1 //===-- Process.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 // C Includes
11 // C++ Includes
12 #include <atomic>
13 #include <mutex>
14 
15 // Other libraries and framework includes
16 #include "llvm/Support/ScopedPrinter.h"
17 #include "llvm/Support/Threading.h"
18 
19 // Project includes
20 #include "Plugins/Process/Utility/InferiorCallPOSIX.h"
21 #include "lldb/Breakpoint/BreakpointLocation.h"
22 #include "lldb/Breakpoint/StoppointCallbackContext.h"
23 #include "lldb/Core/Debugger.h"
24 #include "lldb/Core/Event.h"
25 #include "lldb/Core/Module.h"
26 #include "lldb/Core/ModuleSpec.h"
27 #include "lldb/Core/PluginManager.h"
28 #include "lldb/Core/StreamFile.h"
29 #include "lldb/Expression/DiagnosticManager.h"
30 #include "lldb/Expression/IRDynamicChecks.h"
31 #include "lldb/Expression/UserExpression.h"
32 #include "lldb/Expression/UtilityFunction.h"
33 #include "lldb/Host/ConnectionFileDescriptor.h"
34 #include "lldb/Host/FileSystem.h"
35 #include "lldb/Host/Host.h"
36 #include "lldb/Host/HostInfo.h"
37 #include "lldb/Host/OptionParser.h"
38 #include "lldb/Host/Pipe.h"
39 #include "lldb/Host/Terminal.h"
40 #include "lldb/Host/ThreadLauncher.h"
41 #include "lldb/Interpreter/CommandInterpreter.h"
42 #include "lldb/Interpreter/OptionArgParser.h"
43 #include "lldb/Interpreter/OptionValueProperties.h"
44 #include "lldb/Symbol/Function.h"
45 #include "lldb/Symbol/Symbol.h"
46 #include "lldb/Target/ABI.h"
47 #include "lldb/Target/CPPLanguageRuntime.h"
48 #include "lldb/Target/DynamicLoader.h"
49 #include "lldb/Target/InstrumentationRuntime.h"
50 #include "lldb/Target/JITLoader.h"
51 #include "lldb/Target/JITLoaderList.h"
52 #include "lldb/Target/LanguageRuntime.h"
53 #include "lldb/Target/MemoryHistory.h"
54 #include "lldb/Target/MemoryRegionInfo.h"
55 #include "lldb/Target/ObjCLanguageRuntime.h"
56 #include "lldb/Target/OperatingSystem.h"
57 #include "lldb/Target/Platform.h"
58 #include "lldb/Target/Process.h"
59 #include "lldb/Target/RegisterContext.h"
60 #include "lldb/Target/StopInfo.h"
61 #include "lldb/Target/StructuredDataPlugin.h"
62 #include "lldb/Target/SystemRuntime.h"
63 #include "lldb/Target/Target.h"
64 #include "lldb/Target/TargetList.h"
65 #include "lldb/Target/Thread.h"
66 #include "lldb/Target/ThreadPlan.h"
67 #include "lldb/Target/ThreadPlanBase.h"
68 #include "lldb/Target/UnixSignals.h"
69 #include "lldb/Utility/Log.h"
70 #include "lldb/Utility/NameMatches.h"
71 #include "lldb/Utility/SelectHelper.h"
72 #include "lldb/Utility/State.h"
73 
74 using namespace lldb;
75 using namespace lldb_private;
76 using namespace std::chrono;
77 
78 // Comment out line below to disable memory caching, overriding the process
79 // setting target.process.disable-memory-cache
80 #define ENABLE_MEMORY_CACHING
81 
82 #ifdef ENABLE_MEMORY_CACHING
83 #define DISABLE_MEM_CACHE_DEFAULT false
84 #else
85 #define DISABLE_MEM_CACHE_DEFAULT true
86 #endif
87 
88 class ProcessOptionValueProperties : public OptionValueProperties {
89 public:
90   ProcessOptionValueProperties(const ConstString &name)
91       : OptionValueProperties(name) {}
92 
93   // This constructor is used when creating ProcessOptionValueProperties when
94   // it is part of a new lldb_private::Process instance. It will copy all
95   // current global property values as needed
96   ProcessOptionValueProperties(ProcessProperties *global_properties)
97       : OptionValueProperties(*global_properties->GetValueProperties()) {}
98 
99   const Property *GetPropertyAtIndex(const ExecutionContext *exe_ctx,
100                                      bool will_modify,
101                                      uint32_t idx) const override {
102     // When getting the value for a key from the process options, we will
103     // always try and grab the setting from the current process if there is
104     // one. Else we just use the one from this instance.
