blob: 22f355a7c89bc3e63d211aa4a1c13c72ab49e009 [file] [log] [blame]
Todd Fialaaf245d12014-06-30 21:05:18 +00001//===-- NativeProcessLinux.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#include "lldb/lldb-python.h"
11
12#include "NativeProcessLinux.h"
13
14// C Includes
15#include <errno.h>
16#include <poll.h>
17#include <string.h>
18#include <stdint.h>
19#include <unistd.h>
20#include <linux/unistd.h>
Todd Fiala0bce1b62014-08-17 00:10:50 +000021#include <sys/personality.h>
Todd Fialaaf245d12014-06-30 21:05:18 +000022#include <sys/ptrace.h>
Todd Fiala6ac1be42014-08-21 16:34:03 +000023#include <sys/uio.h>
Todd Fialaaf245d12014-06-30 21:05:18 +000024#include <sys/socket.h>
25#include <sys/syscall.h>
26#include <sys/types.h>
27#include <sys/user.h>
28#include <sys/wait.h>
29
Todd Fiala6ac1be42014-08-21 16:34:03 +000030#if defined (__arm64__) || defined (__aarch64__)
31// NT_PRSTATUS and NT_FPREGSET definition
32#include <elf.h>
33#endif
34
Todd Fialaaf245d12014-06-30 21:05:18 +000035// C++ Includes
36#include <fstream>
37#include <string>
38
39// Other libraries and framework includes
40#include "lldb/Core/Debugger.h"
41#include "lldb/Core/Error.h"
42#include "lldb/Core/Module.h"
43#include "lldb/Core/RegisterValue.h"
44#include "lldb/Core/Scalar.h"
45#include "lldb/Core/State.h"
46#include "lldb/Host/Host.h"
Zachary Turner13b18262014-08-20 16:42:51 +000047#include "lldb/Host/HostInfo.h"
Todd Fialaaf245d12014-06-30 21:05:18 +000048#include "lldb/Symbol/ObjectFile.h"
49#include "lldb/Target/NativeRegisterContext.h"
50#include "lldb/Target/ProcessLaunchInfo.h"
51#include "lldb/Utility/PseudoTerminal.h"
52
53#include "Host/common/NativeBreakpoint.h"
54#include "Utility/StringExtractor.h"
55
56#include "Plugins/Process/Utility/LinuxSignals.h"
57#include "NativeThreadLinux.h"
58#include "ProcFileReader.h"
59#include "ProcessPOSIXLog.h"
60
61#define DEBUG_PTRACE_MAXBYTES 20
62
63// Support ptrace extensions even when compiled without required kernel support
Todd Fialadda61942014-07-02 21:34:04 +000064#ifndef PT_GETREGS
Todd Fialaaf245d12014-06-30 21:05:18 +000065#ifndef PTRACE_GETREGS
Todd Fialadda61942014-07-02 21:34:04 +000066 #define PTRACE_GETREGS 12
Todd Fialaaf245d12014-06-30 21:05:18 +000067#endif
Todd Fialadda61942014-07-02 21:34:04 +000068#endif
69#ifndef PT_SETREGS
Todd Fialaaf245d12014-06-30 21:05:18 +000070#ifndef PTRACE_SETREGS
71 #define PTRACE_SETREGS 13
72#endif
Todd Fialadda61942014-07-02 21:34:04 +000073#endif
74#ifndef PT_GETFPREGS
75#ifndef PTRACE_GETFPREGS
76 #define PTRACE_GETFPREGS 14
77#endif
78#endif
79#ifndef PT_SETFPREGS
80#ifndef PTRACE_SETFPREGS
81 #define PTRACE_SETFPREGS 15
82#endif
83#endif
Todd Fialaaf245d12014-06-30 21:05:18 +000084#ifndef PTRACE_GETREGSET
85 #define PTRACE_GETREGSET 0x4204
86#endif
87#ifndef PTRACE_SETREGSET
88 #define PTRACE_SETREGSET 0x4205
89#endif
90#ifndef PTRACE_GET_THREAD_AREA
91 #define PTRACE_GET_THREAD_AREA 25
92#endif
93#ifndef PTRACE_ARCH_PRCTL
94 #define PTRACE_ARCH_PRCTL 30
95#endif
96#ifndef ARCH_GET_FS
97 #define ARCH_SET_GS 0x1001
98 #define ARCH_SET_FS 0x1002
99 #define ARCH_GET_FS 0x1003
100 #define ARCH_GET_GS 0x1004
101#endif
102
Todd Fiala0bce1b62014-08-17 00:10:50 +0000103#define LLDB_PERSONALITY_GET_CURRENT_SETTINGS 0xffffffff
Todd Fialaaf245d12014-06-30 21:05:18 +0000104
105// Support hardware breakpoints in case it has not been defined
106#ifndef TRAP_HWBKPT
107 #define TRAP_HWBKPT 4
108#endif
109
110// Try to define a macro to encapsulate the tgkill syscall
111// fall back on kill() if tgkill isn't available
112#define tgkill(pid, tid, sig) syscall(SYS_tgkill, pid, tid, sig)
113
114// We disable the tracing of ptrace calls for integration builds to
115// avoid the additional indirection and checks.
116#ifndef LLDB_CONFIGURATION_BUILDANDINTEGRATION
117#define PTRACE(req, pid, addr, data, data_size) \
118 PtraceWrapper((req), (pid), (addr), (data), (data_size), #req, __FILE__, __LINE__)
119#else
120#define PTRACE(req, pid, addr, data, data_size) \
121 PtraceWrapper((req), (pid), (addr), (data), (data_size))
122#endif
123
124// Private bits we only need internally.
125namespace
126{
127 using namespace lldb;
128 using namespace lldb_private;
129
130 const UnixSignals&
131 GetUnixSignals ()
132 {
133 static process_linux::LinuxSignals signals;
134 return signals;
135 }
136
137 const char *
Zachary Turnerc00cf4a2014-08-15 22:04:21 +0000138 GetFilePath(const lldb_private::FileAction *file_action, const char *default_path)
Todd Fialaaf245d12014-06-30 21:05:18 +0000139 {
140 const char *pts_name = "/dev/pts/";
141 const char *path = NULL;
142
143 if (file_action)
144 {
Zachary Turnerc00cf4a2014-08-15 22:04:21 +0000145 if (file_action->GetAction() == FileAction::eFileActionOpen)
Todd Fialaaf245d12014-06-30 21:05:18 +0000146 {
147 path = file_action->GetPath ();
148 // By default the stdio paths passed in will be pseudo-terminal
149 // (/dev/pts). If so, convert to using a different default path
150 // instead to redirect I/O to the debugger console. This should
151 // also handle user overrides to /dev/null or a different file.
152 if (!path || ::strncmp (path, pts_name, ::strlen (pts_name)) == 0)
153 path = default_path;
154 }
155 }
156
157 return path;
158 }
159
160 Error
161 ResolveProcessArchitecture (lldb::pid_t pid, Platform &platform, ArchSpec &arch)
162 {
163 // Grab process info for the running process.
164 ProcessInstanceInfo process_info;
165 if (!platform.GetProcessInfo (pid, process_info))
166 return lldb_private::Error("failed to get process info");
167
168 // Resolve the executable module.
169 ModuleSP exe_module_sp;
170 FileSpecList executable_search_paths (Target::GetDefaultExecutableSearchPaths ());
171 Error error = platform.ResolveExecutable(
172 process_info.GetExecutableFile (),
173 platform.GetSystemArchitecture (),
174 exe_module_sp,
175 executable_search_paths.GetSize () ? &executable_search_paths : NULL);
176
177 if (!error.Success ())
178 return error;
179
180 // Check if we've got our architecture from the exe_module.
181 arch = exe_module_sp->GetArchitecture ();
182 if (arch.IsValid ())
183 return Error();
184 else
185 return Error("failed to retrieve a valid architecture from the exe module");
186 }
187
188 void
189 DisplayBytes (lldb_private::StreamString &s, void *bytes, uint32_t count)
190 {
191 uint8_t *ptr = (uint8_t *)bytes;
192 const uint32_t loop_count = std::min<uint32_t>(DEBUG_PTRACE_MAXBYTES, count);
193 for(uint32_t i=0; i<loop_count; i++)
194 {
195 s.Printf ("[%x]", *ptr);
196 ptr++;
197 }
198 }
199
200 void
201 PtraceDisplayBytes(int &req, void *data, size_t data_size)
202 {
203 StreamString buf;
204 Log *verbose_log (ProcessPOSIXLog::GetLogIfAllCategoriesSet (
205 POSIX_LOG_PTRACE | POSIX_LOG_VERBOSE));
206
207 if (verbose_log)
208 {
209 switch(req)
210 {
211 case PTRACE_POKETEXT:
212 {
213 DisplayBytes(buf, &data, 8);
214 verbose_log->Printf("PTRACE_POKETEXT %s", buf.GetData());
215 break;
216 }
217 case PTRACE_POKEDATA:
218 {
219 DisplayBytes(buf, &data, 8);
220 verbose_log->Printf("PTRACE_POKEDATA %s", buf.GetData());
221 break;
222 }
223 case PTRACE_POKEUSER:
224 {
225 DisplayBytes(buf, &data, 8);
226 verbose_log->Printf("PTRACE_POKEUSER %s", buf.GetData());
227 break;
228 }
229 case PTRACE_SETREGS:
230 {
231 DisplayBytes(buf, data, data_size);
232 verbose_log->Printf("PTRACE_SETREGS %s", buf.GetData());
233 break;
234 }
235 case PTRACE_SETFPREGS:
236 {
237 DisplayBytes(buf, data, data_size);
238 verbose_log->Printf("PTRACE_SETFPREGS %s", buf.GetData());
239 break;
240 }
241 case PTRACE_SETSIGINFO:
242 {
243 DisplayBytes(buf, data, sizeof(siginfo_t));
244 verbose_log->Printf("PTRACE_SETSIGINFO %s", buf.GetData());
245 break;
246 }
247 case PTRACE_SETREGSET:
248 {
249 // Extract iov_base from data, which is a pointer to the struct IOVEC
250 DisplayBytes(buf, *(void **)data, data_size);
251 verbose_log->Printf("PTRACE_SETREGSET %s", buf.GetData());
252 break;
253 }
254 default:
255 {
256 }
257 }
258 }
259 }
260
261 // Wrapper for ptrace to catch errors and log calls.
262 // Note that ptrace sets errno on error because -1 can be a valid result (i.e. for PTRACE_PEEK*)
263 long
264 PtraceWrapper(int req, lldb::pid_t pid, void *addr, void *data, size_t data_size,
265 const char* reqName, const char* file, int line)
266 {
267 long int result;
268
269 Log *log (ProcessPOSIXLog::GetLogIfAllCategoriesSet (POSIX_LOG_PTRACE));
270
271 PtraceDisplayBytes(req, data, data_size);
272
273 errno = 0;
274 if (req == PTRACE_GETREGSET || req == PTRACE_SETREGSET)
Todd Fiala202ecd22014-07-10 04:39:13 +0000275 result = ptrace(static_cast<__ptrace_request>(req), static_cast< ::pid_t>(pid), *(unsigned int *)addr, data);
Todd Fialaaf245d12014-06-30 21:05:18 +0000276 else
Todd Fiala202ecd22014-07-10 04:39:13 +0000277 result = ptrace(static_cast<__ptrace_request>(req), static_cast< ::pid_t>(pid), addr, data);
Todd Fialaaf245d12014-06-30 21:05:18 +0000278
279 if (log)
280 log->Printf("ptrace(%s, %" PRIu64 ", %p, %p, %zu)=%lX called from file %s line %d",
281 reqName, pid, addr, data, data_size, result, file, line);
282
283 PtraceDisplayBytes(req, data, data_size);
284
285 if (log && errno != 0)
286 {
287 const char* str;
288 switch (errno)
289 {
290 case ESRCH: str = "ESRCH"; break;
291 case EINVAL: str = "EINVAL"; break;
292 case EBUSY: str = "EBUSY"; break;
293 case EPERM: str = "EPERM"; break;
294 default: str = "<unknown>";
295 }
296 log->Printf("ptrace() failed; errno=%d (%s)", errno, str);
297 }
298
299 return result;
300 }
301
302#ifdef LLDB_CONFIGURATION_BUILDANDINTEGRATION
303 // Wrapper for ptrace when logging is not required.
304 // Sets errno to 0 prior to calling ptrace.
305 long
306 PtraceWrapper(int req, lldb::pid_t pid, void *addr, void *data, size_t data_size)
307 {
308 long result = 0;
309 errno = 0;
310 if (req == PTRACE_GETREGSET || req == PTRACE_SETREGSET)
Todd Fiala202ecd22014-07-10 04:39:13 +0000311 result = ptrace(static_cast<__ptrace_request>(req), static_cast< ::pid_t>(pid), *(unsigned int *)addr, data);
Todd Fialaaf245d12014-06-30 21:05:18 +0000312 else
Todd Fiala202ecd22014-07-10 04:39:13 +0000313 result = ptrace(static_cast<__ptrace_request>(req), static_cast< ::pid_t>(pid), addr, data);
Todd Fialaaf245d12014-06-30 21:05:18 +0000314 return result;
315 }
316#endif
317
318 //------------------------------------------------------------------------------
319 // Static implementations of NativeProcessLinux::ReadMemory and
320 // NativeProcessLinux::WriteMemory. This enables mutual recursion between these
321 // functions without needed to go thru the thread funnel.
322
323 static lldb::addr_t
324 DoReadMemory (
325 lldb::pid_t pid,
326 lldb::addr_t vm_addr,
327 void *buf,
328 lldb::addr_t size,
329 Error &error)
330 {
331 // ptrace word size is determined by the host, not the child
332 static const unsigned word_size = sizeof(void*);
333 unsigned char *dst = static_cast<unsigned char*>(buf);
334 lldb::addr_t bytes_read;
335 lldb::addr_t remainder;
336 long data;
337
338 Log *log (ProcessPOSIXLog::GetLogIfAllCategoriesSet (POSIX_LOG_ALL));
339 if (log)
340 ProcessPOSIXLog::IncNestLevel();
341 if (log && ProcessPOSIXLog::AtTopNestLevel() && log->GetMask().Test(POSIX_LOG_MEMORY))
342 log->Printf ("NativeProcessLinux::%s(%" PRIu64 ", %d, %p, %p, %zd, _)", __FUNCTION__,
343 pid, word_size, (void*)vm_addr, buf, size);
344
345 assert(sizeof(data) >= word_size);
346 for (bytes_read = 0; bytes_read < size; bytes_read += remainder)
347 {
348 errno = 0;
349 data = PTRACE(PTRACE_PEEKDATA, pid, (void*)vm_addr, NULL, 0);
350 if (errno)
351 {
352 error.SetErrorToErrno();
353 if (log)
354 ProcessPOSIXLog::DecNestLevel();
355 return bytes_read;
356 }
357
358 remainder = size - bytes_read;
359 remainder = remainder > word_size ? word_size : remainder;
360
361 // Copy the data into our buffer
362 for (unsigned i = 0; i < remainder; ++i)
363 dst[i] = ((data >> i*8) & 0xFF);
364
365 if (log && ProcessPOSIXLog::AtTopNestLevel() &&
366 (log->GetMask().Test(POSIX_LOG_MEMORY_DATA_LONG) ||
367 (log->GetMask().Test(POSIX_LOG_MEMORY_DATA_SHORT) &&
368 size <= POSIX_LOG_MEMORY_SHORT_BYTES)))
369 {
370 uintptr_t print_dst = 0;
371 // Format bytes from data by moving into print_dst for log output
372 for (unsigned i = 0; i < remainder; ++i)
373 print_dst |= (((data >> i*8) & 0xFF) << i*8);
374 log->Printf ("NativeProcessLinux::%s() [%p]:0x%lx (0x%lx)", __FUNCTION__,
375 (void*)vm_addr, print_dst, (unsigned long)data);
376 }
377
378 vm_addr += word_size;
379 dst += word_size;
380 }
381
382 if (log)
383 ProcessPOSIXLog::DecNestLevel();
384 return bytes_read;
385 }
386
387 static lldb::addr_t
388 DoWriteMemory(
389 lldb::pid_t pid,
390 lldb::addr_t vm_addr,
391 const void *buf,
392 lldb::addr_t size,
393 Error &error)
394 {
395 // ptrace word size is determined by the host, not the child
396 static const unsigned word_size = sizeof(void*);
397 const unsigned char *src = static_cast<const unsigned char*>(buf);
398 lldb::addr_t bytes_written = 0;
399 lldb::addr_t remainder;
400
401 Log *log (ProcessPOSIXLog::GetLogIfAllCategoriesSet (POSIX_LOG_ALL));
402 if (log)
403 ProcessPOSIXLog::IncNestLevel();
404 if (log && ProcessPOSIXLog::AtTopNestLevel() && log->GetMask().Test(POSIX_LOG_MEMORY))
405 log->Printf ("NativeProcessLinux::%s(%" PRIu64 ", %u, %p, %p, %" PRIu64 ")", __FUNCTION__,
406 pid, word_size, (void*)vm_addr, buf, size);
407
408 for (bytes_written = 0; bytes_written < size; bytes_written += remainder)
409 {
410 remainder = size - bytes_written;
411 remainder = remainder > word_size ? word_size : remainder;
412
413 if (remainder == word_size)
414 {
415 unsigned long data = 0;
416 assert(sizeof(data) >= word_size);
417 for (unsigned i = 0; i < word_size; ++i)
418 data |= (unsigned long)src[i] << i*8;
419
420 if (log && ProcessPOSIXLog::AtTopNestLevel() &&
421 (log->GetMask().Test(POSIX_LOG_MEMORY_DATA_LONG) ||
422 (log->GetMask().Test(POSIX_LOG_MEMORY_DATA_SHORT) &&
423 size <= POSIX_LOG_MEMORY_SHORT_BYTES)))
424 log->Printf ("NativeProcessLinux::%s() [%p]:0x%lx (0x%lx)", __FUNCTION__,
425 (void*)vm_addr, *(unsigned long*)src, data);
426
427 if (PTRACE(PTRACE_POKEDATA, pid, (void*)vm_addr, (void*)data, 0))
428 {
429 error.SetErrorToErrno();
430 if (log)
431 ProcessPOSIXLog::DecNestLevel();
432 return bytes_written;
433 }
434 }
435 else
436 {
437 unsigned char buff[8];
438 if (DoReadMemory(pid, vm_addr,
439 buff, word_size, error) != word_size)
440 {
441 if (log)
442 ProcessPOSIXLog::DecNestLevel();
443 return bytes_written;
444 }
445
446 memcpy(buff, src, remainder);
447
448 if (DoWriteMemory(pid, vm_addr,
449 buff, word_size, error) != word_size)
450 {
451 if (log)
452 ProcessPOSIXLog::DecNestLevel();
453 return bytes_written;
454 }
455
456 if (log && ProcessPOSIXLog::AtTopNestLevel() &&
457 (log->GetMask().Test(POSIX_LOG_MEMORY_DATA_LONG) ||
458 (log->GetMask().Test(POSIX_LOG_MEMORY_DATA_SHORT) &&
459 size <= POSIX_LOG_MEMORY_SHORT_BYTES)))
460 log->Printf ("NativeProcessLinux::%s() [%p]:0x%lx (0x%lx)", __FUNCTION__,
461 (void*)vm_addr, *(unsigned long*)src, *(unsigned long*)buff);
462 }
463
464 vm_addr += word_size;
465 src += word_size;
466 }
467 if (log)
468 ProcessPOSIXLog::DecNestLevel();
469 return bytes_written;
470 }
471
472 //------------------------------------------------------------------------------
473 /// @class Operation
474 /// @brief Represents a NativeProcessLinux operation.
