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kern_proc.c revision 1.165
      1  1.165     pooka /*	$NetBSD: kern_proc.c,v 1.165 2010/06/10 19:06:26 pooka Exp $	*/
      2   1.33   thorpej 
      3   1.33   thorpej /*-
      4  1.131        ad  * Copyright (c) 1999, 2006, 2007, 2008 The NetBSD Foundation, Inc.
      5   1.33   thorpej  * All rights reserved.
      6   1.33   thorpej  *
      7   1.33   thorpej  * This code is derived from software contributed to The NetBSD Foundation
      8   1.33   thorpej  * by Jason R. Thorpe of the Numerical Aerospace Simulation Facility,
      9  1.100        ad  * NASA Ames Research Center, and by Andrew Doran.
     10   1.33   thorpej  *
     11   1.33   thorpej  * Redistribution and use in source and binary forms, with or without
     12   1.33   thorpej  * modification, are permitted provided that the following conditions
     13   1.33   thorpej  * are met:
     14   1.33   thorpej  * 1. Redistributions of source code must retain the above copyright
     15   1.33   thorpej  *    notice, this list of conditions and the following disclaimer.
     16   1.33   thorpej  * 2. Redistributions in binary form must reproduce the above copyright
     17   1.33   thorpej  *    notice, this list of conditions and the following disclaimer in the
     18   1.33   thorpej  *    documentation and/or other materials provided with the distribution.
     19   1.33   thorpej  *
     20   1.33   thorpej  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     21   1.33   thorpej  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     22   1.33   thorpej  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     23   1.33   thorpej  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     24   1.33   thorpej  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     25   1.33   thorpej  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     26   1.33   thorpej  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     27   1.33   thorpej  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     28   1.33   thorpej  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     29   1.33   thorpej  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     30   1.33   thorpej  * POSSIBILITY OF SUCH DAMAGE.
     31   1.33   thorpej  */
     32    1.9       cgd 
     33    1.1       cgd /*
     34    1.7       cgd  * Copyright (c) 1982, 1986, 1989, 1991, 1993
     35    1.7       cgd  *	The Regents of the University of California.  All rights reserved.
     36    1.1       cgd  *
     37    1.1       cgd  * Redistribution and use in source and binary forms, with or without
     38    1.1       cgd  * modification, are permitted provided that the following conditions
     39    1.1       cgd  * are met:
     40    1.1       cgd  * 1. Redistributions of source code must retain the above copyright
     41    1.1       cgd  *    notice, this list of conditions and the following disclaimer.
     42    1.1       cgd  * 2. Redistributions in binary form must reproduce the above copyright
     43    1.1       cgd  *    notice, this list of conditions and the following disclaimer in the
     44    1.1       cgd  *    documentation and/or other materials provided with the distribution.
     45   1.65       agc  * 3. Neither the name of the University nor the names of its contributors
     46    1.1       cgd  *    may be used to endorse or promote products derived from this software
     47    1.1       cgd  *    without specific prior written permission.
     48    1.1       cgd  *
     49    1.1       cgd  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     50    1.1       cgd  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     51    1.1       cgd  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     52    1.1       cgd  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     53    1.1       cgd  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     54    1.1       cgd  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     55    1.1       cgd  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     56    1.1       cgd  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     57    1.1       cgd  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     58    1.1       cgd  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     59    1.1       cgd  * SUCH DAMAGE.
     60    1.1       cgd  *
     61   1.23      fvdl  *	@(#)kern_proc.c	8.7 (Berkeley) 2/14/95
     62    1.1       cgd  */
     63   1.45     lukem 
     64   1.45     lukem #include <sys/cdefs.h>
     65  1.165     pooka __KERNEL_RCSID(0, "$NetBSD: kern_proc.c,v 1.165 2010/06/10 19:06:26 pooka Exp $");
     66   1.48      yamt 
     67  1.165     pooka #ifdef _KERNEL_OPT
     68   1.48      yamt #include "opt_kstack.h"
     69   1.88      onoe #include "opt_maxuprc.h"
     70  1.161    darran #include "opt_dtrace.h"
     71  1.165     pooka #endif
     72    1.1       cgd 
     73    1.5   mycroft #include <sys/param.h>
     74    1.5   mycroft #include <sys/systm.h>
     75    1.5   mycroft #include <sys/kernel.h>
     76    1.5   mycroft #include <sys/proc.h>
     77   1.28   thorpej #include <sys/resourcevar.h>
     78    1.5   mycroft #include <sys/buf.h>
     79    1.5   mycroft #include <sys/acct.h>
     80    1.5   mycroft #include <sys/wait.h>
     81    1.5   mycroft #include <sys/file.h>
     82    1.8   mycroft #include <ufs/ufs/quota.h>
     83    1.5   mycroft #include <sys/uio.h>
     84   1.24   thorpej #include <sys/pool.h>
     85  1.147     rmind #include <sys/pset.h>
     86    1.5   mycroft #include <sys/mbuf.h>
     87    1.5   mycroft #include <sys/ioctl.h>
     88    1.5   mycroft #include <sys/tty.h>
     89   1.11       cgd #include <sys/signalvar.h>
     90   1.51  gmcgarry #include <sys/ras.h>
     91  1.144  wrstuden #include <sys/sa.h>
     92  1.144  wrstuden #include <sys/savar.h>
     93   1.81  junyoung #include <sys/filedesc.h>
     94  1.103       dsl #include "sys/syscall_stats.h"
     95   1.89      elad #include <sys/kauth.h>
     96  1.100        ad #include <sys/sleepq.h>
     97  1.126        ad #include <sys/atomic.h>
     98  1.131        ad #include <sys/kmem.h>
     99  1.160    darran #include <sys/dtrace_bsd.h>
    100  1.160    darran 
    101   1.81  junyoung #include <uvm/uvm.h>
    102   1.79      yamt #include <uvm/uvm_extern.h>
    103    1.5   mycroft 
    104    1.7       cgd /*
    105   1.10   mycroft  * Other process lists
    106    1.7       cgd  */
    107   1.31   thorpej 
    108   1.10   mycroft struct proclist allproc;
    109   1.32   thorpej struct proclist zombproc;	/* resources have been freed */
    110   1.32   thorpej 
    111  1.136        ad kmutex_t	*proc_lock;
    112   1.33   thorpej 
    113   1.33   thorpej /*
    114   1.72  junyoung  * pid to proc lookup is done by indexing the pid_table array.
    115   1.61       dsl  * Since pid numbers are only allocated when an empty slot
    116   1.61       dsl  * has been found, there is no need to search any lists ever.
    117   1.61       dsl  * (an orphaned pgrp will lock the slot, a session will lock
    118   1.61       dsl  * the pgrp with the same number.)
    119   1.61       dsl  * If the table is too small it is reallocated with twice the
    120   1.61       dsl  * previous size and the entries 'unzipped' into the two halves.
    121   1.61       dsl  * A linked list of free entries is passed through the pt_proc
    122   1.61       dsl  * field of 'free' items - set odd to be an invalid ptr.
    123   1.61       dsl  */
    124   1.61       dsl 
    125   1.61       dsl struct pid_table {
    126   1.61       dsl 	struct proc	*pt_proc;
    127   1.61       dsl 	struct pgrp	*pt_pgrp;
    128   1.72  junyoung };
    129   1.61       dsl #if 1	/* strongly typed cast - should be a noop */
    130   1.84     perry static inline uint p2u(struct proc *p) { return (uint)(uintptr_t)p; }
    131   1.61       dsl #else
    132   1.61       dsl #define p2u(p) ((uint)p)
    133   1.72  junyoung #endif
    134   1.61       dsl #define P_VALID(p) (!(p2u(p) & 1))
    135   1.61       dsl #define P_NEXT(p) (p2u(p) >> 1)
    136   1.61       dsl #define P_FREE(pid) ((struct proc *)(uintptr_t)((pid) << 1 | 1))
    137   1.61       dsl 
    138   1.61       dsl #define INITIAL_PID_TABLE_SIZE	(1 << 5)
    139   1.61       dsl static struct pid_table *pid_table;
    140   1.61       dsl static uint pid_tbl_mask = INITIAL_PID_TABLE_SIZE - 1;
    141   1.61       dsl static uint pid_alloc_lim;	/* max we allocate before growing table */
    142   1.61       dsl static uint pid_alloc_cnt;	/* number of allocated pids */
    143   1.61       dsl 
    144   1.61       dsl /* links through free slots - never empty! */
    145   1.61       dsl static uint next_free_pt, last_free_pt;
    146   1.61       dsl static pid_t pid_max = PID_MAX;		/* largest value we allocate */
    147   1.31   thorpej 
    148   1.81  junyoung /* Components of the first process -- never freed. */
    149  1.123      matt 
    150  1.145        ad extern struct emul emul_netbsd;	/* defined in kern_exec.c */
    151  1.123      matt 
    152  1.123      matt struct session session0 = {
    153  1.123      matt 	.s_count = 1,
    154  1.123      matt 	.s_sid = 0,
    155  1.123      matt };
    156  1.123      matt struct pgrp pgrp0 = {
    157  1.123      matt 	.pg_members = LIST_HEAD_INITIALIZER(&pgrp0.pg_members),
    158  1.123      matt 	.pg_session = &session0,
    159  1.123      matt };
    160  1.132        ad filedesc_t filedesc0;
    161  1.123      matt struct cwdinfo cwdi0 = {
    162  1.123      matt 	.cwdi_cmask = CMASK,		/* see cmask below */
    163  1.123      matt 	.cwdi_refcnt = 1,
    164  1.123      matt };
    165  1.143  gmcgarry struct plimit limit0;
    166   1.81  junyoung struct pstats pstat0;
    167   1.81  junyoung struct vmspace vmspace0;
    168   1.81  junyoung struct sigacts sigacts0;
    169  1.100        ad struct turnstile turnstile0;
    170  1.123      matt struct proc proc0 = {
    171  1.123      matt 	.p_lwps = LIST_HEAD_INITIALIZER(&proc0.p_lwps),
    172  1.123      matt 	.p_sigwaiters = LIST_HEAD_INITIALIZER(&proc0.p_sigwaiters),
    173  1.123      matt 	.p_nlwps = 1,
    174  1.123      matt 	.p_nrlwps = 1,
    175  1.123      matt 	.p_nlwpid = 1,		/* must match lwp0.l_lid */
    176  1.123      matt 	.p_pgrp = &pgrp0,
    177  1.123      matt 	.p_comm = "system",
    178  1.123      matt 	/*
    179  1.123      matt 	 * Set P_NOCLDWAIT so that kernel threads are reparented to init(8)
    180  1.123      matt 	 * when they exit.  init(8) can easily wait them out for us.
