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Juan Cespedes5e01f651998-03-08 22:31:44 +01001#include <stdio.h>
Juan Cespedes504a3852003-02-04 23:24:38 +01002#include <stdlib.h>
Juan Cespedes1fe93d51998-03-13 00:29:21 +01003#include <string.h>
4#include <errno.h>
Juan Cespedes8f8282f2002-03-03 18:58:40 +01005#include <unistd.h>
Juan Cespedes5e01f651998-03-08 22:31:44 +01006#include <sys/types.h>
Petr Machata89a53602007-01-25 18:05:44 +01007#include <sys/wait.h>
Juan Cespedes5c3fe062004-06-14 18:08:37 +02008#include "ptrace.h"
Juan Cespedes5e01f651998-03-08 22:31:44 +01009#include <asm/unistd.h>
Petr Machata9a5420c2011-07-09 11:21:23 +020010#include <assert.h>
Juan Cespedes5e01f651998-03-08 22:31:44 +010011
Juan Cespedesf7281232009-06-25 16:11:21 +020012#include "common.h"
Petr Machata55ed83b2007-05-17 16:24:15 +020013
14/* If the system headers did not provide the constants, hard-code the normal
15 values. */
16#ifndef PTRACE_EVENT_FORK
17
18#define PTRACE_OLDSETOPTIONS 21
19#define PTRACE_SETOPTIONS 0x4200
20#define PTRACE_GETEVENTMSG 0x4201
21
22/* options set using PTRACE_SETOPTIONS */
23#define PTRACE_O_TRACESYSGOOD 0x00000001
24#define PTRACE_O_TRACEFORK 0x00000002
25#define PTRACE_O_TRACEVFORK 0x00000004
26#define PTRACE_O_TRACECLONE 0x00000008
27#define PTRACE_O_TRACEEXEC 0x00000010
28#define PTRACE_O_TRACEVFORKDONE 0x00000020
29#define PTRACE_O_TRACEEXIT 0x00000040
30
31/* Wait extended result codes for the above trace options. */
32#define PTRACE_EVENT_FORK 1
33#define PTRACE_EVENT_VFORK 2
34#define PTRACE_EVENT_CLONE 3
35#define PTRACE_EVENT_EXEC 4
36#define PTRACE_EVENT_VFORK_DONE 5
37#define PTRACE_EVENT_EXIT 6
38
39#endif /* PTRACE_EVENT_FORK */
Ian Wienand9a2ad352006-02-20 22:44:45 +010040
Luis Machado55c5feb2008-03-12 15:56:01 +010041#ifdef ARCH_HAVE_UMOVELONG
Juan Cespedesa8909f72009-04-28 20:02:41 +020042extern int arch_umovelong (Process *, void *, long *, arg_type_info *);
Juan Cespedesf1350522008-12-16 18:19:58 +010043int
Juan Cespedesa8909f72009-04-28 20:02:41 +020044umovelong (Process *proc, void *addr, long *result, arg_type_info *info) {
Luis Machado55c5feb2008-03-12 15:56:01 +010045 return arch_umovelong (proc, addr, result, info);
46}
47#else
48/* Read a single long from the process's memory address 'addr' */
Juan Cespedesf1350522008-12-16 18:19:58 +010049int
Juan Cespedesa8909f72009-04-28 20:02:41 +020050umovelong (Process *proc, void *addr, long *result, arg_type_info *info) {
Luis Machado55c5feb2008-03-12 15:56:01 +010051 long pointed_to;
52
53 errno = 0;
54 pointed_to = ptrace (PTRACE_PEEKTEXT, proc->pid, addr, 0);
55 if (pointed_to == -1 && errno)
56 return -errno;
57
58 *result = pointed_to;
Arnaud Patardf16fcff2010-01-08 08:40:19 -050059 if (info) {
60 switch(info->type) {
61 case ARGTYPE_INT:
62 *result &= 0x00000000ffffffffUL;
63 default:
64 break;
65 };
66 }
Luis Machado55c5feb2008-03-12 15:56:01 +010067 return 0;
68}
69#endif
70
Juan Cespedesf1350522008-12-16 18:19:58 +010071void
72trace_me(void) {
Petr Machata26627682011-07-08 18:15:32 +020073 debug(DEBUG_PROCESS, "trace_me: pid=%d", getpid());
Ian Wienand2d45b1a2006-02-20 22:48:07 +010074 if (ptrace(PTRACE_TRACEME, 0, 1, 0) < 0) {
Juan Cespedes5e01f651998-03-08 22:31:44 +010075 perror("PTRACE_TRACEME");
76 exit(1);
77 }
78}
79
Juan Cespedesf1350522008-12-16 18:19:58 +010080int
81trace_pid(pid_t pid) {
Petr Machata26627682011-07-08 18:15:32 +020082 debug(DEBUG_PROCESS, "trace_pid: pid=%d", pid);
Juan Cespedes1fe93d51998-03-13 00:29:21 +010083 if (ptrace(PTRACE_ATTACH, pid, 1, 0) < 0) {
