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Chris Lattner30fdc8d2010-06-08 16:52:24 +00001//===-- DNB.cpp -------------------------------------------------*- C++ -*-===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9//
10// Created by Greg Clayton on 3/23/07.
11//
12//===----------------------------------------------------------------------===//
13
14#include "DNB.h"
15#include <signal.h>
16#include <stdio.h>
17#include <stdlib.h>
18#include <sys/resource.h>
19#include <sys/stat.h>
20#include <sys/types.h>
21#include <sys/wait.h>
22#include <unistd.h>
23#include <sys/sysctl.h>
24#include <map>
25#include <vector>
Jim Ingham490bccd2012-11-01 01:04:46 +000026#include <libproc.h>
Chris Lattner30fdc8d2010-06-08 16:52:24 +000027
28#include "MacOSX/MachProcess.h"
29#include "MacOSX/MachTask.h"
30#include "CFString.h"
31#include "DNBLog.h"
32#include "DNBDataRef.h"
33#include "DNBThreadResumeActions.h"
34#include "DNBTimer.h"
Greg Clayton48baf7a2012-10-31 21:44:39 +000035#include "CFBundle.h"
36
Chris Lattner30fdc8d2010-06-08 16:52:24 +000037
Greg Claytond64afba2012-03-14 03:07:05 +000038typedef STD_SHARED_PTR(MachProcess) MachProcessSP;
Chris Lattner30fdc8d2010-06-08 16:52:24 +000039typedef std::map<nub_process_t, MachProcessSP> ProcessMap;
40typedef ProcessMap::iterator ProcessMapIter;
41typedef ProcessMap::const_iterator ProcessMapConstIter;
42
Greg Clayton9eb4e032012-11-06 23:36:26 +000043size_t GetAllInfos (std::vector<struct kinfo_proc>& proc_infos);
44static size_t GetAllInfosMatchingName (const char *process_name, std::vector<struct kinfo_proc>& matching_proc_infos);
Chris Lattner30fdc8d2010-06-08 16:52:24 +000045
46//----------------------------------------------------------------------
47// A Thread safe singleton to get a process map pointer.
48//
49// Returns a pointer to the existing process map, or a pointer to a
50// newly created process map if CAN_CREATE is non-zero.
51//----------------------------------------------------------------------
52static ProcessMap*
53GetProcessMap(bool can_create)
54{
55 static ProcessMap* g_process_map_ptr = NULL;
56
57 if (can_create && g_process_map_ptr == NULL)
58 {
59 static pthread_mutex_t g_process_map_mutex = PTHREAD_MUTEX_INITIALIZER;
60 PTHREAD_MUTEX_LOCKER (locker, &g_process_map_mutex);
61 if (g_process_map_ptr == NULL)
62 g_process_map_ptr = new ProcessMap;
63 }
64 return g_process_map_ptr;
65}
66
67//----------------------------------------------------------------------
68// Add PID to the shared process pointer map.
69//
70// Return non-zero value if we succeed in adding the process to the map.
71// The only time this should fail is if we run out of memory and can't
72// allocate a ProcessMap.
73//----------------------------------------------------------------------
74static nub_bool_t
75AddProcessToMap (nub_process_t pid, MachProcessSP& procSP)
76{
77 ProcessMap* process_map = GetProcessMap(true);
78 if (process_map)
79 {
80 process_map->insert(std::make_pair(pid, procSP));
81 return true;
82 }
83 return false;
84}
85
86//----------------------------------------------------------------------
87// Remove the shared pointer for PID from the process map.
88//
89// Returns the number of items removed from the process map.
90//----------------------------------------------------------------------
91static size_t
92RemoveProcessFromMap (nub_process_t pid)
93{
94 ProcessMap* process_map = GetProcessMap(false);
95 if (process_map)
96 {
97 return process_map->erase(pid);
98 }
99 return 0;
100}
101
102//----------------------------------------------------------------------
103// Get the shared pointer for PID from the existing process map.
104//
105// Returns true if we successfully find a shared pointer to a
106// MachProcess object.
107//----------------------------------------------------------------------
108static nub_bool_t
109GetProcessSP (nub_process_t pid, MachProcessSP& procSP)
110{
111 ProcessMap* process_map = GetProcessMap(false);
112 if (process_map != NULL)
113 {
114 ProcessMapIter pos = process_map->find(pid);
115 if (pos != process_map->end())
116 {
117 procSP = pos->second;
118 return true;
119 }
120 }
121 procSP.reset();
122 return false;
123}
124
125
126static void *
127waitpid_thread (void *arg)
128{
129 const pid_t pid = (pid_t)(intptr_t)arg;
130 int status;
131 while (1)
132 {
133 pid_t child_pid = waitpid(pid, &status, 0);
134 DNBLogThreadedIf(LOG_PROCESS, "waitpid_process_thread (): waitpid (pid = %i, &status, 0) => %i, status = %i, errno = %i", pid, child_pid, status, errno);
135
136 if (child_pid < 0)
137 {
138 if (errno == EINTR)
139 continue;
140 break;
141 }
142 else
143 {
144 if (WIFSTOPPED(status))
145 {
146 continue;
147 }
148 else// if (WIFEXITED(status) || WIFSIGNALED(status))
149 {
150 DNBLogThreadedIf(LOG_PROCESS, "waitpid_process_thread (): setting exit status for pid = %i to %i", child_pid, status);
151 DNBProcessSetExitStatus (child_pid, status);
152 return NULL;
153 }
154 }
155 }
156
157 // We should never exit as long as our child process is alive, so if we
158 // do something else went wrong and we should exit...
159 DNBLogThreadedIf(LOG_PROCESS, "waitpid_process_thread (): main loop exited, setting exit status to an invalid value (-1) for pid %i", pid);
160 DNBProcessSetExitStatus (pid, -1);
161 return NULL;
162}
163
164static bool
165spawn_waitpid_thread (pid_t pid)
166{
167 pthread_t thread = THREAD_NULL;
168 ::pthread_create (&thread, NULL, waitpid_thread, (void *)(intptr_t)pid);
169 if (thread != THREAD_NULL)
170 {
171 ::pthread_detach (thread);
172 return true;
173 }
174 return false;
175}
176
177nub_process_t
178DNBProcessLaunch (const char *path,
179 char const *argv[],
180 const char *envp[],
Greg Clayton6779606a2011-01-22 23:43:18 +0000181 const char *working_directory, // NULL => dont' change, non-NULL => set working directory for inferior to this
182 const char *stdin_path,
183 const char *stdout_path,
184 const char *stderr_path,
Caroline Ticef8da8632010-12-03 18:46:09 +0000185 bool no_stdio,
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000186 nub_launch_flavor_t launch_flavor,
Greg Claytonf681b942010-08-31 18:35:14 +0000187 int disable_aslr,
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000188 char *err_str,
189 size_t err_len)
190{
Greg Clayton43e0af02012-09-18 18:04:04 +0000191 DNBLogThreadedIf(LOG_PROCESS, "%s ( path='%s', argv = %p, envp = %p, working_dir=%s, stdin=%s, stdout=%s, stderr=%s, no-stdio=%i, launch_flavor = %u, disable_aslr = %d, err = %p, err_len = %llu) called...",
Greg Claytonbd82a5d2011-01-23 05:56:20 +0000192 __FUNCTION__,
193 path,
194 argv,
195 envp,
196 working_directory,
197 stdin_path,
198 stdout_path,
199 stderr_path,
200 no_stdio,
201 launch_flavor,
202 disable_aslr,
203 err_str,
Greg Clayton43e0af02012-09-18 18:04:04 +0000204 (uint64_t)err_len);
Greg Claytonbd82a5d2011-01-23 05:56:20 +0000205
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000206 if (err_str && err_len > 0)
207 err_str[0] = '\0';
208 struct stat path_stat;
209 if (::stat(path, &path_stat) == -1)
210 {
211 char stat_error[256];
212 ::strerror_r (errno, stat_error, sizeof(stat_error));
213 snprintf(err_str, err_len, "%s (%s)", stat_error, path);
214 return INVALID_NUB_PROCESS;
215 }
216
217 MachProcessSP processSP (new MachProcess);
218 if (processSP.get())
219 {
220 DNBError launch_err;
Greg Clayton6779606a2011-01-22 23:43:18 +0000221 pid_t pid = processSP->LaunchForDebug (path,
222 argv,
223 envp,
224 working_directory,
225 stdin_path,
226 stdout_path,
227 stderr_path,
228 no_stdio,
229 launch_flavor,
230 disable_aslr,
231 launch_err);
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000232 if (err_str)
233 {
234 *err_str = '\0';
235 if (launch_err.Fail())
236 {
237 const char *launch_err_str = launch_err.AsString();
238 if (launch_err_str)
239 {
240 strncpy(err_str, launch_err_str, err_len-1);
241 err_str[err_len-1] = '\0'; // Make sure the error string is terminated
242 }
243 }
244 }
245
246 DNBLogThreadedIf(LOG_PROCESS, "(DebugNub) new pid is %d...", pid);
247
248 if (pid != INVALID_NUB_PROCESS)
249 {
250 // Spawn a thread to reap our child inferior process...
251 spawn_waitpid_thread (pid);
252
253 if (processSP->Task().TaskPortForProcessID (launch_err) == TASK_NULL)
254 {
255 // We failed to get the task for our process ID which is bad.
Greg Claytonfb640c22012-02-02 19:23:22 +0000256 // Kill our process otherwise it will be stopped at the entry
257 // point and get reparented to someone else and never go away.
