ad  * 	LSSTOP:
    109      1.52        ad  *
    110      1.52        ad  * 		Stopped: the LWP has been stopped as a result of a job
    111      1.52        ad  * 		control signal, or as a result of the ptrace() interface.
    112      1.52        ad  * 		Stopped LWPs may run briefly within the kernel to handle
    113      1.52        ad  * 		signals that they receive, but will not return to user space
    114      1.52        ad  * 		until their process' state is changed away from stopped.
    115      1.52        ad  * 		Single LWPs within a process can not be set stopped
    116      1.52        ad  * 		selectively: all actions that can stop or continue LWPs
    117      1.52        ad  * 		occur at the process level.
    118      1.52        ad  *
    119      1.52        ad  * State transitions
    120      1.52        ad  *
    121      1.52        ad  *	Note that the LSSTOP and LSSUSPENDED states may only be set
    122      1.52        ad  *	when returning to user space in userret(), or when sleeping
    123      1.52        ad  *	interruptably.  Before setting those states, we try to ensure
    124      1.52        ad  *	that the LWPs will release all kernel locks that they hold,
    125      1.52        ad  *	and at a minimum try to ensure that the LWP can be set runnable
    126      1.52        ad  *	again by a signal.
    127      1.52        ad  *
    128      1.52        ad  *	LWPs may transition states in the following ways:
    129      1.52        ad  *
    130      1.52        ad  *	 RUN -------> ONPROC		ONPROC -----> RUN
    131      1.52        ad  *	            > STOPPED			    > SLEEP
    132      1.52        ad  *	            > SUSPENDED			    > STOPPED
    133      1.52        ad  *						    > SUSPENDED
    134      1.52        ad  *						    > ZOMB
    135      1.52        ad  *
    136      1.52        ad  *	 STOPPED ---> RUN		SUSPENDED --> RUN
    137      1.52        ad  *	            > SLEEP			    > SLEEP
    138      1.52        ad  *
    139      1.52        ad  *	 SLEEP -----> ONPROC		IDL --------> RUN
    140      1.52        ad  *		    > RUN		            > SUSPENDED
    141      1.52        ad  *		    > STOPPED                       > STOPPED
    142      1.52        ad  *		    > SUSPENDED
    143      1.52        ad  *
    144      1.52        ad  * Locking
    145      1.52        ad  *
    146      1.52        ad  *	The majority of fields in 'struct lwp' are covered by a single,
    147      1.52        ad  *	general spin mutex pointed to by lwp::l_mutex.  The locks covering
    148      1.52        ad  *	each field are documented in sys/lwp.h.
    149      1.52        ad  *
    150      1.52        ad  *	State transitions must be made with the LWP's general lock held.  In
    151      1.52        ad  *	a multiprocessor kernel, state transitions may cause the LWP's lock
    152      1.52        ad  *	pointer to change.  On uniprocessor kernels, most scheduler and
    153      1.52        ad  *	synchronisation objects such as sleep queues and LWPs are protected
    154      1.52        ad  *	by only one mutex (sched_mutex).  In this case, LWPs' lock pointers
    155      1.52        ad  *	will never change and will always reference sched_mutex.
    156      1.52        ad  *
    157      1.52        ad  *	Manipulation of the general lock is not performed directly, but
    158      1.52        ad  *	through calls to lwp_lock(), lwp_relock() and similar.
    159      1.52        ad  *
    160      1.52        ad  *	States and their associated locks:
    161      1.52        ad  *
    162      1.52        ad  *	LSIDL, LSZOMB
    163      1.52        ad  *
    164      1.52        ad  *		Always covered by sched_mutex.
    165      1.52        ad  *
    166      1.52        ad  *	LSONPROC, LSRUN:
    167      1.52        ad  *
    168      1.52        ad  *		Always covered by sched_mutex, which protects the run queues
    169      1.52        ad  *		and other miscellaneous items.  If the scheduler is changed
    170      1.52        ad  *		to use per-CPU run queues, this may become a per-CPU mutex.
    171      1.52        ad  *
    172      1.52        ad  *	LSSLEEP:
    173      1.52        ad  *
    174      1.52        ad  *		Covered by a mutex associated with the sleep queue that the
    175      1.52        ad  *		LWP resides on, indirectly referenced by l_sleepq->sq_mutex.
    176      1.52        ad  *
    177      1.52        ad  *	LSSTOP, LSSUSPENDED:
    178      1.52        ad  *
    179      1.52        ad  *		If the LWP was previously sleeping (l_wchan != NULL), then
    180      1.52        ad  *		l_mutex references the sleep queue mutex.  If the LWP was
    181      1.52        ad  *		runnable or on the CPU when halted, or has been removed from
    182      1.52        ad  *		the sleep queue since halted, then the mutex is sched_mutex.
    183      1.52        ad  *
    184      1.52        ad  *	The lock order is as follows:
    185      1.52        ad  *
    186      1.52        ad  *		sleepq_t::sq_mutex  |---> sched_mutex
    187      1.52        ad  *		tschain_t::tc_mutex |
    188      1.52        ad  *
    189      1.52        ad  *	Each process has an scheduler state mutex (proc::p_smutex), and a
    190      1.52        ad  *	number of counters on LWPs and their states: p_nzlwps, p_nrlwps, and
    191      1.52        ad  *	so on.  When an LWP is to be entered into or removed from one of the
    192      1.52        ad  *	following states, p_mutex must be held and the process wide counters
    193      1.52        ad  *	adjusted:
    194      1.52        ad  *
    195      1.52        ad  *		LSIDL, LSZOMB, LSSTOP, LSSUSPENDED
    196      1.52        ad  *
    197      1.52        ad  *	Note that an LWP is considered running or likely to run soon if in
    198      1.52        ad  *	one of the following states.  This affects the value of p_nrlwps:
    199      1.52        ad  *
    200      1.52        ad  *		LSRUN, LSONPROC, LSSLEEP
    201      1.52        ad  *
    202      1.52        ad  *	p_smutex does not need to be held when transitioning among these
    203      1.52        ad  *	three states.
    204      1.52        ad  */
    205      1.52        ad 
    206       1.9     lukem #include <sys/cdefs.h>
    207  1.55.2.1      yamt __KERNEL_RCSID(0, "$NetBSD: kern_lwp.c,v 1.55.2.2 2007/02/18 13:09:03 yamt Exp $");
    208       1.8    martin 
    209       1.8    martin #include "opt_multiprocessor.h"
    210      1.52        ad #include "opt_lockdebug.h"
    211       1.2   thorpej 
    212      1.47   hannken #define _LWP_API_PRIVATE
    213      1.47   hannken 
    214       1.2   thorpej #include <sys/param.h>
    215       1.2   thorpej #include <sys/systm.h>
    216       1.2   thorpej #include <sys/pool.h>
    217       1.2   thorpej #include <sys/proc.h>
    218       1.2   thorpej #include <sys/syscallargs.h>
    219      1.37        ad #include <sys/kauth.h>
    220      1.52        ad #include <sys/sleepq.h>
    221      1.52        ad #include <sys/lockdebug.h>
    222      1.52        ad #include <sys/kmem.h>
    223       1.2   thorpej 
    224       1.2   thorpej #include <uvm/uvm_extern.h>
    225       1.2   thorpej 
    226      1.52        ad struct lwplist	alllwp;
    227      1.52        ad 
    228      1.52        ad POOL_INIT(lwp_pool, sizeof(struct lwp), MIN_LWP_ALIGNMENT, 0, 0, "lwppl",
    229      1.41   thorpej     &pool_allocator_nointr);
    230      1.41   thorpej POOL_INIT(lwp_uc_pool, sizeof(ucontext_t), 0, 0, 0, "lwpucpl",
    231      1.41   thorpej     &pool_allocator_nointr);
    232      1.41   thorpej 
    233      1.41   thorpej static specificdata_domain_t lwp_specificdata_domain;
    234      1.41   thorpej 
    235       1.2   thorpej #define LWP_DEBUG
    236       1.2   thorpej 
    237       1.2   thorpej #ifdef LWP_DEBUG
    238       1.2   thorpej int lwp_debug = 0;
    239       1.2   thorpej #define DPRINTF(x) if (lwp_debug) printf x
    240       1.2   thorpej #else
    241       1.2   thorpej #define DPRINTF(x)
    242       1.2   thorpej #endif
    243      1.41   thorpej 
    244      1.41   thorpej void
    245      1.41   thorpej lwpinit(void)
    246      1.41   thorpej {
    247      1.41   thorpej 
    248      1.41   thorpej 	lwp_specificdata_domain = specificdata_domain_create();
    249      1.41   thorpej 	KASSERT(lwp_specificdata_domain != NULL);
    250      1.52        ad 	lwp_sys_init();
    251      1.41   thorpej }
    252      1.41   thorpej 
    253      1.52        ad /*
    254      1.52        ad  * Set an suspended.