Juan Cespedes273ea6d1998-03-14 23:02:40 +010084 return -1;
Juan Cespedes1fe93d51998-03-13 00:29:21 +010085 }
Petr Machata89a53602007-01-25 18:05:44 +010086
Juan Cespedes714ee9d2009-04-07 13:28:54 +020087 /* man ptrace: PTRACE_ATTACH attaches to the process specified
88 in pid. The child is sent a SIGSTOP, but will not
89 necessarily have stopped by the completion of this call;
90 use wait() to wait for the child to stop. */
Petr Machata9a5420c2011-07-09 11:21:23 +020091 if (waitpid (pid, NULL, __WALL) != pid) {
Juan Cespedes714ee9d2009-04-07 13:28:54 +020092 perror ("trace_pid: waitpid");
Petr Machata9a5420c2011-07-09 11:21:23 +020093 return -1;
Juan Cespedes714ee9d2009-04-07 13:28:54 +020094 }
95
Juan Cespedes273ea6d1998-03-14 23:02:40 +010096 return 0;
97}
98
Juan Cespedesf1350522008-12-16 18:19:58 +010099void
Juan Cespedesa8909f72009-04-28 20:02:41 +0200100trace_set_options(Process *proc, pid_t pid) {
Ian Wienand9a2ad352006-02-20 22:44:45 +0100101 if (proc->tracesysgood & 0x80)
102 return;
Petr Machata55ed83b2007-05-17 16:24:15 +0200103
Petr Machata26627682011-07-08 18:15:32 +0200104 debug(DEBUG_PROCESS, "trace_set_options: pid=%d", pid);
Juan Cespedescd8976d2009-05-14 13:47:58 +0200105
Juan Cespedes1e583132009-04-07 18:17:11 +0200106 long options = PTRACE_O_TRACESYSGOOD | PTRACE_O_TRACEFORK |
107 PTRACE_O_TRACEVFORK | PTRACE_O_TRACECLONE |
108 PTRACE_O_TRACEEXEC;
Petr Machata55ed83b2007-05-17 16:24:15 +0200109 if (ptrace(PTRACE_SETOPTIONS, pid, 0, options) < 0 &&
110 ptrace(PTRACE_OLDSETOPTIONS, pid, 0, options) < 0) {
Ian Wienand9a2ad352006-02-20 22:44:45 +0100111 perror("PTRACE_SETOPTIONS");
112 return;
113 }
114 proc->tracesysgood |= 0x80;
115}
116
Juan Cespedesf1350522008-12-16 18:19:58 +0100117void
118untrace_pid(pid_t pid) {
Petr Machata26627682011-07-08 18:15:32 +0200119 debug(DEBUG_PROCESS, "untrace_pid: pid=%d", pid);
Juan Cespedes273ea6d1998-03-14 23:02:40 +0100120 ptrace(PTRACE_DETACH, pid, 1, 0);
Juan Cespedes1fe93d51998-03-13 00:29:21 +0100121}
122
Juan Cespedesf1350522008-12-16 18:19:58 +0100123void
124continue_after_signal(pid_t pid, int signum) {
Juan Cespedesa8909f72009-04-28 20:02:41 +0200125 Process *proc;
Juan Cespedese74c80d2009-02-11 11:32:31 +0100126
Juan Cespedescd8976d2009-05-14 13:47:58 +0200127 debug(DEBUG_PROCESS, "continue_after_signal: pid=%d, signum=%d", pid, signum);
128
Juan Cespedese74c80d2009-02-11 11:32:31 +0100129 proc = pid2proc(pid);
Petr Machata98f09922011-07-09 10:55:29 +0200130 ptrace(PTRACE_SYSCALL, pid, 0, signum);
131}
132
133static enum ecb_status
134event_for_pid(Event * event, void * data)
135{
136 if (event->proc != NULL && event->proc->pid == (pid_t)(uintptr_t)data)
137 return ecb_yield;
138 return ecb_cont;
139}
140
141static int
142have_events_for(pid_t pid)
143{
144 return each_qd_event(event_for_pid, (void *)(uintptr_t)pid) != NULL;
145}
146
147void
148continue_process(pid_t pid)
149{
150 debug(DEBUG_PROCESS, "continue_process: pid=%d", pid);
151 //printf("continue_process %d\n", pid);
152
153 /* Only really continue the process if there are no events in
154 the queue for this process. Otherwise just for the other
155 events to arrive. */
156 if (!have_events_for(pid))
157 /* We always trace syscalls to control fork(),
158 * clone(), execve()... */
159 ptrace(PTRACE_SYSCALL, pid, 0, 0);
160 else
161 debug(DEBUG_PROCESS,
162 "putting off the continue, events in que.");
163}
164
165/**
166 * This is used for bookkeeping related to PIDs that the event
Petr Machata750ca8c2011-10-06 14:29:34 +0200167 * handlers work with.