475 ///
476 /// Under Linux, it is not possible to ptrace() from any other thread but the
477 /// one that spawned or attached to the process from the start. Therefore, when
478 /// a NativeProcessLinux is asked to deliver or change the state of an inferior
479 /// process the operation must be "funneled" to a specific thread to perform the
480 /// task. The Operation class provides an abstract base for all services the
481 /// NativeProcessLinux must perform via the single virtual function Execute, thus
482 /// encapsulating the code that needs to run in the privileged context.
483 class Operation
484 {
485 public:
486 Operation () : m_error() { }
487
488 virtual
489 ~Operation() {}
490
491 virtual void
492 Execute (NativeProcessLinux *process) = 0;
493
494 const Error &
495 GetError () const { return m_error; }
496
497 protected:
498 Error m_error;
499 };
500
501 //------------------------------------------------------------------------------
502 /// @class ReadOperation
503 /// @brief Implements NativeProcessLinux::ReadMemory.
504 class ReadOperation : public Operation
505 {
506 public:
507 ReadOperation (
508 lldb::addr_t addr,
509 void *buff,
510 lldb::addr_t size,
Todd Fialab35103e2014-07-10 05:25:39 +0000511 lldb::addr_t &result) :
Todd Fialaaf245d12014-06-30 21:05:18 +0000512 Operation (),
513 m_addr (addr),
514 m_buff (buff),
515 m_size (size),
516 m_result (result)
517 {
518 }
519
520 void Execute (NativeProcessLinux *process) override;
521
522 private:
523 lldb::addr_t m_addr;
524 void *m_buff;
525 lldb::addr_t m_size;
526 lldb::addr_t &m_result;
527 };
528
529 void
530 ReadOperation::Execute (NativeProcessLinux *process)
531 {
532 m_result = DoReadMemory (process->GetID (), m_addr, m_buff, m_size, m_error);
533 }
534
535 //------------------------------------------------------------------------------
536 /// @class WriteOperation
537 /// @brief Implements NativeProcessLinux::WriteMemory.
538 class WriteOperation : public Operation
539 {
540 public:
541 WriteOperation (
542 lldb::addr_t addr,
543 const void *buff,
544 lldb::addr_t size,
545 lldb::addr_t &result) :
546 Operation (),
547 m_addr (addr),
548 m_buff (buff),
549 m_size (size),
550 m_result (result)
551 {
552 }
553
554 void Execute (NativeProcessLinux *process) override;
555
556 private:
557 lldb::addr_t m_addr;
558 const void *m_buff;
559 lldb::addr_t m_size;
560 lldb::addr_t &m_result;
561 };
562
563 void
564 WriteOperation::Execute(NativeProcessLinux *process)
565 {
566 m_result = DoWriteMemory (process->GetID (), m_addr, m_buff, m_size, m_error);
567 }
568
569 //------------------------------------------------------------------------------
570 /// @class ReadRegOperation
571 /// @brief Implements NativeProcessLinux::ReadRegisterValue.
572 class ReadRegOperation : public Operation
573 {
574 public:
575 ReadRegOperation(lldb::tid_t tid, uint32_t offset, const char *reg_name,
576 RegisterValue &value, bool &result)
577 : m_tid(tid), m_offset(static_cast<uintptr_t> (offset)), m_reg_name(reg_name),
578 m_value(value), m_result(result)
579 { }
580
581 void Execute(NativeProcessLinux *monitor);
582
583 private:
584 lldb::tid_t m_tid;
585 uintptr_t m_offset;
586 const char *m_reg_name;
587 RegisterValue &m_value;
588 bool &m_result;
589 };
590
591 void
592 ReadRegOperation::Execute(NativeProcessLinux *monitor)
593 {
594 Log *log (ProcessPOSIXLog::GetLogIfAllCategoriesSet (POSIX_LOG_REGISTERS));
595
596 // Set errno to zero so that we can detect a failed peek.
597 errno = 0;
598 lldb::addr_t data = PTRACE(PTRACE_PEEKUSER, m_tid, (void*)m_offset, NULL, 0);
599 if (errno)
600 m_result = false;
601 else
602 {
603 m_value = data;
604 m_result = true;
605 }
606 if (log)
607 log->Printf ("NativeProcessLinux::%s() reg %s: 0x%" PRIx64, __FUNCTION__,
608 m_reg_name, data);
609 }
610
611 //------------------------------------------------------------------------------
612 /// @class WriteRegOperation
613 /// @brief Implements NativeProcessLinux::WriteRegisterValue.
614 class WriteRegOperation : public Operation
615 {
616 public:
617 WriteRegOperation(lldb::tid_t tid, unsigned offset, const char *reg_name,
618 const RegisterValue &value, bool &result)
619 : m_tid(tid), m_offset(offset), m_reg_name(reg_name),
620 m_value(value), m_result(result)
621 { }
622
623 void Execute(NativeProcessLinux *monitor);
624
625 private:
626 lldb::tid_t m_tid;
627 uintptr_t m_offset;
628 const char *m_reg_name;
629 const RegisterValue &m_value;
630 bool &m_result;
631 };
632
633 void
634 WriteRegOperation::Execute(NativeProcessLinux *monitor)
635 {
636 void* buf;
637 Log *log (ProcessPOSIXLog::GetLogIfAllCategoriesSet (POSIX_LOG_REGISTERS));
638
639 buf = (void*) m_value.GetAsUInt64();
640
641 if (log)
642 log->Printf ("NativeProcessLinux::%s() reg %s: %p", __FUNCTION__, m_reg_name, buf);
643 if (PTRACE(PTRACE_POKEUSER, m_tid, (void*)m_offset, buf, 0))
644 m_result = false;
645 else
646 m_result = true;
647 }
648
649 //------------------------------------------------------------------------------
650 /// @class ReadGPROperation
651 /// @brief Implements NativeProcessLinux::ReadGPR.
652 class ReadGPROperation : public Operation
653 {
654 public:
655 ReadGPROperation(lldb::tid_t tid, void *buf, size_t buf_size, bool &result)
656 : m_tid(tid), m_buf(buf), m_buf_size(buf_size), m_result(result)
657 { }
658
659 void Execute(NativeProcessLinux *monitor);
660
661 private:
662 lldb::tid_t m_tid;
663 void *m_buf;
664 size_t m_buf_size;
665 bool &m_result;
666 };
667
668 void
669 ReadGPROperation::Execute(NativeProcessLinux *monitor)
670 {
Todd Fiala6ac1be42014-08-21 16:34:03 +0000671#if defined (__arm64__) || defined (__aarch64__)
672 int regset = NT_PRSTATUS;
673 struct iovec ioVec;
674
675 ioVec.iov_base = m_buf;
676 ioVec.iov_len = m_buf_size;
677 if (PTRACE(PTRACE_GETREGSET, m_tid, &regset, &ioVec, m_buf_size) < 0)
678 m_result = false;
679 else
680 m_result = true;
681#else
Todd Fialaaf245d12014-06-30 21:05:18 +0000682 if (PTRACE(PTRACE_GETREGS, m_tid, NULL, m_buf, m_buf_size) < 0)
683 m_result = false;
684 else
685 m_result = true;
Todd Fiala6ac1be42014-08-21 16:34:03 +0000686#endif
Todd Fialaaf245d12014-06-30 21:05:18 +0000687 }
688
689 //------------------------------------------------------------------------------
690 /// @class ReadFPROperation
691 /// @brief Implements NativeProcessLinux::ReadFPR.
692 class ReadFPROperation : public Operation
693 {
694 public:
695 ReadFPROperation(lldb::tid_t tid, void *buf, size_t buf_size, bool &result)
696 : m_tid(tid), m_buf(buf), m_buf_size(buf_size), m_result(result)
697 { }
698
699 void Execute(NativeProcessLinux *monitor);
700
701 private:
702 lldb::tid_t m_tid;
703 void *m_buf;
704 size_t m_buf_size;
705 bool &m_result;
706 };
707
708 void
709 ReadFPROperation::Execute(NativeProcessLinux *monitor)
710 {
Todd Fiala6ac1be42014-08-21 16:34:03 +0000711#if defined (__arm64__) || defined (__aarch64__)
712 int regset = NT_FPREGSET;
713 struct iovec ioVec;
714
715 ioVec.iov_base = m_buf;
716 ioVec.iov_len = m_buf_size;
717 if (PTRACE(PTRACE_GETREGSET, m_tid, &regset, &ioVec, m_buf_size) < 0)
718 m_result = false;
719 else
720 m_result = true;
721#else
Todd Fialaaf245d12014-06-30 21:05:18 +0000722 if (PTRACE(PTRACE_GETFPREGS, m_tid, NULL, m_buf, m_buf_size) < 0)
723 m_result = false;
724 else
725 m_result = true;
Todd Fiala6ac1be42014-08-21 16:34:03 +0000726#endif
Todd Fialaaf245d12014-06-30 21:05:18 +0000727 }
728
729 //------------------------------------------------------------------------------
730 /// @class ReadRegisterSetOperation
731 /// @brief Implements NativeProcessLinux::ReadRegisterSet.
732 class ReadRegisterSetOperation : public Operation
733 {
734 public:
735 ReadRegisterSetOperation(lldb::tid_t tid, void *buf, size_t buf_size, unsigned int regset, bool &result)
736 : m_tid(tid), m_buf(buf), m_buf_size(buf_size), m_regset(regset), m_result(result)
737 { }
738
739 void Execute(NativeProcessLinux *monitor);
740
741 private:
742 lldb::tid_t m_tid;
743 void *m_buf;
744 size_t m_buf_size;
745 const unsigned int m_regset;
746 bool &m_result;
747 };
748
749 void
750 ReadRegisterSetOperation::Execute(NativeProcessLinux *monitor)
751 {
752 if (PTRACE(PTRACE_GETREGSET, m_tid, (void *)&m_regset, m_buf, m_buf_size) < 0)
753 m_result = false;
754 else
755 m_result = true;
756 }
757
758 //------------------------------------------------------------------------------
759 /// @class WriteGPROperation
760 /// @brief Implements NativeProcessLinux::WriteGPR.
761 class WriteGPROperation : public Operation
762 {
763 public:
764 WriteGPROperation(lldb::tid_t tid, void *buf, size_t buf_size, bool &result)
765 : m_tid(tid), m_buf(buf), m_buf_size(buf_size), m_result(result)
766 { }
767
768 void Execute(NativeProcessLinux *monitor);
769
770 private:
771 lldb::tid_t m_tid;
772 void *m_buf;
773 size_t m_buf_size;
774 bool &m_result;
775 };
776
777 void
778 WriteGPROperation::Execute(NativeProcessLinux *monitor)
779 {
Todd Fiala6ac1be42014-08-21 16:34:03 +0000780#if defined (__arm64__) || defined (__aarch64__)
781 int regset = NT_PRSTATUS;
782 struct iovec ioVec;
783
784 ioVec.iov_base = m_buf;
785 ioVec.iov_len = m_buf_size;
786 if (PTRACE(PTRACE_SETREGSET, m_tid, &regset, &ioVec, m_buf_size) < 0)
787 m_result = false;
788 else
789 m_result = true;
790#else
Todd Fialaaf245d12014-06-30 21:05:18 +0000791 if (PTRACE(PTRACE_SETREGS, m_tid, NULL, m_buf, m_buf_size) < 0)
792 m_result = false;
793 else
794 m_result = true;
Todd Fiala6ac1be42014-08-21 16:34:03 +0000795#endif
Todd Fialaaf245d12014-06-30 21:05:18 +0000796 }
797
798 //------------------------------------------------------------------------------
799 /// @class WriteFPROperation
800 /// @brief Implements NativeProcessLinux::WriteFPR.
801 class WriteFPROperation : public Operation
802 {
803 public:
804 WriteFPROperation(lldb::tid_t tid, void *buf, size_t buf_size, bool &result)
805 : m_tid(tid), m_buf(buf), m_buf_size(buf_size), m_result(result)
806 { }
807
808 void Execute(NativeProcessLinux *monitor);
809
810 private:
811 lldb::tid_t m_tid;
812 void *m_buf;
813 size_t m_buf_size;
814 bool &m_result;
815 };
816
817 void
818 WriteFPROperation::Execute(NativeProcessLinux *monitor)
819 {
Todd Fiala6ac1be42014-08-21 16:34:03 +0000820#if defined (__arm64__) || defined (__aarch64__)
821 int regset = NT_FPREGSET;
822 struct iovec ioVec;
823
824 ioVec.iov_base = m_buf;
825 ioVec.iov_len = m_buf_size;
826 if (PTRACE(PTRACE_SETREGSET, m_tid, &regset, &ioVec, m_buf_size) < 0)
827 m_result = false;
828 else
829 m_result = true;
830#else
Todd Fialaaf245d12014-06-30 21:05:18 +0000831 if (PTRACE(PTRACE_SETFPREGS, m_tid, NULL, m_buf, m_buf_size) < 0)
832 m_result = false;
833 else
834 m_result = true;
Todd Fiala6ac1be42014-08-21 16:34:03 +0000835#endif
Todd Fialaaf245d12014-06-30 21:05:18 +0000836 }
837
838 //------------------------------------------------------------------------------
839 /// @class WriteRegisterSetOperation
840 /// @brief Implements NativeProcessLinux::WriteRegisterSet.
841 class WriteRegisterSetOperation : public Operation
842 {
843 public:
844 WriteRegisterSetOperation(lldb::tid_t tid, void *buf, size_t buf_size, unsigned int regset, bool &result)
845 : m_tid(tid), m_buf(buf), m_buf_size(buf_size), m_regset(regset), m_result(result)
846 { }
847
848 void Execute(NativeProcessLinux *monitor);
849
850 private:
851 lldb::tid_t m_tid;
852 void *m_buf;
853 size_t m_buf_size;
854 const unsigned int m_regset;
855 bool &m_result;
856 };
857
858 void
859 WriteRegisterSetOperation::Execute(NativeProcessLinux *monitor)
860 {
861 if (PTRACE(PTRACE_SETREGSET, m_tid, (void *)&m_regset, m_buf, m_buf_size) < 0)
862 m_result = false;
863 else
864 m_result = true;
865 }
866
867 //------------------------------------------------------------------------------
868 /// @class ResumeOperation
869 /// @brief Implements NativeProcessLinux::Resume.
870 class ResumeOperation : public Operation
871 {
872 public:
873 ResumeOperation(lldb::tid_t tid, uint32_t signo, bool &result) :
874 m_tid(tid), m_signo(signo), m_result(result) { }
875
876 void Execute(NativeProcessLinux *monitor);
877
878 private:
879 lldb::tid_t m_tid;
880 uint32_t m_signo;
881 bool &m_result;
882 };
883
884 void
885 ResumeOperation::Execute(NativeProcessLinux *monitor)
886 {
887 intptr_t data = 0;
888
889 if (m_signo != LLDB_INVALID_SIGNAL_NUMBER)
890 data = m_signo;
891
892 if (PTRACE(PTRACE_CONT, m_tid, NULL, (void*)data, 0))
893 {
894 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_PROCESS));
895
896 if (log)
897 log->Printf ("ResumeOperation (%" PRIu64 ") failed: %s", m_tid, strerror(errno));
898 m_result = false;
899 }
900 else
901 m_result = true;
902 }
903
904 //------------------------------------------------------------------------------
905 /// @class SingleStepOperation
906 /// @brief Implements NativeProcessLinux::SingleStep.
907 class SingleStepOperation : public Operation
908 {
909 public:
910 SingleStepOperation(lldb::tid_t tid, uint32_t signo, bool &result)
911 : m_tid(tid), m_signo(signo), m_result(result) { }
912
913 void Execute(NativeProcessLinux *monitor);
914
915 private:
916 lldb::tid_t m_tid;
917 uint32_t m_signo;
918 bool &m_result;
919 };
920
921 void
922 SingleStepOperation::Execute(NativeProcessLinux *monitor)
923 {
924 intptr_t data = 0;
925
926 if (m_signo != LLDB_INVALID_SIGNAL_NUMBER)
927 data = m_signo;
928
929 if (PTRACE(PTRACE_SINGLESTEP, m_tid, NULL, (void*)data, 0))
930 m_result = false;
931 else
932 m_result = true;
933 }
934
935 //------------------------------------------------------------------------------
936 /// @class SiginfoOperation
937 /// @brief Implements NativeProcessLinux::GetSignalInfo.