    255      1.52        ad  *
    256      1.52        ad  * Must be called with p_smutex held, and the LWP locked.  Will unlock the
    257      1.52        ad  * LWP before return.
    258      1.52        ad  */
    259       1.2   thorpej int
    260      1.52        ad lwp_suspend(struct lwp *curl, struct lwp *t)
    261       1.2   thorpej {
    262      1.52        ad 	int error;
    263       1.2   thorpej 
    264      1.52        ad 	LOCK_ASSERT(mutex_owned(&t->l_proc->p_smutex));
    265      1.52        ad 	LOCK_ASSERT(lwp_locked(t, NULL));
    266      1.33       chs 
    267      1.52        ad 	KASSERT(curl != t || curl->l_stat == LSONPROC);
    268       1.2   thorpej 
    269      1.52        ad 	/*
    270      1.52        ad 	 * If the current LWP has been told to exit, we must not suspend anyone
    271      1.52        ad 	 * else or deadlock could occur.  We won't return to userspace.
    272       1.2   thorpej 	 */
    273      1.52        ad 	if ((curl->l_stat & (L_WEXIT | L_WCORE)) != 0) {
    274      1.52        ad 		lwp_unlock(t);
    275      1.52        ad 		return (EDEADLK);
    276       1.2   thorpej 	}
    277       1.2   thorpej 
    278      1.52        ad 	error = 0;
    279       1.2   thorpej 
    280      1.52        ad 	switch (t->l_stat) {
    281      1.52        ad 	case LSRUN:
    282      1.52        ad 	case LSONPROC:
    283      1.52        ad 		t->l_flag |= L_WSUSPEND;
    284      1.52        ad 		lwp_need_userret(t);
    285      1.52        ad 		lwp_unlock(t);
    286      1.52        ad 		break;
    287       1.2   thorpej 
    288      1.52        ad 	case LSSLEEP:
    289      1.52        ad 		t->l_flag |= L_WSUSPEND;
    290       1.2   thorpej 
    291       1.2   thorpej 		/*
    292      1.52        ad 		 * Kick the LWP and try to get it to the kernel boundary
    293      1.52        ad 		 * so that it will release any locks that it holds.
    294      1.52        ad 		 * setrunnable() will release the lock.
    295       1.2   thorpej 		 */
    296      1.52        ad 		if ((t->l_flag & L_SINTR) != 0)
    297      1.52        ad 			setrunnable(t);
    298      1.52        ad 		else
    299      1.52        ad 			lwp_unlock(t);
    300      1.52        ad 		break;
    301       1.2   thorpej 
    302      1.52        ad 	case LSSUSPENDED:
    303      1.52        ad 		lwp_unlock(t);
    304      1.52        ad 		break;
    305      1.17      manu 
    306      1.52        ad 	case LSSTOP:
    307      1.52        ad 		t->l_flag |= L_WSUSPEND;
    308      1.52        ad 		setrunnable(t);
    309      1.52        ad 		break;
    310       1.2   thorpej 
    311      1.52        ad 	case LSIDL:
    312      1.52        ad 	case LSZOMB:
    313      1.52        ad 		error = EINTR; /* It's what Solaris does..... */
    314      1.52        ad 		lwp_unlock(t);
    315      1.52        ad 		break;
    316       1.2   thorpej 	}
    317       1.2   thorpej 
    318      1.52        ad 	/*
    319      1.52        ad 	 * XXXLWP Wait for:
    320      1.52        ad 	 *
    321      1.52        ad 	 * o process exiting
    322      1.52        ad 	 * o target LWP suspended
    323      1.52        ad 	 * o target LWP not suspended and L_WSUSPEND clear
    324      1.52        ad 	 * o target LWP exited
    325      1.52        ad 	 */
    326       1.2   thorpej 
    327      1.52        ad 	 return (error);
    328       1.2   thorpej }
    329       1.2   thorpej 
    330      1.52        ad /*
    331      1.52        ad  * Restart a suspended LWP.
    332      1.52        ad  *
    333      1.52        ad  * Must be called with p_smutex held, and the LWP locked.  Will unlock the
    334      1.52        ad  * LWP before return.
    335      1.52        ad  */
    336       1.2   thorpej void
    337       1.2   thorpej lwp_continue(struct lwp *l)
    338       1.2   thorpej {
    339       1.2   thorpej 
    340      1.52        ad 	LOCK_ASSERT(mutex_owned(&l->l_proc->p_smutex));
    341      1.52        ad 	LOCK_ASSERT(lwp_locked(l, NULL));
    342      1.52        ad 
    343       1.2   thorpej 	DPRINTF(("lwp_continue of %d.%d (%s), state %d, wchan %p\n",
    344       1.2   thorpej 	    l->l_proc->p_pid, l->l_lid, l->l_proc->p_comm, l->l_stat,
    345       1.2   thorpej 	    l->l_wchan));
    346       1.2   thorpej 
    347      1.52        ad 	/* If rebooting or not suspended, then just bail out. */
    348      1.52        ad 	if ((l->l_flag & L_WREBOOT) != 0) {
    349      1.52        ad 		lwp_unlock(l);
    350       1.2   thorpej 		return;
    351      1.10      fvdl 	}
    352       1.2   thorpej 
    353      1.52        ad 	l->l_flag &= ~L_WSUSPEND;
    354       1.2   thorpej 
    355      1.52        ad 	if (l->l_stat != LSSUSPENDED) {
    356      1.52        ad 		lwp_unlock(l);
    357      1.52        ad 		return;
    358       1.2   thorpej 	}
    359       1.2   thorpej 
    360      1.52        ad 	/* setrunnable() will release the lock. */
    361      1.52        ad 	setrunnable(l);
    362       1.2   thorpej }
    363       1.2   thorpej 
    364      1.52        ad /*
    365      1.52        ad  * Wait for an LWP within the current process to exit.  If 'lid' is
    366      1.52        ad  * non-zero, we are waiting for a specific LWP.
    367      1.52        ad  *
    368      1.52        ad  * Must be called with p->p_smutex held.
    369      1.52        ad  */
    370       1.2   thorpej int
    371       1.2   thorpej lwp_wait1(struct lwp *l, lwpid_t lid, lwpid_t *departed, int flags)
    372       1.2   thorpej {
    373       1.2   thorpej 	struct proc *p = l->l_proc;
    374      1.52        ad 	struct lwp *l2;
    375      1.52        ad 	int nfound, error;
    376       1.2   thorpej 
    377       1.2   thorpej 	DPRINTF(("lwp_wait1: %d.%d waiting for %d.\n",
    378       1.2   thorpej 	    p->p_pid, l->l_lid, lid));
    379       1.2   thorpej 
    380      1.52        ad 	LOCK_ASSERT(mutex_owned(&p->p_smutex));
    381      1.52        ad 
    382      1.52        ad 	/*
    383      1.52        ad 	 * We try to check for deadlock:
    384      1.52        ad 	 *
    385      1.52        ad 	 * 1) If all other LWPs are waiting for exits or suspended.
    386      1.52        ad 	 * 2) If we are trying to wait on ourself.
    387      1.52        ad 	 *
    388      1.52        ad 	 * XXX we'd like to check for a cycle of waiting LWPs (specific LID
    389      1.52        ad 	 * waits, not any-LWP waits) and detect that sort of deadlock, but
    390      1.52        ad 	 * we don't have a good place to store the lwp that is being waited
    391      1.52        ad 	 * for. wchan is already filled with &p->p_nlwps, and putting the
    392      1.52        ad 	 * lwp address in there for deadlock tracing would require exiting
    393      1.52        ad 	 * LWPs to call wakeup on both their own address and &p->p_nlwps, to
    394      1.52        ad 	 * get threads sleeping on any LWP exiting.
    395      1.52        ad 	 */
    396       1.2   thorpej 	if (lid == l->l_lid)
    397      1.52        ad 		return EDEADLK;
    398      1.52        ad 
    399      1.52        ad 	p->p_nlwpwait++;
    400      1.52        ad 
    401      1.52        ad 	for (;;) {
    402      1.52        ad 		/*
    403      1.52        ad 		 * Avoid a race between exit1() and sigexit(): if the
    404      1.52        ad 		 * process is dumping core, then we need to bail out: call
    405      1.52        ad 		 * into lwp_userret() where we will be suspended until the
    406      1.52        ad 		 * deed is done.
