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kvm_proc.c revision 1.74
      1  1.74        ad /*	$NetBSD: kvm_proc.c,v 1.74 2007/11/06 01:46:08 ad Exp $	*/
      2  1.26   mycroft 
      3  1.26   mycroft /*-
      4  1.26   mycroft  * Copyright (c) 1998 The NetBSD Foundation, Inc.
      5  1.26   mycroft  * All rights reserved.
      6  1.26   mycroft  *
      7  1.26   mycroft  * This code is derived from software contributed to The NetBSD Foundation
      8  1.26   mycroft  * by Charles M. Hannum.
      9  1.26   mycroft  *
     10  1.26   mycroft  * Redistribution and use in source and binary forms, with or without
     11  1.26   mycroft  * modification, are permitted provided that the following conditions
     12  1.26   mycroft  * are met:
     13  1.26   mycroft  * 1. Redistributions of source code must retain the above copyright
     14  1.26   mycroft  *    notice, this list of conditions and the following disclaimer.
     15  1.26   mycroft  * 2. Redistributions in binary form must reproduce the above copyright
     16  1.26   mycroft  *    notice, this list of conditions and the following disclaimer in the
     17  1.26   mycroft  *    documentation and/or other materials provided with the distribution.
     18  1.26   mycroft  * 3. All advertising materials mentioning features or use of this software
     19  1.26   mycroft  *    must display the following acknowledgement:
     20  1.26   mycroft  *        This product includes software developed by the NetBSD
     21  1.26   mycroft  *        Foundation, Inc. and its contributors.
     22  1.26   mycroft  * 4. Neither the name of The NetBSD Foundation nor the names of its
     23  1.26   mycroft  *    contributors may be used to endorse or promote products derived
     24  1.26   mycroft  *    from this software without specific prior written permission.
     25  1.26   mycroft  *
     26  1.26   mycroft  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     27  1.26   mycroft  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     28  1.26   mycroft  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     29  1.26   mycroft  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     30  1.26   mycroft  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     31  1.26   mycroft  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     32  1.26   mycroft  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     33  1.26   mycroft  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     34  1.26   mycroft  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     35  1.26   mycroft  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     36  1.26   mycroft  * POSSIBILITY OF SUCH DAMAGE.
     37  1.26   mycroft  */
     38  1.16   thorpej 
     39   1.1       cgd /*-
     40   1.1       cgd  * Copyright (c) 1989, 1992, 1993
     41   1.1       cgd  *	The Regents of the University of California.  All rights reserved.
     42   1.1       cgd  *
     43   1.1       cgd  * This code is derived from software developed by the Computer Systems
     44   1.1       cgd  * Engineering group at Lawrence Berkeley Laboratory under DARPA contract
     45   1.1       cgd  * BG 91-66 and contributed to Berkeley.
     46   1.1       cgd  *
     47   1.1       cgd  * Redistribution and use in source and binary forms, with or without
     48   1.1       cgd  * modification, are permitted provided that the following conditions
     49   1.1       cgd  * are met:
     50   1.1       cgd  * 1. Redistributions of source code must retain the above copyright
     51   1.1       cgd  *    notice, this list of conditions and the following disclaimer.
     52   1.1       cgd  * 2. Redistributions in binary form must reproduce the above copyright
     53   1.1       cgd  *    notice, this list of conditions and the following disclaimer in the
     54   1.1       cgd  *    documentation and/or other materials provided with the distribution.
     55  1.54       agc  * 3. Neither the name of the University nor the names of its contributors
     56   1.1       cgd  *    may be used to endorse or promote products derived from this software
     57   1.1       cgd  *    without specific prior written permission.
     58   1.1       cgd  *
     59   1.1       cgd  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     60   1.1       cgd  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     61   1.1       cgd  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     62   1.1       cgd  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     63   1.1       cgd  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     64   1.1       cgd  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     65   1.1       cgd  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     66   1.1       cgd  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     67   1.1       cgd  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     68   1.1       cgd  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     69   1.1       cgd  * SUCH DAMAGE.
     70   1.1       cgd  */
     71   1.1       cgd 
     72  1.19     mikel #include <sys/cdefs.h>
     73   1.1       cgd #if defined(LIBC_SCCS) && !defined(lint)
     74  1.16   thorpej #if 0
     75   1.1       cgd static char sccsid[] = "@(#)kvm_proc.c	8.3 (Berkeley) 9/23/93";
     76  1.16   thorpej #else
     77  1.74        ad __RCSID("$NetBSD: kvm_proc.c,v 1.74 2007/11/06 01:46:08 ad Exp $");
     78  1.16   thorpej #endif
     79   1.1       cgd #endif /* LIBC_SCCS and not lint */
     80   1.1       cgd 
     81   1.1       cgd /*
     82   1.1       cgd  * Proc traversal interface for kvm.  ps and w are (probably) the exclusive
     83   1.1       cgd  * users of this code, so we've factored it out into a separate module.
     84   1.1       cgd  * Thus, we keep this grunge out of the other kvm applications (i.e.,
     85   1.1       cgd  * most other applications are interested only in open/close/read/nlist).
     86   1.1       cgd  */
     87   1.1       cgd 
     88   1.1       cgd #include <sys/param.h>
     89   1.1       cgd #include <sys/user.h>
     90  1.46   thorpej #include <sys/lwp.h>
     91   1.1       cgd #include <sys/proc.h>
     92   1.1       cgd #include <sys/exec.h>
     93   1.1       cgd #include <sys/stat.h>
     94   1.1       cgd #include <sys/ioctl.h>
     95   1.1       cgd #include <sys/tty.h>
     96  1.62      yamt #include <sys/resourcevar.h>
     97  1.68  christos #include <sys/mutex.h>
     98  1.68  christos #include <sys/specificdata.h>
     99  1.66        ad 
    100  1.63      yamt #include <errno.h>
    101   1.7       cgd #include <stdlib.h>
    102  1.52      ross #include <stddef.h>
    103  1.10   mycroft #include <string.h>
    104   1.1       cgd #include <unistd.h>
    105   1.1       cgd #include <nlist.h>
    106   1.1       cgd #include <kvm.h>
    107   1.1       cgd 
    108  1.23       chs #include <uvm/uvm_extern.h>
    109  1.29       mrg #include <uvm/uvm_amap.h>
    110  1.23       chs 
    111   1.1       cgd #include <sys/sysctl.h>
    112   1.1       cgd 
    113   1.1       cgd #include <limits.h>
    114   1.1       cgd #include <db.h>
    115   1.1       cgd #include <paths.h>
    116   1.1       cgd 
    117   1.1       cgd #include "kvm_private.h"
    118   1.1       cgd 
    119  1.34    simonb /*
    120  1.34    simonb  * Common info from kinfo_proc and kinfo_proc2 used by helper routines.
    121  1.34    simonb  */
    122  1.34    simonb struct miniproc {
    123  1.34    simonb 	struct	vmspace *p_vmspace;
    124  1.34    simonb 	char	p_stat;
    125  1.34    simonb 	struct	proc *p_paddr;
    126  1.34    simonb 	pid_t	p_pid;
    127  1.34    simonb };
    128  1.34    simonb 
    129  1.34    simonb /*
    130  1.34    simonb  * Convert from struct proc and kinfo_proc{,2} to miniproc.
    131  1.34    simonb  */
    132  1.34    simonb #define PTOMINI(kp, p) \
    133  1.48     enami 	do { \
    134  1.34    simonb 		(p)->p_stat = (kp)->p_stat; \
    135  1.34    simonb 		(p)->p_pid = (kp)->p_pid; \
    136  1.34    simonb 		(p)->p_paddr = NULL; \
    137  1.34    simonb 		(p)->p_vmspace = (kp)->p_vmspace; \
    138  1.34    simonb 	} while (/*CONSTCOND*/0);
    139  1.34    simonb 
    140  1.34    simonb #define KPTOMINI(kp, p) \
    141  1.48     enami 	do { \
    142  1.34    simonb 		(p)->p_stat = (kp)->kp_proc.p_stat; \
    143  1.34    simonb 		(p)->p_pid = (kp)->kp_proc.p_pid; \
    144  1.34    simonb 		(p)->p_paddr = (kp)->kp_eproc.e_paddr; \
    145  1.34    simonb 		(p)->p_vmspace = (kp)->kp_proc.p_vmspace; \
    146  1.34    simonb 	} while (/*CONSTCOND*/0);
    147  1.34    simonb 
    148  1.34    simonb #define KP2TOMINI(kp, p) \
    149  1.48     enami 	do { \
    150  1.34    simonb 		(p)->p_stat = (kp)->p_stat; \
    151  1.34    simonb 		(p)->p_pid = (kp)->p_pid; \
    152  1.34    simonb 		(p)->p_paddr = (void *)(long)(kp)->p_paddr; \
    153  1.34    simonb 		(p)->p_vmspace = (void *)(long)(kp)->p_vmspace; \
    154  1.34    simonb 	} while (/*CONSTCOND*/0);
    155  1.34    simonb 
    156  1.68  christos /*
    157  1.68  christos  * NetBSD uses kauth(9) to manage credentials, which are stored in kauth_cred_t,
    158  1.68  christos  * a kernel-only opaque type. This is an embedded version which is *INTERNAL* to
    159  1.68  christos  * kvm(3) so dumps can be read properly.
    160  1.68  christos  *
    161  1.68  christos  * Whenever NetBSD starts exporting credentials to userland consistently (using
    162  1.68  christos  * 'struct uucred', or something) this will have to be updated again.