938 class SiginfoOperation : public Operation
939 {
940 public:
941 SiginfoOperation(lldb::tid_t tid, void *info, bool &result, int &ptrace_err)
942 : m_tid(tid), m_info(info), m_result(result), m_err(ptrace_err) { }
943
944 void Execute(NativeProcessLinux *monitor);
945
946 private:
947 lldb::tid_t m_tid;
948 void *m_info;
949 bool &m_result;
950 int &m_err;
951 };
952
953 void
954 SiginfoOperation::Execute(NativeProcessLinux *monitor)
955 {
956 if (PTRACE(PTRACE_GETSIGINFO, m_tid, NULL, m_info, 0)) {
957 m_result = false;
958 m_err = errno;
959 }
960 else
961 m_result = true;
962 }
963
964 //------------------------------------------------------------------------------
965 /// @class EventMessageOperation
966 /// @brief Implements NativeProcessLinux::GetEventMessage.
967 class EventMessageOperation : public Operation
968 {
969 public:
970 EventMessageOperation(lldb::tid_t tid, unsigned long *message, bool &result)
971 : m_tid(tid), m_message(message), m_result(result) { }
972
973 void Execute(NativeProcessLinux *monitor);
974
975 private:
976 lldb::tid_t m_tid;
977 unsigned long *m_message;
978 bool &m_result;
979 };
980
981 void
982 EventMessageOperation::Execute(NativeProcessLinux *monitor)
983 {
984 if (PTRACE(PTRACE_GETEVENTMSG, m_tid, NULL, m_message, 0))
985 m_result = false;
986 else
987 m_result = true;
988 }
989
990 class DetachOperation : public Operation
991 {
992 public:
993 DetachOperation(lldb::tid_t tid, Error &result) : m_tid(tid), m_error(result) { }
994
995 void Execute(NativeProcessLinux *monitor);
996
997 private:
998 lldb::tid_t m_tid;
999 Error &m_error;
1000 };
1001
1002 void
1003 DetachOperation::Execute(NativeProcessLinux *monitor)
1004 {
1005 if (ptrace(PT_DETACH, m_tid, NULL, 0) < 0)
1006 m_error.SetErrorToErrno();
1007 }
1008
1009}
1010
1011using namespace lldb_private;
1012
1013// Simple helper function to ensure flags are enabled on the given file
1014// descriptor.
1015static bool
1016EnsureFDFlags(int fd, int flags, Error &error)
1017{
1018 int status;
1019
1020 if ((status = fcntl(fd, F_GETFL)) == -1)
1021 {
1022 error.SetErrorToErrno();
1023 return false;
1024 }
1025
1026 if (fcntl(fd, F_SETFL, status | flags) == -1)
1027 {
1028 error.SetErrorToErrno();
1029 return false;
1030 }
1031
1032 return true;
1033}
1034
1035NativeProcessLinux::OperationArgs::OperationArgs(NativeProcessLinux *monitor)
1036 : m_monitor(monitor)
1037{
1038 sem_init(&m_semaphore, 0, 0);
1039}
1040
1041NativeProcessLinux::OperationArgs::~OperationArgs()
1042{
1043 sem_destroy(&m_semaphore);
1044}
1045
1046NativeProcessLinux::LaunchArgs::LaunchArgs(NativeProcessLinux *monitor,
1047 lldb_private::Module *module,
1048 char const **argv,
1049 char const **envp,
1050 const char *stdin_path,
1051 const char *stdout_path,
1052 const char *stderr_path,
Todd Fiala0bce1b62014-08-17 00:10:50 +00001053 const char *working_dir,
1054 const lldb_private::ProcessLaunchInfo &launch_info)
Todd Fialaaf245d12014-06-30 21:05:18 +00001055 : OperationArgs(monitor),
1056 m_module(module),
1057 m_argv(argv),
1058 m_envp(envp),
1059 m_stdin_path(stdin_path),
1060 m_stdout_path(stdout_path),
1061 m_stderr_path(stderr_path),
Todd Fiala0bce1b62014-08-17 00:10:50 +00001062 m_working_dir(working_dir),
1063 m_launch_info(launch_info)
1064{
1065}
Todd Fialaaf245d12014-06-30 21:05:18 +00001066
1067NativeProcessLinux::LaunchArgs::~LaunchArgs()
1068{ }
1069
1070NativeProcessLinux::AttachArgs::AttachArgs(NativeProcessLinux *monitor,
1071 lldb::pid_t pid)
1072 : OperationArgs(monitor), m_pid(pid) { }
1073
1074NativeProcessLinux::AttachArgs::~AttachArgs()
1075{ }
1076
1077// -----------------------------------------------------------------------------
1078// Public Static Methods
1079// -----------------------------------------------------------------------------
1080
1081lldb_private::Error
1082NativeProcessLinux::LaunchProcess (
1083 lldb_private::Module *exe_module,
1084 lldb_private::ProcessLaunchInfo &launch_info,
1085 lldb_private::NativeProcessProtocol::NativeDelegate &native_delegate,
1086 NativeProcessProtocolSP &native_process_sp)
1087{
1088 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_PROCESS));
1089
1090 Error error;
1091
1092 // Verify the working directory is valid if one was specified.
1093 const char* working_dir = launch_info.GetWorkingDirectory ();
1094 if (working_dir)
1095 {
1096 FileSpec working_dir_fs (working_dir, true);
1097 if (!working_dir_fs || working_dir_fs.GetFileType () != FileSpec::eFileTypeDirectory)
1098 {
1099 error.SetErrorStringWithFormat ("No such file or directory: %s", working_dir);
1100 return error;
1101 }
1102 }
1103
Zachary Turner696b5282014-08-14 16:01:25 +00001104 const lldb_private::FileAction *file_action;
Todd Fialaaf245d12014-06-30 21:05:18 +00001105
1106 // Default of NULL will mean to use existing open file descriptors.
1107 const char *stdin_path = NULL;
1108 const char *stdout_path = NULL;
1109 const char *stderr_path = NULL;
1110
1111 file_action = launch_info.GetFileActionForFD (STDIN_FILENO);
1112 stdin_path = GetFilePath (file_action, stdin_path);
1113
1114 file_action = launch_info.GetFileActionForFD (STDOUT_FILENO);
1115 stdout_path = GetFilePath (file_action, stdout_path);
1116
1117 file_action = launch_info.GetFileActionForFD (STDERR_FILENO);
1118 stderr_path = GetFilePath (file_action, stderr_path);
1119
1120 // Create the NativeProcessLinux in launch mode.
1121 native_process_sp.reset (new NativeProcessLinux ());
1122
1123 if (log)
1124 {
1125 int i = 0;
1126 for (const char **args = launch_info.GetArguments ().GetConstArgumentVector (); *args; ++args, ++i)
1127 {
1128 log->Printf ("NativeProcessLinux::%s arg %d: \"%s\"", __FUNCTION__, i, *args ? *args : "nullptr");
1129 ++i;
1130 }
1131 }
1132
1133 if (!native_process_sp->RegisterNativeDelegate (native_delegate))
1134 {
1135 native_process_sp.reset ();
1136 error.SetErrorStringWithFormat ("failed to register the native delegate");
1137 return error;
1138 }
1139
1140 reinterpret_cast<NativeProcessLinux*> (native_process_sp.get ())->LaunchInferior (
1141 exe_module,
1142 launch_info.GetArguments ().GetConstArgumentVector (),
1143 launch_info.GetEnvironmentEntries ().GetConstArgumentVector (),
1144 stdin_path,
1145 stdout_path,
1146 stderr_path,
1147 working_dir,
Todd Fiala0bce1b62014-08-17 00:10:50 +00001148 launch_info,
Todd Fialaaf245d12014-06-30 21:05:18 +00001149 error);
1150
1151 if (error.Fail ())
1152 {
1153 native_process_sp.reset ();
1154 if (log)
1155 log->Printf ("NativeProcessLinux::%s failed to launch process: %s", __FUNCTION__, error.AsCString ());
1156 return error;
1157 }
1158
1159 launch_info.SetProcessID (native_process_sp->GetID ());
1160
1161 return error;
1162}
1163
1164lldb_private::Error
1165NativeProcessLinux::AttachToProcess (
1166 lldb::pid_t pid,
1167 lldb_private::NativeProcessProtocol::NativeDelegate &native_delegate,
1168 NativeProcessProtocolSP &native_process_sp)
1169{
1170 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_PROCESS));
1171 if (log && log->GetMask ().Test (POSIX_LOG_VERBOSE))
1172 log->Printf ("NativeProcessLinux::%s(pid = %" PRIi64 ")", __FUNCTION__, pid);
1173
1174 // Grab the current platform architecture. This should be Linux,
1175 // since this code is only intended to run on a Linux host.
1176 PlatformSP platform_sp (Platform::GetDefaultPlatform ());
1177 if (!platform_sp)
1178 return Error("failed to get a valid default platform");
1179
1180 // Retrieve the architecture for the running process.
1181 ArchSpec process_arch;
1182 Error error = ResolveProcessArchitecture (pid, *platform_sp.get (), process_arch);
1183 if (!error.Success ())
1184 return error;
1185
1186 native_process_sp.reset (new NativeProcessLinux ());
1187
1188 if (!native_process_sp->RegisterNativeDelegate (native_delegate))
1189 {
1190 native_process_sp.reset (new NativeProcessLinux ());
1191 error.SetErrorStringWithFormat ("failed to register the native delegate");
1192 return error;
1193 }
1194
1195 reinterpret_cast<NativeProcessLinux*> (native_process_sp.get ())->AttachToInferior (pid, error);
1196 if (!error.Success ())
1197 {
1198 native_process_sp.reset ();
1199 return error;
1200 }
1201
1202 return error;
1203}
1204
1205// -----------------------------------------------------------------------------
1206// Public Instance Methods
1207// -----------------------------------------------------------------------------
1208
1209NativeProcessLinux::NativeProcessLinux () :
1210 NativeProcessProtocol (LLDB_INVALID_PROCESS_ID),
1211 m_arch (),
1212 m_operation_thread (LLDB_INVALID_HOST_THREAD),
1213 m_monitor_thread (LLDB_INVALID_HOST_THREAD),
1214 m_operation (nullptr),
1215 m_operation_mutex (),
1216 m_operation_pending (),
1217 m_operation_done (),
1218 m_wait_for_stop_tids (),
1219 m_wait_for_stop_tids_mutex (),
1220 m_supports_mem_region (eLazyBoolCalculate),
1221 m_mem_region_cache (),
1222 m_mem_region_cache_mutex ()
1223{
1224}
1225
1226//------------------------------------------------------------------------------
1227/// The basic design of the NativeProcessLinux is built around two threads.
1228///
1229/// One thread (@see SignalThread) simply blocks on a call to waitpid() looking
1230/// for changes in the debugee state. When a change is detected a
1231/// ProcessMessage is sent to the associated ProcessLinux instance. This thread
1232/// "drives" state changes in the debugger.
1233///
1234/// The second thread (@see OperationThread) is responsible for two things 1)
1235/// launching or attaching to the inferior process, and then 2) servicing
1236/// operations such as register reads/writes, stepping, etc. See the comments
1237/// on the Operation class for more info as to why this is needed.
1238void
1239NativeProcessLinux::LaunchInferior (
1240 Module *module,
1241 const char *argv[],
1242 const char *envp[],
1243 const char *stdin_path,
1244 const char *stdout_path,
1245 const char *stderr_path,
1246 const char *working_dir,
Todd Fiala0bce1b62014-08-17 00:10:50 +00001247 const lldb_private::ProcessLaunchInfo &launch_info,
Todd Fialaaf245d12014-06-30 21:05:18 +00001248 lldb_private::Error &error)
1249{
1250 if (module)
1251 m_arch = module->GetArchitecture ();
1252
1253 SetState(eStateLaunching);
1254
1255 std::unique_ptr<LaunchArgs> args(
1256 new LaunchArgs(
1257 this, module, argv, envp,
1258 stdin_path, stdout_path, stderr_path,
Todd Fiala0bce1b62014-08-17 00:10:50 +00001259 working_dir, launch_info));
Todd Fialaaf245d12014-06-30 21:05:18 +00001260
1261 sem_init(&m_operation_pending, 0, 0);
1262 sem_init(&m_operation_done, 0, 0);
1263
1264 StartLaunchOpThread(args.get(), error);
1265 if (!error.Success())
1266 return;
1267
1268WAIT_AGAIN:
1269 // Wait for the operation thread to initialize.
1270 if (sem_wait(&args->m_semaphore))
1271 {
1272 if (errno == EINTR)
1273 goto WAIT_AGAIN;
1274 else
1275 {
1276 error.SetErrorToErrno();
1277 return;
1278 }
1279 }
1280
1281 // Check that the launch was a success.
1282 if (!args->m_error.Success())
1283 {
1284 StopOpThread();
1285 error = args->m_error;
1286 return;
1287 }
1288
1289 // Finally, start monitoring the child process for change in state.
1290 m_monitor_thread = Host::StartMonitoringChildProcess(
1291 NativeProcessLinux::MonitorCallback, this, GetID(), true);
1292 if (!IS_VALID_LLDB_HOST_THREAD(m_monitor_thread))
1293 {
1294 error.SetErrorToGenericError();
1295 error.SetErrorString ("Process attach failed to create monitor thread for NativeProcessLinux::MonitorCallback.");
1296 return;
1297 }
1298}
1299
1300void
1301NativeProcessLinux::AttachToInferior (lldb::pid_t pid, lldb_private::Error &error)
1302{
1303 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_PROCESS));
1304 if (log)
1305 log->Printf ("NativeProcessLinux::%s (pid = %" PRIi64 ")", __FUNCTION__, pid);
1306
1307 // We can use the Host for everything except the ResolveExecutable portion.
1308 PlatformSP platform_sp = Platform::GetDefaultPlatform ();
1309 if (!platform_sp)
1310 {
1311 if (log)
1312 log->Printf ("NativeProcessLinux::%s (pid = %" PRIi64 "): no default platform set", __FUNCTION__, pid);
1313 error.SetErrorString ("no default platform available");
1314 }
1315
1316 // Gather info about the process.
1317 ProcessInstanceInfo process_info;
1318 platform_sp->GetProcessInfo (pid, process_info);
1319
1320 // Resolve the executable module
1321 ModuleSP exe_module_sp;
1322 FileSpecList executable_search_paths (Target::GetDefaultExecutableSearchPaths());
1323
Zachary Turner13b18262014-08-20 16:42:51 +00001324 error = platform_sp->ResolveExecutable(process_info.GetExecutableFile(), HostInfo::GetArchitecture(), exe_module_sp,
1325 executable_search_paths.GetSize() ? &executable_search_paths : NULL);
Todd Fialaaf245d12014-06-30 21:05:18 +00001326 if (!error.Success())
1327 return;
1328
1329 // Set the architecture to the exe architecture.
1330 m_arch = exe_module_sp->GetArchitecture();
1331 if (log)
1332 log->Printf ("NativeProcessLinux::%s (pid = %" PRIi64 ") detected architecture %s", __FUNCTION__, pid, m_arch.GetArchitectureName ());
1333
1334 m_pid = pid;
1335 SetState(eStateAttaching);
1336
1337 sem_init (&m_operation_pending, 0, 0);
1338 sem_init (&m_operation_done, 0, 0);
1339
1340 std::unique_ptr<AttachArgs> args (new AttachArgs (this, pid));
1341
1342 StartAttachOpThread(args.get (), error);
1343 if (!error.Success ())
1344 return;
1345
1346WAIT_AGAIN:
1347 // Wait for the operation thread to initialize.
1348 if (sem_wait (&args->m_semaphore))
1349 {
1350 if (errno == EINTR)
1351 goto WAIT_AGAIN;
1352 else
1353 {
1354 error.SetErrorToErrno ();
1355 return;
1356 }
1357 }
1358
1359 // Check that the attach was a success.
1360 if (!args->m_error.Success ())
1361 {
1362 StopOpThread ();
1363 error = args->m_error;
1364 return;
1365 }
1366
1367 // Finally, start monitoring the child process for change in state.
1368 m_monitor_thread = Host::StartMonitoringChildProcess (
1369 NativeProcessLinux::MonitorCallback, this, GetID (), true);
1370 if (!IS_VALID_LLDB_HOST_THREAD (m_monitor_thread))
1371 {
1372 error.SetErrorToGenericError ();
1373 error.SetErrorString ("Process attach failed to create monitor thread for NativeProcessLinux::MonitorCallback.");
1374 return;
1375 }
1376}
1377
1378NativeProcessLinux::~NativeProcessLinux()
1379{
1380 StopMonitor();
1381}
1382
1383//------------------------------------------------------------------------------
1384// Thread setup and tear down.
1385
1386void
1387NativeProcessLinux::StartLaunchOpThread(LaunchArgs *args, Error &error)
1388{
1389 static const char *g_thread_name = "lldb.process.nativelinux.operation";
1390
1391 if (IS_VALID_LLDB_HOST_THREAD (m_operation_thread))
1392 return;
1393
1394 m_operation_thread =
1395 Host::ThreadCreate (g_thread_name, LaunchOpThread, args, &error);
1396}
1397
1398void *
1399NativeProcessLinux::LaunchOpThread(void *arg)
1400{
1401 LaunchArgs *args = static_cast<LaunchArgs*>(arg);
1402
1403 if (!Launch(args)) {
1404 sem_post(&args->m_semaphore);
1405 return NULL;
1406 }
1407
1408 ServeOperation(args);
1409 return NULL;
1410}
1411
1412bool
1413NativeProcessLinux::Launch(LaunchArgs *args)
1414{
Todd Fiala0bce1b62014-08-17 00:10:50 +00001415 assert (args && "null args");
1416 if (!args)
1417 return false;
1418
Todd Fialaaf245d12014-06-30 21:05:18 +00001419 NativeProcessLinux *monitor = args->m_monitor;
1420 assert (monitor && "monitor is NULL");
1421 if (!monitor)
1422 return false;
1423
1424 const char **argv = args->m_argv;
1425 const char **envp = args->m_envp;
1426 const char *stdin_path = args->m_stdin_path;
1427 const char *stdout_path = args->m_stdout_path;
1428 const char *stderr_path = args->m_stderr_path;
1429 const char *working_dir = args->m_working_dir;
1430
1431 lldb_utility::PseudoTerminal terminal;
1432 const size_t err_len = 1024;
1433 char err_str[err_len];
1434 lldb::pid_t pid;
1435 NativeThreadProtocolSP thread_sp;
1436
1437 lldb::ThreadSP inferior;
1438 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_PROCESS));
1439
1440 // Propagate the environment if one is not supplied.