168 */
Petr Machata98f09922011-07-09 10:55:29 +0200169struct pid_task {
Petr Machata750ca8c2011-10-06 14:29:34 +0200170 pid_t pid; /* This may be 0 for tasks that exited
171 * mid-handling. */
Petr Machata98f09922011-07-09 10:55:29 +0200172 int sigstopped;
173 int got_event;
174 int delivered;
175} * pids;
176
177struct pid_set {
178 struct pid_task * tasks;
179 size_t count;
180 size_t alloc;
181};
182
183/**
184 * Breakpoint re-enablement. When we hit a breakpoint, we must
185 * disable it, single-step, and re-enable it. That single-step can be
186 * done only by one task in a task group, while others are stopped,
187 * otherwise the processes would race for who sees the breakpoint
188 * disabled and who doesn't. The following is to keep track of it
189 * all.
190 */
191struct process_stopping_handler
192{
193 Event_Handler super;
194
195 /* The task that is doing the re-enablement. */
196 Process * task_enabling_breakpoint;
197
198 /* The pointer being re-enabled. */
199 Breakpoint * breakpoint_being_enabled;
200
201 enum {
202 /* We are waiting for everyone to land in t/T. */
203 psh_stopping = 0,
204
205 /* We are doing the PTRACE_SINGLESTEP. */
206 psh_singlestep,
207
208 /* We are waiting for all the SIGSTOPs to arrive so
209 * that we can sink them. */
210 psh_sinking,
211 } state;
212
213 struct pid_set pids;
214};
215
216static enum pcb_status
217task_stopped(Process * task, void * data)
218{
Petr Machata98f09922011-07-09 10:55:29 +0200219 /* If the task is already stopped, don't worry about it.
220 * Likewise if it managed to become a zombie or terminate in
221 * the meantime. This can happen when the whole thread group
222 * is terminating. */
Petr Machata617ff0b2011-10-06 14:23:24 +0200223 switch (process_status(task->pid)) {
224 case ps_invalid:
225 case ps_tracing_stop:
226 case ps_zombie:
Petr Machata98f09922011-07-09 10:55:29 +0200227 return pcb_cont;
Petr Machata617ff0b2011-10-06 14:23:24 +0200228 default:
229 return pcb_stop;
230 }
Petr Machata98f09922011-07-09 10:55:29 +0200231}
232
233static struct pid_task *
234get_task_info(struct pid_set * pids, pid_t pid)
235{
Petr Machata750ca8c2011-10-06 14:29:34 +0200236 assert(pid != 0);
Petr Machata98f09922011-07-09 10:55:29 +0200237 size_t i;
238 for (i = 0; i < pids->count; ++i)
239 if (pids->tasks[i].pid == pid)
240 return &pids->tasks[i];
241
242 return NULL;
243}
244
245static struct pid_task *
246add_task_info(struct pid_set * pids, pid_t pid)
247{
248 if (pids->count == pids->alloc) {
249 size_t ns = (2 * pids->alloc) ?: 4;
250 struct pid_task * n = realloc(pids->tasks,
251 sizeof(*pids->tasks) * ns);
252 if (n == NULL)
253 return NULL;
254 pids->tasks = n;
255 pids->alloc = ns;
256 }
257 struct pid_task * task_info = &pids->tasks[pids->count++];
258 memset(task_info, 0, sizeof(*task_info));
259 task_info->pid = pid;
260 return task_info;
261}
262
263static enum pcb_status
264send_sigstop(Process * task, void * data)
265{
266 Process * leader = task->leader;
267 struct pid_set * pids = data;
268
269 /* Look for pre-existing task record, or add new. */
270 struct pid_task * task_info = get_task_info(pids, task->pid);
271 if (task_info == NULL)
272 task_info = add_task_info(pids, task->pid);
273 if (task_info == NULL) {
274 perror("send_sigstop: add_task_info");
275 destroy_event_handler(leader);
276 /* Signal failure upwards. */
277 return pcb_stop;
278 }
279
280 /* This task still has not been attached to. It should be
281 stopped by the kernel. */
282 if (task->state == STATE_BEING_CREATED)
283 return pcb_cont;