    163  1.68  christos  */
    164  1.68  christos struct kvm_kauth_cred {
    165  1.68  christos 	kmutex_t cr_lock;		/* lock on cr_refcnt */
    166  1.68  christos 	u_int cr_refcnt;		/* reference count */
    167  1.68  christos 	uid_t cr_uid;			/* user id */
    168  1.68  christos 	uid_t cr_euid;			/* effective user id */
    169  1.68  christos 	uid_t cr_svuid;			/* saved effective user id */
    170  1.68  christos 	gid_t cr_gid;			/* group id */
    171  1.68  christos 	gid_t cr_egid;			/* effective group id */
    172  1.68  christos 	gid_t cr_svgid;			/* saved effective group id */
    173  1.68  christos 	u_int cr_ngroups;		/* number of groups */
    174  1.68  christos 	gid_t cr_groups[NGROUPS];	/* group memberships */
    175  1.68  christos 	specificdata_reference cr_sd;	/* specific data */
    176  1.68  christos };
    177  1.68  christos 
    178   1.2   mycroft #define KREAD(kd, addr, obj) \
    179  1.34    simonb 	(kvm_read(kd, addr, (obj), sizeof(*obj)) != sizeof(*obj))
    180   1.2   mycroft 
    181  1.34    simonb /* XXX: What uses these two functions? */
    182  1.34    simonb char		*_kvm_uread __P((kvm_t *, const struct proc *, u_long,
    183  1.34    simonb 		    u_long *));
    184  1.15       cgd ssize_t		kvm_uread __P((kvm_t *, const struct proc *, u_long, char *,
    185  1.15       cgd 		    size_t));
    186  1.15       cgd 
    187  1.34    simonb static char	*_kvm_ureadm __P((kvm_t *, const struct miniproc *, u_long,
    188  1.34    simonb 		    u_long *));
    189  1.34    simonb static ssize_t	kvm_ureadm __P((kvm_t *, const struct miniproc *, u_long,
    190  1.34    simonb 		    char *, size_t));
    191  1.34    simonb 
    192  1.34    simonb static char	**kvm_argv __P((kvm_t *, const struct miniproc *, u_long, int,
    193  1.15       cgd 		    int));
    194  1.53  christos static int	kvm_deadprocs __P((kvm_t *, int, int, u_long, u_long, int));
    195  1.34    simonb static char	**kvm_doargv __P((kvm_t *, const struct miniproc *, int,
    196  1.15       cgd 		    void (*)(struct ps_strings *, u_long *, int *)));
    197  1.34    simonb static char	**kvm_doargv2 __P((kvm_t *, pid_t, int, int));
    198  1.15       cgd static int	kvm_proclist __P((kvm_t *, int, int, struct proc *,
    199  1.15       cgd 		    struct kinfo_proc *, int));
    200  1.34    simonb static int	proc_verify __P((kvm_t *, u_long, const struct miniproc *));
    201  1.15       cgd static void	ps_str_a __P((struct ps_strings *, u_long *, int *));
    202  1.15       cgd static void	ps_str_e __P((struct ps_strings *, u_long *, int *));
    203   1.2   mycroft 
    204  1.34    simonb 
    205  1.34    simonb static char *
    206  1.34    simonb _kvm_ureadm(kd, p, va, cnt)
    207   1.1       cgd 	kvm_t *kd;
    208  1.34    simonb 	const struct miniproc *p;
    209   1.1       cgd 	u_long va;
    210   1.1       cgd 	u_long *cnt;
    211   1.1       cgd {
    212  1.21     perry 	u_long addr, head;
    213  1.21     perry 	u_long offset;
    214   1.1       cgd 	struct vm_map_entry vme;
    215  1.23       chs 	struct vm_amap amap;
    216  1.23       chs 	struct vm_anon *anonp, anon;
    217  1.23       chs 	struct vm_page pg;
    218  1.28  christos 	u_long slot;
    219   1.1       cgd 
    220  1.36      tron 	if (kd->swapspc == NULL) {
    221  1.61  christos 		kd->swapspc = _kvm_malloc(kd, (size_t)kd->nbpg);
    222  1.36      tron 		if (kd->swapspc == NULL)
    223  1.48     enami 			return (NULL);
    224   1.5   deraadt 	}
    225   1.8   mycroft 
    226   1.1       cgd 	/*
    227   1.1       cgd 	 * Look through the address map for the memory object
    228   1.1       cgd 	 * that corresponds to the given virtual address.
    229   1.1       cgd 	 * The header just has the entire valid range.
    230   1.1       cgd 	 */
    231   1.8   mycroft 	head = (u_long)&p->p_vmspace->vm_map.header;
    232   1.1       cgd 	addr = head;
    233  1.73        ad 	for (;;) {
    234   1.2   mycroft 		if (KREAD(kd, addr, &vme))
    235  1.48     enami 			return (NULL);
    236   1.1       cgd 
    237  1.23       chs 		if (va >= vme.start && va < vme.end &&
    238  1.23       chs 		    vme.aref.ar_amap != NULL)
    239  1.23       chs 			break;
    240  1.23       chs 
    241   1.1       cgd 		addr = (u_long)vme.next;
    242   1.2   mycroft 		if (addr == head)
    243  1.48     enami 			return (NULL);
    244   1.1       cgd 	}
    245   1.2   mycroft 
    246   1.1       cgd 	/*
    247  1.23       chs 	 * we found the map entry, now to find the object...
    248  1.23       chs 	 */
    249  1.23       chs 	if (vme.aref.ar_amap == NULL)
    250  1.48     enami 		return (NULL);
    251  1.23       chs 
    252  1.23       chs 	addr = (u_long)vme.aref.ar_amap;
    253  1.23       chs 	if (KREAD(kd, addr, &amap))
    254  1.48     enami 		return (NULL);
    255  1.23       chs 
    256  1.23       chs 	offset = va - vme.start;
    257  1.29       mrg 	slot = offset / kd->nbpg + vme.aref.ar_pageoff;
    258  1.23       chs 	/* sanity-check slot number */
    259  1.48     enami 	if (slot > amap.am_nslot)
    260  1.48     enami 		return (NULL);
    261  1.23       chs 
    262  1.23       chs 	addr = (u_long)amap.am_anon + (offset / kd->nbpg) * sizeof(anonp);
    263  1.23       chs 	if (KREAD(kd, addr, &anonp))
    264  1.48     enami 		return (NULL);
    265  1.23       chs 
    266  1.23       chs 	addr = (u_long)anonp;
    267  1.23       chs 	if (KREAD(kd, addr, &anon))
    268  1.48     enami 		return (NULL);
    269  1.23       chs 
    270  1.59       jmc 	addr = (u_long)anon.an_page;
    271  1.23       chs 	if (addr) {
    272  1.23       chs 		if (KREAD(kd, addr, &pg))
    273  1.48     enami 			return (NULL);
    274  1.23       chs 
    275  1.34    simonb 		if (pread(kd->pmfd, kd->swapspc, (size_t)kd->nbpg,
    276  1.24   thorpej 		    (off_t)pg.phys_addr) != kd->nbpg)
    277  1.48     enami 			return (NULL);
    278  1.48     enami 	} else {
    279  1.60      yamt 		if (kd->swfd < 0 ||
    280  1.60      yamt 		    pread(kd->swfd, kd->swapspc, (size_t)kd->nbpg,
    281  1.24   thorpej 		    (off_t)(anon.an_swslot * kd->nbpg)) != kd->nbpg)
    282  1.48     enami 			return (NULL);
    283  1.23       chs 	}
    284   1.8   mycroft 
    285   1.2   mycroft 	/* Found the page. */
    286   1.6   mycroft 	offset %= kd->nbpg;
    287   1.6   mycroft 	*cnt = kd->nbpg - offset;
    288  1.28  christos 	return (&kd->swapspc[(size_t)offset]);
    289   1.2   mycroft }
    290   1.1       cgd 
    291  1.34    simonb char *
    292  1.34    simonb _kvm_uread(kd, p, va, cnt)
    293  1.34    simonb 	kvm_t *kd;
    294  1.34    simonb 	const struct proc *p;
    295  1.34    simonb 	u_long va;
    296  1.34    simonb 	u_long *cnt;
    297  1.34    simonb {
    298  1.34    simonb 	struct miniproc mp;
    299  1.34    simonb 
    300  1.34    simonb 	PTOMINI(p, &mp);
    301  1.34    simonb 	return (_kvm_ureadm(kd, &mp, va, cnt));
    302  1.34    simonb }
    303  1.34    simonb 
    304   1.1       cgd /*
    305  1.65      elad  * Convert credentials located in kernel space address 'cred' and store
    306  1.65      elad  * them in the appropriate members of 'eproc'.
    307  1.65      elad  */
    308  1.65      elad static int
    309  1.65      elad _kvm_convertcred(kvm_t *kd, u_long cred, struct eproc *eproc)
    310  1.65      elad {
    311  1.68  christos 	struct kvm_kauth_cred kauthcred;
    312  1.67       dsl 	struct ki_pcred *pc = &eproc->e_pcred;
    313  1.67       dsl 	struct ki_ucred *uc = &eproc->e_ucred;
    314  1.65      elad 
    315  1.65      elad 	if (KREAD(kd, cred, &kauthcred) != 0)
    316  1.65      elad 		return (-1);
    317  1.65      elad 
    318  1.65      elad 	/* inlined version of kauth_cred_to_pcred, see kauth(9). */
    319  1.65      elad 	pc->p_ruid = kauthcred.cr_uid;
    320  1.65      elad 	pc->p_svuid = kauthcred.cr_svuid;
    321  1.65      elad 	pc->p_rgid = kauthcred.cr_gid;
    322  1.65      elad 	pc->p_svgid = kauthcred.cr_svgid;
    323  1.65      elad 	pc->p_refcnt = kauthcred.cr_refcnt;
    324  1.67       dsl 	pc->p_pad = NULL;
    325  1.65      elad 
    326  1.65      elad 	/* inlined version of kauth_cred_to_ucred(), see kauth(9). */
    327  1.65      elad 	uc->cr_ref = kauthcred.cr_refcnt;
    328  1.65      elad 	uc->cr_uid = kauthcred.cr_euid;
    329  1.65      elad 	uc->cr_gid = kauthcred.cr_egid;
    330  1.71  christos 	uc->cr_ngroups = (uint32_t)MIN(kauthcred.cr_ngroups,
    331  1.65      elad 	    sizeof(uc->cr_groups) / sizeof(uc->cr_groups[0]));
    332  1.65      elad 	memcpy(uc->cr_groups, kauthcred.cr_groups,
    333  1.65      elad 	    uc->cr_ngroups * sizeof(uc->cr_groups[0]));
    334  1.65      elad 
    335  1.65      elad 	return (0);
    336  1.65      elad }
    337  1.65      elad 
    338  1.65      elad /*
    339   1.1       cgd  * Read proc's from memory file into buffer bp, which has space to hold
    340   1.1       cgd  * at most maxcnt procs.