1441 if (envp == NULL || envp[0] == NULL)
1442 envp = const_cast<const char **>(environ);
1443
1444 if ((pid = terminal.Fork(err_str, err_len)) == static_cast<lldb::pid_t> (-1))
1445 {
1446 args->m_error.SetErrorToGenericError();
1447 args->m_error.SetErrorString("Process fork failed.");
1448 goto FINISH;
1449 }
1450
1451 // Recognized child exit status codes.
1452 enum {
1453 ePtraceFailed = 1,
1454 eDupStdinFailed,
1455 eDupStdoutFailed,
1456 eDupStderrFailed,
1457 eChdirFailed,
1458 eExecFailed,
1459 eSetGidFailed
1460 };
1461
1462 // Child process.
1463 if (pid == 0)
1464 {
1465 if (log)
1466 log->Printf ("NativeProcessLinux::%s inferior process preparing to fork", __FUNCTION__);
1467
1468 // Trace this process.
1469 if (log)
1470 log->Printf ("NativeProcessLinux::%s inferior process issuing PTRACE_TRACEME", __FUNCTION__);
1471
1472 if (PTRACE(PTRACE_TRACEME, 0, NULL, NULL, 0) < 0)
1473 {
1474 if (log)
1475 log->Printf ("NativeProcessLinux::%s inferior process PTRACE_TRACEME failed", __FUNCTION__);
1476 exit(ePtraceFailed);
1477 }
1478
1479 // Do not inherit setgid powers.
1480 if (log)
1481 log->Printf ("NativeProcessLinux::%s inferior process resetting gid", __FUNCTION__);
1482
1483 if (setgid(getgid()) != 0)
1484 {
1485 if (log)
1486 log->Printf ("NativeProcessLinux::%s inferior process setgid() failed", __FUNCTION__);
1487 exit(eSetGidFailed);
1488 }
1489
1490 // Attempt to have our own process group.
1491 // TODO verify if we really want this.
1492 if (log)
1493 log->Printf ("NativeProcessLinux::%s inferior process resetting process group", __FUNCTION__);
1494
1495 if (setpgid(0, 0) != 0)
1496 {
1497 if (log)
1498 {
1499 const int error_code = errno;
1500 log->Printf ("NativeProcessLinux::%s inferior setpgid() failed, errno=%d (%s), continuing with existing proccess group %" PRIu64,
1501 __FUNCTION__,
1502 error_code,
1503 strerror (error_code),
1504 static_cast<lldb::pid_t> (getpgid (0)));
1505 }
1506 // Don't allow this to prevent an inferior exec.
1507 }
1508
1509 // Dup file descriptors if needed.
1510 //
1511 // FIXME: If two or more of the paths are the same we needlessly open
1512 // the same file multiple times.
1513 if (stdin_path != NULL && stdin_path[0])
1514 if (!DupDescriptor(stdin_path, STDIN_FILENO, O_RDONLY))
1515 exit(eDupStdinFailed);
1516
1517 if (stdout_path != NULL && stdout_path[0])
1518 if (!DupDescriptor(stdout_path, STDOUT_FILENO, O_WRONLY | O_CREAT))
1519 exit(eDupStdoutFailed);
1520
1521 if (stderr_path != NULL && stderr_path[0])
1522 if (!DupDescriptor(stderr_path, STDERR_FILENO, O_WRONLY | O_CREAT))
1523 exit(eDupStderrFailed);
1524
1525 // Change working directory
1526 if (working_dir != NULL && working_dir[0])
1527 if (0 != ::chdir(working_dir))
1528 exit(eChdirFailed);
1529
Todd Fiala0bce1b62014-08-17 00:10:50 +00001530 // Disable ASLR if requested.
1531 if (args->m_launch_info.GetFlags ().Test (lldb::eLaunchFlagDisableASLR))
1532 {
1533 const int old_personality = personality (LLDB_PERSONALITY_GET_CURRENT_SETTINGS);
1534 if (old_personality == -1)
1535 {
1536 if (log)
1537 log->Printf ("NativeProcessLinux::%s retrieval of Linux personality () failed: %s. Cannot disable ASLR.", __FUNCTION__, strerror (errno));
1538 }
1539 else
1540 {
1541 const int new_personality = personality (ADDR_NO_RANDOMIZE | old_personality);
1542 if (new_personality == -1)
1543 {
1544 if (log)
1545 log->Printf ("NativeProcessLinux::%s setting of Linux personality () to disable ASLR failed, ignoring: %s", __FUNCTION__, strerror (errno));
1546
1547 }
1548 else
1549 {
1550 if (log)
1551 log->Printf ("NativeProcessLinux::%s disbling ASLR: SUCCESS", __FUNCTION__);
1552
1553 }
1554 }
1555 }
1556
Todd Fialaaf245d12014-06-30 21:05:18 +00001557 // Execute. We should never return.
1558 execve(argv[0],
1559 const_cast<char *const *>(argv),
1560 const_cast<char *const *>(envp));
1561 exit(eExecFailed);
1562 }
1563
1564 // Wait for the child process to trap on its call to execve.
1565 ::pid_t wpid;
1566 int status;
1567 if ((wpid = waitpid(pid, &status, 0)) < 0)
1568 {
1569 args->m_error.SetErrorToErrno();
1570
1571 if (log)
1572 log->Printf ("NativeProcessLinux::%s waitpid for inferior failed with %s", __FUNCTION__, args->m_error.AsCString ());
1573
1574 // Mark the inferior as invalid.
1575 // FIXME this could really use a new state - eStateLaunchFailure. For now, using eStateInvalid.
1576 monitor->SetState (StateType::eStateInvalid);
1577
1578 goto FINISH;
1579 }
1580 else if (WIFEXITED(status))
1581 {
1582 // open, dup or execve likely failed for some reason.
1583 args->m_error.SetErrorToGenericError();
1584 switch (WEXITSTATUS(status))
1585 {
1586 case ePtraceFailed:
1587 args->m_error.SetErrorString("Child ptrace failed.");
1588 break;
1589 case eDupStdinFailed:
1590 args->m_error.SetErrorString("Child open stdin failed.");
1591 break;
1592 case eDupStdoutFailed:
1593 args->m_error.SetErrorString("Child open stdout failed.");
1594 break;
1595 case eDupStderrFailed:
1596 args->m_error.SetErrorString("Child open stderr failed.");
1597 break;
1598 case eChdirFailed:
1599 args->m_error.SetErrorString("Child failed to set working directory.");
1600 break;
1601 case eExecFailed:
1602 args->m_error.SetErrorString("Child exec failed.");
1603 break;
1604 case eSetGidFailed:
1605 args->m_error.SetErrorString("Child setgid failed.");
1606 break;
1607 default:
1608 args->m_error.SetErrorString("Child returned unknown exit status.");
1609 break;
1610 }
1611
1612 if (log)
1613 {
1614 log->Printf ("NativeProcessLinux::%s inferior exited with status %d before issuing a STOP",
1615 __FUNCTION__,
1616 WEXITSTATUS(status));
1617 }
1618
1619 // Mark the inferior as invalid.
1620 // FIXME this could really use a new state - eStateLaunchFailure. For now, using eStateInvalid.
1621 monitor->SetState (StateType::eStateInvalid);
1622
1623 goto FINISH;
1624 }
Todd Fiala202ecd22014-07-10 04:39:13 +00001625 assert(WIFSTOPPED(status) && (wpid == static_cast< ::pid_t> (pid)) &&
Todd Fialaaf245d12014-06-30 21:05:18 +00001626 "Could not sync with inferior process.");
1627
1628 if (log)
1629 log->Printf ("NativeProcessLinux::%s inferior started, now in stopped state", __FUNCTION__);
1630
1631 if (!SetDefaultPtraceOpts(pid))
1632 {
1633 args->m_error.SetErrorToErrno();
1634 if (log)
1635 log->Printf ("NativeProcessLinux::%s inferior failed to set default ptrace options: %s",
1636 __FUNCTION__,
1637 args->m_error.AsCString ());
1638
1639 // Mark the inferior as invalid.
1640 // FIXME this could really use a new state - eStateLaunchFailure. For now, using eStateInvalid.
1641 monitor->SetState (StateType::eStateInvalid);
1642
1643 goto FINISH;
1644 }
1645
1646 // Release the master terminal descriptor and pass it off to the
1647 // NativeProcessLinux instance. Similarly stash the inferior pid.
1648 monitor->m_terminal_fd = terminal.ReleaseMasterFileDescriptor();
1649 monitor->m_pid = pid;
1650
1651 // Set the terminal fd to be in non blocking mode (it simplifies the
1652 // implementation of ProcessLinux::GetSTDOUT to have a non-blocking
1653 // descriptor to read from).
1654 if (!EnsureFDFlags(monitor->m_terminal_fd, O_NONBLOCK, args->m_error))
1655 {
1656 if (log)
1657 log->Printf ("NativeProcessLinux::%s inferior EnsureFDFlags failed for ensuring terminal O_NONBLOCK setting: %s",
1658 __FUNCTION__,
1659 args->m_error.AsCString ());
1660
1661 // Mark the inferior as invalid.
1662 // FIXME this could really use a new state - eStateLaunchFailure. For now, using eStateInvalid.
1663 monitor->SetState (StateType::eStateInvalid);
1664
1665 goto FINISH;
1666 }
1667
1668 if (log)
1669 log->Printf ("NativeProcessLinux::%s() adding pid = %" PRIu64, __FUNCTION__, pid);
1670
1671 thread_sp = monitor->AddThread (static_cast<lldb::tid_t> (pid));
1672 assert (thread_sp && "AddThread() returned a nullptr thread");
1673 reinterpret_cast<NativeThreadLinux*> (thread_sp.get ())->SetStoppedBySignal (SIGSTOP);
1674 monitor->SetCurrentThreadID (thread_sp->GetID ());
1675
1676 // Let our process instance know the thread has stopped.
1677 monitor->SetState (StateType::eStateStopped);
1678
1679FINISH:
1680 if (log)
1681 {
1682 if (args->m_error.Success ())
1683 {
1684 log->Printf ("NativeProcessLinux::%s inferior launching succeeded", __FUNCTION__);
1685 }
1686 else
1687 {
1688 log->Printf ("NativeProcessLinux::%s inferior launching failed: %s",
1689 __FUNCTION__,
1690 args->m_error.AsCString ());
1691 }
1692 }
1693 return args->m_error.Success();
1694}
1695
1696void
1697NativeProcessLinux::StartAttachOpThread(AttachArgs *args, lldb_private::Error &error)
1698{
1699 static const char *g_thread_name = "lldb.process.linux.operation";
1700
1701 if (IS_VALID_LLDB_HOST_THREAD(m_operation_thread))
1702 return;
1703
1704 m_operation_thread =
1705 Host::ThreadCreate(g_thread_name, AttachOpThread, args, &error);
1706}
1707
1708void *
1709NativeProcessLinux::AttachOpThread(void *arg)
1710{
1711 AttachArgs *args = static_cast<AttachArgs*>(arg);
1712
1713 if (!Attach(args)) {
1714 sem_post(&args->m_semaphore);
1715 return NULL;
1716 }
1717
1718 ServeOperation(args);
1719 return NULL;
1720}
1721
1722bool
1723NativeProcessLinux::Attach(AttachArgs *args)
1724{
1725 lldb::pid_t pid = args->m_pid;
1726
1727 NativeProcessLinux *monitor = args->m_monitor;
1728 lldb::ThreadSP inferior;
1729 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_PROCESS));
1730
1731 // Use a map to keep track of the threads which we have attached/need to attach.
1732 Host::TidMap tids_to_attach;
1733 if (pid <= 1)
1734 {
1735 args->m_error.SetErrorToGenericError();
1736 args->m_error.SetErrorString("Attaching to process 1 is not allowed.");
1737 goto FINISH;
1738 }
1739
1740 while (Host::FindProcessThreads(pid, tids_to_attach))
1741 {
1742 for (Host::TidMap::iterator it = tids_to_attach.begin();
1743 it != tids_to_attach.end();)
1744 {
1745 if (it->second == false)
1746 {
1747 lldb::tid_t tid = it->first;
1748
1749 // Attach to the requested process.
1750 // An attach will cause the thread to stop with a SIGSTOP.
1751 if (PTRACE(PTRACE_ATTACH, tid, NULL, NULL, 0) < 0)
1752 {
1753 // No such thread. The thread may have exited.
1754 // More error handling may be needed.
1755 if (errno == ESRCH)
1756 {
1757 it = tids_to_attach.erase(it);
1758 continue;
1759 }
1760 else
1761 {
1762 args->m_error.SetErrorToErrno();
1763 goto FINISH;
1764 }
1765 }
1766
1767 int status;
1768 // Need to use __WALL otherwise we receive an error with errno=ECHLD
1769 // At this point we should have a thread stopped if waitpid succeeds.
1770 if ((status = waitpid(tid, NULL, __WALL)) < 0)
1771 {
1772 // No such thread. The thread may have exited.
1773 // More error handling may be needed.
1774 if (errno == ESRCH)
1775 {
1776 it = tids_to_attach.erase(it);
1777 continue;
1778 }
1779 else
1780 {
1781 args->m_error.SetErrorToErrno();
1782 goto FINISH;
1783 }
1784 }
1785
1786 if (!SetDefaultPtraceOpts(tid))
1787 {
1788 args->m_error.SetErrorToErrno();
1789 goto FINISH;
1790 }
1791
1792
1793 if (log)
1794 log->Printf ("NativeProcessLinux::%s() adding tid = %" PRIu64, __FUNCTION__, tid);
1795
1796 it->second = true;
1797
1798 // Create the thread, mark it as stopped.
1799 NativeThreadProtocolSP thread_sp (monitor->AddThread (static_cast<lldb::tid_t> (tid)));
1800 assert (thread_sp && "AddThread() returned a nullptr");
1801 reinterpret_cast<NativeThreadLinux*> (thread_sp.get ())->SetStoppedBySignal (SIGSTOP);
1802 monitor->SetCurrentThreadID (thread_sp->GetID ());
1803 }
1804
1805 // move the loop forward
1806 ++it;
1807 }
1808 }
1809
1810 if (tids_to_attach.size() > 0)
1811 {
1812 monitor->m_pid = pid;
1813 // Let our process instance know the thread has stopped.
1814 monitor->SetState (StateType::eStateStopped);
1815 }
1816 else
1817 {
1818 args->m_error.SetErrorToGenericError();
1819 args->m_error.SetErrorString("No such process.");
1820 }
1821
1822 FINISH:
1823 return args->m_error.Success();
1824}
1825
1826bool
1827NativeProcessLinux::SetDefaultPtraceOpts(lldb::pid_t pid)
1828{
1829 long ptrace_opts = 0;
1830
1831 // Have the child raise an event on exit. This is used to keep the child in
1832 // limbo until it is destroyed.
1833 ptrace_opts |= PTRACE_O_TRACEEXIT;
1834
1835 // Have the tracer trace threads which spawn in the inferior process.
1836 // TODO: if we want to support tracing the inferiors' child, add the
1837 // appropriate ptrace flags here (PTRACE_O_TRACEFORK, PTRACE_O_TRACEVFORK)
1838 ptrace_opts |= PTRACE_O_TRACECLONE;
1839
1840 // Have the tracer notify us before execve returns
1841 // (needed to disable legacy SIGTRAP generation)
1842 ptrace_opts |= PTRACE_O_TRACEEXEC;
1843
1844 return PTRACE(PTRACE_SETOPTIONS, pid, NULL, (void*)ptrace_opts, 0) >= 0;
1845}
1846
1847static ExitType convert_pid_status_to_exit_type (int status)
1848{
1849 if (WIFEXITED (status))
1850 return ExitType::eExitTypeExit;
1851 else if (WIFSIGNALED (status))
1852 return ExitType::eExitTypeSignal;
1853 else if (WIFSTOPPED (status))
1854 return ExitType::eExitTypeStop;
1855 else
1856 {
1857 // We don't know what this is.
1858 return ExitType::eExitTypeInvalid;
1859 }
1860}
1861
1862static int convert_pid_status_to_return_code (int status)
1863{
1864 if (WIFEXITED (status))
1865 return WEXITSTATUS (status);
1866 else if (WIFSIGNALED (status))
1867 return WTERMSIG (status);
1868 else if (WIFSTOPPED (status))
1869 return WSTOPSIG (status);
1870 else
1871 {
1872 // We don't know what this is.
1873 return ExitType::eExitTypeInvalid;
1874 }
1875}
1876
1877// Main process monitoring waitpid-loop handler.
1878bool
1879NativeProcessLinux::MonitorCallback(void *callback_baton,
1880 lldb::pid_t pid,
1881 bool exited,
1882 int signal,
1883 int status)
1884{
1885 Log *log (GetLogIfAnyCategoriesSet (LIBLLDB_LOG_PROCESS));
1886
1887 NativeProcessLinux *const process = static_cast<NativeProcessLinux*>(callback_baton);
1888 assert (process && "process is null");
1889 if (!process)
1890 {
1891 if (log)
1892 log->Printf ("NativeProcessLinux::%s pid %" PRIu64 " callback_baton was null, can't determine process to use", __FUNCTION__, pid);
1893 return true;
1894 }
1895
1896 // Certain activities differ based on whether the pid is the tid of the main thread.
1897 const bool is_main_thread = (pid == process->GetID ());
1898
1899 // Assume we keep monitoring by default.
