1 /*-
2 * SPDX-License-Identifier: BSD-3-Clause
3 *
4 * Copyright (c) 1982, 1986, 1989, 1991, 1993
5 * The Regents of the University of California. All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 * notice, this list of conditions and the following disclaimer.
12 * 2. Redistributions in binary form must reproduce the above copyright
13 * notice, this list of conditions and the following disclaimer in the
14 * documentation and/or other materials provided with the distribution.
15 * 3. Neither the name of the University nor the names of its contributors
16 * may be used to endorse or promote products derived from this software
17 * without specific prior written permission.
18 *
19 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
20 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
21 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
22 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
23 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
24 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
25 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
26 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
27 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
28 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
29 * SUCH DAMAGE.
30 *
31 * @(#)kern_proc.c 8.7 (Berkeley) 2/14/95
32 */
33
34 #include <sys/cdefs.h>
35 __FBSDID("$FreeBSD$");
36
37 #include "opt_ddb.h"
38 #include "opt_ktrace.h"
39 #include "opt_kstack_pages.h"
40 #include "opt_stack.h"
41
42 #include <sys/param.h>
43 #include <sys/systm.h>
44 #include <sys/elf.h>
45 #include <sys/eventhandler.h>
46 #include <sys/exec.h>
47 #include <sys/jail.h>
48 #include <sys/kernel.h>
49 #include <sys/limits.h>
50 #include <sys/lock.h>
51 #include <sys/loginclass.h>
52 #include <sys/malloc.h>
53 #include <sys/mman.h>
54 #include <sys/mount.h>
55 #include <sys/mutex.h>
56 #include <sys/proc.h>
57 #include <sys/ptrace.h>
58 #include <sys/refcount.h>
59 #include <sys/resourcevar.h>
60 #include <sys/rwlock.h>
61 #include <sys/sbuf.h>
62 #include <sys/sysent.h>
63 #include <sys/sched.h>
64 #include <sys/smp.h>
65 #include <sys/stack.h>
66 #include <sys/stat.h>
67 #include <sys/sysctl.h>
68 #include <sys/filedesc.h>
69 #include <sys/tty.h>
70 #include <sys/signalvar.h>
71 #include <sys/sdt.h>
72 #include <sys/sx.h>
73 #include <sys/user.h>
74 #include <sys/vnode.h>
75 #include <sys/wait.h>
76
77 #ifdef DDB
78 #include <ddb/ddb.h>
79 #endif
80
81 #include <vm/vm.h>
82 #include <vm/vm_param.h>
83 #include <vm/vm_extern.h>
84 #include <vm/pmap.h>
85 #include <vm/vm_map.h>
86 #include <vm/vm_object.h>
87 #include <vm/vm_page.h>
88 #include <vm/uma.h>
89
90 #ifdef COMPAT_FREEBSD32
91 #include <compat/freebsd32/freebsd32.h>
92 #include <compat/freebsd32/freebsd32_util.h>
93 #endif
94
95 SDT_PROVIDER_DEFINE(proc);
96 SDT_PROBE_DEFINE4(proc, , ctor, entry, "struct proc *", "int", "void *",
97 "int");
98 SDT_PROBE_DEFINE4(proc, , ctor, return, "struct proc *", "int", "void *",
99 "int");
100 SDT_PROBE_DEFINE4(proc, , dtor, entry, "struct proc *", "int", "void *",
101 "struct thread *");
102 SDT_PROBE_DEFINE3(proc, , dtor, return, "struct proc *", "int", "void *");
103 SDT_PROBE_DEFINE3(proc, , init, entry, "struct proc *", "int", "int");
104 SDT_PROBE_DEFINE3(proc, , init, return, "struct proc *", "int", "int");
105
106 MALLOC_DEFINE(M_PGRP, "pgrp", "process group header");
107 MALLOC_DEFINE(M_SESSION, "session", "session header");
108 static MALLOC_DEFINE(M_PROC, "proc", "Proc structures");
109 MALLOC_DEFINE(M_SUBPROC, "subproc", "Proc sub-structures");
110
111 static void doenterpgrp(struct proc *, struct pgrp *);
112 static void orphanpg(struct pgrp *pg);
113 static void fill_kinfo_aggregate(struct proc *p, struct kinfo_proc *kp);
114 static void fill_kinfo_proc_only(struct proc *p, struct kinfo_proc *kp);
115 static void fill_kinfo_thread(struct thread *td, struct kinfo_proc *kp,
116 int preferthread);
117 static void pgadjustjobc(struct pgrp *pgrp, int entering);
118 static void pgdelete(struct pgrp *);
119 static int proc_ctor(void *mem, int size, void *arg, int flags);
120 static void proc_dtor(void *mem, int size, void *arg);
121 static int proc_init(void *mem, int size, int flags);
122 static void proc_fini(void *mem, int size);
123 static void pargs_free(struct pargs *pa);
124 static struct proc *zpfind_locked(pid_t pid);
125
126 /*
127 * Other process lists
128 */
129 struct pidhashhead *pidhashtbl;
130 u_long pidhash;
131 struct pgrphashhead *pgrphashtbl;
132 u_long pgrphash;
133 struct proclist allproc;
134 struct proclist zombproc;
135 struct sx __exclusive_cache_line allproc_lock;
136 struct sx __exclusive_cache_line proctree_lock;
137 struct mtx __exclusive_cache_line ppeers_lock;
138 uma_zone_t proc_zone;
139
140 /*
141 * The offset of various fields in struct proc and struct thread.
142 * These are used by kernel debuggers to enumerate kernel threads and
143 * processes.
144 */
145 const int proc_off_p_pid = offsetof(struct proc, p_pid);
146 const int proc_off_p_comm = offsetof(struct proc, p_comm);
147 const int proc_off_p_list = offsetof(struct proc, p_list);
148 const int proc_off_p_threads = offsetof(struct proc, p_threads);
149 const int thread_off_td_tid = offsetof(struct thread, td_tid);
150 const int thread_off_td_name = offsetof(struct thread, td_name);
151 const int thread_off_td_oncpu = offsetof(struct thread, td_oncpu);
152 const int thread_off_td_pcb = offsetof(struct thread, td_pcb);
153 const int thread_off_td_plist = offsetof(struct thread, td_plist);
154
155 EVENTHANDLER_LIST_DEFINE(process_ctor);
156 EVENTHANDLER_LIST_DEFINE(process_dtor);
157 EVENTHANDLER_LIST_DEFINE(process_init);
158 EVENTHANDLER_LIST_DEFINE(process_fini);
159 EVENTHANDLER_LIST_DEFINE(process_exit);
160 EVENTHANDLER_LIST_DEFINE(process_fork);
161 EVENTHANDLER_LIST_DEFINE(process_exec);
162
163 EVENTHANDLER_LIST_DECLARE(thread_ctor);
164 EVENTHANDLER_LIST_DECLARE(thread_dtor);
165
166 int kstack_pages = KSTACK_PAGES;
167 SYSCTL_INT(_kern, OID_AUTO, kstack_pages, CTLFLAG_RD, &kstack_pages, 0,
168 "Kernel stack size in pages");
169 static int vmmap_skip_res_cnt = 0;
170 SYSCTL_INT(_kern, OID_AUTO, proc_vmmap_skip_resident_count, CTLFLAG_RW,
171 &vmmap_skip_res_cnt, 0,
172 "Skip calculation of the pages resident count in kern.proc.vmmap");
173
174 CTASSERT(sizeof(struct kinfo_proc) == KINFO_PROC_SIZE);
175 #ifdef COMPAT_FREEBSD32
176 CTASSERT(sizeof(struct kinfo_proc32) == KINFO_PROC32_SIZE);
177 #endif
178
179 /*
180 * Initialize global process hashing structures.
181 */
182 void
procinit(void)183 procinit(void)
184 {
185
186 sx_init(&allproc_lock, "allproc");
187 sx_init(&proctree_lock, "proctree");
188 mtx_init(&ppeers_lock, "p_peers", NULL, MTX_DEF);
189 LIST_INIT(&allproc);
190 LIST_INIT(&zombproc);
191 pidhashtbl = hashinit(maxproc / 4, M_PROC, &pidhash);
192 pgrphashtbl = hashinit(maxproc / 4, M_PROC, &pgrphash);
193 proc_zone = uma_zcreate("PROC", sched_sizeof_proc(),
194 proc_ctor, proc_dtor, proc_init, proc_fini,
195 UMA_ALIGN_PTR, UMA_ZONE_NOFREE);
196 uihashinit();
197 }
198
199 /*
200 * Prepare a proc for use.
201 */
202 static int
proc_ctor(void * mem,int size,void * arg,int flags)203 proc_ctor(void *mem, int size, void *arg, int flags)
204 {
205 struct proc *p;
206 struct thread *td;
207
208 p = (struct proc *)mem;
209 SDT_PROBE4(proc, , ctor , entry, p, size, arg, flags);
210 EVENTHANDLER_DIRECT_INVOKE(process_ctor, p);
211 SDT_PROBE4(proc, , ctor , return, p, size, arg, flags);
212 td = FIRST_THREAD_IN_PROC(p);
213 if (td != NULL) {
214 /* Make sure all thread constructors are executed */
215 EVENTHANDLER_DIRECT_INVOKE(thread_ctor, td);
216 }
217 return (0);
218 }
219
220 /*
221 * Reclaim a proc after use.
222 */
223 static void
proc_dtor(void * mem,int size,void * arg)224 proc_dtor(void *mem, int size, void *arg)
225 {
226 struct proc *p;
227 struct thread *td;
228
229 /* INVARIANTS checks go here */
230 p = (struct proc *)mem;
231 td = FIRST_THREAD_IN_PROC(p);
232 SDT_PROBE4(proc, , dtor, entry, p, size, arg, td);
233 if (td != NULL) {
234 #ifdef INVARIANTS
235 KASSERT((p->p_numthreads == 1),
236 ("bad number of threads in exiting process"));
237 KASSERT(STAILQ_EMPTY(&p->p_ktr), ("proc_dtor: non-empty p_ktr"));
238 #endif
239 /* Free all OSD associated to this thread. */
240 osd_thread_exit(td);
241 td_softdep_cleanup(td);
242 MPASS(td->td_su == NULL);
243
244 /* Make sure all thread destructors are executed */
245 EVENTHANDLER_DIRECT_INVOKE(thread_dtor, td);
246 }
247 EVENTHANDLER_DIRECT_INVOKE(process_dtor, p);
248 if (p->p_ksi != NULL)
249 KASSERT(! KSI_ONQ(p->p_ksi), ("SIGCHLD queue"));
250 SDT_PROBE3(proc, , dtor, return, p, size, arg);
251 }
252
253 /*
254 * Initialize type-stable parts of a proc (when newly created).
255 */
256 static int
proc_init(void * mem,int size,int flags)257 proc_init(void *mem, int size, int flags)
258 {
259 struct proc *p;
260
261 p = (struct proc *)mem;
262 SDT_PROBE3(proc, , init, entry, p, size, flags);
263 mtx_init(&p->p_mtx, "process lock", NULL, MTX_DEF | MTX_DUPOK | MTX_NEW);
264 mtx_init(&p->p_slock, "process slock", NULL, MTX_SPIN | MTX_NEW);
265 mtx_init(&p->p_statmtx, "pstatl", NULL, MTX_SPIN | MTX_NEW);
266 mtx_init(&p->p_itimmtx, "pitiml", NULL, MTX_SPIN | MTX_NEW);
267 mtx_init(&p->p_profmtx, "pprofl", NULL, MTX_SPIN | MTX_NEW);
268 cv_init(&p->p_pwait, "ppwait");
269 TAILQ_INIT(&p->p_threads); /* all threads in proc */
270 EVENTHANDLER_DIRECT_INVOKE(process_init, p);
271 p->p_stats = pstats_alloc();
272 p->p_pgrp = NULL;
273 SDT_PROBE3(proc, , init, return, p, size, flags);
274 return (0);
275 }
276
277 /*
278 * UMA should ensure that this function is never called.
279 * Freeing a proc structure would violate type stability.
280 */
281 static void
proc_fini(void * mem,int size)282 proc_fini(void *mem, int size)
283 {
284 #ifdef notnow
285 struct proc *p;
286
287 p = (struct proc *)mem;
288 EVENTHANDLER_DIRECT_INVOKE(process_fini, p);
289 pstats_free(p->p_stats);
290 thread_free(FIRST_THREAD_IN_PROC(p));
291 mtx_destroy(&p->p_mtx);
292 if (p->p_ksi != NULL)
293 ksiginfo_free(p->p_ksi);
294 #else
295 panic("proc reclaimed");
296 #endif
297 }
298
299 /*
300 * Is p an inferior of the current process?
301 */
302 int
inferior(struct proc * p)303 inferior(struct proc *p)
304 {
305
306 sx_assert(&proctree_lock, SX_LOCKED);
307 PROC_LOCK_ASSERT(p, MA_OWNED);
308 for (; p != curproc; p = proc_realparent(p)) {
309 if (p->p_pid == 0)
310 return (0);
311 }
312 return (1);
313 }
314
315 struct proc *
pfind_locked(pid_t pid)316 pfind_locked(pid_t pid)
317 {
318 struct proc *p;
319
320 sx_assert(&allproc_lock, SX_LOCKED);
321 LIST_FOREACH(p, PIDHASH(pid), p_hash) {
322 if (p->p_pid == pid) {
323 PROC_LOCK(p);
324 if (p->p_state == PRS_NEW) {
325 PROC_UNLOCK(p);
326 p = NULL;
327 }
328 break;
329 }
330 }
331 return (p);
332 }
333
334 /*
335 * Locate a process by number; return only "live" processes -- i.e., neither
336 * zombies nor newly born but incompletely initialized processes. By not
337 * returning processes in the PRS_NEW state, we allow callers to avoid
338 * testing for that condition to avoid dereferencing p_ucred, et al.
339 */
340 struct proc *
pfind(pid_t pid)341 pfind(pid_t pid)
342 {
343 struct proc *p;
344
345 p = curproc;
346 if (p->p_pid == pid) {
347 PROC_LOCK(p);
348 return (p);
349 }
350 sx_slock(&allproc_lock);
351 p = pfind_locked(pid);
352 sx_sunlock(&allproc_lock);
353 return (p);
354 }
355
356 /*
357 * Same as pfind but allow zombies.
358 */
359 struct proc *
pfind_any(pid_t pid)360 pfind_any(pid_t pid)
361 {
362 struct proc *p;
363
364 sx_slock(&allproc_lock);
365 p = pfind_locked(pid);
366 if (p == NULL)
367 p = zpfind_locked(pid);
368 sx_sunlock(&allproc_lock);
369
370 return (p);
371 }
372
373 static struct proc *
pfind_tid_locked(pid_t tid)374 pfind_tid_locked(pid_t tid)
375 {
376 struct proc *p;
377 struct thread *td;
378
379 sx_assert(&allproc_lock, SX_LOCKED);
380 FOREACH_PROC_IN_SYSTEM(p) {
381 PROC_LOCK(p);
382 if (p->p_state == PRS_NEW) {
383 PROC_UNLOCK(p);
384 continue;
385 }
386 FOREACH_THREAD_IN_PROC(p, td) {
387 if (td->td_tid == tid)
388 goto found;
389 }
390 PROC_UNLOCK(p);
391 }
392 found:
393 return (p);
394 }
395
396 /*
397 * Locate a process group by number.
398 * The caller must hold proctree_lock.
399 */
400 struct pgrp *
pgfind(pid_t pgid)401 pgfind(pid_t pgid)
402 {
403 struct pgrp *pgrp;
404
405 sx_assert(&proctree_lock, SX_LOCKED);
406
407 LIST_FOREACH(pgrp, PGRPHASH(pgid), pg_hash) {
408 if (pgrp->pg_id == pgid) {
409 PGRP_LOCK(pgrp);
410 return (pgrp);
411 }
412 }
413 return (NULL);
414 }
415
416 /*
417 * Locate process and do additional manipulations, depending on flags.