105     if (exe_ctx) {
106       Process *process = exe_ctx->GetProcessPtr();
107       if (process) {
108         ProcessOptionValueProperties *instance_properties =
109             static_cast<ProcessOptionValueProperties *>(
110                 process->GetValueProperties().get());
111         if (this != instance_properties)
112           return instance_properties->ProtectedGetPropertyAtIndex(idx);
113       }
114     }
115     return ProtectedGetPropertyAtIndex(idx);
116   }
117 };
118 
119 static PropertyDefinition g_properties[] = {
120     {"disable-memory-cache", OptionValue::eTypeBoolean, false,
121      DISABLE_MEM_CACHE_DEFAULT, nullptr, nullptr,
122      "Disable reading and caching of memory in fixed-size units."},
123     {"extra-startup-command", OptionValue::eTypeArray, false,
124      OptionValue::eTypeString, nullptr, nullptr,
125      "A list containing extra commands understood by the particular process "
126      "plugin used.  "
127      "For instance, to turn on debugserver logging set this to "
128      "\"QSetLogging:bitmask=LOG_DEFAULT;\""},
129     {"ignore-breakpoints-in-expressions", OptionValue::eTypeBoolean, true, true,
130      nullptr, nullptr,
131      "If true, breakpoints will be ignored during expression evaluation."},
132     {"unwind-on-error-in-expressions", OptionValue::eTypeBoolean, true, true,
133      nullptr, nullptr, "If true, errors in expression evaluation will unwind "
134                        "the stack back to the state before the call."},
135     {"python-os-plugin-path", OptionValue::eTypeFileSpec, false, true, nullptr,
136      nullptr, "A path to a python OS plug-in module file that contains a "
137               "OperatingSystemPlugIn class."},
138     {"stop-on-sharedlibrary-events", OptionValue::eTypeBoolean, true, false,
139      nullptr, nullptr,
140      "If true, stop when a shared library is loaded or unloaded."},
141     {"detach-keeps-stopped", OptionValue::eTypeBoolean, true, false, nullptr,
142      nullptr, "If true, detach will attempt to keep the process stopped."},
143     {"memory-cache-line-size", OptionValue::eTypeUInt64, false, 512, nullptr,
144      nullptr, "The memory cache line size"},
145     {"optimization-warnings", OptionValue::eTypeBoolean, false, true, nullptr,
146      nullptr, "If true, warn when stopped in code that is optimized where "
147               "stepping and variable availability may not behave as expected."},
148     {"stop-on-exec", OptionValue::eTypeBoolean, true, true,
149      nullptr, nullptr,
150      "If true, stop when a shared library is loaded or unloaded."},
151     {nullptr, OptionValue::eTypeInvalid, false, 0, nullptr, nullptr, nullptr}};
152 
153 enum {
154   ePropertyDisableMemCache,
155   ePropertyExtraStartCommand,
156   ePropertyIgnoreBreakpointsInExpressions,
157   ePropertyUnwindOnErrorInExpressions,
158   ePropertyPythonOSPluginPath,
159   ePropertyStopOnSharedLibraryEvents,
160   ePropertyDetachKeepsStopped,
161   ePropertyMemCacheLineSize,
162   ePropertyWarningOptimization,
163   ePropertyStopOnExec
164 };
165 
166 ProcessProperties::ProcessProperties(lldb_private::Process *process)
167     : Properties(),
168       m_process(process) // Can be nullptr for global ProcessProperties
169 {
170   if (process == nullptr) {
171     // Global process properties, set them up one time
172     m_collection_sp.reset(
173         new ProcessOptionValueProperties(ConstString("process")));
174     m_collection_sp->Initialize(g_properties);
175     m_collection_sp->AppendProperty(