1900 bool stop_monitoring = false;
1901
1902 // Handle when the thread exits.
1903 if (exited)
1904 {
1905 if (log)
1906 log->Printf ("NativeProcessLinux::%s() got exit signal, tid = %" PRIu64 " (%s main thread)", __FUNCTION__, pid, is_main_thread ? "is" : "is not");
1907
1908 // This is a thread that exited. Ensure we're not tracking it anymore.
1909 const bool thread_found = process->StopTrackingThread (pid);
1910
1911 if (is_main_thread)
1912 {
1913 // We only set the exit status and notify the delegate if we haven't already set the process
1914 // state to an exited state. We normally should have received a SIGTRAP | (PTRACE_EVENT_EXIT << 8)
1915 // for the main thread.
1916 const bool already_notified = (process->GetState() == StateType::eStateExited) | (process->GetState () == StateType::eStateCrashed);
1917 if (!already_notified)
1918 {
1919 if (log)
1920 log->Printf ("NativeProcessLinux::%s() tid = %" PRIu64 " handling main thread exit (%s), expected exit state already set but state was %s instead, setting exit state now", __FUNCTION__, pid, thread_found ? "stopped tracking thread metadata" : "thread metadata not found", StateAsCString (process->GetState ()));
1921 // The main thread exited. We're done monitoring. Report to delegate.
1922 process->SetExitStatus (convert_pid_status_to_exit_type (status), convert_pid_status_to_return_code (status), nullptr, true);
1923
1924 // Notify delegate that our process has exited.
1925 process->SetState (StateType::eStateExited, true);
1926 }
1927 else
1928 {
1929 if (log)
1930 log->Printf ("NativeProcessLinux::%s() tid = %" PRIu64 " main thread now exited (%s)", __FUNCTION__, pid, thread_found ? "stopped tracking thread metadata" : "thread metadata not found");
1931 }
1932 return true;
1933 }
1934 else
1935 {
1936 // Do we want to report to the delegate in this case? I think not. If this was an orderly
1937 // thread exit, we would already have received the SIGTRAP | (PTRACE_EVENT_EXIT << 8) signal,
1938 // and we would have done an all-stop then.
1939 if (log)
1940 log->Printf ("NativeProcessLinux::%s() tid = %" PRIu64 " handling non-main thread exit (%s)", __FUNCTION__, pid, thread_found ? "stopped tracking thread metadata" : "thread metadata not found");
1941
1942 // Not the main thread, we keep going.
1943 return false;
1944 }
1945 }
1946
1947 // Get details on the signal raised.
1948 siginfo_t info;
1949 int ptrace_err = 0;
1950
1951 if (!process->GetSignalInfo (pid, &info, ptrace_err))
1952 {
1953 if (ptrace_err == EINVAL)
1954 {
1955 // This is the first part of the Linux ptrace group-stop mechanism.
Todd Fialaa9882ce2014-08-28 15:46:54 +00001956 // (The other thing it can conceivably be is a call on a pid that no
1957 // longer exists for some reason).
Todd Fialaaf245d12014-06-30 21:05:18 +00001958 // The tracer (i.e. NativeProcessLinux) is expected to inject the signal
1959 // into the tracee (i.e. inferior) at this point.
1960 if (log)
Todd Fialaa9882ce2014-08-28 15:46:54 +00001961 log->Printf ("NativeProcessLinux::%s resuming from group-stop", __FUNCTION__);
Todd Fialaaf245d12014-06-30 21:05:18 +00001962
1963 // The inferior process is in 'group-stop', so deliver the stopping signal.
1964 const bool signal_delivered = process->Resume (pid, info.si_signo);
1965 if (log)
Todd Fialaa9882ce2014-08-28 15:46:54 +00001966 log->Printf ("NativeProcessLinux::%s pid %" PRIu64 " group-stop signal delivery of signal 0x%x (%s) - %s", __FUNCTION__, pid, info.si_signo, GetUnixSignals ().GetSignalAsCString (info.si_signo), signal_delivered ? "success" : "failed");
Todd Fialaaf245d12014-06-30 21:05:18 +00001967
Todd Fialaa9882ce2014-08-28 15:46:54 +00001968 if (signal_delivered)
1969 {
1970 // All is well.
1971 stop_monitoring = false;
1972 }
1973 else
1974 {
1975 if (log)
1976 log->Printf ("NativeProcessLinux::%s pid %" PRIu64 " something looks horribly wrong - like the process we're monitoring died. Stop monitoring it.", __FUNCTION__, pid);
Todd Fialaaf245d12014-06-30 21:05:18 +00001977
Todd Fialaa9882ce2014-08-28 15:46:54 +00001978 // Stop monitoring now.
1979 return true;
1980 }
Todd Fialaaf245d12014-06-30 21:05:18 +00001981 }
1982 else
1983 {
1984 // ptrace(GETSIGINFO) failed (but not due to group-stop).
1985
1986 // A return value of ESRCH means the thread/process is no longer on the system,
1987 // so it was killed somehow outside of our control. Either way, we can't do anything
1988 // with it anymore.
1989
1990 // We stop monitoring if it was the main thread.
1991 stop_monitoring = is_main_thread;
1992
1993 // Stop tracking the metadata for the thread since it's entirely off the system now.
1994 const bool thread_found = process->StopTrackingThread (pid);
1995
1996 if (log)
1997 log->Printf ("NativeProcessLinux::%s GetSignalInfo failed: %s, tid = %" PRIu64 ", signal = %d, status = %d (%s, %s, %s)",
1998 __FUNCTION__, strerror(ptrace_err), pid, signal, status, ptrace_err == ESRCH ? "thread/process killed" : "unknown reason", is_main_thread ? "is main thread" : "is not main thread", thread_found ? "thread metadata removed" : "thread metadata not found");
1999
2000 if (is_main_thread)
2001 {
2002 // Notify the delegate - our process is not available but appears to have been killed outside
2003 // our control. Is eStateExited the right exit state in this case?
2004 process->SetExitStatus (convert_pid_status_to_exit_type (status), convert_pid_status_to_return_code (status), nullptr, true);
2005 process->SetState (StateType::eStateExited, true);
2006 }
2007 else
2008 {
2009 // This thread was pulled out from underneath us. Anything to do here? Do we want to do an all stop?
2010 if (log)
2011 log->Printf ("NativeProcessLinux::%s pid %" PRIu64 " tid %" PRIu64 " non-main thread exit occurred, didn't tell delegate anything since thread disappeared out from underneath us", __FUNCTION__, process->GetID (), pid);
2012 }
2013 }
2014 }
2015 else
2016 {
2017 // We have retrieved the signal info. Dispatch appropriately.
2018 if (info.si_signo == SIGTRAP)
2019 process->MonitorSIGTRAP(&info, pid);
2020 else
2021 process->MonitorSignal(&info, pid, exited);
2022
2023 stop_monitoring = false;
2024 }
2025
2026 return stop_monitoring;
2027}
2028
2029void
2030NativeProcessLinux::MonitorSIGTRAP(const siginfo_t *info, lldb::pid_t pid)
2031{
2032 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_PROCESS));
2033 const bool is_main_thread = (pid == GetID ());
2034
2035 assert(info && info->si_signo == SIGTRAP && "Unexpected child signal!");
2036 if (!info)
2037 return;
2038
2039 // See if we can find a thread for this signal.
2040 NativeThreadProtocolSP thread_sp = GetThreadByID (pid);
2041 if (!thread_sp)
2042 {
2043 if (log)
2044 log->Printf ("NativeProcessLinux::%s() pid %" PRIu64 " no thread found for tid %" PRIu64, __FUNCTION__, GetID (), pid);
2045 }
2046
2047 switch (info->si_code)
2048 {
2049 // TODO: these two cases are required if we want to support tracing of the inferiors' children. We'd need this to debug a monitor.
2050 // case (SIGTRAP | (PTRACE_EVENT_FORK << 8)):
2051 // case (SIGTRAP | (PTRACE_EVENT_VFORK << 8)):
2052
2053 case (SIGTRAP | (PTRACE_EVENT_CLONE << 8)):
2054 {
2055 lldb::tid_t tid = LLDB_INVALID_THREAD_ID;
2056
2057 unsigned long event_message = 0;
2058 if (GetEventMessage(pid, &event_message))
2059 tid = static_cast<lldb::tid_t> (event_message);
2060
2061 if (log)
2062 log->Printf ("NativeProcessLinux::%s() pid %" PRIu64 " received thread creation event for tid %" PRIu64, __FUNCTION__, pid, tid);
2063
2064 // If we don't track the thread yet: create it, mark as stopped.
2065 // If we do track it, this is the wait we needed. Now resume the new thread.
2066 // In all cases, resume the current (i.e. main process) thread.
2067 bool already_tracked = false;
2068 thread_sp = GetOrCreateThread (tid, already_tracked);
2069 assert (thread_sp.get() && "failed to get or create the tracking data for newly created inferior thread");
2070
2071 // If the thread was already tracked, it means the created thread already received its SI_USER notification of creation.
2072 if (already_tracked)
2073 {
2074 // FIXME loops like we want to stop all theads here.
2075 // StopAllThreads
2076
2077 // We can now resume the newly created thread since it is fully created.
2078 reinterpret_cast<NativeThreadLinux*> (thread_sp.get ())->SetRunning ();
2079 Resume (tid, LLDB_INVALID_SIGNAL_NUMBER);
2080 }
2081 else
2082 {
2083 // Mark the thread as currently launching. Need to wait for SIGTRAP clone on the main thread before
2084 // this thread is ready to go.
2085 reinterpret_cast<NativeThreadLinux*> (thread_sp.get ())->SetLaunching ();
2086 }
2087
2088 // In all cases, we can resume the main thread here.
2089 Resume (pid, LLDB_INVALID_SIGNAL_NUMBER);
2090 break;
2091 }
2092
2093 case (SIGTRAP | (PTRACE_EVENT_EXEC << 8)):
Todd Fialaa9882ce2014-08-28 15:46:54 +00002094 {
2095 NativeThreadProtocolSP main_thread_sp;
2096
Todd Fialaaf245d12014-06-30 21:05:18 +00002097 if (log)
2098 log->Printf ("NativeProcessLinux::%s() received exec event, code = %d", __FUNCTION__, info->si_code ^ SIGTRAP);
Todd Fialaa9882ce2014-08-28 15:46:54 +00002099
2100 // Remove all but the main thread here.
2101 // FIXME check if we really need to do this - how does ptrace behave under exec when multiple threads were present
2102 // before the exec? If we get all the detach signals right, we don't need to do this. However, it makes it clearer
2103 // what we should really be tracking.
2104 {
2105 Mutex::Locker locker (m_threads_mutex);
2106
2107 if (log)
2108 log->Printf ("NativeProcessLinux::%s exec received, stop tracking all but main thread", __FUNCTION__);
2109
2110 for (auto thread_sp : m_threads)
2111 {
2112 const bool is_main_thread = thread_sp && thread_sp->GetID () == GetID ();
2113 if (is_main_thread)
2114 {
2115 main_thread_sp = thread_sp;
2116 if (log)
2117 log->Printf ("NativeProcessLinux::%s found main thread with tid %" PRIu64 ", keeping", __FUNCTION__, main_thread_sp->GetID ());
2118 }
2119 else
2120 {
2121 if (log)
2122 log->Printf ("NativeProcessLinux::%s discarding non-main-thread tid %" PRIu64 " due to exec", __FUNCTION__, thread_sp->GetID ());
2123 }
2124 }
2125
2126 m_threads.clear ();
2127
2128 if (main_thread_sp)
2129 {
2130 m_threads.push_back (main_thread_sp);
2131 SetCurrentThreadID (main_thread_sp->GetID ());
2132 reinterpret_cast<NativeThreadLinux*>(main_thread_sp.get())->SetStoppedByExec ();
2133 }
2134 else
2135 {
2136 SetCurrentThreadID (LLDB_INVALID_THREAD_ID);
2137 if (log)
2138 log->Printf ("NativeProcessLinux::%s pid %" PRIu64 "no main thread found, discarded all threads, we're in a no-thread state!", __FUNCTION__, GetID ());
2139 }
2140 }
2141
2142 // Let our delegate know we have just exec'd.
2143 NotifyDidExec ();
2144
2145 // If we have a main thread, indicate we are stopped.
2146 assert (main_thread_sp && "exec called during ptraced process but no main thread metadata tracked");
2147 SetState (StateType::eStateStopped);
2148
Todd Fialaaf245d12014-06-30 21:05:18 +00002149 break;
Todd Fialaa9882ce2014-08-28 15:46:54 +00002150 }
Todd Fialaaf245d12014-06-30 21:05:18 +00002151
2152 case (SIGTRAP | (PTRACE_EVENT_EXIT << 8)):
2153 {
2154 // The inferior process or one of its threads is about to exit.
2155 // Maintain the process or thread in a state of "limbo" until we are
2156 // explicitly commanded to detach, destroy, resume, etc.
2157 unsigned long data = 0;
2158 if (!GetEventMessage(pid, &data))
2159 data = -1;
2160
2161 if (log)
2162 {
2163 log->Printf ("NativeProcessLinux::%s() received PTRACE_EVENT_EXIT, data = %lx (WIFEXITED=%s,WIFSIGNALED=%s), pid = %" PRIu64 " (%s)",
2164 __FUNCTION__,
2165 data, WIFEXITED (data) ? "true" : "false", WIFSIGNALED (data) ? "true" : "false",
2166 pid,
2167 is_main_thread ? "is main thread" : "not main thread");
2168 }
2169
2170 // Set the thread to exited.
2171 if (thread_sp)
2172 reinterpret_cast<NativeThreadLinux*> (thread_sp.get ())->SetExited ();
2173 else
2174 {
2175 if (log)
2176 log->Printf ("NativeProcessLinux::%s() pid %" PRIu64 " failed to retrieve thread for tid %" PRIu64", cannot set thread state", __FUNCTION__, GetID (), pid);
2177 }
2178
2179 if (is_main_thread)
2180 {
2181 SetExitStatus (convert_pid_status_to_exit_type (data), convert_pid_status_to_return_code (data), nullptr, true);
2182 // Resume the thread so it completely exits.
2183 Resume (pid, LLDB_INVALID_SIGNAL_NUMBER);
2184 }
2185 else
2186 {
2187 // FIXME figure out the path where we plan to reap the metadata for the thread.
2188 }
2189
2190 break;
2191 }
2192
2193 case 0:
2194 case TRAP_TRACE:
2195 // We receive this on single stepping.
2196 if (log)
2197 log->Printf ("NativeProcessLinux::%s() received trace event, pid = %" PRIu64 " (single stepping)", __FUNCTION__, pid);
2198
2199 if (thread_sp)
2200 {
2201 reinterpret_cast<NativeThreadLinux*> (thread_sp.get ())->SetStoppedBySignal (SIGTRAP);
2202 SetCurrentThreadID (thread_sp->GetID ());
2203 }
2204 else
2205 {
2206 if (log)
2207 log->Printf ("NativeProcessLinux::%s() pid %" PRIu64 " tid %" PRIu64 " single stepping received trace but thread not found", __FUNCTION__, GetID (), pid);
2208 }
2209
2210 // Tell the process we have a stop (from single stepping).
2211 SetState (StateType::eStateStopped, true);
2212 break;
2213
2214 case SI_KERNEL:
2215 case TRAP_BRKPT:
2216 if (log)
2217 log->Printf ("NativeProcessLinux::%s() received breakpoint event, pid = %" PRIu64, __FUNCTION__, pid);
2218
2219 // Mark the thread as stopped at breakpoint.
2220 if (thread_sp)
2221 {
2222 reinterpret_cast<NativeThreadLinux*> (thread_sp.get ())->SetStoppedBySignal (SIGTRAP);
2223 Error error = FixupBreakpointPCAsNeeded (thread_sp);
2224 if (error.Fail ())
2225 {
2226 if (log)
2227 log->Printf ("NativeProcessLinux::%s() pid = %" PRIu64 " fixup: %s", __FUNCTION__, pid, error.AsCString ());
2228 }
2229 }
2230 else
2231 {
2232 if (log)
2233 log->Printf ("NativeProcessLinux::%s() pid = %" PRIu64 ": warning, cannot process software breakpoint since no thread metadata", __FUNCTION__, pid);
2234 }
2235
2236
2237 // Tell the process we have a stop from this thread.
2238 SetCurrentThreadID (pid);
2239 SetState (StateType::eStateStopped, true);
2240 break;
2241
2242 case TRAP_HWBKPT:
2243 if (log)
2244 log->Printf ("NativeProcessLinux::%s() received watchpoint event, pid = %" PRIu64, __FUNCTION__, pid);
2245
2246 // Mark the thread as stopped at watchpoint.
2247 // The address is at (lldb::addr_t)info->si_addr if we need it.
2248 if (thread_sp)
2249 reinterpret_cast<NativeThreadLinux*> (thread_sp.get ())->SetStoppedBySignal (SIGTRAP);
2250 else
2251 {
2252 if (log)
2253 log->Printf ("NativeProcessLinux::%s() pid %" PRIu64 " tid %" PRIu64 ": warning, cannot process hardware breakpoint since no thread metadata", __FUNCTION__, GetID (), pid);
2254 }
2255
2256 // Tell the process we have a stop from this thread.
2257 SetCurrentThreadID (pid);
2258 SetState (StateType::eStateStopped, true);
2259 break;
2260
2261 case SIGTRAP:
2262 case (SIGTRAP | 0x80):
2263 if (log)
2264 log->Printf ("NativeProcessLinux::%s() received system call stop event, pid %" PRIu64 "tid %" PRIu64, __FUNCTION__, GetID (), pid);
2265 // Ignore these signals until we know more about them.