418 */
419 int
pget(pid_t pid,int flags,struct proc ** pp)420 pget(pid_t pid, int flags, struct proc **pp)
421 {
422 struct proc *p;
423 int error;
424
425 p = curproc;
426 if (p->p_pid == pid) {
427 PROC_LOCK(p);
428 } else {
429 sx_slock(&allproc_lock);
430 if (pid <= PID_MAX) {
431 p = pfind_locked(pid);
432 if (p == NULL && (flags & PGET_NOTWEXIT) == 0)
433 p = zpfind_locked(pid);
434 } else if ((flags & PGET_NOTID) == 0) {
435 p = pfind_tid_locked(pid);
436 } else {
437 p = NULL;
438 }
439 sx_sunlock(&allproc_lock);
440 if (p == NULL)
441 return (ESRCH);
442 if ((flags & PGET_CANSEE) != 0) {
443 error = p_cansee(curthread, p);
444 if (error != 0)
445 goto errout;
446 }
447 }
448 if ((flags & PGET_CANDEBUG) != 0) {
449 error = p_candebug(curthread, p);
450 if (error != 0)
451 goto errout;
452 }
453 if ((flags & PGET_ISCURRENT) != 0 && curproc != p) {
454 error = EPERM;
455 goto errout;
456 }
457 if ((flags & PGET_NOTWEXIT) != 0 && (p->p_flag & P_WEXIT) != 0) {
458 error = ESRCH;
459 goto errout;
460 }
461 if ((flags & PGET_NOTINEXEC) != 0 && (p->p_flag & P_INEXEC) != 0) {
462 /*
463 * XXXRW: Not clear ESRCH is the right error during proc
464 * execve().
465 */
466 error = ESRCH;
467 goto errout;
468 }
469 if ((flags & PGET_HOLD) != 0) {
470 _PHOLD(p);
471 PROC_UNLOCK(p);
472 }
473 *pp = p;
474 return (0);
475 errout:
476 PROC_UNLOCK(p);
477 return (error);
478 }
479
480 /*
481 * Create a new process group.
482 * pgid must be equal to the pid of p.
483 * Begin a new session if required.
484 */
485 int
enterpgrp(struct proc * p,pid_t pgid,struct pgrp * pgrp,struct session * sess)486 enterpgrp(struct proc *p, pid_t pgid, struct pgrp *pgrp, struct session *sess)
487 {
488
489 sx_assert(&proctree_lock, SX_XLOCKED);
490
491 KASSERT(pgrp != NULL, ("enterpgrp: pgrp == NULL"));
492 KASSERT(p->p_pid == pgid,
493 ("enterpgrp: new pgrp and pid != pgid"));
494 KASSERT(pgfind(pgid) == NULL,
495 ("enterpgrp: pgrp with pgid exists"));
496 KASSERT(!SESS_LEADER(p),
497 ("enterpgrp: session leader attempted setpgrp"));
498
499 mtx_init(&pgrp->pg_mtx, "process group", NULL, MTX_DEF | MTX_DUPOK);
500
501 if (sess != NULL) {
502 /*
503 * new session
504 */
505 mtx_init(&sess->s_mtx, "session", NULL, MTX_DEF);
506 PROC_LOCK(p);
507 p->p_flag &= ~P_CONTROLT;
508 PROC_UNLOCK(p);
509 PGRP_LOCK(pgrp);
510 sess->s_leader = p;
511 sess->s_sid = p->p_pid;
512 refcount_init(&sess->s_count, 1);
513 sess->s_ttyvp = NULL;
514 sess->s_ttydp = NULL;
515 sess->s_ttyp = NULL;
516 bcopy(p->p_session->s_login, sess->s_login,
517 sizeof(sess->s_login));
518 pgrp->pg_session = sess;
519 KASSERT(p == curproc,
520 ("enterpgrp: mksession and p != curproc"));
521 } else {
522 pgrp->pg_session = p->p_session;
523 sess_hold(pgrp->pg_session);
524 PGRP_LOCK(pgrp);
525 }
526 pgrp->pg_id = pgid;
527 LIST_INIT(&pgrp->pg_members);
528
529 /*
530 * As we have an exclusive lock of proctree_lock,
531 * this should not deadlock.
532 */
533 LIST_INSERT_HEAD(PGRPHASH(pgid), pgrp, pg_hash);
534 pgrp->pg_jobc = 0;
535 SLIST_INIT(&pgrp->pg_sigiolst);
536 PGRP_UNLOCK(pgrp);
537
538 doenterpgrp(p, pgrp);
539
540 return (0);
541 }
542
543 /*
544 * Move p to an existing process group
545 */
546 int
enterthispgrp(struct proc * p,struct pgrp * pgrp)547 enterthispgrp(struct proc *p, struct pgrp *pgrp)
548 {
549
550 sx_assert(&proctree_lock, SX_XLOCKED);
551 PROC_LOCK_ASSERT(p, MA_NOTOWNED);
552 PGRP_LOCK_ASSERT(pgrp, MA_NOTOWNED);
553 PGRP_LOCK_ASSERT(p->p_pgrp, MA_NOTOWNED);
554 SESS_LOCK_ASSERT(p->p_session, MA_NOTOWNED);
555 KASSERT(pgrp->pg_session == p->p_session,
556 ("%s: pgrp's session %p, p->p_session %p.\n",
557 __func__,
558 pgrp->pg_session,
559 p->p_session));
560 KASSERT(pgrp != p->p_pgrp,
561 ("%s: p belongs to pgrp.", __func__));
562
563 doenterpgrp(p, pgrp);
564
565 return (0);
566 }
567
568 /*
569 * Move p to a process group
570 */
571 static void
doenterpgrp(struct proc * p,struct pgrp * pgrp)572 doenterpgrp(struct proc *p, struct pgrp *pgrp)
573 {
574 struct pgrp *savepgrp;
575
576 sx_assert(&proctree_lock, SX_XLOCKED);
577 PROC_LOCK_ASSERT(p, MA_NOTOWNED);
578 PGRP_LOCK_ASSERT(pgrp, MA_NOTOWNED);
579 PGRP_LOCK_ASSERT(p->p_pgrp, MA_NOTOWNED);
580 SESS_LOCK_ASSERT(p->p_session, MA_NOTOWNED);
581
582 savepgrp = p->p_pgrp;
583
584 /*
585 * Adjust eligibility of affected pgrps to participate in job control.
586 * Increment eligibility counts before decrementing, otherwise we
587 * could reach 0 spuriously during the first call.
588 */
589 fixjobc(p, pgrp, 1);
590 fixjobc(p, p->p_pgrp, 0);
591
592 PGRP_LOCK(pgrp);
593 PGRP_LOCK(savepgrp);
594 PROC_LOCK(p);
595 LIST_REMOVE(p, p_pglist);
596 p->p_pgrp = pgrp;
597 PROC_UNLOCK(p);
598 LIST_INSERT_HEAD(&pgrp->pg_members, p, p_pglist);
599 PGRP_UNLOCK(savepgrp);
600 PGRP_UNLOCK(pgrp);
601 if (LIST_EMPTY(&savepgrp->pg_members))
602 pgdelete(savepgrp);
603 }
604
605 /*
606 * remove process from process group
607 */
608 int
leavepgrp(struct proc * p)609 leavepgrp(struct proc *p)
610 {
611 struct pgrp *savepgrp;
612
613 sx_assert(&proctree_lock, SX_XLOCKED);
614 savepgrp = p->p_pgrp;
615 PGRP_LOCK(savepgrp);
616 PROC_LOCK(p);
617 LIST_REMOVE(p, p_pglist);
618 p->p_pgrp = NULL;
619 PROC_UNLOCK(p);
620 PGRP_UNLOCK(savepgrp);
621 if (LIST_EMPTY(&savepgrp->pg_members))
622 pgdelete(savepgrp);
623 return (0);
624 }
625
626 /*
627 * delete a process group
628 */
629 static void
pgdelete(struct pgrp * pgrp)630 pgdelete(struct pgrp *pgrp)
631 {
632 struct session *savesess;
633 struct tty *tp;
634
635 sx_assert(&proctree_lock, SX_XLOCKED);
636 PGRP_LOCK_ASSERT(pgrp, MA_NOTOWNED);
637 SESS_LOCK_ASSERT(pgrp->pg_session, MA_NOTOWNED);
638
639 /*
640 * Reset any sigio structures pointing to us as a result of
641 * F_SETOWN with our pgid.
642 */
643 funsetownlst(&pgrp->pg_sigiolst);
644
645 PGRP_LOCK(pgrp);
646 tp = pgrp->pg_session->s_ttyp;
647 LIST_REMOVE(pgrp, pg_hash);
648 savesess = pgrp->pg_session;
649 PGRP_UNLOCK(pgrp);
650
651 /* Remove the reference to the pgrp before deallocating it. */
652 if (tp != NULL) {
653 tty_lock(tp);
654 tty_rel_pgrp(tp, pgrp);
655 }
656
657 mtx_destroy(&pgrp->pg_mtx);
658 free(pgrp, M_PGRP);
659 sess_release(savesess);
660 }
661
662 static void
pgadjustjobc(struct pgrp * pgrp,int entering)663 pgadjustjobc(struct pgrp *pgrp, int entering)
664 {
665
666 PGRP_LOCK(pgrp);
667 if (entering)
668 pgrp->pg_jobc++;
669 else {
670 --pgrp->pg_jobc;
671 if (pgrp->pg_jobc == 0)
672 orphanpg(pgrp);
673 }
674 PGRP_UNLOCK(pgrp);
675 }
676
677 /*
678 * Adjust pgrp jobc counters when specified process changes process group.
679 * We count the number of processes in each process group that "qualify"
680 * the group for terminal job control (those with a parent in a different
681 * process group of the same session). If that count reaches zero, the
682 * process group becomes orphaned. Check both the specified process'
683 * process group and that of its children.
684 * entering == 0 => p is leaving specified group.
685 * entering == 1 => p is entering specified group.
686 */
687 void
fixjobc(struct proc * p,struct pgrp * pgrp,int entering)688 fixjobc(struct proc *p, struct pgrp *pgrp, int entering)
689 {
690 struct pgrp *hispgrp;
691 struct session *mysession;
692 struct proc *q;
693
694 sx_assert(&proctree_lock, SX_LOCKED);
695 PROC_LOCK_ASSERT(p, MA_NOTOWNED);
696 PGRP_LOCK_ASSERT(pgrp, MA_NOTOWNED);
697 SESS_LOCK_ASSERT(pgrp->pg_session, MA_NOTOWNED);
698
699 /*
700 * Check p's parent to see whether p qualifies its own process
701 * group; if so, adjust count for p's process group.
702 */
703 mysession = pgrp->pg_session;
704 if ((hispgrp = p->p_pptr->p_pgrp) != pgrp &&
705 hispgrp->pg_session == mysession)
706 pgadjustjobc(pgrp, entering);
707
708 /*
709 * Check this process' children to see whether they qualify
710 * their process groups; if so, adjust counts for children's
711 * process groups.
712 */
713 LIST_FOREACH(q, &p->p_children, p_sibling) {
714 hispgrp = q->p_pgrp;
715 if (hispgrp == pgrp ||
716 hispgrp->pg_session != mysession)
717 continue;
718 if (q->p_state == PRS_ZOMBIE)
719 continue;
720 pgadjustjobc(hispgrp, entering);
721 }
722 }
723
724 void
killjobc(void)725 killjobc(void)
726 {
727 struct session *sp;
728 struct tty *tp;
729 struct proc *p;
730 struct vnode *ttyvp;
731
732 p = curproc;
733 MPASS(p->p_flag & P_WEXIT);
734 /*
735 * Do a quick check to see if there is anything to do with the
736 * proctree_lock held. pgrp and LIST_EMPTY checks are for fixjobc().
737 */
738 PROC_LOCK(p);
739 if (!SESS_LEADER(p) &&
740 (p->p_pgrp == p->p_pptr->p_pgrp) &&
741 LIST_EMPTY(&p->p_children)) {
742 PROC_UNLOCK(p);
743 return;
744 }
745 PROC_UNLOCK(p);
746
747 sx_xlock(&proctree_lock);
748 if (SESS_LEADER(p)) {
749 sp = p->p_session;
750
751 /*
752 * s_ttyp is not zero'd; we use this to indicate that
753 * the session once had a controlling terminal. (for
754 * logging and informational purposes)
755 */
756 SESS_LOCK(sp);
757 ttyvp = sp->s_ttyvp;
758 tp = sp->s_ttyp;
759 sp->s_ttyvp = NULL;
760 sp->s_ttydp = NULL;
761 sp->s_leader = NULL;
762 SESS_UNLOCK(sp);
763
764 /*
765 * Signal foreground pgrp and revoke access to
766 * controlling terminal if it has not been revoked
767 * already.
768 *
769 * Because the TTY may have been revoked in the mean
770 * time and could already have a new session associated
771 * with it, make sure we don't send a SIGHUP to a
772 * foreground process group that does not belong to this
773 * session.
774 */
775
776 if (tp != NULL) {
777 tty_lock(tp);
778 if (tp->t_session == sp)
779 tty_signal_pgrp(tp, SIGHUP);
780 tty_unlock(tp);
781 }
782
783 if (ttyvp != NULL) {
784 sx_xunlock(&proctree_lock);
785 if (vn_lock(ttyvp, LK_EXCLUSIVE) == 0) {
786 VOP_REVOKE(ttyvp, REVOKEALL);
787 VOP_UNLOCK(ttyvp, 0);
788 }
789 vrele(ttyvp);
790 sx_xlock(&proctree_lock);
791 }
792 }
793 fixjobc(p, p->p_pgrp, 0);
794 sx_xunlock(&proctree_lock);
795 }
796
797 /*
798 * A process group has become orphaned;
799 * if there are any stopped processes in the group,
800 * hang-up all process in that group.
801 */
802 static void
orphanpg(struct pgrp * pg)803 orphanpg(struct pgrp *pg)
804 {
805 struct proc *p;
806
807 PGRP_LOCK_ASSERT(pg, MA_OWNED);
808
809 LIST_FOREACH(p, &pg->pg_members, p_pglist) {
810 PROC_LOCK(p);
811 if (P_SHOULDSTOP(p) == P_STOPPED_SIG) {
812 PROC_UNLOCK(p);
813 LIST_FOREACH(p, &pg->pg_members, p_pglist) {
814 PROC_LOCK(p);
815 kern_psignal(p, SIGHUP);
816 kern_psignal(p, SIGCONT);
817 PROC_UNLOCK(p);
818 }
819 return;
820 }
821 PROC_UNLOCK(p);
822 }
823 }
824
825 void
sess_hold(struct session * s)826 sess_hold(struct session *s)
827 {
828
829 refcount_acquire(&s->s_count);
830 }
831
832 void
sess_release(struct session * s)833 sess_release(struct session *s)
834 {
835
836 if (refcount_release(&s->s_count)) {
837 if (s->s_ttyp != NULL) {
838 tty_lock(s->s_ttyp);
839 tty_rel_sess(s->s_ttyp, s);
840 }
841 mtx_destroy(&s->s_mtx);
842 free(s, M_SESSION);
843 }
844 }
845
846 #ifdef DDB
847
DB_SHOW_COMMAND(pgrpdump,pgrpdump)848 DB_SHOW_COMMAND(pgrpdump, pgrpdump)
849 {
850 struct pgrp *pgrp;
851 struct proc *p;
852 int i;
853
854 for (i = 0; i <= pgrphash; i++) {
855 if (!LIST_EMPTY(&pgrphashtbl[i])) {
856 printf("\tindx %d\n", i);
857 LIST_FOREACH(pgrp, &pgrphashtbl[i], pg_hash) {
858 printf(
859 "\tpgrp %p, pgid %ld, sess %p, sesscnt %d, mem %p\n",
860 (void *)pgrp, (long)pgrp->pg_id,
861 (void *)pgrp->pg_session,
862 pgrp->pg_session->s_count,
863 (void *)LIST_FIRST(&pgrp->pg_members));
864 LIST_FOREACH(p, &pgrp->pg_members, p_pglist) {
865 printf("\t\tpid %ld addr %p pgrp %p\n",
866 (long)p->p_pid, (void *)p,
867 (void *)p->p_pgrp);
868 }
869 }
870 }
871 }
872 }
873 #endif /* DDB */
874
875 /*
876 * Calculate the kinfo_proc members which contain process-wide
877 * informations.
878 * Must be called with the target process locked.