176         ConstString("thread"), ConstString("Settings specific to threads."),
177         true, Thread::GetGlobalProperties()->GetValueProperties());
178   } else {
179     m_collection_sp.reset(
180         new ProcessOptionValueProperties(Process::GetGlobalProperties().get()));
181     m_collection_sp->SetValueChangedCallback(
182         ePropertyPythonOSPluginPath,
183         ProcessProperties::OptionValueChangedCallback, this);
184   }
185 }
186 
187 ProcessProperties::~ProcessProperties() = default;
188 
189 void ProcessProperties::OptionValueChangedCallback(void *baton,
190                                                    OptionValue *option_value) {
191   ProcessProperties *properties = (ProcessProperties *)baton;
192   if (properties->m_process)
193     properties->m_process->LoadOperatingSystemPlugin(true);
194 }
195 
196 bool ProcessProperties::GetDisableMemoryCache() const {
197   const uint32_t idx = ePropertyDisableMemCache;
198   return m_collection_sp->GetPropertyAtIndexAsBoolean(
199       nullptr, idx, g_properties[idx].default_uint_value != 0);
200 }
201 
202 uint64_t ProcessProperties::GetMemoryCacheLineSize() const {
203   const uint32_t idx = ePropertyMemCacheLineSize;
204   return m_collection_sp->GetPropertyAtIndexAsUInt64(
205       nullptr, idx, g_properties[idx].default_uint_value);
206 }
207 
208 Args ProcessProperties::GetExtraStartupCommands() const {
209   Args args;
210   const uint32_t idx = ePropertyExtraStartCommand;
211   m_collection_sp->GetPropertyAtIndexAsArgs(nullptr, idx, args);
212   return args;
213 }
214 
215 void ProcessProperties::SetExtraStartupCommands(const Args &args) {
216   const uint32_t idx = ePropertyExtraStartCommand;
217   m_collection_sp->SetPropertyAtIndexFromArgs(nullptr, idx, args);
218 }
219 
220 FileSpec ProcessProperties::GetPythonOSPluginPath() const {
221   const uint32_t idx = ePropertyPythonOSPluginPath;
222   return m_collection_sp->GetPropertyAtIndexAsFileSpec(nullptr, idx);
223 }
224 
225 void ProcessProperties::SetPythonOSPluginPath(const FileSpec &file) {
226   const uint32_t idx = ePropertyPythonOSPluginPath;
227   m_collection_sp->SetPropertyAtIndexAsFileSpec(nullptr, idx, file);
228 }
229 
230 bool ProcessProperties::GetIgnoreBreakpointsInExpressions() const {
231   const uint32_t idx = ePropertyIgnoreBreakpointsInExpressions;
232   return m_collection_sp->GetPropertyAtIndexAsBoolean(
233       nullptr, idx, g_properties[idx].default_uint_value != 0);
234 }
235 
236 void ProcessProperties::SetIgnoreBreakpointsInExpressions(bool ignore) {
237   const uint32_t idx = ePropertyIgnoreBreakpointsInExpressions;
238   m_collection_sp->SetPropertyAtIndexAsBoolean(nullptr, idx, ignore);
239 }
240 
241 bool ProcessProperties::GetUnwindOnErrorInExpressions() const {
242   const uint32_t idx = ePropertyUnwindOnErrorInExpressions;
243   return m_collection_sp->GetPropertyAtIndexAsBoolean(
244       nullptr, idx, g_properties[idx].default_uint_value != 0);
245 }
246 
247 void ProcessProperties::SetUnwindOnErrorInExpressions(bool ignore) {
248   const uint32_t idx = ePropertyUnwindOnErrorInExpressions;
249   m_collection_sp->SetPropertyAtIndexAsBoolean(nullptr, idx, ignore);
250 }
251 
252 bool ProcessProperties::GetStopOnSharedLibraryEvents() const {
253   const uint32_t idx = ePropertyStopOnSharedLibraryEvents;
254   return m_collection_sp->GetPropertyAtIndexAsBoolean(
255       nullptr, idx, g_properties[idx].default_uint_value != 0);
256 }
257 
258 void ProcessProperties::SetStopOnSharedLibraryEvents(bool stop) {
259   const uint32_t idx = ePropertyStopOnSharedLibraryEvents;