2266 Resume(pid, 0);
2267 break;
2268
2269 default:
2270 assert(false && "Unexpected SIGTRAP code!");
2271 if (log)
2272 log->Printf ("NativeProcessLinux::%s() pid %" PRIu64 "tid %" PRIu64 " received unhandled SIGTRAP code: 0x%" PRIx64, __FUNCTION__, GetID (), pid, static_cast<uint64_t> (SIGTRAP | (PTRACE_EVENT_CLONE << 8)));
2273 break;
2274
2275 }
2276}
2277
2278void
2279NativeProcessLinux::MonitorSignal(const siginfo_t *info, lldb::pid_t pid, bool exited)
2280{
2281 int signo = info->si_signo;
2282
2283 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_PROCESS));
2284
2285 // POSIX says that process behaviour is undefined after it ignores a SIGFPE,
2286 // SIGILL, SIGSEGV, or SIGBUS *unless* that signal was generated by a
2287 // kill(2) or raise(3). Similarly for tgkill(2) on Linux.
2288 //
2289 // IOW, user generated signals never generate what we consider to be a
2290 // "crash".
2291 //
2292 // Similarly, ACK signals generated by this monitor.
2293
2294 // See if we can find a thread for this signal.
2295 NativeThreadProtocolSP thread_sp = GetThreadByID (pid);
2296 if (!thread_sp)
2297 {
2298 if (log)
2299 log->Printf ("NativeProcessLinux::%s() pid %" PRIu64 " no thread found for tid %" PRIu64, __FUNCTION__, GetID (), pid);
2300 }
2301
2302 // Handle the signal.
2303 if (info->si_code == SI_TKILL || info->si_code == SI_USER)
2304 {
2305 if (log)
2306 log->Printf ("NativeProcessLinux::%s() received signal %s (%d) with code %s, (siginfo pid = %d (%s), waitpid pid = %" PRIu64 ")",
2307 __FUNCTION__,
2308 GetUnixSignals ().GetSignalAsCString (signo),
2309 signo,
2310 (info->si_code == SI_TKILL ? "SI_TKILL" : "SI_USER"),
2311 info->si_pid,
2312 (info->si_pid == getpid ()) ? "is monitor" : "is not monitor",
2313 pid);
Todd Fiala58a2f662014-08-12 17:02:07 +00002314 }
Todd Fialaaf245d12014-06-30 21:05:18 +00002315
Todd Fiala58a2f662014-08-12 17:02:07 +00002316 // Check for new thread notification.
2317 if ((info->si_pid == 0) && (info->si_code == SI_USER))
2318 {
2319 // A new thread creation is being signaled. This is one of two parts that come in
2320 // a non-deterministic order. pid is the thread id.
2321 if (log)
2322 log->Printf ("NativeProcessLinux::%s() pid = %" PRIu64 " tid %" PRIu64 ": new thread notification",
2323 __FUNCTION__, GetID (), pid);
2324
2325 // Did we already create the thread?
2326 bool already_tracked = false;
2327 thread_sp = GetOrCreateThread (pid, already_tracked);
2328 assert (thread_sp.get() && "failed to get or create the tracking data for newly created inferior thread");
2329
2330 // If the thread was already tracked, it means the main thread already received its SIGTRAP for the create.
2331 if (already_tracked)
Todd Fialaaf245d12014-06-30 21:05:18 +00002332 {
Todd Fiala58a2f662014-08-12 17:02:07 +00002333 // We can now resume this thread up since it is fully created.
2334 reinterpret_cast<NativeThreadLinux*> (thread_sp.get ())->SetRunning ();
2335 Resume (thread_sp->GetID (), LLDB_INVALID_SIGNAL_NUMBER);
Todd Fialaaf245d12014-06-30 21:05:18 +00002336 }
2337 else
2338 {
Todd Fiala58a2f662014-08-12 17:02:07 +00002339 // Mark the thread as currently launching. Need to wait for SIGTRAP clone on the main thread before
2340 // this thread is ready to go.
2341 reinterpret_cast<NativeThreadLinux*> (thread_sp.get ())->SetLaunching ();
Todd Fialaaf245d12014-06-30 21:05:18 +00002342 }
2343
Todd Fiala58a2f662014-08-12 17:02:07 +00002344 // Done handling.
2345 return;
2346 }
2347
2348 // Check for thread stop notification.
2349 if ((info->si_pid == getpid ()) && (info->si_code == SI_TKILL) && (signo == SIGSTOP))
2350 {
2351 // This is a tgkill()-based stop.
2352 if (thread_sp)
2353 {
2354 // An inferior thread just stopped. Mark it as such.
2355 reinterpret_cast<NativeThreadLinux*> (thread_sp.get ())->SetStoppedBySignal (signo);
2356 SetCurrentThreadID (thread_sp->GetID ());
2357
2358 // Remove this tid from the wait-for-stop set.
2359 Mutex::Locker locker (m_wait_for_stop_tids_mutex);
2360
2361 auto removed_count = m_wait_for_stop_tids.erase (thread_sp->GetID ());
2362 if (removed_count < 1)
2363 {
2364 log->Printf ("NativeProcessLinux::%s() pid = %" PRIu64 " tid %" PRIu64 ": tgkill()-stopped thread not in m_wait_for_stop_tids",
2365 __FUNCTION__, GetID (), thread_sp->GetID ());
2366
2367 }
2368
2369 // If this is the last thread in the m_wait_for_stop_tids, we need to notify
2370 // the delegate that a stop has occurred now that every thread that was supposed
2371 // to stop has stopped.
2372 if (m_wait_for_stop_tids.empty ())
2373 {
2374 if (log)
2375 {
2376 log->Printf ("NativeProcessLinux::%s() pid %" PRIu64 " tid %" PRIu64 ", setting process state to stopped now that all tids marked for stop have completed",
2377 __FUNCTION__,
2378 GetID (),
2379 pid);
2380 }
2381 SetState (StateType::eStateStopped, true);
2382 }
2383 }
2384
2385 // Done handling.
Todd Fialaaf245d12014-06-30 21:05:18 +00002386 return;
2387 }
2388
2389 if (log)
2390 log->Printf ("NativeProcessLinux::%s() received signal %s", __FUNCTION__, GetUnixSignals ().GetSignalAsCString (signo));
2391
2392 switch (signo)
2393 {
2394 case SIGSEGV:
2395 {
2396 lldb::addr_t fault_addr = reinterpret_cast<lldb::addr_t>(info->si_addr);
2397
2398 // FIXME figure out how to propagate this properly. Seems like it
2399 // should go in ThreadStopInfo.
2400 // We can get more details on the exact nature of the crash here.
2401 // ProcessMessage::CrashReason reason = GetCrashReasonForSIGSEGV(info);
2402 if (!exited)
2403 {
2404 // This is just a pre-signal-delivery notification of the incoming signal.
2405 // Send a stop to the debugger.
2406 if (thread_sp)
2407 {
2408 reinterpret_cast<NativeThreadLinux*> (thread_sp.get ())->SetStoppedBySignal (signo);
2409 SetCurrentThreadID (thread_sp->GetID ());
2410 }
2411 SetState (StateType::eStateStopped, true);
2412 }
2413 else
2414 {
2415 if (thread_sp)
2416 {
2417 // FIXME figure out what type this is.
2418 const uint64_t exception_type = static_cast<uint64_t> (SIGSEGV);
2419 reinterpret_cast<NativeThreadLinux*> (thread_sp.get ())->SetCrashedWithException (exception_type, fault_addr);
2420 }
2421 SetState (StateType::eStateCrashed, true);
2422 }
2423 }
2424 break;
2425
Todd Fiala58a2f662014-08-12 17:02:07 +00002426 case SIGABRT:
Todd Fialaaf245d12014-06-30 21:05:18 +00002427 case SIGILL:
Todd Fialaaf245d12014-06-30 21:05:18 +00002428 case SIGFPE:
Todd Fialaaf245d12014-06-30 21:05:18 +00002429 case SIGBUS:
2430 {
Todd Fiala58a2f662014-08-12 17:02:07 +00002431 // Break these out into separate cases once I have more data for each type of signal.
2432 lldb::addr_t fault_addr = reinterpret_cast<lldb::addr_t>(info->si_addr);
2433 if (!exited)
2434 {
2435 // This is just a pre-signal-delivery notification of the incoming signal.
2436 // Send a stop to the debugger.
2437 if (thread_sp)
2438 {
2439 reinterpret_cast<NativeThreadLinux*> (thread_sp.get ())->SetStoppedBySignal (signo);
2440 SetCurrentThreadID (thread_sp->GetID ());
2441 }
2442 SetState (StateType::eStateStopped, true);
2443 }
2444 else
2445 {
2446 if (thread_sp)
2447 {
2448 // FIXME figure out how to report exit by signal correctly.
2449 const uint64_t exception_type = static_cast<uint64_t> (SIGABRT);
2450 reinterpret_cast<NativeThreadLinux*> (thread_sp.get ())->SetCrashedWithException (exception_type, fault_addr);
2451 }
2452 SetState (StateType::eStateCrashed, true);
2453 }
Todd Fialaaf245d12014-06-30 21:05:18 +00002454 }
2455 break;
2456
2457 default:
Todd Fiala58a2f662014-08-12 17:02:07 +00002458 if (log)
2459 log->Printf ("NativeProcessLinux::%s unhandled signal %s (%d)", __FUNCTION__, GetUnixSignals ().GetSignalAsCString (signo), signo);
Todd Fialaaf245d12014-06-30 21:05:18 +00002460 break;
2461 }
2462}
2463
2464Error
2465NativeProcessLinux::Resume (const ResumeActionList &resume_actions)
2466{
2467 Error error;
2468
2469 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_PROCESS | LIBLLDB_LOG_THREAD));
2470 if (log)
2471 log->Printf ("NativeProcessLinux::%s called: pid %" PRIu64, __FUNCTION__, GetID ());
2472
2473 int run_thread_count = 0;
2474 int stop_thread_count = 0;
2475 int step_thread_count = 0;
2476
2477 std::vector<NativeThreadProtocolSP> new_stop_threads;
2478
2479 Mutex::Locker locker (m_threads_mutex);
2480 for (auto thread_sp : m_threads)
2481 {
2482 assert (thread_sp && "thread list should not contain NULL threads");
2483 NativeThreadLinux *const linux_thread_p = reinterpret_cast<NativeThreadLinux*> (thread_sp.get ());
2484
2485 const ResumeAction *const action = resume_actions.GetActionForThread (thread_sp->GetID (), true);
2486 assert (action && "NULL ResumeAction returned for thread during Resume ()");
2487
2488 if (log)
2489 {
2490 log->Printf ("NativeProcessLinux::%s processing resume action state %s for pid %" PRIu64 " tid %" PRIu64,
2491 __FUNCTION__, StateAsCString (action->state), GetID (), thread_sp->GetID ());
2492 }
2493
2494 switch (action->state)
2495 {
2496 case eStateRunning:
2497 // Run the thread, possibly feeding it the signal.
2498 linux_thread_p->SetRunning ();
2499 if (action->signal > 0)
2500 {
2501 // Resume the thread and deliver the given signal,
2502 // then mark as delivered.
2503 Resume (thread_sp->GetID (), action->signal);
2504 resume_actions.SetSignalHandledForThread (thread_sp->GetID ());
2505 }
2506 else
2507 {
2508 // Just resume the thread with no signal.
2509 Resume (thread_sp->GetID (), LLDB_INVALID_SIGNAL_NUMBER);
2510 }
2511 ++run_thread_count;
2512 break;
2513
2514 case eStateStepping:
2515 // Note: if we have multiple threads, we may need to stop
2516 // the other threads first, then step this one.
2517 linux_thread_p->SetStepping ();
2518 if (SingleStep (thread_sp->GetID (), 0))
2519 {
2520 if (log)
2521 log->Printf ("NativeProcessLinux::%s pid %" PRIu64 " tid %" PRIu64 " single step succeeded",
2522 __FUNCTION__, GetID (), thread_sp->GetID ());
2523 }
2524 else
2525 {
2526 if (log)
2527 log->Printf ("NativeProcessLinux::%s pid %" PRIu64 " tid %" PRIu64 " single step failed",
2528 __FUNCTION__, GetID (), thread_sp->GetID ());
2529 }
2530 ++step_thread_count;
2531 break;
2532
2533 case eStateSuspended:
2534 case eStateStopped:
2535 if (!StateIsStoppedState (linux_thread_p->GetState (), false))
2536 new_stop_threads.push_back (thread_sp);
2537 else
2538 {
2539 if (log)
2540 log->Printf ("NativeProcessLinux::%s no need to stop pid %" PRIu64 " tid %" PRIu64 ", thread state already %s",
2541 __FUNCTION__, GetID (), thread_sp->GetID (), StateAsCString (linux_thread_p->GetState ()));
2542 }
2543
2544 ++stop_thread_count;
2545 break;
2546
2547 default:
2548 return Error ("NativeProcessLinux::%s (): unexpected state %s specified for pid %" PRIu64 ", tid %" PRIu64,
2549 __FUNCTION__, StateAsCString (action->state), GetID (), thread_sp->GetID ());
2550 }
2551 }
2552
2553 // If any thread was set to run, notify the process state as running.
2554 if (run_thread_count > 0)
2555 SetState (StateType::eStateRunning, true);
2556
2557 // Now do a tgkill SIGSTOP on each thread we want to stop.
2558 if (!new_stop_threads.empty ())
2559 {
2560 // Lock the m_wait_for_stop_tids set so we can fill it with every thread we expect to have stopped.
2561 Mutex::Locker stop_thread_id_locker (m_wait_for_stop_tids_mutex);
2562 for (auto thread_sp : new_stop_threads)
2563 {
2564 // Send a stop signal to the thread.
2565 const int result = tgkill (GetID (), thread_sp->GetID (), SIGSTOP);
2566 if (result != 0)
2567 {
2568 // tgkill failed.
2569 if (log)
2570 log->Printf ("NativeProcessLinux::%s error: tgkill SIGSTOP for pid %" PRIu64 " tid %" PRIu64 "failed, retval %d",
2571 __FUNCTION__, GetID (), thread_sp->GetID (), result);
2572 }
2573 else
2574 {
2575 // tgkill succeeded. Don't mark the thread state, though. Let the signal
2576 // handling mark it.
2577 if (log)
2578 log->Printf ("NativeProcessLinux::%s tgkill SIGSTOP for pid %" PRIu64 " tid %" PRIu64 " succeeded",
2579 __FUNCTION__, GetID (), thread_sp->GetID ());
2580
2581 // Add it to the set of threads we expect to signal a stop.
2582 // We won't tell the delegate about it until this list drains to empty.
2583 m_wait_for_stop_tids.insert (thread_sp->GetID ());
2584 }
2585 }
2586 }
2587
2588 return error;
2589}
2590
2591Error
2592NativeProcessLinux::Halt ()
2593{
2594 Error error;
2595
2596 // FIXME check if we're already stopped
2597 const bool is_stopped = false;
2598 if (is_stopped)
2599 return error;
2600
2601 if (kill (GetID (), SIGSTOP) != 0)
2602 error.SetErrorToErrno ();
2603
2604 return error;
2605}
2606
2607Error
2608NativeProcessLinux::Detach ()
2609{
2610 Error error;
2611
2612 // Tell ptrace to detach from the process.
2613 if (GetID () != LLDB_INVALID_PROCESS_ID)
2614 error = Detach (GetID ());
2615
2616 // Stop monitoring the inferior.
2617 StopMonitor ();
2618
2619 // No error.
2620 return error;
2621}
2622
2623Error
2624NativeProcessLinux::Signal (int signo)
2625{
2626 Error error;
2627
2628 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_PROCESS));
2629 if (log)
2630 log->Printf ("NativeProcessLinux::%s: sending signal %d (%s) to pid %" PRIu64,
2631 __FUNCTION__, signo, GetUnixSignals ().GetSignalAsCString (signo), GetID ());
2632
2633 if (kill(GetID(), signo))
2634 error.SetErrorToErrno();
2635
2636 return error;
2637}
2638
2639Error
2640NativeProcessLinux::Kill ()
2641{
2642 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_PROCESS));
2643 if (log)
2644 log->Printf ("NativeProcessLinux::%s called for PID %" PRIu64, __FUNCTION__, GetID ());
2645
2646 Error error;
2647
2648 switch (m_state)
2649 {
2650 case StateType::eStateInvalid:
2651 case StateType::eStateExited:
2652 case StateType::eStateCrashed:
2653 case StateType::eStateDetached:
2654 case StateType::eStateUnloaded:
2655 // Nothing to do - the process is already dead.
2656 if (log)
2657 log->Printf ("NativeProcessLinux::%s ignored for PID %" PRIu64 " due to current state: %s", __FUNCTION__, GetID (), StateAsCString (m_state));
2658 return error;
2659
2660 case StateType::eStateConnected:
2661 case StateType::eStateAttaching:
2662 case StateType::eStateLaunching:
2663 case StateType::eStateStopped:
2664 case StateType::eStateRunning:
2665 case StateType::eStateStepping:
2666 case StateType::eStateSuspended:
2667 // We can try to kill a process in these states.
2668 break;
2669 }
2670
2671 if (kill (GetID (), SIGKILL) != 0)
2672 {
2673 error.SetErrorToErrno ();
2674 return error;
2675 }
2676
2677 return error;
2678}
2679
2680static Error
2681ParseMemoryRegionInfoFromProcMapsLine (const std::string &maps_line, MemoryRegionInfo &memory_region_info)
2682{
2683 memory_region_info.Clear();
2684
2685 StringExtractor line_extractor (maps_line.c_str ());
2686
2687 // Format: {address_start_hex}-{address_end_hex} perms offset dev inode pathname
2688 // perms: rwxp (letter is present if set, '-' if not, final character is p=private, s=shared).
2689
2690 // Parse out the starting address
2691 lldb::addr_t start_address = line_extractor.GetHexMaxU64 (false, 0);
2692
2693 // Parse out hyphen separating start and end address from range.
2694 if (!line_extractor.GetBytesLeft () || (line_extractor.GetChar () != '-'))
2695 return Error ("malformed /proc/{pid}/maps entry, missing dash between address range");
2696
2697 // Parse out the ending address
2698 lldb::addr_t end_address = line_extractor.GetHexMaxU64 (false, start_address);
2699
2700 // Parse out the space after the address.