    181  1.123      matt 	 */
    182  1.123      matt 	.p_flag = PK_SYSTEM | PK_NOCLDWAIT,
    183  1.123      matt 	.p_stat = SACTIVE,
    184  1.123      matt 	.p_nice = NZERO,
    185  1.123      matt 	.p_emul = &emul_netbsd,
    186  1.123      matt 	.p_cwdi = &cwdi0,
    187  1.123      matt 	.p_limit = &limit0,
    188  1.132        ad 	.p_fd = &filedesc0,
    189  1.123      matt 	.p_vmspace = &vmspace0,
    190  1.123      matt 	.p_stats = &pstat0,
    191  1.123      matt 	.p_sigacts = &sigacts0,
    192  1.123      matt };
    193  1.123      matt struct lwp lwp0 __aligned(MIN_LWP_ALIGNMENT) = {
    194  1.123      matt #ifdef LWP0_CPU_INFO
    195  1.123      matt 	.l_cpu = LWP0_CPU_INFO,
    196  1.123      matt #endif
    197  1.123      matt 	.l_proc = &proc0,
    198  1.123      matt 	.l_lid = 1,
    199  1.155     rmind 	.l_flag = LW_SYSTEM,
    200  1.123      matt 	.l_stat = LSONPROC,
    201  1.123      matt 	.l_ts = &turnstile0,
    202  1.123      matt 	.l_syncobj = &sched_syncobj,
    203  1.123      matt 	.l_refcnt = 1,
    204  1.123      matt 	.l_priority = PRI_USER + NPRI_USER - 1,
    205  1.123      matt 	.l_inheritedprio = -1,
    206  1.123      matt 	.l_class = SCHED_OTHER,
    207  1.147     rmind 	.l_psid = PS_NONE,
    208  1.123      matt 	.l_pi_lenders = SLIST_HEAD_INITIALIZER(&lwp0.l_pi_lenders),
    209  1.123      matt 	.l_name = __UNCONST("swapper"),
    210  1.152        ad 	.l_fd = &filedesc0,
    211  1.123      matt };
    212  1.123      matt kauth_cred_t cred0;
    213   1.81  junyoung 
    214   1.81  junyoung int nofile = NOFILE;
    215   1.81  junyoung int maxuprc = MAXUPRC;
    216   1.81  junyoung int cmask = CMASK;
    217   1.81  junyoung 
    218   1.57   thorpej MALLOC_DEFINE(M_EMULDATA, "emuldata", "Per-process emulation data");
    219   1.57   thorpej MALLOC_DEFINE(M_SUBPROC, "subproc", "Proc sub-structures");
    220   1.10   mycroft 
    221   1.31   thorpej /*
    222   1.31   thorpej  * The process list descriptors, used during pid allocation and
    223   1.31   thorpej  * by sysctl.  No locking on this data structure is needed since
    224   1.31   thorpej  * it is completely static.
    225   1.31   thorpej  */
    226   1.31   thorpej const struct proclist_desc proclists[] = {
    227   1.31   thorpej 	{ &allproc	},
    228   1.31   thorpej 	{ &zombproc	},
    229   1.31   thorpej 	{ NULL		},
    230   1.31   thorpej };
    231   1.31   thorpej 
    232  1.151     rmind static struct pgrp *	pg_remove(pid_t);
    233  1.151     rmind static void		pg_delete(pid_t);
    234  1.151     rmind static void		orphanpg(struct pgrp *);
    235   1.13  christos 
    236   1.95   thorpej static specificdata_domain_t proc_specificdata_domain;
    237   1.95   thorpej 
    238  1.128        ad static pool_cache_t proc_cache;
    239  1.128        ad 
    240  1.153      elad static kauth_listener_t proc_listener;
    241  1.153      elad 
    242  1.153      elad static int
    243  1.153      elad proc_listener_cb(kauth_cred_t cred, kauth_action_t action, void *cookie,
    244  1.153      elad     void *arg0, void *arg1, void *arg2, void *arg3)
    245  1.153      elad {
    246  1.153      elad 	struct proc *p;
    247  1.153      elad 	int result;
    248  1.153      elad 
    249  1.153      elad 	result = KAUTH_RESULT_DEFER;
    250  1.153      elad 	p = arg0;
    251  1.153      elad 
    252  1.153      elad 	switch (action) {
    253  1.153      elad 	case KAUTH_PROCESS_CANSEE: {
    254  1.153      elad 		enum kauth_process_req req;
    255  1.153      elad 
    256  1.153      elad 		req = (enum kauth_process_req)arg1;
    257  1.153      elad 
    258  1.153      elad 		switch (req) {
    259  1.153      elad 		case KAUTH_REQ_PROCESS_CANSEE_ARGS:
    260  1.153      elad 		case KAUTH_REQ_PROCESS_CANSEE_ENTRY:
    261  1.153      elad 		case KAUTH_REQ_PROCESS_CANSEE_OPENFILES:
    262  1.153      elad 			result = KAUTH_RESULT_ALLOW;
    263  1.153      elad 
    264  1.153      elad 			break;
    265  1.153      elad 
    266  1.153      elad 		case KAUTH_REQ_PROCESS_CANSEE_ENV:
    267  1.153      elad 			if (kauth_cred_getuid(cred) !=
    268  1.153      elad 			    kauth_cred_getuid(p->p_cred) ||
    269  1.153      elad 			    kauth_cred_getuid(cred) !=
    270  1.153      elad 			    kauth_cred_getsvuid(p->p_cred))
    271  1.153      elad 				break;
    272  1.153      elad 
    273  1.153      elad 			result = KAUTH_RESULT_ALLOW;
    274  1.153      elad 
    275  1.153      elad 			break;
    276  1.153      elad 
    277  1.153      elad 		default:
    278  1.153      elad 			break;
    279  1.153      elad 		}
    280  1.153      elad 
    281  1.153      elad 		break;
    282  1.153      elad 		}
    283  1.153      elad 
    284  1.153      elad 	case KAUTH_PROCESS_FORK: {
    285  1.153      elad 		int lnprocs = (int)(unsigned long)arg2;
    286  1.153      elad 
    287  1.153      elad 		/*
    288  1.153      elad 		 * Don't allow a nonprivileged user to use the last few
    289  1.153      elad 		 * processes. The variable lnprocs is the current number of
    290  1.153      elad 		 * processes, maxproc is the limit.
    291  1.153      elad 		 */
    292  1.153      elad 		if (__predict_false((lnprocs >= maxproc - 5)))
    293  1.153      elad 			break;
    294  1.153      elad 
    295  1.153      elad 		result = KAUTH_RESULT_ALLOW;
    296  1.153      elad 
    297  1.153      elad 		break;
    298  1.153      elad 		}
    299  1.153      elad 
    300  1.153      elad 	case KAUTH_PROCESS_CORENAME:
    301  1.153      elad 	case KAUTH_PROCESS_STOPFLAG:
    302  1.153      elad 		if (proc_uidmatch(cred, p->p_cred) == 0)
    303  1.153      elad 			result = KAUTH_RESULT_ALLOW;
    304  1.153      elad 
    305  1.153      elad 		break;
    306  1.153      elad 
    307  1.153      elad 	default:
    308  1.153      elad 		break;
    309  1.153      elad 	}
    310  1.153      elad 
    311  1.153      elad 	return result;
    312  1.153      elad }
    313  1.153      elad 
    314   1.10   mycroft /*
    315   1.10   mycroft  * Initialize global process hashing structures.
    316   1.10   mycroft  */
    317   1.11       cgd void
    318   1.59       dsl procinit(void)
    319    1.7       cgd {
    320   1.31   thorpej 	const struct proclist_desc *pd;
    321  1.150     rmind 	u_int i;
    322   1.61       dsl #define	LINK_EMPTY ((PID_MAX + INITIAL_PID_TABLE_SIZE) & ~(INITIAL_PID_TABLE_SIZE - 1))
    323   1.31   thorpej 
    324   1.31   thorpej 	for (pd = proclists; pd->pd_list != NULL; pd++)
    325   1.31   thorpej 		LIST_INIT(pd->pd_list);
    326    1.7       cgd 
    327  1.136        ad 	proc_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
    328  1.150     rmind 	pid_table = kmem_alloc(INITIAL_PID_TABLE_SIZE
    329  1.150     rmind 	    * sizeof(struct pid_table), KM_SLEEP);
    330   1.33   thorpej 
    331   1.61       dsl 	/* Set free list running through table...
    332   1.61       dsl 	   Preset 'use count' above PID_MAX so we allocate pid 1 next. */
    333   1.61       dsl 	for (i = 0; i <= pid_tbl_mask; i++) {
    334   1.61       dsl 		pid_table[i].pt_proc = P_FREE(LINK_EMPTY + i + 1);
    335   1.61       dsl 		pid_table[i].pt_pgrp = 0;
    336   1.61       dsl 	}
    337   1.61       dsl 	/* slot 0 is just grabbed */
    338   1.61       dsl 	next_free_pt = 1;
    339   1.61       dsl 	/* Need to fix last entry. */
    340   1.61       dsl 	last_free_pt = pid_tbl_mask;
    341   1.61       dsl 	pid_table[last_free_pt].pt_proc = P_FREE(LINK_EMPTY);
    342   1.61       dsl 	/* point at which we grow table - to avoid reusing pids too often */
    343   1.61       dsl 	pid_alloc_lim = pid_tbl_mask - 1;
    344   1.61       dsl #undef LINK_EMPTY
    345   1.61       dsl 
    346   1.95   thorpej 	proc_specificdata_domain = specificdata_domain_create();
    347   1.95   thorpej 	KASSERT(proc_specificdata_domain != NULL);
    348  1.128        ad 
    349  1.128        ad 	proc_cache = pool_cache_init(sizeof(struct proc), 0, 0, 0,
    350  1.128        ad 	    "procpl", NULL, IPL_NONE, NULL, NULL, NULL);
    351  1.153      elad 
    352  1.153      elad 	proc_listener = kauth_listen_scope(KAUTH_SCOPE_PROCESS,
    353  1.153      elad 	    proc_listener_cb, NULL);
    354    1.7       cgd }
    355    1.1       cgd 
    356    1.7       cgd /*
    357   1.81  junyoung  * Initialize process 0.