258 kill (SIGKILL, pid);
259
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000260 if (err_str && err_len > 0)
261 {
262 if (launch_err.AsString())
263 {
264 ::snprintf (err_str, err_len, "failed to get the task for process %i (%s)", pid, launch_err.AsString());
265 }
266 else
267 {
268 ::snprintf (err_str, err_len, "failed to get the task for process %i", pid);
269 }
270 }
271 }
272 else
273 {
Charles Davisb786e7d2012-02-21 00:53:12 +0000274 bool res = AddProcessToMap(pid, processSP);
275 assert(res && "Couldn't add process to map!");
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000276 return pid;
277 }
278 }
279 }
280 return INVALID_NUB_PROCESS;
281}
282
283nub_process_t
284DNBProcessAttachByName (const char *name, struct timespec *timeout, char *err_str, size_t err_len)
285{
286 if (err_str && err_len > 0)
287 err_str[0] = '\0';
288 std::vector<struct kinfo_proc> matching_proc_infos;
289 size_t num_matching_proc_infos = GetAllInfosMatchingName(name, matching_proc_infos);
290 if (num_matching_proc_infos == 0)
291 {
292 DNBLogError ("error: no processes match '%s'\n", name);
293 return INVALID_NUB_PROCESS;
294 }
295 else if (num_matching_proc_infos > 1)
296 {
Greg Clayton43e0af02012-09-18 18:04:04 +0000297 DNBLogError ("error: %llu processes match '%s':\n", (uint64_t)num_matching_proc_infos, name);
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000298 size_t i;
299 for (i=0; i<num_matching_proc_infos; ++i)
300 DNBLogError ("%6u - %s\n", matching_proc_infos[i].kp_proc.p_pid, matching_proc_infos[i].kp_proc.p_comm);
301 return INVALID_NUB_PROCESS;
302 }
Greg Clayton3af9ea52010-11-18 05:57:03 +0000303
304 return DNBProcessAttach (matching_proc_infos[0].kp_proc.p_pid, timeout, err_str, err_len);
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000305}
306
307nub_process_t
308DNBProcessAttach (nub_process_t attach_pid, struct timespec *timeout, char *err_str, size_t err_len)
309{
310 if (err_str && err_len > 0)
311 err_str[0] = '\0';
312
Johnny Chen64503c82011-08-11 19:03:44 +0000313 pid_t pid = INVALID_NUB_PROCESS;
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000314 MachProcessSP processSP(new MachProcess);
315 if (processSP.get())
316 {
317 DNBLogThreadedIf(LOG_PROCESS, "(DebugNub) attaching to pid %d...", attach_pid);
318 pid = processSP->AttachForDebug (attach_pid, err_str, err_len);
319
320 if (pid != INVALID_NUB_PROCESS)
321 {
Charles Davisb786e7d2012-02-21 00:53:12 +0000322 bool res = AddProcessToMap(pid, processSP);
323 assert(res && "Couldn't add process to map!");
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000324 spawn_waitpid_thread(pid);
325 }
326 }
327
328 while (pid != INVALID_NUB_PROCESS)
329 {
330 // Wait for process to start up and hit entry point
Greg Clayton3af9ea52010-11-18 05:57:03 +0000331 DNBLogThreadedIf (LOG_PROCESS,
332 "%s DNBProcessWaitForEvent (%4.4x, eEventProcessRunningStateChanged | eEventProcessStoppedStateChanged, true, INFINITE)...",
333 __FUNCTION__,
334 pid);
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000335 nub_event_t set_events = DNBProcessWaitForEvents (pid,
Greg Clayton3af9ea52010-11-18 05:57:03 +0000336 eEventProcessRunningStateChanged | eEventProcessStoppedStateChanged,
337 true,
338 timeout);
339
340 DNBLogThreadedIf (LOG_PROCESS,
341 "%s DNBProcessWaitForEvent (%4.4x, eEventProcessRunningStateChanged | eEventProcessStoppedStateChanged, true, INFINITE) => 0x%8.8x",
342 __FUNCTION__,
343 pid,
344 set_events);
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000345
346 if (set_events == 0)
347 {
348 if (err_str && err_len > 0)
349 snprintf(err_str, err_len, "operation timed out");
350 pid = INVALID_NUB_PROCESS;
351 }
352 else
353 {
354 if (set_events & (eEventProcessRunningStateChanged | eEventProcessStoppedStateChanged))
355 {
356 nub_state_t pid_state = DNBProcessGetState (pid);
357 DNBLogThreadedIf (LOG_PROCESS, "%s process %4.4x state changed (eEventProcessStateChanged): %s",
358 __FUNCTION__, pid, DNBStateAsString(pid_state));
359
360 switch (pid_state)
361 {
Greg Clayton3af9ea52010-11-18 05:57:03 +0000362 default:
363 case eStateInvalid:
364 case eStateUnloaded:
365 case eStateAttaching:
366 case eStateLaunching:
367 case eStateSuspended:
368 break; // Ignore
369
370 case eStateRunning:
371 case eStateStepping:
372 // Still waiting to stop at entry point...
373 break;
374
375 case eStateStopped:
376 case eStateCrashed:
377 return pid;
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000378
Greg Clayton3af9ea52010-11-18 05:57:03 +0000379 case eStateDetached:
380 case eStateExited:
381 if (err_str && err_len > 0)
382 snprintf(err_str, err_len, "process exited");
383 return INVALID_NUB_PROCESS;
384 }
385 }
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000386
387 DNBProcessResetEvents(pid, set_events);
388 }
389 }
390
391 return INVALID_NUB_PROCESS;
392}
393
Greg Clayton9eb4e032012-11-06 23:36:26 +0000394size_t
Greg Clayton3af9ea52010-11-18 05:57:03 +0000395GetAllInfos (std::vector<struct kinfo_proc>& proc_infos)
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000396{
Greg Clayton9eb4e032012-11-06 23:36:26 +0000397 size_t size = 0;
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000398 int name[] = { CTL_KERN, KERN_PROC, KERN_PROC_ALL };
399 u_int namelen = sizeof(name)/sizeof(int);
400 int err;
401
402 // Try to find out how many processes are around so we can
403 // size the buffer appropriately. sysctl's man page specifically suggests
404 // this approach, and says it returns a bit larger size than needed to
405 // handle any new processes created between then and now.
406
407 err = ::sysctl (name, namelen, NULL, &size, NULL, 0);
408
409 if ((err < 0) && (err != ENOMEM))
410 {
411 proc_infos.clear();
412 perror("sysctl (mib, miblen, NULL, &num_processes, NULL, 0)");
413 return 0;
414 }
415
416
417 // Increase the size of the buffer by a few processes in case more have
418 // been spawned
419 proc_infos.resize (size / sizeof(struct kinfo_proc));
420 size = proc_infos.size() * sizeof(struct kinfo_proc); // Make sure we don't exceed our resize...
421 err = ::sysctl (name, namelen, &proc_infos[0], &size, NULL, 0);
422 if (err < 0)
423 {
424 proc_infos.clear();
425 return 0;
426 }
427
428 // Trim down our array to fit what we actually got back
429 proc_infos.resize(size / sizeof(struct kinfo_proc));
430 return proc_infos.size();
431}
432
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000433static size_t
434GetAllInfosMatchingName(const char *full_process_name, std::vector<struct kinfo_proc>& matching_proc_infos)
435{
436
437 matching_proc_infos.clear();
438 if (full_process_name && full_process_name[0])
439 {
440 // We only get the process name, not the full path, from the proc_info. So just take the
441 // base name of the process name...
442 const char *process_name;
443 process_name = strrchr (full_process_name, '/');
444 if (process_name == NULL)
Greg Clayton7dab2be2012-07-19 02:45:35 +0000445 process_name = full_process_name;
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000446 else
Greg Clayton7dab2be2012-07-19 02:45:35 +0000447 process_name++;
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000448
Greg Clayton7dab2be2012-07-19 02:45:35 +0000449 const int process_name_len = strlen(process_name);
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000450 std::vector<struct kinfo_proc> proc_infos;
451 const size_t num_proc_infos = GetAllInfos(proc_infos);
452 if (num_proc_infos > 0)
453 {
454 uint32_t i;
455 for (i=0; i<num_proc_infos; i++)
456 {
457 // Skip zombie processes and processes with unset status
458 if (proc_infos[i].kp_proc.p_stat == 0 || proc_infos[i].kp_proc.p_stat == SZOMB)
459 continue;
460
461 // Check for process by name. We only check the first MAXCOMLEN
462 // chars as that is all that kp_proc.p_comm holds.
Jim Ingham490bccd2012-11-01 01:04:46 +0000463
Greg Clayton7dab2be2012-07-19 02:45:35 +0000464 if (::strncasecmp(process_name, proc_infos[i].kp_proc.p_comm, MAXCOMLEN) == 0)
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000465 {
Greg Clayton7dab2be2012-07-19 02:45:35 +0000466 if (process_name_len > MAXCOMLEN)
467 {
468 // We found a matching process name whose first MAXCOMLEN
469 // characters match, but there is more to the name than
Jim Ingham490bccd2012-11-01 01:04:46 +0000470 // this. We need to get the full process name. Use proc_pidpath, which will get
471 // us the full path to the executed process.
Greg Clayton7dab2be2012-07-19 02:45:35 +0000472
Jim Ingham490bccd2012-11-01 01:04:46 +0000473 char proc_path_buf[PATH_MAX];
Greg Clayton7dab2be2012-07-19 02:45:35 +0000474
Jim Ingham490bccd2012-11-01 01:04:46 +0000475 int return_val = proc_pidpath (proc_infos[i].kp_proc.p_pid, proc_path_buf, PATH_MAX);
476 if (return_val > 0)
Greg Clayton7dab2be2012-07-19 02:45:35 +0000477 {
Jim Ingham490bccd2012-11-01 01:04:46 +0000478 // Okay, now search backwards from that to see if there is a
479 // slash in the name. Note, even though we got all the args we don't care
480 // because the list data is just a bunch of concatenated null terminated strings
481 // so strrchr will start from the end of argv0.
