1/*
2 * CDDL HEADER START
3 *
4 * The contents of this file are subject to the terms of the
5 * Common Development and Distribution License (the "License").
6 * You may not use this file except in compliance with the License.
7 *
8 * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9 * or http://www.opensolaris.org/os/licensing.
10 * See the License for the specific language governing permissions
11 * and limitations under the License.
12 *
13 * When distributing Covered Code, include this CDDL HEADER in each
14 * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15 * If applicable, add the following below this CDDL HEADER, with the
16 * fields enclosed by brackets "[]" replaced with your own identifying
17 * information: Portions Copyright [yyyy] [name of copyright owner]
18 *
19 * CDDL HEADER END
20 */
21
22/*
23 * Copyright 2010 Sun Microsystems, Inc.  All rights reserved.
24 * Use is subject to license terms.
25 */
26
27/*
28 * DTrace Process Control
29 *
30 * This file provides a set of routines that permit libdtrace and its clients
31 * to create and grab process handles using libproc, and to share these handles
32 * between library mechanisms that need libproc access, such as ustack(), and
33 * client mechanisms that need libproc access, such as dtrace(1M) -c and -p.
34 * The library provides several mechanisms in the libproc control layer:
35 *
36 * Reference Counting: The library code and client code can independently grab
37 * the same process handles without interfering with one another.  Only when
38 * the reference count drops to zero and the handle is not being cached (see
39 * below for more information on caching) will Prelease() be called on it.
40 *
41 * Handle Caching: If a handle is grabbed PGRAB_RDONLY (e.g. by ustack()) and
42 * the reference count drops to zero, the handle is not immediately released.
43 * Instead, libproc handles are maintained on dph_lrulist in order from most-
44 * recently accessed to least-recently accessed.  Idle handles are maintained
45 * until a pre-defined LRU cache limit is exceeded, permitting repeated calls
46 * to ustack() to avoid the overhead of releasing and re-grabbing processes.
47 *
48 * Process Control: For processes that are grabbed for control (~PGRAB_RDONLY)
49 * or created by dt_proc_create(), a control thread is created to provide
50 * callbacks on process exit and symbol table caching on dlopen()s.
51 *
52 * MT-Safety: Libproc is not MT-Safe, so dt_proc_lock() and dt_proc_unlock()
53 * are provided to synchronize access to the libproc handle between libdtrace
54 * code and client code and the control thread's use of the ps_prochandle.
55 *
56 * NOTE: MT-Safety is NOT provided for libdtrace itself, or for use of the
57 * dtrace_proc_grab/dtrace_proc_create mechanisms.  Like all exported libdtrace
58 * calls, these are assumed to be MT-Unsafe.  MT-Safety is ONLY provided for
59 * synchronization between libdtrace control threads and the client thread.
60 *
61 * The ps_prochandles themselves are maintained along with a dt_proc_t struct
62 * in a hash table indexed by PID.  This provides basic locking and reference
63 * counting.  The dt_proc_t is also maintained in LRU order on dph_lrulist.
64 * The dph_lrucnt and dph_lrulim count the number of cacheable processes and
65 * the current limit on the number of actively cached entries.
66 *
67 * The control thread for a process establishes breakpoints at the rtld_db
68 * locations of interest, updates mappings and symbol tables at these points,
69 * and handles exec and fork (by always following the parent).  The control
70 * thread automatically exits when the process dies or control is lost.
71 *
72 * A simple notification mechanism is provided for libdtrace clients using
73 * dtrace_handle_proc() for notification of PS_UNDEAD or PS_LOST events.  If
74 * such an event occurs, the dt_proc_t itself is enqueued on a notification
75 * list and the control thread broadcasts to dph_cv.  dtrace_sleep() will wake
76 * up using this condition and will then call the client handler as necessary.
77 */
78
79#include <sys/wait.h>
80#ifdef illumos
81#include <sys/lwp.h>
82#endif
83#include <strings.h>
84#include <signal.h>
85#include <assert.h>
86#include <errno.h>
87
88#include <dt_proc.h>
89#include <dt_pid.h>
90#include <dt_impl.h>
91
92#ifndef illumos
93#include <sys/syscall.h>
94#include <libproc_compat.h>
95#define	SYS_forksys SYS_fork
96#endif
97
98#define	IS_SYS_EXEC(w)	(w == SYS_execve)
99#define	IS_SYS_FORK(w)	(w == SYS_vfork || w == SYS_forksys)
100
101static dt_bkpt_t *
102dt_proc_bpcreate(dt_proc_t *dpr, uintptr_t addr, dt_bkpt_f *func, void *data)
103{
104	struct ps_prochandle *P = dpr->dpr_proc;
105	dt_bkpt_t *dbp;
106
107	assert(DT_MUTEX_HELD(&dpr->dpr_lock));
108
109	if ((dbp = dt_zalloc(dpr->dpr_hdl, sizeof (dt_bkpt_t))) != NULL) {
110		dbp->dbp_func = func;
111		dbp->dbp_data = data;
112		dbp->dbp_addr = addr;
113
114		if (Psetbkpt(P, dbp->dbp_addr, &dbp->dbp_instr) == 0)
115			dbp->dbp_active = B_TRUE;
116
117		dt_list_append(&dpr->dpr_bps, dbp);
118	}
119
120	return (dbp);
121}
122
123static void
124dt_proc_bpdestroy(dt_proc_t *dpr, int delbkpts)
125{
126	int state = Pstate(dpr->dpr_proc);
127	dt_bkpt_t *dbp, *nbp;
128
129	assert(DT_MUTEX_HELD(&dpr->dpr_lock));
130
131	for (dbp = dt_list_next(&dpr->dpr_bps); dbp != NULL; dbp = nbp) {
132		if (delbkpts && dbp->dbp_active &&
133		    state != PS_LOST && state != PS_UNDEAD) {
134			(void) Pdelbkpt(dpr->dpr_proc,
135			    dbp->dbp_addr, dbp->dbp_instr);
136		}
137		nbp = dt_list_next(dbp);
138		dt_list_delete(&dpr->dpr_bps, dbp);
139		dt_free(dpr->dpr_hdl, dbp);
140	}
141}
142
143static void
144dt_proc_bpmatch(dtrace_hdl_t *dtp, dt_proc_t *dpr)
145{