    341   1.1       cgd  */
    342   1.1       cgd static int
    343   1.1       cgd kvm_proclist(kd, what, arg, p, bp, maxcnt)
    344   1.1       cgd 	kvm_t *kd;
    345   1.1       cgd 	int what, arg;
    346   1.1       cgd 	struct proc *p;
    347   1.1       cgd 	struct kinfo_proc *bp;
    348   1.1       cgd 	int maxcnt;
    349   1.1       cgd {
    350  1.21     perry 	int cnt = 0;
    351  1.46   thorpej 	int nlwps;
    352  1.46   thorpej 	struct kinfo_lwp *kl;
    353   1.1       cgd 	struct eproc eproc;
    354   1.1       cgd 	struct pgrp pgrp;
    355   1.1       cgd 	struct session sess;
    356   1.1       cgd 	struct tty tty;
    357   1.1       cgd 	struct proc proc;
    358   1.1       cgd 
    359   1.4   mycroft 	for (; cnt < maxcnt && p != NULL; p = proc.p_list.le_next) {
    360   1.1       cgd 		if (KREAD(kd, (u_long)p, &proc)) {
    361  1.41  sommerfe 			_kvm_err(kd, kd->program, "can't read proc at %p", p);
    362   1.1       cgd 			return (-1);
    363   1.1       cgd 		}
    364  1.65      elad 		if (_kvm_convertcred(kd, (u_long)proc.p_cred, &eproc) != 0) {
    365  1.65      elad 			_kvm_err(kd, kd->program,
    366  1.65      elad 			    "can't read proc credentials at %p", p);
    367  1.65      elad 			return (-1);
    368  1.65      elad 		}
    369   1.1       cgd 
    370  1.48     enami 		switch (what) {
    371  1.31    simonb 
    372   1.1       cgd 		case KERN_PROC_PID:
    373   1.1       cgd 			if (proc.p_pid != (pid_t)arg)
    374   1.1       cgd 				continue;
    375   1.1       cgd 			break;
    376   1.1       cgd 
    377   1.1       cgd 		case KERN_PROC_UID:
    378   1.1       cgd 			if (eproc.e_ucred.cr_uid != (uid_t)arg)
    379   1.1       cgd 				continue;
    380   1.1       cgd 			break;
    381   1.1       cgd 
    382   1.1       cgd 		case KERN_PROC_RUID:
    383   1.1       cgd 			if (eproc.e_pcred.p_ruid != (uid_t)arg)
    384   1.1       cgd 				continue;
    385   1.1       cgd 			break;
    386   1.1       cgd 		}
    387   1.1       cgd 		/*
    388   1.1       cgd 		 * We're going to add another proc to the set.  If this
    389   1.1       cgd 		 * will overflow the buffer, assume the reason is because
    390   1.1       cgd 		 * nprocs (or the proc list) is corrupt and declare an error.
    391   1.1       cgd 		 */
    392   1.1       cgd 		if (cnt >= maxcnt) {
    393   1.1       cgd 			_kvm_err(kd, kd->program, "nprocs corrupt");
    394   1.1       cgd 			return (-1);
    395   1.1       cgd 		}
    396   1.1       cgd 		/*
    397   1.1       cgd 		 * gather eproc
    398   1.1       cgd 		 */
    399   1.1       cgd 		eproc.e_paddr = p;
    400   1.1       cgd 		if (KREAD(kd, (u_long)proc.p_pgrp, &pgrp)) {
    401  1.41  sommerfe 			_kvm_err(kd, kd->program, "can't read pgrp at %p",
    402  1.48     enami 			    proc.p_pgrp);
    403   1.1       cgd 			return (-1);
    404   1.1       cgd 		}
    405   1.1       cgd 		eproc.e_sess = pgrp.pg_session;
    406   1.1       cgd 		eproc.e_pgid = pgrp.pg_id;
    407   1.1       cgd 		eproc.e_jobc = pgrp.pg_jobc;
    408   1.1       cgd 		if (KREAD(kd, (u_long)pgrp.pg_session, &sess)) {
    409  1.41  sommerfe 			_kvm_err(kd, kd->program, "can't read session at %p",
    410  1.48     enami 			    pgrp.pg_session);
    411   1.1       cgd 			return (-1);
    412   1.1       cgd 		}
    413  1.66        ad 		if ((proc.p_lflag & PL_CONTROLT) && sess.s_ttyp != NULL) {
    414   1.1       cgd 			if (KREAD(kd, (u_long)sess.s_ttyp, &tty)) {
    415   1.1       cgd 				_kvm_err(kd, kd->program,
    416  1.48     enami 				    "can't read tty at %p", sess.s_ttyp);
    417   1.1       cgd 				return (-1);
    418   1.1       cgd 			}
    419   1.1       cgd 			eproc.e_tdev = tty.t_dev;
    420   1.1       cgd 			eproc.e_tsess = tty.t_session;
    421   1.1       cgd 			if (tty.t_pgrp != NULL) {
    422   1.1       cgd 				if (KREAD(kd, (u_long)tty.t_pgrp, &pgrp)) {
    423   1.1       cgd 					_kvm_err(kd, kd->program,
    424  1.48     enami 					    "can't read tpgrp at %p",
    425  1.48     enami 					    tty.t_pgrp);
    426   1.1       cgd 					return (-1);
    427   1.1       cgd 				}
    428   1.1       cgd 				eproc.e_tpgid = pgrp.pg_id;
    429   1.1       cgd 			} else
    430   1.1       cgd 				eproc.e_tpgid = -1;
    431   1.1       cgd 		} else
    432   1.1       cgd 			eproc.e_tdev = NODEV;
    433   1.1       cgd 		eproc.e_flag = sess.s_ttyvp ? EPROC_CTTY : 0;
    434  1.33    simonb 		eproc.e_sid = sess.s_sid;
    435   1.1       cgd 		if (sess.s_leader == p)
    436   1.1       cgd 			eproc.e_flag |= EPROC_SLEADER;
    437  1.48     enami 		/*
    438  1.48     enami 		 * Fill in the old-style proc.p_wmesg by copying the wmesg
    439  1.55       wiz 		 * from the first available LWP.
    440  1.46   thorpej 		 */
    441  1.47  christos 		kl = kvm_getlwps(kd, proc.p_pid,
    442  1.57    atatat 		    (u_long)PTRTOUINT64(eproc.e_paddr),
    443  1.46   thorpej 		    sizeof(struct kinfo_lwp), &nlwps);
    444  1.46   thorpej 		if (kl) {
    445  1.46   thorpej 			if (nlwps > 0) {
    446  1.46   thorpej 				strcpy(eproc.e_wmesg, kl[0].l_wmesg);
    447  1.46   thorpej 			}
    448  1.46   thorpej 		}
    449  1.34    simonb 		(void)kvm_read(kd, (u_long)proc.p_vmspace, &eproc.e_vm,
    450  1.34    simonb 		    sizeof(eproc.e_vm));
    451   1.9        pk 
    452   1.1       cgd 		eproc.e_xsize = eproc.e_xrssize = 0;
    453   1.1       cgd 		eproc.e_xccount = eproc.e_xswrss = 0;
    454   1.1       cgd 
    455   1.1       cgd 		switch (what) {
    456   1.1       cgd 
    457   1.1       cgd 		case KERN_PROC_PGRP:
    458   1.1       cgd 			if (eproc.e_pgid != (pid_t)arg)
    459   1.1       cgd 				continue;
    460   1.1       cgd 			break;
    461   1.1       cgd 
    462   1.1       cgd 		case KERN_PROC_TTY:
    463  1.66        ad 			if ((proc.p_lflag & PL_CONTROLT) == 0 ||
    464  1.48     enami 			    eproc.e_tdev != (dev_t)arg)
    465   1.1       cgd 				continue;
    466   1.1       cgd 			break;
    467   1.1       cgd 		}
    468  1.25     perry 		memcpy(&bp->kp_proc, &proc, sizeof(proc));
    469  1.25     perry 		memcpy(&bp->kp_eproc, &eproc, sizeof(eproc));
    470   1.1       cgd 		++bp;
    471   1.1       cgd 		++cnt;
    472   1.1       cgd 	}
    473   1.1       cgd 	return (cnt);
    474   1.1       cgd }
    475   1.1       cgd 
    476   1.1       cgd /*
    477   1.1       cgd  * Build proc info array by reading in proc list from a crash dump.
    478   1.1       cgd  * Return number of procs read.  maxcnt is the max we will read.