    407      1.52        ad 		 */
    408      1.52        ad 		if ((p->p_sflag & PS_WCORE) != 0) {
    409      1.52        ad 			mutex_exit(&p->p_smutex);
    410      1.52        ad 			lwp_userret(l);
    411      1.52        ad #ifdef DIAGNOSTIC
    412      1.52        ad 			panic("lwp_wait1");
    413      1.52        ad #endif
    414      1.52        ad 			/* NOTREACHED */
    415      1.52        ad 		}
    416      1.52        ad 
    417      1.52        ad 		/*
    418      1.52        ad 		 * First off, drain any detached LWP that is waiting to be
    419      1.52        ad 		 * reaped.
    420      1.52        ad 		 */
    421      1.52        ad 		while ((l2 = p->p_zomblwp) != NULL) {
    422      1.52        ad 			p->p_zomblwp = NULL;
    423      1.52        ad 			lwp_free(l2, 0, 0);	/* releases proc mutex */
    424      1.52        ad 			mutex_enter(&p->p_smutex);
    425      1.52        ad 		}
    426      1.52        ad 
    427      1.52        ad 		/*
    428      1.52        ad 		 * Now look for an LWP to collect.  If the whole process is
    429      1.52        ad 		 * exiting, count detached LWPs as eligible to be collected,
    430      1.52        ad 		 * but don't drain them here.
    431      1.52        ad 		 */
    432      1.52        ad 		nfound = 0;
    433      1.52        ad 		LIST_FOREACH(l2, &p->p_lwps, l_sibling) {
    434      1.52        ad 			if (l2 == l || (lid != 0 && l2->l_lid != lid))
    435      1.52        ad 				continue;
    436      1.52        ad 			if ((l2->l_prflag & LPR_DETACHED) != 0) {
    437      1.52        ad 				nfound += ((flags & LWPWAIT_EXITCONTROL) != 0);
    438      1.52        ad 				continue;
    439      1.52        ad 			}
    440      1.52        ad 			nfound++;
    441       1.2   thorpej 
    442      1.52        ad 			/* No need to lock the LWP in order to see LSZOMB. */
    443      1.52        ad 			if (l2->l_stat != LSZOMB)
    444      1.52        ad 				continue;
    445       1.2   thorpej 
    446       1.2   thorpej 			if (departed)
    447       1.2   thorpej 				*departed = l2->l_lid;
    448      1.52        ad 			lwp_free(l2, 0, 0);
    449      1.52        ad 			mutex_enter(&p->p_smutex);
    450      1.52        ad 			p->p_nlwpwait--;
    451      1.52        ad 			return 0;
    452      1.52        ad 		}
    453       1.2   thorpej 
    454      1.52        ad 		if (nfound == 0) {
    455      1.52        ad 			error = ESRCH;
    456      1.52        ad 			break;
    457      1.52        ad 		}
    458      1.52        ad 		if ((flags & LWPWAIT_EXITCONTROL) != 0) {
    459      1.52        ad 			KASSERT(p->p_nlwps > 1);
    460      1.52        ad 			cv_wait(&p->p_lwpcv, &p->p_smutex);
    461      1.52        ad 			continue;
    462      1.52        ad 		}
    463      1.52        ad 		if ((p->p_sflag & PS_WEXIT) != 0 ||
    464      1.52        ad 		    p->p_nrlwps <= p->p_nlwpwait + p->p_ndlwps) {
    465      1.52        ad 			error = EDEADLK;
    466      1.52        ad 			break;
    467       1.2   thorpej 		}
    468      1.52        ad 		if ((error = cv_wait_sig(&p->p_lwpcv, &p->p_smutex)) != 0)
    469      1.52        ad 			break;
    470       1.2   thorpej 	}
    471       1.2   thorpej 
    472      1.52        ad 	p->p_nlwpwait--;
    473      1.52        ad 	return error;
    474       1.2   thorpej }
    475       1.2   thorpej 
    476      1.52        ad /*
    477      1.52        ad  * Create a new LWP within process 'p2', using LWP 'l1' as a template.
    478      1.52        ad  * The new LWP is created in state LSIDL and must be set running,
    479      1.52        ad  * suspended, or stopped by the caller.
    480      1.52        ad  */
    481       1.2   thorpej int
    482       1.2   thorpej newlwp(struct lwp *l1, struct proc *p2, vaddr_t uaddr, boolean_t inmem,
    483       1.2   thorpej     int flags, void *stack, size_t stacksize,
    484       1.2   thorpej     void (*func)(void *), void *arg, struct lwp **rnewlwpp)
    485       1.2   thorpej {
    486      1.52        ad 	struct lwp *l2, *isfree;
    487      1.52        ad 	turnstile_t *ts;
    488       1.2   thorpej 
    489      1.52        ad 	/*
    490      1.52        ad 	 * First off, reap any detached LWP waiting to be collected.
    491      1.52        ad 	 * We can re-use its LWP structure and turnstile.
    492      1.52        ad 	 */
    493      1.52        ad 	isfree = NULL;
    494      1.52        ad 	if (p2->p_zomblwp != NULL) {
    495      1.52        ad 		mutex_enter(&p2->p_smutex);
    496      1.52        ad 		if ((isfree = p2->p_zomblwp) != NULL) {
    497      1.52        ad 			p2->p_zomblwp = NULL;
    498      1.52        ad 			lwp_free(isfree, 1, 0);	/* releases proc mutex */
    499      1.52        ad 		} else
    500      1.52        ad 			mutex_exit(&p2->p_smutex);
    501      1.52        ad 	}
    502      1.52        ad 	if (isfree == NULL) {
    503      1.52        ad 		l2 = pool_get(&lwp_pool, PR_WAITOK);
    504      1.52        ad 		memset(l2, 0, sizeof(*l2));
    505      1.52        ad 		l2->l_ts = pool_cache_get(&turnstile_cache, PR_WAITOK);
    506      1.52        ad 	} else {
    507      1.52        ad 		l2 = isfree;
    508      1.52        ad 		ts = l2->l_ts;
    509      1.52        ad 		memset(l2, 0, sizeof(*l2));
    510      1.52        ad 		l2->l_ts = ts;
    511      1.52        ad 	}
    512       1.2   thorpej 
    513       1.2   thorpej 	l2->l_stat = LSIDL;
    514       1.2   thorpej 	l2->l_proc = p2;
    515      1.52        ad 	l2->l_refcnt = 1;
    516      1.52        ad 	l2->l_priority = l1->l_priority;
    517      1.52        ad 	l2->l_usrpri = l1->l_usrpri;
    518      1.52        ad 	l2->l_mutex = &sched_mutex;
    519      1.52        ad 	l2->l_cpu = l1->l_cpu;
    520      1.52        ad 	l2->l_flag = inmem ? L_INMEM : 0;
    521      1.42  christos 	lwp_initspecific(l2);
    522      1.41   thorpej 
    523      1.52        ad 	if (p2->p_flag & P_SYSTEM) {
    524      1.52        ad 		/*
    525      1.52        ad 		 * Mark it as a system process and not a candidate for
    526      1.52        ad 		 * swapping.