146#ifdef illumos
147	const lwpstatus_t *psp = &Pstatus(dpr->dpr_proc)->pr_lwp;
148#else
149	unsigned long pc;
150#endif
151	dt_bkpt_t *dbp;
152
153	assert(DT_MUTEX_HELD(&dpr->dpr_lock));
154
155#ifndef illumos
156	proc_regget(dpr->dpr_proc, REG_PC, &pc);
157	proc_bkptregadj(&pc);
158#endif
159
160	for (dbp = dt_list_next(&dpr->dpr_bps);
161	    dbp != NULL; dbp = dt_list_next(dbp)) {
162#ifdef illumos
163		if (psp->pr_reg[R_PC] == dbp->dbp_addr)
164			break;
165#else
166		if (pc == dbp->dbp_addr)
167			break;
168#endif
169	}
170
171	if (dbp == NULL) {
172		dt_dprintf("pid %d: spurious breakpoint wakeup for %lx\n",
173#ifdef illumos
174		    (int)dpr->dpr_pid, (ulong_t)psp->pr_reg[R_PC]);
175#else
176		    (int)dpr->dpr_pid, pc);
177#endif
178		return;
179	}
180
181	dt_dprintf("pid %d: hit breakpoint at %lx (%lu)\n",
182	    (int)dpr->dpr_pid, (ulong_t)dbp->dbp_addr, ++dbp->dbp_hits);
183
184	dbp->dbp_func(dtp, dpr, dbp->dbp_data);
185	(void) Pxecbkpt(dpr->dpr_proc, dbp->dbp_instr);
186}
187
188static void
189dt_proc_bpenable(dt_proc_t *dpr)
190{
191	dt_bkpt_t *dbp;
192
193	assert(DT_MUTEX_HELD(&dpr->dpr_lock));
194
195	for (dbp = dt_list_next(&dpr->dpr_bps);
196	    dbp != NULL; dbp = dt_list_next(dbp)) {
197		if (!dbp->dbp_active && Psetbkpt(dpr->dpr_proc,
198		    dbp->dbp_addr, &dbp->dbp_instr) == 0)
199			dbp->dbp_active = B_TRUE;
200	}
201
202	dt_dprintf("breakpoints enabled\n");
203}
204
205static void
206dt_proc_bpdisable(dt_proc_t *dpr)
207{
208	dt_bkpt_t *dbp;
209
210	assert(DT_MUTEX_HELD(&dpr->dpr_lock));
211
212	for (dbp = dt_list_next(&dpr->dpr_bps);
213	    dbp != NULL; dbp = dt_list_next(dbp)) {
214		if (dbp->dbp_active && Pdelbkpt(dpr->dpr_proc,
215		    dbp->dbp_addr, dbp->dbp_instr) == 0)
216			dbp->dbp_active = B_FALSE;
217	}
218
219	dt_dprintf("breakpoints disabled\n");
220}
221
222static void
223dt_proc_notify(dtrace_hdl_t *dtp, dt_proc_hash_t *dph, dt_proc_t *dpr,
224    const char *msg)
225{
226	dt_proc_notify_t *dprn = dt_alloc(dtp, sizeof (dt_proc_notify_t));
227
228	if (dprn == NULL) {
229		dt_dprintf("failed to allocate notification for %d %s\n",
230		    (int)dpr->dpr_pid, msg);
231	} else {
232		dprn->dprn_dpr = dpr;
233		if (msg == NULL)
234			dprn->dprn_errmsg[0] = '\0';
235		else
236			(void) strlcpy(dprn->dprn_errmsg, msg,
237			    sizeof (dprn->dprn_errmsg));
238
239		(void) pthread_mutex_lock(&dph->dph_lock);
240
241		dprn->dprn_next = dph->dph_notify;
242		dph->dph_notify = dprn;
243
244		(void) pthread_cond_broadcast(&dph->dph_cv);
245		(void) pthread_mutex_unlock(&dph->dph_lock);
246	}
247}
248
249/*
250 * Check to see if the control thread was requested to stop when the victim
251 * process reached a particular event (why) rather than continuing the victim.
252 * If 'why' is set in the stop mask, we wait on dpr_cv for dt_proc_continue().
253 * If 'why' is not set, this function returns immediately and does nothing.
254 */
255static void
256dt_proc_stop(dt_proc_t *dpr, uint8_t why)
257{
258	assert(DT_MUTEX_HELD(&dpr->dpr_lock));
259	assert(why != DT_PROC_STOP_IDLE);
260
261	if (dpr->dpr_stop & why) {
262		dpr->dpr_stop |= DT_PROC_STOP_IDLE;
263		dpr->dpr_stop &= ~why;
264
265		(void) pthread_cond_broadcast(&dpr->dpr_cv);
266
267		/*
268		 * We disable breakpoints while stopped to preserve the
269		 * integrity of the program text for both our own disassembly
270		 * and that of the kernel.
271		 */
272		dt_proc_bpdisable(dpr);
273
274		while (dpr->dpr_stop & DT_PROC_STOP_IDLE)
275			(void) pthread_cond_wait(&dpr->dpr_cv, &dpr->dpr_lock);
276
277		dt_proc_bpenable(dpr);
278	}
279}
280
281/*ARGSUSED*/
282static void
283dt_proc_bpmain(dtrace_hdl_t *dtp, dt_proc_t *dpr, const char *fname)
284{
285	dt_dprintf("pid %d: breakpoint at %s()\n", (int)dpr->dpr_pid, fname);
286	dt_proc_stop(dpr, DT_PROC_STOP_MAIN);
287}
288
289static void
290dt_proc_rdevent(dtrace_hdl_t *dtp, dt_proc_t *dpr, const char *evname)
291{
292	rd_event_msg_t rdm;
293	rd_err_e err;
294
295	if ((err = rd_event_getmsg(dpr->dpr_rtld, &rdm)) != RD_OK) {
296		dt_dprintf("pid %d: failed to get %s event message: %s\n",
297		    (int)dpr->dpr_pid, evname, rd_errstr(err));
298		return;
299	}
300
301	dt_dprintf("pid %d: rtld event %s type=%d state %d\n",
302	    (int)dpr->dpr_pid, evname, rdm.type, rdm.u.state);
303
304	switch (rdm.type) {
305	case RD_DLACTIVITY:
306		if (rdm.u.state != RD_CONSISTENT)
307			break;
308
309		Pupdate_syms(dpr->dpr_proc);
310		if (dt_pid_create_probes_module(dtp, dpr) != 0)
311			dt_proc_notify(dtp, dtp->dt_procs, dpr,
312			    dpr->dpr_errmsg);
313
314		break;
315	case RD_PREINIT:
316		Pupdate_syms(dpr->dpr_proc);
317		dt_proc_stop(dpr, DT_PROC_STOP_PREINIT);
318		break;
319	case RD_POSTINIT:
320		Pupdate_syms(dpr->dpr_proc);
321		dt_proc_stop(dpr, DT_PROC_STOP_POSTINIT);
322		break;
323	}
324}
325
326static void
327dt_proc_rdwatch(dt_proc_t *dpr, rd_event_e event, const char *evname)
328{
329	rd_notify_t rdn;
330	rd_err_e err;
331
332	if ((err = rd_event_addr(dpr->dpr_rtld, event, &rdn)) != RD_OK) {
333		dt_dprintf("pid %d: failed to get event address for %s: %s\n",
334		    (int)dpr->dpr_pid, evname, rd_errstr(err));
335		return;
336	}
337
338	if (rdn.type != RD_NOTIFY_BPT) {
339		dt_dprintf("pid %d: event %s has unexpected type %d\n",
340		    (int)dpr->dpr_pid, evname, rdn.type);
341		return;
342	}
343
344	(void) dt_proc_bpcreate(dpr, rdn.u.bptaddr,
345#ifdef illumos
346	    (dt_bkpt_f *)dt_proc_rdevent, (void *)evname);
347#else
348	    /* XXX ugly */
349	    (dt_bkpt_f *)dt_proc_rdevent, __DECONST(void *, evname));
350#endif
351}
352
353/*
354 * Common code for enabling events associated with the run-time linker after
355 * attaching to a process or after a victim process completes an exec(2).