    479   1.1       cgd  */
    480   1.1       cgd static int
    481  1.53  christos kvm_deadprocs(kd, what, arg, a_allproc, a_zombproc, maxcnt)
    482   1.1       cgd 	kvm_t *kd;
    483   1.1       cgd 	int what, arg;
    484   1.1       cgd 	u_long a_allproc;
    485   1.1       cgd 	u_long a_zombproc;
    486   1.1       cgd 	int maxcnt;
    487   1.1       cgd {
    488  1.21     perry 	struct kinfo_proc *bp = kd->procbase;
    489  1.53  christos 	int acnt, zcnt;
    490   1.1       cgd 	struct proc *p;
    491   1.1       cgd 
    492   1.1       cgd 	if (KREAD(kd, a_allproc, &p)) {
    493   1.1       cgd 		_kvm_err(kd, kd->program, "cannot read allproc");
    494   1.1       cgd 		return (-1);
    495   1.1       cgd 	}
    496   1.1       cgd 	acnt = kvm_proclist(kd, what, arg, p, bp, maxcnt);
    497   1.1       cgd 	if (acnt < 0)
    498   1.1       cgd 		return (acnt);
    499   1.1       cgd 
    500   1.1       cgd 	if (KREAD(kd, a_zombproc, &p)) {
    501   1.1       cgd 		_kvm_err(kd, kd->program, "cannot read zombproc");
    502   1.1       cgd 		return (-1);
    503   1.1       cgd 	}
    504  1.27   thorpej 	zcnt = kvm_proclist(kd, what, arg, p, bp + acnt,
    505  1.53  christos 	    maxcnt - acnt);
    506   1.1       cgd 	if (zcnt < 0)
    507   1.1       cgd 		zcnt = 0;
    508   1.1       cgd 
    509   1.1       cgd 	return (acnt + zcnt);
    510   1.1       cgd }
    511   1.1       cgd 
    512  1.34    simonb struct kinfo_proc2 *
    513  1.34    simonb kvm_getproc2(kd, op, arg, esize, cnt)
    514  1.34    simonb 	kvm_t *kd;
    515  1.34    simonb 	int op, arg;
    516  1.34    simonb 	size_t esize;
    517  1.34    simonb 	int *cnt;
    518  1.34    simonb {
    519  1.34    simonb 	size_t size;
    520  1.34    simonb 	int mib[6], st, nprocs;
    521  1.46   thorpej 	struct pstats pstats;
    522  1.34    simonb 
    523  1.34    simonb 	if (ISSYSCTL(kd)) {
    524  1.34    simonb 		size = 0;
    525  1.34    simonb 		mib[0] = CTL_KERN;
    526  1.34    simonb 		mib[1] = KERN_PROC2;
    527  1.34    simonb 		mib[2] = op;
    528  1.34    simonb 		mib[3] = arg;
    529  1.52      ross 		mib[4] = (int)esize;
    530  1.63      yamt again:
    531  1.34    simonb 		mib[5] = 0;
    532  1.52      ross 		st = sysctl(mib, 6, NULL, &size, NULL, (size_t)0);
    533  1.34    simonb 		if (st == -1) {
    534  1.34    simonb 			_kvm_syserr(kd, kd->program, "kvm_getproc2");
    535  1.48     enami 			return (NULL);
    536  1.34    simonb 		}
    537  1.34    simonb 
    538  1.52      ross 		mib[5] = (int) (size / esize);
    539  1.61  christos 		KVM_ALLOC(kd, procbase2, size);
    540  1.52      ross 		st = sysctl(mib, 6, kd->procbase2, &size, NULL, (size_t)0);
    541  1.34    simonb 		if (st == -1) {
    542  1.63      yamt 			if (errno == ENOMEM) {
    543  1.63      yamt 				goto again;
    544  1.63      yamt 			}
    545  1.34    simonb 			_kvm_syserr(kd, kd->program, "kvm_getproc2");
    546  1.48     enami 			return (NULL);
    547  1.34    simonb 		}
    548  1.52      ross 		nprocs = (int) (size / esize);
    549  1.34    simonb 	} else {
    550  1.34    simonb 		char *kp2c;
    551  1.34    simonb 		struct kinfo_proc *kp;
    552  1.34    simonb 		struct kinfo_proc2 kp2, *kp2p;
    553  1.46   thorpej 		struct kinfo_lwp *kl;
    554  1.46   thorpej 		int i, nlwps;
    555  1.34    simonb 
    556  1.34    simonb 		kp = kvm_getprocs(kd, op, arg, &nprocs);
    557  1.34    simonb 		if (kp == NULL)
    558  1.48     enami 			return (NULL);
    559  1.34    simonb 
    560  1.61  christos 		size = nprocs * esize;
    561  1.61  christos 		KVM_ALLOC(kd, procbase2, size);
    562  1.39  christos 		kp2c = (char *)(void *)kd->procbase2;
    563  1.34    simonb 		kp2p = &kp2;
    564  1.34    simonb 		for (i = 0; i < nprocs; i++, kp++) {
    565  1.48     enami 			kl = kvm_getlwps(kd, kp->kp_proc.p_pid,
    566  1.57    atatat 			    (u_long)PTRTOUINT64(kp->kp_eproc.e_paddr),
    567  1.46   thorpej 			    sizeof(struct kinfo_lwp), &nlwps);
    568  1.64       chs 
    569  1.46   thorpej 			/* We use kl[0] as the "representative" LWP */
    570  1.34    simonb 			memset(kp2p, 0, sizeof(kp2));
    571  1.46   thorpej 			kp2p->p_forw = kl[0].l_forw;
    572  1.46   thorpej 			kp2p->p_back = kl[0].l_back;
    573  1.57    atatat 			kp2p->p_paddr = PTRTOUINT64(kp->kp_eproc.e_paddr);
    574  1.46   thorpej 			kp2p->p_addr = kl[0].l_addr;
    575  1.57    atatat 			kp2p->p_fd = PTRTOUINT64(kp->kp_proc.p_fd);
    576  1.57    atatat 			kp2p->p_cwdi = PTRTOUINT64(kp->kp_proc.p_cwdi);
    577  1.57    atatat 			kp2p->p_stats = PTRTOUINT64(kp->kp_proc.p_stats);
    578  1.57    atatat 			kp2p->p_limit = PTRTOUINT64(kp->kp_proc.p_limit);
    579  1.57    atatat 			kp2p->p_vmspace = PTRTOUINT64(kp->kp_proc.p_vmspace);
    580  1.57    atatat 			kp2p->p_sigacts = PTRTOUINT64(kp->kp_proc.p_sigacts);
    581  1.57    atatat 			kp2p->p_sess = PTRTOUINT64(kp->kp_eproc.e_sess);
    582  1.34    simonb 			kp2p->p_tsess = 0;
    583  1.69       dsl #if 1 /* XXX: dsl - p_ru was only ever non-zero for zombies */
    584  1.69       dsl 			kp2p->p_ru = 0;
    585  1.69       dsl #else
    586  1.69       dsl 			kp2p->p_ru = PTRTOUINT64(pstats.p_ru);
    587  1.69       dsl #endif
    588  1.34    simonb 
    589  1.34    simonb 			kp2p->p_eflag = 0;
    590  1.34    simonb 			kp2p->p_exitsig = kp->kp_proc.p_exitsig;
    591  1.34    simonb 			kp2p->p_flag = kp->kp_proc.p_flag;
    592  1.34    simonb 
    593  1.34    simonb 			kp2p->p_pid = kp->kp_proc.p_pid;
    594  1.34    simonb 
    595  1.34    simonb 			kp2p->p_ppid = kp->kp_eproc.e_ppid;
    596  1.34    simonb 			kp2p->p_sid = kp->kp_eproc.e_sid;
    597  1.34    simonb 			kp2p->p__pgid = kp->kp_eproc.e_pgid;
    598  1.34    simonb 
    599  1.51       dsl 			kp2p->p_tpgid = -1 /* XXX NO_PGID! */;
    600  1.34    simonb 
    601  1.34    simonb 			kp2p->p_uid = kp->kp_eproc.e_ucred.cr_uid;
    602  1.34    simonb 			kp2p->p_ruid = kp->kp_eproc.e_pcred.p_ruid;
    603  1.50    atatat 			kp2p->p_svuid = kp->kp_eproc.e_pcred.p_svuid;
    604  1.34    simonb 			kp2p->p_gid = kp->kp_eproc.e_ucred.cr_gid;
    605  1.34    simonb 			kp2p->p_rgid = kp->kp_eproc.e_pcred.p_rgid;
    606  1.50    atatat 			kp2p->p_svgid = kp->kp_eproc.e_pcred.p_svgid;
    607  1.34    simonb 
    608  1.39  christos 			/*CONSTCOND*/
    609  1.34    simonb 			memcpy(kp2p->p_groups, kp->kp_eproc.e_ucred.cr_groups,
    610  1.48     enami 			    MIN(sizeof(kp2p->p_groups),
    611  1.48     enami 			    sizeof(kp->kp_eproc.e_ucred.cr_groups)));
    612  1.34    simonb 			kp2p->p_ngroups = kp->kp_eproc.e_ucred.cr_ngroups;
    613  1.34    simonb 
    614  1.34    simonb 			kp2p->p_jobc = kp->kp_eproc.e_jobc;
    615  1.34    simonb 			kp2p->p_tdev = kp->kp_eproc.e_tdev;
    616  1.34    simonb 			kp2p->p_tpgid = kp->kp_eproc.e_tpgid;
    617  1.57    atatat 			kp2p->p_tsess = PTRTOUINT64(kp->kp_eproc.e_tsess);
    618  1.34    simonb 
    619  1.74        ad 			kp2p->p_estcpu = 0;
    620  1.71  christos 			kp2p->p_rtime_sec =
    621  1.71  christos 			    (uint32_t)kp->kp_proc.p_rtime.tv_sec;
    622  1.71  christos 			kp2p->p_rtime_usec =
    623  1.71  christos 			    (uint32_t)kp->kp_proc.p_rtime.tv_usec;
    624  1.70  christos 			kp2p->p_cpticks = kl[0].l_cpticks;
    625  1.34    simonb 			kp2p->p_pctcpu = kp->kp_proc.p_pctcpu;
    626  1.46   thorpej 			kp2p->p_swtime = kl[0].l_swtime;
    627  1.46   thorpej 			kp2p->p_slptime = kl[0].l_slptime;
    628  1.35   thorpej #if 0 /* XXX thorpej */
    629  1.34    simonb 			kp2p->p_schedflags = kp->kp_proc.p_schedflags;
    630  1.35   thorpej #else
    631  1.35   thorpej 			kp2p->p_schedflags = 0;
    632  1.35   thorpej #endif
    633  1.34    simonb 
    634  1.34    simonb 			kp2p->p_uticks = kp->kp_proc.p_uticks;
    635  1.34    simonb 			kp2p->p_sticks = kp->kp_proc.p_sticks;
    636  1.34    simonb 			kp2p->p_iticks = kp->kp_proc.p_iticks;
    637  1.34    simonb 