879 */
880 static void
fill_kinfo_aggregate(struct proc * p,struct kinfo_proc * kp)881 fill_kinfo_aggregate(struct proc *p, struct kinfo_proc *kp)
882 {
883 struct thread *td;
884
885 PROC_LOCK_ASSERT(p, MA_OWNED);
886
887 kp->ki_estcpu = 0;
888 kp->ki_pctcpu = 0;
889 FOREACH_THREAD_IN_PROC(p, td) {
890 thread_lock(td);
891 kp->ki_pctcpu += sched_pctcpu(td);
892 kp->ki_estcpu += sched_estcpu(td);
893 thread_unlock(td);
894 }
895 }
896
897 /*
898 * Clear kinfo_proc and fill in any information that is common
899 * to all threads in the process.
900 * Must be called with the target process locked.
901 */
902 static void
fill_kinfo_proc_only(struct proc * p,struct kinfo_proc * kp)903 fill_kinfo_proc_only(struct proc *p, struct kinfo_proc *kp)
904 {
905 struct thread *td0;
906 struct tty *tp;
907 struct session *sp;
908 struct ucred *cred;
909 struct sigacts *ps;
910 struct timeval boottime;
911
912 PROC_LOCK_ASSERT(p, MA_OWNED);
913 bzero(kp, sizeof(*kp));
914
915 kp->ki_structsize = sizeof(*kp);
916 kp->ki_paddr = p;
917 kp->ki_addr =/* p->p_addr; */0; /* XXX */
918 kp->ki_args = p->p_args;
919 kp->ki_textvp = p->p_textvp;
920 #ifdef KTRACE
921 kp->ki_tracep = p->p_tracevp;
922 kp->ki_traceflag = p->p_traceflag;
923 #endif
924 kp->ki_fd = p->p_fd;
925 kp->ki_vmspace = p->p_vmspace;
926 kp->ki_flag = p->p_flag;
927 kp->ki_flag2 = p->p_flag2;
928 cred = p->p_ucred;
929 if (cred) {
930 kp->ki_uid = cred->cr_uid;
931 kp->ki_ruid = cred->cr_ruid;
932 kp->ki_svuid = cred->cr_svuid;
933 kp->ki_cr_flags = 0;
934 if (cred->cr_flags & CRED_FLAG_CAPMODE)
935 kp->ki_cr_flags |= KI_CRF_CAPABILITY_MODE;
936 /* XXX bde doesn't like KI_NGROUPS */
937 if (cred->cr_ngroups > KI_NGROUPS) {
938 kp->ki_ngroups = KI_NGROUPS;
939 kp->ki_cr_flags |= KI_CRF_GRP_OVERFLOW;
940 } else
941 kp->ki_ngroups = cred->cr_ngroups;
942 bcopy(cred->cr_groups, kp->ki_groups,
943 kp->ki_ngroups * sizeof(gid_t));
944 kp->ki_rgid = cred->cr_rgid;
945 kp->ki_svgid = cred->cr_svgid;
946 /* If jailed(cred), emulate the old P_JAILED flag. */
947 if (jailed(cred)) {
948 kp->ki_flag |= P_JAILED;
949 /* If inside the jail, use 0 as a jail ID. */
950 if (cred->cr_prison != curthread->td_ucred->cr_prison)
951 kp->ki_jid = cred->cr_prison->pr_id;
952 }
953 strlcpy(kp->ki_loginclass, cred->cr_loginclass->lc_name,
954 sizeof(kp->ki_loginclass));
955 }
956 ps = p->p_sigacts;
957 if (ps) {
958 mtx_lock(&ps->ps_mtx);
959 kp->ki_sigignore = ps->ps_sigignore;
960 kp->ki_sigcatch = ps->ps_sigcatch;
961 mtx_unlock(&ps->ps_mtx);
962 }
963 if (p->p_state != PRS_NEW &&
964 p->p_state != PRS_ZOMBIE &&
965 p->p_vmspace != NULL) {
966 struct vmspace *vm = p->p_vmspace;
967
968 kp->ki_size = vm->vm_map.size;
969 kp->ki_rssize = vmspace_resident_count(vm); /*XXX*/
970 FOREACH_THREAD_IN_PROC(p, td0) {
971 if (!TD_IS_SWAPPED(td0))
972 kp->ki_rssize += td0->td_kstack_pages;
973 }
974 kp->ki_swrss = vm->vm_swrss;
975 kp->ki_tsize = vm->vm_tsize;
976 kp->ki_dsize = vm->vm_dsize;
977 kp->ki_ssize = vm->vm_ssize;
978 } else if (p->p_state == PRS_ZOMBIE)
979 kp->ki_stat = SZOMB;
980 if (kp->ki_flag & P_INMEM)
981 kp->ki_sflag = PS_INMEM;
982 else
983 kp->ki_sflag = 0;
984 /* Calculate legacy swtime as seconds since 'swtick'. */
985 kp->ki_swtime = (ticks - p->p_swtick) / hz;
986 kp->ki_pid = p->p_pid;
987 kp->ki_nice = p->p_nice;
988 kp->ki_fibnum = p->p_fibnum;
989 kp->ki_start = p->p_stats->p_start;
990 getboottime(&boottime);
991 timevaladd(&kp->ki_start, &boottime);
992 PROC_STATLOCK(p);
993 rufetch(p, &kp->ki_rusage);
994 kp->ki_runtime = cputick2usec(p->p_rux.rux_runtime);
995 calcru(p, &kp->ki_rusage.ru_utime, &kp->ki_rusage.ru_stime);
996 PROC_STATUNLOCK(p);
997 calccru(p, &kp->ki_childutime, &kp->ki_childstime);
998 /* Some callers want child times in a single value. */
999 kp->ki_childtime = kp->ki_childstime;
1000 timevaladd(&kp->ki_childtime, &kp->ki_childutime);
1001
1002 FOREACH_THREAD_IN_PROC(p, td0)
1003 kp->ki_cow += td0->td_cow;
1004
1005 tp = NULL;
1006 if (p->p_pgrp) {
1007 kp->ki_pgid = p->p_pgrp->pg_id;
1008 kp->ki_jobc = p->p_pgrp->pg_jobc;
1009 sp = p->p_pgrp->pg_session;
1010
1011 if (sp != NULL) {
1012 kp->ki_sid = sp->s_sid;
1013 SESS_LOCK(sp);
1014 strlcpy(kp->ki_login, sp->s_login,
1015 sizeof(kp->ki_login));
1016 if (sp->s_ttyvp)
1017 kp->ki_kiflag |= KI_CTTY;
1018 if (SESS_LEADER(p))
1019 kp->ki_kiflag |= KI_SLEADER;
1020 /* XXX proctree_lock */
1021 tp = sp->s_ttyp;
1022 SESS_UNLOCK(sp);
1023 }
1024 }
1025 if ((p->p_flag & P_CONTROLT) && tp != NULL) {
1026 kp->ki_tdev = tty_udev(tp);
1027 kp->ki_tdev_freebsd11 = kp->ki_tdev; /* truncate */
1028 kp->ki_tpgid = tp->t_pgrp ? tp->t_pgrp->pg_id : NO_PID;
1029 if (tp->t_session)
1030 kp->ki_tsid = tp->t_session->s_sid;
1031 } else {
1032 kp->ki_tdev = NODEV;
1033 kp->ki_tdev_freebsd11 = kp->ki_tdev; /* truncate */
1034 }
1035 if (p->p_comm[0] != '\0')
1036 strlcpy(kp->ki_comm, p->p_comm, sizeof(kp->ki_comm));
1037 if (p->p_sysent && p->p_sysent->sv_name != NULL &&
1038 p->p_sysent->sv_name[0] != '\0')
1039 strlcpy(kp->ki_emul, p->p_sysent->sv_name, sizeof(kp->ki_emul));
1040 kp->ki_siglist = p->p_siglist;
1041 kp->ki_xstat = KW_EXITCODE(p->p_xexit, p->p_xsig);
1042 kp->ki_acflag = p->p_acflag;
1043 kp->ki_lock = p->p_lock;
1044 if (p->p_pptr) {
1045 kp->ki_ppid = p->p_oppid;
1046 if (p->p_flag & P_TRACED)
1047 kp->ki_tracer = p->p_pptr->p_pid;
1048 }
1049 }
1050
1051 /*
1052 * Fill in information that is thread specific. Must be called with
1053 * target process locked. If 'preferthread' is set, overwrite certain
1054 * process-related fields that are maintained for both threads and
1055 * processes.
1056 */
1057 static void
fill_kinfo_thread(struct thread * td,struct kinfo_proc * kp,int preferthread)1058 fill_kinfo_thread(struct thread *td, struct kinfo_proc *kp, int preferthread)
1059 {
1060 struct proc *p;
1061
1062 p = td->td_proc;
1063 kp->ki_tdaddr = td;
1064 PROC_LOCK_ASSERT(p, MA_OWNED);
1065
1066 if (preferthread)
1067 PROC_STATLOCK(p);
1068 thread_lock(td);
1069 if (td->td_wmesg != NULL)
1070 strlcpy(kp->ki_wmesg, td->td_wmesg, sizeof(kp->ki_wmesg));
1071 else
1072 bzero(kp->ki_wmesg, sizeof(kp->ki_wmesg));
1073 if (strlcpy(kp->ki_tdname, td->td_name, sizeof(kp->ki_tdname)) >=
1074 sizeof(kp->ki_tdname)) {
1075 strlcpy(kp->ki_moretdname,
1076 td->td_name + sizeof(kp->ki_tdname) - 1,
1077 sizeof(kp->ki_moretdname));
1078 } else {
1079 bzero(kp->ki_moretdname, sizeof(kp->ki_moretdname));
1080 }
1081 if (TD_ON_LOCK(td)) {
1082 kp->ki_kiflag |= KI_LOCKBLOCK;
1083 strlcpy(kp->ki_lockname, td->td_lockname,
1084 sizeof(kp->ki_lockname));
1085 } else {
1086 kp->ki_kiflag &= ~KI_LOCKBLOCK;
1087 bzero(kp->ki_lockname, sizeof(kp->ki_lockname));
1088 }
1089
1090 if (p->p_state == PRS_NORMAL) { /* approximate. */
1091 if (TD_ON_RUNQ(td) ||
1092 TD_CAN_RUN(td) ||
1093 TD_IS_RUNNING(td)) {
1094 kp->ki_stat = SRUN;
1095 } else if (P_SHOULDSTOP(p)) {
1096 kp->ki_stat = SSTOP;
1097 } else if (TD_IS_SLEEPING(td)) {
1098 kp->ki_stat = SSLEEP;
1099 } else if (TD_ON_LOCK(td)) {
1100 kp->ki_stat = SLOCK;
1101 } else {
1102 kp->ki_stat = SWAIT;
1103 }
1104 } else if (p->p_state == PRS_ZOMBIE) {
1105 kp->ki_stat = SZOMB;
1106 } else {
1107 kp->ki_stat = SIDL;
1108 }
1109
1110 /* Things in the thread */
1111 kp->ki_wchan = td->td_wchan;
1112 kp->ki_pri.pri_level = td->td_priority;
1113 kp->ki_pri.pri_native = td->td_base_pri;
1114
1115 /*
1116 * Note: legacy fields; clamp at the old NOCPU value and/or
1117 * the maximum u_char CPU value.
1118 */
1119 if (td->td_lastcpu == NOCPU)
1120 kp->ki_lastcpu_old = NOCPU_OLD;
1121 else if (td->td_lastcpu > MAXCPU_OLD)
1122 kp->ki_lastcpu_old = MAXCPU_OLD;
1123 else
1124 kp->ki_lastcpu_old = td->td_lastcpu;
1125
1126 if (td->td_oncpu == NOCPU)
1127 kp->ki_oncpu_old = NOCPU_OLD;
1128 else if (td->td_oncpu > MAXCPU_OLD)
1129 kp->ki_oncpu_old = MAXCPU_OLD;
1130 else
1131 kp->ki_oncpu_old = td->td_oncpu;
1132
1133 kp->ki_lastcpu = td->td_lastcpu;
1134 kp->ki_oncpu = td->td_oncpu;
1135 kp->ki_tdflags = td->td_flags;
1136 kp->ki_tid = td->td_tid;
1137 kp->ki_numthreads = p->p_numthreads;
1138 kp->ki_pcb = td->td_pcb;
1139 kp->ki_kstack = (void *)td->td_kstack;
1140 kp->ki_slptime = (ticks - td->td_slptick) / hz;
1141 kp->ki_pri.pri_class = td->td_pri_class;
1142 kp->ki_pri.pri_user = td->td_user_pri;
1143
1144 if (preferthread) {
1145 rufetchtd(td, &kp->ki_rusage);
1146 kp->ki_runtime = cputick2usec(td->td_rux.rux_runtime);
1147 kp->ki_pctcpu = sched_pctcpu(td);
1148 kp->ki_estcpu = sched_estcpu(td);
1149 kp->ki_cow = td->td_cow;
1150 }
1151
1152 /* We can't get this anymore but ps etc never used it anyway. */
1153 kp->ki_rqindex = 0;
1154
1155 if (preferthread)
1156 kp->ki_siglist = td->td_siglist;
1157 kp->ki_sigmask = td->td_sigmask;
1158 thread_unlock(td);
1159 if (preferthread)
1160 PROC_STATUNLOCK(p);
1161 }
1162
1163 /*
1164 * Fill in a kinfo_proc structure for the specified process.
1165 * Must be called with the target process locked.
1166 */
1167 void
fill_kinfo_proc(struct proc * p,struct kinfo_proc * kp)1168 fill_kinfo_proc(struct proc *p, struct kinfo_proc *kp)
1169 {
1170
1171 MPASS(FIRST_THREAD_IN_PROC(p) != NULL);
1172
1173 fill_kinfo_proc_only(p, kp);
1174 fill_kinfo_thread(FIRST_THREAD_IN_PROC(p), kp, 0);
1175 fill_kinfo_aggregate(p, kp);
1176 }
1177
1178 struct pstats *
pstats_alloc(void)1179 pstats_alloc(void)
1180 {
1181
1182 return (malloc(sizeof(struct pstats), M_SUBPROC, M_ZERO|M_WAITOK));
1183 }
1184
1185 /*
1186 * Copy parts of p_stats; zero the rest of p_stats (statistics).
1187 */
1188 void
pstats_fork(struct pstats * src,struct pstats * dst)1189 pstats_fork(struct pstats *src, struct pstats *dst)
1190 {
1191
1192 bzero(&dst->pstat_startzero,
1193 __rangeof(struct pstats, pstat_startzero, pstat_endzero));
1194 bcopy(&src->pstat_startcopy, &dst->pstat_startcopy,
1195 __rangeof(struct pstats, pstat_startcopy, pstat_endcopy));
1196 }
1197
1198 void
pstats_free(struct pstats * ps)1199 pstats_free(struct pstats *ps)
1200 {
1201
1202 free(ps, M_SUBPROC);
1203 }
1204
1205 static struct proc *
zpfind_locked(pid_t pid)1206 zpfind_locked(pid_t pid)
1207 {
1208 struct proc *p;
1209
1210 sx_assert(&allproc_lock, SX_LOCKED);
1211 LIST_FOREACH(p, &zombproc, p_list) {
1212 if (p->p_pid == pid) {
1213 PROC_LOCK(p);
1214 break;
1215 }
1216 }
1217 return (p);
1218 }
1219
1220 /*
1221 * Locate a zombie process by number
1222 */
1223 struct proc *
zpfind(pid_t pid)1224 zpfind(pid_t pid)
1225 {
1226 struct proc *p;
1227
1228 sx_slock(&allproc_lock);
1229 p = zpfind_locked(pid);
1230 sx_sunlock(&allproc_lock);
1231 return (p);
1232 }
1233
1234 #ifdef COMPAT_FREEBSD32
1235
1236 /*
1237 * This function is typically used to copy out the kernel address, so
1238 * it can be replaced by assignment of zero.