356 */
357static void
358dt_proc_attach(dt_proc_t *dpr, int exec)
359{
360#ifdef illumos
361	const pstatus_t *psp = Pstatus(dpr->dpr_proc);
362#endif
363	rd_err_e err;
364	GElf_Sym sym;
365
366	assert(DT_MUTEX_HELD(&dpr->dpr_lock));
367
368	if (exec) {
369#ifdef illumos
370		if (psp->pr_lwp.pr_errno != 0)
371			return; /* exec failed: nothing needs to be done */
372#endif
373
374		dt_proc_bpdestroy(dpr, B_FALSE);
375#ifdef illumos
376		Preset_maps(dpr->dpr_proc);
377#endif
378	}
379	if ((dpr->dpr_rtld = Prd_agent(dpr->dpr_proc)) != NULL &&
380	    (err = rd_event_enable(dpr->dpr_rtld, B_TRUE)) == RD_OK) {
381#ifdef illumos
382		dt_proc_rdwatch(dpr, RD_PREINIT, "RD_PREINIT");
383#endif
384		dt_proc_rdwatch(dpr, RD_POSTINIT, "RD_POSTINIT");
385#ifdef illumos
386		dt_proc_rdwatch(dpr, RD_DLACTIVITY, "RD_DLACTIVITY");
387#endif
388	} else {
389		dt_dprintf("pid %d: failed to enable rtld events: %s\n",
390		    (int)dpr->dpr_pid, dpr->dpr_rtld ? rd_errstr(err) :
391		    "rtld_db agent initialization failed");
392	}
393
394	Pupdate_maps(dpr->dpr_proc);
395
396	if (Pxlookup_by_name(dpr->dpr_proc, LM_ID_BASE,
397	    "a.out", "main", &sym, NULL) == 0) {
398		(void) dt_proc_bpcreate(dpr, (uintptr_t)sym.st_value,
399		    (dt_bkpt_f *)dt_proc_bpmain, "a.out`main");
400	} else {
401		dt_dprintf("pid %d: failed to find a.out`main: %s\n",
402		    (int)dpr->dpr_pid, strerror(errno));
403	}
404}
405
406/*
407 * Wait for a stopped process to be set running again by some other debugger.
408 * This is typically not required by /proc-based debuggers, since the usual
409 * model is that one debugger controls one victim.  But DTrace, as usual, has
410 * its own needs: the stop() action assumes that prun(1) or some other tool
411 * will be applied to resume the victim process.  This could be solved by
412 * adding a PCWRUN directive to /proc, but that seems like overkill unless
413 * other debuggers end up needing this functionality, so we implement a cheap
414 * equivalent to PCWRUN using the set of existing kernel mechanisms.
415 *
416 * Our intent is really not just to wait for the victim to run, but rather to
417 * wait for it to run and then stop again for a reason other than the current
418 * PR_REQUESTED stop.  Since PCWSTOP/Pstopstatus() can be applied repeatedly
419 * to a stopped process and will return the same result without affecting the
420 * victim, we can just perform these operations repeatedly until Pstate()
421 * changes, the representative LWP ID changes, or the stop timestamp advances.
422 * dt_proc_control() will then rediscover the new state and continue as usual.
423 * When the process is still stopped in the same exact state, we sleep for a
424 * brief interval before waiting again so as not to spin consuming CPU cycles.
425 */
426static void
427dt_proc_waitrun(dt_proc_t *dpr)
428{
429	printf("%s:%s(%d): not implemented\n", __FUNCTION__, __FILE__,
430	    __LINE__);
431#ifdef DOODAD
432	struct ps_prochandle *P = dpr->dpr_proc;
433	const lwpstatus_t *psp = &Pstatus(P)->pr_lwp;
434
435	int krflag = psp->pr_flags & (PR_KLC | PR_RLC);
436	timestruc_t tstamp = psp->pr_tstamp;
437	lwpid_t lwpid = psp->pr_lwpid;
438
439	const long wstop = PCWSTOP;
440	int pfd = Pctlfd(P);
441
442	assert(DT_MUTEX_HELD(&dpr->dpr_lock));
443	assert(psp->pr_flags & PR_STOPPED);
444	assert(Pstate(P) == PS_STOP);
445
446	/*
447	 * While we are waiting for the victim to run, clear PR_KLC and PR_RLC
448	 * so that if the libdtrace client is killed, the victim stays stopped.
449	 * dt_proc_destroy() will also observe this and perform PRELEASE_HANG.
450	 */
451	(void) Punsetflags(P, krflag);
452	Psync(P);
453
454	(void) pthread_mutex_unlock(&dpr->dpr_lock);
455
456	while (!dpr->dpr_quit) {
457		if (write(pfd, &wstop, sizeof (wstop)) == -1 && errno == EINTR)
458			continue; /* check dpr_quit and continue waiting */
459
460		(void) pthread_mutex_lock(&dpr->dpr_lock);
461		(void) Pstopstatus(P, PCNULL, 0);
462		psp = &Pstatus(P)->pr_lwp;
463
464		/*
465		 * If we've reached a new state, found a new representative, or
466		 * the stop timestamp has changed, restore PR_KLC/PR_RLC to its
467		 * original setting and then return with dpr_lock held.