2701 if (!line_extractor.GetBytesLeft () || (line_extractor.GetChar () != ' '))
2702 return Error ("malformed /proc/{pid}/maps entry, missing space after range");
2703
2704 // Save the range.
2705 memory_region_info.GetRange ().SetRangeBase (start_address);
2706 memory_region_info.GetRange ().SetRangeEnd (end_address);
2707
2708 // Parse out each permission entry.
2709 if (line_extractor.GetBytesLeft () < 4)
2710 return Error ("malformed /proc/{pid}/maps entry, missing some portion of permissions");
2711
2712 // Handle read permission.
2713 const char read_perm_char = line_extractor.GetChar ();
2714 if (read_perm_char == 'r')
2715 memory_region_info.SetReadable (MemoryRegionInfo::OptionalBool::eYes);
2716 else
2717 {
2718 assert ( (read_perm_char == '-') && "unexpected /proc/{pid}/maps read permission char" );
2719 memory_region_info.SetReadable (MemoryRegionInfo::OptionalBool::eNo);
2720 }
2721
2722 // Handle write permission.
2723 const char write_perm_char = line_extractor.GetChar ();
2724 if (write_perm_char == 'w')
2725 memory_region_info.SetWritable (MemoryRegionInfo::OptionalBool::eYes);
2726 else
2727 {
2728 assert ( (write_perm_char == '-') && "unexpected /proc/{pid}/maps write permission char" );
2729 memory_region_info.SetWritable (MemoryRegionInfo::OptionalBool::eNo);
2730 }
2731
2732 // Handle execute permission.
2733 const char exec_perm_char = line_extractor.GetChar ();
2734 if (exec_perm_char == 'x')
2735 memory_region_info.SetExecutable (MemoryRegionInfo::OptionalBool::eYes);
2736 else
2737 {
2738 assert ( (exec_perm_char == '-') && "unexpected /proc/{pid}/maps exec permission char" );
2739 memory_region_info.SetExecutable (MemoryRegionInfo::OptionalBool::eNo);
2740 }
2741
2742 return Error ();
2743}
2744
2745Error
2746NativeProcessLinux::GetMemoryRegionInfo (lldb::addr_t load_addr, MemoryRegionInfo &range_info)
2747{
2748 // FIXME review that the final memory region returned extends to the end of the virtual address space,
2749 // with no perms if it is not mapped.
2750
2751 // Use an approach that reads memory regions from /proc/{pid}/maps.
2752 // Assume proc maps entries are in ascending order.
2753 // FIXME assert if we find differently.
2754 Mutex::Locker locker (m_mem_region_cache_mutex);
2755
2756 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_PROCESS));
2757 Error error;
2758
2759 if (m_supports_mem_region == LazyBool::eLazyBoolNo)
2760 {
2761 // We're done.
2762 error.SetErrorString ("unsupported");
2763 return error;
2764 }
2765
2766 // If our cache is empty, pull the latest. There should always be at least one memory region
2767 // if memory region handling is supported.
2768 if (m_mem_region_cache.empty ())
2769 {
2770 error = ProcFileReader::ProcessLineByLine (GetID (), "maps",
2771 [&] (const std::string &line) -> bool
2772 {
2773 MemoryRegionInfo info;
2774 const Error parse_error = ParseMemoryRegionInfoFromProcMapsLine (line, info);
2775 if (parse_error.Success ())
2776 {
2777 m_mem_region_cache.push_back (info);
2778 return true;
2779 }
2780 else
2781 {
2782 if (log)
2783 log->Printf ("NativeProcessLinux::%s failed to parse proc maps line '%s': %s", __FUNCTION__, line.c_str (), error.AsCString ());
2784 return false;
2785 }
2786 });
2787
2788 // If we had an error, we'll mark unsupported.
2789 if (error.Fail ())
2790 {
2791 m_supports_mem_region = LazyBool::eLazyBoolNo;
2792 return error;
2793 }
2794 else if (m_mem_region_cache.empty ())
2795 {
2796 // No entries after attempting to read them. This shouldn't happen if /proc/{pid}/maps
2797 // is supported. Assume we don't support map entries via procfs.
2798 if (log)
2799 log->Printf ("NativeProcessLinux::%s failed to find any procfs maps entries, assuming no support for memory region metadata retrieval", __FUNCTION__);
2800 m_supports_mem_region = LazyBool::eLazyBoolNo;
2801 error.SetErrorString ("not supported");
2802 return error;
2803 }
2804
2805 if (log)
2806 log->Printf ("NativeProcessLinux::%s read %" PRIu64 " memory region entries from /proc/%" PRIu64 "/maps", __FUNCTION__, static_cast<uint64_t> (m_mem_region_cache.size ()), GetID ());
2807
2808 // We support memory retrieval, remember that.
2809 m_supports_mem_region = LazyBool::eLazyBoolYes;
2810 }
2811 else
2812 {
2813 if (log)
2814 log->Printf ("NativeProcessLinux::%s reusing %" PRIu64 " cached memory region entries", __FUNCTION__, static_cast<uint64_t> (m_mem_region_cache.size ()));
2815 }
2816
2817 lldb::addr_t prev_base_address = 0;
2818
2819 // FIXME start by finding the last region that is <= target address using binary search. Data is sorted.
2820 // There can be a ton of regions on pthreads apps with lots of threads.
2821 for (auto it = m_mem_region_cache.begin(); it != m_mem_region_cache.end (); ++it)
2822 {
2823 MemoryRegionInfo &proc_entry_info = *it;
2824
2825 // Sanity check assumption that /proc/{pid}/maps entries are ascending.
2826 assert ((proc_entry_info.GetRange ().GetRangeBase () >= prev_base_address) && "descending /proc/pid/maps entries detected, unexpected");
2827 prev_base_address = proc_entry_info.GetRange ().GetRangeBase ();
2828
2829 // If the target address comes before this entry, indicate distance to next region.
2830 if (load_addr < proc_entry_info.GetRange ().GetRangeBase ())
2831 {
2832 range_info.GetRange ().SetRangeBase (load_addr);
2833 range_info.GetRange ().SetByteSize (proc_entry_info.GetRange ().GetRangeBase () - load_addr);
2834 range_info.SetReadable (MemoryRegionInfo::OptionalBool::eNo);
2835 range_info.SetWritable (MemoryRegionInfo::OptionalBool::eNo);
2836 range_info.SetExecutable (MemoryRegionInfo::OptionalBool::eNo);
2837
2838 return error;
2839 }
2840 else if (proc_entry_info.GetRange ().Contains (load_addr))
2841 {
2842 // The target address is within the memory region we're processing here.
2843 range_info = proc_entry_info;
2844 return error;
2845 }
2846
2847 // The target memory address comes somewhere after the region we just parsed.
2848 }
2849
2850 // If we made it here, we didn't find an entry that contained the given address.
2851 error.SetErrorString ("address comes after final region");
2852
2853 if (log)
2854 log->Printf ("NativeProcessLinux::%s failed to find map entry for address 0x%" PRIx64 ": %s", __FUNCTION__, load_addr, error.AsCString ());
2855
2856 return error;
2857}
2858
2859void
2860NativeProcessLinux::DoStopIDBumped (uint32_t newBumpId)
2861{
2862 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_PROCESS));
2863 if (log)
2864 log->Printf ("NativeProcessLinux::%s(newBumpId=%" PRIu32 ") called", __FUNCTION__, newBumpId);
2865
2866 {
2867 Mutex::Locker locker (m_mem_region_cache_mutex);
2868 if (log)
2869 log->Printf ("NativeProcessLinux::%s clearing %" PRIu64 " entries from the cache", __FUNCTION__, static_cast<uint64_t> (m_mem_region_cache.size ()));
2870 m_mem_region_cache.clear ();
2871 }
2872}
2873
2874Error
2875NativeProcessLinux::AllocateMemory (
2876 lldb::addr_t size,
2877 uint32_t permissions,
2878 lldb::addr_t &addr)
2879{
2880 // FIXME implementing this requires the equivalent of
2881 // InferiorCallPOSIX::InferiorCallMmap, which depends on
2882 // functional ThreadPlans working with Native*Protocol.
2883#if 1
2884 return Error ("not implemented yet");
2885#else
2886 addr = LLDB_INVALID_ADDRESS;
2887
2888 unsigned prot = 0;
2889 if (permissions & lldb::ePermissionsReadable)
2890 prot |= eMmapProtRead;
2891 if (permissions & lldb::ePermissionsWritable)
2892 prot |= eMmapProtWrite;
2893 if (permissions & lldb::ePermissionsExecutable)
2894 prot |= eMmapProtExec;
2895
2896 // TODO implement this directly in NativeProcessLinux
2897 // (and lift to NativeProcessPOSIX if/when that class is
2898 // refactored out).
2899 if (InferiorCallMmap(this, addr, 0, size, prot,
2900 eMmapFlagsAnon | eMmapFlagsPrivate, -1, 0)) {
2901 m_addr_to_mmap_size[addr] = size;
2902 return Error ();
2903 } else {
2904 addr = LLDB_INVALID_ADDRESS;
2905 return Error("unable to allocate %" PRIu64 " bytes of memory with permissions %s", size, GetPermissionsAsCString (permissions));
2906 }
2907#endif
2908}
2909
2910Error
2911NativeProcessLinux::DeallocateMemory (lldb::addr_t addr)
2912{
2913 // FIXME see comments in AllocateMemory - required lower-level
2914 // bits not in place yet (ThreadPlans)
2915 return Error ("not implemented");
2916}
2917
2918lldb::addr_t
2919NativeProcessLinux::GetSharedLibraryInfoAddress ()
2920{
2921#if 1
2922 // punt on this for now
2923 return LLDB_INVALID_ADDRESS;
2924#else
2925 // Return the image info address for the exe module
2926#if 1
2927 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_PROCESS));
2928
2929 ModuleSP module_sp;
2930 Error error = GetExeModuleSP (module_sp);
2931 if (error.Fail ())
2932 {
2933 if (log)
2934 log->Warning ("NativeProcessLinux::%s failed to retrieve exe module: %s", __FUNCTION__, error.AsCString ());
2935 return LLDB_INVALID_ADDRESS;
2936 }
2937
2938 if (module_sp == nullptr)
2939 {
2940 if (log)
2941 log->Warning ("NativeProcessLinux::%s exe module returned was NULL", __FUNCTION__);
2942 return LLDB_INVALID_ADDRESS;
2943 }
2944
2945 ObjectFileSP object_file_sp = module_sp->GetObjectFile ();
2946 if (object_file_sp == nullptr)
2947 {
2948 if (log)
2949 log->Warning ("NativeProcessLinux::%s exe module returned a NULL object file", __FUNCTION__);
2950 return LLDB_INVALID_ADDRESS;
2951 }
2952
2953 return obj_file_sp->GetImageInfoAddress();
2954#else
2955 Target *target = &GetTarget();
2956 ObjectFile *obj_file = target->GetExecutableModule()->GetObjectFile();
2957 Address addr = obj_file->GetImageInfoAddress(target);
2958
2959 if (addr.IsValid())
2960 return addr.GetLoadAddress(target);
2961 return LLDB_INVALID_ADDRESS;
2962#endif
2963#endif // punt on this for now
2964}
2965
2966size_t
2967NativeProcessLinux::UpdateThreads ()
2968{
2969 // The NativeProcessLinux monitoring threads are always up to date
2970 // with respect to thread state and they keep the thread list
2971 // populated properly. All this method needs to do is return the
2972 // thread count.
2973 Mutex::Locker locker (m_threads_mutex);
2974 return m_threads.size ();
2975}
2976
2977bool
2978NativeProcessLinux::GetArchitecture (ArchSpec &arch) const
2979{
2980 arch = m_arch;
2981 return true;
2982}
2983
2984Error
2985NativeProcessLinux::GetSoftwareBreakpointSize (NativeRegisterContextSP context_sp, uint32_t &actual_opcode_size)
2986{
2987 // FIXME put this behind a breakpoint protocol class that can be
2988 // set per architecture. Need ARM, MIPS support here.
Todd Fiala2afc5962014-08-21 16:42:31 +00002989 static const uint8_t g_aarch64_opcode[] = { 0x00, 0x00, 0x20, 0xd4 };
Todd Fialaaf245d12014-06-30 21:05:18 +00002990 static const uint8_t g_i386_opcode [] = { 0xCC };
2991
2992 switch (m_arch.GetMachine ())
2993 {
Todd Fiala2afc5962014-08-21 16:42:31 +00002994 case llvm::Triple::aarch64:
2995 actual_opcode_size = static_cast<uint32_t> (sizeof(g_aarch64_opcode));
2996 return Error ();
2997
Todd Fialaaf245d12014-06-30 21:05:18 +00002998 case llvm::Triple::x86:
2999 case llvm::Triple::x86_64:
3000 actual_opcode_size = static_cast<uint32_t> (sizeof(g_i386_opcode));
3001 return Error ();
3002
3003 default:
3004 assert(false && "CPU type not supported!");
3005 return Error ("CPU type not supported");
3006 }
3007}
3008
3009Error
3010NativeProcessLinux::SetBreakpoint (lldb::addr_t addr, uint32_t size, bool hardware)
3011{
3012 if (hardware)
3013 return Error ("NativeProcessLinux does not support hardware breakpoints");
3014 else
3015 return SetSoftwareBreakpoint (addr, size);
3016}
3017
3018Error
3019NativeProcessLinux::GetSoftwareBreakpointTrapOpcode (size_t trap_opcode_size_hint, size_t &actual_opcode_size, const uint8_t *&trap_opcode_bytes)
3020{
3021 // FIXME put this behind a breakpoint protocol class that can be
3022 // set per architecture. Need ARM, MIPS support here.
Todd Fiala2afc5962014-08-21 16:42:31 +00003023 static const uint8_t g_aarch64_opcode[] = { 0x00, 0x00, 0x20, 0xd4 };
Todd Fialaaf245d12014-06-30 21:05:18 +00003024 static const uint8_t g_i386_opcode [] = { 0xCC };
3025
3026 switch (m_arch.GetMachine ())
3027 {
Todd Fiala2afc5962014-08-21 16:42:31 +00003028 case llvm::Triple::aarch64:
3029 trap_opcode_bytes = g_aarch64_opcode;
3030 actual_opcode_size = sizeof(g_aarch64_opcode);
3031 return Error ();
3032
Todd Fialaaf245d12014-06-30 21:05:18 +00003033 case llvm::Triple::x86:
3034 case llvm::Triple::x86_64:
3035 trap_opcode_bytes = g_i386_opcode;
3036 actual_opcode_size = sizeof(g_i386_opcode);
3037 return Error ();
3038
3039 default:
3040 assert(false && "CPU type not supported!");
3041 return Error ("CPU type not supported");
3042 }
3043}
3044
3045#if 0
3046ProcessMessage::CrashReason
3047NativeProcessLinux::GetCrashReasonForSIGSEGV(const siginfo_t *info)
3048{
3049 ProcessMessage::CrashReason reason;
3050 assert(info->si_signo == SIGSEGV);
3051
3052 reason = ProcessMessage::eInvalidCrashReason;
3053
3054 switch (info->si_code)
3055 {
3056 default:
3057 assert(false && "unexpected si_code for SIGSEGV");
3058 break;
3059 case SI_KERNEL:
3060 // Linux will occasionally send spurious SI_KERNEL codes.
3061 // (this is poorly documented in sigaction)
3062 // One way to get this is via unaligned SIMD loads.
3063 reason = ProcessMessage::eInvalidAddress; // for lack of anything better
3064 break;
3065 case SEGV_MAPERR:
3066 reason = ProcessMessage::eInvalidAddress;
3067 break;
3068 case SEGV_ACCERR:
3069 reason = ProcessMessage::ePrivilegedAddress;
3070 break;
3071 }
3072
3073 return reason;
3074}
3075#endif
3076
3077
3078#if 0
3079ProcessMessage::CrashReason
3080NativeProcessLinux::GetCrashReasonForSIGILL(const siginfo_t *info)
3081{
3082 ProcessMessage::CrashReason reason;
3083 assert(info->si_signo == SIGILL);
3084
3085 reason = ProcessMessage::eInvalidCrashReason;
3086
3087 switch (info->si_code)
3088 {
3089 default:
3090 assert(false && "unexpected si_code for SIGILL");
3091 break;
3092 case ILL_ILLOPC:
3093 reason = ProcessMessage::eIllegalOpcode;
3094 break;
3095 case ILL_ILLOPN:
3096 reason = ProcessMessage::eIllegalOperand;
3097 break;
3098 case ILL_ILLADR:
3099 reason = ProcessMessage::eIllegalAddressingMode;
3100 break;
3101 case ILL_ILLTRP:
3102 reason = ProcessMessage::eIllegalTrap;
3103 break;
3104 case ILL_PRVOPC:
3105 reason = ProcessMessage::ePrivilegedOpcode;
3106 break;
3107 case ILL_PRVREG:
3108 reason = ProcessMessage::ePrivilegedRegister;
3109 break;
3110 case ILL_COPROC:
3111 reason = ProcessMessage::eCoprocessorError;
3112 break;
3113 case ILL_BADSTK:
3114 reason = ProcessMessage::eInternalStackError;
3115 break;
3116 }
3117
3118 return reason;
3119}
3120#endif
3121
3122#if 0
3123ProcessMessage::CrashReason
3124NativeProcessLinux::GetCrashReasonForSIGFPE(const siginfo_t *info)
3125{
3126 ProcessMessage::CrashReason reason;
3127 assert(info->si_signo == SIGFPE);
3128
3129 reason = ProcessMessage::eInvalidCrashReason;
3130
3131 switch (info->si_code)
3132 {
3133 default:
3134 assert(false && "unexpected si_code for SIGFPE");
3135 break;
3136 case FPE_INTDIV:
3137 reason = ProcessMessage::eIntegerDivideByZero;
3138 break;
3139 case FPE_INTOVF:
3140 reason = ProcessMessage::eIntegerOverflow;
3141 break;
3142 case FPE_FLTDIV:
3143 reason = ProcessMessage::eFloatDivideByZero;
3144 break;
3145 case FPE_FLTOVF:
3146 reason = ProcessMessage::eFloatOverflow;
3147 break;
3148 case FPE_FLTUND:
3149 reason = ProcessMessage::eFloatUnderflow;
3150 break;
3151 case FPE_FLTRES:
3152 reason = ProcessMessage::eFloatInexactResult;
3153 break;
3154 case FPE_FLTINV:
3155 reason = ProcessMessage::eFloatInvalidOperation;
3156 break;
3157 case FPE_FLTSUB:
3158 reason = ProcessMessage::eFloatSubscriptRange;
3159 break;
3160 }
3161
3162 return reason;
3163}
3164#endif
3165
3166#if 0
3167ProcessMessage::CrashReason
3168NativeProcessLinux::GetCrashReasonForSIGBUS(const siginfo_t *info)
3169{
3170 ProcessMessage::CrashReason reason;
3171 assert(info->si_signo == SIGBUS);
3172
3173 reason = ProcessMessage::eInvalidCrashReason;
3174
3175 switch (info->si_code)
3176 {
3177 default:
3178 assert(false && "unexpected si_code for SIGBUS");
3179 break;
3180 case BUS_ADRALN:
3181 reason = ProcessMessage::eIllegalAlignment;
3182 break;
3183 case BUS_ADRERR:
3184 reason = ProcessMessage::eIllegalAddress;
3185 break;
3186 case BUS_OBJERR:
3187 reason = ProcessMessage::eHardwareError;
3188 break;
3189 }
3190
3191 return reason;
3192}
3193#endif
3194
3195void
3196NativeProcessLinux::ServeOperation(OperationArgs *args)
3197{
3198 NativeProcessLinux *monitor = args->m_monitor;
3199
3200 // We are finised with the arguments and are ready to go. Sync with the
3201 // parent thread and start serving operations on the inferior.