482
483 const char *argv_basename = strrchr(proc_path_buf, '/');
Greg Clayton7dab2be2012-07-19 02:45:35 +0000484 if (argv_basename)
485 {
486 // Skip the '/'
487 ++argv_basename;
488 }
489 else
490 {
491 // We didn't find a directory delimiter in the process argv[0], just use what was in there
Jim Ingham490bccd2012-11-01 01:04:46 +0000492 argv_basename = proc_path_buf;
Greg Clayton7dab2be2012-07-19 02:45:35 +0000493 }
494
495 if (argv_basename)
496 {
497 if (::strncasecmp(process_name, argv_basename, PATH_MAX) == 0)
498 {
499 matching_proc_infos.push_back(proc_infos[i]);
500 }
501 }
502 }
503 }
504 else
505 {
506 // We found a matching process, add it to our list
Greg Clayton7dab2be2012-07-19 02:45:35 +0000507 matching_proc_infos.push_back(proc_infos[i]);
508 }
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000509 }
510 }
511 }
512 }
513 // return the newly added matches.
514 return matching_proc_infos.size();
515}
516
517nub_process_t
Greg Clayton19388cf2010-10-18 01:45:30 +0000518DNBProcessAttachWait (const char *waitfor_process_name,
519 nub_launch_flavor_t launch_flavor,
Jim Inghamcd16df92012-07-20 21:37:13 +0000520 bool ignore_existing,
Greg Clayton19388cf2010-10-18 01:45:30 +0000521 struct timespec *timeout_abstime,
522 useconds_t waitfor_interval,
523 char *err_str,
524 size_t err_len,
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000525 DNBShouldCancelCallback should_cancel_callback,
526 void *callback_data)
527{
528 DNBError prepare_error;
529 std::vector<struct kinfo_proc> exclude_proc_infos;
530 size_t num_exclude_proc_infos;
531
532 // If the PrepareForAttach returns a valid token, use MachProcess to check
533 // for the process, otherwise scan the process table.
534
535 const void *attach_token = MachProcess::PrepareForAttach (waitfor_process_name, launch_flavor, true, prepare_error);
536
537 if (prepare_error.Fail())
538 {
539 DNBLogError ("Error in PrepareForAttach: %s", prepare_error.AsString());
540 return INVALID_NUB_PROCESS;
541 }
542
543 if (attach_token == NULL)
Jim Inghamcd16df92012-07-20 21:37:13 +0000544 {
545 if (ignore_existing)
546 num_exclude_proc_infos = GetAllInfosMatchingName (waitfor_process_name, exclude_proc_infos);
547 else
548 num_exclude_proc_infos = 0;
549 }
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000550
551 DNBLogThreadedIf (LOG_PROCESS, "Waiting for '%s' to appear...\n", waitfor_process_name);
552
553 // Loop and try to find the process by name
554 nub_process_t waitfor_pid = INVALID_NUB_PROCESS;
555
556 while (waitfor_pid == INVALID_NUB_PROCESS)
557 {
558 if (attach_token != NULL)
559 {
560 nub_process_t pid;
561 pid = MachProcess::CheckForProcess(attach_token);
562 if (pid != INVALID_NUB_PROCESS)
563 {
564 waitfor_pid = pid;
565 break;
566 }
567 }
568 else
569 {
570
571 // Get the current process list, and check for matches that
572 // aren't in our original list. If anyone wants to attach
573 // to an existing process by name, they should do it with
574 // --attach=PROCNAME. Else we will wait for the first matching
575 // process that wasn't in our exclusion list.
576 std::vector<struct kinfo_proc> proc_infos;
577 const size_t num_proc_infos = GetAllInfosMatchingName (waitfor_process_name, proc_infos);
578 for (size_t i=0; i<num_proc_infos; i++)
579 {
580 nub_process_t curr_pid = proc_infos[i].kp_proc.p_pid;
581 for (size_t j=0; j<num_exclude_proc_infos; j++)
582 {
583 if (curr_pid == exclude_proc_infos[j].kp_proc.p_pid)
584 {
585 // This process was in our exclusion list, don't use it.
586 curr_pid = INVALID_NUB_PROCESS;
587 break;
588 }
589 }
590
591 // If we didn't find CURR_PID in our exclusion list, then use it.
592 if (curr_pid != INVALID_NUB_PROCESS)
593 {
594 // We found our process!
595 waitfor_pid = curr_pid;
596 break;
597 }
598 }
599 }
600
601 // If we haven't found our process yet, check for a timeout
602 // and then sleep for a bit until we poll again.
603 if (waitfor_pid == INVALID_NUB_PROCESS)
604 {
605 if (timeout_abstime != NULL)
606 {
607 // Check to see if we have a waitfor-duration option that
608 // has timed out?
609 if (DNBTimer::TimeOfDayLaterThan(*timeout_abstime))
610 {
611 if (err_str && err_len > 0)
612 snprintf(err_str, err_len, "operation timed out");
613 DNBLogError ("error: waiting for process '%s' timed out.\n", waitfor_process_name);
614 return INVALID_NUB_PROCESS;
615 }
616 }
617
618 // Call the should cancel callback as well...
619
620 if (should_cancel_callback != NULL
621 && should_cancel_callback (callback_data))
622 {
623 DNBLogThreadedIf (LOG_PROCESS, "DNBProcessAttachWait cancelled by should_cancel callback.");
624 waitfor_pid = INVALID_NUB_PROCESS;
625 break;
626 }
627
628 ::usleep (waitfor_interval); // Sleep for WAITFOR_INTERVAL, then poll again
629 }
630 }
631
632 if (waitfor_pid != INVALID_NUB_PROCESS)
633 {
634 DNBLogThreadedIf (LOG_PROCESS, "Attaching to %s with pid %i...\n", waitfor_process_name, waitfor_pid);
635 waitfor_pid = DNBProcessAttach (waitfor_pid, timeout_abstime, err_str, err_len);
636 }
637
638 bool success = waitfor_pid != INVALID_NUB_PROCESS;
639 MachProcess::CleanupAfterAttach (attach_token, success, prepare_error);
640
641 return waitfor_pid;
642}
643
644nub_bool_t
645DNBProcessDetach (nub_process_t pid)
646{
647 MachProcessSP procSP;
648 if (GetProcessSP (pid, procSP))
649 {
650 return procSP->Detach();
651 }
652 return false;
653}
654
655nub_bool_t
656DNBProcessKill (nub_process_t pid)
657{
658 MachProcessSP procSP;
659 if (GetProcessSP (pid, procSP))
660 {
661 return procSP->Kill ();
662 }
663 return false;
664}
665
666nub_bool_t
667DNBProcessSignal (nub_process_t pid, int signal)
668{
669 MachProcessSP procSP;
670 if (GetProcessSP (pid, procSP))
671 {
672 return procSP->Signal (signal);
673 }
674 return false;
675}
676
677
678nub_bool_t
679DNBProcessIsAlive (nub_process_t pid)
680{
681 MachProcessSP procSP;
682 if (GetProcessSP (pid, procSP))
683 {
684 return MachTask::IsValid (procSP->Task().TaskPort());
685 }
686 return eStateInvalid;
687}
688
689//----------------------------------------------------------------------
690// Process and Thread state information
691//----------------------------------------------------------------------
692nub_state_t
693DNBProcessGetState (nub_process_t pid)
694{
695 MachProcessSP procSP;
696 if (GetProcessSP (pid, procSP))
697 {
698 return procSP->GetState();
699 }
700 return eStateInvalid;
701}
702
703//----------------------------------------------------------------------
704// Process and Thread state information
705//----------------------------------------------------------------------
706nub_bool_t
707DNBProcessGetExitStatus (nub_process_t pid, int* status)
708{
709 MachProcessSP procSP;
710 if (GetProcessSP (pid, procSP))
711 {
712 return procSP->GetExitStatus(status);
713 }
714 return false;
715}
716
717nub_bool_t
718DNBProcessSetExitStatus (nub_process_t pid, int status)
719{
720 MachProcessSP procSP;
721 if (GetProcessSP (pid, procSP))
722 {
723 procSP->SetExitStatus(status);
724 return true;
725 }
726 return false;
727}
728
729
730const char *
731DNBThreadGetName (nub_process_t pid, nub_thread_t tid)
732{
733 MachProcessSP procSP;
734 if (GetProcessSP (pid, procSP))
735 return procSP->ThreadGetName(tid);
736 return NULL;
737}
738
739
740nub_bool_t
741DNBThreadGetIdentifierInfo (nub_process_t pid, nub_thread_t tid, thread_identifier_info_data_t *ident_info)
742{
743 MachProcessSP procSP;
744 if (GetProcessSP (pid, procSP))
745 return procSP->GetThreadList().GetIdentifierInfo(tid, ident_info);
746 return false;
747}
748
749nub_state_t
750DNBThreadGetState (nub_process_t pid, nub_thread_t tid)
751{
752 MachProcessSP procSP;
753 if (GetProcessSP (pid, procSP))
754 {
755 return procSP->ThreadGetState(tid);
756 }
757 return eStateInvalid;
758}
759
760const char *
761DNBStateAsString(nub_state_t state)
762{
763 switch (state)
764 {
Greg Claytoneffe5c92011-05-03 22:09:39 +0000765 case eStateInvalid: return "Invalid";
Chris Lattner30fdc8d2010-06-08 16:52:24 +0000766 case eStateUnloaded: return "Unloaded";
767 case eStateAttaching: return "Attaching";
768 case eStateLaunching: return "Launching";
769 case eStateStopped: return "Stopped";
770 case eStateRunning: return "Running";
771 case eStateStepping: return "Stepping";
772 case eStateCrashed: return "Crashed";
773 case eStateDetached: return "Detached";
774 case eStateExited: return "Exited";
775 case eStateSuspended: return "Suspended";
776 }
777 return "nub_state_t ???";
778}
779
780const char *
781DNBProcessGetExecutablePath (nub_process_t pid)
782{
783 MachProcessSP procSP;
784 if (GetProcessSP (pid, procSP))
785 {
786 return procSP->Path();
787 }
788 return NULL;
789}
790
791nub_size_t
792DNBProcessGetArgumentCount (nub_process_t pid)
793{
794 MachProcessSP procSP;
795 if (GetProcessSP (pid, procSP))
796 {
797 return procSP->ArgumentCount();
798 }
799 return 0;
800}
801
802const char *
803DNBProcessGetArgumentAtIndex (nub_process_t pid, nub_size_t idx)
804{
805 MachProcessSP procSP;
806 if (GetProcessSP (pid, procSP))
807 {
808 return procSP->ArgumentAtIndex (idx);
809 }
810 return NULL;
811}
812
813
814//----------------------------------------------------------------------
815// Execution control
816//----------------------------------------------------------------------
817nub_bool_t
818DNBProcessResume (nub_process_t pid, const DNBThreadResumeAction *actions, size_t num_actions)
819{
820 DNBLogThreadedIf(LOG_PROCESS, "%s(pid = %4.4x)", __FUNCTION__, pid);
821 MachProcessSP procSP;
822 if (GetProcessSP (pid, procSP))
823 {
824 DNBThreadResumeActions thread_actions (actions, num_actions);
825
826 // Below we add a default thread plan just in case one wasn't
827 // provided so all threads always know what they were supposed to do
828 if (thread_actions.IsEmpty())
829 {
830 // No thread plans were given, so the default it to run all threads
831 thread_actions.SetDefaultThreadActionIfNeeded (eStateRunning, 0);
832 }
833 else
834 {
835 // Some thread plans were given which means anything that wasn't
836 // specified should remain stopped.