    527      1.52        ad 		 */
    528      1.52        ad 		l2->l_flag |= L_SYSTEM;
    529      1.52        ad 	}
    530       1.2   thorpej 
    531      1.37        ad 	lwp_update_creds(l2);
    532       1.2   thorpej 	callout_init(&l2->l_tsleep_ch);
    533      1.52        ad 	cv_init(&l2->l_sigcv, "sigwait");
    534      1.52        ad 	l2->l_syncobj = &sched_syncobj;
    535       1.2   thorpej 
    536       1.2   thorpej 	if (rnewlwpp != NULL)
    537       1.2   thorpej 		*rnewlwpp = l2;
    538       1.2   thorpej 
    539      1.36      yamt 	l2->l_addr = UAREA_TO_USER(uaddr);
    540       1.2   thorpej 	uvm_lwp_fork(l1, l2, stack, stacksize, func,
    541       1.2   thorpej 	    (arg != NULL) ? arg : l2);
    542       1.2   thorpej 
    543      1.52        ad 	mutex_enter(&p2->p_smutex);
    544      1.52        ad 
    545      1.52        ad 	if ((flags & LWP_DETACHED) != 0) {
    546      1.52        ad 		l2->l_prflag = LPR_DETACHED;
    547      1.52        ad 		p2->p_ndlwps++;
    548      1.52        ad 	} else
    549      1.52        ad 		l2->l_prflag = 0;
    550      1.52        ad 
    551      1.52        ad 	l2->l_sigmask = l1->l_sigmask;
    552      1.52        ad 	CIRCLEQ_INIT(&l2->l_sigpend.sp_info);
    553      1.52        ad 	sigemptyset(&l2->l_sigpend.sp_set);
    554      1.52        ad 
    555      1.53      yamt 	p2->p_nlwpid++;
    556      1.53      yamt 	if (p2->p_nlwpid == 0)
    557      1.53      yamt 		p2->p_nlwpid++;
    558      1.53      yamt 	l2->l_lid = p2->p_nlwpid;
    559       1.2   thorpej 	LIST_INSERT_HEAD(&p2->p_lwps, l2, l_sibling);
    560       1.2   thorpej 	p2->p_nlwps++;
    561       1.2   thorpej 
    562      1.52        ad 	mutex_exit(&p2->p_smutex);
    563      1.52        ad 
    564      1.52        ad 	mutex_enter(&proclist_mutex);
    565       1.2   thorpej 	LIST_INSERT_HEAD(&alllwp, l2, l_list);
    566      1.52        ad 	mutex_exit(&proclist_mutex);
    567       1.2   thorpej 
    568      1.16      manu 	if (p2->p_emul->e_lwp_fork)
    569      1.16      manu 		(*p2->p_emul->e_lwp_fork)(l1, l2);
    570      1.16      manu 
    571       1.2   thorpej 	return (0);
    572       1.2   thorpej }
    573       1.2   thorpej 
    574       1.2   thorpej /*
    575  1.55.2.2      yamt  * Quit the process.
    576  1.55.2.2      yamt  * this can only be used meaningfully if you're willing to switch away.
    577       1.2   thorpej  * Calling with l!=curlwp would be weird.
    578       1.2   thorpej  */
    579       1.2   thorpej void
    580       1.2   thorpej lwp_exit(struct lwp *l)
    581       1.2   thorpej {
    582       1.2   thorpej 	struct proc *p = l->l_proc;
    583      1.52        ad 	struct lwp *l2;
    584       1.2   thorpej 
    585       1.2   thorpej 	DPRINTF(("lwp_exit: %d.%d exiting.\n", p->p_pid, l->l_lid));
    586      1.52        ad 	DPRINTF((" nlwps: %d nzlwps: %d\n", p->p_nlwps, p->p_nzlwps));
    587       1.2   thorpej 
    588      1.52        ad 	/*
    589      1.52        ad 	 * Verify that we hold no locks other than the kernel lock.
    590      1.52        ad 	 */
    591      1.52        ad #ifdef MULTIPROCESSOR
    592      1.52        ad 	LOCKDEBUG_BARRIER(&kernel_lock, 0);
    593      1.52        ad #else
    594      1.52        ad 	LOCKDEBUG_BARRIER(NULL, 0);
    595      1.52        ad #endif
    596      1.16      manu 
    597       1.2   thorpej 	/*
    598      1.52        ad 	 * If we are the last live LWP in a process, we need to exit the
    599      1.52        ad 	 * entire process.  We do so with an exit status of zero, because
    600      1.52        ad 	 * it's a "controlled" exit, and because that's what Solaris does.
    601      1.52        ad 	 *
    602      1.52        ad 	 * We are not quite a zombie yet, but for accounting purposes we
    603      1.52        ad 	 * must increment the count of zombies here.
    604      1.45   thorpej 	 *
    605      1.45   thorpej 	 * Note: the last LWP's specificdata will be deleted here.
    606       1.2   thorpej 	 */
    607      1.52        ad 	mutex_enter(&p->p_smutex);
    608      1.52        ad 	if (p->p_nlwps - p->p_nzlwps == 1) {
    609       1.2   thorpej 		DPRINTF(("lwp_exit: %d.%d calling exit1()\n",
    610       1.2   thorpej 		    p->p_pid, l->l_lid));
    611       1.2   thorpej 		exit1(l, 0);
    612      1.19  jdolecek 		/* NOTREACHED */
    613       1.2   thorpej 	}
    614      1.52        ad 	p->p_nzlwps++;
    615      1.52        ad 	mutex_exit(&p->p_smutex);
    616      1.52        ad 
    617      1.52        ad 	if (p->p_emul->e_lwp_exit)
    618      1.52        ad 		(*p->p_emul->e_lwp_exit)(l);
    619       1.2   thorpej 
    620      1.45   thorpej 	/* Delete the specificdata while it's still safe to sleep. */
    621      1.45   thorpej 	specificdata_fini(lwp_specificdata_domain, &l->l_specdataref);
    622      1.45   thorpej 
    623      1.52        ad 	/*
    624      1.52        ad 	 * Release our cached credentials.
    625      1.52        ad 	 */
    626      1.37        ad 	kauth_cred_free(l->l_cred);
    627      1.37        ad 
    628      1.52        ad 	/*
    629      1.52        ad 	 * Remove the LWP from the global list.
    630      1.52        ad 	 */
    631      1.52        ad 	mutex_enter(&proclist_mutex);
    632      1.52        ad 	LIST_REMOVE(l, l_list);
    633      1.52        ad 	mutex_exit(&proclist_mutex);
    634      1.19  jdolecek 
    635      1.52        ad 	/*
    636      1.52        ad 	 * Get rid of all references to the LWP that others (e.g. procfs)
    637      1.52        ad 	 * may have, and mark the LWP as a zombie.  If the LWP is detached,
    638      1.52        ad 	 * mark it waiting for collection in the proc structure.  Note that
    639      1.52        ad 	 * before we can do that, we need to free any other dead, deatched
    640      1.52        ad 	 * LWP waiting to meet its maker.
    641      1.52        ad 	 *
    642      1.52        ad 	 * XXXSMP disable preemption.
    643      1.52        ad 	 */
    644      1.52        ad 	mutex_enter(&p->p_smutex);
    645      1.52        ad 	lwp_drainrefs(l);
    646      1.31      yamt 
    647      1.52        ad 	if ((l->l_prflag & LPR_DETACHED) != 0) {
    648      1.52        ad 		while ((l2 = p->p_zomblwp) != NULL) {
    649      1.52        ad 			p->p_zomblwp = NULL;
    650      1.52        ad 			lwp_free(l2, 0, 0);	/* releases proc mutex */
    651      1.52        ad 			mutex_enter(&p->p_smutex);
    652      1.52        ad 		}
    653      1.52        ad 		p->p_zomblwp = l;
    654      1.52        ad 	}
    655      1.31      yamt 
    656      1.52        ad 	/*
    657      1.52        ad 	 * If we find a pending signal for the process and we have been
    658      1.52        ad 	 * asked to check for signals, then we loose: arrange to have
    659      1.52        ad 	 * all other LWPs in the process check for signals.
    660      1.52        ad 	 */
    661      1.52        ad 	if ((l->l_flag & L_PENDSIG) != 0 &&
    662      1.52        ad 	    firstsig(&p->p_sigpend.sp_set) != 0) {
    663      1.52        ad 		LIST_FOREACH(l2, &p->p_lwps, l_sibling) {
    664      1.52        ad 			lwp_lock(l2);
    665      1.52        ad 			l2->l_flag |= L_PENDSIG;
    666      1.52        ad 			lwp_unlock(l2);
    667      1.52        ad 		}
    668      1.31      yamt 	}
    669      1.31      yamt 
    670      1.52        ad 	lwp_lock(l);
    671      1.52        ad 	l->l_stat = LSZOMB;
    672      1.52        ad 	lwp_unlock(l);
    673       1.2   thorpej 	p->p_nrlwps--;
    674      1.52        ad 	cv_broadcast(&p->p_lwpcv);
    675      1.52        ad 	mutex_exit(&p->p_smutex);
    676      1.52        ad 
    677      1.52        ad 	/*
    678      1.52        ad 	 * We can no longer block.  At this point, lwp_free() may already
    679      1.52        ad 	 * be gunning for us.  On a multi-CPU system, we may be off p_lwps.
    680      1.52        ad 	 *
    681      1.52        ad 	 * Free MD LWP resources.