260   m_collection_sp->SetPropertyAtIndexAsBoolean(nullptr, idx, stop);
261 }
262 
263 bool ProcessProperties::GetDetachKeepsStopped() const {
264   const uint32_t idx = ePropertyDetachKeepsStopped;
265   return m_collection_sp->GetPropertyAtIndexAsBoolean(
266       nullptr, idx, g_properties[idx].default_uint_value != 0);
267 }
268 
269 void ProcessProperties::SetDetachKeepsStopped(bool stop) {
270   const uint32_t idx = ePropertyDetachKeepsStopped;
271   m_collection_sp->SetPropertyAtIndexAsBoolean(nullptr, idx, stop);
272 }
273 
274 bool ProcessProperties::GetWarningsOptimization() const {
275   const uint32_t idx = ePropertyWarningOptimization;
276   return m_collection_sp->GetPropertyAtIndexAsBoolean(
277       nullptr, idx, g_properties[idx].default_uint_value != 0);
278 }
279 
280 bool ProcessProperties::GetStopOnExec() const {
281   const uint32_t idx = ePropertyStopOnExec;
282   return m_collection_sp->GetPropertyAtIndexAsBoolean(
283       nullptr, idx, g_properties[idx].default_uint_value != 0);
284 }
285 
286 void ProcessInstanceInfo::Dump(Stream &s, Platform *platform) const {
287   const char *cstr;
288   if (m_pid != LLDB_INVALID_PROCESS_ID)
289     s.Printf("    pid = %" PRIu64 "\n", m_pid);
290 
291   if (m_parent_pid != LLDB_INVALID_PROCESS_ID)
292     s.Printf(" parent = %" PRIu64 "\n", m_parent_pid);
293 
294   if (m_executable) {
295     s.Printf("   name = %s\n", m_executable.GetFilename().GetCString());
296     s.PutCString("   file = ");
297     m_executable.Dump(&s);
298     s.EOL();
299   }
300   const uint32_t argc = m_arguments.GetArgumentCount();
301   if (argc > 0) {
302     for (uint32_t i = 0; i < argc; i++) {
303       const char *arg = m_arguments.GetArgumentAtIndex(i);
304       if (i < 10)
305         s.Printf(" arg[%u] = %s\n", i, arg);
306       else
307         s.Printf("arg[%u] = %s\n", i, arg);
308     }
309   }
310 
311   s.Format("{0}", m_environment);
312 
313   if (m_arch.IsValid()) {
314     s.Printf("   arch = ");
315     m_arch.DumpTriple(s);
316     s.EOL();
317   }
318 
319   if (m_uid != UINT32_MAX) {
320     cstr = platform->GetUserName(m_uid);
321     s.Printf("    uid = %-5u (%s)\n", m_uid, cstr ? cstr : "");
322   }
323   if (m_gid != UINT32_MAX) {
324     cstr = platform->GetGroupName(m_gid);
325     s.Printf("    gid = %-5u (%s)\n", m_gid, cstr ? cstr : "");
326   }
327   if (m_euid != UINT32_MAX) {
328     cstr = platform->GetUserName(m_euid);
329     s.Printf("   euid = %-5u (%s)\n", m_euid, cstr ? cstr : "");
330   }
331   if (m_egid != UINT32_MAX) {
332     cstr = platform->GetGroupName(m_egid);
333     s.Printf("   egid = %-5u (%s)\n", m_egid, cstr ? cstr : "");
334   }
335 }
336 
337 void ProcessInstanceInfo::DumpTableHeader(Stream &s, Platform *platform,
338                                           bool show_args, bool verbose) {
339   const char *label;
340   if (show_args || verbose)
341     label = "ARGUMENTS";
342   else
343     label = "NAME";
344 
345   if (verbose) {
346     s.Printf("PID    PARENT USER       GROUP      EFF USER   EFF GROUP  TRIPLE "
347              "                  %s\n",
348              label);
349     s.PutCString("====== ====== ========== ========== ========== ========== "
350                  "======================== ============================\n");
351   } else {
352     s.Printf("PID    PARENT USER       TRIPLE                   %s\n", label);
353     s.PutCString("====== ====== ========== ======================== "
354                  "============================\n");
355   }
356 }
357 