    358   1.81  junyoung  */
    359   1.81  junyoung void
    360   1.81  junyoung proc0_init(void)
    361   1.81  junyoung {
    362   1.81  junyoung 	struct proc *p;
    363   1.81  junyoung 	struct pgrp *pg;
    364   1.81  junyoung 	struct lwp *l;
    365   1.81  junyoung 	rlim_t lim;
    366  1.143  gmcgarry 	int i;
    367   1.81  junyoung 
    368   1.81  junyoung 	p = &proc0;
    369   1.81  junyoung 	pg = &pgrp0;
    370   1.81  junyoung 	l = &lwp0;
    371   1.81  junyoung 
    372  1.159     rmind 	KASSERT((void *)uvm_lwp_getuarea(l) != NULL);
    373  1.123      matt 	KASSERT(l->l_lid == p->p_nlwpid);
    374  1.123      matt 
    375  1.127        ad 	mutex_init(&p->p_stmutex, MUTEX_DEFAULT, IPL_HIGH);
    376  1.129        ad 	mutex_init(&p->p_auxlock, MUTEX_DEFAULT, IPL_NONE);
    377  1.137        ad 	p->p_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
    378  1.107        ad 
    379  1.122        ad 	rw_init(&p->p_reflock);
    380  1.100        ad 	cv_init(&p->p_waitcv, "wait");
    381  1.100        ad 	cv_init(&p->p_lwpcv, "lwpwait");
    382  1.100        ad 
    383   1.81  junyoung 	LIST_INSERT_HEAD(&p->p_lwps, l, l_sibling);
    384  1.100        ad 
    385   1.81  junyoung 	pid_table[0].pt_proc = p;
    386   1.81  junyoung 	LIST_INSERT_HEAD(&allproc, p, p_list);
    387   1.81  junyoung 	LIST_INSERT_HEAD(&alllwp, l, l_list);
    388   1.81  junyoung 
    389   1.81  junyoung 	pid_table[0].pt_pgrp = pg;
    390   1.81  junyoung 	LIST_INSERT_HEAD(&pg->pg_members, p, p_pglist);
    391   1.81  junyoung 
    392   1.81  junyoung #ifdef __HAVE_SYSCALL_INTERN
    393   1.81  junyoung 	(*p->p_emul->e_syscall_intern)(p);
    394   1.81  junyoung #endif
    395   1.81  junyoung 
    396  1.121        ad 	callout_init(&l->l_timeout_ch, CALLOUT_MPSAFE);
    397  1.115        ad 	callout_setfunc(&l->l_timeout_ch, sleepq_timeout, l);
    398  1.100        ad 	cv_init(&l->l_sigcv, "sigwait");
    399   1.81  junyoung 
    400   1.81  junyoung 	/* Create credentials. */
    401   1.89      elad 	cred0 = kauth_cred_alloc();
    402   1.89      elad 	p->p_cred = cred0;
    403  1.100        ad 	kauth_cred_hold(cred0);
    404  1.100        ad 	l->l_cred = cred0;
    405   1.81  junyoung 
    406   1.81  junyoung 	/* Create the CWD info. */
    407  1.113        ad 	rw_init(&cwdi0.cwdi_lock);
    408   1.81  junyoung 
    409   1.81  junyoung 	/* Create the limits structures. */
    410  1.116       dsl 	mutex_init(&limit0.pl_lock, MUTEX_DEFAULT, IPL_NONE);
    411  1.143  gmcgarry 	for (i = 0; i < __arraycount(limit0.pl_rlimit); i++)
    412  1.143  gmcgarry 		limit0.pl_rlimit[i].rlim_cur =
    413  1.143  gmcgarry 		    limit0.pl_rlimit[i].rlim_max = RLIM_INFINITY;
    414   1.81  junyoung 
    415   1.81  junyoung 	limit0.pl_rlimit[RLIMIT_NOFILE].rlim_max = maxfiles;
    416   1.81  junyoung 	limit0.pl_rlimit[RLIMIT_NOFILE].rlim_cur =
    417   1.81  junyoung 	    maxfiles < nofile ? maxfiles : nofile;
    418   1.81  junyoung 
    419   1.81  junyoung 	limit0.pl_rlimit[RLIMIT_NPROC].rlim_max = maxproc;
    420   1.81  junyoung 	limit0.pl_rlimit[RLIMIT_NPROC].rlim_cur =
    421   1.81  junyoung 	    maxproc < maxuprc ? maxproc : maxuprc;
    422   1.81  junyoung 
    423  1.163       jym 	lim = MIN(VM_MAXUSER_ADDRESS, ctob((rlim_t)uvmexp.free));
    424   1.81  junyoung 	limit0.pl_rlimit[RLIMIT_RSS].rlim_max = lim;
    425   1.81  junyoung 	limit0.pl_rlimit[RLIMIT_MEMLOCK].rlim_max = lim;
    426   1.81  junyoung 	limit0.pl_rlimit[RLIMIT_MEMLOCK].rlim_cur = lim / 3;
    427  1.143  gmcgarry 	limit0.pl_corename = defcorename;
    428  1.143  gmcgarry 	limit0.pl_refcnt = 1;
    429  1.143  gmcgarry 	limit0.pl_sv_limit = NULL;
    430   1.81  junyoung 
    431   1.81  junyoung 	/* Configure virtual memory system, set vm rlimits. */
    432   1.81  junyoung 	uvm_init_limits(p);
    433   1.81  junyoung 
    434   1.81  junyoung 	/* Initialize file descriptor table for proc0. */
    435  1.132        ad 	fd_init(&filedesc0);
    436   1.81  junyoung 
    437   1.81  junyoung 	/*
    438   1.81  junyoung 	 * Initialize proc0's vmspace, which uses the kernel pmap.
    439   1.81  junyoung 	 * All kernel processes (which never have user space mappings)
    440   1.81  junyoung 	 * share proc0's vmspace, and thus, the kernel pmap.
    441   1.81  junyoung 	 */
    442   1.81  junyoung 	uvmspace_init(&vmspace0, pmap_kernel(), round_page(VM_MIN_ADDRESS),
    443   1.81  junyoung 	    trunc_page(VM_MAX_ADDRESS));
    444   1.81  junyoung 
    445  1.127        ad 	/* Initialize signal state for proc0. XXX IPL_SCHED */
    446  1.127        ad 	mutex_init(&p->p_sigacts->sa_mutex, MUTEX_DEFAULT, IPL_SCHED);
    447   1.81  junyoung 	siginit(p);
    448   1.96  christos 
    449  1.164     rmind 	proc_initspecific(p);
    450  1.160    darran 	kdtrace_proc_ctor(NULL, p);
    451   1.96  christos 	lwp_initspecific(l);
    452  1.103       dsl 
    453  1.103       dsl 	SYSCALL_TIME_LWP_INIT(l);
    454   1.81  junyoung }
    455   1.81  junyoung 
    456   1.81  junyoung /*
    457  1.151     rmind  * Session reference counting.
    458  1.151     rmind  */
    459  1.151     rmind 
    460  1.151     rmind void
    461  1.151     rmind proc_sesshold(struct session *ss)
    462  1.151     rmind {
    463  1.151     rmind 
    464  1.151     rmind 	KASSERT(mutex_owned(proc_lock));
    465  1.151     rmind 	ss->s_count++;
    466  1.151     rmind }
    467  1.151     rmind 
    468  1.151     rmind void
    469  1.151     rmind proc_sessrele(struct session *ss)
    470  1.151     rmind {
    471  1.151     rmind 
    472  1.151     rmind 	KASSERT(mutex_owned(proc_lock));
    473  1.151     rmind 	/*
    474  1.151     rmind 	 * We keep the pgrp with the same id as the session in order to
    475  1.151     rmind 	 * stop a process being given the same pid.  Since the pgrp holds
    476  1.151     rmind 	 * a reference to the session, it must be a 'zombie' pgrp by now.
    477  1.151     rmind 	 */
    478  1.151     rmind 	if (--ss->s_count == 0) {
    479  1.151     rmind 		struct pgrp *pg;
    480  1.151     rmind 
    481  1.151     rmind 		pg = pg_remove(ss->s_sid);
    482  1.151     rmind 		mutex_exit(proc_lock);
    483  1.151     rmind 
    484  1.151     rmind 		kmem_free(pg, sizeof(struct pgrp));
    485  1.151     rmind 		kmem_free(ss, sizeof(struct session));
    486  1.151     rmind 	} else {
    487  1.151     rmind 		mutex_exit(proc_lock);
    488  1.151     rmind 	}
    489  1.151     rmind }
    490  1.151     rmind 
    491  1.151     rmind /*
    492   1.74  junyoung  * Check that the specified process group is in the session of the
    493   1.60       dsl  * specified process.
    494   1.60       dsl  * Treats -ve ids as process ids.
    495   1.60       dsl  * Used to validate TIOCSPGRP requests.
    496   1.60       dsl  */
    497   1.60       dsl int
    498   1.60       dsl pgid_in_session(struct proc *p, pid_t pg_id)
    499   1.60       dsl {
    500   1.60       dsl 	struct pgrp *pgrp;
    501  1.101       dsl 	struct session *session;
    502  1.107        ad 	int error;
    503  1.101       dsl 
    504  1.136        ad 	mutex_enter(proc_lock);
    505   1.60       dsl 	if (pg_id < 0) {
    506  1.101       dsl 		struct proc *p1 = p_find(-pg_id, PFIND_LOCKED | PFIND_UNLOCK_FAIL);
    507   1.64       dsl 		if (p1 == NULL)
    508   1.64       dsl 			return EINVAL;
    509   1.60       dsl 		pgrp = p1->p_pgrp;
    510   1.60       dsl 	} else {
    511  1.101       dsl 		pgrp = pg_find(pg_id, PFIND_LOCKED | PFIND_UNLOCK_FAIL);
    512   1.60       dsl 		if (pgrp == NULL)
    513   1.64       dsl 			return EINVAL;
    514   1.60       dsl 	}
    515  1.101       dsl 	session = pgrp->pg_session;
    516  1.101       dsl 	if (session != p->p_pgrp->pg_session)
    517  1.107        ad 		error = EPERM;
    518  1.107        ad 	else
    519  1.107        ad 		error = 0;
    520  1.136        ad 	mutex_exit(proc_lock);
    521  1.107        ad 
    522  1.107        ad 	return error;
    523    1.7       cgd }
    524    1.4    andrew 
    525    1.1       cgd /*
    526  1.148     rmind  * p_inferior: is p an inferior of q?