    682      1.52        ad 	 */
    683      1.52        ad #ifndef __NO_CPU_LWP_FREE
    684      1.52        ad 	cpu_lwp_free(l, 0);
    685      1.52        ad #endif
    686      1.52        ad 	pmap_deactivate(l);
    687       1.2   thorpej 
    688      1.52        ad 	/*
    689      1.52        ad 	 * Release the kernel lock, signal another LWP to collect us,
    690      1.52        ad 	 * and switch away into oblivion.
    691      1.52        ad 	 */
    692      1.52        ad #ifdef notyet
    693      1.52        ad 	/* XXXSMP hold in lwp_userret() */
    694      1.52        ad 	KERNEL_UNLOCK_LAST(l);
    695      1.52        ad #else
    696      1.52        ad 	KERNEL_UNLOCK_ALL(l, NULL);
    697      1.52        ad #endif
    698       1.2   thorpej 
    699  1.55.2.1      yamt 	lwp_exit_switchaway(l);
    700  1.55.2.1      yamt }
    701  1.55.2.1      yamt 
    702  1.55.2.1      yamt void
    703  1.55.2.1      yamt lwp_exit_switchaway(struct lwp *l)
    704  1.55.2.1      yamt {
    705  1.55.2.1      yamt 	struct cpu_info *ci;
    706  1.55.2.1      yamt 	struct lwp *idlelwp;
    707  1.55.2.1      yamt 
    708  1.55.2.1      yamt 	uvmexp.swtch++; /* XXXSMP unlocked */
    709  1.55.2.1      yamt 
    710  1.55.2.1      yamt 	ci = curcpu();
    711  1.55.2.1      yamt 	idlelwp = ci->ci_data.cpu_idlelwp;
    712  1.55.2.1      yamt 
    713  1.55.2.1      yamt 	idlelwp->l_stat = LSONPROC;
    714  1.55.2.1      yamt 	cpu_switchto(NULL, idlelwp);
    715       1.2   thorpej }
    716       1.2   thorpej 
    717      1.19  jdolecek /*
    718      1.52        ad  * We are called from cpu_exit() once it is safe to schedule the dead LWP's
    719      1.52        ad  * resources to be freed (i.e., once we've switched to the idle PCB for the
    720      1.52        ad  * current CPU).
    721      1.19  jdolecek  */
    722       1.2   thorpej void
    723       1.2   thorpej lwp_exit2(struct lwp *l)
    724       1.2   thorpej {
    725      1.52        ad 	/* XXXSMP re-enable preemption */
    726      1.52        ad }
    727      1.52        ad 
    728      1.52        ad /*
    729      1.52        ad  * Free a dead LWP's remaining resources.
    730      1.52        ad  *
    731      1.52        ad  * XXXLWP limits.
    732      1.52        ad  */
    733      1.52        ad void
    734      1.52        ad lwp_free(struct lwp *l, int recycle, int last)
    735      1.52        ad {
    736      1.52        ad 	struct proc *p = l->l_proc;
    737      1.52        ad 	ksiginfoq_t kq;
    738      1.52        ad 
    739      1.52        ad 	/*
    740      1.52        ad 	 * If this was not the last LWP in the process, then adjust
    741      1.52        ad 	 * counters and unlock.
    742      1.52        ad 	 */
    743      1.52        ad 	if (!last) {
    744      1.52        ad 		/*
    745      1.52        ad 		 * Add the LWP's run time to the process' base value.
    746      1.52        ad 		 * This needs to co-incide with coming off p_lwps.
    747      1.52        ad 		 */
    748      1.52        ad 		timeradd(&l->l_rtime, &p->p_rtime, &p->p_rtime);
    749      1.52        ad 		LIST_REMOVE(l, l_sibling);
    750      1.52        ad 		p->p_nlwps--;
    751      1.52        ad 		p->p_nzlwps--;
    752      1.52        ad 		if ((l->l_prflag & LPR_DETACHED) != 0)
    753      1.52        ad 			p->p_ndlwps--;
    754      1.52        ad 		mutex_exit(&p->p_smutex);
    755      1.52        ad 
    756      1.52        ad #ifdef MULTIPROCESSOR
    757      1.52        ad 		/*
    758      1.52        ad 		 * In the unlikely event that the LWP is still on the CPU,
    759      1.52        ad 		 * then spin until it has switched away.  We need to release
    760      1.52        ad 		 * all locks to avoid deadlock against interrupt handlers on
    761      1.52        ad 		 * the target CPU.
    762      1.52        ad 		 */
    763      1.52        ad 		if (l->l_cpu->ci_curlwp == l) {
    764      1.52        ad 			int count;
    765      1.52        ad 			KERNEL_UNLOCK_ALL(curlwp, &count);
    766      1.52        ad 			while (l->l_cpu->ci_curlwp == l)
    767      1.52        ad 				SPINLOCK_BACKOFF_HOOK;
    768      1.52        ad 			KERNEL_LOCK(count, curlwp);
    769      1.52        ad 		}
    770      1.52        ad #endif
    771      1.52        ad 	}
    772      1.52        ad 
    773      1.52        ad 	/*
    774      1.52        ad 	 * Destroy the LWP's remaining signal information.
    775      1.52        ad 	 */
    776      1.52        ad 	ksiginfo_queue_init(&kq);
    777      1.52        ad 	sigclear(&l->l_sigpend, NULL, &kq);
    778      1.52        ad 	ksiginfo_queue_drain(&kq);
    779      1.52        ad 	cv_destroy(&l->l_sigcv);
    780       1.2   thorpej 
    781      1.19  jdolecek 	/*
    782      1.52        ad 	 * Free the LWP's turnstile and the LWP structure itself unless the
    783      1.52        ad 	 * caller wants to recycle them.
    784      1.52        ad 	 *
    785      1.52        ad 	 * We can't return turnstile0 to the pool (it didn't come from it),
    786      1.52        ad 	 * so if it comes up just drop it quietly and move on.
    787      1.52        ad 	 *
    788      1.52        ad 	 * We don't recycle the VM resources at this time.
    789      1.19  jdolecek 	 */
    790      1.55        ad 	KERNEL_LOCK(1, curlwp);		/* XXXSMP */
    791      1.52        ad 	if (!recycle && l->l_ts != &turnstile0)
    792      1.52        ad 		pool_cache_put(&turnstile_cache, l->l_ts);
    793      1.52        ad #ifndef __NO_CPU_LWP_FREE
    794      1.52        ad 	cpu_lwp_free2(l);
    795      1.52        ad #endif
    796      1.19  jdolecek 	uvm_lwp_exit(l);
    797      1.52        ad 	if (!recycle)
    798      1.19  jdolecek 		pool_put(&lwp_pool, l);
    799      1.55        ad 	KERNEL_UNLOCK_ONE(curlwp);	/* XXXSMP */
    800       1.2   thorpej }
    801       1.2   thorpej 
    802       1.2   thorpej /*
    803       1.2   thorpej  * Pick a LWP to represent the process for those operations which
    804       1.2   thorpej  * want information about a "process" that is actually associated
    805       1.2   thorpej  * with a LWP.
    806      1.52        ad  *
    807      1.52        ad  * If 'locking' is false, no locking or lock checks are performed.
    808      1.52        ad  * This is intended for use by DDB.
    809      1.52        ad  *
    810      1.52        ad  * We don't bother locking the LWP here, since code that uses this
    811      1.52        ad  * interface is broken by design and an exact match is not required.