284
285 /* Don't bother sending SIGSTOP if we are already stopped, or
286 * if we sent the SIGSTOP already, which happens when we
287 * inherit the handler from breakpoint re-enablement. */
288 if (task_stopped(task, NULL) == pcb_cont)
289 return pcb_cont;
290 if (task_info->sigstopped) {
291 if (!task_info->delivered)
292 return pcb_cont;
293 task_info->delivered = 0;
294 }
295
296 if (task_kill(task->pid, SIGSTOP) >= 0) {
297 debug(DEBUG_PROCESS, "send SIGSTOP to %d", task->pid);
298 task_info->sigstopped = 1;
299 } else
300 fprintf(stderr,
301 "Warning: couldn't send SIGSTOP to %d\n", task->pid);
302
303 return pcb_cont;
304}
305
306static void
307process_stopping_done(struct process_stopping_handler * self, Process * leader)
308{
309 debug(DEBUG_PROCESS, "process stopping done %d",
310 self->task_enabling_breakpoint->pid);
311 size_t i;
312 for (i = 0; i < self->pids.count; ++i)
Petr Machata750ca8c2011-10-06 14:29:34 +0200313 if (self->pids.tasks[i].pid != 0
314 && self->pids.tasks[i].delivered)
Petr Machata98f09922011-07-09 10:55:29 +0200315 continue_process(self->pids.tasks[i].pid);
316 continue_process(self->task_enabling_breakpoint->pid);
317 destroy_event_handler(leader);
318}
319
320static void
321handle_stopping_event(struct pid_task * task_info, Event ** eventp)
322{
323 /* Mark all events, so that we know whom to SIGCONT later. */
324 if (task_info != NULL && task_info->sigstopped)
325 task_info->got_event = 1;
326
327 Event * event = *eventp;
328
329 /* In every state, sink SIGSTOP events for tasks that it was
330 * sent to. */
331 if (task_info != NULL
332 && event->type == EVENT_SIGNAL
333 && event->e_un.signum == SIGSTOP) {
334 debug(DEBUG_PROCESS, "SIGSTOP delivered to %d", task_info->pid);
335 if (task_info->sigstopped
336 && !task_info->delivered) {
337 task_info->delivered = 1;
338 *eventp = NULL; // sink the event
339 } else
340 fprintf(stderr, "suspicious: %d got SIGSTOP, but "
341 "sigstopped=%d and delivered=%d\n",
342 task_info->pid, task_info->sigstopped,
343 task_info->delivered);
Juan Cespedese74c80d2009-02-11 11:32:31 +0100344 }
Juan Cespedes5e01f651998-03-08 22:31:44 +0100345}
346
Petr Machata98f09922011-07-09 10:55:29 +0200347/* Some SIGSTOPs may have not been delivered to their respective tasks
348 * yet. They are still in the queue. If we have seen an event for
349 * that process, continue it, so that the SIGSTOP can be delivered and
350 * caught by ltrace. */
351static void
352continue_for_sigstop_delivery(struct pid_set * pids)
353{
354 size_t i;
355 for (i = 0; i < pids->count; ++i) {
Petr Machata750ca8c2011-10-06 14:29:34 +0200356 if (pids->tasks[i].pid != 0
357 && pids->tasks[i].sigstopped
Petr Machata98f09922011-07-09 10:55:29 +0200358 && !pids->tasks[i].delivered
359 && pids->tasks[i].got_event) {
360 debug(DEBUG_PROCESS, "continue %d for SIGSTOP delivery",
361 pids->tasks[i].pid);
362 ptrace(PTRACE_SYSCALL, pids->tasks[i].pid, 0, 0);
363 }
364 }
Juan Cespedes5e01f651998-03-08 22:31:44 +0100365}
366
Petr Machata98f09922011-07-09 10:55:29 +0200367static int
Petr Machata750ca8c2011-10-06 14:29:34 +0200368event_exit_p(Event * event)
369{
370 return event != NULL && (event->type == EVENT_EXIT
371 || event->type == EVENT_EXIT_SIGNAL);
372}
373
374static int
Petr Machata98f09922011-07-09 10:55:29 +0200375event_exit_or_none_p(Event * event)
Petr Machataf789c9c2011-07-09 10:54:27 +0200376{
Petr Machata750ca8c2011-10-06 14:29:34 +0200377 return event == NULL || event_exit_p(event)
Petr Machata98f09922011-07-09 10:55:29 +0200378 || event->type == EVENT_NONE;