    527    1.1       cgd  */
    528  1.148     rmind static inline bool
    529  1.148     rmind p_inferior(struct proc *p, struct proc *q)
    530    1.1       cgd {
    531    1.1       cgd 
    532  1.148     rmind 	KASSERT(mutex_owned(proc_lock));
    533  1.148     rmind 
    534   1.41  sommerfe 	for (; p != q; p = p->p_pptr)
    535    1.1       cgd 		if (p->p_pid == 0)
    536  1.148     rmind 			return false;
    537  1.148     rmind 	return true;
    538    1.1       cgd }
    539    1.1       cgd 
    540    1.1       cgd /*
    541    1.1       cgd  * Locate a process by number
    542    1.1       cgd  */
    543    1.1       cgd struct proc *
    544   1.68       dsl p_find(pid_t pid, uint flags)
    545    1.1       cgd {
    546   1.33   thorpej 	struct proc *p;
    547   1.68       dsl 	char stat;
    548    1.1       cgd 
    549   1.68       dsl 	if (!(flags & PFIND_LOCKED))
    550  1.136        ad 		mutex_enter(proc_lock);
    551  1.100        ad 
    552   1.61       dsl 	p = pid_table[pid & pid_tbl_mask].pt_proc;
    553  1.100        ad 
    554   1.61       dsl 	/* Only allow live processes to be found by pid. */
    555  1.100        ad 	/* XXXSMP p_stat */
    556  1.100        ad 	if (P_VALID(p) && p->p_pid == pid && ((stat = p->p_stat) == SACTIVE ||
    557  1.100        ad 	    stat == SSTOP || ((flags & PFIND_ZOMBIE) &&
    558  1.100        ad 	    (stat == SZOMB || stat == SDEAD || stat == SDYING)))) {
    559   1.68       dsl 		if (flags & PFIND_UNLOCK_OK)
    560  1.136        ad 			 mutex_exit(proc_lock);
    561   1.68       dsl 		return p;
    562   1.68       dsl 	}
    563   1.68       dsl 	if (flags & PFIND_UNLOCK_FAIL)
    564  1.136        ad 		mutex_exit(proc_lock);
    565   1.68       dsl 	return NULL;
    566    1.1       cgd }
    567    1.1       cgd 
    568   1.61       dsl 
    569    1.1       cgd /*
    570    1.1       cgd  * Locate a process group by number
    571    1.1       cgd  */
    572    1.1       cgd struct pgrp *
    573   1.68       dsl pg_find(pid_t pgid, uint flags)
    574    1.1       cgd {
    575   1.68       dsl 	struct pgrp *pg;
    576    1.1       cgd 
    577   1.68       dsl 	if (!(flags & PFIND_LOCKED))
    578  1.136        ad 		mutex_enter(proc_lock);
    579   1.68       dsl 	pg = pid_table[pgid & pid_tbl_mask].pt_pgrp;
    580   1.61       dsl 	/*
    581   1.61       dsl 	 * Can't look up a pgrp that only exists because the session
    582   1.61       dsl 	 * hasn't died yet (traditional)
    583   1.61       dsl 	 */
    584   1.68       dsl 	if (pg == NULL || pg->pg_id != pgid || LIST_EMPTY(&pg->pg_members)) {
    585   1.68       dsl 		if (flags & PFIND_UNLOCK_FAIL)
    586  1.136        ad 			 mutex_exit(proc_lock);
    587   1.68       dsl 		return NULL;
    588   1.68       dsl 	}
    589   1.68       dsl 
    590   1.68       dsl 	if (flags & PFIND_UNLOCK_OK)
    591  1.136        ad 		mutex_exit(proc_lock);
    592   1.68       dsl 	return pg;
    593    1.1       cgd }
    594    1.1       cgd 
    595   1.61       dsl static void
    596   1.61       dsl expand_pid_table(void)
    597    1.1       cgd {
    598  1.150     rmind 	size_t pt_size, tsz;
    599   1.61       dsl 	struct pid_table *n_pt, *new_pt;
    600   1.61       dsl 	struct proc *proc;
    601   1.61       dsl 	struct pgrp *pgrp;
    602   1.61       dsl 	pid_t pid;
    603  1.150     rmind 	u_int i;
    604    1.1       cgd 
    605  1.150     rmind 	pt_size = pid_tbl_mask + 1;
    606  1.150     rmind 	tsz = pt_size * 2 * sizeof(struct pid_table);
    607  1.150     rmind 	new_pt = kmem_alloc(tsz, KM_SLEEP);
    608   1.61       dsl 
    609  1.136        ad 	mutex_enter(proc_lock);
    610   1.61       dsl 	if (pt_size != pid_tbl_mask + 1) {
    611   1.61       dsl 		/* Another process beat us to it... */
    612  1.136        ad 		mutex_exit(proc_lock);
    613  1.150     rmind 		kmem_free(new_pt, tsz);
    614   1.61       dsl 		return;
    615   1.61       dsl 	}
    616   1.72  junyoung 
    617   1.61       dsl 	/*
    618   1.61       dsl 	 * Copy entries from old table into new one.
    619   1.61       dsl 	 * If 'pid' is 'odd' we need to place in the upper half,
    620   1.61       dsl 	 * even pid's to the lower half.
    621   1.61       dsl 	 * Free items stay in the low half so we don't have to
    622   1.61       dsl 	 * fixup the reference to them.
    623   1.61       dsl 	 * We stuff free items on the front of the freelist
    624   1.61       dsl 	 * because we can't write to unmodified entries.
    625   1.74  junyoung 	 * Processing the table backwards maintains a semblance
    626   1.61       dsl 	 * of issueing pid numbers that increase with time.
    627   1.61       dsl 	 */
    628   1.61       dsl 	i = pt_size - 1;
    629   1.61       dsl 	n_pt = new_pt + i;
    630   1.61       dsl 	for (; ; i--, n_pt--) {
    631   1.61       dsl 		proc = pid_table[i].pt_proc;
    632   1.61       dsl 		pgrp = pid_table[i].pt_pgrp;
    633   1.61       dsl 		if (!P_VALID(proc)) {
    634   1.61       dsl 			/* Up 'use count' so that link is valid */
    635   1.61       dsl 			pid = (P_NEXT(proc) + pt_size) & ~pt_size;
    636   1.61       dsl 			proc = P_FREE(pid);
    637   1.61       dsl 			if (pgrp)
    638   1.61       dsl 				pid = pgrp->pg_id;
    639   1.61       dsl 		} else
    640   1.61       dsl 			pid = proc->p_pid;
    641   1.72  junyoung 
    642   1.61       dsl 		/* Save entry in appropriate half of table */
    643   1.61       dsl 		n_pt[pid & pt_size].pt_proc = proc;
    644   1.61       dsl 		n_pt[pid & pt_size].pt_pgrp = pgrp;
    645   1.61       dsl 
    646   1.61       dsl 		/* Put other piece on start of free list */
    647   1.61       dsl 		pid = (pid ^ pt_size) & ~pid_tbl_mask;
    648   1.61       dsl 		n_pt[pid & pt_size].pt_proc =
    649   1.61       dsl 				    P_FREE((pid & ~pt_size) | next_free_pt);
    650   1.61       dsl 		n_pt[pid & pt_size].pt_pgrp = 0;
    651   1.61       dsl 		next_free_pt = i | (pid & pt_size);
    652   1.61       dsl 		if (i == 0)
    653   1.61       dsl 			break;
    654   1.61       dsl 	}
    655   1.61       dsl 
    656  1.150     rmind 	/* Save old table size and switch tables */
    657  1.150     rmind 	tsz = pt_size * sizeof(struct pid_table);
    658   1.61       dsl 	n_pt = pid_table;
    659   1.61       dsl 	pid_table = new_pt;
    660   1.61       dsl 	pid_tbl_mask = pt_size * 2 - 1;
    661   1.61       dsl 
    662   1.61       dsl 	/*
    663   1.61       dsl 	 * pid_max starts as PID_MAX (= 30000), once we have 16384
    664   1.61       dsl 	 * allocated pids we need it to be larger!
    665   1.61       dsl 	 */
    666   1.61       dsl 	if (pid_tbl_mask > PID_MAX) {
    667   1.61       dsl 		pid_max = pid_tbl_mask * 2 + 1;
    668   1.61       dsl 		pid_alloc_lim |= pid_alloc_lim << 1;
    669   1.61       dsl 	} else
    670   1.61       dsl 		pid_alloc_lim <<= 1;	/* doubles number of free slots... */
    671   1.61       dsl 
    672  1.136        ad 	mutex_exit(proc_lock);
    673  1.150     rmind 	kmem_free(n_pt, tsz);
    674   1.61       dsl }
    675   1.61       dsl 
    676   1.61       dsl struct proc *
    677   1.61       dsl proc_alloc(void)
    678   1.61       dsl {
    679   1.61       dsl 	struct proc *p;
    680  1.100        ad 	int nxt;
    681   1.61       dsl 	pid_t pid;
    682   1.61       dsl 	struct pid_table *pt;
    683   1.61       dsl 
    684  1.128        ad 	p = pool_cache_get(proc_cache, PR_WAITOK);
    685   1.61       dsl 	p->p_stat = SIDL;			/* protect against others */
    686   1.61       dsl 
    687   1.96  christos 	proc_initspecific(p);
    688  1.164     rmind 	kdtrace_proc_ctor(NULL, p);
    689   1.61       dsl 
    690   1.61       dsl 	for (;;expand_pid_table()) {
    691   1.61       dsl 		if (__predict_false(pid_alloc_cnt >= pid_alloc_lim))
    692   1.61       dsl 			/* ensure pids cycle through 2000+ values */
    693   1.61       dsl 			continue;
    694  1.136        ad 		mutex_enter(proc_lock);
    695   1.61       dsl 		pt = &pid_table[next_free_pt];
    696    1.1       cgd #ifdef DIAGNOSTIC
    697   1.63  christos 		if (__predict_false(P_VALID(pt->pt_proc) || pt->pt_pgrp))
    698   1.61       dsl 			panic("proc_alloc: slot busy");
    699    1.1       cgd #endif
    700   1.61       dsl 		nxt = P_NEXT(pt->pt_proc);
    701   1.61       dsl 		if (nxt & pid_tbl_mask)
    702   1.61       dsl 			break;
    703   1.61       dsl 		/* Table full - expand (NB last entry not used....) */
    704  1.136        ad 		mutex_exit(proc_lock);
    705   1.61       dsl 	}
    706   1.61       dsl 
    707   1.61       dsl 	/* pid is 'saved use count' + 'size' + entry */
    708   1.61       dsl 	pid = (nxt & ~pid_tbl_mask) + pid_tbl_mask + 1 + next_free_pt;
    709   1.61       dsl 	if ((uint)pid > (uint)pid_max)
    710   1.61       dsl 		pid &= pid_tbl_mask;
    711   1.61       dsl 	p->p_pid = pid;
    712   1.61       dsl 	next_free_pt = nxt & pid_tbl_mask;
    713   1.61       dsl 
    714   1.61       dsl 	/* Grab table slot */
    715   1.61       dsl 	pt->pt_proc = p;
    716   1.61       dsl 	pid_alloc_cnt++;
    717  1.136        ad 	mutex_exit(proc_lock);
    718   1.61       dsl 
    719   1.61       dsl 	return p;
    720   1.61       dsl }
    721   1.61       dsl 
    722   1.61       dsl /*
    723  1.118        ad  * Free a process id - called from proc_free (in kern_exit.c)
    724  1.100        ad  *
    725  1.136        ad  * Called with the proc_lock held.