    812       1.2   thorpej  */
    813       1.2   thorpej struct lwp *
    814      1.52        ad proc_representative_lwp(struct proc *p, int *nrlwps, int locking)
    815       1.2   thorpej {
    816       1.2   thorpej 	struct lwp *l, *onproc, *running, *sleeping, *stopped, *suspended;
    817      1.27      matt 	struct lwp *signalled;
    818      1.52        ad 	int cnt;
    819      1.52        ad 
    820      1.52        ad 	if (locking) {
    821      1.52        ad 		LOCK_ASSERT(mutex_owned(&p->p_smutex));
    822      1.52        ad 	}
    823       1.2   thorpej 
    824       1.2   thorpej 	/* Trivial case: only one LWP */
    825      1.52        ad 	if (p->p_nlwps == 1) {
    826      1.52        ad 		l = LIST_FIRST(&p->p_lwps);
    827      1.52        ad 		if (nrlwps)
    828      1.52        ad 			*nrlwps = (l->l_stat == LSONPROC || LSRUN);
    829      1.52        ad 		return l;
    830      1.52        ad 	}
    831       1.2   thorpej 
    832      1.52        ad 	cnt = 0;
    833       1.2   thorpej 	switch (p->p_stat) {
    834       1.2   thorpej 	case SSTOP:
    835       1.2   thorpej 	case SACTIVE:
    836       1.2   thorpej 		/* Pick the most live LWP */
    837       1.2   thorpej 		onproc = running = sleeping = stopped = suspended = NULL;
    838      1.27      matt 		signalled = NULL;
    839       1.2   thorpej 		LIST_FOREACH(l, &p->p_lwps, l_sibling) {
    840  1.55.2.1      yamt 			if ((l->l_flag & L_IDLE) != 0) {
    841  1.55.2.1      yamt 				continue;
    842  1.55.2.1      yamt 			}
    843      1.27      matt 			if (l->l_lid == p->p_sigctx.ps_lwp)
    844      1.27      matt 				signalled = l;
    845       1.2   thorpej 			switch (l->l_stat) {
    846       1.2   thorpej 			case LSONPROC:
    847       1.2   thorpej 				onproc = l;
    848      1.52        ad 				cnt++;
    849       1.2   thorpej 				break;
    850       1.2   thorpej 			case LSRUN:
    851       1.2   thorpej 				running = l;
    852      1.52        ad 				cnt++;
    853       1.2   thorpej 				break;
    854       1.2   thorpej 			case LSSLEEP:
    855       1.2   thorpej 				sleeping = l;
    856       1.2   thorpej 				break;
    857       1.2   thorpej 			case LSSTOP:
    858       1.2   thorpej 				stopped = l;
    859       1.2   thorpej 				break;
    860       1.2   thorpej 			case LSSUSPENDED:
    861       1.2   thorpej 				suspended = l;
    862       1.2   thorpej 				break;
    863       1.2   thorpej 			}
    864       1.2   thorpej 		}
    865      1.52        ad 		if (nrlwps)
    866      1.52        ad 			*nrlwps = cnt;
    867      1.27      matt 		if (signalled)
    868      1.52        ad 			l = signalled;
    869      1.52        ad 		else if (onproc)
    870      1.52        ad 			l = onproc;
    871      1.52        ad 		else if (running)
    872      1.52        ad 			l = running;
    873      1.52        ad 		else if (sleeping)
    874      1.52        ad 			l = sleeping;
    875      1.52        ad 		else if (stopped)
    876      1.52        ad 			l = stopped;
    877      1.52        ad 		else if (suspended)
    878      1.52        ad 			l = suspended;
    879      1.52        ad 		else
    880      1.52        ad 			break;
    881      1.52        ad 		return l;
    882      1.52        ad 		if (nrlwps)
    883      1.52        ad 			*nrlwps = 0;
    884      1.52        ad 		l = LIST_FIRST(&p->p_lwps);
    885      1.52        ad 		return l;
    886       1.2   thorpej #ifdef DIAGNOSTIC
    887       1.2   thorpej 	case SIDL:
    888      1.52        ad 	case SZOMB:
    889      1.52        ad 	case SDYING:
    890      1.52        ad 	case SDEAD:
    891      1.52        ad 		if (locking)
    892      1.52        ad 			mutex_exit(&p->p_smutex);
    893       1.2   thorpej 		/* We have more than one LWP and we're in SIDL?
    894       1.2   thorpej 		 * How'd that happen?
    895       1.2   thorpej 		 */
    896      1.52        ad 		panic("Too many LWPs in idle/dying process %d (%s) stat = %d",
    897      1.52        ad 		    p->p_pid, p->p_comm, p->p_stat);
    898      1.52        ad 		break;
    899       1.2   thorpej 	default:
    900      1.52        ad 		if (locking)
    901      1.52        ad 			mutex_exit(&p->p_smutex);
    902       1.2   thorpej 		panic("Process %d (%s) in unknown state %d",
    903       1.2   thorpej 		    p->p_pid, p->p_comm, p->p_stat);
    904       1.2   thorpej #endif
    905       1.2   thorpej 	}
    906       1.2   thorpej 
    907      1.52        ad 	if (locking)
    908      1.52        ad 		mutex_exit(&p->p_smutex);
    909       1.2   thorpej 	panic("proc_representative_lwp: couldn't find a lwp for process"
    910       1.2   thorpej 		" %d (%s)", p->p_pid, p->p_comm);
    911       1.2   thorpej 	/* NOTREACHED */
    912       1.2   thorpej 	return NULL;
    913       1.2   thorpej }
    914      1.37        ad 
    915      1.37        ad /*
    916      1.52        ad  * Look up a live LWP within the speicifed process, and return it locked.
    917      1.52        ad  *
    918      1.52        ad  * Must be called with p->p_smutex held.
    919      1.52        ad  */
    920      1.52        ad struct lwp *
    921      1.52        ad lwp_find(struct proc *p, int id)
    922      1.52        ad {
    923      1.52        ad 	struct lwp *l;
    924      1.52        ad 
    925      1.52        ad 	LOCK_ASSERT(mutex_owned(&p->p_smutex));
    926      1.52        ad 
    927      1.52        ad 	LIST_FOREACH(l, &p->p_lwps, l_sibling) {
    928      1.52        ad 		if (l->l_lid == id)
    929      1.52        ad 			break;
    930      1.52        ad 	}
    931      1.52        ad 
    932      1.52        ad 	/*
    933      1.52        ad 	 * No need to lock - all of these conditions will
    934      1.52        ad 	 * be visible with the process level mutex held.
    935      1.52        ad 	 */
    936      1.52        ad 	if (l != NULL && (l->l_stat == LSIDL || l->l_stat == LSZOMB))
    937      1.52        ad 		l = NULL;
    938      1.52        ad 
    939      1.52        ad 	return l;
    940      1.52        ad }
    941      1.52        ad 
    942      1.52        ad /*
    943      1.37        ad  * Update an LWP's cached credentials to mirror the process' master copy.
    944      1.37        ad  *
    945      1.37        ad  * This happens early in the syscall path, on user trap, and on LWP
    946      1.37        ad  * creation.  A long-running LWP can also voluntarily choose to update
    947      1.37        ad  * it's credentials by calling this routine.  This may be called from
    948      1.37        ad  * LWP_CACHE_CREDS(), which checks l->l_cred != p->p_cred beforehand.
    949      1.37        ad  */
    950      1.37        ad void
    951      1.37        ad lwp_update_creds(struct lwp *l)
    952      1.37        ad {
    953      1.37        ad 	kauth_cred_t oc;
    954      1.37        ad 	struct proc *p;
    955      1.37        ad 
    956      1.37        ad 	p = l->l_proc;
    957      1.37        ad 	oc = l->l_cred;
    958      1.37        ad 
    959      1.52        ad 	mutex_enter(&p->p_mutex);
    960      1.37        ad 	kauth_cred_hold(p->p_cred);
    961      1.37        ad 	l->l_cred = p->p_cred;
    962      1.52        ad 	mutex_exit(&p->p_mutex);
    963      1.52        ad 	if (oc != NULL) {
    964      1.52        ad 		KERNEL_LOCK(1, l);	/* XXXSMP */
    965      1.37        ad 		kauth_cred_free(oc);
    966      1.52        ad 		KERNEL_UNLOCK_ONE(l);	/* XXXSMP */
    967      1.52        ad 	}
    968      1.52        ad }
    969      1.52        ad 
    970      1.52        ad /*
    971      1.52        ad  * Verify that an LWP is locked, and optionally verify that the lock matches
    972      1.52        ad  * one we specify.
    973      1.52        ad  */
    974      1.52        ad int
    975      1.52        ad lwp_locked(struct lwp *l, kmutex_t *mtx)
    976      1.52        ad {
    977      1.52        ad 	kmutex_t *cur = l->l_mutex;
    978      1.52        ad 
    979      1.52        ad #if defined(MULTIPROCESSOR) || defined(LOCKDEBUG)
    980      1.52        ad 	return mutex_owned(cur) && (mtx == cur || mtx == NULL);
    981      1.52        ad #else
    982      1.52        ad 	return mutex_owned(cur);
    983      1.52        ad #endif
    984      1.52        ad }
    985      1.52        ad 
    986      1.52        ad #if defined(MULTIPROCESSOR) || defined(LOCKDEBUG)
    987      1.52        ad /*
    988      1.52        ad  * Lock an LWP.