358 void ProcessInstanceInfo::DumpAsTableRow(Stream &s, Platform *platform,
359                                          bool show_args, bool verbose) const {
360   if (m_pid != LLDB_INVALID_PROCESS_ID) {
361     const char *cstr;
362     s.Printf("%-6" PRIu64 " %-6" PRIu64 " ", m_pid, m_parent_pid);
363 
364     StreamString arch_strm;
365     if (m_arch.IsValid())
366       m_arch.DumpTriple(arch_strm);
367 
368     if (verbose) {
369       cstr = platform->GetUserName(m_uid);
370       if (cstr &&
371           cstr[0]) // Watch for empty string that indicates lookup failed
372         s.Printf("%-10s ", cstr);
373       else
374         s.Printf("%-10u ", m_uid);
375 
376       cstr = platform->GetGroupName(m_gid);
377       if (cstr &&
378           cstr[0]) // Watch for empty string that indicates lookup failed
379         s.Printf("%-10s ", cstr);
380       else
381         s.Printf("%-10u ", m_gid);
382 
383       cstr = platform->GetUserName(m_euid);
384       if (cstr &&
385           cstr[0]) // Watch for empty string that indicates lookup failed
386         s.Printf("%-10s ", cstr);
387       else
388         s.Printf("%-10u ", m_euid);
389 
390       cstr = platform->GetGroupName(m_egid);
391       if (cstr &&
392           cstr[0]) // Watch for empty string that indicates lookup failed
393         s.Printf("%-10s ", cstr);
394       else
395         s.Printf("%-10u ", m_egid);
396 
397       s.Printf("%-24s ", arch_strm.GetData());
398     } else {
399       s.Printf("%-10s %-24s ", platform->GetUserName(m_euid),
400                arch_strm.GetData());
401     }
402 
403     if (verbose || show_args) {
404       const uint32_t argc = m_arguments.GetArgumentCount();
405       if (argc > 0) {
406         for (uint32_t i = 0; i < argc; i++) {
407           if (i > 0)
408             s.PutChar(' ');
409           s.PutCString(m_arguments.GetArgumentAtIndex(i));
410         }
411       }
412     } else {
413       s.PutCString(GetName());
414     }
415 
416     s.EOL();
417   }
418 }
419 
420 Status ProcessLaunchCommandOptions::SetOptionValue(
421     uint32_t option_idx, llvm::StringRef option_arg,
422     ExecutionContext *execution_context) {
423   Status error;
424   const int short_option = m_getopt_table[option_idx].val;
425 
426   switch (short_option) {
427   case 's': // Stop at program entry point
428     launch_info.GetFlags().Set(eLaunchFlagStopAtEntry);
429     break;
430 
431   case 'i': // STDIN for read only
432   {
433     FileAction action;
434     if (action.Open(STDIN_FILENO, FileSpec{option_arg, false}, true, false))
435       launch_info.AppendFileAction(action);
436     break;
437   }
438 
439   case 'o': // Open STDOUT for write only
440   {
441     FileAction action;
442     if (action.Open(STDOUT_FILENO, FileSpec{option_arg, false}, false, true))
443       launch_info.AppendFileAction(action);
444     break;
445   }
446 
447   case 'e': // STDERR for write only
448   {
449     FileAction action;
450     if (action.Open(STDERR_FILENO, FileSpec{option_arg, false}, false, true))
451       launch_info.AppendFileAction(action);
452     break;
453   }
454 
455   case 'p': // Process plug-in name
456     launch_info.SetProcessPluginName(option_arg);
457     break;
458 
459   case 'n': // Disable STDIO
460   {
461     FileAction action;
462     const FileSpec dev_null{FileSystem::DEV_NULL, false};
463     if (action.Open(STDIN_FILENO, dev_null, true, false))
464       launch_info.AppendFileAction(action);
465     if (action.Open(STDOUT_FILENO, dev_null, false, true))
466       launch_info.AppendFileAction(action);