    726   1.61       dsl  */
    727   1.61       dsl void
    728  1.118        ad proc_free_pid(struct proc *p)
    729   1.61       dsl {
    730   1.61       dsl 	pid_t pid = p->p_pid;
    731   1.61       dsl 	struct pid_table *pt;
    732   1.61       dsl 
    733  1.136        ad 	KASSERT(mutex_owned(proc_lock));
    734   1.61       dsl 
    735   1.61       dsl 	pt = &pid_table[pid & pid_tbl_mask];
    736    1.1       cgd #ifdef DIAGNOSTIC
    737   1.63  christos 	if (__predict_false(pt->pt_proc != p))
    738   1.61       dsl 		panic("proc_free: pid_table mismatch, pid %x, proc %p",
    739   1.61       dsl 			pid, p);
    740    1.1       cgd #endif
    741   1.61       dsl 	/* save pid use count in slot */
    742   1.61       dsl 	pt->pt_proc = P_FREE(pid & ~pid_tbl_mask);
    743   1.61       dsl 
    744   1.61       dsl 	if (pt->pt_pgrp == NULL) {
    745   1.61       dsl 		/* link last freed entry onto ours */
    746   1.61       dsl 		pid &= pid_tbl_mask;
    747   1.61       dsl 		pt = &pid_table[last_free_pt];
    748   1.61       dsl 		pt->pt_proc = P_FREE(P_NEXT(pt->pt_proc) | pid);
    749   1.61       dsl 		last_free_pt = pid;
    750   1.61       dsl 		pid_alloc_cnt--;
    751   1.61       dsl 	}
    752   1.61       dsl 
    753  1.126        ad 	atomic_dec_uint(&nprocs);
    754   1.61       dsl }
    755   1.61       dsl 
    756  1.128        ad void
    757  1.128        ad proc_free_mem(struct proc *p)
    758  1.128        ad {
    759  1.128        ad 
    760  1.160    darran 	kdtrace_proc_dtor(NULL, p);
    761  1.128        ad 	pool_cache_put(proc_cache, p);
    762  1.128        ad }
    763  1.128        ad 
    764   1.61       dsl /*
    765  1.151     rmind  * proc_enterpgrp: move p to a new or existing process group (and session).
    766   1.61       dsl  *
    767   1.61       dsl  * If we are creating a new pgrp, the pgid should equal
    768   1.72  junyoung  * the calling process' pid.
    769   1.61       dsl  * If is only valid to enter a process group that is in the session
    770   1.61       dsl  * of the process.
    771   1.61       dsl  * Also mksess should only be set if we are creating a process group
    772   1.61       dsl  *
    773  1.134      yamt  * Only called from sys_setsid and sys_setpgid.
    774   1.61       dsl  */
    775   1.61       dsl int
    776  1.151     rmind proc_enterpgrp(struct proc *curp, pid_t pid, pid_t pgid, bool mksess)
    777   1.61       dsl {
    778   1.61       dsl 	struct pgrp *new_pgrp, *pgrp;
    779   1.61       dsl 	struct session *sess;
    780  1.100        ad 	struct proc *p;
    781   1.61       dsl 	int rval;
    782   1.61       dsl 	pid_t pg_id = NO_PGID;
    783   1.61       dsl 
    784  1.151     rmind 	sess = mksess ? kmem_alloc(sizeof(*sess), KM_SLEEP) : NULL;
    785   1.61       dsl 
    786  1.107        ad 	/* Allocate data areas we might need before doing any validity checks */
    787  1.136        ad 	mutex_enter(proc_lock);		/* Because pid_table might change */
    788  1.107        ad 	if (pid_table[pgid & pid_tbl_mask].pt_pgrp == 0) {
    789  1.136        ad 		mutex_exit(proc_lock);
    790  1.131        ad 		new_pgrp = kmem_alloc(sizeof(*new_pgrp), KM_SLEEP);
    791  1.136        ad 		mutex_enter(proc_lock);
    792  1.107        ad 	} else
    793  1.107        ad 		new_pgrp = NULL;
    794   1.61       dsl 	rval = EPERM;	/* most common error (to save typing) */
    795   1.61       dsl 
    796   1.61       dsl 	/* Check pgrp exists or can be created */
    797   1.61       dsl 	pgrp = pid_table[pgid & pid_tbl_mask].pt_pgrp;
    798   1.61       dsl 	if (pgrp != NULL && pgrp->pg_id != pgid)
    799   1.61       dsl 		goto done;
    800   1.61       dsl 
    801   1.61       dsl 	/* Can only set another process under restricted circumstances. */
    802  1.100        ad 	if (pid != curp->p_pid) {
    803   1.61       dsl 		/* must exist and be one of our children... */
    804  1.100        ad 		if ((p = p_find(pid, PFIND_LOCKED)) == NULL ||
    805  1.148     rmind 		    !p_inferior(p, curp)) {
    806   1.61       dsl 			rval = ESRCH;
    807   1.61       dsl 			goto done;
    808   1.61       dsl 		}
    809   1.61       dsl 		/* ... in the same session... */
    810   1.61       dsl 		if (sess != NULL || p->p_session != curp->p_session)
    811   1.61       dsl 			goto done;
    812   1.61       dsl 		/* ... existing pgid must be in same session ... */
    813   1.61       dsl 		if (pgrp != NULL && pgrp->pg_session != p->p_session)
    814   1.61       dsl 			goto done;
    815   1.61       dsl 		/* ... and not done an exec. */
    816  1.102     pavel 		if (p->p_flag & PK_EXEC) {
    817   1.61       dsl 			rval = EACCES;
    818   1.61       dsl 			goto done;
    819   1.49     enami 		}
    820  1.100        ad 	} else {
    821  1.100        ad 		/* ... setsid() cannot re-enter a pgrp */
    822  1.100        ad 		if (mksess && (curp->p_pgid == curp->p_pid ||
    823  1.100        ad 		    pg_find(curp->p_pid, PFIND_LOCKED)))
    824  1.100        ad 			goto done;
    825  1.100        ad 		p = curp;
    826   1.61       dsl 	}
    827    1.1       cgd 
    828   1.61       dsl 	/* Changing the process group/session of a session
    829   1.61       dsl 	   leader is definitely off limits. */
    830   1.61       dsl 	if (SESS_LEADER(p)) {
    831   1.61       dsl 		if (sess == NULL && p->p_pgrp == pgrp)
    832   1.61       dsl 			/* unless it's a definite noop */
    833   1.61       dsl 			rval = 0;
    834   1.61       dsl 		goto done;
    835   1.61       dsl 	}
    836   1.61       dsl 
    837   1.61       dsl 	/* Can only create a process group with id of process */
    838   1.61       dsl 	if (pgrp == NULL && pgid != pid)
    839   1.61       dsl 		goto done;
    840   1.61       dsl 
    841   1.61       dsl 	/* Can only create a session if creating pgrp */
    842   1.61       dsl 	if (sess != NULL && pgrp != NULL)
    843   1.61       dsl 		goto done;
    844   1.61       dsl 
    845   1.61       dsl 	/* Check we allocated memory for a pgrp... */
    846   1.61       dsl 	if (pgrp == NULL && new_pgrp == NULL)
    847   1.61       dsl 		goto done;
    848   1.61       dsl 
    849   1.61       dsl 	/* Don't attach to 'zombie' pgrp */
    850   1.61       dsl 	if (pgrp != NULL && LIST_EMPTY(&pgrp->pg_members))
    851   1.61       dsl 		goto done;
    852   1.61       dsl 
    853   1.61       dsl 	/* Expect to succeed now */
    854   1.61       dsl 	rval = 0;
    855   1.61       dsl 
    856   1.61       dsl 	if (pgrp == p->p_pgrp)
    857   1.61       dsl 		/* nothing to do */
    858   1.61       dsl 		goto done;
    859   1.61       dsl 
    860   1.61       dsl 	/* Ok all setup, link up required structures */
    861  1.100        ad 
    862   1.61       dsl 	if (pgrp == NULL) {
    863   1.61       dsl 		pgrp = new_pgrp;
    864  1.141      yamt 		new_pgrp = NULL;
    865   1.61       dsl 		if (sess != NULL) {
    866   1.21   thorpej 			sess->s_sid = p->p_pid;
    867    1.1       cgd 			sess->s_leader = p;
    868    1.1       cgd 			sess->s_count = 1;
    869    1.1       cgd 			sess->s_ttyvp = NULL;
    870    1.1       cgd 			sess->s_ttyp = NULL;
    871   1.58       dsl 			sess->s_flags = p->p_session->s_flags & ~S_LOGIN_SET;
    872   1.25     perry 			memcpy(sess->s_login, p->p_session->s_login,
    873    1.1       cgd 			    sizeof(sess->s_login));
    874  1.100        ad 			p->p_lflag &= ~PL_CONTROLT;
    875    1.1       cgd 		} else {
    876   1.61       dsl 			sess = p->p_pgrp->pg_session;
    877  1.151     rmind 			proc_sesshold(sess);
    878    1.1       cgd 		}
    879   1.61       dsl 		pgrp->pg_session = sess;
    880  1.141      yamt 		sess = NULL;
    881   1.61       dsl 
    882    1.1       cgd 		pgrp->pg_id = pgid;
    883   1.10   mycroft 		LIST_INIT(&pgrp->pg_members);
    884   1.61       dsl #ifdef DIAGNOSTIC
    885   1.63  christos 		if (__predict_false(pid_table[pgid & pid_tbl_mask].pt_pgrp))
    886   1.61       dsl 			panic("enterpgrp: pgrp table slot in use");
    887   1.63  christos 		if (__predict_false(mksess && p != curp))
    888   1.63  christos 			panic("enterpgrp: mksession and p != curproc");
    889   1.61       dsl #endif
    890   1.61       dsl 		pid_table[pgid & pid_tbl_mask].pt_pgrp = pgrp;
    891    1.1       cgd 		pgrp->pg_jobc = 0;
    892  1.136        ad 	}
    893    1.1       cgd 
    894    1.1       cgd 	/*
    895    1.1       cgd 	 * Adjust eligibility of affected pgrps to participate in job control.
    896    1.1       cgd 	 * Increment eligibility counts before decrementing, otherwise we
    897    1.1       cgd 	 * could reach 0 spuriously during the first call.