    989      1.52        ad  */
    990      1.52        ad void
    991      1.52        ad lwp_lock_retry(struct lwp *l, kmutex_t *old)
    992      1.52        ad {
    993      1.52        ad 
    994      1.52        ad 	/*
    995      1.52        ad 	 * XXXgcc ignoring kmutex_t * volatile on i386
    996      1.52        ad 	 *
    997      1.52        ad 	 * gcc version 4.1.2 20061021 prerelease (NetBSD nb1 20061021)
    998      1.52        ad 	 */
    999      1.52        ad #if 1
   1000      1.52        ad 	while (l->l_mutex != old) {
   1001      1.52        ad #else
   1002      1.52        ad 	for (;;) {
   1003      1.52        ad #endif
   1004      1.52        ad 		mutex_spin_exit(old);
   1005      1.52        ad 		old = l->l_mutex;
   1006      1.52        ad 		mutex_spin_enter(old);
   1007      1.52        ad 
   1008      1.52        ad 		/*
   1009      1.52        ad 		 * mutex_enter() will have posted a read barrier.  Re-test
   1010      1.52        ad 		 * l->l_mutex.  If it has changed, we need to try again.
   1011      1.52        ad 		 */
   1012      1.52        ad #if 1
   1013      1.52        ad 	}
   1014      1.52        ad #else
   1015      1.52        ad 	} while (__predict_false(l->l_mutex != old));
   1016      1.52        ad #endif
   1017      1.52        ad }
   1018      1.52        ad #endif
   1019      1.52        ad 
   1020      1.52        ad /*
   1021      1.52        ad  * Lend a new mutex to an LWP.  The old mutex must be held.
   1022      1.52        ad  */
   1023      1.52        ad void
   1024      1.52        ad lwp_setlock(struct lwp *l, kmutex_t *new)
   1025      1.52        ad {
   1026      1.52        ad 
   1027      1.52        ad 	LOCK_ASSERT(mutex_owned(l->l_mutex));
   1028      1.52        ad 
   1029      1.52        ad #if defined(MULTIPROCESSOR) || defined(LOCKDEBUG)
   1030      1.52        ad 	mb_write();
   1031      1.52        ad 	l->l_mutex = new;
   1032      1.52        ad #else
   1033      1.52        ad 	(void)new;
   1034      1.52        ad #endif
   1035      1.52        ad }
   1036      1.52        ad 
   1037      1.52        ad /*
   1038      1.52        ad  * Lend a new mutex to an LWP, and release the old mutex.  The old mutex
   1039      1.52        ad  * must be held.
   1040      1.52        ad  */
   1041      1.52        ad void
   1042      1.52        ad lwp_unlock_to(struct lwp *l, kmutex_t *new)
   1043      1.52        ad {
   1044      1.52        ad 	kmutex_t *old;
   1045      1.52        ad 
   1046      1.52        ad 	LOCK_ASSERT(mutex_owned(l->l_mutex));
   1047      1.52        ad 
   1048      1.52        ad 	old = l->l_mutex;
   1049      1.52        ad #if defined(MULTIPROCESSOR) || defined(LOCKDEBUG)
   1050      1.52        ad 	mb_write();
   1051      1.52        ad 	l->l_mutex = new;
   1052      1.52        ad #else
   1053      1.52        ad 	(void)new;
   1054      1.52        ad #endif
   1055      1.52        ad 	mutex_spin_exit(old);
   1056      1.52        ad }
   1057      1.52        ad 
   1058      1.52        ad /*
   1059      1.52        ad  * Acquire a new mutex, and donate it to an LWP.  The LWP must already be
   1060      1.52        ad  * locked.
   1061      1.52        ad  */
   1062      1.52        ad void
   1063      1.52        ad lwp_relock(struct lwp *l, kmutex_t *new)
   1064      1.52        ad {
   1065      1.52        ad #if defined(MULTIPROCESSOR) || defined(LOCKDEBUG)
   1066      1.52        ad 	kmutex_t *old;
   1067      1.52        ad #endif
   1068      1.52        ad 
   1069      1.52        ad 	LOCK_ASSERT(mutex_owned(l->l_mutex));
   1070      1.52        ad 
   1071      1.52        ad #if defined(MULTIPROCESSOR) || defined(LOCKDEBUG)
   1072      1.52        ad 	old = l->l_mutex;
   1073      1.52        ad 	if (old != new) {
   1074      1.52        ad 		mutex_spin_enter(new);
   1075      1.52        ad 		l->l_mutex = new;
   1076      1.52        ad 		mutex_spin_exit(old);
   1077      1.52        ad 	}
   1078      1.52        ad #else
   1079      1.52        ad 	(void)new;
   1080      1.52        ad #endif
   1081      1.52        ad }
   1082      1.52        ad 
   1083      1.52        ad /*
   1084      1.52        ad  * Handle exceptions for mi_userret().  Called if a member of L_USERRET is
   1085      1.52        ad  * set.
   1086      1.52        ad  */
   1087      1.52        ad void
   1088      1.52        ad lwp_userret(struct lwp *l)
   1089      1.52        ad {
   1090      1.52        ad 	struct proc *p;
   1091      1.54        ad 	void (*hook)(void);
   1092      1.52        ad 	int sig;
   1093      1.52        ad 
   1094      1.52        ad 	p = l->l_proc;
   1095      1.52        ad 
   1096      1.52        ad 	/*
   1097      1.52        ad 	 * It should be safe to do this read unlocked on a multiprocessor
   1098      1.52        ad 	 * system..
   1099      1.52        ad 	 */
   1100      1.52        ad 	while ((l->l_flag & L_USERRET) != 0) {
   1101      1.52        ad 		/*
   1102      1.52        ad 		 * Process pending signals first, unless the process
   1103      1.52        ad 		 * is dumping core, where we will instead enter the
   1104      1.52        ad 		 * L_WSUSPEND case below.
   1105      1.52        ad 		 */
   1106      1.52        ad 		if ((l->l_flag & (L_PENDSIG | L_WCORE)) == L_PENDSIG) {
   1107      1.52        ad 			KERNEL_LOCK(1, l);	/* XXXSMP pool_put() below */
   1108      1.52        ad 			mutex_enter(&p->p_smutex);
   1109      1.52        ad 			while ((sig = issignal(l)) != 0)
   1110      1.52        ad 				postsig(sig);
   1111      1.52        ad 			mutex_exit(&p->p_smutex);
   1112      1.52        ad 			KERNEL_UNLOCK_LAST(l);	/* XXXSMP */
   1113      1.52        ad 		}
   1114      1.52        ad 
   1115      1.52        ad 		/*
   1116      1.52        ad 		 * Core-dump or suspend pending.
   1117      1.52        ad 		 *
   1118      1.52        ad 		 * In case of core dump, suspend ourselves, so that the
   1119      1.52        ad 		 * kernel stack and therefore the userland registers saved
   1120      1.52        ad 		 * in the trapframe are around for coredump() to write them
   1121      1.52        ad 		 * out.  We issue a wakeup on p->p_lwpcv so that sigexit()
   1122      1.52        ad 		 * will write the core file out once all other LWPs are
   1123      1.52        ad 		 * suspended.
   1124      1.52        ad 		 */
   1125      1.52        ad 		if ((l->l_flag & L_WSUSPEND) != 0) {
   1126      1.52        ad 			mutex_enter(&p->p_smutex);
   1127      1.52        ad 			p->p_nrlwps--;
   1128      1.52        ad 			cv_broadcast(&p->p_lwpcv);
   1129      1.52        ad 			lwp_lock(l);
   1130      1.52        ad 			l->l_stat = LSSUSPENDED;
   1131      1.52        ad 			mutex_exit(&p->p_smutex);
   1132      1.52        ad 			mi_switch(l, NULL);
   1133      1.52        ad 		}
   1134      1.52        ad 
   1135      1.52        ad 		/* Process is exiting. */
   1136      1.52        ad 		if ((l->l_flag & L_WEXIT) != 0) {
   1137      1.52        ad 			KERNEL_LOCK(1, l);
   1138      1.52        ad 			lwp_exit(l);
   1139      1.52        ad 			KASSERT(0);
   1140      1.52        ad 			/* NOTREACHED */
   1141      1.52        ad 		}
   1142      1.54        ad 
   1143      1.54        ad 		/* Call userret hook; used by Linux emulation. */
   1144      1.54        ad 		if ((l->l_flag & L_WUSERRET) != 0) {
   1145      1.54        ad 			lwp_lock(l);
   1146      1.54        ad 			l->l_flag &= ~L_WUSERRET;
   1147      1.54        ad 			lwp_unlock(l);
   1148      1.54        ad 			hook = p->p_userret;
   1149      1.54        ad 			p->p_userret = NULL;
   1150      1.54        ad 			(*hook)();
   1151      1.54        ad 		}
   1152      1.52        ad 	}
   1153      1.52        ad }
   1154      1.52        ad 
   1155      1.52        ad /*
   1156      1.52        ad  * Force an LWP to enter the kernel, to take a trip through lwp_userret().