837 thread_actions.SetDefaultThreadActionIfNeeded (eStateStopped, 0);
838 }
839 return procSP->Resume (thread_actions);
840 }
841 return false;
842}
843
844nub_bool_t
845DNBProcessHalt (nub_process_t pid)
846{
847 DNBLogThreadedIf(LOG_PROCESS, "%s(pid = %4.4x)", __FUNCTION__, pid);
848 MachProcessSP procSP;
849 if (GetProcessSP (pid, procSP))
850 return procSP->Signal (SIGSTOP);
851 return false;
852}
853//
854//nub_bool_t
855//DNBThreadResume (nub_process_t pid, nub_thread_t tid, nub_bool_t step)
856//{
857// DNBLogThreadedIf(LOG_THREAD, "%s(pid = %4.4x, tid = %4.4x, step = %u)", __FUNCTION__, pid, tid, (uint32_t)step);
858// MachProcessSP procSP;
859// if (GetProcessSP (pid, procSP))
860// {
861// return procSP->Resume(tid, step, 0);
862// }
863// return false;
864//}
865//
866//nub_bool_t
867//DNBThreadResumeWithSignal (nub_process_t pid, nub_thread_t tid, nub_bool_t step, int signal)
868//{
869// DNBLogThreadedIf(LOG_THREAD, "%s(pid = %4.4x, tid = %4.4x, step = %u, signal = %i)", __FUNCTION__, pid, tid, (uint32_t)step, signal);
870// MachProcessSP procSP;
871// if (GetProcessSP (pid, procSP))
872// {
873// return procSP->Resume(tid, step, signal);
874// }
875// return false;
876//}
877
878nub_event_t
879DNBProcessWaitForEvents (nub_process_t pid, nub_event_t event_mask, bool wait_for_set, struct timespec* timeout)
880{
881 nub_event_t result = 0;
882 MachProcessSP procSP;
883 if (GetProcessSP (pid, procSP))
884 {
885 if (wait_for_set)
886 result = procSP->Events().WaitForSetEvents(event_mask, timeout);
887 else
888 result = procSP->Events().WaitForEventsToReset(event_mask, timeout);
889 }
890 return result;
891}
892
893void
894DNBProcessResetEvents (nub_process_t pid, nub_event_t event_mask)
895{
896 MachProcessSP procSP;
897 if (GetProcessSP (pid, procSP))
898 procSP->Events().ResetEvents(event_mask);
899}
900
901void
902DNBProcessInterruptEvents (nub_process_t pid)
903{
904 MachProcessSP procSP;
905 if (GetProcessSP (pid, procSP))
906 procSP->Events().SetEvents(eEventProcessAsyncInterrupt);
907}
908
909
910// Breakpoints
911nub_break_t
912DNBBreakpointSet (nub_process_t pid, nub_addr_t addr, nub_size_t size, nub_bool_t hardware)
913{
914 MachProcessSP procSP;
915 if (GetProcessSP (pid, procSP))
916 {
917 return procSP->CreateBreakpoint(addr, size, hardware, THREAD_NULL);
918 }
919 return INVALID_NUB_BREAK_ID;
920}
921
922nub_bool_t
923DNBBreakpointClear (nub_process_t pid, nub_break_t breakID)
924{
925 if (NUB_BREAK_ID_IS_VALID(breakID))
926 {
927 MachProcessSP procSP;
928 if (GetProcessSP (pid, procSP))
929 {
930 return procSP->DisableBreakpoint(breakID, true);
931 }
932 }
933 return false; // Failed
934}
935
936nub_ssize_t
937DNBBreakpointGetHitCount (nub_process_t pid, nub_break_t breakID)
938{
939 if (NUB_BREAK_ID_IS_VALID(breakID))
940 {
941 MachProcessSP procSP;
942 if (GetProcessSP (pid, procSP))
943 {
944 DNBBreakpoint *bp = procSP->Breakpoints().FindByID(breakID);
945 if (bp)
946 return bp->GetHitCount();
947 }
948 }
949 return 0;
950}
951
952nub_ssize_t
953DNBBreakpointGetIgnoreCount (nub_process_t pid, nub_break_t breakID)
954{
955 if (NUB_BREAK_ID_IS_VALID(breakID))
956 {
957 MachProcessSP procSP;
958 if (GetProcessSP (pid, procSP))
959 {
960 DNBBreakpoint *bp = procSP->Breakpoints().FindByID(breakID);
961 if (bp)
962 return bp->GetIgnoreCount();
963 }
964 }
965 return 0;
966}
967
968nub_bool_t
969DNBBreakpointSetIgnoreCount (nub_process_t pid, nub_break_t breakID, nub_size_t ignore_count)
970{
971 if (NUB_BREAK_ID_IS_VALID(breakID))
972 {
973 MachProcessSP procSP;
974 if (GetProcessSP (pid, procSP))
975 {
976 DNBBreakpoint *bp = procSP->Breakpoints().FindByID(breakID);
977 if (bp)
978 {
979 bp->SetIgnoreCount(ignore_count);
980 return true;
981 }
982 }
983 }
984 return false;
985}
986
987// Set the callback function for a given breakpoint. The callback function will
988// get called as soon as the breakpoint is hit. The function will be called
989// with the process ID, thread ID, breakpoint ID and the baton, and can return
990//
991nub_bool_t
992DNBBreakpointSetCallback (nub_process_t pid, nub_break_t breakID, DNBCallbackBreakpointHit callback, void *baton)
993{
994 if (NUB_BREAK_ID_IS_VALID(breakID))
995 {
996 MachProcessSP procSP;
997 if (GetProcessSP (pid, procSP))
998 {
999 DNBBreakpoint *bp = procSP->Breakpoints().FindByID(breakID);
1000 if (bp)
1001 {
1002 bp->SetCallback(callback, baton);
1003 return true;
1004 }
1005 }
1006 }
1007 return false;
1008}
1009
1010//----------------------------------------------------------------------
1011// Dump the breakpoints stats for process PID for a breakpoint by ID.
1012//----------------------------------------------------------------------
1013void
1014DNBBreakpointPrint (nub_process_t pid, nub_break_t breakID)
1015{
1016 MachProcessSP procSP;
1017 if (GetProcessSP (pid, procSP))
1018 procSP->DumpBreakpoint(breakID);
1019}
1020
1021//----------------------------------------------------------------------
1022// Watchpoints
1023//----------------------------------------------------------------------
1024nub_watch_t
1025DNBWatchpointSet (nub_process_t pid, nub_addr_t addr, nub_size_t size, uint32_t watch_flags, nub_bool_t hardware)
1026{
1027 MachProcessSP procSP;
1028 if (GetProcessSP (pid, procSP))
1029 {
1030 return procSP->CreateWatchpoint(addr, size, watch_flags, hardware, THREAD_NULL);
1031 }
Johnny Chen86f97a42011-09-06 19:52:49 +00001032 return INVALID_NUB_WATCH_ID;
Chris Lattner30fdc8d2010-06-08 16:52:24 +00001033}
1034
1035nub_bool_t
1036DNBWatchpointClear (nub_process_t pid, nub_watch_t watchID)
1037{
Johnny Chen86f97a42011-09-06 19:52:49 +00001038 if (NUB_WATCH_ID_IS_VALID(watchID))
Chris Lattner30fdc8d2010-06-08 16:52:24 +00001039 {
1040 MachProcessSP procSP;
1041 if (GetProcessSP (pid, procSP))
1042 {
1043 return procSP->DisableWatchpoint(watchID, true);
1044 }
1045 }
1046 return false; // Failed
1047}
1048
1049nub_ssize_t
1050DNBWatchpointGetHitCount (nub_process_t pid, nub_watch_t watchID)
1051{
Johnny Chen86f97a42011-09-06 19:52:49 +00001052 if (NUB_WATCH_ID_IS_VALID(watchID))
Chris Lattner30fdc8d2010-06-08 16:52:24 +00001053 {
1054 MachProcessSP procSP;
1055 if (GetProcessSP (pid, procSP))
1056 {
1057 DNBBreakpoint *bp = procSP->Watchpoints().FindByID(watchID);
1058 if (bp)
1059 return bp->GetHitCount();
1060 }
1061 }
1062 return 0;
1063}
1064
1065nub_ssize_t
1066DNBWatchpointGetIgnoreCount (nub_process_t pid, nub_watch_t watchID)
1067{
Johnny Chen86f97a42011-09-06 19:52:49 +00001068 if (NUB_WATCH_ID_IS_VALID(watchID))
Chris Lattner30fdc8d2010-06-08 16:52:24 +00001069 {
1070 MachProcessSP procSP;
1071 if (GetProcessSP (pid, procSP))
1072 {
1073 DNBBreakpoint *bp = procSP->Watchpoints().FindByID(watchID);
1074 if (bp)
1075 return bp->GetIgnoreCount();
1076 }
1077 }
1078 return 0;
1079}
1080
1081nub_bool_t
1082DNBWatchpointSetIgnoreCount (nub_process_t pid, nub_watch_t watchID, nub_size_t ignore_count)
1083{
Johnny Chen86f97a42011-09-06 19:52:49 +00001084 if (NUB_WATCH_ID_IS_VALID(watchID))
Chris Lattner30fdc8d2010-06-08 16:52:24 +00001085 {
1086 MachProcessSP procSP;
1087 if (GetProcessSP (pid, procSP))
1088 {
1089 DNBBreakpoint *bp = procSP->Watchpoints().FindByID(watchID);
1090 if (bp)
1091 {
1092 bp->SetIgnoreCount(ignore_count);
1093 return true;
1094 }
1095 }
1096 }
1097 return false;
1098}
1099
1100// Set the callback function for a given watchpoint. The callback function will
1101// get called as soon as the watchpoint is hit. The function will be called
1102// with the process ID, thread ID, watchpoint ID and the baton, and can return
1103//
1104nub_bool_t
1105DNBWatchpointSetCallback (nub_process_t pid, nub_watch_t watchID, DNBCallbackBreakpointHit callback, void *baton)
1106{
Johnny Chen86f97a42011-09-06 19:52:49 +00001107 if (NUB_WATCH_ID_IS_VALID(watchID))
Chris Lattner30fdc8d2010-06-08 16:52:24 +00001108 {
1109 MachProcessSP procSP;
1110 if (GetProcessSP (pid, procSP))
1111 {
1112 DNBBreakpoint *bp = procSP->Watchpoints().FindByID(watchID);
1113 if (bp)
1114 {
1115 bp->SetCallback(callback, baton);
1116 return true;
1117 }
1118 }
1119 }
1120 return false;
1121}
1122
1123//----------------------------------------------------------------------
1124// Dump the watchpoints stats for process PID for a watchpoint by ID.