468		 */
469		if (Pstate(P) != PS_STOP || psp->pr_lwpid != lwpid ||
470		    bcmp(&psp->pr_tstamp, &tstamp, sizeof (tstamp)) != 0) {
471			(void) Psetflags(P, krflag);
472			Psync(P);
473			return;
474		}
475
476		(void) pthread_mutex_unlock(&dpr->dpr_lock);
477		(void) poll(NULL, 0, MILLISEC / 2);
478	}
479
480	(void) pthread_mutex_lock(&dpr->dpr_lock);
481#endif
482}
483
484typedef struct dt_proc_control_data {
485	dtrace_hdl_t *dpcd_hdl;			/* DTrace handle */
486	dt_proc_t *dpcd_proc;			/* proccess to control */
487} dt_proc_control_data_t;
488
489/*
490 * Main loop for all victim process control threads.  We initialize all the
491 * appropriate /proc control mechanisms, and then enter a loop waiting for
492 * the process to stop on an event or die.  We process any events by calling
493 * appropriate subroutines, and exit when the victim dies or we lose control.
494 *
495 * The control thread synchronizes the use of dpr_proc with other libdtrace
496 * threads using dpr_lock.  We hold the lock for all of our operations except
497 * waiting while the process is running: this is accomplished by writing a
498 * PCWSTOP directive directly to the underlying /proc/<pid>/ctl file.  If the
499 * libdtrace client wishes to exit or abort our wait, SIGCANCEL can be used.
500 */
501static void *
502dt_proc_control(void *arg)
503{
504	dt_proc_control_data_t *datap = arg;
505	dtrace_hdl_t *dtp = datap->dpcd_hdl;
506	dt_proc_t *dpr = datap->dpcd_proc;
507	dt_proc_hash_t *dph = dpr->dpr_hdl->dt_procs;
508	struct ps_prochandle *P = dpr->dpr_proc;
509	int pid = dpr->dpr_pid;
510
511#ifdef illumos
512	int pfd = Pctlfd(P);
513
514	const long wstop = PCWSTOP;
515#endif
516	int notify = B_FALSE;
517
518	/*
519	 * We disable the POSIX thread cancellation mechanism so that the
520	 * client program using libdtrace can't accidentally cancel our thread.
521	 * dt_proc_destroy() uses SIGCANCEL explicitly to simply poke us out
522	 * of PCWSTOP with EINTR, at which point we will see dpr_quit and exit.
523	 */
524	(void) pthread_setcancelstate(PTHREAD_CANCEL_DISABLE, NULL);
525
526	/*
527	 * Set up the corresponding process for tracing by libdtrace.  We want
528	 * to be able to catch breakpoints and efficiently single-step over
529	 * them, and we need to enable librtld_db to watch libdl activity.
530	 */
531	(void) pthread_mutex_lock(&dpr->dpr_lock);
532
533#ifdef illumos
534	(void) Punsetflags(P, PR_ASYNC);	/* require synchronous mode */
535	(void) Psetflags(P, PR_BPTADJ);		/* always adjust eip on x86 */
536	(void) Punsetflags(P, PR_FORK);		/* do not inherit on fork */
537
538	(void) Pfault(P, FLTBPT, B_TRUE);	/* always trace breakpoints */
539	(void) Pfault(P, FLTTRACE, B_TRUE);	/* always trace single-step */
540
541	/*
542	 * We must trace exit from exec() system calls so that if the exec is
543	 * successful, we can reset our breakpoints and re-initialize libproc.
544	 */
545	(void) Psysexit(P, SYS_execve, B_TRUE);
546
547	/*
548	 * We must trace entry and exit for fork() system calls in order to
549	 * disable our breakpoints temporarily during the fork.  We do not set
550	 * the PR_FORK flag, so if fork succeeds the child begins executing and
551	 * does not inherit any other tracing behaviors or a control thread.
552	 */
553	(void) Psysentry(P, SYS_vfork, B_TRUE);
554	(void) Psysexit(P, SYS_vfork, B_TRUE);
555	(void) Psysentry(P, SYS_forksys, B_TRUE);
556	(void) Psysexit(P, SYS_forksys, B_TRUE);
557
558	Psync(P);				/* enable all /proc changes */
559#endif
560	dt_proc_attach(dpr, B_FALSE);		/* enable rtld breakpoints */
561
562	/*
563	 * If PR_KLC is set, we created the process; otherwise we grabbed it.
564	 * Check for an appropriate stop request and wait for dt_proc_continue.
565	 */
566#ifdef illumos
567	if (Pstatus(P)->pr_flags & PR_KLC)
568#else
569	if (proc_getflags(P) & PR_KLC)
570#endif
571		dt_proc_stop(dpr, DT_PROC_STOP_CREATE);
572	else
573		dt_proc_stop(dpr, DT_PROC_STOP_GRAB);
574
575	if (Psetrun(P, 0, 0) == -1) {
576		dt_dprintf("pid %d: failed to set running: %s\n",
577		    (int)dpr->dpr_pid, strerror(errno));
578	}
579
580	(void) pthread_mutex_unlock(&dpr->dpr_lock);
581
582	/*
583	 * Wait for the process corresponding to this control thread to stop,
584	 * process the event, and then set it running again.  We want to sleep
585	 * with dpr_lock *unheld* so that other parts of libdtrace can use the
586	 * ps_prochandle in the meantime (e.g. ustack()).  To do this, we write
587	 * a PCWSTOP directive directly to the underlying /proc/<pid>/ctl file.
588	 * Once the process stops, we wake up, grab dpr_lock, and then call
589	 * Pwait() (which will return immediately) and do our processing.