    898    1.1       cgd 	 */
    899    1.1       cgd 	fixjobc(p, pgrp, 1);
    900    1.1       cgd 	fixjobc(p, p->p_pgrp, 0);
    901    1.1       cgd 
    902  1.139        ad 	/* Interlock with ttread(). */
    903  1.139        ad 	mutex_spin_enter(&tty_lock);
    904  1.139        ad 
    905  1.100        ad 	/* Move process to requested group. */
    906   1.10   mycroft 	LIST_REMOVE(p, p_pglist);
    907   1.52      matt 	if (LIST_EMPTY(&p->p_pgrp->pg_members))
    908   1.61       dsl 		/* defer delete until we've dumped the lock */
    909   1.61       dsl 		pg_id = p->p_pgrp->pg_id;
    910    1.1       cgd 	p->p_pgrp = pgrp;
    911   1.10   mycroft 	LIST_INSERT_HEAD(&pgrp->pg_members, p, p_pglist);
    912  1.100        ad 
    913  1.100        ad 	/* Done with the swap; we can release the tty mutex. */
    914  1.128        ad 	mutex_spin_exit(&tty_lock);
    915  1.128        ad 
    916   1.61       dsl     done:
    917  1.151     rmind 	if (pg_id != NO_PGID) {
    918  1.151     rmind 		/* Releases proc_lock. */
    919  1.100        ad 		pg_delete(pg_id);
    920  1.151     rmind 	} else {
    921  1.151     rmind 		mutex_exit(proc_lock);
    922  1.151     rmind 	}
    923   1.61       dsl 	if (sess != NULL)
    924  1.131        ad 		kmem_free(sess, sizeof(*sess));
    925   1.61       dsl 	if (new_pgrp != NULL)
    926  1.131        ad 		kmem_free(new_pgrp, sizeof(*new_pgrp));
    927   1.63  christos #ifdef DEBUG_PGRP
    928   1.63  christos 	if (__predict_false(rval))
    929   1.61       dsl 		printf("enterpgrp(%d,%d,%d), curproc %d, rval %d\n",
    930   1.61       dsl 			pid, pgid, mksess, curp->p_pid, rval);
    931   1.61       dsl #endif
    932   1.61       dsl 	return rval;
    933    1.1       cgd }
    934    1.1       cgd 
    935    1.1       cgd /*
    936  1.151     rmind  * proc_leavepgrp: remove a process from its process group.
    937  1.151     rmind  *  => must be called with the proc_lock held, which will be released;
    938    1.1       cgd  */
    939  1.100        ad void
    940  1.151     rmind proc_leavepgrp(struct proc *p)
    941    1.1       cgd {
    942   1.61       dsl 	struct pgrp *pgrp;
    943    1.1       cgd 
    944  1.136        ad 	KASSERT(mutex_owned(proc_lock));
    945  1.100        ad 
    946  1.139        ad 	/* Interlock with ttread() */
    947  1.128        ad 	mutex_spin_enter(&tty_lock);
    948   1.61       dsl 	pgrp = p->p_pgrp;
    949   1.10   mycroft 	LIST_REMOVE(p, p_pglist);
    950   1.94        ad 	p->p_pgrp = NULL;
    951  1.128        ad 	mutex_spin_exit(&tty_lock);
    952  1.100        ad 
    953  1.151     rmind 	if (LIST_EMPTY(&pgrp->pg_members)) {
    954  1.151     rmind 		/* Releases proc_lock. */
    955  1.100        ad 		pg_delete(pgrp->pg_id);
    956  1.151     rmind 	} else {
    957  1.151     rmind 		mutex_exit(proc_lock);
    958  1.151     rmind 	}
    959   1.61       dsl }
    960   1.61       dsl 
    961  1.100        ad /*
    962  1.151     rmind  * pg_remove: remove a process group from the table.
    963  1.151     rmind  *  => must be called with the proc_lock held;
    964  1.151     rmind  *  => returns process group to free;
    965  1.100        ad  */
    966  1.151     rmind static struct pgrp *
    967  1.151     rmind pg_remove(pid_t pg_id)
    968   1.61       dsl {
    969   1.61       dsl 	struct pgrp *pgrp;
    970   1.61       dsl 	struct pid_table *pt;
    971   1.61       dsl 
    972  1.136        ad 	KASSERT(mutex_owned(proc_lock));
    973  1.100        ad 
    974   1.61       dsl 	pt = &pid_table[pg_id & pid_tbl_mask];
    975   1.61       dsl 	pgrp = pt->pt_pgrp;
    976  1.151     rmind 
    977  1.151     rmind 	KASSERT(pgrp != NULL);
    978  1.151     rmind 	KASSERT(pgrp->pg_id == pg_id);
    979  1.151     rmind 	KASSERT(LIST_EMPTY(&pgrp->pg_members));
    980  1.151     rmind 
    981  1.151     rmind 	pt->pt_pgrp = NULL;
    982   1.61       dsl 
    983   1.61       dsl 	if (!P_VALID(pt->pt_proc)) {
    984  1.151     rmind 		/* Orphaned pgrp, put slot onto free list. */
    985  1.151     rmind 		KASSERT((P_NEXT(pt->pt_proc) & pid_tbl_mask) == 0);
    986   1.61       dsl 		pg_id &= pid_tbl_mask;
    987   1.61       dsl 		pt = &pid_table[last_free_pt];
    988   1.61       dsl 		pt->pt_proc = P_FREE(P_NEXT(pt->pt_proc) | pg_id);
    989   1.61       dsl 		last_free_pt = pg_id;
    990   1.61       dsl 		pid_alloc_cnt--;
    991   1.61       dsl 	}
    992  1.151     rmind 	return pgrp;
    993    1.1       cgd }
    994    1.1       cgd 
    995    1.1       cgd /*
    996  1.151     rmind  * pg_delete: delete and free a process group.
    997  1.151     rmind  *  => must be called with the proc_lock held, which will be released.
    998    1.1       cgd  */
    999   1.61       dsl static void
   1000   1.61       dsl pg_delete(pid_t pg_id)
   1001   1.61       dsl {
   1002  1.151     rmind 	struct pgrp *pg;
   1003   1.61       dsl 	struct tty *ttyp;
   1004   1.61       dsl 	struct session *ss;
   1005  1.100        ad 
   1006  1.136        ad 	KASSERT(mutex_owned(proc_lock));
   1007   1.61       dsl 
   1008  1.151     rmind 	pg = pid_table[pg_id & pid_tbl_mask].pt_pgrp;
   1009  1.151     rmind 	if (pg == NULL || pg->pg_id != pg_id || !LIST_EMPTY(&pg->pg_members)) {
   1010  1.151     rmind 		mutex_exit(proc_lock);
   1011   1.61       dsl 		return;
   1012  1.151     rmind 	}
   1013   1.61       dsl 
   1014  1.151     rmind 	ss = pg->pg_session;
   1015   1.71        pk 
   1016   1.61       dsl 	/* Remove reference (if any) from tty to this process group */
   1017  1.128        ad 	mutex_spin_enter(&tty_lock);
   1018   1.71        pk 	ttyp = ss->s_ttyp;
   1019  1.151     rmind 	if (ttyp != NULL && ttyp->t_pgrp == pg) {
   1020   1.61       dsl 		ttyp->t_pgrp = NULL;
   1021  1.151     rmind 		KASSERT(ttyp->t_session == ss);
   1022   1.71        pk 	}
   1023  1.128        ad 	mutex_spin_exit(&tty_lock);
   1024   1.61       dsl 
   1025   1.71        pk 	/*
   1026  1.151     rmind 	 * The leading process group in a session is freed by proc_sessrele(),
   1027  1.151     rmind 	 * if last reference.  Note: proc_sessrele() releases proc_lock.
   1028   1.71        pk 	 */
   1029  1.151     rmind 	pg = (ss->s_sid != pg->pg_id) ? pg_remove(pg_id) : NULL;
   1030  1.151     rmind 	proc_sessrele(ss);
   1031   1.61       dsl 
   1032  1.151     rmind 	if (pg != NULL) {
   1033  1.151     rmind 		/* Free it, if was not done by proc_sessrele(). */
   1034  1.151     rmind 		kmem_free(pg, sizeof(struct pgrp));
   1035  1.151     rmind 	}
   1036    1.1       cgd }
   1037    1.1       cgd 
   1038    1.1       cgd /*
   1039    1.1       cgd  * Adjust pgrp jobc counters when specified process changes process group.
   1040    1.1       cgd  * We count the number of processes in each process group that "qualify"
   1041    1.1       cgd  * the group for terminal job control (those with a parent in a different
   1042    1.1       cgd  * process group of the same session).  If that count reaches zero, the
   1043    1.1       cgd  * process group becomes orphaned.  Check both the specified process'
   1044    1.1       cgd  * process group and that of its children.
   1045    1.1       cgd  * entering == 0 => p is leaving specified group.
   1046    1.1       cgd  * entering == 1 => p is entering specified group.
   1047   1.68       dsl  *
   1048  1.136        ad  * Call with proc_lock held.
   1049    1.1       cgd  */
   1050    1.4    andrew void
   1051   1.59       dsl fixjobc(struct proc *p, struct pgrp *pgrp, int entering)
   1052    1.1       cgd {
   1053   1.39  augustss 	struct pgrp *hispgrp;
   1054   1.39  augustss 	struct session *mysession = pgrp->pg_session;
   1055   1.68       dsl 	struct proc *child;
   1056    1.1       cgd 
   1057  1.136        ad 	KASSERT(mutex_owned(proc_lock));
   1058  1.100        ad 
   1059    1.1       cgd 	/*
   1060    1.1       cgd 	 * Check p's parent to see whether p qualifies its own process
   1061    1.1       cgd 	 * group; if so, adjust count for p's process group.
   1062    1.1       cgd 	 */
   1063   1.68       dsl 	hispgrp = p->p_pptr->p_pgrp;
   1064   1.68       dsl 	if (hispgrp != pgrp && hispgrp->pg_session == mysession) {
   1065  1.100        ad 		if (entering) {
   1066    1.1       cgd 			pgrp->pg_jobc++;
   1067  1.136        ad 			p->p_lflag &= ~PL_ORPHANPG;
   1068  1.100        ad 		} else if (--pgrp->pg_jobc == 0)
   1069    1.1       cgd 			orphanpg(pgrp);
   1070   1.26   thorpej 	}
   1071    1.1       cgd 
   1072    1.1       cgd 	/*
   1073    1.1       cgd 	 * Check this process' children to see whether they qualify
   1074    1.1       cgd 	 * their process groups; if so, adjust counts for children's
   1075    1.1       cgd 	 * process groups.
   1076    1.1       cgd 	 */
   1077   1.68       dsl 	LIST_FOREACH(child, &p->p_children, p_sibling) {
   1078   1.68       dsl 		hispgrp = child->p_pgrp;
   1079   1.68       dsl 		if (hispgrp != pgrp && hispgrp->pg_session == mysession &&
   1080   1.68       dsl 		    !P_ZOMBIE(child)) {
   1081  1.100        ad 			if (entering) {
   1082  1.136        ad 				child->p_lflag &= ~PL_ORPHANPG;
   1083    1.1       cgd 				hispgrp->pg_jobc++;
   1084  1.100        ad 			} else if (--hispgrp->pg_jobc == 0)
   1085    1.1       cgd 				orphanpg(hispgrp);
   1086   1.26   thorpej 		}
   1087   1.26   thorpej 	}
   1088    1.1       cgd }
   1089    1.1       cgd 
   1090   1.72  junyoung /*
   1091    1.1       cgd  * A process group has become orphaned;
   1092    1.1       cgd  * if there are any stopped processes in the group,
   1093    1.1       cgd  * hang-up all process in that group.