1125//----------------------------------------------------------------------
1126void
1127DNBWatchpointPrint (nub_process_t pid, nub_watch_t watchID)
1128{
1129 MachProcessSP procSP;
1130 if (GetProcessSP (pid, procSP))
1131 procSP->DumpWatchpoint(watchID);
1132}
1133
1134//----------------------------------------------------------------------
Johnny Chen64637202012-05-23 21:09:52 +00001135// Return the number of supported hardware watchpoints.
1136//----------------------------------------------------------------------
1137uint32_t
1138DNBWatchpointGetNumSupportedHWP (nub_process_t pid)
1139{
1140 MachProcessSP procSP;
1141 if (GetProcessSP (pid, procSP))
1142 return procSP->GetNumSupportedHardwareWatchpoints();
1143 return 0;
1144}
1145
1146//----------------------------------------------------------------------
Chris Lattner30fdc8d2010-06-08 16:52:24 +00001147// Read memory in the address space of process PID. This call will take
1148// care of setting and restoring permissions and breaking up the memory
1149// read into multiple chunks as required.
1150//
1151// RETURNS: number of bytes actually read
1152//----------------------------------------------------------------------
1153nub_size_t
1154DNBProcessMemoryRead (nub_process_t pid, nub_addr_t addr, nub_size_t size, void *buf)
1155{
1156 MachProcessSP procSP;
1157 if (GetProcessSP (pid, procSP))
1158 return procSP->ReadMemory(addr, size, buf);
1159 return 0;
1160}
1161
1162//----------------------------------------------------------------------
1163// Write memory to the address space of process PID. This call will take
1164// care of setting and restoring permissions and breaking up the memory
1165// write into multiple chunks as required.
1166//
1167// RETURNS: number of bytes actually written
1168//----------------------------------------------------------------------
1169nub_size_t
1170DNBProcessMemoryWrite (nub_process_t pid, nub_addr_t addr, nub_size_t size, const void *buf)
1171{
1172 MachProcessSP procSP;
1173 if (GetProcessSP (pid, procSP))
1174 return procSP->WriteMemory(addr, size, buf);
1175 return 0;
1176}
1177
1178nub_addr_t
1179DNBProcessMemoryAllocate (nub_process_t pid, nub_size_t size, uint32_t permissions)
1180{
1181 MachProcessSP procSP;
1182 if (GetProcessSP (pid, procSP))
1183 return procSP->Task().AllocateMemory (size, permissions);
1184 return 0;
1185}
1186
1187nub_bool_t
1188DNBProcessMemoryDeallocate (nub_process_t pid, nub_addr_t addr)
1189{
1190 MachProcessSP procSP;
1191 if (GetProcessSP (pid, procSP))
1192 return procSP->Task().DeallocateMemory (addr);
1193 return 0;
1194}
1195
Jason Molenda1f3966b2011-11-08 04:28:12 +00001196//----------------------------------------------------------------------
Jason Molenda3dc85832011-11-09 08:03:56 +00001197// Find attributes of the memory region that contains ADDR for process PID,
1198// if possible, and return a string describing those attributes.
Jason Molenda1f3966b2011-11-08 04:28:12 +00001199//
Jason Molenda3dc85832011-11-09 08:03:56 +00001200// Returns 1 if we could find attributes for this region and OUTBUF can
1201// be sent to the remote debugger.
Jason Molenda1f3966b2011-11-08 04:28:12 +00001202//
Jason Molenda3dc85832011-11-09 08:03:56 +00001203// Returns 0 if we couldn't find the attributes for a region of memory at
1204// that address and OUTBUF should not be sent.
1205//
1206// Returns -1 if this platform cannot look up information about memory regions
1207// or if we do not yet have a valid launched process.
1208//
Jason Molenda1f3966b2011-11-08 04:28:12 +00001209//----------------------------------------------------------------------
1210int
Greg Claytonfc5dd292011-12-12 18:51:14 +00001211DNBProcessMemoryRegionInfo (nub_process_t pid, nub_addr_t addr, DNBRegionInfo *region_info)
Jason Molenda1f3966b2011-11-08 04:28:12 +00001212{
1213 MachProcessSP procSP;
1214 if (GetProcessSP (pid, procSP))
Greg Clayton46fb5582011-11-18 07:03:08 +00001215 return procSP->Task().GetMemoryRegionInfo (addr, region_info);
1216
Jason Molenda1f3966b2011-11-08 04:28:12 +00001217 return -1;
1218}
1219
Chris Lattner30fdc8d2010-06-08 16:52:24 +00001220
1221//----------------------------------------------------------------------
1222// Formatted output that uses memory and registers from process and
1223// thread in place of arguments.
1224//----------------------------------------------------------------------
1225nub_size_t
1226DNBPrintf (nub_process_t pid, nub_thread_t tid, nub_addr_t base_addr, FILE *file, const char *format)
1227{
1228 if (file == NULL)
1229 return 0;
1230 enum printf_flags
1231 {
1232 alternate_form = (1 << 0),
1233 zero_padding = (1 << 1),
1234 negative_field_width = (1 << 2),
1235 blank_space = (1 << 3),
1236 show_sign = (1 << 4),
1237 show_thousands_separator= (1 << 5),
1238 };
1239
1240 enum printf_length_modifiers
1241 {
1242 length_mod_h = (1 << 0),
1243 length_mod_hh = (1 << 1),
1244 length_mod_l = (1 << 2),
1245 length_mod_ll = (1 << 3),
1246 length_mod_L = (1 << 4),
1247 length_mod_j = (1 << 5),
1248 length_mod_t = (1 << 6),
1249 length_mod_z = (1 << 7),
1250 length_mod_q = (1 << 8),
1251 };
1252
1253 nub_addr_t addr = base_addr;
1254 char *end_format = (char*)format + strlen(format);
1255 char *end = NULL; // For strtoXXXX calls;
1256 std::basic_string<uint8_t> buf;
1257 nub_size_t total_bytes_read = 0;
1258 DNBDataRef data;
1259 const char *f;
1260 for (f = format; *f != '\0' && f < end_format; f++)
1261 {
1262 char ch = *f;
1263 switch (ch)
1264 {
1265 case '%':
1266 {
1267 f++; // Skip the '%' character
Greg Clayton23f59502012-07-17 03:23:13 +00001268// int min_field_width = 0;
1269// int precision = 0;
1270 //uint32_t flags = 0;
Chris Lattner30fdc8d2010-06-08 16:52:24 +00001271 uint32_t length_modifiers = 0;
1272 uint32_t byte_size = 0;
1273 uint32_t actual_byte_size = 0;
1274 bool is_string = false;
1275 bool is_register = false;
1276 DNBRegisterValue register_value;
1277 int64_t register_offset = 0;
1278 nub_addr_t register_addr = INVALID_NUB_ADDRESS;
1279
1280 // Create the format string to use for this conversion specification
1281 // so we can remove and mprintf specific flags and formatters.
1282 std::string fprintf_format("%");
1283
1284 // Decode any flags
1285 switch (*f)
1286 {
Greg Clayton23f59502012-07-17 03:23:13 +00001287 case '#': fprintf_format += *f++; break; //flags |= alternate_form; break;
1288 case '0': fprintf_format += *f++; break; //flags |= zero_padding; break;
1289 case '-': fprintf_format += *f++; break; //flags |= negative_field_width; break;
1290 case ' ': fprintf_format += *f++; break; //flags |= blank_space; break;
1291 case '+': fprintf_format += *f++; break; //flags |= show_sign; break;
1292 case ',': fprintf_format += *f++; break; //flags |= show_thousands_separator;break;
Chris Lattner30fdc8d2010-06-08 16:52:24 +00001293 case '{':
1294 case '[':
1295 {
1296 // We have a register name specification that can take two forms:
1297 // ${regname} or ${regname+offset}
1298 // The action is to read the register value and add the signed offset
1299 // (if any) and use that as the value to format.
1300 // $[regname] or $[regname+offset]
1301 // The action is to read the register value and add the signed offset
1302 // (if any) and use the result as an address to dereference. The size
1303 // of what is dereferenced is specified by the actual byte size that
1304 // follows the minimum field width and precision (see comments below).