3202 sem_post(&args->m_semaphore);
3203
3204 for(;;)
3205 {
3206 // wait for next pending operation
3207 if (sem_wait(&monitor->m_operation_pending))
3208 {
3209 if (errno == EINTR)
3210 continue;
3211 assert(false && "Unexpected errno from sem_wait");
3212 }
3213
3214 reinterpret_cast<Operation*>(monitor->m_operation)->Execute(monitor);
3215
3216 // notify calling thread that operation is complete
3217 sem_post(&monitor->m_operation_done);
3218 }
3219}
3220
3221void
3222NativeProcessLinux::DoOperation(void *op)
3223{
3224 Mutex::Locker lock(m_operation_mutex);
3225
3226 m_operation = op;
3227
3228 // notify operation thread that an operation is ready to be processed
3229 sem_post(&m_operation_pending);
3230
3231 // wait for operation to complete
3232 while (sem_wait(&m_operation_done))
3233 {
3234 if (errno == EINTR)
3235 continue;
3236 assert(false && "Unexpected errno from sem_wait");
3237 }
3238}
3239
3240Error
3241NativeProcessLinux::ReadMemory (lldb::addr_t addr, void *buf, lldb::addr_t size, lldb::addr_t &bytes_read)
3242{
3243 ReadOperation op(addr, buf, size, bytes_read);
3244 DoOperation(&op);
3245 return op.GetError ();
3246}
3247
3248Error
3249NativeProcessLinux::WriteMemory (lldb::addr_t addr, const void *buf, lldb::addr_t size, lldb::addr_t &bytes_written)
3250{
3251 WriteOperation op(addr, buf, size, bytes_written);
3252 DoOperation(&op);
3253 return op.GetError ();
3254}
3255
3256bool
3257NativeProcessLinux::ReadRegisterValue(lldb::tid_t tid, uint32_t offset, const char* reg_name,
3258 uint32_t size, RegisterValue &value)
3259{
3260 bool result;
3261 ReadRegOperation op(tid, offset, reg_name, value, result);
3262 DoOperation(&op);
3263 return result;
3264}
3265
3266bool
3267NativeProcessLinux::WriteRegisterValue(lldb::tid_t tid, unsigned offset,
3268 const char* reg_name, const RegisterValue &value)
3269{
3270 bool result;
3271 WriteRegOperation op(tid, offset, reg_name, value, result);
3272 DoOperation(&op);
3273 return result;
3274}
3275
3276bool
3277NativeProcessLinux::ReadGPR(lldb::tid_t tid, void *buf, size_t buf_size)
3278{
3279 bool result;
3280 ReadGPROperation op(tid, buf, buf_size, result);
3281 DoOperation(&op);
3282 return result;
3283}
3284
3285bool
3286NativeProcessLinux::ReadFPR(lldb::tid_t tid, void *buf, size_t buf_size)
3287{
3288 bool result;
3289 ReadFPROperation op(tid, buf, buf_size, result);
3290 DoOperation(&op);
3291 return result;
3292}
3293
3294bool
3295NativeProcessLinux::ReadRegisterSet(lldb::tid_t tid, void *buf, size_t buf_size, unsigned int regset)
3296{
3297 bool result;
3298 ReadRegisterSetOperation op(tid, buf, buf_size, regset, result);
3299 DoOperation(&op);
3300 return result;
3301}
3302
3303bool
3304NativeProcessLinux::WriteGPR(lldb::tid_t tid, void *buf, size_t buf_size)
3305{
3306 bool result;
3307 WriteGPROperation op(tid, buf, buf_size, result);
3308 DoOperation(&op);
3309 return result;
3310}
3311
3312bool
3313NativeProcessLinux::WriteFPR(lldb::tid_t tid, void *buf, size_t buf_size)
3314{
3315 bool result;
3316 WriteFPROperation op(tid, buf, buf_size, result);
3317 DoOperation(&op);
3318 return result;
3319}
3320
3321bool
3322NativeProcessLinux::WriteRegisterSet(lldb::tid_t tid, void *buf, size_t buf_size, unsigned int regset)
3323{
3324 bool result;
3325 WriteRegisterSetOperation op(tid, buf, buf_size, regset, result);
3326 DoOperation(&op);
3327 return result;
3328}
3329
3330bool
3331NativeProcessLinux::Resume (lldb::tid_t tid, uint32_t signo)
3332{
3333 bool result;
3334 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_PROCESS));
3335
3336 if (log)
3337 log->Printf ("NativeProcessLinux::%s() resuming thread = %" PRIu64 " with signal %s", __FUNCTION__, tid,
3338 GetUnixSignals().GetSignalAsCString (signo));
3339 ResumeOperation op (tid, signo, result);
3340 DoOperation (&op);
3341 if (log)
3342 log->Printf ("NativeProcessLinux::%s() resuming result = %s", __FUNCTION__, result ? "true" : "false");
3343 return result;
3344}
3345
3346bool
3347NativeProcessLinux::SingleStep(lldb::tid_t tid, uint32_t signo)
3348{
3349 bool result;
3350 SingleStepOperation op(tid, signo, result);
3351 DoOperation(&op);
3352 return result;
3353}
3354
3355bool
3356NativeProcessLinux::GetSignalInfo(lldb::tid_t tid, void *siginfo, int &ptrace_err)
3357{
3358 bool result;
3359 SiginfoOperation op(tid, siginfo, result, ptrace_err);
3360 DoOperation(&op);
3361 return result;
3362}
3363
3364bool
3365NativeProcessLinux::GetEventMessage(lldb::tid_t tid, unsigned long *message)
3366{
3367 bool result;
3368 EventMessageOperation op(tid, message, result);
3369 DoOperation(&op);
3370 return result;
3371}
3372
3373lldb_private::Error
3374NativeProcessLinux::Detach(lldb::tid_t tid)
3375{
3376 lldb_private::Error error;
3377 if (tid != LLDB_INVALID_THREAD_ID)
3378 {
3379 DetachOperation op(tid, error);
3380 DoOperation(&op);
3381 }
3382 return error;
3383}
3384
3385bool
3386NativeProcessLinux::DupDescriptor(const char *path, int fd, int flags)
3387{
3388 int target_fd = open(path, flags, 0666);
3389
3390 if (target_fd == -1)
3391 return false;
3392
3393 return (dup2(target_fd, fd) == -1) ? false : true;
3394}
3395
3396void
3397NativeProcessLinux::StopMonitoringChildProcess()
3398{
3399 lldb::thread_result_t thread_result;
3400
3401 if (IS_VALID_LLDB_HOST_THREAD(m_monitor_thread))
3402 {
3403 Host::ThreadCancel(m_monitor_thread, NULL);
3404 Host::ThreadJoin(m_monitor_thread, &thread_result, NULL);
3405 m_monitor_thread = LLDB_INVALID_HOST_THREAD;
3406 }
3407}
3408
3409void
3410NativeProcessLinux::StopMonitor()
3411{
3412 StopMonitoringChildProcess();
3413 StopOpThread();
3414 sem_destroy(&m_operation_pending);
3415 sem_destroy(&m_operation_done);
3416
3417 // TODO: validate whether this still holds, fix up comment.
3418 // Note: ProcessPOSIX passes the m_terminal_fd file descriptor to
3419 // Process::SetSTDIOFileDescriptor, which in turn transfers ownership of
3420 // the descriptor to a ConnectionFileDescriptor object. Consequently
3421 // even though still has the file descriptor, we shouldn't close it here.
3422}
3423
3424void
3425NativeProcessLinux::StopOpThread()
3426{
3427 lldb::thread_result_t result;
3428
3429 if (!IS_VALID_LLDB_HOST_THREAD(m_operation_thread))
3430 return;
3431
3432 Host::ThreadCancel(m_operation_thread, NULL);
3433 Host::ThreadJoin(m_operation_thread, &result, NULL);
3434 m_operation_thread = LLDB_INVALID_HOST_THREAD;
3435}
3436
3437bool
3438NativeProcessLinux::HasThreadNoLock (lldb::tid_t thread_id)
3439{
3440 for (auto thread_sp : m_threads)
3441 {
3442 assert (thread_sp && "thread list should not contain NULL threads");
3443 if (thread_sp->GetID () == thread_id)
3444 {
3445 // We have this thread.
3446 return true;
3447 }
3448 }
3449
3450 // We don't have this thread.
3451 return false;
3452}
3453
3454NativeThreadProtocolSP
3455NativeProcessLinux::MaybeGetThreadNoLock (lldb::tid_t thread_id)
3456{
3457 // CONSIDER organize threads by map - we can do better than linear.
3458 for (auto thread_sp : m_threads)
3459 {
3460 if (thread_sp->GetID () == thread_id)
3461 return thread_sp;
3462 }
3463
3464 // We don't have this thread.
3465 return NativeThreadProtocolSP ();
3466}
3467
3468bool
3469NativeProcessLinux::StopTrackingThread (lldb::tid_t thread_id)
3470{
3471 Mutex::Locker locker (m_threads_mutex);
3472 for (auto it = m_threads.begin (); it != m_threads.end (); ++it)
3473 {
3474 if (*it && ((*it)->GetID () == thread_id))
3475 {
3476 m_threads.erase (it);
3477 return true;
3478 }
3479 }
3480
3481 // Didn't find it.
3482 return false;
3483}
3484
3485NativeThreadProtocolSP
3486NativeProcessLinux::AddThread (lldb::tid_t thread_id)
3487{
3488 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_THREAD));
3489
3490 Mutex::Locker locker (m_threads_mutex);
3491
3492 if (log)
3493 {
3494 log->Printf ("NativeProcessLinux::%s pid %" PRIu64 " adding thread with tid %" PRIu64,
3495 __FUNCTION__,
3496 GetID (),
3497 thread_id);
3498 }
3499
3500 assert (!HasThreadNoLock (thread_id) && "attempted to add a thread by id that already exists");
3501
3502 // If this is the first thread, save it as the current thread
3503 if (m_threads.empty ())
3504 SetCurrentThreadID (thread_id);
3505
3506 NativeThreadProtocolSP thread_sp (new NativeThreadLinux (this, thread_id));
3507 m_threads.push_back (thread_sp);
3508
3509 return thread_sp;
3510}
3511
3512NativeThreadProtocolSP
3513NativeProcessLinux::GetOrCreateThread (lldb::tid_t thread_id, bool &created)
3514{
3515 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_THREAD));
3516
3517 Mutex::Locker locker (m_threads_mutex);
3518 if (log)
3519 {
3520 log->Printf ("NativeProcessLinux::%s pid %" PRIu64 " get/create thread with tid %" PRIu64,
3521 __FUNCTION__,
3522 GetID (),
3523 thread_id);
3524 }
3525
3526 // Retrieve the thread if it is already getting tracked.
3527 NativeThreadProtocolSP thread_sp = MaybeGetThreadNoLock (thread_id);
3528 if (thread_sp)
3529 {
3530 if (log)
3531 log->Printf ("NativeProcessLinux::%s pid %" PRIu64 " tid %" PRIu64 ": thread already tracked, returning",
3532 __FUNCTION__,
3533 GetID (),
3534 thread_id);
3535 created = false;
3536 return thread_sp;
3537
3538 }
3539
3540 // Create the thread metadata since it isn't being tracked.
3541 if (log)
3542 log->Printf ("NativeProcessLinux::%s pid %" PRIu64 " tid %" PRIu64 ": thread didn't exist, tracking now",
3543 __FUNCTION__,
3544 GetID (),
3545 thread_id);
3546
3547 thread_sp.reset (new NativeThreadLinux (this, thread_id));
3548 m_threads.push_back (thread_sp);
3549 created = true;
3550
3551 return thread_sp;
3552}
3553
3554Error
3555NativeProcessLinux::FixupBreakpointPCAsNeeded (NativeThreadProtocolSP &thread_sp)
3556{
3557 Log *log (GetLogIfAllCategoriesSet (LIBLLDB_LOG_THREAD));
3558
3559 Error error;
3560
3561 // Get a linux thread pointer.
3562 if (!thread_sp)
3563 {
3564 error.SetErrorString ("null thread_sp");
3565 if (log)
3566 log->Printf ("NativeProcessLinux::%s failed: %s", __FUNCTION__, error.AsCString ());
3567 return error;
3568 }
3569 NativeThreadLinux *const linux_thread_p = reinterpret_cast<NativeThreadLinux*> (thread_sp.get());
3570
3571 // Find out the size of a breakpoint (might depend on where we are in the code).
3572 NativeRegisterContextSP context_sp = linux_thread_p->GetRegisterContext ();
3573 if (!context_sp)
3574 {
3575 error.SetErrorString ("cannot get a NativeRegisterContext for the thread");
3576 if (log)
3577 log->Printf ("NativeProcessLinux::%s failed: %s", __FUNCTION__, error.AsCString ());
3578 return error;
3579 }
3580
3581 uint32_t breakpoint_size = 0;
3582 error = GetSoftwareBreakpointSize (context_sp, breakpoint_size);
3583 if (error.Fail ())
3584 {
3585 if (log)
3586 log->Printf ("NativeProcessLinux::%s GetBreakpointSize() failed: %s", __FUNCTION__, error.AsCString ());
3587 return error;
3588 }
3589 else
3590 {
3591 if (log)
3592 log->Printf ("NativeProcessLinux::%s breakpoint size: %" PRIu32, __FUNCTION__, breakpoint_size);
3593 }
3594
3595 // First try probing for a breakpoint at a software breakpoint location: PC - breakpoint size.
3596 const lldb::addr_t initial_pc_addr = context_sp->GetPC ();
3597 lldb::addr_t breakpoint_addr = initial_pc_addr;
3598 if (breakpoint_size > static_cast<lldb::addr_t> (0))
3599 {
3600 // Do not allow breakpoint probe to wrap around.
3601 if (breakpoint_addr >= static_cast<lldb::addr_t> (breakpoint_size))
3602 breakpoint_addr -= static_cast<lldb::addr_t> (breakpoint_size);
3603 }
3604
3605 // Check if we stopped because of a breakpoint.
3606 NativeBreakpointSP breakpoint_sp;
3607 error = m_breakpoint_list.GetBreakpoint (breakpoint_addr, breakpoint_sp);
3608 if (!error.Success () || !breakpoint_sp)
3609 {
3610 // We didn't find one at a software probe location. Nothing to do.
3611 if (log)
3612 log->Printf ("NativeProcessLinux::%s pid %" PRIu64 " no lldb breakpoint found at current pc with adjustment: 0x%" PRIx64, __FUNCTION__, GetID (), breakpoint_addr);
3613 return Error ();
3614 }
3615
3616 // If the breakpoint is not a software breakpoint, nothing to do.
3617 if (!breakpoint_sp->IsSoftwareBreakpoint ())
3618 {
3619 if (log)
3620 log->Printf ("NativeProcessLinux::%s pid %" PRIu64 " breakpoint found at 0x%" PRIx64 ", not software, nothing to adjust", __FUNCTION__, GetID (), breakpoint_addr);
3621 return Error ();
3622 }
3623
3624 //
3625 // We have a software breakpoint and need to adjust the PC.
3626 //
3627
3628 // Sanity check.
3629 if (breakpoint_size == 0)
3630 {
3631 // Nothing to do! How did we get here?
3632 if (log)
3633 log->Printf ("NativeProcessLinux::%s pid %" PRIu64 " breakpoint found at 0x%" PRIx64 ", it is software, but the size is zero, nothing to do (unexpected)", __FUNCTION__, GetID (), breakpoint_addr);
3634 return Error ();
3635 }
3636
3637 // Change the program counter.
3638 if (log)
3639 log->Printf ("NativeProcessLinux::%s pid %" PRIu64 " tid %" PRIu64 ": changing PC from 0x%" PRIx64 " to 0x%" PRIx64, __FUNCTION__, GetID (), linux_thread_p->GetID (), initial_pc_addr, breakpoint_addr);
3640
3641 error = context_sp->SetPC (breakpoint_addr);
3642 if (error.Fail ())
3643 {
3644 if (log)
3645 log->Printf ("NativeProcessLinux::%s pid %" PRIu64 " tid %" PRIu64 ": failed to set PC: %s", __FUNCTION__, GetID (), linux_thread_p->GetID (), error.AsCString ());
3646 return error;
3647 }
3648
3649 return error;
3650}