379}
380
381static int
382await_sigstop_delivery(struct pid_set * pids, struct pid_task * task_info,
383 Event * event)
384{
385 /* If we still didn't get our SIGSTOP, continue the process
386 * and carry on. */
387 if (event != NULL && !event_exit_or_none_p(event)
388 && task_info != NULL && task_info->sigstopped) {
389 debug(DEBUG_PROCESS, "continue %d for SIGSTOP delivery",
390 task_info->pid);
391 /* We should get the signal the first thing
392 * after this, so it should be OK to continue
393 * even if we are over a breakpoint. */
394 ptrace(PTRACE_SYSCALL, task_info->pid, 0, 0);
395
396 } else {
397 /* If all SIGSTOPs were delivered, uninstall the
398 * handler and continue everyone. */
399 /* XXX I suspect that we should check tasks that are
400 * still around. Is things are now, there should be a
401 * race between waiting for everyone to stop and one
402 * of the tasks exiting. */
403 int all_clear = 1;
404 size_t i;
405 for (i = 0; i < pids->count; ++i)
Petr Machata750ca8c2011-10-06 14:29:34 +0200406 if (pids->tasks[i].pid != 0
407 && pids->tasks[i].sigstopped
Petr Machata98f09922011-07-09 10:55:29 +0200408 && !pids->tasks[i].delivered) {
409 all_clear = 0;
410 break;
411 }
412 return all_clear;
413 }
414
415 return 0;
416}
417
418/* This event handler is installed when we are in the process of
419 * stopping the whole thread group to do the pointer re-enablement for
420 * one of the threads. We pump all events to the queue for later
421 * processing while we wait for all the threads to stop. When this
422 * happens, we let the re-enablement thread to PTRACE_SINGLESTEP,
423 * re-enable, and continue everyone. */
424static Event *
425process_stopping_on_event(Event_Handler * super, Event * event)
426{
427 struct process_stopping_handler * self = (void *)super;
428 Process * task = event->proc;
429 Process * leader = task->leader;
Petr Machatae21264e2011-10-06 14:30:33 +0200430 Breakpoint * sbp = self->breakpoint_being_enabled;
431 Process * teb = self->task_enabling_breakpoint;
Petr Machata98f09922011-07-09 10:55:29 +0200432
433 debug(DEBUG_PROCESS,
434 "pid %d; event type %d; state %d",
435 task->pid, event->type, self->state);
436
437 struct pid_task * task_info = get_task_info(&self->pids, task->pid);
438 if (task_info == NULL)
439 fprintf(stderr, "new task??? %d\n", task->pid);
440 handle_stopping_event(task_info, &event);
441
442 int state = self->state;
443 int event_to_queue = !event_exit_or_none_p(event);
444
Petr Machata18c97072011-10-06 14:30:11 +0200445 /* Deactivate the entry if the task exits. */
446 if (event_exit_p(event) && task_info != NULL)
447 task_info->pid = 0;
448
Petr Machata98f09922011-07-09 10:55:29 +0200449 switch (state) {
450 case psh_stopping:
451 /* If everyone is stopped, singlestep. */
452 if (each_task(leader, &task_stopped, NULL) == NULL) {
453 debug(DEBUG_PROCESS, "all stopped, now SINGLESTEP %d",
Petr Machatae21264e2011-10-06 14:30:33 +0200454 teb->pid);
455 if (sbp->enabled)
456 disable_breakpoint(teb, sbp);
457 if (ptrace(PTRACE_SINGLESTEP, teb->pid, 0, 0))
Petr Machata750ca8c2011-10-06 14:29:34 +0200458 perror("PTRACE_SINGLESTEP");
Petr Machata98f09922011-07-09 10:55:29 +0200459 self->state = state = psh_singlestep;
460 }
461 break;
462
463 case psh_singlestep: {
464 /* In singlestep state, breakpoint signifies that we
465 * have now stepped, and can re-enable the breakpoint. */
Petr Machatae21264e2011-10-06 14:30:33 +0200466 if (event != NULL && task == teb) {
Petr Machata98f09922011-07-09 10:55:29 +0200467 /* Essentially we don't care what event caused