467     if (action.Open(STDERR_FILENO, dev_null, false, true))
468       launch_info.AppendFileAction(action);
469     break;
470   }
471 
472   case 'w':
473     launch_info.SetWorkingDirectory(FileSpec{option_arg, false});
474     break;
475 
476   case 't': // Open process in new terminal window
477     launch_info.GetFlags().Set(eLaunchFlagLaunchInTTY);
478     break;
479 
480   case 'a': {
481     TargetSP target_sp =
482         execution_context ? execution_context->GetTargetSP() : TargetSP();
483     PlatformSP platform_sp =
484         target_sp ? target_sp->GetPlatform() : PlatformSP();
485     launch_info.GetArchitecture() =
486         Platform::GetAugmentedArchSpec(platform_sp.get(), option_arg);
487   } break;
488 
489   case 'A': // Disable ASLR.
490   {
491     bool success;
492     const bool disable_aslr_arg =
493         OptionArgParser::ToBoolean(option_arg, true, &success);
494     if (success)
495       disable_aslr = disable_aslr_arg ? eLazyBoolYes : eLazyBoolNo;
496     else
497       error.SetErrorStringWithFormat(
498           "Invalid boolean value for disable-aslr option: '%s'",
499           option_arg.empty() ? "<null>" : option_arg.str().c_str());
500     break;
501   }
502 
503   case 'X': // shell expand args.
504   {
505     bool success;
506     const bool expand_args =
507         OptionArgParser::ToBoolean(option_arg, true, &success);
508     if (success)
509       launch_info.SetShellExpandArguments(expand_args);
510     else
511       error.SetErrorStringWithFormat(
512           "Invalid boolean value for shell-expand-args option: '%s'",
513           option_arg.empty() ? "<null>" : option_arg.str().c_str());
514     break;
515   }
516 
517   case 'c':
518     if (!option_arg.empty())
519       launch_info.SetShell(FileSpec(option_arg, false));
520     else
521       launch_info.SetShell(HostInfo::GetDefaultShell());
522     break;
523 
524   case 'v':
525     launch_info.GetEnvironment().insert(option_arg);
526     break;
527 
528   default:
529     error.SetErrorStringWithFormat("unrecognized short option character '%c'",
530                                    short_option);
531     break;
532   }
533   return error;
534 }
535 
536 static OptionDefinition g_process_launch_options[] = {
537     {LLDB_OPT_SET_ALL, false, "stop-at-entry", 's', OptionParser::eNoArgument,
538      nullptr, nullptr, 0, eArgTypeNone,
539      "Stop at the entry point of the program when launching a process."},
540     {LLDB_OPT_SET_ALL, false, "disable-aslr", 'A',
541      OptionParser::eRequiredArgument, nullptr, nullptr, 0, eArgTypeBoolean,
542      "Set whether to disable address space layout randomization when launching "
543      "a process."},
544     {LLDB_OPT_SET_ALL, false, "plugin", 'p', OptionParser::eRequiredArgument,
545      nullptr, nullptr, 0, eArgTypePlugin,
546      "Name of the process plugin you want to use."},
547     {LLDB_OPT_SET_ALL, false, "working-dir", 'w',
548      OptionParser::eRequiredArgument, nullptr, nullptr, 0,
549      eArgTypeDirectoryName,
550      "Set the current working directory to <path> when running the inferior."},
551     {LLDB_OPT_SET_ALL, false, "arch", 'a', OptionParser::eRequiredArgument,
552      nullptr, nullptr, 0, eArgTypeArchitecture,
553      "Set the architecture for the process to launch when ambiguous."},
554     {LLDB_OPT_SET_ALL, false, "environment", 'v',
555      OptionParser::eRequiredArgument, nullptr, nullptr, 0, eArgTypeNone,
556      "Specify an environment variable name/value string (--environment "
557      "NAME=VALUE). Can be specified multiple times for subsequent environment "