590	 */
591	while (!dpr->dpr_quit) {
592		const lwpstatus_t *psp;
593
594#ifdef illumos
595		if (write(pfd, &wstop, sizeof (wstop)) == -1 && errno == EINTR)
596			continue; /* check dpr_quit and continue waiting */
597#else
598		/* Wait for the process to report status. */
599		proc_wstatus(P);
600		if (errno == EINTR)
601			continue; /* check dpr_quit and continue waiting */
602#endif
603
604		(void) pthread_mutex_lock(&dpr->dpr_lock);
605
606#ifdef illumos
607pwait_locked:
608		if (Pstopstatus(P, PCNULL, 0) == -1 && errno == EINTR) {
609			(void) pthread_mutex_unlock(&dpr->dpr_lock);
610			continue; /* check dpr_quit and continue waiting */
611		}
612#endif
613
614		switch (Pstate(P)) {
615		case PS_STOP:
616#ifdef illumos
617			psp = &Pstatus(P)->pr_lwp;
618#else
619			psp = proc_getlwpstatus(P);
620#endif
621
622			dt_dprintf("pid %d: proc stopped showing %d/%d\n",
623			    pid, psp->pr_why, psp->pr_what);
624
625			/*
626			 * If the process stops showing PR_REQUESTED, then the
627			 * DTrace stop() action was applied to it or another
628			 * debugging utility (e.g. pstop(1)) asked it to stop.
629			 * In either case, the user's intention is for the
630			 * process to remain stopped until another external
631			 * mechanism (e.g. prun(1)) is applied.  So instead of
632			 * setting the process running ourself, we wait for
633			 * someone else to do so.  Once that happens, we return
634			 * to our normal loop waiting for an event of interest.
635			 */
636			if (psp->pr_why == PR_REQUESTED) {
637				dt_proc_waitrun(dpr);
638				(void) pthread_mutex_unlock(&dpr->dpr_lock);
639				continue;
640			}
641
642			/*
643			 * If the process stops showing one of the events that
644			 * we are tracing, perform the appropriate response.
645			 * Note that we ignore PR_SUSPENDED, PR_CHECKPOINT, and
646			 * PR_JOBCONTROL by design: if one of these conditions
647			 * occurs, we will fall through to Psetrun() but the
648			 * process will remain stopped in the kernel by the
649			 * corresponding mechanism (e.g. job control stop).
650			 */
651			if (psp->pr_why == PR_FAULTED && psp->pr_what == FLTBPT)
652				dt_proc_bpmatch(dtp, dpr);
653			else if (psp->pr_why == PR_SYSENTRY &&
654			    IS_SYS_FORK(psp->pr_what))
655				dt_proc_bpdisable(dpr);
656			else if (psp->pr_why == PR_SYSEXIT &&
657			    IS_SYS_FORK(psp->pr_what))
658				dt_proc_bpenable(dpr);
659			else if (psp->pr_why == PR_SYSEXIT &&
660			    IS_SYS_EXEC(psp->pr_what))
661				dt_proc_attach(dpr, B_TRUE);
662			break;
663
664		case PS_LOST:
665#ifdef illumos
666			if (Preopen(P) == 0)
667				goto pwait_locked;
668#endif
669
670			dt_dprintf("pid %d: proc lost: %s\n",
671			    pid, strerror(errno));
672
673			dpr->dpr_quit = B_TRUE;
674			notify = B_TRUE;
675			break;
676
677		case PS_UNDEAD:
678			dt_dprintf("pid %d: proc died\n", pid);
679			dpr->dpr_quit = B_TRUE;
680			notify = B_TRUE;
681			break;
682		}
683
684		if (Pstate(P) != PS_UNDEAD && Psetrun(P, 0, 0) == -1) {
685			dt_dprintf("pid %d: failed to set running: %s\n",
686			    (int)dpr->dpr_pid, strerror(errno));
687		}
688
689		(void) pthread_mutex_unlock(&dpr->dpr_lock);
690	}
691
692	/*
693	 * If the control thread detected PS_UNDEAD or PS_LOST, then enqueue
694	 * the dt_proc_t structure on the dt_proc_hash_t notification list.
695	 */
696	if (notify)
697		dt_proc_notify(dtp, dph, dpr, NULL);
698
699	/*
700	 * Destroy and remove any remaining breakpoints, set dpr_done and clear
701	 * dpr_tid to indicate the control thread has exited, and notify any
702	 * waiting thread in dt_proc_destroy() that we have succesfully exited.
703	 */
704	(void) pthread_mutex_lock(&dpr->dpr_lock);
705
706	dt_proc_bpdestroy(dpr, B_TRUE);
707	dpr->dpr_done = B_TRUE;
708	dpr->dpr_tid = 0;
709
710	(void) pthread_cond_broadcast(&dpr->dpr_cv);
711	(void) pthread_mutex_unlock(&dpr->dpr_lock);
712
713	return (NULL);
714}
715
716/*PRINTFLIKE3*/
717static struct ps_prochandle *
718dt_proc_error(dtrace_hdl_t *dtp, dt_proc_t *dpr, const char *format, ...)
719{
720	va_list ap;
721
722	va_start(ap, format);
723	dt_set_errmsg(dtp, NULL, NULL, NULL, 0, format, ap);
724	va_end(ap);
725
726	if (dpr->dpr_proc != NULL)
727		Prelease(dpr->dpr_proc, 0);
728
729	dt_free(dtp, dpr);
730	(void) dt_set_errno(dtp, EDT_COMPILER);
731	return (NULL);
732}
733
734dt_proc_t *
735dt_proc_lookup(dtrace_hdl_t *dtp, struct ps_prochandle *P, int remove)
736{
737	dt_proc_hash_t *dph = dtp->dt_procs;
738#ifdef illumos
739	pid_t pid = Pstatus(P)->pr_pid;
740#else
741	pid_t pid = proc_getpid(P);
742#endif
743	dt_proc_t *dpr, **dpp = &dph->dph_hash[pid & (dph->dph_hashlen - 1)];
744
745	for (dpr = *dpp; dpr != NULL; dpr = dpr->dpr_hash) {
746		if (dpr->dpr_pid == pid)
747			break;
748		else
749			dpp = &dpr->dpr_hash;
750	}
751
752	assert(dpr != NULL);
753	assert(dpr->dpr_proc == P);
754
755	if (remove)
756		*dpp = dpr->dpr_hash; /* remove from pid hash chain */
757
758	return (dpr);
759}
760
761static void
762dt_proc_destroy(dtrace_hdl_t *dtp, struct ps_prochandle *P)
763{
764	dt_proc_t *dpr = dt_proc_lookup(dtp, P, B_FALSE);
765	dt_proc_hash_t *dph = dtp->dt_procs;
766	dt_proc_notify_t *npr, **npp;
767	int rflag;
768
769	assert(dpr != NULL);
770
771	/*
772	 * If neither PR_KLC nor PR_RLC is set, then the process is stopped by
773	 * an external debugger and we were waiting in dt_proc_waitrun().