468 * the thread to stop. We can do the
469 * re-enablement now. */
Petr Machatae21264e2011-10-06 14:30:33 +0200470 enable_breakpoint(teb, sbp);
Petr Machata98f09922011-07-09 10:55:29 +0200471
472 continue_for_sigstop_delivery(&self->pids);
473
474 self->breakpoint_being_enabled = NULL;
475 self->state = state = psh_sinking;
476
477 if (event->type == EVENT_BREAKPOINT)
478 event = NULL; // handled
479 } else
480 break;
481 }
482
483 /* fall-through */
484
485 case psh_sinking:
486 if (await_sigstop_delivery(&self->pids, task_info, event))
487 process_stopping_done(self, leader);
488 }
489
490 if (event != NULL && event_to_queue) {
491 enque_event(event);
492 event = NULL; // sink the event
493 }
494
495 return event;
496}
497
498static void
499process_stopping_destroy(Event_Handler * super)
500{
501 struct process_stopping_handler * self = (void *)super;
502 if (self->breakpoint_being_enabled != NULL)
503 enable_breakpoint(self->task_enabling_breakpoint,
504 self->breakpoint_being_enabled);
505 free(self->pids.tasks);
Juan Cespedes5e01f651998-03-08 22:31:44 +0100506}
Juan Cespedes8cc1b9d2002-03-01 19:54:23 +0100507
Juan Cespedesf1350522008-12-16 18:19:58 +0100508void
Petr Machata26627682011-07-08 18:15:32 +0200509continue_after_breakpoint(Process *proc, Breakpoint *sbp)
510{
Juan Cespedes5c3fe062004-06-14 18:08:37 +0200511 set_instruction_pointer(proc, sbp->addr);
Juan Cespedes8f8282f2002-03-03 18:58:40 +0100512 if (sbp->enabled == 0) {
Petr Machatae21264e2011-10-06 14:30:33 +0200513 if (sbp->enabled)
514 disable_breakpoint(proc, sbp);
Juan Cespedes8f8282f2002-03-03 18:58:40 +0100515 continue_process(proc->pid);
516 } else {
Petr Machata26627682011-07-08 18:15:32 +0200517 debug(DEBUG_PROCESS,
518 "continue_after_breakpoint: pid=%d, addr=%p",
519 proc->pid, sbp->addr);
Arnaud Patardf3d1c532010-01-08 08:40:04 -0500520#if defined __sparc__ || defined __ia64___ || defined __mips__
Ian Wienand9a2ad352006-02-20 22:44:45 +0100521 /* we don't want to singlestep here */
Juan Cespedes5c3fe062004-06-14 18:08:37 +0200522 continue_process(proc->pid);
523#else
Petr Machata98f09922011-07-09 10:55:29 +0200524 struct process_stopping_handler * handler
525 = calloc(sizeof(*handler), 1);
526 if (handler == NULL) {
527 perror("malloc breakpoint disable handler");
528 fatal:
529 /* Carry on not bothering to re-enable. */
530 continue_process(proc->pid);
531 return;
532 }
533
534 handler->super.on_event = process_stopping_on_event;
535 handler->super.destroy = process_stopping_destroy;
536 handler->task_enabling_breakpoint = proc;
537 handler->breakpoint_being_enabled = sbp;
538 install_event_handler(proc->leader, &handler->super);
539
540 if (each_task(proc->leader, &send_sigstop,
541 &handler->pids) != NULL)
542 goto fatal;
543
544 /* And deliver the first fake event, in case all the
545 * conditions are already fulfilled. */
546 Event ev;
547 ev.type = EVENT_NONE;
548 ev.proc = proc;
549 process_stopping_on_event(&handler->super, &ev);
Juan Cespedes5c3fe062004-06-14 18:08:37 +0200550#endif
Juan Cespedes8f8282f2002-03-03 18:58:40 +0100551 }
552}
553
Petr Machata602330f2011-07-09 11:15:34 +0200554/**
555 * Ltrace exit. When we are about to exit, we have to go through all
556 * the processes, stop them all, remove all the breakpoints, and then
557 * detach the processes that we attached to using -p. If we left the
558 * other tasks running, they might hit stray return breakpoints and
559 * produce artifacts, so we better stop everyone, even if it's a bit
560 * of extra work.