1239 */
1240 static inline uint32_t
ptr32_trim(void * ptr)1241 ptr32_trim(void *ptr)
1242 {
1243 uintptr_t uptr;
1244
1245 uptr = (uintptr_t)ptr;
1246 return ((uptr > UINT_MAX) ? 0 : uptr);
1247 }
1248
1249 #define PTRTRIM_CP(src,dst,fld) \
1250 do { (dst).fld = ptr32_trim((src).fld); } while (0)
1251
1252 static void
freebsd32_kinfo_proc_out(const struct kinfo_proc * ki,struct kinfo_proc32 * ki32)1253 freebsd32_kinfo_proc_out(const struct kinfo_proc *ki, struct kinfo_proc32 *ki32)
1254 {
1255 int i;
1256
1257 bzero(ki32, sizeof(struct kinfo_proc32));
1258 ki32->ki_structsize = sizeof(struct kinfo_proc32);
1259 CP(*ki, *ki32, ki_layout);
1260 PTRTRIM_CP(*ki, *ki32, ki_args);
1261 PTRTRIM_CP(*ki, *ki32, ki_paddr);
1262 PTRTRIM_CP(*ki, *ki32, ki_addr);
1263 PTRTRIM_CP(*ki, *ki32, ki_tracep);
1264 PTRTRIM_CP(*ki, *ki32, ki_textvp);
1265 PTRTRIM_CP(*ki, *ki32, ki_fd);
1266 PTRTRIM_CP(*ki, *ki32, ki_vmspace);
1267 PTRTRIM_CP(*ki, *ki32, ki_wchan);
1268 CP(*ki, *ki32, ki_pid);
1269 CP(*ki, *ki32, ki_ppid);
1270 CP(*ki, *ki32, ki_pgid);
1271 CP(*ki, *ki32, ki_tpgid);
1272 CP(*ki, *ki32, ki_sid);
1273 CP(*ki, *ki32, ki_tsid);
1274 CP(*ki, *ki32, ki_jobc);
1275 CP(*ki, *ki32, ki_tdev);
1276 CP(*ki, *ki32, ki_tdev_freebsd11);
1277 CP(*ki, *ki32, ki_siglist);
1278 CP(*ki, *ki32, ki_sigmask);
1279 CP(*ki, *ki32, ki_sigignore);
1280 CP(*ki, *ki32, ki_sigcatch);
1281 CP(*ki, *ki32, ki_uid);
1282 CP(*ki, *ki32, ki_ruid);
1283 CP(*ki, *ki32, ki_svuid);
1284 CP(*ki, *ki32, ki_rgid);
1285 CP(*ki, *ki32, ki_svgid);
1286 CP(*ki, *ki32, ki_ngroups);
1287 for (i = 0; i < KI_NGROUPS; i++)
1288 CP(*ki, *ki32, ki_groups[i]);
1289 CP(*ki, *ki32, ki_size);
1290 CP(*ki, *ki32, ki_rssize);
1291 CP(*ki, *ki32, ki_swrss);
1292 CP(*ki, *ki32, ki_tsize);
1293 CP(*ki, *ki32, ki_dsize);
1294 CP(*ki, *ki32, ki_ssize);
1295 CP(*ki, *ki32, ki_xstat);
1296 CP(*ki, *ki32, ki_acflag);
1297 CP(*ki, *ki32, ki_pctcpu);
1298 CP(*ki, *ki32, ki_estcpu);
1299 CP(*ki, *ki32, ki_slptime);
1300 CP(*ki, *ki32, ki_swtime);
1301 CP(*ki, *ki32, ki_cow);
1302 CP(*ki, *ki32, ki_runtime);
1303 TV_CP(*ki, *ki32, ki_start);
1304 TV_CP(*ki, *ki32, ki_childtime);
1305 CP(*ki, *ki32, ki_flag);
1306 CP(*ki, *ki32, ki_kiflag);
1307 CP(*ki, *ki32, ki_traceflag);
1308 CP(*ki, *ki32, ki_stat);
1309 CP(*ki, *ki32, ki_nice);
1310 CP(*ki, *ki32, ki_lock);
1311 CP(*ki, *ki32, ki_rqindex);
1312 CP(*ki, *ki32, ki_oncpu);
1313 CP(*ki, *ki32, ki_lastcpu);
1314
1315 /* XXX TODO: wrap cpu value as appropriate */
1316 CP(*ki, *ki32, ki_oncpu_old);
1317 CP(*ki, *ki32, ki_lastcpu_old);
1318
1319 bcopy(ki->ki_tdname, ki32->ki_tdname, TDNAMLEN + 1);
1320 bcopy(ki->ki_wmesg, ki32->ki_wmesg, WMESGLEN + 1);
1321 bcopy(ki->ki_login, ki32->ki_login, LOGNAMELEN + 1);
1322 bcopy(ki->ki_lockname, ki32->ki_lockname, LOCKNAMELEN + 1);
1323 bcopy(ki->ki_comm, ki32->ki_comm, COMMLEN + 1);
1324 bcopy(ki->ki_emul, ki32->ki_emul, KI_EMULNAMELEN + 1);
1325 bcopy(ki->ki_loginclass, ki32->ki_loginclass, LOGINCLASSLEN + 1);
1326 bcopy(ki->ki_moretdname, ki32->ki_moretdname, MAXCOMLEN - TDNAMLEN + 1);
1327 CP(*ki, *ki32, ki_tracer);
1328 CP(*ki, *ki32, ki_flag2);
1329 CP(*ki, *ki32, ki_fibnum);
1330 CP(*ki, *ki32, ki_cr_flags);
1331 CP(*ki, *ki32, ki_jid);
1332 CP(*ki, *ki32, ki_numthreads);
1333 CP(*ki, *ki32, ki_tid);
1334 CP(*ki, *ki32, ki_pri);
1335 freebsd32_rusage_out(&ki->ki_rusage, &ki32->ki_rusage);
1336 freebsd32_rusage_out(&ki->ki_rusage_ch, &ki32->ki_rusage_ch);
1337 PTRTRIM_CP(*ki, *ki32, ki_pcb);
1338 PTRTRIM_CP(*ki, *ki32, ki_kstack);
1339 PTRTRIM_CP(*ki, *ki32, ki_udata);
1340 PTRTRIM_CP(*ki, *ki32, ki_tdaddr);
1341 CP(*ki, *ki32, ki_sflag);
1342 CP(*ki, *ki32, ki_tdflags);
1343 }
1344 #endif
1345
1346 static ssize_t
kern_proc_out_size(struct proc * p,int flags)1347 kern_proc_out_size(struct proc *p, int flags)
1348 {
1349 ssize_t size = 0;
1350
1351 PROC_LOCK_ASSERT(p, MA_OWNED);
1352
1353 if ((flags & KERN_PROC_NOTHREADS) != 0) {
1354 #ifdef COMPAT_FREEBSD32
1355 if ((flags & KERN_PROC_MASK32) != 0) {
1356 size += sizeof(struct kinfo_proc32);
1357 } else
1358 #endif
1359 size += sizeof(struct kinfo_proc);
1360 } else {
1361 #ifdef COMPAT_FREEBSD32
1362 if ((flags & KERN_PROC_MASK32) != 0)
1363 size += sizeof(struct kinfo_proc32) * p->p_numthreads;
1364 else
1365 #endif
1366 size += sizeof(struct kinfo_proc) * p->p_numthreads;
1367 }
1368 PROC_UNLOCK(p);
1369 return (size);
1370 }
1371
1372 int
kern_proc_out(struct proc * p,struct sbuf * sb,int flags)1373 kern_proc_out(struct proc *p, struct sbuf *sb, int flags)
1374 {
1375 struct thread *td;
1376 struct kinfo_proc ki;
1377 #ifdef COMPAT_FREEBSD32
1378 struct kinfo_proc32 ki32;
1379 #endif
1380 int error;
1381
1382 PROC_LOCK_ASSERT(p, MA_OWNED);
1383 MPASS(FIRST_THREAD_IN_PROC(p) != NULL);
1384
1385 error = 0;
1386 fill_kinfo_proc(p, &ki);
1387 if ((flags & KERN_PROC_NOTHREADS) != 0) {
1388 #ifdef COMPAT_FREEBSD32
1389 if ((flags & KERN_PROC_MASK32) != 0) {
1390 freebsd32_kinfo_proc_out(&ki, &ki32);
1391 if (sbuf_bcat(sb, &ki32, sizeof(ki32)) != 0)
1392 error = ENOMEM;
1393 } else
1394 #endif
1395 if (sbuf_bcat(sb, &ki, sizeof(ki)) != 0)
1396 error = ENOMEM;
1397 } else {
1398 FOREACH_THREAD_IN_PROC(p, td) {
1399 fill_kinfo_thread(td, &ki, 1);
1400 #ifdef COMPAT_FREEBSD32
1401 if ((flags & KERN_PROC_MASK32) != 0) {
1402 freebsd32_kinfo_proc_out(&ki, &ki32);
1403 if (sbuf_bcat(sb, &ki32, sizeof(ki32)) != 0)
1404 error = ENOMEM;
1405 } else
1406 #endif
1407 if (sbuf_bcat(sb, &ki, sizeof(ki)) != 0)
1408 error = ENOMEM;
1409 if (error != 0)
1410 break;
1411 }
1412 }
1413 PROC_UNLOCK(p);
1414 return (error);
1415 }
1416
1417 static int
sysctl_out_proc(struct proc * p,struct sysctl_req * req,int flags)1418 sysctl_out_proc(struct proc *p, struct sysctl_req *req, int flags)
1419 {
1420 struct sbuf sb;
1421 struct kinfo_proc ki;
1422 int error, error2;
1423
1424 if (req->oldptr == NULL)
1425 return (SYSCTL_OUT(req, 0, kern_proc_out_size(p, flags)));
1426
1427 sbuf_new_for_sysctl(&sb, (char *)&ki, sizeof(ki), req);
1428 sbuf_clear_flags(&sb, SBUF_INCLUDENUL);
1429 error = kern_proc_out(p, &sb, flags);
1430 error2 = sbuf_finish(&sb);
1431 sbuf_delete(&sb);
1432 if (error != 0)
1433 return (error);
1434 else if (error2 != 0)
1435 return (error2);
1436 return (0);
1437 }
1438
1439 static int
sysctl_kern_proc(SYSCTL_HANDLER_ARGS)1440 sysctl_kern_proc(SYSCTL_HANDLER_ARGS)
1441 {
1442 int *name = (int *)arg1;
1443 u_int namelen = arg2;
1444 struct proc *p;
1445 int flags, doingzomb, oid_number;
1446 int error = 0;
1447
1448 oid_number = oidp->oid_number;
1449 if (oid_number != KERN_PROC_ALL &&
1450 (oid_number & KERN_PROC_INC_THREAD) == 0)
1451 flags = KERN_PROC_NOTHREADS;
1452 else {
1453 flags = 0;
1454 oid_number &= ~KERN_PROC_INC_THREAD;
1455 }
1456 #ifdef COMPAT_FREEBSD32
1457 if (req->flags & SCTL_MASK32)
1458 flags |= KERN_PROC_MASK32;
1459 #endif
1460 if (oid_number == KERN_PROC_PID) {
1461 if (namelen != 1)
1462 return (EINVAL);
1463 error = sysctl_wire_old_buffer(req, 0);
1464 if (error)
1465 return (error);
1466 error = pget((pid_t)name[0], PGET_CANSEE, &p);
1467 if (error == 0)
1468 error = sysctl_out_proc(p, req, flags);
1469 return (error);
1470 }
1471
1472 switch (oid_number) {
1473 case KERN_PROC_ALL:
1474 if (namelen != 0)
1475 return (EINVAL);
1476 break;
1477 case KERN_PROC_PROC:
1478 if (namelen != 0 && namelen != 1)
1479 return (EINVAL);
1480 break;
1481 default:
1482 if (namelen != 1)
1483 return (EINVAL);
1484 break;
1485 }
1486
1487 if (req->oldptr == NULL) {
1488 /* overestimate by 5 procs */
1489 error = SYSCTL_OUT(req, 0, sizeof (struct kinfo_proc) * 5);
1490 if (error)
1491 return (error);
1492 } else {
1493 error = sysctl_wire_old_buffer(req, 0);
1494 if (error != 0)
1495 return (error);
1496 }
1497 sx_slock(&allproc_lock);
1498 for (doingzomb=0 ; doingzomb < 2 ; doingzomb++) {
1499 if (!doingzomb)
1500 p = LIST_FIRST(&allproc);
1501 else
1502 p = LIST_FIRST(&zombproc);
1503 for (; p != NULL; p = LIST_NEXT(p, p_list)) {
1504 /*
1505 * Skip embryonic processes.
1506 */
1507 if (p->p_state == PRS_NEW)
1508 continue;
1509 PROC_LOCK(p);
1510 KASSERT(p->p_ucred != NULL,
1511 ("process credential is NULL for non-NEW proc"));
1512 /*
1513 * Show a user only appropriate processes.
1514 */
1515 if (p_cansee(curthread, p)) {
1516 PROC_UNLOCK(p);
1517 continue;
1518 }
1519 /*
1520 * TODO - make more efficient (see notes below).
1521 * do by session.
1522 */
1523 switch (oid_number) {
1524
1525 case KERN_PROC_GID:
1526 if (p->p_ucred->cr_gid != (gid_t)name[0]) {
1527 PROC_UNLOCK(p);
1528 continue;
1529 }
1530 break;
1531
1532 case KERN_PROC_PGRP:
1533 /* could do this by traversing pgrp */
1534 if (p->p_pgrp == NULL ||
1535 p->p_pgrp->pg_id != (pid_t)name[0]) {
1536 PROC_UNLOCK(p);
1537 continue;
1538 }
1539 break;
1540
1541 case KERN_PROC_RGID:
1542 if (p->p_ucred->cr_rgid != (gid_t)name[0]) {
1543 PROC_UNLOCK(p);
1544 continue;
1545 }
1546 break;
1547
1548 case KERN_PROC_SESSION:
1549 if (p->p_session == NULL ||
1550 p->p_session->s_sid != (pid_t)name[0]) {
1551 PROC_UNLOCK(p);
1552 continue;
1553 }
1554 break;
1555
1556 case KERN_PROC_TTY:
1557 if ((p->p_flag & P_CONTROLT) == 0 ||
1558 p->p_session == NULL) {
1559 PROC_UNLOCK(p);
1560 continue;
1561 }
1562 /* XXX proctree_lock */
1563 SESS_LOCK(p->p_session);
1564 if (p->p_session->s_ttyp == NULL ||
1565 tty_udev(p->p_session->s_ttyp) !=
1566 (dev_t)name[0]) {
1567 SESS_UNLOCK(p->p_session);
1568 PROC_UNLOCK(p);
1569 continue;
1570 }
1571 SESS_UNLOCK(p->p_session);
1572 break;
1573
1574 case KERN_PROC_UID:
1575 if (p->p_ucred->cr_uid != (uid_t)name[0]) {
1576 PROC_UNLOCK(p);
1577 continue;
1578 }
1579 break;
1580
1581 case KERN_PROC_RUID:
1582 if (p->p_ucred->cr_ruid != (uid_t)name[0]) {
1583 PROC_UNLOCK(p);
1584 continue;
1585 }
1586 break;
1587
1588 case KERN_PROC_PROC:
1589 break;
1590
1591 default:
1592 break;
1593
1594 }
1595
1596 error = sysctl_out_proc(p, req, flags);
1597 if (error)
1598 goto out;
1599 }
1600 }
1601 out:
1602 sx_sunlock(&allproc_lock);
1603 return (error);
1604 }
1605
1606 struct pargs *
pargs_alloc(int len)1607 pargs_alloc(int len)
1608 {
1609 struct pargs *pa;
1610
1611 pa = malloc(sizeof(struct pargs) + len, M_PARGS,
1612 M_WAITOK);
1613 refcount_init(&pa->ar_ref, 1);
1614 pa->ar_length = len;
1615 return (pa);
1616 }
1617
1618 static void
pargs_free(struct pargs * pa)1619 pargs_free(struct pargs *pa)
1620 {
1621
1622 free(pa, M_PARGS);
1623 }
1624
1625 void
pargs_hold(struct pargs * pa)1626 pargs_hold(struct pargs *pa)
1627 {
1628
1629 if (pa == NULL)
1630 return;
1631 refcount_acquire(&pa->ar_ref);
1632 }
1633
1634 void
pargs_drop(struct pargs * pa)1635 pargs_drop(struct pargs *pa)
1636 {
1637
1638 if (pa == NULL)
1639 return;
1640 if (refcount_release(&pa->ar_ref))
1641 pargs_free(pa);
1642 }
1643
1644 static int
proc_read_string(struct thread * td,struct proc * p,const char * sptr,char * buf,size_t len)1645 proc_read_string(struct thread *td, struct proc *p, const char *sptr, char *buf,
1646 size_t len)
1647 {
1648 ssize_t n;
1649
1650 /*
1651 * This may return a short read if the string is shorter than the chunk
1652 * and is aligned at the end of the page, and the following page is not
1653 * mapped.