558      "entries."},
559     {LLDB_OPT_SET_1 | LLDB_OPT_SET_2 | LLDB_OPT_SET_3, false, "shell", 'c',
560      OptionParser::eOptionalArgument, nullptr, nullptr, 0, eArgTypeFilename,
561      "Run the process in a shell (not supported on all platforms)."},
562 
563     {LLDB_OPT_SET_1, false, "stdin", 'i', OptionParser::eRequiredArgument,
564      nullptr, nullptr, 0, eArgTypeFilename,
565      "Redirect stdin for the process to <filename>."},
566     {LLDB_OPT_SET_1, false, "stdout", 'o', OptionParser::eRequiredArgument,
567      nullptr, nullptr, 0, eArgTypeFilename,
568      "Redirect stdout for the process to <filename>."},
569     {LLDB_OPT_SET_1, false, "stderr", 'e', OptionParser::eRequiredArgument,
570      nullptr, nullptr, 0, eArgTypeFilename,
571      "Redirect stderr for the process to <filename>."},
572 
573     {LLDB_OPT_SET_2, false, "tty", 't', OptionParser::eNoArgument, nullptr,
574      nullptr, 0, eArgTypeNone,
575      "Start the process in a terminal (not supported on all platforms)."},
576 
577     {LLDB_OPT_SET_3, false, "no-stdio", 'n', OptionParser::eNoArgument, nullptr,
578      nullptr, 0, eArgTypeNone,
579      "Do not set up for terminal I/O to go to running process."},
580     {LLDB_OPT_SET_4, false, "shell-expand-args", 'X',
581      OptionParser::eRequiredArgument, nullptr, nullptr, 0, eArgTypeBoolean,
582      "Set whether to shell expand arguments to the process when launching."},
583 };
584 
585 llvm::ArrayRef<OptionDefinition> ProcessLaunchCommandOptions::GetDefinitions() {
586   return llvm::makeArrayRef(g_process_launch_options);
587 }
588 
589 bool ProcessInstanceInfoMatch::NameMatches(const char *process_name) const {
590   if (m_name_match_type == NameMatch::Ignore || process_name == nullptr)
591     return true;
592   const char *match_name = m_match_info.GetName();
593   if (!match_name)
594     return true;
595 
596   return lldb_private::NameMatches(process_name, m_name_match_type, match_name);
597 }
598 
599 bool ProcessInstanceInfoMatch::Matches(
600     const ProcessInstanceInfo &proc_info) const {
601   if (!NameMatches(proc_info.GetName()))
602     return false;
603 
604   if (m_match_info.ProcessIDIsValid() &&
605       m_match_info.GetProcessID() != proc_info.GetProcessID())
606     return false;
607 
608   if (m_match_info.ParentProcessIDIsValid() &&
609       m_match_info.GetParentProcessID() != proc_info.GetParentProcessID())
610     return false;
611 
612   if (m_match_info.UserIDIsValid() &&
613       m_match_info.GetUserID() != proc_info.GetUserID())
614     return false;
615 
616   if (m_match_info.GroupIDIsValid() &&
617       m_match_info.GetGroupID() != proc_info.GetGroupID())
618     return false;
619 
620   if (m_match_info.EffectiveUserIDIsValid() &&
621       m_match_info.GetEffectiveUserID() != proc_info.GetEffectiveUserID())
622     return false;
623 
624   if (m_match_info.EffectiveGroupIDIsValid() &&
625       m_match_info.GetEffectiveGroupID() != proc_info.GetEffectiveGroupID())
626     return false;
627 
628   if (m_match_info.GetArchitecture().IsValid() &&
629       !m_match_info.GetArchitecture().IsCompatibleMatch(
630           proc_info.GetArchitecture()))
631     return false;
632   return true;
633 }
634 
635 bool ProcessInstanceInfoMatch::MatchAllProcesses() const {
636   if (m_name_match_type != NameMatch::Ignore)
637     return false;
638 
639   if (m_match_info.ProcessIDIsValid())
640     return false;
641 
642   if (m_match_info.ParentProcessIDIsValid())
643     return false;
644 
645   if (m_match_info.UserIDIsValid())