   1094   1.68       dsl  *
   1095  1.136        ad  * Call with proc_lock held.
   1096    1.1       cgd  */
   1097    1.4    andrew static void
   1098   1.59       dsl orphanpg(struct pgrp *pg)
   1099    1.1       cgd {
   1100   1.39  augustss 	struct proc *p;
   1101  1.100        ad 
   1102  1.136        ad 	KASSERT(mutex_owned(proc_lock));
   1103  1.100        ad 
   1104   1.52      matt 	LIST_FOREACH(p, &pg->pg_members, p_pglist) {
   1105    1.1       cgd 		if (p->p_stat == SSTOP) {
   1106  1.136        ad 			p->p_lflag |= PL_ORPHANPG;
   1107  1.100        ad 			psignal(p, SIGHUP);
   1108  1.100        ad 			psignal(p, SIGCONT);
   1109   1.35    bouyer 		}
   1110   1.35    bouyer 	}
   1111   1.35    bouyer }
   1112    1.1       cgd 
   1113   1.61       dsl #ifdef DDB
   1114   1.61       dsl #include <ddb/db_output.h>
   1115   1.61       dsl void pidtbl_dump(void);
   1116   1.14  christos void
   1117   1.61       dsl pidtbl_dump(void)
   1118    1.1       cgd {
   1119   1.61       dsl 	struct pid_table *pt;
   1120   1.61       dsl 	struct proc *p;
   1121   1.39  augustss 	struct pgrp *pgrp;
   1122   1.61       dsl 	int id;
   1123    1.1       cgd 
   1124   1.61       dsl 	db_printf("pid table %p size %x, next %x, last %x\n",
   1125   1.61       dsl 		pid_table, pid_tbl_mask+1,
   1126   1.61       dsl 		next_free_pt, last_free_pt);
   1127   1.61       dsl 	for (pt = pid_table, id = 0; id <= pid_tbl_mask; id++, pt++) {
   1128   1.61       dsl 		p = pt->pt_proc;
   1129   1.61       dsl 		if (!P_VALID(p) && !pt->pt_pgrp)
   1130   1.61       dsl 			continue;
   1131   1.61       dsl 		db_printf("  id %x: ", id);
   1132   1.61       dsl 		if (P_VALID(p))
   1133   1.61       dsl 			db_printf("proc %p id %d (0x%x) %s\n",
   1134   1.61       dsl 				p, p->p_pid, p->p_pid, p->p_comm);
   1135   1.61       dsl 		else
   1136   1.61       dsl 			db_printf("next %x use %x\n",
   1137   1.61       dsl 				P_NEXT(p) & pid_tbl_mask,
   1138   1.61       dsl 				P_NEXT(p) & ~pid_tbl_mask);
   1139   1.61       dsl 		if ((pgrp = pt->pt_pgrp)) {
   1140   1.61       dsl 			db_printf("\tsession %p, sid %d, count %d, login %s\n",
   1141   1.61       dsl 			    pgrp->pg_session, pgrp->pg_session->s_sid,
   1142   1.61       dsl 			    pgrp->pg_session->s_count,
   1143   1.61       dsl 			    pgrp->pg_session->s_login);
   1144   1.61       dsl 			db_printf("\tpgrp %p, pg_id %d, pg_jobc %d, members %p\n",
   1145   1.61       dsl 			    pgrp, pgrp->pg_id, pgrp->pg_jobc,
   1146  1.135      yamt 			    LIST_FIRST(&pgrp->pg_members));
   1147  1.135      yamt 			LIST_FOREACH(p, &pgrp->pg_members, p_pglist) {
   1148   1.72  junyoung 				db_printf("\t\tpid %d addr %p pgrp %p %s\n",
   1149   1.61       dsl 				    p->p_pid, p, p->p_pgrp, p->p_comm);
   1150   1.10   mycroft 			}
   1151    1.1       cgd 		}
   1152    1.1       cgd 	}
   1153    1.1       cgd }
   1154   1.61       dsl #endif /* DDB */
   1155   1.48      yamt 
   1156   1.48      yamt #ifdef KSTACK_CHECK_MAGIC
   1157   1.48      yamt 
   1158   1.48      yamt #define	KSTACK_MAGIC	0xdeadbeaf
   1159   1.48      yamt 
   1160   1.48      yamt /* XXX should be per process basis? */
   1161  1.149     rmind static int	kstackleftmin = KSTACK_SIZE;
   1162  1.149     rmind static int	kstackleftthres = KSTACK_SIZE / 8;
   1163   1.48      yamt 
   1164   1.48      yamt void
   1165   1.56      yamt kstack_setup_magic(const struct lwp *l)
   1166   1.48      yamt {
   1167   1.85     perry 	uint32_t *ip;
   1168   1.85     perry 	uint32_t const *end;
   1169   1.48      yamt 
   1170   1.56      yamt 	KASSERT(l != NULL);
   1171   1.56      yamt 	KASSERT(l != &lwp0);
   1172   1.48      yamt 
   1173   1.48      yamt 	/*
   1174   1.48      yamt 	 * fill all the stack with magic number
   1175   1.48      yamt 	 * so that later modification on it can be detected.
   1176   1.48      yamt 	 */
   1177   1.85     perry 	ip = (uint32_t *)KSTACK_LOWEST_ADDR(l);
   1178  1.114    dyoung 	end = (uint32_t *)((char *)KSTACK_LOWEST_ADDR(l) + KSTACK_SIZE);
   1179   1.48      yamt 	for (; ip < end; ip++) {
   1180   1.48      yamt 		*ip = KSTACK_MAGIC;
   1181   1.48      yamt 	}
   1182   1.48      yamt }
   1183   1.48      yamt 
   1184   1.48      yamt void
   1185   1.56      yamt kstack_check_magic(const struct lwp *l)
   1186   1.48      yamt {
   1187   1.85     perry 	uint32_t const *ip, *end;
   1188   1.48      yamt 	int stackleft;
   1189   1.48      yamt 
   1190   1.56      yamt 	KASSERT(l != NULL);
   1191   1.48      yamt 
   1192   1.48      yamt 	/* don't check proc0 */ /*XXX*/
   1193   1.56      yamt 	if (l == &lwp0)
   1194   1.48      yamt 		return;
   1195   1.48      yamt 
   1196   1.48      yamt #ifdef __MACHINE_STACK_GROWS_UP
   1197   1.48      yamt 	/* stack grows upwards (eg. hppa) */
   1198  1.106  christos 	ip = (uint32_t *)((void *)KSTACK_LOWEST_ADDR(l) + KSTACK_SIZE);
   1199   1.85     perry 	end = (uint32_t *)KSTACK_LOWEST_ADDR(l);
   1200   1.48      yamt 	for (ip--; ip >= end; ip--)
   1201   1.48      yamt 		if (*ip != KSTACK_MAGIC)
   1202   1.48      yamt 			break;
   1203   1.72  junyoung 
   1204  1.106  christos 	stackleft = (void *)KSTACK_LOWEST_ADDR(l) + KSTACK_SIZE - (void *)ip;
   1205   1.48      yamt #else /* __MACHINE_STACK_GROWS_UP */
   1206   1.48      yamt 	/* stack grows downwards (eg. i386) */
   1207   1.85     perry 	ip = (uint32_t *)KSTACK_LOWEST_ADDR(l);
   1208  1.114    dyoung 	end = (uint32_t *)((char *)KSTACK_LOWEST_ADDR(l) + KSTACK_SIZE);
   1209   1.48      yamt 	for (; ip < end; ip++)
   1210   1.48      yamt 		if (*ip != KSTACK_MAGIC)
   1211   1.48      yamt 			break;
   1212   1.48      yamt 
   1213   1.93  christos 	stackleft = ((const char *)ip) - (const char *)KSTACK_LOWEST_ADDR(l);
   1214   1.48      yamt #endif /* __MACHINE_STACK_GROWS_UP */
   1215   1.48      yamt 
   1216   1.48      yamt 	if (kstackleftmin > stackleft) {
   1217   1.48      yamt 		kstackleftmin = stackleft;
   1218   1.48      yamt 		if (stackleft < kstackleftthres)
   1219   1.56      yamt 			printf("warning: kernel stack left %d bytes"
   1220   1.56      yamt 			    "(pid %u:lid %u)\n", stackleft,
   1221   1.56      yamt 			    (u_int)l->l_proc->p_pid, (u_int)l->l_lid);
   1222   1.48      yamt 	}
   1223   1.48      yamt 
   1224   1.48      yamt 	if (stackleft <= 0) {
   1225   1.56      yamt 		panic("magic on the top of kernel stack changed for "
   1226   1.56      yamt 		    "pid %u, lid %u: maybe kernel stack overflow",
   1227   1.56      yamt 		    (u_int)l->l_proc->p_pid, (u_int)l->l_lid);
   1228   1.48      yamt 	}
   1229   1.48      yamt }
   1230   1.50     enami #endif /* KSTACK_CHECK_MAGIC */
   1231   1.79      yamt 
   1232   1.79      yamt int
   1233   1.79      yamt proclist_foreach_call(struct proclist *list,
   1234   1.79      yamt     int (*callback)(struct proc *, void *arg), void *arg)
   1235   1.79      yamt {
   1236   1.79      yamt 	struct proc marker;
   1237   1.79      yamt 	struct proc *p;
   1238   1.79      yamt 	int ret = 0;
   1239   1.79      yamt 
   1240  1.102     pavel 	marker.p_flag = PK_MARKER;
   1241  1.136        ad 	mutex_enter(proc_lock);
   1242   1.79      yamt 	for (p = LIST_FIRST(list); ret == 0 && p != NULL;) {
   1243  1.102     pavel 		if (p->p_flag & PK_MARKER) {
   1244   1.79      yamt 			p = LIST_NEXT(p, p_list);
   1245   1.79      yamt 			continue;
   1246   1.79      yamt 		}
   1247   1.79      yamt 		LIST_INSERT_AFTER(p, &marker, p_list);
   1248   1.79      yamt 		ret = (*callback)(p, arg);
   1249  1.136        ad 		KASSERT(mutex_owned(proc_lock));
   1250   1.79      yamt 		p = LIST_NEXT(&marker, p_list);
   1251   1.79      yamt 		LIST_REMOVE(&marker, p_list);
   1252   1.79      yamt 	}
   1253  1.136        ad 	mutex_exit(proc_lock);
   1254   1.79      yamt 
   1255   1.79      yamt 	return ret;
   1256   1.79      yamt }
   1257   1.86      yamt 
   1258   1.86      yamt int
   1259   1.86      yamt proc_vmspace_getref(struct proc *p, struct vmspace **vm)
   1260   1.86      yamt {
   1261   1.86      yamt 
   1262   1.86      yamt 	/* XXXCDC: how should locking work here? */
   1263   1.86      yamt 
   1264   1.87      yamt 	/* curproc exception is for coredump. */
   1265   1.87      yamt 
   1266  1.100        ad 	if ((p != curproc && (p->p_sflag & PS_WEXIT) != 0) ||
   1267   1.86      yamt 	    (p->p_vmspace->vm_refcnt < 1)) { /* XXX */
   1268   1.86      yamt 		return EFAULT;
   1269   1.86      yamt 	}
   1270   1.86      yamt 
   1271   1.86      yamt 	uvmspace_addref(p->p_vmspace);
   1272   1.86      yamt 	*vm = p->p_vmspace;
   1273   1.86      yamt 
   1274   1.86      yamt 	return 0;
   1275   1.86      yamt }
   1276   1.94        ad 
   1277   1.94        ad /*
   1278   1.94        ad  * Acquire a write lock on the process credential.