1654 */
1655 n = proc_readmem(td, p, (vm_offset_t)sptr, buf, len);
1656 if (n <= 0)
1657 return (ENOMEM);
1658 return (0);
1659 }
1660
1661 #define PROC_AUXV_MAX 256 /* Safety limit on auxv size. */
1662
1663 enum proc_vector_type {
1664 PROC_ARG,
1665 PROC_ENV,
1666 PROC_AUX,
1667 };
1668
1669 #ifdef COMPAT_FREEBSD32
1670 static int
get_proc_vector32(struct thread * td,struct proc * p,char *** proc_vectorp,size_t * vsizep,enum proc_vector_type type)1671 get_proc_vector32(struct thread *td, struct proc *p, char ***proc_vectorp,
1672 size_t *vsizep, enum proc_vector_type type)
1673 {
1674 struct freebsd32_ps_strings pss;
1675 Elf32_Auxinfo aux;
1676 vm_offset_t vptr, ptr;
1677 uint32_t *proc_vector32;
1678 char **proc_vector;
1679 size_t vsize, size;
1680 int i, error;
1681
1682 error = 0;
1683 if (proc_readmem(td, p, (vm_offset_t)p->p_sysent->sv_psstrings, &pss,
1684 sizeof(pss)) != sizeof(pss))
1685 return (ENOMEM);
1686 switch (type) {
1687 case PROC_ARG:
1688 vptr = (vm_offset_t)PTRIN(pss.ps_argvstr);
1689 vsize = pss.ps_nargvstr;
1690 if (vsize > ARG_MAX)
1691 return (ENOEXEC);
1692 size = vsize * sizeof(int32_t);
1693 break;
1694 case PROC_ENV:
1695 vptr = (vm_offset_t)PTRIN(pss.ps_envstr);
1696 vsize = pss.ps_nenvstr;
1697 if (vsize > ARG_MAX)
1698 return (ENOEXEC);
1699 size = vsize * sizeof(int32_t);
1700 break;
1701 case PROC_AUX:
1702 vptr = (vm_offset_t)PTRIN(pss.ps_envstr) +
1703 (pss.ps_nenvstr + 1) * sizeof(int32_t);
1704 if (vptr % 4 != 0)
1705 return (ENOEXEC);
1706 for (ptr = vptr, i = 0; i < PROC_AUXV_MAX; i++) {
1707 if (proc_readmem(td, p, ptr, &aux, sizeof(aux)) !=
1708 sizeof(aux))
1709 return (ENOMEM);
1710 if (aux.a_type == AT_NULL)
1711 break;
1712 ptr += sizeof(aux);
1713 }
1714 if (aux.a_type != AT_NULL)
1715 return (ENOEXEC);
1716 vsize = i + 1;
1717 size = vsize * sizeof(aux);
1718 break;
1719 default:
1720 KASSERT(0, ("Wrong proc vector type: %d", type));
1721 return (EINVAL);
1722 }
1723 proc_vector32 = malloc(size, M_TEMP, M_WAITOK);
1724 if (proc_readmem(td, p, vptr, proc_vector32, size) != size) {
1725 error = ENOMEM;
1726 goto done;
1727 }
1728 if (type == PROC_AUX) {
1729 *proc_vectorp = (char **)proc_vector32;
1730 *vsizep = vsize;
1731 return (0);
1732 }
1733 proc_vector = malloc(vsize * sizeof(char *), M_TEMP, M_WAITOK);
1734 for (i = 0; i < (int)vsize; i++)
1735 proc_vector[i] = PTRIN(proc_vector32[i]);
1736 *proc_vectorp = proc_vector;
1737 *vsizep = vsize;
1738 done:
1739 free(proc_vector32, M_TEMP);
1740 return (error);
1741 }
1742 #endif
1743
1744 static int
get_proc_vector(struct thread * td,struct proc * p,char *** proc_vectorp,size_t * vsizep,enum proc_vector_type type)1745 get_proc_vector(struct thread *td, struct proc *p, char ***proc_vectorp,
1746 size_t *vsizep, enum proc_vector_type type)
1747 {
1748 struct ps_strings pss;
1749 Elf_Auxinfo aux;
1750 vm_offset_t vptr, ptr;
1751 char **proc_vector;
1752 size_t vsize, size;
1753 int i;
1754
1755 #ifdef COMPAT_FREEBSD32
1756 if (SV_PROC_FLAG(p, SV_ILP32) != 0)
1757 return (get_proc_vector32(td, p, proc_vectorp, vsizep, type));
1758 #endif
1759 if (proc_readmem(td, p, (vm_offset_t)p->p_sysent->sv_psstrings, &pss,
1760 sizeof(pss)) != sizeof(pss))
1761 return (ENOMEM);
1762 switch (type) {
1763 case PROC_ARG:
1764 vptr = (vm_offset_t)pss.ps_argvstr;
1765 vsize = pss.ps_nargvstr;
1766 if (vsize > ARG_MAX)
1767 return (ENOEXEC);
1768 size = vsize * sizeof(char *);
1769 break;
1770 case PROC_ENV:
1771 vptr = (vm_offset_t)pss.ps_envstr;
1772 vsize = pss.ps_nenvstr;
1773 if (vsize > ARG_MAX)
1774 return (ENOEXEC);
1775 size = vsize * sizeof(char *);
1776 break;
1777 case PROC_AUX:
1778 /*
1779 * The aux array is just above env array on the stack. Check
1780 * that the address is naturally aligned.
1781 */
1782 vptr = (vm_offset_t)pss.ps_envstr + (pss.ps_nenvstr + 1)
1783 * sizeof(char *);
1784 #if __ELF_WORD_SIZE == 64
1785 if (vptr % sizeof(uint64_t) != 0)
1786 #else
1787 if (vptr % sizeof(uint32_t) != 0)
1788 #endif
1789 return (ENOEXEC);
1790 /*
1791 * We count the array size reading the aux vectors from the
1792 * stack until AT_NULL vector is returned. So (to keep the code
1793 * simple) we read the process stack twice: the first time here
1794 * to find the size and the second time when copying the vectors
1795 * to the allocated proc_vector.
1796 */
1797 for (ptr = vptr, i = 0; i < PROC_AUXV_MAX; i++) {
1798 if (proc_readmem(td, p, ptr, &aux, sizeof(aux)) !=
1799 sizeof(aux))
1800 return (ENOMEM);
1801 if (aux.a_type == AT_NULL)
1802 break;
1803 ptr += sizeof(aux);
1804 }
1805 /*
1806 * If the PROC_AUXV_MAX entries are iterated over, and we have
1807 * not reached AT_NULL, it is most likely we are reading wrong
1808 * data: either the process doesn't have auxv array or data has
1809 * been modified. Return the error in this case.
1810 */
1811 if (aux.a_type != AT_NULL)
1812 return (ENOEXEC);
1813 vsize = i + 1;
1814 size = vsize * sizeof(aux);
1815 break;
1816 default:
1817 KASSERT(0, ("Wrong proc vector type: %d", type));
1818 return (EINVAL); /* In case we are built without INVARIANTS. */
1819 }
1820 proc_vector = malloc(size, M_TEMP, M_WAITOK);
1821 if (proc_readmem(td, p, vptr, proc_vector, size) != size) {
1822 free(proc_vector, M_TEMP);
1823 return (ENOMEM);
1824 }
1825 *proc_vectorp = proc_vector;
1826 *vsizep = vsize;
1827
1828 return (0);
1829 }
1830
1831 #define GET_PS_STRINGS_CHUNK_SZ 256 /* Chunk size (bytes) for ps_strings operations. */
1832
1833 static int
get_ps_strings(struct thread * td,struct proc * p,struct sbuf * sb,enum proc_vector_type type)1834 get_ps_strings(struct thread *td, struct proc *p, struct sbuf *sb,
1835 enum proc_vector_type type)
1836 {
1837 size_t done, len, nchr, vsize;
1838 int error, i;
1839 char **proc_vector, *sptr;
1840 char pss_string[GET_PS_STRINGS_CHUNK_SZ];
1841
1842 PROC_ASSERT_HELD(p);
1843
1844 /*
1845 * We are not going to read more than 2 * (PATH_MAX + ARG_MAX) bytes.
1846 */
1847 nchr = 2 * (PATH_MAX + ARG_MAX);
1848
1849 error = get_proc_vector(td, p, &proc_vector, &vsize, type);
1850 if (error != 0)
1851 return (error);
1852 for (done = 0, i = 0; i < (int)vsize && done < nchr; i++) {
1853 /*
1854 * The program may have scribbled into its argv array, e.g. to
1855 * remove some arguments. If that has happened, break out
1856 * before trying to read from NULL.
1857 */
1858 if (proc_vector[i] == NULL)
1859 break;
1860 for (sptr = proc_vector[i]; ; sptr += GET_PS_STRINGS_CHUNK_SZ) {
1861 error = proc_read_string(td, p, sptr, pss_string,
1862 sizeof(pss_string));
1863 if (error != 0)
1864 goto done;
1865 len = strnlen(pss_string, GET_PS_STRINGS_CHUNK_SZ);
1866 if (done + len >= nchr)
1867 len = nchr - done - 1;
1868 sbuf_bcat(sb, pss_string, len);
1869 if (len != GET_PS_STRINGS_CHUNK_SZ)
1870 break;
1871 done += GET_PS_STRINGS_CHUNK_SZ;
1872 }
1873 sbuf_bcat(sb, "", 1);
1874 done += len + 1;
1875 }
1876 done:
1877 free(proc_vector, M_TEMP);
1878 return (error);
1879 }
1880
1881 int
proc_getargv(struct thread * td,struct proc * p,struct sbuf * sb)1882 proc_getargv(struct thread *td, struct proc *p, struct sbuf *sb)
1883 {
1884
1885 return (get_ps_strings(curthread, p, sb, PROC_ARG));
1886 }
1887
1888 int
proc_getenvv(struct thread * td,struct proc * p,struct sbuf * sb)1889 proc_getenvv(struct thread *td, struct proc *p, struct sbuf *sb)
1890 {
1891
1892 return (get_ps_strings(curthread, p, sb, PROC_ENV));
1893 }
1894
1895 int
proc_getauxv(struct thread * td,struct proc * p,struct sbuf * sb)1896 proc_getauxv(struct thread *td, struct proc *p, struct sbuf *sb)
1897 {
1898 size_t vsize, size;
1899 char **auxv;
1900 int error;
1901
1902 error = get_proc_vector(td, p, &auxv, &vsize, PROC_AUX);
1903 if (error == 0) {
1904 #ifdef COMPAT_FREEBSD32
1905 if (SV_PROC_FLAG(p, SV_ILP32) != 0)
1906 size = vsize * sizeof(Elf32_Auxinfo);
1907 else
1908 #endif
1909 size = vsize * sizeof(Elf_Auxinfo);
1910 if (sbuf_bcat(sb, auxv, size) != 0)
1911 error = ENOMEM;
1912 free(auxv, M_TEMP);
1913 }
1914 return (error);
1915 }
1916
1917 /*
1918 * This sysctl allows a process to retrieve the argument list or process
1919 * title for another process without groping around in the address space
1920 * of the other process. It also allow a process to set its own "process
1921 * title to a string of its own choice.
1922 */
1923 static int
sysctl_kern_proc_args(SYSCTL_HANDLER_ARGS)1924 sysctl_kern_proc_args(SYSCTL_HANDLER_ARGS)
1925 {
1926 int *name = (int *)arg1;
1927 u_int namelen = arg2;
1928 struct pargs *newpa, *pa;
1929 struct proc *p;
1930 struct sbuf sb;
1931 int flags, error = 0, error2;
1932 pid_t pid;
1933
1934 if (namelen != 1)
1935 return (EINVAL);
1936
1937 pid = (pid_t)name[0];
1938 /*
1939 * If the query is for this process and it is single-threaded, there
1940 * is nobody to modify pargs, thus we can just read.
1941 */
1942 p = curproc;
1943 if (pid == p->p_pid && p->p_numthreads == 1 && req->newptr == NULL &&
1944 (pa = p->p_args) != NULL)
1945 return (SYSCTL_OUT(req, pa->ar_args, pa->ar_length));
1946
1947 flags = PGET_CANSEE;
1948 if (req->newptr != NULL)
1949 flags |= PGET_ISCURRENT;
1950 error = pget(pid, flags, &p);
1951 if (error)
1952 return (error);
1953
1954 pa = p->p_args;
1955 if (pa != NULL) {
1956 pargs_hold(pa);
1957 PROC_UNLOCK(p);
1958 error = SYSCTL_OUT(req, pa->ar_args, pa->ar_length);
1959 pargs_drop(pa);
1960 } else if ((p->p_flag & (P_WEXIT | P_SYSTEM)) == 0) {
1961 _PHOLD(p);
1962 PROC_UNLOCK(p);
1963 sbuf_new_for_sysctl(&sb, NULL, GET_PS_STRINGS_CHUNK_SZ, req);
1964 sbuf_clear_flags(&sb, SBUF_INCLUDENUL);
1965 error = proc_getargv(curthread, p, &sb);
1966 error2 = sbuf_finish(&sb);
1967 PRELE(p);
1968 sbuf_delete(&sb);
1969 if (error == 0 && error2 != 0)
1970 error = error2;
1971 } else {
1972 PROC_UNLOCK(p);
1973 }
1974 if (error != 0 || req->newptr == NULL)
1975 return (error);
1976
1977 if (req->newlen > ps_arg_cache_limit - sizeof(struct pargs))
1978 return (ENOMEM);
1979
1980 if (req->newlen == 0) {
1981 /*
1982 * Clear the argument pointer, so that we'll fetch arguments
1983 * with proc_getargv() until further notice.
1984 */
1985 newpa = NULL;
1986 } else {
1987 newpa = pargs_alloc(req->newlen);
1988 error = SYSCTL_IN(req, newpa->ar_args, req->newlen);
1989 if (error != 0) {
1990 pargs_free(newpa);
1991 return (error);
1992 }
1993 }
1994 PROC_LOCK(p);
1995 pa = p->p_args;
1996 p->p_args = newpa;
1997 PROC_UNLOCK(p);
1998 pargs_drop(pa);
1999 return (0);
2000 }
2001
2002 /*
2003 * This sysctl allows a process to retrieve environment of another process.
2004 */
2005 static int
sysctl_kern_proc_env(SYSCTL_HANDLER_ARGS)2006 sysctl_kern_proc_env(SYSCTL_HANDLER_ARGS)
2007 {
2008 int *name = (int *)arg1;
2009 u_int namelen = arg2;
2010 struct proc *p;
2011 struct sbuf sb;
2012 int error, error2;
2013
2014 if (namelen != 1)
2015 return (EINVAL);
2016
2017 error = pget((pid_t)name[0], PGET_WANTREAD, &p);
2018 if (error != 0)
2019 return (error);
2020 if ((p->p_flag & P_SYSTEM) != 0) {
2021 PRELE(p);
2022 return (0);
2023 }
2024
2025 sbuf_new_for_sysctl(&sb, NULL, GET_PS_STRINGS_CHUNK_SZ, req);
2026 sbuf_clear_flags(&sb, SBUF_INCLUDENUL);
2027 error = proc_getenvv(curthread, p, &sb);
2028 error2 = sbuf_finish(&sb);
2029 PRELE(p);
2030 sbuf_delete(&sb);
2031 return (error != 0 ? error : error2);
2032 }
2033
2034 /*
2035 * This sysctl allows a process to retrieve ELF auxiliary vector of
2036 * another process.
2037 */
2038 static int
sysctl_kern_proc_auxv(SYSCTL_HANDLER_ARGS)2039 sysctl_kern_proc_auxv(SYSCTL_HANDLER_ARGS)
2040 {
2041 int *name = (int *)arg1;
2042 u_int namelen = arg2;
2043 struct proc *p;
2044 struct sbuf sb;
2045 int error, error2;
2046
2047 if (namelen != 1)
2048 return (EINVAL);
2049
2050 error = pget((pid_t)name[0], PGET_WANTREAD, &p);
2051 if (error != 0)
2052 return (error);
2053 if ((p->p_flag & P_SYSTEM) != 0) {
2054 PRELE(p);
2055 return (0);
2056 }
2057 sbuf_new_for_sysctl(&sb, NULL, GET_PS_STRINGS_CHUNK_SZ, req);
2058 sbuf_clear_flags(&sb, SBUF_INCLUDENUL);
2059 error = proc_getauxv(curthread, p, &sb);
2060 error2 = sbuf_finish(&sb);
2061 PRELE(p);
2062 sbuf_delete(&sb);
2063 return (error != 0 ? error : error2);
2064 }
2065
2066 /*
2067 * This sysctl allows a process to retrieve the path of the executable for
2068 * itself or another process.