774	 * Leave the process in this condition using PRELEASE_HANG.
775	 */
776#ifdef illumos
777	if (!(Pstatus(dpr->dpr_proc)->pr_flags & (PR_KLC | PR_RLC))) {
778#else
779	if (!(proc_getflags(dpr->dpr_proc) & (PR_KLC | PR_RLC))) {
780#endif
781		dt_dprintf("abandoning pid %d\n", (int)dpr->dpr_pid);
782		rflag = PRELEASE_HANG;
783#ifdef illumos
784	} else if (Pstatus(dpr->dpr_proc)->pr_flags & PR_KLC) {
785#else
786	} else if (proc_getflags(dpr->dpr_proc) & PR_KLC) {
787#endif
788		dt_dprintf("killing pid %d\n", (int)dpr->dpr_pid);
789		rflag = PRELEASE_KILL; /* apply kill-on-last-close */
790	} else {
791		dt_dprintf("releasing pid %d\n", (int)dpr->dpr_pid);
792		rflag = 0; /* apply run-on-last-close */
793	}
794
795	if (dpr->dpr_tid) {
796		/*
797		 * Set the dpr_quit flag to tell the daemon thread to exit.  We
798		 * send it a SIGCANCEL to poke it out of PCWSTOP or any other
799		 * long-term /proc system call.  Our daemon threads have POSIX
800		 * cancellation disabled, so EINTR will be the only effect.  We
801		 * then wait for dpr_done to indicate the thread has exited.
802		 *
803		 * We can't use pthread_kill() to send SIGCANCEL because the
804		 * interface forbids it and we can't use pthread_cancel()
805		 * because with cancellation disabled it won't actually
806		 * send SIGCANCEL to the target thread, so we use _lwp_kill()
807		 * to do the job.  This is all built on evil knowledge of
808		 * the details of the cancellation mechanism in libc.
809		 */
810		(void) pthread_mutex_lock(&dpr->dpr_lock);
811		dpr->dpr_quit = B_TRUE;
812#ifdef illumos
813		(void) _lwp_kill(dpr->dpr_tid, SIGCANCEL);
814#else
815		pthread_kill(dpr->dpr_tid, SIGTHR);
816#endif
817
818		/*
819		 * If the process is currently idling in dt_proc_stop(), re-
820		 * enable breakpoints and poke it into running again.
821		 */
822		if (dpr->dpr_stop & DT_PROC_STOP_IDLE) {
823			dt_proc_bpenable(dpr);
824			dpr->dpr_stop &= ~DT_PROC_STOP_IDLE;
825			(void) pthread_cond_broadcast(&dpr->dpr_cv);
826		}
827
828		while (!dpr->dpr_done)
829			(void) pthread_cond_wait(&dpr->dpr_cv, &dpr->dpr_lock);
830
831		(void) pthread_mutex_unlock(&dpr->dpr_lock);
832	}
833
834	/*
835	 * Before we free the process structure, remove this dt_proc_t from the
836	 * lookup hash, and then walk the dt_proc_hash_t's notification list
837	 * and remove this dt_proc_t if it is enqueued.
838	 */
839	(void) pthread_mutex_lock(&dph->dph_lock);
840	(void) dt_proc_lookup(dtp, P, B_TRUE);
841	npp = &dph->dph_notify;
842
843	while ((npr = *npp) != NULL) {
844		if (npr->dprn_dpr == dpr) {
845			*npp = npr->dprn_next;
846			dt_free(dtp, npr);
847		} else {
848			npp = &npr->dprn_next;
849		}
850	}
851
852	(void) pthread_mutex_unlock(&dph->dph_lock);
853
854	/*
855	 * Remove the dt_proc_list from the LRU list, release the underlying
856	 * libproc handle, and free our dt_proc_t data structure.
857	 */
858	if (dpr->dpr_cacheable) {
859		assert(dph->dph_lrucnt != 0);
860		dph->dph_lrucnt--;
861	}
862
863	dt_list_delete(&dph->dph_lrulist, dpr);
864	Prelease(dpr->dpr_proc, rflag);
865	dt_free(dtp, dpr);
866}
867
868static int
869dt_proc_create_thread(dtrace_hdl_t *dtp, dt_proc_t *dpr, uint_t stop)
870{
871	dt_proc_control_data_t data;
872	sigset_t nset, oset;
873	pthread_attr_t a;
874	int err;
875
876	(void) pthread_mutex_lock(&dpr->dpr_lock);
877	dpr->dpr_stop |= stop; /* set bit for initial rendezvous */
878
879	(void) pthread_attr_init(&a);
880	(void) pthread_attr_setdetachstate(&a, PTHREAD_CREATE_DETACHED);
881
882	(void) sigfillset(&nset);
883	(void) sigdelset(&nset, SIGABRT);	/* unblocked for assert() */
884#ifdef illumos
885	(void) sigdelset(&nset, SIGCANCEL);	/* see dt_proc_destroy() */
886#else
887	(void) sigdelset(&nset, SIGUSR1);	/* see dt_proc_destroy() */
888#endif
889
890	data.dpcd_hdl = dtp;
891	data.dpcd_proc = dpr;
892
893	(void) pthread_sigmask(SIG_SETMASK, &nset, &oset);
894	err = pthread_create(&dpr->dpr_tid, &a, dt_proc_control, &data);
895	(void) pthread_sigmask(SIG_SETMASK, &oset, NULL);
896
897	/*
898	 * If the control thread was created, then wait on dpr_cv for either
899	 * dpr_done to be set (the victim died or the control thread failed)
900	 * or DT_PROC_STOP_IDLE to be set, indicating that the victim is now
901	 * stopped by /proc and the control thread is at the rendezvous event.
902	 * On success, we return with the process and control thread stopped:
903	 * the caller can then apply dt_proc_continue() to resume both.
904	 */
905	if (err == 0) {
906		while (!dpr->dpr_done && !(dpr->dpr_stop & DT_PROC_STOP_IDLE))
907			(void) pthread_cond_wait(&dpr->dpr_cv, &dpr->dpr_lock);
908
909		/*
910		 * If dpr_done is set, the control thread aborted before it
911		 * reached the rendezvous event.  This is either due to PS_LOST
912		 * or PS_UNDEAD (i.e. the process died).  We try to provide a
913		 * small amount of useful information to help figure it out.