    638  1.57    atatat 			kp2p->p_tracep = PTRTOUINT64(kp->kp_proc.p_tracep);
    639  1.34    simonb 			kp2p->p_traceflag = kp->kp_proc.p_traceflag;
    640  1.34    simonb 
    641  1.46   thorpej 			kp2p->p_holdcnt = kl[0].l_holdcnt;
    642  1.34    simonb 
    643  1.48     enami 			memcpy(&kp2p->p_siglist,
    644  1.66        ad 			    &kp->kp_proc.p_sigpend.sp_set,
    645  1.48     enami 			    sizeof(ki_sigset_t));
    646  1.66        ad 			memset(&kp2p->p_sigmask, 0,
    647  1.48     enami 			    sizeof(ki_sigset_t));
    648  1.48     enami 			memcpy(&kp2p->p_sigignore,
    649  1.48     enami 			    &kp->kp_proc.p_sigctx.ps_sigignore,
    650  1.48     enami 			    sizeof(ki_sigset_t));
    651  1.48     enami 			memcpy(&kp2p->p_sigcatch,
    652  1.48     enami 			    &kp->kp_proc.p_sigctx.ps_sigcatch,
    653  1.48     enami 			    sizeof(ki_sigset_t));
    654  1.34    simonb 
    655  1.64       chs 			kp2p->p_stat = kl[0].l_stat;
    656  1.46   thorpej 			kp2p->p_priority = kl[0].l_priority;
    657  1.74        ad 			kp2p->p_usrpri = kl[0].l_priority;
    658  1.34    simonb 			kp2p->p_nice = kp->kp_proc.p_nice;
    659  1.34    simonb 
    660  1.34    simonb 			kp2p->p_xstat = kp->kp_proc.p_xstat;
    661  1.34    simonb 			kp2p->p_acflag = kp->kp_proc.p_acflag;
    662  1.34    simonb 
    663  1.39  christos 			/*CONSTCOND*/
    664  1.34    simonb 			strncpy(kp2p->p_comm, kp->kp_proc.p_comm,
    665  1.48     enami 			    MIN(sizeof(kp2p->p_comm),
    666  1.48     enami 			    sizeof(kp->kp_proc.p_comm)));
    667  1.34    simonb 
    668  1.48     enami 			strncpy(kp2p->p_wmesg, kp->kp_eproc.e_wmesg,
    669  1.48     enami 			    sizeof(kp2p->p_wmesg));
    670  1.46   thorpej 			kp2p->p_wchan = kl[0].l_wchan;
    671  1.48     enami 			strncpy(kp2p->p_login, kp->kp_eproc.e_login,
    672  1.48     enami 			    sizeof(kp2p->p_login));
    673  1.34    simonb 
    674  1.34    simonb 			kp2p->p_vm_rssize = kp->kp_eproc.e_xrssize;
    675  1.34    simonb 			kp2p->p_vm_tsize = kp->kp_eproc.e_vm.vm_tsize;
    676  1.34    simonb 			kp2p->p_vm_dsize = kp->kp_eproc.e_vm.vm_dsize;
    677  1.34    simonb 			kp2p->p_vm_ssize = kp->kp_eproc.e_vm.vm_ssize;
    678  1.34    simonb 
    679  1.39  christos 			kp2p->p_eflag = (int32_t)kp->kp_eproc.e_flag;
    680  1.34    simonb 
    681  1.46   thorpej 			kp2p->p_realflag = kp->kp_proc.p_flag;
    682  1.46   thorpej 			kp2p->p_nlwps = kp->kp_proc.p_nlwps;
    683  1.46   thorpej 			kp2p->p_nrlwps = kp->kp_proc.p_nrlwps;
    684  1.46   thorpej 			kp2p->p_realstat = kp->kp_proc.p_stat;
    685  1.46   thorpej 
    686  1.48     enami 			if (P_ZOMBIE(&kp->kp_proc) ||
    687  1.46   thorpej 			    kp->kp_proc.p_stats == NULL ||
    688  1.48     enami 			    KREAD(kd, (u_long)kp->kp_proc.p_stats, &pstats)) {
    689  1.34    simonb 				kp2p->p_uvalid = 0;
    690  1.34    simonb 			} else {
    691  1.34    simonb 				kp2p->p_uvalid = 1;
    692  1.34    simonb 
    693  1.39  christos 				kp2p->p_ustart_sec = (u_int32_t)
    694  1.46   thorpej 				    pstats.p_start.tv_sec;
    695  1.39  christos 				kp2p->p_ustart_usec = (u_int32_t)
    696  1.46   thorpej 				    pstats.p_start.tv_usec;
    697  1.39  christos 
    698  1.39  christos 				kp2p->p_uutime_sec = (u_int32_t)
    699  1.46   thorpej 				    pstats.p_ru.ru_utime.tv_sec;
    700  1.39  christos 				kp2p->p_uutime_usec = (u_int32_t)
    701  1.46   thorpej 				    pstats.p_ru.ru_utime.tv_usec;
    702  1.39  christos 				kp2p->p_ustime_sec = (u_int32_t)
    703  1.46   thorpej 				    pstats.p_ru.ru_stime.tv_sec;
    704  1.39  christos 				kp2p->p_ustime_usec = (u_int32_t)
    705  1.46   thorpej 				    pstats.p_ru.ru_stime.tv_usec;
    706  1.34    simonb 
    707  1.46   thorpej 				kp2p->p_uru_maxrss = pstats.p_ru.ru_maxrss;
    708  1.46   thorpej 				kp2p->p_uru_ixrss = pstats.p_ru.ru_ixrss;
    709  1.46   thorpej 				kp2p->p_uru_idrss = pstats.p_ru.ru_idrss;
    710  1.46   thorpej 				kp2p->p_uru_isrss = pstats.p_ru.ru_isrss;
    711  1.46   thorpej 				kp2p->p_uru_minflt = pstats.p_ru.ru_minflt;
    712  1.46   thorpej 				kp2p->p_uru_majflt = pstats.p_ru.ru_majflt;
    713  1.46   thorpej 				kp2p->p_uru_nswap = pstats.p_ru.ru_nswap;
    714  1.46   thorpej 				kp2p->p_uru_inblock = pstats.p_ru.ru_inblock;
    715  1.46   thorpej 				kp2p->p_uru_oublock = pstats.p_ru.ru_oublock;
    716  1.46   thorpej 				kp2p->p_uru_msgsnd = pstats.p_ru.ru_msgsnd;
    717  1.46   thorpej 				kp2p->p_uru_msgrcv = pstats.p_ru.ru_msgrcv;
    718  1.46   thorpej 				kp2p->p_uru_nsignals = pstats.p_ru.ru_nsignals;
    719  1.46   thorpej 				kp2p->p_uru_nvcsw = pstats.p_ru.ru_nvcsw;
    720  1.46   thorpej 				kp2p->p_uru_nivcsw = pstats.p_ru.ru_nivcsw;
    721  1.34    simonb 
    722  1.39  christos 				kp2p->p_uctime_sec = (u_int32_t)
    723  1.46   thorpej 				    (pstats.p_cru.ru_utime.tv_sec +
    724  1.46   thorpej 				    pstats.p_cru.ru_stime.tv_sec);
    725  1.39  christos 				kp2p->p_uctime_usec = (u_int32_t)
    726  1.46   thorpej 				    (pstats.p_cru.ru_utime.tv_usec +
    727  1.46   thorpej 				    pstats.p_cru.ru_stime.tv_usec);
    728  1.34    simonb 			}
    729  1.34    simonb 
    730  1.34    simonb 			memcpy(kp2c, &kp2, esize);
    731  1.34    simonb 			kp2c += esize;
    732  1.34    simonb 		}
    733  1.34    simonb 	}
    734  1.34    simonb 	*cnt = nprocs;
    735  1.34    simonb 	return (kd->procbase2);
    736  1.46   thorpej }
    737  1.46   thorpej 
    738  1.46   thorpej struct kinfo_lwp *
    739  1.46   thorpej kvm_getlwps(kd, pid, paddr, esize, cnt)
    740  1.46   thorpej 	kvm_t *kd;
    741  1.46   thorpej 	int pid;
    742  1.46   thorpej 	u_long paddr;
    743  1.46   thorpej 	size_t esize;
    744  1.46   thorpej 	int *cnt;
    745  1.46   thorpej {
    746  1.46   thorpej 	size_t size;
    747  1.52      ross 	int mib[5], nlwps;
    748  1.52      ross 	ssize_t st;
    749  1.46   thorpej 	struct kinfo_lwp *kl;
    750  1.46   thorpej 
    751  1.46   thorpej 	if (ISSYSCTL(kd)) {
    752  1.46   thorpej 		size = 0;
    753  1.46   thorpej 		mib[0] = CTL_KERN;
    754  1.46   thorpej 		mib[1] = KERN_LWP;
    755  1.46   thorpej 		mib[2] = pid;
    756  1.52      ross 		mib[3] = (int)esize;
    757  1.46   thorpej 		mib[4] = 0;
    758  1.71  christos again:
    759  1.52      ross 		st = sysctl(mib, 5, NULL, &size, NULL, (size_t)0);
    760  1.46   thorpej 		if (st == -1) {
    761  1.71  christos 			switch (errno) {
    762  1.72  christos 			case ESRCH: /* Treat this as a soft error; see kvm.c */
    763  1.72  christos 				_kvm_syserr(kd, NULL, "kvm_getlwps");
    764  1.71  christos 				return NULL;
    765  1.71  christos 			default:
    766  1.71  christos 				_kvm_syserr(kd, kd->program, "kvm_getlwps");
    767  1.71  christos 				return NULL;
    768  1.71  christos 			}
    769  1.46   thorpej 		}
    770  1.52      ross 		mib[4] = (int) (size / esize);
    771  1.61  christos 		KVM_ALLOC(kd, lwpbase, size);
    772  1.52      ross 		st = sysctl(mib, 5, kd->lwpbase, &size, NULL, (size_t)0);
    773  1.46   thorpej 		if (st == -1) {
    774  1.71  christos 			switch (errno) {
    775  1.72  christos 			case ESRCH: /* Treat this as a soft error; see kvm.c */
    776  1.72  christos 				_kvm_syserr(kd, NULL, "kvm_getlwps");
    777  1.71  christos 				return NULL;
    778  1.71  christos 			case ENOMEM:
    779  1.71  christos 				goto again;
    780  1.71  christos 			default:
    781  1.71  christos 				_kvm_syserr(kd, kd->program, "kvm_getlwps");
    782  1.71  christos 				return NULL;
    783  1.71  christos 			}
    784  1.46   thorpej 		}
    785  1.52      ross 		nlwps = (int) (size / esize);
    786  1.46   thorpej 	} else {
    787  1.46   thorpej 		/* grovel through the memory image */
    788  1.46   thorpej 		struct proc p;
    789  1.46   thorpej 		struct lwp l;
    790  1.46   thorpej 		u_long laddr;
    791  1.70  christos 		void *back;
    792  1.46   thorpej 		int i;
    793  1.46   thorpej 