2069 */
2070 static int
sysctl_kern_proc_pathname(SYSCTL_HANDLER_ARGS)2071 sysctl_kern_proc_pathname(SYSCTL_HANDLER_ARGS)
2072 {
2073 pid_t *pidp = (pid_t *)arg1;
2074 unsigned int arglen = arg2;
2075 struct proc *p;
2076 struct vnode *vp;
2077 char *retbuf, *freebuf;
2078 int error;
2079
2080 if (arglen != 1)
2081 return (EINVAL);
2082 if (*pidp == -1) { /* -1 means this process */
2083 p = req->td->td_proc;
2084 } else {
2085 error = pget(*pidp, PGET_CANSEE, &p);
2086 if (error != 0)
2087 return (error);
2088 }
2089
2090 vp = p->p_textvp;
2091 if (vp == NULL) {
2092 if (*pidp != -1)
2093 PROC_UNLOCK(p);
2094 return (0);
2095 }
2096 vref(vp);
2097 if (*pidp != -1)
2098 PROC_UNLOCK(p);
2099 error = vn_fullpath(req->td, vp, &retbuf, &freebuf);
2100 vrele(vp);
2101 if (error)
2102 return (error);
2103 error = SYSCTL_OUT(req, retbuf, strlen(retbuf) + 1);
2104 free(freebuf, M_TEMP);
2105 return (error);
2106 }
2107
2108 static int
sysctl_kern_proc_sv_name(SYSCTL_HANDLER_ARGS)2109 sysctl_kern_proc_sv_name(SYSCTL_HANDLER_ARGS)
2110 {
2111 struct proc *p;
2112 char *sv_name;
2113 int *name;
2114 int namelen;
2115 int error;
2116
2117 namelen = arg2;
2118 if (namelen != 1)
2119 return (EINVAL);
2120
2121 name = (int *)arg1;
2122 error = pget((pid_t)name[0], PGET_CANSEE, &p);
2123 if (error != 0)
2124 return (error);
2125 sv_name = p->p_sysent->sv_name;
2126 PROC_UNLOCK(p);
2127 return (sysctl_handle_string(oidp, sv_name, 0, req));
2128 }
2129
2130 #ifdef KINFO_OVMENTRY_SIZE
2131 CTASSERT(sizeof(struct kinfo_ovmentry) == KINFO_OVMENTRY_SIZE);
2132 #endif
2133
2134 #ifdef COMPAT_FREEBSD7
2135 static int
sysctl_kern_proc_ovmmap(SYSCTL_HANDLER_ARGS)2136 sysctl_kern_proc_ovmmap(SYSCTL_HANDLER_ARGS)
2137 {
2138 vm_map_entry_t entry, tmp_entry;
2139 unsigned int last_timestamp;
2140 char *fullpath, *freepath;
2141 struct kinfo_ovmentry *kve;
2142 struct vattr va;
2143 struct ucred *cred;
2144 int error, *name;
2145 struct vnode *vp;
2146 struct proc *p;
2147 vm_map_t map;
2148 struct vmspace *vm;
2149
2150 name = (int *)arg1;
2151 error = pget((pid_t)name[0], PGET_WANTREAD, &p);
2152 if (error != 0)
2153 return (error);
2154 vm = vmspace_acquire_ref(p);
2155 if (vm == NULL) {
2156 PRELE(p);
2157 return (ESRCH);
2158 }
2159 kve = malloc(sizeof(*kve), M_TEMP, M_WAITOK);
2160
2161 map = &vm->vm_map;
2162 vm_map_lock_read(map);
2163 for (entry = map->header.next; entry != &map->header;
2164 entry = entry->next) {
2165 vm_object_t obj, tobj, lobj;
2166 vm_offset_t addr;
2167
2168 if (entry->eflags & MAP_ENTRY_IS_SUB_MAP)
2169 continue;
2170
2171 bzero(kve, sizeof(*kve));
2172 kve->kve_structsize = sizeof(*kve);
2173
2174 kve->kve_private_resident = 0;
2175 obj = entry->object.vm_object;
2176 if (obj != NULL) {
2177 VM_OBJECT_RLOCK(obj);
2178 if (obj->shadow_count == 1)
2179 kve->kve_private_resident =
2180 obj->resident_page_count;
2181 }
2182 kve->kve_resident = 0;
2183 addr = entry->start;
2184 while (addr < entry->end) {
2185 if (pmap_extract(map->pmap, addr))
2186 kve->kve_resident++;
2187 addr += PAGE_SIZE;
2188 }
2189
2190 for (lobj = tobj = obj; tobj; tobj = tobj->backing_object) {
2191 if (tobj != obj) {
2192 VM_OBJECT_RLOCK(tobj);
2193 kve->kve_offset += tobj->backing_object_offset;
2194 }
2195 if (lobj != obj)
2196 VM_OBJECT_RUNLOCK(lobj);
2197 lobj = tobj;
2198 }
2199
2200 kve->kve_start = (void*)entry->start;
2201 kve->kve_end = (void*)entry->end;
2202 kve->kve_offset += (off_t)entry->offset;
2203
2204 if (entry->protection & VM_PROT_READ)
2205 kve->kve_protection |= KVME_PROT_READ;
2206 if (entry->protection & VM_PROT_WRITE)
2207 kve->kve_protection |= KVME_PROT_WRITE;
2208 if (entry->protection & VM_PROT_EXECUTE)
2209 kve->kve_protection |= KVME_PROT_EXEC;
2210
2211 if (entry->eflags & MAP_ENTRY_COW)
2212 kve->kve_flags |= KVME_FLAG_COW;
2213 if (entry->eflags & MAP_ENTRY_NEEDS_COPY)
2214 kve->kve_flags |= KVME_FLAG_NEEDS_COPY;
2215 if (entry->eflags & MAP_ENTRY_NOCOREDUMP)
2216 kve->kve_flags |= KVME_FLAG_NOCOREDUMP;
2217
2218 last_timestamp = map->timestamp;
2219 vm_map_unlock_read(map);
2220
2221 kve->kve_fileid = 0;
2222 kve->kve_fsid = 0;
2223 freepath = NULL;
2224 fullpath = "";
2225 if (lobj) {
2226 vp = NULL;
2227 switch (lobj->type) {
2228 case OBJT_DEFAULT:
2229 kve->kve_type = KVME_TYPE_DEFAULT;
2230 break;
2231 case OBJT_VNODE:
2232 kve->kve_type = KVME_TYPE_VNODE;
2233 vp = lobj->handle;
2234 vref(vp);
2235 break;
2236 case OBJT_SWAP:
2237 if ((lobj->flags & OBJ_TMPFS_NODE) != 0) {
2238 kve->kve_type = KVME_TYPE_VNODE;
2239 if ((lobj->flags & OBJ_TMPFS) != 0) {
2240 vp = lobj->un_pager.swp.swp_tmpfs;
2241 vref(vp);
2242 }
2243 } else {
2244 kve->kve_type = KVME_TYPE_SWAP;
2245 }
2246 break;
2247 case OBJT_DEVICE:
2248 kve->kve_type = KVME_TYPE_DEVICE;
2249 break;
2250 case OBJT_PHYS:
2251 kve->kve_type = KVME_TYPE_PHYS;
2252 break;
2253 case OBJT_DEAD:
2254 kve->kve_type = KVME_TYPE_DEAD;
2255 break;
2256 case OBJT_SG:
2257 kve->kve_type = KVME_TYPE_SG;
2258 break;
2259 default:
2260 kve->kve_type = KVME_TYPE_UNKNOWN;
2261 break;
2262 }
2263 if (lobj != obj)
2264 VM_OBJECT_RUNLOCK(lobj);
2265
2266 kve->kve_ref_count = obj->ref_count;
2267 kve->kve_shadow_count = obj->shadow_count;
2268 VM_OBJECT_RUNLOCK(obj);
2269 if (vp != NULL) {
2270 vn_fullpath(curthread, vp, &fullpath,
2271 &freepath);
2272 cred = curthread->td_ucred;
2273 vn_lock(vp, LK_SHARED | LK_RETRY);
2274 if (VOP_GETATTR(vp, &va, cred) == 0) {
2275 kve->kve_fileid = va.va_fileid;
2276 /* truncate */
2277 kve->kve_fsid = va.va_fsid;
2278 }
2279 vput(vp);
2280 }
2281 } else {
2282 kve->kve_type = KVME_TYPE_NONE;
2283 kve->kve_ref_count = 0;
2284 kve->kve_shadow_count = 0;
2285 }
2286
2287 strlcpy(kve->kve_path, fullpath, sizeof(kve->kve_path));
2288 if (freepath != NULL)
2289 free(freepath, M_TEMP);
2290
2291 error = SYSCTL_OUT(req, kve, sizeof(*kve));
2292 vm_map_lock_read(map);
2293 if (error)
2294 break;
2295 if (last_timestamp != map->timestamp) {
2296 vm_map_lookup_entry(map, addr - 1, &tmp_entry);
2297 entry = tmp_entry;
2298 }
2299 }
2300 vm_map_unlock_read(map);
2301 vmspace_free(vm);
2302 PRELE(p);
2303 free(kve, M_TEMP);
2304 return (error);
2305 }
2306 #endif /* COMPAT_FREEBSD7 */
2307
2308 #ifdef KINFO_VMENTRY_SIZE
2309 CTASSERT(sizeof(struct kinfo_vmentry) == KINFO_VMENTRY_SIZE);
2310 #endif
2311
2312 void
kern_proc_vmmap_resident(vm_map_t map,vm_map_entry_t entry,int * resident_count,bool * super)2313 kern_proc_vmmap_resident(vm_map_t map, vm_map_entry_t entry,
2314 int *resident_count, bool *super)
2315 {
2316 vm_object_t obj, tobj;
2317 vm_page_t m, m_adv;
2318 vm_offset_t addr;
2319 vm_paddr_t locked_pa;
2320 vm_pindex_t pi, pi_adv, pindex;
2321
2322 *super = false;
2323 *resident_count = 0;
2324 if (vmmap_skip_res_cnt)
2325 return;
2326
2327 locked_pa = 0;
2328 obj = entry->object.vm_object;
2329 addr = entry->start;
2330 m_adv = NULL;
2331 pi = OFF_TO_IDX(entry->offset);
2332 for (; addr < entry->end; addr += IDX_TO_OFF(pi_adv), pi += pi_adv) {
2333 if (m_adv != NULL) {
2334 m = m_adv;
2335 } else {
2336 pi_adv = atop(entry->end - addr);
2337 pindex = pi;
2338 for (tobj = obj;; tobj = tobj->backing_object) {
2339 m = vm_page_find_least(tobj, pindex);
2340 if (m != NULL) {
2341 if (m->pindex == pindex)
2342 break;
2343 if (pi_adv > m->pindex - pindex) {
2344 pi_adv = m->pindex - pindex;
2345 m_adv = m;
2346 }
2347 }
2348 if (tobj->backing_object == NULL)
2349 goto next;
2350 pindex += OFF_TO_IDX(tobj->
2351 backing_object_offset);
2352 }
2353 }
2354 m_adv = NULL;
2355 if (m->psind != 0 && addr + pagesizes[1] <= entry->end &&
2356 (addr & (pagesizes[1] - 1)) == 0 &&
2357 (pmap_mincore(map->pmap, addr, &locked_pa) &
2358 MINCORE_SUPER) != 0) {
2359 *super = true;
2360 pi_adv = atop(pagesizes[1]);
2361 } else {
2362 /*
2363 * We do not test the found page on validity.
2364 * Either the page is busy and being paged in,
2365 * or it was invalidated. The first case
2366 * should be counted as resident, the second
2367 * is not so clear; we do account both.
2368 */
2369 pi_adv = 1;
2370 }
2371 *resident_count += pi_adv;
2372 next:;
2373 }
2374 PA_UNLOCK_COND(locked_pa);
2375 }
2376
2377 /*
2378 * Must be called with the process locked and will return unlocked.