914		 */
915		if (dpr->dpr_done) {
916#ifdef illumos
917			const psinfo_t *prp = Ppsinfo(dpr->dpr_proc);
918			int stat = prp ? prp->pr_wstat : 0;
919			int pid = dpr->dpr_pid;
920#else
921			int stat = proc_getwstat(dpr->dpr_proc);
922			int pid = proc_getpid(dpr->dpr_proc);
923#endif
924			if (proc_state(dpr->dpr_proc) == PS_LOST) {
925				(void) dt_proc_error(dpr->dpr_hdl, dpr,
926				    "failed to control pid %d: process exec'd "
927				    "set-id or unobservable program\n", pid);
928			} else if (WIFSIGNALED(stat)) {
929				(void) dt_proc_error(dpr->dpr_hdl, dpr,
930				    "failed to control pid %d: process died "
931				    "from signal %d\n", pid, WTERMSIG(stat));
932			} else {
933				(void) dt_proc_error(dpr->dpr_hdl, dpr,
934				    "failed to control pid %d: process exited "
935				    "with status %d\n", pid, WEXITSTATUS(stat));
936			}
937
938			err = ESRCH; /* cause grab() or create() to fail */
939		}
940	} else {
941		(void) dt_proc_error(dpr->dpr_hdl, dpr,
942		    "failed to create control thread for process-id %d: %s\n",
943		    (int)dpr->dpr_pid, strerror(err));
944	}
945
946	if (err == 0)
947		(void) pthread_mutex_unlock(&dpr->dpr_lock);
948	(void) pthread_attr_destroy(&a);
949
950	return (err);
951}
952
953struct ps_prochandle *
954dt_proc_create(dtrace_hdl_t *dtp, const char *file, char *const *argv,
955    proc_child_func *pcf, void *child_arg)
956{
957	dt_proc_hash_t *dph = dtp->dt_procs;
958	dt_proc_t *dpr;
959	int err;
960
961	if ((dpr = dt_zalloc(dtp, sizeof (dt_proc_t))) == NULL)
962		return (NULL); /* errno is set for us */
963
964	(void) pthread_mutex_init(&dpr->dpr_lock, NULL);
965	(void) pthread_cond_init(&dpr->dpr_cv, NULL);
966
967#ifdef illumos
968	if ((dpr->dpr_proc = Pcreate(file, argv, &err, NULL, 0)) == NULL) {
969#else
970	if ((err = proc_create(file, argv, pcf, child_arg,
971	    &dpr->dpr_proc)) != 0) {
972#endif
973		return (dt_proc_error(dtp, dpr,
974		    "failed to execute %s: %s\n", file, Pcreate_error(err)));
975	}
976
977	dpr->dpr_hdl = dtp;
978#ifdef illumos
979	dpr->dpr_pid = Pstatus(dpr->dpr_proc)->pr_pid;
980#else
981	dpr->dpr_pid = proc_getpid(dpr->dpr_proc);
982#endif
983
984	(void) Punsetflags(dpr->dpr_proc, PR_RLC);
985	(void) Psetflags(dpr->dpr_proc, PR_KLC);
986
987	if (dt_proc_create_thread(dtp, dpr, dtp->dt_prcmode) != 0)
988		return (NULL); /* dt_proc_error() has been called for us */
989
990	dpr->dpr_hash = dph->dph_hash[dpr->dpr_pid & (dph->dph_hashlen - 1)];
991	dph->dph_hash[dpr->dpr_pid & (dph->dph_hashlen - 1)] = dpr;
992	dt_list_prepend(&dph->dph_lrulist, dpr);
993
994	dt_dprintf("created pid %d\n", (int)dpr->dpr_pid);
995	dpr->dpr_refs++;
996
997	return (dpr->dpr_proc);
998}
999
1000struct ps_prochandle *
1001dt_proc_grab(dtrace_hdl_t *dtp, pid_t pid, int flags, int nomonitor)
1002{
1003	dt_proc_hash_t *dph = dtp->dt_procs;
1004	uint_t h = pid & (dph->dph_hashlen - 1);
1005	dt_proc_t *dpr, *opr;
1006	int err;
1007
1008	/*
1009	 * Search the hash table for the pid.  If it is already grabbed or
1010	 * created, move the handle to the front of the lrulist, increment
1011	 * the reference count, and return the existing ps_prochandle.
1012	 */
1013	for (dpr = dph->dph_hash[h]; dpr != NULL; dpr = dpr->dpr_hash) {
1014		if (dpr->dpr_pid == pid && !dpr->dpr_stale) {
1015			/*
1016			 * If the cached handle was opened read-only and
1017			 * this request is for a writeable handle, mark
1018			 * the cached handle as stale and open a new handle.
1019			 * Since it's stale, unmark it as cacheable.
1020			 */
1021			if (dpr->dpr_rdonly && !(flags & PGRAB_RDONLY)) {
1022				dt_dprintf("upgrading pid %d\n", (int)pid);
1023				dpr->dpr_stale = B_TRUE;
1024				dpr->dpr_cacheable = B_FALSE;
1025				dph->dph_lrucnt--;
1026				break;
1027			}
1028
1029			dt_dprintf("grabbed pid %d (cached)\n", (int)pid);
1030			dt_list_delete(&dph->dph_lrulist, dpr);
1031			dt_list_prepend(&dph->dph_lrulist, dpr);
1032			dpr->dpr_refs++;
1033			return (dpr->dpr_proc);
1034		}
1035	}
1036
1037	if ((dpr = dt_zalloc(dtp, sizeof (dt_proc_t))) == NULL)
1038		return (NULL); /* errno is set for us */
1039
1040	(void) pthread_mutex_init(&dpr->dpr_lock, NULL);
1041	(void) pthread_cond_init(&dpr->dpr_cv, NULL);
1042
1043#ifdef illumos
1044	if ((dpr->dpr_proc = Pgrab(pid, flags, &err)) == NULL) {
1045#else
1046	if ((err = proc_attach(pid, flags, &dpr->dpr_proc)) != 0) {
1047#endif
1048		return (dt_proc_error(dtp, dpr,
1049		    "failed to grab pid %d: %s\n", (int)pid, Pgrab_error(err)));
1050	}
1051
1052	dpr->dpr_hdl = dtp;
1053	dpr->dpr_pid = pid;
1054
1055	(void) Punsetflags(dpr->dpr_proc, PR_KLC);
1056	(void) Psetflags(dpr->dpr_proc, PR_RLC);
1057
1058	/*
1059	 * If we are attempting to grab the process without a monitor
1060	 * thread, then mark the process cacheable only if it's being
1061	 * grabbed read-only.  If we're currently caching more process
1062	 * handles than dph_lrulim permits, attempt to find the
1063	 * least-recently-used handle that is currently unreferenced and
1064	 * release it from the cache.  Otherwise we are grabbing the process
1065	 * for control: create a control thread for this process and store
1066	 * its ID in dpr->dpr_tid.