   1157      1.52        ad  */
   1158      1.52        ad void
   1159      1.52        ad lwp_need_userret(struct lwp *l)
   1160      1.52        ad {
   1161      1.52        ad 	LOCK_ASSERT(lwp_locked(l, NULL));
   1162      1.52        ad 
   1163      1.52        ad 	/*
   1164      1.52        ad 	 * Since the tests in lwp_userret() are done unlocked, make sure
   1165      1.52        ad 	 * that the condition will be seen before forcing the LWP to enter
   1166      1.52        ad 	 * kernel mode.
   1167      1.52        ad 	 */
   1168      1.52        ad 	mb_write();
   1169      1.52        ad 
   1170      1.52        ad 	if (l->l_priority > PUSER)
   1171      1.52        ad 		lwp_changepri(l, PUSER);
   1172      1.52        ad 	cpu_signotify(l);
   1173      1.52        ad }
   1174      1.52        ad 
   1175      1.52        ad /*
   1176      1.52        ad  * Add one reference to an LWP.  This will prevent the LWP from
   1177      1.52        ad  * exiting, thus keep the lwp structure and PCB around to inspect.
   1178      1.52        ad  */
   1179      1.52        ad void
   1180      1.52        ad lwp_addref(struct lwp *l)
   1181      1.52        ad {
   1182      1.52        ad 
   1183      1.52        ad 	LOCK_ASSERT(mutex_owned(&l->l_proc->p_smutex));
   1184      1.52        ad 	KASSERT(l->l_stat != LSZOMB);
   1185      1.52        ad 	KASSERT(l->l_refcnt != 0);
   1186      1.52        ad 
   1187      1.52        ad 	l->l_refcnt++;
   1188      1.52        ad }
   1189      1.52        ad 
   1190      1.52        ad /*
   1191      1.52        ad  * Remove one reference to an LWP.  If this is the last reference,
   1192      1.52        ad  * then we must finalize the LWP's death.
   1193      1.52        ad  */
   1194      1.52        ad void
   1195      1.52        ad lwp_delref(struct lwp *l)
   1196      1.52        ad {
   1197      1.52        ad 	struct proc *p = l->l_proc;
   1198      1.52        ad 
   1199      1.52        ad 	mutex_enter(&p->p_smutex);
   1200      1.52        ad 	if (--l->l_refcnt == 0)
   1201      1.52        ad 		cv_broadcast(&p->p_refcv);
   1202      1.52        ad 	mutex_exit(&p->p_smutex);
   1203      1.52        ad }
   1204      1.52        ad 
   1205      1.52        ad /*
   1206      1.52        ad  * Drain all references to the current LWP.
   1207      1.52        ad  */
   1208      1.52        ad void
   1209      1.52        ad lwp_drainrefs(struct lwp *l)
   1210      1.52        ad {
   1211      1.52        ad 	struct proc *p = l->l_proc;
   1212      1.52        ad 
   1213      1.52        ad 	LOCK_ASSERT(mutex_owned(&p->p_smutex));
   1214      1.52        ad 	KASSERT(l->l_refcnt != 0);
   1215      1.52        ad 
   1216      1.52        ad 	l->l_refcnt--;
   1217      1.52        ad 	while (l->l_refcnt != 0)
   1218      1.52        ad 		cv_wait(&p->p_refcv, &p->p_smutex);
   1219      1.37        ad }
   1220      1.41   thorpej 
   1221      1.41   thorpej /*
   1222      1.41   thorpej  * lwp_specific_key_create --
   1223      1.41   thorpej  *	Create a key for subsystem lwp-specific data.
   1224      1.41   thorpej  */
   1225      1.41   thorpej int
   1226      1.41   thorpej lwp_specific_key_create(specificdata_key_t *keyp, specificdata_dtor_t dtor)
   1227      1.41   thorpej {
   1228      1.41   thorpej 
   1229      1.45   thorpej 	return (specificdata_key_create(lwp_specificdata_domain, keyp, dtor));
   1230      1.41   thorpej }
   1231      1.41   thorpej 
   1232      1.41   thorpej /*
   1233      1.41   thorpej  * lwp_specific_key_delete --
   1234      1.41   thorpej  *	Delete a key for subsystem lwp-specific data.
   1235      1.41   thorpej  */
   1236      1.41   thorpej void
   1237      1.41   thorpej lwp_specific_key_delete(specificdata_key_t key)
   1238      1.41   thorpej {
   1239      1.41   thorpej 
   1240      1.41   thorpej 	specificdata_key_delete(lwp_specificdata_domain, key);
   1241      1.41   thorpej }
   1242      1.41   thorpej 
   1243      1.45   thorpej /*
   1244      1.45   thorpej  * lwp_initspecific --
   1245      1.45   thorpej  *	Initialize an LWP's specificdata container.
   1246      1.45   thorpej  */
   1247      1.42  christos void
   1248      1.42  christos lwp_initspecific(struct lwp *l)
   1249      1.42  christos {
   1250      1.42  christos 	int error;
   1251      1.45   thorpej 
   1252      1.42  christos 	error = specificdata_init(lwp_specificdata_domain, &l->l_specdataref);
   1253      1.42  christos 	KASSERT(error == 0);
   1254      1.42  christos }
   1255      1.42  christos 
   1256      1.41   thorpej /*
   1257      1.45   thorpej  * lwp_finispecific --
   1258      1.45   thorpej  *	Finalize an LWP's specificdata container.
   1259      1.45   thorpej  */
   1260      1.45   thorpej void
   1261      1.45   thorpej lwp_finispecific(struct lwp *l)
   1262      1.45   thorpej {
   1263      1.45   thorpej 
   1264      1.45   thorpej 	specificdata_fini(lwp_specificdata_domain, &l->l_specdataref);
   1265      1.45   thorpej }
   1266      1.45   thorpej 
   1267      1.45   thorpej /*
   1268      1.41   thorpej  * lwp_getspecific --
   1269      1.41   thorpej  *	Return lwp-specific data corresponding to the specified key.
   1270      1.41   thorpej  *
   1271      1.41   thorpej  *	Note: LWP specific data is NOT INTERLOCKED.  An LWP should access
   1272      1.41   thorpej  *	only its OWN SPECIFIC DATA.  If it is necessary to access another
   1273      1.41   thorpej  *	LWP's specifc data, care must be taken to ensure that doing so
   1274      1.41   thorpej  *	would not cause internal data structure inconsistency (i.e. caller
   1275      1.41   thorpej  *	can guarantee that the target LWP is not inside an lwp_getspecific()
   1276      1.41   thorpej  *	or lwp_setspecific() call).
   1277      1.41   thorpej  */
   1278      1.41   thorpej void *
   1279      1.44   thorpej lwp_getspecific(specificdata_key_t key)
   1280      1.41   thorpej {
   1281      1.41   thorpej 
   1282      1.41   thorpej 	return (specificdata_getspecific_unlocked(lwp_specificdata_domain,
   1283      1.44   thorpej 						  &curlwp->l_specdataref, key));
   1284      1.41   thorpej }
   1285      1.41   thorpej 
   1286      1.47   hannken void *
   1287      1.47   hannken _lwp_getspecific_by_lwp(struct lwp *l, specificdata_key_t key)
   1288      1.47   hannken {
   1289      1.47   hannken 
   1290      1.47   hannken 	return (specificdata_getspecific_unlocked(lwp_specificdata_domain,
   1291      1.47   hannken 						  &l->l_specdataref, key));
   1292      1.47   hannken }
   1293      1.47   hannken 
   1294      1.41   thorpej /*
   1295      1.41   thorpej  * lwp_setspecific --
   1296      1.41   thorpej  *	Set lwp-specific data corresponding to the specified key.
   1297      1.41   thorpej  */
   1298      1.41   thorpej void
   1299      1.45   thorpej lwp_setspecific(specificdata_key_t key, void *data)
   1300      1.41   thorpej {
   1301      1.41   thorpej 
   1302      1.41   thorpej 	specificdata_setspecific(lwp_specificdata_domain,
   1303      1.44   thorpej 				 &curlwp->l_specdataref, key, data);
   1304      1.41   thorpej }
   1305