561 */
562struct ltrace_exiting_handler
563{
564 Event_Handler super;
565 struct pid_set pids;
566};
567
568static enum pcb_status
569remove_task(Process * task, void * data)
570{
571 /* Don't untrace leader just yet. */
572 if (task != data)
573 remove_process(task);
574 return pcb_cont;
575}
576
577static enum pcb_status
578untrace_task(Process * task, void * data)
579{
580 untrace_pid(task->pid);
581 return pcb_cont;
582}
583
584static Event *
585ltrace_exiting_on_event(Event_Handler * super, Event * event)
586{
587 struct ltrace_exiting_handler * self = (void *)super;
588 Process * task = event->proc;
589 Process * leader = task->leader;
590
591 debug(DEBUG_PROCESS, "pid %d; event type %d", task->pid, event->type);
592
593 struct pid_task * task_info = get_task_info(&self->pids, task->pid);
594 handle_stopping_event(task_info, &event);
595
596 if (await_sigstop_delivery(&self->pids, task_info, event)) {
597 debug(DEBUG_PROCESS, "all SIGSTOPs delivered %d", leader->pid);
598 disable_all_breakpoints(leader);
599
600 /* Now untrace the process, if it was attached to by -p. */
601 struct opt_p_t * it;
602 for (it = opt_p; it != NULL; it = it->next) {
603 Process * proc = pid2proc(it->pid);
604 if (proc == NULL)
605 continue;
606 if (proc->leader == leader) {
607 each_task(leader, &untrace_task, NULL);
608 break;
609 }
610 }
611
612 each_task(leader, &remove_task, leader);
613 destroy_event_handler(leader);
614 remove_task(leader, NULL);
615 return NULL;
616 }
617
618 /* Sink all non-exit events. We are about to exit, so we
619 * don't bother with queuing them. */
620 if (event_exit_or_none_p(event))
621 return event;
622 else
623 return NULL;
624}
625
626static void
627ltrace_exiting_destroy(Event_Handler * super)
628{
629 struct ltrace_exiting_handler * self = (void *)super;
630 free(self->pids.tasks);
631}
632
633static int
634ltrace_exiting_install_handler(Process * proc)
635{
636 /* Only install to leader. */
637 if (proc->leader != proc)
638 return 0;
639
640 /* Perhaps we are already installed, if the user passed
641 * several -p options that are tasks of one process. */
642 if (proc->event_handler != NULL
643 && proc->event_handler->on_event == &ltrace_exiting_on_event)
644 return 0;
645
646 struct ltrace_exiting_handler * handler
647 = calloc(sizeof(*handler), 1);
648 if (handler == NULL) {
649 perror("malloc exiting handler");
650 fatal:
651 /* XXXXXXXXXXXXXXXXXXX fixme */
652 return -1;
653 }
654
655 /* If we are in the middle of breakpoint, extract the
656 * pid-state information from that handler so that we can take
657 * over the SIGSTOP handling. */
658 if (proc->event_handler != NULL) {
659 debug(DEBUG_PROCESS, "taking over breakpoint handling");
660 assert(proc->event_handler->on_event
661 == &process_stopping_on_event);
662 struct process_stopping_handler * other
663 = (void *)proc->event_handler;
664 size_t i;
665 for (i = 0; i < other->pids.count; ++i) {
666 struct pid_task * oti = &other->pids.tasks[i];
Petr Machata750ca8c2011-10-06 14:29:34 +0200667 if (oti->pid == 0)
668 continue;
669
Petr Machata602330f2011-07-09 11:15:34 +0200670 struct pid_task * task_info
671 = add_task_info(&handler->pids, oti->pid);
672 if (task_info == NULL) {
673 perror("ltrace_exiting_install_handler"
674 ":add_task_info");
675 goto fatal;
676 }
677 /* Copy over the state. */
678 *task_info = *oti;
679 }
680
681 /* And destroy the original handler. */
682 destroy_event_handler(proc);
683 }
684
685 handler->super.on_event = ltrace_exiting_on_event;
686 handler->super.destroy = ltrace_exiting_destroy;
687 install_event_handler(proc->leader, &handler->super);
688
689 if (each_task(proc->leader, &send_sigstop,
690 &handler->pids) != NULL)
691 goto fatal;
692
693 return 0;
694}
695
696/* If ltrace gets SIGINT, the processes directly or indirectly run by
697 * ltrace get it too. We just have to wait long enough for the signal
698 * to be delivered and the process terminated, which we notice and
699 * exit ltrace, too. So there's not much we need to do there. We
700 * want to keep tracing those processes as usual, in case they just
701 * SIG_IGN the SIGINT to do their shutdown etc.