    794  1.46   thorpej 		st = kvm_read(kd, paddr, &p, sizeof(p));
    795  1.46   thorpej 		if (st == -1) {
    796  1.46   thorpej 			_kvm_syserr(kd, kd->program, "kvm_getlwps");
    797  1.48     enami 			return (NULL);
    798  1.46   thorpej 		}
    799  1.46   thorpej 
    800  1.46   thorpej 		nlwps = p.p_nlwps;
    801  1.61  christos 		size = nlwps * sizeof(*kd->lwpbase);
    802  1.61  christos 		KVM_ALLOC(kd, lwpbase, size);
    803  1.57    atatat 		laddr = (u_long)PTRTOUINT64(p.p_lwps.lh_first);
    804  1.46   thorpej 		for (i = 0; (i < nlwps) && (laddr != 0); i++) {
    805  1.46   thorpej 			st = kvm_read(kd, laddr, &l, sizeof(l));
    806  1.46   thorpej 			if (st == -1) {
    807  1.46   thorpej 				_kvm_syserr(kd, kd->program, "kvm_getlwps");
    808  1.48     enami 				return (NULL);
    809  1.46   thorpej 			}
    810  1.46   thorpej 			kl = &kd->lwpbase[i];
    811  1.46   thorpej 			kl->l_laddr = laddr;
    812  1.70  christos 			kl->l_forw = PTRTOUINT64(l.l_runq.tqe_next);
    813  1.70  christos 			laddr = (u_long)PTRTOUINT64(l.l_runq.tqe_prev);
    814  1.70  christos 			st = kvm_read(kd, laddr, &back, sizeof(back));
    815  1.70  christos 			if (st == -1) {
    816  1.70  christos 				_kvm_syserr(kd, kd->program, "kvm_getlwps");
    817  1.70  christos 				return (NULL);
    818  1.70  christos 			}
    819  1.70  christos 			kl->l_back = PTRTOUINT64(back);
    820  1.57    atatat 			kl->l_addr = PTRTOUINT64(l.l_addr);
    821  1.46   thorpej 			kl->l_lid = l.l_lid;
    822  1.46   thorpej 			kl->l_flag = l.l_flag;
    823  1.46   thorpej 			kl->l_swtime = l.l_swtime;
    824  1.46   thorpej 			kl->l_slptime = l.l_slptime;
    825  1.46   thorpej 			kl->l_schedflags = 0; /* XXX */
    826  1.46   thorpej 			kl->l_holdcnt = l.l_holdcnt;
    827  1.46   thorpej 			kl->l_priority = l.l_priority;
    828  1.74        ad 			kl->l_usrpri = l.l_priority;
    829  1.46   thorpej 			kl->l_stat = l.l_stat;
    830  1.57    atatat 			kl->l_wchan = PTRTOUINT64(l.l_wchan);
    831  1.46   thorpej 			if (l.l_wmesg)
    832  1.46   thorpej 				(void)kvm_read(kd, (u_long)l.l_wmesg,
    833  1.52      ross 				    kl->l_wmesg, (size_t)WMESGLEN);
    834  1.46   thorpej 			kl->l_cpuid = KI_NOCPU;
    835  1.57    atatat 			laddr = (u_long)PTRTOUINT64(l.l_sibling.le_next);
    836  1.46   thorpej 		}
    837  1.46   thorpej 	}
    838  1.46   thorpej 
    839  1.46   thorpej 	*cnt = nlwps;
    840  1.48     enami 	return (kd->lwpbase);
    841  1.34    simonb }
    842  1.34    simonb 
    843   1.1       cgd struct kinfo_proc *
    844   1.1       cgd kvm_getprocs(kd, op, arg, cnt)
    845   1.1       cgd 	kvm_t *kd;
    846   1.1       cgd 	int op, arg;
    847   1.1       cgd 	int *cnt;
    848   1.1       cgd {
    849   1.7       cgd 	size_t size;
    850   1.7       cgd 	int mib[4], st, nprocs;
    851   1.1       cgd 
    852  1.34    simonb 	if (ISKMEM(kd)) {
    853   1.1       cgd 		size = 0;
    854   1.1       cgd 		mib[0] = CTL_KERN;
    855   1.1       cgd 		mib[1] = KERN_PROC;
    856   1.1       cgd 		mib[2] = op;
    857   1.1       cgd 		mib[3] = arg;
    858  1.52      ross 		st = sysctl(mib, 4, NULL, &size, NULL, (size_t)0);
    859   1.1       cgd 		if (st == -1) {
    860   1.1       cgd 			_kvm_syserr(kd, kd->program, "kvm_getprocs");
    861  1.48     enami 			return (NULL);
    862   1.1       cgd 		}
    863  1.61  christos 		KVM_ALLOC(kd, procbase, size);
    864  1.52      ross 		st = sysctl(mib, 4, kd->procbase, &size, NULL, (size_t)0);
    865   1.1       cgd 		if (st == -1) {
    866   1.1       cgd 			_kvm_syserr(kd, kd->program, "kvm_getprocs");
    867  1.48     enami 			return (NULL);
    868   1.1       cgd 		}
    869   1.1       cgd 		if (size % sizeof(struct kinfo_proc) != 0) {
    870   1.1       cgd 			_kvm_err(kd, kd->program,
    871  1.42     enami 			    "proc size mismatch (%lu total, %lu chunks)",
    872  1.42     enami 			    (u_long)size, (u_long)sizeof(struct kinfo_proc));
    873  1.48     enami 			return (NULL);
    874   1.1       cgd 		}
    875  1.52      ross 		nprocs = (int) (size / sizeof(struct kinfo_proc));
    876  1.34    simonb 	} else if (ISSYSCTL(kd)) {
    877  1.34    simonb 		_kvm_err(kd, kd->program, "kvm_open called with KVM_NO_FILES, "
    878  1.34    simonb 		    "can't use kvm_getprocs");
    879  1.48     enami 		return (NULL);
    880   1.1       cgd 	} else {
    881  1.53  christos 		struct nlist nl[4], *p;
    882   1.1       cgd 
    883  1.56  christos 		(void)memset(nl, 0, sizeof(nl));
    884   1.1       cgd 		nl[0].n_name = "_nprocs";
    885   1.1       cgd 		nl[1].n_name = "_allproc";
    886  1.53  christos 		nl[2].n_name = "_zombproc";
    887  1.53  christos 		nl[3].n_name = NULL;
    888   1.1       cgd 
    889   1.1       cgd 		if (kvm_nlist(kd, nl) != 0) {
    890   1.1       cgd 			for (p = nl; p->n_type != 0; ++p)
    891  1.48     enami 				continue;
    892   1.1       cgd 			_kvm_err(kd, kd->program,
    893  1.48     enami 			    "%s: no such symbol", p->n_name);
    894  1.48     enami 			return (NULL);
    895   1.1       cgd 		}
    896   1.1       cgd 		if (KREAD(kd, nl[0].n_value, &nprocs)) {
    897   1.1       cgd 			_kvm_err(kd, kd->program, "can't read nprocs");
    898  1.48     enami 			return (NULL);
    899   1.1       cgd 		}
    900  1.61  christos 		size = nprocs * sizeof(*kd->procbase);
    901  1.61  christos 		KVM_ALLOC(kd, procbase, size);
    902   1.1       cgd 		nprocs = kvm_deadprocs(kd, op, arg, nl[1].n_value,
    903  1.53  christos 		    nl[2].n_value, nprocs);
    904  1.32       chs 		if (nprocs < 0)
    905  1.48     enami 			return (NULL);
    906   1.1       cgd #ifdef notdef
    907   1.1       cgd 		size = nprocs * sizeof(struct kinfo_proc);
    908   1.1       cgd 		(void)realloc(kd->procbase, size);
    909   1.1       cgd #endif
    910   1.1       cgd 	}
    911   1.1       cgd 	*cnt = nprocs;
    912   1.1       cgd 	return (kd->procbase);
    913   1.1       cgd }
    914   1.1       cgd 
    915   1.1       cgd void *
    916   1.1       cgd _kvm_realloc(kd, p, n)
    917   1.1       cgd 	kvm_t *kd;
    918   1.1       cgd 	void *p;
    919   1.1       cgd 	size_t n;
    920   1.1       cgd {
    921  1.34    simonb 	void *np = realloc(p, n);
    922   1.1       cgd 
    923  1.36      tron 	if (np == NULL)
    924   1.1       cgd 		_kvm_err(kd, kd->program, "out of memory");
    925   1.1       cgd 	return (np);
    926   1.1       cgd }
    927   1.1       cgd 
    928   1.1       cgd /*
    929   1.1       cgd  * Read in an argument vector from the user address space of process p.
    930  1.31    simonb  * addr if the user-space base address of narg null-terminated contiguous
    931   1.1       cgd  * strings.  This is used to read in both the command arguments and
    932   1.1       cgd  * environment strings.  Read at most maxcnt characters of strings.
    933   1.1       cgd  */
    934   1.1       cgd static char **
    935   1.1       cgd kvm_argv(kd, p, addr, narg, maxcnt)
    936   1.1       cgd 	kvm_t *kd;
    937  1.34    simonb 	const struct miniproc *p;
    938  1.21     perry 	u_long addr;
    939  1.21     perry 	int narg;
    940  1.21     perry 	int maxcnt;
    941  1.21     perry {
    942  1.21     perry 	char *np, *cp, *ep, *ap;
    943  1.28  christos 	u_long oaddr = (u_long)~0L;
    944  1.28  christos 	u_long len;
    945  1.28  christos 	size_t cc;
    946  1.21     perry 	char **argv;
    947   1.1       cgd 
    948   1.1       cgd 	/*
    949  1.58    toshii 	 * Check that there aren't an unreasonable number of arguments,
    950   1.1       cgd 	 * and that the address is in user space.
    951   1.1       cgd 	 */
    952  1.18       gwr 	if (narg > ARG_MAX || addr < kd->min_uva || addr >= kd->max_uva)
    953  1.48     enami 		return (NULL);
    954   1.1       cgd 
    955  1.36      tron 	if (kd->argv == NULL) {
    956   1.1       cgd 		/*
    957   1.1       cgd 		 * Try to avoid reallocs.