1305 switch (*f)
1306 {
1307 case '{':
1308 case '[':
1309 {
1310 char open_scope_ch = *f;
1311 f++;
1312 const char *reg_name = f;
1313 size_t reg_name_length = strcspn(f, "+-}]");
1314 if (reg_name_length > 0)
1315 {
1316 std::string register_name(reg_name, reg_name_length);
1317 f += reg_name_length;
1318 register_offset = strtoll(f, &end, 0);
1319 if (f < end)
1320 f = end;
1321 if ((open_scope_ch == '{' && *f != '}') || (open_scope_ch == '[' && *f != ']'))
1322 {
1323 fprintf(file, "error: Invalid register format string. Valid formats are %%{regname} or %%{regname+offset}, %%[regname] or %%[regname+offset]\n");
1324 return total_bytes_read;
1325 }
1326 else
1327 {
1328 f++;
1329 if (DNBThreadGetRegisterValueByName(pid, tid, REGISTER_SET_ALL, register_name.c_str(), &register_value))
1330 {
1331 // Set the address to dereference using the register value plus the offset
1332 switch (register_value.info.size)
1333 {
1334 default:
1335 case 0:
1336 fprintf (file, "error: unsupported register size of %u.\n", register_value.info.size);
1337 return total_bytes_read;
1338
1339 case 1: register_addr = register_value.value.uint8 + register_offset; break;
1340 case 2: register_addr = register_value.value.uint16 + register_offset; break;
1341 case 4: register_addr = register_value.value.uint32 + register_offset; break;
1342 case 8: register_addr = register_value.value.uint64 + register_offset; break;
1343 case 16:
1344 if (open_scope_ch == '[')
1345 {
1346 fprintf (file, "error: register size (%u) too large for address.\n", register_value.info.size);
1347 return total_bytes_read;
1348 }
1349 break;
1350 }
1351
1352 if (open_scope_ch == '{')
1353 {
1354 byte_size = register_value.info.size;
1355 is_register = true; // value is in a register
1356
1357 }
1358 else
1359 {
1360 addr = register_addr; // Use register value and offset as the address
1361 }
1362 }
1363 else
1364 {
1365 fprintf(file, "error: unable to read register '%s' for process %#.4x and thread %#.4x\n", register_name.c_str(), pid, tid);
1366 return total_bytes_read;
1367 }
1368 }
1369 }
1370 }
1371 break;
1372
1373 default:
1374 fprintf(file, "error: %%$ must be followed by (regname + n) or [regname + n]\n");
1375 return total_bytes_read;
1376 }
1377 }
1378 break;
1379 }
1380
1381 // Check for a minimum field width
1382 if (isdigit(*f))
1383 {
Greg Clayton23f59502012-07-17 03:23:13 +00001384 //min_field_width = strtoul(f, &end, 10);
1385 strtoul(f, &end, 10);
Chris Lattner30fdc8d2010-06-08 16:52:24 +00001386 if (end > f)
1387 {
1388 fprintf_format.append(f, end - f);
1389 f = end;
1390 }
1391 }
1392
1393
1394 // Check for a precision
1395 if (*f == '.')
1396 {
1397 f++;
1398 if (isdigit(*f))
1399 {
1400 fprintf_format += '.';
Greg Clayton23f59502012-07-17 03:23:13 +00001401 //precision = strtoul(f, &end, 10);
1402 strtoul(f, &end, 10);
Chris Lattner30fdc8d2010-06-08 16:52:24 +00001403 if (end > f)
1404 {
1405 fprintf_format.append(f, end - f);
1406 f = end;
1407 }
1408 }
1409 }
1410
1411
1412 // mprintf specific: read the optional actual byte size (abs)
1413 // after the standard minimum field width (mfw) and precision (prec).
1414 // Standard printf calls you can have "mfw.prec" or ".prec", but
1415 // mprintf can have "mfw.prec.abs", ".prec.abs" or "..abs". This is nice
1416 // for strings that may be in a fixed size buffer, but may not use all bytes
1417 // in that buffer for printable characters.
1418 if (*f == '.')
1419 {
1420 f++;
1421 actual_byte_size = strtoul(f, &end, 10);
1422 if (end > f)
1423 {
1424 byte_size = actual_byte_size;
1425 f = end;
1426 }
1427 }
1428
1429 // Decode the length modifiers
1430 switch (*f)
1431 {
1432 case 'h': // h and hh length modifiers
1433 fprintf_format += *f++;
1434 length_modifiers |= length_mod_h;
1435 if (*f == 'h')
1436 {
1437 fprintf_format += *f++;
1438 length_modifiers |= length_mod_hh;
1439 }
1440 break;
1441
1442 case 'l': // l and ll length modifiers
1443 fprintf_format += *f++;
1444 length_modifiers |= length_mod_l;
1445 if (*f == 'h')
1446 {
1447 fprintf_format += *f++;
1448 length_modifiers |= length_mod_ll;
1449 }
1450 break;
1451
1452 case 'L': fprintf_format += *f++; length_modifiers |= length_mod_L; break;
1453 case 'j': fprintf_format += *f++; length_modifiers |= length_mod_j; break;
1454 case 't': fprintf_format += *f++; length_modifiers |= length_mod_t; break;
1455 case 'z': fprintf_format += *f++; length_modifiers |= length_mod_z; break;
1456 case 'q': fprintf_format += *f++; length_modifiers |= length_mod_q; break;
1457 }
1458
1459 // Decode the conversion specifier
1460 switch (*f)
1461 {
1462 case '_':
1463 // mprintf specific format items
1464 {
1465 ++f; // Skip the '_' character
1466 switch (*f)
1467 {
1468 case 'a': // Print the current address
1469 ++f;
1470 fprintf_format += "ll";
1471 fprintf_format += *f; // actual format to show address with folows the 'a' ("%_ax")
1472 fprintf (file, fprintf_format.c_str(), addr);
1473 break;
1474 case 'o': // offset from base address
1475 ++f;
1476 fprintf_format += "ll";
1477 fprintf_format += *f; // actual format to show address with folows the 'a' ("%_ox")
1478 fprintf(file, fprintf_format.c_str(), addr - base_addr);
1479 break;
1480 default:
1481 fprintf (file, "error: unsupported mprintf specific format character '%c'.\n", *f);
1482 break;
1483 }
1484 continue;
1485 }
1486 break;
1487
1488 case 'D':
1489 case 'O':
1490 case 'U':
1491 fprintf_format += *f;
1492 if (byte_size == 0)
1493 byte_size = sizeof(long int);
1494 break;
1495
1496 case 'd':
1497 case 'i':
1498 case 'o':
1499 case 'u':
1500 case 'x':
1501 case 'X':
1502 fprintf_format += *f;
1503 if (byte_size == 0)
1504 {
1505 if (length_modifiers & length_mod_hh)
1506 byte_size = sizeof(char);
1507 else if (length_modifiers & length_mod_h)
1508 byte_size = sizeof(short);
Greg Clayton23f59502012-07-17 03:23:13 +00001509 else if (length_modifiers & length_mod_ll)
Chris Lattner30fdc8d2010-06-08 16:52:24 +00001510 byte_size = sizeof(long long);
1511 else if (length_modifiers & length_mod_l)
1512 byte_size = sizeof(long);
1513 else
1514 byte_size = sizeof(int);
1515 }
1516 break;
1517
1518 case 'a':
1519 case 'A':
1520 case 'f':
1521 case 'F':
1522 case 'e':
1523 case 'E':
1524 case 'g':
1525 case 'G':
1526 fprintf_format += *f;
1527 if (byte_size == 0)
1528 {
1529 if (length_modifiers & length_mod_L)
1530 byte_size = sizeof(long double);
1531 else
1532 byte_size = sizeof(double);
1533 }
1534 break;
1535
1536 case 'c':
1537 if ((length_modifiers & length_mod_l) == 0)
1538 {
1539 fprintf_format += *f;
1540 if (byte_size == 0)
1541 byte_size = sizeof(char);
1542 break;
1543 }
1544 // Fall through to 'C' modifier below...
1545
1546 case 'C':
1547 fprintf_format += *f;
1548 if (byte_size == 0)
1549 byte_size = sizeof(wchar_t);
1550 break;
1551
1552 case 's':
1553 fprintf_format += *f;
1554 if (is_register || byte_size == 0)
1555 is_string = 1;
1556 break;
1557
1558 case 'p':
1559 fprintf_format += *f;
1560 if (byte_size == 0)
1561 byte_size = sizeof(void*);
1562 break;
1563 }
1564
1565 if (is_string)
1566 {
1567 std::string mem_string;
1568 const size_t string_buf_len = 4;
1569 char string_buf[string_buf_len+1];
1570 char *string_buf_end = string_buf + string_buf_len;
1571 string_buf[string_buf_len] = '\0';
1572 nub_size_t bytes_read;
1573 nub_addr_t str_addr = is_register ? register_addr : addr;
1574 while ((bytes_read = DNBProcessMemoryRead(pid, str_addr, string_buf_len, &string_buf[0])) > 0)
1575 {
1576 // Did we get a NULL termination character yet?