702 *
703 * For processes ran on the background, we want to install an exit
704 * handler that stops all the threads, removes all breakpoints, and
705 * detaches.
706 */
707void
708ltrace_exiting(void)
709{
710 struct opt_p_t * it;
711 for (it = opt_p; it != NULL; it = it->next) {
712 Process * proc = pid2proc(it->pid);
713 if (proc == NULL || proc->leader == NULL)
714 continue;
715 if (ltrace_exiting_install_handler(proc->leader) < 0)
716 fprintf(stderr,
717 "Couldn't install exiting handler for %d.\n",
718 proc->pid);
719 }
720}
721
Joe Damatodfa3fa32010-11-08 15:47:35 -0800722size_t
723umovebytes(Process *proc, void *addr, void *laddr, size_t len) {
724
725 union {
726 long a;
727 char c[sizeof(long)];
728 } a;
Zachary T Welchba6aca22010-12-08 18:55:09 -0800729 int started = 0;
730 size_t offset = 0, bytes_read = 0;
Joe Damatodfa3fa32010-11-08 15:47:35 -0800731
732 while (offset < len) {
733 a.a = ptrace(PTRACE_PEEKTEXT, proc->pid, addr + offset, 0);
734 if (a.a == -1 && errno) {
735 if (started && errno == EIO)
736 return bytes_read;
737 else
738 return -1;
739 }
740 started = 1;
741
742 if (len - offset >= sizeof(long)) {
743 memcpy(laddr + offset, &a.c[0], sizeof(long));
744 bytes_read += sizeof(long);
745 }
746 else {
747 memcpy(laddr + offset, &a.c[0], len - offset);
748 bytes_read += (len - offset);
749 }
750 offset += sizeof(long);
751 }
752
753 return bytes_read;
754}
755
Steve Fink7bafff02006-08-07 04:50:42 +0200756/* Read a series of bytes starting at the process's memory address
757 'addr' and continuing until a NUL ('\0') is seen or 'len' bytes
758 have been read.
759*/
Juan Cespedesf1350522008-12-16 18:19:58 +0100760int
Juan Cespedesa8909f72009-04-28 20:02:41 +0200761umovestr(Process *proc, void *addr, int len, void *laddr) {
Ian Wienand2d45b1a2006-02-20 22:48:07 +0100762 union {
763 long a;
764 char c[sizeof(long)];
765 } a;
Zachary T Welchba6aca22010-12-08 18:55:09 -0800766 unsigned i;
Ian Wienand2d45b1a2006-02-20 22:48:07 +0100767 int offset = 0;
Juan Cespedes8cc1b9d2002-03-01 19:54:23 +0100768
Ian Wienand2d45b1a2006-02-20 22:48:07 +0100769 while (offset < len) {
770 a.a = ptrace(PTRACE_PEEKTEXT, proc->pid, addr + offset, 0);
771 for (i = 0; i < sizeof(long); i++) {
Paul Gilliam3f1219f2006-04-24 18:25:38 +0200772 if (a.c[i] && offset + (signed)i < len) {
Ian Wienand2d45b1a2006-02-20 22:48:07 +0100773 *(char *)(laddr + offset + i) = a.c[i];
Juan Cespedes8cc1b9d2002-03-01 19:54:23 +0100774 } else {
Ian Wienand2d45b1a2006-02-20 22:48:07 +0100775 *(char *)(laddr + offset + i) = '\0';
Juan Cespedes8cc1b9d2002-03-01 19:54:23 +0100776 return 0;
777 }
778 }
779 offset += sizeof(long);
780 }
Ian Wienand2d45b1a2006-02-20 22:48:07 +0100781 *(char *)(laddr + offset) = '\0';
Juan Cespedes8cc1b9d2002-03-01 19:54:23 +0100782 return 0;
783}