    958   1.1       cgd 		 */
    959   1.1       cgd 		kd->argc = MAX(narg + 1, 32);
    960  1.61  christos 		kd->argv = _kvm_malloc(kd, kd->argc * sizeof(*kd->argv));
    961  1.36      tron 		if (kd->argv == NULL)
    962  1.48     enami 			return (NULL);
    963   1.1       cgd 	} else if (narg + 1 > kd->argc) {
    964   1.1       cgd 		kd->argc = MAX(2 * kd->argc, narg + 1);
    965  1.61  christos 		kd->argv = _kvm_realloc(kd, kd->argv, kd->argc *
    966  1.48     enami 		    sizeof(*kd->argv));
    967  1.36      tron 		if (kd->argv == NULL)
    968  1.48     enami 			return (NULL);
    969   1.1       cgd 	}
    970  1.36      tron 	if (kd->argspc == NULL) {
    971  1.61  christos 		kd->argspc = _kvm_malloc(kd, (size_t)kd->nbpg);
    972  1.36      tron 		if (kd->argspc == NULL)
    973  1.48     enami 			return (NULL);
    974  1.61  christos 		kd->argspc_len = kd->nbpg;
    975   1.1       cgd 	}
    976  1.36      tron 	if (kd->argbuf == NULL) {
    977  1.61  christos 		kd->argbuf = _kvm_malloc(kd, (size_t)kd->nbpg);
    978  1.36      tron 		if (kd->argbuf == NULL)
    979  1.48     enami 			return (NULL);
    980  1.10   mycroft 	}
    981  1.10   mycroft 	cc = sizeof(char *) * narg;
    982  1.34    simonb 	if (kvm_ureadm(kd, p, addr, (void *)kd->argv, cc) != cc)
    983  1.48     enami 		return (NULL);
    984  1.10   mycroft 	ap = np = kd->argspc;
    985   1.1       cgd 	argv = kd->argv;
    986   1.1       cgd 	len = 0;
    987   1.1       cgd 	/*
    988   1.1       cgd 	 * Loop over pages, filling in the argument vector.
    989   1.1       cgd 	 */
    990  1.36      tron 	while (argv < kd->argv + narg && *argv != NULL) {
    991  1.10   mycroft 		addr = (u_long)*argv & ~(kd->nbpg - 1);
    992  1.10   mycroft 		if (addr != oaddr) {
    993  1.34    simonb 			if (kvm_ureadm(kd, p, addr, kd->argbuf,
    994  1.28  christos 			    (size_t)kd->nbpg) != kd->nbpg)
    995  1.48     enami 				return (NULL);
    996  1.10   mycroft 			oaddr = addr;
    997  1.10   mycroft 		}
    998  1.10   mycroft 		addr = (u_long)*argv & (kd->nbpg - 1);
    999  1.28  christos 		cp = kd->argbuf + (size_t)addr;
   1000  1.28  christos 		cc = kd->nbpg - (size_t)addr;
   1001  1.28  christos 		if (maxcnt > 0 && cc > (size_t)(maxcnt - len))
   1002  1.28  christos 			cc = (size_t)(maxcnt - len);
   1003  1.10   mycroft 		ep = memchr(cp, '\0', cc);
   1004  1.36      tron 		if (ep != NULL)
   1005  1.10   mycroft 			cc = ep - cp + 1;
   1006  1.61  christos 		if (len + cc > kd->argspc_len) {
   1007  1.52      ross 			ptrdiff_t off;
   1008  1.21     perry 			char **pp;
   1009  1.21     perry 			char *op = kd->argspc;
   1010   1.1       cgd 
   1011  1.61  christos 			kd->argspc_len *= 2;
   1012  1.61  christos 			kd->argspc = _kvm_realloc(kd, kd->argspc,
   1013  1.61  christos 			    kd->argspc_len);
   1014  1.36      tron 			if (kd->argspc == NULL)
   1015  1.48     enami 				return (NULL);
   1016   1.1       cgd 			/*
   1017   1.1       cgd 			 * Adjust argv pointers in case realloc moved
   1018   1.1       cgd 			 * the string space.
   1019   1.1       cgd 			 */
   1020   1.1       cgd 			off = kd->argspc - op;
   1021  1.13   mycroft 			for (pp = kd->argv; pp < argv; pp++)
   1022   1.1       cgd 				*pp += off;
   1023  1.12   mycroft 			ap += off;
   1024  1.12   mycroft 			np += off;
   1025   1.1       cgd 		}
   1026  1.10   mycroft 		memcpy(np, cp, cc);
   1027  1.10   mycroft 		np += cc;
   1028   1.1       cgd 		len += cc;
   1029  1.36      tron 		if (ep != NULL) {
   1030  1.10   mycroft 			*argv++ = ap;
   1031  1.10   mycroft 			ap = np;
   1032  1.10   mycroft 		} else
   1033  1.10   mycroft 			*argv += cc;
   1034   1.1       cgd 		if (maxcnt > 0 && len >= maxcnt) {
   1035   1.1       cgd 			/*
   1036   1.1       cgd 			 * We're stopping prematurely.  Terminate the
   1037  1.10   mycroft 			 * current string.
   1038   1.1       cgd 			 */
   1039  1.36      tron 			if (ep == NULL) {
   1040  1.10   mycroft 				*np = '\0';
   1041  1.14   mycroft 				*argv++ = ap;
   1042  1.10   mycroft 			}
   1043  1.10   mycroft 			break;
   1044   1.1       cgd 		}
   1045   1.1       cgd 	}
   1046  1.10   mycroft 	/* Make sure argv is terminated. */
   1047  1.36      tron 	*argv = NULL;
   1048  1.10   mycroft 	return (kd->argv);
   1049   1.1       cgd }
   1050   1.1       cgd 
   1051   1.1       cgd static void
   1052   1.1       cgd ps_str_a(p, addr, n)
   1053   1.1       cgd 	struct ps_strings *p;
   1054   1.1       cgd 	u_long *addr;
   1055   1.1       cgd 	int *n;
   1056   1.1       cgd {
   1057  1.48     enami 
   1058   1.1       cgd 	*addr = (u_long)p->ps_argvstr;
   1059   1.1       cgd 	*n = p->ps_nargvstr;
   1060   1.1       cgd }
   1061   1.1       cgd 
   1062   1.1       cgd static void
   1063   1.1       cgd ps_str_e(p, addr, n)
   1064   1.1       cgd 	struct ps_strings *p;
   1065   1.1       cgd 	u_long *addr;
   1066   1.1       cgd 	int *n;
   1067   1.1       cgd {
   1068  1.48     enami 
   1069   1.1       cgd 	*addr = (u_long)p->ps_envstr;
   1070   1.1       cgd 	*n = p->ps_nenvstr;
   1071   1.1       cgd }
   1072   1.1       cgd 
   1073   1.1       cgd /*
   1074   1.1       cgd  * Determine if the proc indicated by p is still active.
   1075   1.1       cgd  * This test is not 100% foolproof in theory, but chances of
   1076   1.1       cgd  * being wrong are very low.
   1077   1.1       cgd  */
   1078   1.1       cgd static int
   1079   1.1       cgd proc_verify(kd, kernp, p)
   1080   1.1       cgd 	kvm_t *kd;
   1081   1.1       cgd 	u_long kernp;
   1082  1.34    simonb 	const struct miniproc *p;
   1083   1.1       cgd {
   1084   1.1       cgd 	struct proc kernproc;
   1085   1.1       cgd 
   1086   1.1       cgd 	/*
   1087   1.1       cgd 	 * Just read in the whole proc.  It's not that big relative
   1088   1.1       cgd 	 * to the cost of the read system call.
   1089   1.1       cgd 	 */
   1090  1.34    simonb 	if (kvm_read(kd, kernp, &kernproc, sizeof(kernproc)) !=
   1091   1.1       cgd 	    sizeof(kernproc))
   1092  1.48     enami 		return (0);
   1093   1.1       cgd 	return (p->p_pid == kernproc.p_pid &&
   1094  1.48     enami 	    (kernproc.p_stat != SZOMB || p->p_stat == SZOMB));
   1095   1.1       cgd }
   1096   1.1       cgd 
   1097   1.1       cgd static char **
   1098  1.34    simonb kvm_doargv(kd, p, nchr, info)
   1099   1.1       cgd 	kvm_t *kd;
   1100  1.34    simonb 	const struct miniproc *p;
   1101   1.1       cgd 	int nchr;
   1102  1.10   mycroft 	void (*info)(struct ps_strings *, u_long *, int *);
   1103   1.1       cgd {
   1104  1.21     perry 	char **ap;
   1105   1.1       cgd 	u_long addr;
   1106   1.1       cgd 	int cnt;
   1107   1.1       cgd 	struct ps_strings arginfo;
   1108   1.1       cgd 
   1109   1.1       cgd 	/*
   1110   1.1       cgd 	 * Pointers are stored at the top of the user stack.
   1111   1.1       cgd 	 */
   1112  1.18       gwr 	if (p->p_stat == SZOMB)
   1113  1.48     enami 		return (NULL);
   1114  1.52      ross 	cnt = (int)kvm_ureadm(kd, p, kd->usrstack - sizeof(arginfo),
   1115  1.28  christos 	    (void *)&arginfo, sizeof(arginfo));
   1116  1.18       gwr 	if (cnt != sizeof(arginfo))
   1117  1.48     enami 		return (NULL);
   1118   1.1       cgd 
   1119   1.1       cgd 	(*info)(&arginfo, &addr, &cnt);
   1120   1.3   mycroft 	if (cnt == 0)
   1121  1.48     enami 		return (NULL);
   1122   1.1       cgd 	ap = kvm_argv(kd, p, addr, cnt, nchr);
   1123   1.1       cgd 	/*
   1124   1.1       cgd 	 * For live kernels, make sure this process didn't go away.