2379 */
2380 int
kern_proc_vmmap_out(struct proc * p,struct sbuf * sb,ssize_t maxlen,int flags)2381 kern_proc_vmmap_out(struct proc *p, struct sbuf *sb, ssize_t maxlen, int flags)
2382 {
2383 vm_map_entry_t entry, tmp_entry;
2384 struct vattr va;
2385 vm_map_t map;
2386 vm_object_t obj, tobj, lobj;
2387 char *fullpath, *freepath;
2388 struct kinfo_vmentry *kve;
2389 struct ucred *cred;
2390 struct vnode *vp;
2391 struct vmspace *vm;
2392 vm_offset_t addr;
2393 unsigned int last_timestamp;
2394 int error;
2395 bool super;
2396
2397 PROC_LOCK_ASSERT(p, MA_OWNED);
2398
2399 _PHOLD(p);
2400 PROC_UNLOCK(p);
2401 vm = vmspace_acquire_ref(p);
2402 if (vm == NULL) {
2403 PRELE(p);
2404 return (ESRCH);
2405 }
2406 kve = malloc(sizeof(*kve), M_TEMP, M_WAITOK | M_ZERO);
2407
2408 error = 0;
2409 map = &vm->vm_map;
2410 vm_map_lock_read(map);
2411 for (entry = map->header.next; entry != &map->header;
2412 entry = entry->next) {
2413 if (entry->eflags & MAP_ENTRY_IS_SUB_MAP)
2414 continue;
2415
2416 addr = entry->end;
2417 bzero(kve, sizeof(*kve));
2418 obj = entry->object.vm_object;
2419 if (obj != NULL) {
2420 for (tobj = obj; tobj != NULL;
2421 tobj = tobj->backing_object) {
2422 VM_OBJECT_RLOCK(tobj);
2423 kve->kve_offset += tobj->backing_object_offset;
2424 lobj = tobj;
2425 }
2426 if (obj->backing_object == NULL)
2427 kve->kve_private_resident =
2428 obj->resident_page_count;
2429 kern_proc_vmmap_resident(map, entry,
2430 &kve->kve_resident, &super);
2431 if (super)
2432 kve->kve_flags |= KVME_FLAG_SUPER;
2433 for (tobj = obj; tobj != NULL;
2434 tobj = tobj->backing_object) {
2435 if (tobj != obj && tobj != lobj)
2436 VM_OBJECT_RUNLOCK(tobj);
2437 }
2438 } else {
2439 lobj = NULL;
2440 }
2441
2442 kve->kve_start = entry->start;
2443 kve->kve_end = entry->end;
2444 kve->kve_offset += entry->offset;
2445
2446 if (entry->protection & VM_PROT_READ)
2447 kve->kve_protection |= KVME_PROT_READ;
2448 if (entry->protection & VM_PROT_WRITE)
2449 kve->kve_protection |= KVME_PROT_WRITE;
2450 if (entry->protection & VM_PROT_EXECUTE)
2451 kve->kve_protection |= KVME_PROT_EXEC;
2452
2453 if (entry->eflags & MAP_ENTRY_COW)
2454 kve->kve_flags |= KVME_FLAG_COW;
2455 if (entry->eflags & MAP_ENTRY_NEEDS_COPY)
2456 kve->kve_flags |= KVME_FLAG_NEEDS_COPY;
2457 if (entry->eflags & MAP_ENTRY_NOCOREDUMP)
2458 kve->kve_flags |= KVME_FLAG_NOCOREDUMP;
2459 if (entry->eflags & MAP_ENTRY_GROWS_UP)
2460 kve->kve_flags |= KVME_FLAG_GROWS_UP;
2461 if (entry->eflags & MAP_ENTRY_GROWS_DOWN)
2462 kve->kve_flags |= KVME_FLAG_GROWS_DOWN;
2463 if (entry->eflags & MAP_ENTRY_USER_WIRED)
2464 kve->kve_flags |= KVME_FLAG_USER_WIRED;
2465
2466 last_timestamp = map->timestamp;
2467 vm_map_unlock_read(map);
2468
2469 freepath = NULL;
2470 fullpath = "";
2471 if (lobj != NULL) {
2472 vp = NULL;
2473 switch (lobj->type) {
2474 case OBJT_DEFAULT:
2475 kve->kve_type = KVME_TYPE_DEFAULT;
2476 break;
2477 case OBJT_VNODE:
2478 kve->kve_type = KVME_TYPE_VNODE;
2479 vp = lobj->handle;
2480 vref(vp);
2481 break;
2482 case OBJT_SWAP:
2483 if ((lobj->flags & OBJ_TMPFS_NODE) != 0) {
2484 kve->kve_type = KVME_TYPE_VNODE;
2485 if ((lobj->flags & OBJ_TMPFS) != 0) {
2486 vp = lobj->un_pager.swp.swp_tmpfs;
2487 vref(vp);
2488 }
2489 } else {
2490 kve->kve_type = KVME_TYPE_SWAP;
2491 }
2492 break;
2493 case OBJT_DEVICE:
2494 kve->kve_type = KVME_TYPE_DEVICE;
2495 break;
2496 case OBJT_PHYS:
2497 kve->kve_type = KVME_TYPE_PHYS;
2498 break;
2499 case OBJT_DEAD:
2500 kve->kve_type = KVME_TYPE_DEAD;
2501 break;
2502 case OBJT_SG:
2503 kve->kve_type = KVME_TYPE_SG;
2504 break;
2505 case OBJT_MGTDEVICE:
2506 kve->kve_type = KVME_TYPE_MGTDEVICE;
2507 break;
2508 default:
2509 kve->kve_type = KVME_TYPE_UNKNOWN;
2510 break;
2511 }
2512 if (lobj != obj)
2513 VM_OBJECT_RUNLOCK(lobj);
2514
2515 kve->kve_ref_count = obj->ref_count;
2516 kve->kve_shadow_count = obj->shadow_count;
2517 VM_OBJECT_RUNLOCK(obj);
2518 if (vp != NULL) {
2519 vn_fullpath(curthread, vp, &fullpath,
2520 &freepath);
2521 kve->kve_vn_type = vntype_to_kinfo(vp->v_type);
2522 cred = curthread->td_ucred;
2523 vn_lock(vp, LK_SHARED | LK_RETRY);
2524 if (VOP_GETATTR(vp, &va, cred) == 0) {
2525 kve->kve_vn_fileid = va.va_fileid;
2526 kve->kve_vn_fsid = va.va_fsid;
2527 kve->kve_vn_fsid_freebsd11 =
2528 kve->kve_vn_fsid; /* truncate */
2529 kve->kve_vn_mode =
2530 MAKEIMODE(va.va_type, va.va_mode);
2531 kve->kve_vn_size = va.va_size;
2532 kve->kve_vn_rdev = va.va_rdev;
2533 kve->kve_vn_rdev_freebsd11 =
2534 kve->kve_vn_rdev; /* truncate */
2535 kve->kve_status = KF_ATTR_VALID;
2536 }
2537 vput(vp);
2538 }
2539 } else {
2540 kve->kve_type = KVME_TYPE_NONE;
2541 kve->kve_ref_count = 0;
2542 kve->kve_shadow_count = 0;
2543 }
2544
2545 strlcpy(kve->kve_path, fullpath, sizeof(kve->kve_path));
2546 if (freepath != NULL)
2547 free(freepath, M_TEMP);
2548
2549 /* Pack record size down */
2550 if ((flags & KERN_VMMAP_PACK_KINFO) != 0)
2551 kve->kve_structsize =
2552 offsetof(struct kinfo_vmentry, kve_path) +
2553 strlen(kve->kve_path) + 1;
2554 else
2555 kve->kve_structsize = sizeof(*kve);
2556 kve->kve_structsize = roundup(kve->kve_structsize,
2557 sizeof(uint64_t));
2558
2559 /* Halt filling and truncate rather than exceeding maxlen */
2560 if (maxlen != -1 && maxlen < kve->kve_structsize) {
2561 error = 0;
2562 vm_map_lock_read(map);
2563 break;
2564 } else if (maxlen != -1)
2565 maxlen -= kve->kve_structsize;
2566
2567 if (sbuf_bcat(sb, kve, kve->kve_structsize) != 0)
2568 error = ENOMEM;
2569 vm_map_lock_read(map);
2570 if (error != 0)
2571 break;
2572 if (last_timestamp != map->timestamp) {
2573 vm_map_lookup_entry(map, addr - 1, &tmp_entry);
2574 entry = tmp_entry;
2575 }
2576 }
2577 vm_map_unlock_read(map);
2578 vmspace_free(vm);
2579 PRELE(p);
2580 free(kve, M_TEMP);
2581 return (error);
2582 }
2583
2584 static int
sysctl_kern_proc_vmmap(SYSCTL_HANDLER_ARGS)2585 sysctl_kern_proc_vmmap(SYSCTL_HANDLER_ARGS)
2586 {
2587 struct proc *p;
2588 struct sbuf sb;
2589 int error, error2, *name;
2590
2591 name = (int *)arg1;
2592 sbuf_new_for_sysctl(&sb, NULL, sizeof(struct kinfo_vmentry), req);
2593 sbuf_clear_flags(&sb, SBUF_INCLUDENUL);
2594 error = pget((pid_t)name[0], PGET_CANDEBUG | PGET_NOTWEXIT, &p);
2595 if (error != 0) {
2596 sbuf_delete(&sb);
2597 return (error);
2598 }
2599 error = kern_proc_vmmap_out(p, &sb, -1, KERN_VMMAP_PACK_KINFO);
2600 error2 = sbuf_finish(&sb);
2601 sbuf_delete(&sb);
2602 return (error != 0 ? error : error2);
2603 }
2604
2605 #if defined(STACK) || defined(DDB)
2606 static int
sysctl_kern_proc_kstack(SYSCTL_HANDLER_ARGS)2607 sysctl_kern_proc_kstack(SYSCTL_HANDLER_ARGS)
2608 {
2609 struct kinfo_kstack *kkstp;
2610 int error, i, *name, numthreads;
2611 lwpid_t *lwpidarray;
2612 struct thread *td;
2613 struct stack *st;
2614 struct sbuf sb;
2615 struct proc *p;
2616
2617 name = (int *)arg1;
2618 error = pget((pid_t)name[0], PGET_NOTINEXEC | PGET_WANTREAD, &p);
2619 if (error != 0)
2620 return (error);
2621
2622 kkstp = malloc(sizeof(*kkstp), M_TEMP, M_WAITOK);
2623 st = stack_create(M_WAITOK);
2624
2625 lwpidarray = NULL;
2626 PROC_LOCK(p);
2627 do {
2628 if (lwpidarray != NULL) {
2629 free(lwpidarray, M_TEMP);
2630 lwpidarray = NULL;
2631 }
2632 numthreads = p->p_numthreads;
2633 PROC_UNLOCK(p);
2634 lwpidarray = malloc(sizeof(*lwpidarray) * numthreads, M_TEMP,
2635 M_WAITOK | M_ZERO);
2636 PROC_LOCK(p);
2637 } while (numthreads < p->p_numthreads);
2638
2639 /*
2640 * XXXRW: During the below loop, execve(2) and countless other sorts
2641 * of changes could have taken place. Should we check to see if the
2642 * vmspace has been replaced, or the like, in order to prevent
2643 * giving a snapshot that spans, say, execve(2), with some threads
2644 * before and some after? Among other things, the credentials could
2645 * have changed, in which case the right to extract debug info might
2646 * no longer be assured.
2647 */
2648 i = 0;
2649 FOREACH_THREAD_IN_PROC(p, td) {
2650 KASSERT(i < numthreads,
2651 ("sysctl_kern_proc_kstack: numthreads"));
2652 lwpidarray[i] = td->td_tid;
2653 i++;
2654 }
2655 numthreads = i;
2656 for (i = 0; i < numthreads; i++) {
2657 td = thread_find(p, lwpidarray[i]);
2658 if (td == NULL) {
2659 continue;
2660 }
2661 bzero(kkstp, sizeof(*kkstp));
2662 (void)sbuf_new(&sb, kkstp->kkst_trace,
2663 sizeof(kkstp->kkst_trace), SBUF_FIXEDLEN);
2664 thread_lock(td);
2665 kkstp->kkst_tid = td->td_tid;
2666 if (TD_IS_SWAPPED(td)) {
2667 kkstp->kkst_state = KKST_STATE_SWAPPED;
2668 } else if (TD_IS_RUNNING(td)) {
2669 if (stack_save_td_running(st, td) == 0)
2670 kkstp->kkst_state = KKST_STATE_STACKOK;
2671 else
2672 kkstp->kkst_state = KKST_STATE_RUNNING;
2673 } else {
2674 kkstp->kkst_state = KKST_STATE_STACKOK;
2675 stack_save_td(st, td);
2676 }
2677 thread_unlock(td);
2678 PROC_UNLOCK(p);
2679 stack_sbuf_print(&sb, st);
2680 sbuf_finish(&sb);
2681 sbuf_delete(&sb);
2682 error = SYSCTL_OUT(req, kkstp, sizeof(*kkstp));
2683 PROC_LOCK(p);
2684 if (error)
2685 break;
2686 }
2687 _PRELE(p);
2688 PROC_UNLOCK(p);
2689 if (lwpidarray != NULL)
2690 free(lwpidarray, M_TEMP);
2691 stack_destroy(st);
2692 free(kkstp, M_TEMP);
2693 return (error);
2694 }
2695 #endif
2696
2697 /*
2698 * This sysctl allows a process to retrieve the full list of groups from
2699 * itself or another process.
2700 */
2701 static int
sysctl_kern_proc_groups(SYSCTL_HANDLER_ARGS)2702 sysctl_kern_proc_groups(SYSCTL_HANDLER_ARGS)
2703 {
2704 pid_t *pidp = (pid_t *)arg1;
2705 unsigned int arglen = arg2;
2706 struct proc *p;
2707 struct ucred *cred;
2708 int error;
2709
2710 if (arglen != 1)
2711 return (EINVAL);
2712 if (*pidp == -1) { /* -1 means this process */
2713 p = req->td->td_proc;
2714 PROC_LOCK(p);
2715 } else {
2716 error = pget(*pidp, PGET_CANSEE, &p);
2717 if (error != 0)
2718 return (error);
2719 }
2720
2721 cred = crhold(p->p_ucred);
2722 PROC_UNLOCK(p);
2723
2724 error = SYSCTL_OUT(req, cred->cr_groups,
2725 cred->cr_ngroups * sizeof(gid_t));
2726 crfree(cred);
2727 return (error);
2728 }
2729
2730 /*
2731 * This sysctl allows a process to retrieve or/and set the resource limit for
2732 * another process.
2733 */
2734 static int
sysctl_kern_proc_rlimit(SYSCTL_HANDLER_ARGS)2735 sysctl_kern_proc_rlimit(SYSCTL_HANDLER_ARGS)
2736 {
2737 int *name = (int *)arg1;
2738 u_int namelen = arg2;
2739 struct rlimit rlim;
2740 struct proc *p;
2741 u_int which;
2742 int flags, error;
2743
2744 if (namelen != 2)
2745 return (EINVAL);
2746
2747 which = (u_int)name[1];
2748 if (which >= RLIM_NLIMITS)
2749 return (EINVAL);
2750
2751 if (req->newptr != NULL && req->newlen != sizeof(rlim))
2752 return (EINVAL);
2753
2754 flags = PGET_HOLD | PGET_NOTWEXIT;
2755 if (req->newptr != NULL)
2756 flags |= PGET_CANDEBUG;
2757 else
2758 flags |= PGET_CANSEE;
2759 error = pget((pid_t)name[0], flags, &p);
2760 if (error != 0)
2761 return (error);
2762
2763 /*
2764 * Retrieve limit.
2765 */
2766 if (req->oldptr != NULL) {
2767 PROC_LOCK(p);
2768 lim_rlimit_proc(p, which, &rlim);
2769 PROC_UNLOCK(p);
2770 }
2771 error = SYSCTL_OUT(req, &rlim, sizeof(rlim));
2772 if (error != 0)
2773 goto errout;
2774
2775 /*
2776 * Set limit.
2777 */
2778 if (req->newptr != NULL) {
2779 error = SYSCTL_IN(req, &rlim, sizeof(rlim));
2780 if (error == 0)
2781 error = kern_proc_setrlimit(curthread, p, which, &rlim);
2782 }
2783
2784 errout:
2785 PRELE(p);
2786 return (error);
2787 }
2788
2789 /*
2790 * This sysctl allows a process to retrieve ps_strings structure location of
2791 * another process.
2792 */
2793 static int
sysctl_kern_proc_ps_strings(SYSCTL_HANDLER_ARGS)2794 sysctl_kern_proc_ps_strings(SYSCTL_HANDLER_ARGS)
2795 {
2796 int *name = (int *)arg1;
2797 u_int namelen = arg2;
2798 struct proc *p;
2799 vm_offset_t ps_strings;
2800 int error;
2801 #ifdef COMPAT_FREEBSD32
2802 uint32_t ps_strings32;
2803 #endif
2804
2805 if (namelen != 1)
2806 return (EINVAL);
2807
2808 error = pget((pid_t)name[0], PGET_CANDEBUG, &p);
2809 if (error != 0)
2810 return (error);
2811 #ifdef COMPAT_FREEBSD32
2812 if ((req->flags & SCTL_MASK32) != 0) {
2813 /*
2814 * We return 0 if the 32 bit emulation request is for a 64 bit
2815 * process.
2816 */
2817 ps_strings32 = SV_PROC_FLAG(p, SV_ILP32) != 0 ?
2818 PTROUT(p->p_sysent->sv_psstrings) : 0;
2819 PROC_UNLOCK(p);
2820 error = SYSCTL_OUT(req, &ps_strings32, sizeof(ps_strings32));
2821 return (error);
2822 }
2823 #endif
2824 ps_strings = p->p_sysent->sv_psstrings;
2825 PROC_UNLOCK(p);
2826 error = SYSCTL_OUT(req, &ps_strings, sizeof(ps_strings));
2827 return (error);
2828 }
2829
2830 /*
2831 * This sysctl allows a process to retrieve umask of another process.
2832 */
2833 static int
sysctl_kern_proc_umask(SYSCTL_HANDLER_ARGS)2834 sysctl_kern_proc_umask(SYSCTL_HANDLER_ARGS)
2835 {
2836 int *name = (int *)arg1;
2837 u_int namelen = arg2;
2838 struct proc *p;
2839 int error;
2840 u_short fd_cmask;
2841 pid_t pid;
2842
2843 if (namelen != 1)
2844 return (EINVAL);
2845
2846 pid = (pid_t)name[0];
2847 p = curproc;
2848 if (pid == p->p_pid || pid == 0) {
2849 fd_cmask = p->p_fd->fd_cmask;
2850 goto out;
2851 }
2852
2853 error = pget(pid, PGET_WANTREAD, &p);
2854 if (error != 0)
2855 return (error);
2856
2857 fd_cmask = p->p_fd->fd_cmask;
2858 PRELE(p);
2859 out:
2860 error = SYSCTL_OUT(req, &fd_cmask, sizeof(fd_cmask));
2861 return (error);
2862 }
2863
2864 /*
2865 * This sysctl allows a process to set and retrieve binary osreldate of
2866 * another process.