1577 if (strchr(string_buf, '\0') == string_buf_end)
1578 {
1579 // no NULL terminator yet, append as a std::string
1580 mem_string.append(string_buf, string_buf_len);
1581 str_addr += string_buf_len;
1582 }
1583 else
1584 {
1585 // yep
1586 break;
1587 }
1588 }
1589 // Append as a C-string so we don't get the extra NULL
1590 // characters in the temp buffer (since it was resized)
1591 mem_string += string_buf;
1592 size_t mem_string_len = mem_string.size() + 1;
1593 fprintf(file, fprintf_format.c_str(), mem_string.c_str());
1594 if (mem_string_len > 0)
1595 {
1596 if (!is_register)
1597 {
1598 addr += mem_string_len;
1599 total_bytes_read += mem_string_len;
1600 }
1601 }
1602 else
1603 return total_bytes_read;
1604 }
1605 else
1606 if (byte_size > 0)
1607 {
1608 buf.resize(byte_size);
1609 nub_size_t bytes_read = 0;
1610 if (is_register)
1611 bytes_read = register_value.info.size;
1612 else
1613 bytes_read = DNBProcessMemoryRead(pid, addr, buf.size(), &buf[0]);
1614 if (bytes_read > 0)
1615 {
1616 if (!is_register)
1617 total_bytes_read += bytes_read;
1618
1619 if (bytes_read == byte_size)
1620 {
1621 switch (*f)
1622 {
1623 case 'd':
1624 case 'i':
1625 case 'o':
1626 case 'u':
1627 case 'X':
1628 case 'x':
1629 case 'a':
1630 case 'A':
1631 case 'f':
1632 case 'F':
1633 case 'e':
1634 case 'E':
1635 case 'g':
1636 case 'G':
1637 case 'p':
1638 case 'c':
1639 case 'C':
1640 {
1641 if (is_register)
1642 data.SetData(&register_value.value.v_uint8[0], register_value.info.size);
1643 else
1644 data.SetData(&buf[0], bytes_read);
1645 DNBDataRef::offset_t data_offset = 0;
1646 if (byte_size <= 4)
1647 {
1648 uint32_t u32 = data.GetMax32(&data_offset, byte_size);
1649 // Show the actual byte width when displaying hex
1650 fprintf(file, fprintf_format.c_str(), u32);
1651 }
1652 else if (byte_size <= 8)
1653 {
1654 uint64_t u64 = data.GetMax64(&data_offset, byte_size);
1655 // Show the actual byte width when displaying hex
1656 fprintf(file, fprintf_format.c_str(), u64);
1657 }
1658 else
1659 {
1660 fprintf(file, "error: integer size not supported, must be 8 bytes or less (%u bytes).\n", byte_size);
1661 }
1662 if (!is_register)
1663 addr += byte_size;
1664 }
1665 break;
1666
1667 case 's':
1668 fprintf(file, fprintf_format.c_str(), buf.c_str());
1669 addr += byte_size;
1670 break;
1671
1672 default:
1673 fprintf(file, "error: unsupported conversion specifier '%c'.\n", *f);
1674 break;
1675 }
1676 }
1677 }
1678 }
1679 else
1680 return total_bytes_read;
1681 }
1682 break;
1683
1684 case '\\':
1685 {
1686 f++;
1687 switch (*f)
1688 {
1689 case 'e': ch = '\e'; break;
1690 case 'a': ch = '\a'; break;
1691 case 'b': ch = '\b'; break;
1692 case 'f': ch = '\f'; break;
1693 case 'n': ch = '\n'; break;
1694 case 'r': ch = '\r'; break;
1695 case 't': ch = '\t'; break;
1696 case 'v': ch = '\v'; break;
1697 case '\'': ch = '\''; break;
1698 case '\\': ch = '\\'; break;
1699 case '0':
1700 case '1':
1701 case '2':
1702 case '3':
1703 case '4':
1704 case '5':
1705 case '6':
1706 case '7':
1707 ch = strtoul(f, &end, 8);
1708 f = end;
1709 break;
1710 default:
1711 ch = *f;
1712 break;
1713 }
1714 fputc(ch, file);
1715 }
1716 break;
1717
1718 default:
1719 fputc(ch, file);
1720 break;
1721 }
1722 }
1723 return total_bytes_read;
1724}
1725
1726
1727//----------------------------------------------------------------------
1728// Get the number of threads for the specified process.
1729//----------------------------------------------------------------------
1730nub_size_t
1731DNBProcessGetNumThreads (nub_process_t pid)
1732{
1733 MachProcessSP procSP;
1734 if (GetProcessSP (pid, procSP))
1735 return procSP->GetNumThreads();
1736 return 0;
1737}
1738
1739//----------------------------------------------------------------------
1740// Get the thread ID of the current thread.
1741//----------------------------------------------------------------------
1742nub_thread_t
1743DNBProcessGetCurrentThread (nub_process_t pid)
1744{
1745 MachProcessSP procSP;
1746 if (GetProcessSP (pid, procSP))
1747 return procSP->GetCurrentThread();
1748 return 0;
1749}
1750
1751//----------------------------------------------------------------------
1752// Change the current thread.
1753//----------------------------------------------------------------------
1754nub_thread_t
1755DNBProcessSetCurrentThread (nub_process_t pid, nub_thread_t tid)
1756{
1757 MachProcessSP procSP;
1758 if (GetProcessSP (pid, procSP))
1759 return procSP->SetCurrentThread (tid);
1760 return INVALID_NUB_THREAD;
1761}
1762
1763
1764//----------------------------------------------------------------------
1765// Dump a string describing a thread's stop reason to the specified file
1766// handle
1767//----------------------------------------------------------------------
1768nub_bool_t
1769DNBThreadGetStopReason (nub_process_t pid, nub_thread_t tid, struct DNBThreadStopInfo *stop_info)
1770{
1771 MachProcessSP procSP;
1772 if (GetProcessSP (pid, procSP))
1773 return procSP->GetThreadStoppedReason (tid, stop_info);
1774 return false;
1775}
1776
1777//----------------------------------------------------------------------
1778// Return string description for the specified thread.
1779//
1780// RETURNS: NULL if the thread isn't valid, else a NULL terminated C
1781// string from a static buffer that must be copied prior to subsequent
1782// calls.
1783//----------------------------------------------------------------------
1784const char *
1785DNBThreadGetInfo (nub_process_t pid, nub_thread_t tid)
1786{
1787 MachProcessSP procSP;
1788 if (GetProcessSP (pid, procSP))
1789 return procSP->GetThreadInfo (tid);
1790 return NULL;
1791}
1792
1793//----------------------------------------------------------------------
1794// Get the thread ID given a thread index.
1795//----------------------------------------------------------------------
1796nub_thread_t
1797DNBProcessGetThreadAtIndex (nub_process_t pid, size_t thread_idx)
1798{
1799 MachProcessSP procSP;
1800 if (GetProcessSP (pid, procSP))
1801 return procSP->GetThreadAtIndex (thread_idx);
1802 return INVALID_NUB_THREAD;
1803}
1804
Jim Ingham279ceec2012-07-25 21:12:43 +00001805//----------------------------------------------------------------------
1806// Do whatever is needed to sync the thread's register state with it's kernel values.
1807//----------------------------------------------------------------------
1808nub_bool_t
1809DNBProcessSyncThreadState (nub_process_t pid, nub_thread_t tid)
1810{
1811 MachProcessSP procSP;
1812 if (GetProcessSP (pid, procSP))
1813 return procSP->SyncThreadState (tid);
1814 return false;
1815
1816}
1817
Chris Lattner30fdc8d2010-06-08 16:52:24 +00001818nub_addr_t
1819DNBProcessGetSharedLibraryInfoAddress (nub_process_t pid)
1820{
1821 MachProcessSP procSP;
1822 DNBError err;
1823 if (GetProcessSP (pid, procSP))
1824 return procSP->Task().GetDYLDAllImageInfosAddress (err);
1825 return INVALID_NUB_ADDRESS;
1826}
1827
1828
1829nub_bool_t
1830DNBProcessSharedLibrariesUpdated(nub_process_t pid)
1831{
1832 MachProcessSP procSP;
1833 if (GetProcessSP (pid, procSP))
1834 {
1835 procSP->SharedLibrariesUpdated ();
1836 return true;
1837 }
1838 return false;
1839}
1840
1841//----------------------------------------------------------------------
1842// Get the current shared library information for a process. Only return
1843// the shared libraries that have changed since the last shared library
1844// state changed event if only_changed is non-zero.
1845//----------------------------------------------------------------------
1846nub_size_t
1847DNBProcessGetSharedLibraryInfo (nub_process_t pid, nub_bool_t only_changed, struct DNBExecutableImageInfo **image_infos)
1848{
1849 MachProcessSP procSP;
1850 if (GetProcessSP (pid, procSP))
1851 return procSP->CopyImageInfos (image_infos, only_changed);
1852
1853 // If we have no process, then return NULL for the shared library info
1854 // and zero for shared library count
1855 *image_infos = NULL;
1856 return 0;
1857}
1858
1859//----------------------------------------------------------------------
1860// Get the register set information for a specific thread.
1861//----------------------------------------------------------------------
1862const DNBRegisterSetInfo *
1863DNBGetRegisterSetInfo (nub_size_t *num_reg_sets)
1864{
Greg Clayton3af9ea52010-11-18 05:57:03 +00001865 return DNBArchProtocol::GetRegisterSetInfo (num_reg_sets);
Chris Lattner30fdc8d2010-06-08 16:52:24 +00001866}
1867
1868
1869//----------------------------------------------------------------------
1870// Read a register value by register set and register index.
1871//----------------------------------------------------------------------
1872nub_bool_t
1873DNBThreadGetRegisterValueByID (nub_process_t pid, nub_thread_t tid, uint32_t set, uint32_t reg, DNBRegisterValue *value)
1874{
1875 MachProcessSP procSP;
1876 ::bzero (value, sizeof(DNBRegisterValue));
1877 if (GetProcessSP (pid, procSP))
1878 {
1879 if (tid != INVALID_NUB_THREAD)
1880 return procSP->GetRegisterValue (tid, set, reg, value);
1881 }
1882 return false;
1883}
1884
1885nub_bool_t
1886DNBThreadSetRegisterValueByID (nub_process_t pid, nub_thread_t tid, uint32_t set, uint32_t reg, const DNBRegisterValue *value)
1887{
1888 if (tid != INVALID_NUB_THREAD)
1889 {
1890 MachProcessSP procSP;
1891 if (GetProcessSP (pid, procSP))
1892 return procSP->SetRegisterValue (tid, set, reg, value);
1893 }
1894 return false;
1895}
1896
1897nub_size_t
1898DNBThreadGetRegisterContext (nub_process_t pid, nub_thread_t tid, void *buf, size_t buf_len)
1899{
1900 MachProcessSP procSP;
1901 if (GetProcessSP (pid, procSP))
1902 {
1903 if (tid != INVALID_NUB_THREAD)
1904 return procSP->GetThreadList().GetRegisterContext (tid, buf, buf_len);
1905 }
1906 ::bzero (buf, buf_len);
1907 return 0;
1908
1909}
1910
1911nub_size_t
1912DNBThreadSetRegisterContext (nub_process_t pid, nub_thread_t tid, const void *buf, size_t buf_len)
1913{
1914 MachProcessSP procSP;
1915 if (GetProcessSP (pid, procSP))
1916 {
1917 if (tid != INVALID_NUB_THREAD)
1918 return procSP->GetThreadList().SetRegisterContext (tid, buf, buf_len);
1919 }
1920 return 0;
1921}
1922
1923//----------------------------------------------------------------------
1924// Read a register value by name.