   1125   1.1       cgd 	 */
   1126  1.36      tron 	if (ap != NULL && ISALIVE(kd) &&
   1127  1.34    simonb 	    !proc_verify(kd, (u_long)p->p_paddr, p))
   1128  1.36      tron 		ap = NULL;
   1129   1.1       cgd 	return (ap);
   1130   1.1       cgd }
   1131   1.1       cgd 
   1132   1.1       cgd /*
   1133   1.1       cgd  * Get the command args.  This code is now machine independent.
   1134   1.1       cgd  */
   1135   1.1       cgd char **
   1136   1.1       cgd kvm_getargv(kd, kp, nchr)
   1137   1.1       cgd 	kvm_t *kd;
   1138   1.1       cgd 	const struct kinfo_proc *kp;
   1139   1.1       cgd 	int nchr;
   1140   1.1       cgd {
   1141  1.34    simonb 	struct miniproc p;
   1142  1.34    simonb 
   1143  1.34    simonb 	KPTOMINI(kp, &p);
   1144  1.34    simonb 	return (kvm_doargv(kd, &p, nchr, ps_str_a));
   1145   1.1       cgd }
   1146   1.1       cgd 
   1147   1.1       cgd char **
   1148   1.1       cgd kvm_getenvv(kd, kp, nchr)
   1149   1.1       cgd 	kvm_t *kd;
   1150   1.1       cgd 	const struct kinfo_proc *kp;
   1151   1.1       cgd 	int nchr;
   1152   1.1       cgd {
   1153  1.34    simonb 	struct miniproc p;
   1154  1.34    simonb 
   1155  1.34    simonb 	KPTOMINI(kp, &p);
   1156  1.34    simonb 	return (kvm_doargv(kd, &p, nchr, ps_str_e));
   1157  1.34    simonb }
   1158  1.34    simonb 
   1159  1.34    simonb static char **
   1160  1.34    simonb kvm_doargv2(kd, pid, type, nchr)
   1161  1.34    simonb 	kvm_t *kd;
   1162  1.34    simonb 	pid_t pid;
   1163  1.34    simonb 	int type;
   1164  1.34    simonb 	int nchr;
   1165  1.34    simonb {
   1166  1.34    simonb 	size_t bufs;
   1167  1.39  christos 	int narg, mib[4];
   1168  1.61  christos 	size_t newargspc_len;
   1169  1.34    simonb 	char **ap, *bp, *endp;
   1170  1.34    simonb 
   1171  1.34    simonb 	/*
   1172  1.58    toshii 	 * Check that there aren't an unreasonable number of arguments.
   1173  1.34    simonb 	 */
   1174  1.34    simonb 	if (nchr > ARG_MAX)
   1175  1.48     enami 		return (NULL);
   1176  1.34    simonb 
   1177  1.34    simonb 	if (nchr == 0)
   1178  1.34    simonb 		nchr = ARG_MAX;
   1179  1.34    simonb 
   1180  1.34    simonb 	/* Get number of strings in argv */
   1181  1.34    simonb 	mib[0] = CTL_KERN;
   1182  1.34    simonb 	mib[1] = KERN_PROC_ARGS;
   1183  1.34    simonb 	mib[2] = pid;
   1184  1.34    simonb 	mib[3] = type == KERN_PROC_ARGV ? KERN_PROC_NARGV : KERN_PROC_NENV;
   1185  1.34    simonb 	bufs = sizeof(narg);
   1186  1.52      ross 	if (sysctl(mib, 4, &narg, &bufs, NULL, (size_t)0) == -1)
   1187  1.48     enami 		return (NULL);
   1188  1.34    simonb 
   1189  1.36      tron 	if (kd->argv == NULL) {
   1190  1.34    simonb 		/*
   1191  1.34    simonb 		 * Try to avoid reallocs.
   1192  1.34    simonb 		 */
   1193  1.34    simonb 		kd->argc = MAX(narg + 1, 32);
   1194  1.61  christos 		kd->argv = _kvm_malloc(kd, kd->argc * sizeof(*kd->argv));
   1195  1.36      tron 		if (kd->argv == NULL)
   1196  1.48     enami 			return (NULL);
   1197  1.34    simonb 	} else if (narg + 1 > kd->argc) {
   1198  1.34    simonb 		kd->argc = MAX(2 * kd->argc, narg + 1);
   1199  1.61  christos 		kd->argv = _kvm_realloc(kd, kd->argv, kd->argc *
   1200  1.48     enami 		    sizeof(*kd->argv));
   1201  1.36      tron 		if (kd->argv == NULL)
   1202  1.48     enami 			return (NULL);
   1203  1.34    simonb 	}
   1204  1.34    simonb 
   1205  1.61  christos 	newargspc_len = MIN(nchr, ARG_MAX);
   1206  1.61  christos 	KVM_ALLOC(kd, argspc, newargspc_len);
   1207  1.61  christos 	memset(kd->argspc, 0, (size_t)kd->argspc_len);	/* XXX necessary? */
   1208  1.34    simonb 
   1209  1.34    simonb 	mib[0] = CTL_KERN;
   1210  1.34    simonb 	mib[1] = KERN_PROC_ARGS;
   1211  1.34    simonb 	mib[2] = pid;
   1212  1.34    simonb 	mib[3] = type;
   1213  1.61  christos 	bufs = kd->argspc_len;
   1214  1.52      ross 	if (sysctl(mib, 4, kd->argspc, &bufs, NULL, (size_t)0) == -1)
   1215  1.48     enami 		return (NULL);
   1216  1.34    simonb 
   1217  1.34    simonb 	bp = kd->argspc;
   1218  1.61  christos 	bp[kd->argspc_len-1] = '\0';	/* make sure the string ends with nul */
   1219  1.34    simonb 	ap = kd->argv;
   1220  1.34    simonb 	endp = bp + MIN(nchr, bufs);
   1221  1.34    simonb 
   1222  1.34    simonb 	while (bp < endp) {
   1223  1.34    simonb 		*ap++ = bp;
   1224  1.48     enami 		/*
   1225  1.48     enami 		 * XXX: don't need following anymore, or stick check
   1226  1.48     enami 		 * for max argc in above while loop?
   1227  1.48     enami 		 */
   1228  1.34    simonb 		if (ap >= kd->argv + kd->argc) {
   1229  1.34    simonb 			kd->argc *= 2;
   1230  1.34    simonb 			kd->argv = _kvm_realloc(kd, kd->argv,
   1231  1.34    simonb 			    kd->argc * sizeof(*kd->argv));
   1232  1.44  jdolecek 			ap = kd->argv;
   1233  1.34    simonb 		}
   1234  1.34    simonb 		bp += strlen(bp) + 1;
   1235  1.34    simonb 	}
   1236  1.34    simonb 	*ap = NULL;
   1237  1.48     enami 
   1238  1.34    simonb 	return (kd->argv);
   1239  1.34    simonb }
   1240  1.34    simonb 
   1241  1.34    simonb char **
   1242  1.34    simonb kvm_getargv2(kd, kp, nchr)
   1243  1.34    simonb 	kvm_t *kd;
   1244  1.34    simonb 	const struct kinfo_proc2 *kp;
   1245  1.34    simonb 	int nchr;
   1246  1.34    simonb {
   1247  1.48     enami 
   1248  1.34    simonb 	return (kvm_doargv2(kd, kp->p_pid, KERN_PROC_ARGV, nchr));
   1249  1.34    simonb }
   1250  1.34    simonb 
   1251  1.34    simonb char **
   1252  1.34    simonb kvm_getenvv2(kd, kp, nchr)
   1253  1.34    simonb 	kvm_t *kd;
   1254  1.34    simonb 	const struct kinfo_proc2 *kp;
   1255  1.34    simonb 	int nchr;
   1256  1.34    simonb {
   1257  1.48     enami 
   1258  1.34    simonb 	return (kvm_doargv2(kd, kp->p_pid, KERN_PROC_ENV, nchr));
   1259   1.1       cgd }
   1260   1.1       cgd 
   1261   1.1       cgd /*
   1262   1.1       cgd  * Read from user space.  The user context is given by p.
   1263   1.1       cgd  */
   1264  1.34    simonb static ssize_t
   1265  1.34    simonb kvm_ureadm(kd, p, uva, buf, len)
   1266   1.1       cgd 	kvm_t *kd;
   1267  1.34    simonb 	const struct miniproc *p;
   1268  1.21     perry 	u_long uva;
   1269  1.21     perry 	char *buf;
   1270  1.21     perry 	size_t len;
   1271   1.1       cgd {
   1272  1.21     perry 	char *cp;
   1273   1.1       cgd 
   1274   1.1       cgd 	cp = buf;
   1275   1.1       cgd 	while (len > 0) {
   1276  1.28  christos 		size_t cc;
   1277  1.21     perry 		char *dp;
   1278  1.15       cgd 		u_long cnt;
   1279   1.8   mycroft 
   1280  1.34    simonb 		dp = _kvm_ureadm(kd, p, uva, &cnt);
   1281  1.36      tron 		if (dp == NULL) {
   1282  1.41  sommerfe 			_kvm_err(kd, 0, "invalid address (%lx)", uva);
   1283  1.48     enami 			return (0);
   1284   1.8   mycroft 		}
   1285  1.28  christos 		cc = (size_t)MIN(cnt, len);
   1286  1.25     perry 		memcpy(cp, dp, cc);
   1287   1.1       cgd 		cp += cc;
   1288   1.1       cgd 		uva += cc;
   1289   1.1       cgd 		len -= cc;
   1290   1.1       cgd 	}
   1291   1.1       cgd 	return (ssize_t)(cp - buf);
   1292  1.34    simonb }
   1293  1.34    simonb 
   1294  1.34    simonb ssize_t
   1295  1.34    simonb kvm_uread(kd, p, uva, buf, len)
   1296  1.34    simonb 	kvm_t *kd;
   1297  1.34    simonb 	const struct proc *p;
   1298  1.48     enami 	u_long uva;
   1299  1.34    simonb 	char *buf;
   1300  1.34    simonb 	size_t len;
   1301  1.34    simonb {
   1302  1.34    simonb 	struct miniproc mp;
   1303  1.34    simonb 
   1304  1.34    simonb 	PTOMINI(p, &mp);
   1305  1.34    simonb 	return (kvm_ureadm(kd, &mp, uva, buf, len));
   1306   1.1       cgd }
   1307