   1279   1.94        ad  */
   1280   1.94        ad void
   1281  1.100        ad proc_crmod_enter(void)
   1282   1.94        ad {
   1283  1.100        ad 	struct lwp *l = curlwp;
   1284  1.100        ad 	struct proc *p = l->l_proc;
   1285  1.100        ad 	struct plimit *lim;
   1286  1.100        ad 	kauth_cred_t oc;
   1287  1.100        ad 	char *cn;
   1288   1.94        ad 
   1289  1.117       dsl 	/* Reset what needs to be reset in plimit. */
   1290  1.117       dsl 	if (p->p_limit->pl_corename != defcorename) {
   1291  1.117       dsl 		lim_privatise(p, false);
   1292  1.117       dsl 		lim = p->p_limit;
   1293  1.117       dsl 		mutex_enter(&lim->pl_lock);
   1294  1.117       dsl 		cn = lim->pl_corename;
   1295  1.117       dsl 		lim->pl_corename = defcorename;
   1296  1.117       dsl 		mutex_exit(&lim->pl_lock);
   1297  1.117       dsl 		if (cn != defcorename)
   1298  1.117       dsl 			free(cn, M_TEMP);
   1299  1.117       dsl 	}
   1300  1.117       dsl 
   1301  1.137        ad 	mutex_enter(p->p_lock);
   1302  1.100        ad 
   1303  1.100        ad 	/* Ensure the LWP cached credentials are up to date. */
   1304  1.100        ad 	if ((oc = l->l_cred) != p->p_cred) {
   1305  1.100        ad 		kauth_cred_hold(p->p_cred);
   1306  1.100        ad 		l->l_cred = p->p_cred;
   1307  1.100        ad 		kauth_cred_free(oc);
   1308  1.100        ad 	}
   1309  1.100        ad 
   1310   1.94        ad }
   1311   1.94        ad 
   1312   1.94        ad /*
   1313  1.100        ad  * Set in a new process credential, and drop the write lock.  The credential
   1314  1.100        ad  * must have a reference already.  Optionally, free a no-longer required
   1315  1.100        ad  * credential.  The scheduler also needs to inspect p_cred, so we also
   1316  1.100        ad  * briefly acquire the sched state mutex.
   1317   1.94        ad  */
   1318   1.94        ad void
   1319  1.104   thorpej proc_crmod_leave(kauth_cred_t scred, kauth_cred_t fcred, bool sugid)
   1320   1.94        ad {
   1321  1.133        ad 	struct lwp *l = curlwp, *l2;
   1322  1.100        ad 	struct proc *p = l->l_proc;
   1323  1.100        ad 	kauth_cred_t oc;
   1324  1.100        ad 
   1325  1.137        ad 	KASSERT(mutex_owned(p->p_lock));
   1326  1.137        ad 
   1327  1.100        ad 	/* Is there a new credential to set in? */
   1328  1.100        ad 	if (scred != NULL) {
   1329  1.100        ad 		p->p_cred = scred;
   1330  1.133        ad 		LIST_FOREACH(l2, &p->p_lwps, l_sibling) {
   1331  1.133        ad 			if (l2 != l)
   1332  1.133        ad 				l2->l_prflag |= LPR_CRMOD;
   1333  1.133        ad 		}
   1334  1.100        ad 
   1335  1.100        ad 		/* Ensure the LWP cached credentials are up to date. */
   1336  1.100        ad 		if ((oc = l->l_cred) != scred) {
   1337  1.100        ad 			kauth_cred_hold(scred);
   1338  1.100        ad 			l->l_cred = scred;
   1339  1.100        ad 		}
   1340  1.100        ad 	} else
   1341  1.100        ad 		oc = NULL;	/* XXXgcc */
   1342  1.100        ad 
   1343  1.100        ad 	if (sugid) {
   1344  1.100        ad 		/*
   1345  1.100        ad 		 * Mark process as having changed credentials, stops
   1346  1.100        ad 		 * tracing etc.
   1347  1.100        ad 		 */
   1348  1.102     pavel 		p->p_flag |= PK_SUGID;
   1349  1.100        ad 	}
   1350   1.94        ad 
   1351  1.137        ad 	mutex_exit(p->p_lock);
   1352  1.100        ad 
   1353  1.100        ad 	/* If there is a credential to be released, free it now. */
   1354  1.100        ad 	if (fcred != NULL) {
   1355  1.100        ad 		KASSERT(scred != NULL);
   1356   1.94        ad 		kauth_cred_free(fcred);
   1357  1.100        ad 		if (oc != scred)
   1358  1.100        ad 			kauth_cred_free(oc);
   1359  1.100        ad 	}
   1360  1.100        ad }
   1361  1.100        ad 
   1362  1.100        ad /*
   1363   1.95   thorpej  * proc_specific_key_create --
   1364   1.95   thorpej  *	Create a key for subsystem proc-specific data.
   1365   1.95   thorpej  */
   1366   1.95   thorpej int
   1367   1.95   thorpej proc_specific_key_create(specificdata_key_t *keyp, specificdata_dtor_t dtor)
   1368   1.95   thorpej {
   1369   1.95   thorpej 
   1370   1.98   thorpej 	return (specificdata_key_create(proc_specificdata_domain, keyp, dtor));
   1371   1.95   thorpej }
   1372   1.95   thorpej 
   1373   1.95   thorpej /*
   1374   1.95   thorpej  * proc_specific_key_delete --
   1375   1.95   thorpej  *	Delete a key for subsystem proc-specific data.
   1376   1.95   thorpej  */
   1377   1.95   thorpej void
   1378   1.95   thorpej proc_specific_key_delete(specificdata_key_t key)
   1379   1.95   thorpej {
   1380   1.95   thorpej 
   1381   1.95   thorpej 	specificdata_key_delete(proc_specificdata_domain, key);
   1382   1.95   thorpej }
   1383   1.95   thorpej 
   1384   1.98   thorpej /*
   1385   1.98   thorpej  * proc_initspecific --
   1386   1.98   thorpej  *	Initialize a proc's specificdata container.
   1387   1.98   thorpej  */
   1388   1.96  christos void
   1389   1.96  christos proc_initspecific(struct proc *p)
   1390   1.96  christos {
   1391   1.96  christos 	int error;
   1392   1.98   thorpej 
   1393   1.96  christos 	error = specificdata_init(proc_specificdata_domain, &p->p_specdataref);
   1394   1.96  christos 	KASSERT(error == 0);
   1395   1.96  christos }
   1396   1.96  christos 
   1397   1.95   thorpej /*
   1398   1.98   thorpej  * proc_finispecific --
   1399   1.98   thorpej  *	Finalize a proc's specificdata container.
   1400   1.98   thorpej  */
   1401   1.98   thorpej void
   1402   1.98   thorpej proc_finispecific(struct proc *p)
   1403   1.98   thorpej {
   1404   1.98   thorpej 
   1405   1.98   thorpej 	specificdata_fini(proc_specificdata_domain, &p->p_specdataref);
   1406   1.98   thorpej }
   1407   1.98   thorpej 
   1408   1.98   thorpej /*
   1409   1.95   thorpej  * proc_getspecific --
   1410   1.95   thorpej  *	Return proc-specific data corresponding to the specified key.
   1411   1.95   thorpej  */
   1412   1.95   thorpej void *
   1413   1.95   thorpej proc_getspecific(struct proc *p, specificdata_key_t key)
   1414   1.95   thorpej {
   1415   1.95   thorpej 
   1416   1.95   thorpej 	return (specificdata_getspecific(proc_specificdata_domain,
   1417   1.95   thorpej 					 &p->p_specdataref, key));
   1418   1.95   thorpej }
   1419   1.95   thorpej 
   1420   1.95   thorpej /*
   1421   1.95   thorpej  * proc_setspecific --
   1422   1.95   thorpej  *	Set proc-specific data corresponding to the specified key.
   1423   1.95   thorpej  */
   1424   1.95   thorpej void
   1425   1.95   thorpej proc_setspecific(struct proc *p, specificdata_key_t key, void *data)
   1426   1.95   thorpej {
   1427   1.95   thorpej 
   1428   1.95   thorpej 	specificdata_setspecific(proc_specificdata_domain,
   1429   1.95   thorpej 				 &p->p_specdataref, key, data);
   1430   1.95   thorpej }
   1431  1.154      elad 
   1432  1.154      elad int
   1433  1.154      elad proc_uidmatch(kauth_cred_t cred, kauth_cred_t target)
   1434  1.154      elad {
   1435  1.154      elad 	int r = 0;
   1436  1.154      elad 
   1437  1.154      elad 	if (kauth_cred_getuid(cred) != kauth_cred_getuid(target) ||
   1438  1.154      elad 	    kauth_cred_getuid(cred) != kauth_cred_getsvuid(target)) {
   1439  1.154      elad 		/*
   1440  1.154      elad 		 * suid proc of ours or proc not ours
   1441  1.154      elad 		 */
   1442  1.154      elad 		r = EPERM;
   1443  1.154      elad 	} else if (kauth_cred_getgid(target) != kauth_cred_getsvgid(target)) {
   1444  1.154      elad 		/*
   1445  1.154      elad 		 * sgid proc has sgid back to us temporarily
   1446  1.154      elad 		 */
   1447  1.154      elad 		r = EPERM;
   1448  1.154      elad 	} else {
   1449  1.154      elad 		/*
   1450  1.154      elad 		 * our rgid must be in target's group list (ie,
   1451  1.154      elad 		 * sub-processes started by a sgid process)
   1452  1.154      elad 		 */
   1453  1.154      elad 		int ismember = 0;
   1454  1.154      elad 
   1455  1.154      elad 		if (kauth_cred_ismember_gid(cred,
   1456  1.154      elad 		    kauth_cred_getgid(target), &ismember) != 0 ||
   1457  1.154      elad 		    !ismember)
   1458  1.154      elad 			r = EPERM;
   1459  1.154      elad 	}
   1460  1.154      elad 
   1461  1.154      elad 	return (r);
   1462  1.154      elad }
   1463  1.154      elad 
   1464