1067	 */
1068	if (nomonitor || (flags & PGRAB_RDONLY)) {
1069		if (dph->dph_lrucnt >= dph->dph_lrulim) {
1070			for (opr = dt_list_prev(&dph->dph_lrulist);
1071			    opr != NULL; opr = dt_list_prev(opr)) {
1072				if (opr->dpr_cacheable && opr->dpr_refs == 0) {
1073					dt_proc_destroy(dtp, opr->dpr_proc);
1074					break;
1075				}
1076			}
1077		}
1078
1079		if (flags & PGRAB_RDONLY) {
1080			dpr->dpr_cacheable = B_TRUE;
1081			dpr->dpr_rdonly = B_TRUE;
1082			dph->dph_lrucnt++;
1083		}
1084
1085	} else if (dt_proc_create_thread(dtp, dpr, DT_PROC_STOP_GRAB) != 0)
1086		return (NULL); /* dt_proc_error() has been called for us */
1087
1088	dpr->dpr_hash = dph->dph_hash[h];
1089	dph->dph_hash[h] = dpr;
1090	dt_list_prepend(&dph->dph_lrulist, dpr);
1091
1092	dt_dprintf("grabbed pid %d\n", (int)pid);
1093	dpr->dpr_refs++;
1094
1095	return (dpr->dpr_proc);
1096}
1097
1098void
1099dt_proc_release(dtrace_hdl_t *dtp, struct ps_prochandle *P)
1100{
1101	dt_proc_t *dpr = dt_proc_lookup(dtp, P, B_FALSE);
1102	dt_proc_hash_t *dph = dtp->dt_procs;
1103
1104	assert(dpr != NULL);
1105	assert(dpr->dpr_refs != 0);
1106
1107	if (--dpr->dpr_refs == 0 &&
1108	    (!dpr->dpr_cacheable || dph->dph_lrucnt > dph->dph_lrulim))
1109		dt_proc_destroy(dtp, P);
1110}
1111
1112void
1113dt_proc_continue(dtrace_hdl_t *dtp, struct ps_prochandle *P)
1114{
1115	dt_proc_t *dpr = dt_proc_lookup(dtp, P, B_FALSE);
1116
1117	(void) pthread_mutex_lock(&dpr->dpr_lock);
1118
1119	if (dpr->dpr_stop & DT_PROC_STOP_IDLE) {
1120		dpr->dpr_stop &= ~DT_PROC_STOP_IDLE;
1121		(void) pthread_cond_broadcast(&dpr->dpr_cv);
1122	}
1123
1124	(void) pthread_mutex_unlock(&dpr->dpr_lock);
1125}
1126
1127void
1128dt_proc_lock(dtrace_hdl_t *dtp, struct ps_prochandle *P)
1129{
1130	dt_proc_t *dpr = dt_proc_lookup(dtp, P, B_FALSE);
1131	int err = pthread_mutex_lock(&dpr->dpr_lock);
1132	assert(err == 0); /* check for recursion */
1133}
1134
1135void
1136dt_proc_unlock(dtrace_hdl_t *dtp, struct ps_prochandle *P)
1137{
1138	dt_proc_t *dpr = dt_proc_lookup(dtp, P, B_FALSE);
1139	int err = pthread_mutex_unlock(&dpr->dpr_lock);
1140	assert(err == 0); /* check for unheld lock */
1141}
1142
1143void
1144dt_proc_hash_create(dtrace_hdl_t *dtp)
1145{
1146	if ((dtp->dt_procs = dt_zalloc(dtp, sizeof (dt_proc_hash_t) +
1147	    sizeof (dt_proc_t *) * _dtrace_pidbuckets - 1)) != NULL) {
1148
1149		(void) pthread_mutex_init(&dtp->dt_procs->dph_lock, NULL);
1150		(void) pthread_cond_init(&dtp->dt_procs->dph_cv, NULL);
1151
1152		dtp->dt_procs->dph_hashlen = _dtrace_pidbuckets;
1153		dtp->dt_procs->dph_lrulim = _dtrace_pidlrulim;
1154	}
1155}
1156
1157void
1158dt_proc_hash_destroy(dtrace_hdl_t *dtp)
1159{
1160	dt_proc_hash_t *dph = dtp->dt_procs;
1161	dt_proc_t *dpr;
1162
1163	while ((dpr = dt_list_next(&dph->dph_lrulist)) != NULL)
1164		dt_proc_destroy(dtp, dpr->dpr_proc);
1165
1166	dtp->dt_procs = NULL;
1167	dt_free(dtp, dph);
1168}
1169
1170struct ps_prochandle *
1171dtrace_proc_create(dtrace_hdl_t *dtp, const char *file, char *const *argv,
1172    proc_child_func *pcf, void *child_arg)
1173{
1174	dt_ident_t *idp = dt_idhash_lookup(dtp->dt_macros, "target");
1175	struct ps_prochandle *P = dt_proc_create(dtp, file, argv, pcf, child_arg);
1176
1177	if (P != NULL && idp != NULL && idp->di_id == 0) {
1178#ifdef illumos
1179		idp->di_id = Pstatus(P)->pr_pid; /* $target = created pid */
1180#else
1181		idp->di_id = proc_getpid(P); /* $target = created pid */
1182#endif
1183	}
1184
1185	return (P);
1186}
1187
1188struct ps_prochandle *
1189dtrace_proc_grab(dtrace_hdl_t *dtp, pid_t pid, int flags)
1190{
1191	dt_ident_t *idp = dt_idhash_lookup(dtp->dt_macros, "target");
1192	struct ps_prochandle *P = dt_proc_grab(dtp, pid, flags, 0);
1193
1194	if (P != NULL && idp != NULL && idp->di_id == 0)
1195		idp->di_id = pid; /* $target = grabbed pid */
1196
1197	return (P);
1198}
1199
1200void
1201dtrace_proc_release(dtrace_hdl_t *dtp, struct ps_prochandle *P)
1202{
1203	dt_proc_release(dtp, P);
1204}
1205
1206void
1207dtrace_proc_continue(dtrace_hdl_t *dtp, struct ps_prochandle *P)
1208{
1209	dt_proc_continue(dtp, P);
1210}
1211