1925//----------------------------------------------------------------------
1926nub_bool_t
1927DNBThreadGetRegisterValueByName (nub_process_t pid, nub_thread_t tid, uint32_t reg_set, const char *reg_name, DNBRegisterValue *value)
1928{
1929 MachProcessSP procSP;
1930 ::bzero (value, sizeof(DNBRegisterValue));
1931 if (GetProcessSP (pid, procSP))
1932 {
1933 const struct DNBRegisterSetInfo *set_info;
1934 nub_size_t num_reg_sets = 0;
1935 set_info = DNBGetRegisterSetInfo (&num_reg_sets);
1936 if (set_info)
1937 {
1938 uint32_t set = reg_set;
1939 uint32_t reg;
1940 if (set == REGISTER_SET_ALL)
1941 {
1942 for (set = 1; set < num_reg_sets; ++set)
1943 {
1944 for (reg = 0; reg < set_info[set].num_registers; ++reg)
1945 {
1946 if (strcasecmp(reg_name, set_info[set].registers[reg].name) == 0)
1947 return procSP->GetRegisterValue (tid, set, reg, value);
1948 }
1949 }
1950 }
1951 else
1952 {
1953 for (reg = 0; reg < set_info[set].num_registers; ++reg)
1954 {
1955 if (strcasecmp(reg_name, set_info[set].registers[reg].name) == 0)
1956 return procSP->GetRegisterValue (tid, set, reg, value);
1957 }
1958 }
1959 }
1960 }
1961 return false;
1962}
1963
1964
1965//----------------------------------------------------------------------
1966// Read a register set and register number from the register name.
1967//----------------------------------------------------------------------
1968nub_bool_t
1969DNBGetRegisterInfoByName (const char *reg_name, DNBRegisterInfo* info)
1970{
1971 const struct DNBRegisterSetInfo *set_info;
1972 nub_size_t num_reg_sets = 0;
1973 set_info = DNBGetRegisterSetInfo (&num_reg_sets);
1974 if (set_info)
1975 {
1976 uint32_t set, reg;
1977 for (set = 1; set < num_reg_sets; ++set)
1978 {
1979 for (reg = 0; reg < set_info[set].num_registers; ++reg)
1980 {
1981 if (strcasecmp(reg_name, set_info[set].registers[reg].name) == 0)
1982 {
1983 *info = set_info[set].registers[reg];
1984 return true;
1985 }
1986 }
1987 }
1988
1989 for (set = 1; set < num_reg_sets; ++set)
1990 {
1991 uint32_t reg;
1992 for (reg = 0; reg < set_info[set].num_registers; ++reg)
1993 {
1994 if (set_info[set].registers[reg].alt == NULL)
1995 continue;
1996
1997 if (strcasecmp(reg_name, set_info[set].registers[reg].alt) == 0)
1998 {
1999 *info = set_info[set].registers[reg];
2000 return true;
2001 }
2002 }
2003 }
2004 }
2005
2006 ::bzero (info, sizeof(DNBRegisterInfo));
2007 return false;
2008}
2009
2010
2011//----------------------------------------------------------------------
2012// Set the name to address callback function that this nub can use
2013// for any name to address lookups that are needed.
2014//----------------------------------------------------------------------
2015nub_bool_t
2016DNBProcessSetNameToAddressCallback (nub_process_t pid, DNBCallbackNameToAddress callback, void *baton)
2017{
2018 MachProcessSP procSP;
2019 if (GetProcessSP (pid, procSP))
2020 {
2021 procSP->SetNameToAddressCallback (callback, baton);
2022 return true;
2023 }
2024 return false;
2025}
2026
2027
2028//----------------------------------------------------------------------
2029// Set the name to address callback function that this nub can use
2030// for any name to address lookups that are needed.
2031//----------------------------------------------------------------------
2032nub_bool_t
2033DNBProcessSetSharedLibraryInfoCallback (nub_process_t pid, DNBCallbackCopyExecutableImageInfos callback, void *baton)
2034{
2035 MachProcessSP procSP;
2036 if (GetProcessSP (pid, procSP))
2037 {
2038 procSP->SetSharedLibraryInfoCallback (callback, baton);
2039 return true;
2040 }
2041 return false;
2042}
2043
2044nub_addr_t
2045DNBProcessLookupAddress (nub_process_t pid, const char *name, const char *shlib)
2046{
2047 MachProcessSP procSP;
2048 if (GetProcessSP (pid, procSP))
2049 {
2050 return procSP->LookupSymbol (name, shlib);
2051 }
2052 return INVALID_NUB_ADDRESS;
2053}
2054
2055
2056nub_size_t
2057DNBProcessGetAvailableSTDOUT (nub_process_t pid, char *buf, nub_size_t buf_size)
2058{
2059 MachProcessSP procSP;
2060 if (GetProcessSP (pid, procSP))
2061 return procSP->GetAvailableSTDOUT (buf, buf_size);
2062 return 0;
2063}
2064
2065nub_size_t
2066DNBProcessGetAvailableSTDERR (nub_process_t pid, char *buf, nub_size_t buf_size)
2067{
2068 MachProcessSP procSP;
2069 if (GetProcessSP (pid, procSP))
2070 return procSP->GetAvailableSTDERR (buf, buf_size);
2071 return 0;
2072}
2073
2074nub_size_t
2075DNBProcessGetStopCount (nub_process_t pid)
2076{
2077 MachProcessSP procSP;
2078 if (GetProcessSP (pid, procSP))
2079 return procSP->StopCount();
2080 return 0;
2081}
2082
Greg Clayton71337622011-02-24 22:24:29 +00002083uint32_t
2084DNBProcessGetCPUType (nub_process_t pid)
2085{
2086 MachProcessSP procSP;
2087 if (GetProcessSP (pid, procSP))
2088 return procSP->GetCPUType ();
2089 return 0;
2090
2091}
2092
Chris Lattner30fdc8d2010-06-08 16:52:24 +00002093nub_bool_t
2094DNBResolveExecutablePath (const char *path, char *resolved_path, size_t resolved_path_size)
2095{
2096 if (path == NULL || path[0] == '\0')
2097 return false;
2098
2099 char max_path[PATH_MAX];
2100 std::string result;
2101 CFString::GlobPath(path, result);
2102
2103 if (result.empty())
2104 result = path;
Greg Clayton48baf7a2012-10-31 21:44:39 +00002105
2106 struct stat path_stat;
2107 if (::stat(path, &path_stat) == 0)
2108 {
2109 if ((path_stat.st_mode & S_IFMT) == S_IFDIR)
2110 {
2111 CFBundle bundle (path);
2112 CFReleaser<CFURLRef> url(bundle.CopyExecutableURL ());
2113 if (url.get())
2114 {
2115 if (::CFURLGetFileSystemRepresentation (url.get(), true, (UInt8*)resolved_path, resolved_path_size))
2116 return true;
2117 }
2118 }
2119 }
Chris Lattner30fdc8d2010-06-08 16:52:24 +00002120
2121 if (realpath(path, max_path))
2122 {
2123 // Found the path relatively...
2124 ::strncpy(resolved_path, max_path, resolved_path_size);
2125 return strlen(resolved_path) + 1 < resolved_path_size;
2126 }
2127 else
2128 {
2129 // Not a relative path, check the PATH environment variable if the
2130 const char *PATH = getenv("PATH");
2131 if (PATH)
2132 {
2133 const char *curr_path_start = PATH;
2134 const char *curr_path_end;
2135 while (curr_path_start && *curr_path_start)
2136 {
2137 curr_path_end = strchr(curr_path_start, ':');
2138 if (curr_path_end == NULL)
2139 {
2140 result.assign(curr_path_start);
2141 curr_path_start = NULL;
2142 }
2143 else if (curr_path_end > curr_path_start)
2144 {
2145 size_t len = curr_path_end - curr_path_start;
2146 result.assign(curr_path_start, len);
2147 curr_path_start += len + 1;
2148 }
2149 else
2150 break;
2151
2152 result += '/';
2153 result += path;
2154 struct stat s;
2155 if (stat(result.c_str(), &s) == 0)
2156 {
2157 ::strncpy(resolved_path, result.c_str(), resolved_path_size);
2158 return result.size() + 1 < resolved_path_size;
2159 }
2160 }
2161 }
2162 }
2163 return false;
2164}
2165
Greg Clayton3af9ea52010-11-18 05:57:03 +00002166
2167void
2168DNBInitialize()
2169{
2170 DNBLogThreadedIf (LOG_PROCESS, "DNBInitialize ()");
2171#if defined (__i386__) || defined (__x86_64__)
2172 DNBArchImplI386::Initialize();
2173 DNBArchImplX86_64::Initialize();
2174#elif defined (__arm__)
2175 DNBArchMachARM::Initialize();
2176#endif
2177}
2178
2179void
2180DNBTerminate()
2181{
2182}
Greg Clayton3c144382010-12-01 22:45:40 +00002183
2184nub_bool_t
2185DNBSetArchitecture (const char *arch)
2186{
2187 if (arch && arch[0])
2188 {
2189 if (strcasecmp (arch, "i386") == 0)
2190 return DNBArchProtocol::SetArchitecture (CPU_TYPE_I386);
2191 else if (strcasecmp (arch, "x86_64") == 0)
2192 return DNBArchProtocol::SetArchitecture (CPU_TYPE_X86_64);
2193 else if (strstr (arch, "arm") == arch)
2194 return DNBArchProtocol::SetArchitecture (CPU_TYPE_ARM);
2195 }
2196 return false;
2197}