2867 */
2868 static int
sysctl_kern_proc_osrel(SYSCTL_HANDLER_ARGS)2869 sysctl_kern_proc_osrel(SYSCTL_HANDLER_ARGS)
2870 {
2871 int *name = (int *)arg1;
2872 u_int namelen = arg2;
2873 struct proc *p;
2874 int flags, error, osrel;
2875
2876 if (namelen != 1)
2877 return (EINVAL);
2878
2879 if (req->newptr != NULL && req->newlen != sizeof(osrel))
2880 return (EINVAL);
2881
2882 flags = PGET_HOLD | PGET_NOTWEXIT;
2883 if (req->newptr != NULL)
2884 flags |= PGET_CANDEBUG;
2885 else
2886 flags |= PGET_CANSEE;
2887 error = pget((pid_t)name[0], flags, &p);
2888 if (error != 0)
2889 return (error);
2890
2891 error = SYSCTL_OUT(req, &p->p_osrel, sizeof(p->p_osrel));
2892 if (error != 0)
2893 goto errout;
2894
2895 if (req->newptr != NULL) {
2896 error = SYSCTL_IN(req, &osrel, sizeof(osrel));
2897 if (error != 0)
2898 goto errout;
2899 if (osrel < 0) {
2900 error = EINVAL;
2901 goto errout;
2902 }
2903 p->p_osrel = osrel;
2904 }
2905 errout:
2906 PRELE(p);
2907 return (error);
2908 }
2909
2910 static int
sysctl_kern_proc_sigtramp(SYSCTL_HANDLER_ARGS)2911 sysctl_kern_proc_sigtramp(SYSCTL_HANDLER_ARGS)
2912 {
2913 int *name = (int *)arg1;
2914 u_int namelen = arg2;
2915 struct proc *p;
2916 struct kinfo_sigtramp kst;
2917 const struct sysentvec *sv;
2918 int error;
2919 #ifdef COMPAT_FREEBSD32
2920 struct kinfo_sigtramp32 kst32;
2921 #endif
2922
2923 if (namelen != 1)
2924 return (EINVAL);
2925
2926 error = pget((pid_t)name[0], PGET_CANDEBUG, &p);
2927 if (error != 0)
2928 return (error);
2929 sv = p->p_sysent;
2930 #ifdef COMPAT_FREEBSD32
2931 if ((req->flags & SCTL_MASK32) != 0) {
2932 bzero(&kst32, sizeof(kst32));
2933 if (SV_PROC_FLAG(p, SV_ILP32)) {
2934 if (sv->sv_sigcode_base != 0) {
2935 kst32.ksigtramp_start = sv->sv_sigcode_base;
2936 kst32.ksigtramp_end = sv->sv_sigcode_base +
2937 *sv->sv_szsigcode;
2938 } else {
2939 kst32.ksigtramp_start = sv->sv_psstrings -
2940 *sv->sv_szsigcode;
2941 kst32.ksigtramp_end = sv->sv_psstrings;
2942 }
2943 }
2944 PROC_UNLOCK(p);
2945 error = SYSCTL_OUT(req, &kst32, sizeof(kst32));
2946 return (error);
2947 }
2948 #endif
2949 bzero(&kst, sizeof(kst));
2950 if (sv->sv_sigcode_base != 0) {
2951 kst.ksigtramp_start = (char *)sv->sv_sigcode_base;
2952 kst.ksigtramp_end = (char *)sv->sv_sigcode_base +
2953 *sv->sv_szsigcode;
2954 } else {
2955 kst.ksigtramp_start = (char *)sv->sv_psstrings -
2956 *sv->sv_szsigcode;
2957 kst.ksigtramp_end = (char *)sv->sv_psstrings;
2958 }
2959 PROC_UNLOCK(p);
2960 error = SYSCTL_OUT(req, &kst, sizeof(kst));
2961 return (error);
2962 }
2963
2964 SYSCTL_NODE(_kern, KERN_PROC, proc, CTLFLAG_RD, 0, "Process table");
2965
2966 SYSCTL_PROC(_kern_proc, KERN_PROC_ALL, all, CTLFLAG_RD|CTLTYPE_STRUCT|
2967 CTLFLAG_MPSAFE, 0, 0, sysctl_kern_proc, "S,proc",
2968 "Return entire process table");
2969
2970 static SYSCTL_NODE(_kern_proc, KERN_PROC_GID, gid, CTLFLAG_RD | CTLFLAG_MPSAFE,
2971 sysctl_kern_proc, "Process table");
2972
2973 static SYSCTL_NODE(_kern_proc, KERN_PROC_PGRP, pgrp, CTLFLAG_RD | CTLFLAG_MPSAFE,
2974 sysctl_kern_proc, "Process table");
2975
2976 static SYSCTL_NODE(_kern_proc, KERN_PROC_RGID, rgid, CTLFLAG_RD | CTLFLAG_MPSAFE,
2977 sysctl_kern_proc, "Process table");
2978
2979 static SYSCTL_NODE(_kern_proc, KERN_PROC_SESSION, sid, CTLFLAG_RD |
2980 CTLFLAG_MPSAFE, sysctl_kern_proc, "Process table");
2981
2982 static SYSCTL_NODE(_kern_proc, KERN_PROC_TTY, tty, CTLFLAG_RD | CTLFLAG_MPSAFE,
2983 sysctl_kern_proc, "Process table");
2984
2985 static SYSCTL_NODE(_kern_proc, KERN_PROC_UID, uid, CTLFLAG_RD | CTLFLAG_MPSAFE,
2986 sysctl_kern_proc, "Process table");
2987
2988 static SYSCTL_NODE(_kern_proc, KERN_PROC_RUID, ruid, CTLFLAG_RD | CTLFLAG_MPSAFE,
2989 sysctl_kern_proc, "Process table");
2990
2991 static SYSCTL_NODE(_kern_proc, KERN_PROC_PID, pid, CTLFLAG_RD | CTLFLAG_MPSAFE,
2992 sysctl_kern_proc, "Process table");
2993
2994 static SYSCTL_NODE(_kern_proc, KERN_PROC_PROC, proc, CTLFLAG_RD | CTLFLAG_MPSAFE,
2995 sysctl_kern_proc, "Return process table, no threads");
2996
2997 static SYSCTL_NODE(_kern_proc, KERN_PROC_ARGS, args,
2998 CTLFLAG_RW | CTLFLAG_CAPWR | CTLFLAG_ANYBODY | CTLFLAG_MPSAFE,
2999 sysctl_kern_proc_args, "Process argument list");
3000
3001 static SYSCTL_NODE(_kern_proc, KERN_PROC_ENV, env, CTLFLAG_RD | CTLFLAG_MPSAFE,
3002 sysctl_kern_proc_env, "Process environment");
3003
3004 static SYSCTL_NODE(_kern_proc, KERN_PROC_AUXV, auxv, CTLFLAG_RD |
3005 CTLFLAG_MPSAFE, sysctl_kern_proc_auxv, "Process ELF auxiliary vector");
3006
3007 static SYSCTL_NODE(_kern_proc, KERN_PROC_PATHNAME, pathname, CTLFLAG_RD |
3008 CTLFLAG_MPSAFE, sysctl_kern_proc_pathname, "Process executable path");
3009
3010 static SYSCTL_NODE(_kern_proc, KERN_PROC_SV_NAME, sv_name, CTLFLAG_RD |
3011 CTLFLAG_MPSAFE, sysctl_kern_proc_sv_name,
3012 "Process syscall vector name (ABI type)");
3013
3014 static SYSCTL_NODE(_kern_proc, (KERN_PROC_GID | KERN_PROC_INC_THREAD), gid_td,
3015 CTLFLAG_RD | CTLFLAG_MPSAFE, sysctl_kern_proc, "Process table");
3016
3017 static SYSCTL_NODE(_kern_proc, (KERN_PROC_PGRP | KERN_PROC_INC_THREAD), pgrp_td,
3018 CTLFLAG_RD | CTLFLAG_MPSAFE, sysctl_kern_proc, "Process table");
3019
3020 static SYSCTL_NODE(_kern_proc, (KERN_PROC_RGID | KERN_PROC_INC_THREAD), rgid_td,
3021 CTLFLAG_RD | CTLFLAG_MPSAFE, sysctl_kern_proc, "Process table");
3022
3023 static SYSCTL_NODE(_kern_proc, (KERN_PROC_SESSION | KERN_PROC_INC_THREAD),
3024 sid_td, CTLFLAG_RD | CTLFLAG_MPSAFE, sysctl_kern_proc, "Process table");
3025
3026 static SYSCTL_NODE(_kern_proc, (KERN_PROC_TTY | KERN_PROC_INC_THREAD), tty_td,
3027 CTLFLAG_RD | CTLFLAG_MPSAFE, sysctl_kern_proc, "Process table");
3028
3029 static SYSCTL_NODE(_kern_proc, (KERN_PROC_UID | KERN_PROC_INC_THREAD), uid_td,
3030 CTLFLAG_RD | CTLFLAG_MPSAFE, sysctl_kern_proc, "Process table");
3031
3032 static SYSCTL_NODE(_kern_proc, (KERN_PROC_RUID | KERN_PROC_INC_THREAD), ruid_td,
3033 CTLFLAG_RD | CTLFLAG_MPSAFE, sysctl_kern_proc, "Process table");
3034
3035 static SYSCTL_NODE(_kern_proc, (KERN_PROC_PID | KERN_PROC_INC_THREAD), pid_td,
3036 CTLFLAG_RD | CTLFLAG_MPSAFE, sysctl_kern_proc, "Process table");
3037
3038 static SYSCTL_NODE(_kern_proc, (KERN_PROC_PROC | KERN_PROC_INC_THREAD), proc_td,
3039 CTLFLAG_RD | CTLFLAG_MPSAFE, sysctl_kern_proc,
3040 "Return process table, no threads");
3041
3042 #ifdef COMPAT_FREEBSD7
3043 static SYSCTL_NODE(_kern_proc, KERN_PROC_OVMMAP, ovmmap, CTLFLAG_RD |
3044 CTLFLAG_MPSAFE, sysctl_kern_proc_ovmmap, "Old Process vm map entries");
3045 #endif
3046
3047 static SYSCTL_NODE(_kern_proc, KERN_PROC_VMMAP, vmmap, CTLFLAG_RD |
3048 CTLFLAG_MPSAFE, sysctl_kern_proc_vmmap, "Process vm map entries");
3049
3050 #if defined(STACK) || defined(DDB)
3051 static SYSCTL_NODE(_kern_proc, KERN_PROC_KSTACK, kstack, CTLFLAG_RD |
3052 CTLFLAG_MPSAFE, sysctl_kern_proc_kstack, "Process kernel stacks");
3053 #endif
3054
3055 static SYSCTL_NODE(_kern_proc, KERN_PROC_GROUPS, groups, CTLFLAG_RD |
3056 CTLFLAG_MPSAFE, sysctl_kern_proc_groups, "Process groups");
3057
3058 static SYSCTL_NODE(_kern_proc, KERN_PROC_RLIMIT, rlimit, CTLFLAG_RW |
3059 CTLFLAG_ANYBODY | CTLFLAG_MPSAFE, sysctl_kern_proc_rlimit,
3060 "Process resource limits");
3061
3062 static SYSCTL_NODE(_kern_proc, KERN_PROC_PS_STRINGS, ps_strings, CTLFLAG_RD |
3063 CTLFLAG_MPSAFE, sysctl_kern_proc_ps_strings,
3064 "Process ps_strings location");
3065
3066 static SYSCTL_NODE(_kern_proc, KERN_PROC_UMASK, umask, CTLFLAG_RD |
3067 CTLFLAG_MPSAFE, sysctl_kern_proc_umask, "Process umask");
3068
3069 static SYSCTL_NODE(_kern_proc, KERN_PROC_OSREL, osrel, CTLFLAG_RW |
3070 CTLFLAG_ANYBODY | CTLFLAG_MPSAFE, sysctl_kern_proc_osrel,
3071 "Process binary osreldate");
3072
3073 static SYSCTL_NODE(_kern_proc, KERN_PROC_SIGTRAMP, sigtramp, CTLFLAG_RD |
3074 CTLFLAG_MPSAFE, sysctl_kern_proc_sigtramp,
3075 "Process signal trampoline location");
3076
3077 int allproc_gen;
3078
3079 /*
3080 * stop_all_proc() purpose is to stop all process which have usermode,
3081 * except current process for obvious reasons. This makes it somewhat
3082 * unreliable when invoked from multithreaded process. The service
3083 * must not be user-callable anyway.
3084 */
3085 void
stop_all_proc(void)3086 stop_all_proc(void)
3087 {
3088 struct proc *cp, *p;
3089 int r, gen;
3090 bool restart, seen_stopped, seen_exiting, stopped_some;
3091
3092 cp = curproc;
3093 allproc_loop:
3094 sx_xlock(&allproc_lock);
3095 gen = allproc_gen;
3096 seen_exiting = seen_stopped = stopped_some = restart = false;
3097 LIST_REMOVE(cp, p_list);
3098 LIST_INSERT_HEAD(&allproc, cp, p_list);
3099 for (;;) {
3100 p = LIST_NEXT(cp, p_list);
3101 if (p == NULL)
3102 break;
3103 LIST_REMOVE(cp, p_list);
3104 LIST_INSERT_AFTER(p, cp, p_list);
3105 PROC_LOCK(p);
3106 if ((p->p_flag & (P_KPROC | P_SYSTEM | P_TOTAL_STOP)) != 0) {
3107 PROC_UNLOCK(p);
3108 continue;
3109 }
3110 if ((p->p_flag & P_WEXIT) != 0) {
3111 seen_exiting = true;
3112 PROC_UNLOCK(p);
3113 continue;
3114 }
3115 if (P_SHOULDSTOP(p) == P_STOPPED_SINGLE) {
3116 /*
3117 * Stopped processes are tolerated when there
3118 * are no other processes which might continue
3119 * them. P_STOPPED_SINGLE but not
3120 * P_TOTAL_STOP process still has at least one
3121 * thread running.
3122 */
3123 seen_stopped = true;
3124 PROC_UNLOCK(p);
3125 continue;
3126 }
3127 sx_xunlock(&allproc_lock);
3128 _PHOLD(p);
3129 r = thread_single(p, SINGLE_ALLPROC);
3130 if (r != 0)
3131 restart = true;
3132 else
3133 stopped_some = true;
3134 _PRELE(p);
3135 PROC_UNLOCK(p);
3136 sx_xlock(&allproc_lock);
3137 }
3138 /* Catch forked children we did not see in iteration. */
3139 if (gen != allproc_gen)
3140 restart = true;
3141 sx_xunlock(&allproc_lock);
3142 if (restart || stopped_some || seen_exiting || seen_stopped) {
3143 kern_yield(PRI_USER);
3144 goto allproc_loop;
3145 }
3146 }
3147
3148 void
resume_all_proc(void)3149 resume_all_proc(void)
3150 {
3151 struct proc *cp, *p;
3152
3153 cp = curproc;
3154 sx_xlock(&allproc_lock);
3155 again:
3156 LIST_REMOVE(cp, p_list);
3157 LIST_INSERT_HEAD(&allproc, cp, p_list);
3158 for (;;) {
3159 p = LIST_NEXT(cp, p_list);
3160 if (p == NULL)
3161 break;
3162 LIST_REMOVE(cp, p_list);
3163 LIST_INSERT_AFTER(p, cp, p_list);
3164 PROC_LOCK(p);
3165 if ((p->p_flag & P_TOTAL_STOP) != 0) {
3166 sx_xunlock(&allproc_lock);
3167 _PHOLD(p);
3168 thread_single_end(p, SINGLE_ALLPROC);
3169 _PRELE(p);
3170 PROC_UNLOCK(p);
3171 sx_xlock(&allproc_lock);
3172 } else {
3173 PROC_UNLOCK(p);
3174 }
3175 }
3176 /* Did the loop above missed any stopped process ? */
3177 FOREACH_PROC_IN_SYSTEM(p) {
3178 /* No need for proc lock. */
3179 if ((p->p_flag & P_TOTAL_STOP) != 0)
3180 goto again;
3181 }
3182 sx_xunlock(&allproc_lock);
3183 }
3184
3185 /* #define TOTAL_STOP_DEBUG 1 */
3186 #ifdef TOTAL_STOP_DEBUG
3187 volatile static int ap_resume;
3188 #include <sys/mount.h>
3189
3190 static int
sysctl_debug_stop_all_proc(SYSCTL_HANDLER_ARGS)3191 sysctl_debug_stop_all_proc(SYSCTL_HANDLER_ARGS)
3192 {
3193 int error, val;
3194
3195 val = 0;
3196 ap_resume = 0;
3197 error = sysctl_handle_int(oidp, &val, 0, req);
3198 if (error != 0 || req->newptr == NULL)
3199 return (error);
3200 if (val != 0) {
3201 stop_all_proc();
3202 syncer_suspend();
3203 while (ap_resume == 0)
3204 ;
3205 syncer_resume();
3206 resume_all_proc();
3207 }
3208 return (0);
3209 }
3210
3211 SYSCTL_PROC(_debug, OID_AUTO, stop_all_proc, CTLTYPE_INT | CTLFLAG_RW |
3212 CTLFLAG_MPSAFE, __DEVOLATILE(int *, &ap_resume), 0,
3213 sysctl_debug_stop_all_proc, "I",
3214 "");
3215 #endif
3216