646     return false;
647 
648   if (m_match_info.GroupIDIsValid())
649     return false;
650 
651   if (m_match_info.EffectiveUserIDIsValid())
652     return false;
653 
654   if (m_match_info.EffectiveGroupIDIsValid())
655     return false;
656 
657   if (m_match_info.GetArchitecture().IsValid())
658     return false;
659 
660   if (m_match_all_users)
661     return false;
662 
663   return true;
664 }
665 
666 void ProcessInstanceInfoMatch::Clear() {
667   m_match_info.Clear();
668   m_name_match_type = NameMatch::Ignore;
669   m_match_all_users = false;
670 }
671 
672 ProcessSP Process::FindPlugin(lldb::TargetSP target_sp,
673                               llvm::StringRef plugin_name,
674                               ListenerSP listener_sp,
675                               const FileSpec *crash_file_path) {
676   static uint32_t g_process_unique_id = 0;
677 
678   ProcessSP process_sp;
679   ProcessCreateInstance create_callback = nullptr;
680   if (!plugin_name.empty()) {
681     ConstString const_plugin_name(plugin_name);
682     create_callback =
683         PluginManager::GetProcessCreateCallbackForPluginName(const_plugin_name);
684     if (create_callback) {
685       process_sp = create_callback(target_sp, listener_sp, crash_file_path);
686       if (process_sp) {
687         if (process_sp->CanDebug(target_sp, true)) {
688           process_sp->m_process_unique_id = ++g_process_unique_id;
689         } else
690           process_sp.reset();
691       }
692     }
693   } else {
694     for (uint32_t idx = 0;
695          (create_callback =
696               PluginManager::GetProcessCreateCallbackAtIndex(idx)) != nullptr;
697          ++idx) {
698       process_sp = create_callback(target_sp, listener_sp, crash_file_path);
699       if (process_sp) {
700         if (process_sp->CanDebug(target_sp, false)) {
701           process_sp->m_process_unique_id = ++g_process_unique_id;
702           break;
703         } else
704           process_sp.reset();
705       }
706     }
707   }
708   return process_sp;
709 }
710 
711 ConstString &Process::GetStaticBroadcasterClass() {
712   static ConstString class_name("lldb.process");
713   return class_name;
714 }
715 
716 Process::Process(lldb::TargetSP target_sp, ListenerSP listener_sp)
717     : Process(target_sp, listener_sp,
718               UnixSignals::Create(HostInfo::GetArchitecture())) {
719   // This constructor just delegates to the full Process constructor,
720   // defaulting to using the Host's UnixSignals.
721 }
722 
723 Process::Process(lldb::TargetSP target_sp, ListenerSP listener_sp,
724                  const UnixSignalsSP &unix_signals_sp)
725     : ProcessProperties(this), UserID(LLDB_INVALID_PROCESS_ID),
726       Broadcaster((target_sp->GetDebugger().GetBroadcasterManager()),
727                   Process::GetStaticBroadcasterClass().AsCString()),
728       m_target_wp(target_sp), m_public_state(eStateUnloaded),
729       m_private_state(eStateUnloaded),
730       m_private_state_broadcaster(nullptr,
731                                   "lldb.process.internal_state_broadcaster"),
732       m_private_state_control_broadcaster(
733           nullptr, "lldb.process.internal_state_control_broadcaster"),
734       m_private_state_listener_sp(
735           Listener::MakeListener("lldb.process.internal_state_listener")),
736       m_mod_id(), m_process_unique_id(0), m_thread_index_id(0),
737       m_thread_id_to_index_id_map(), m_exit_status(-1), m_exit_string(),
738       m_exit_status_mutex(), m_thread_mutex(), m_thread_list_real(this),
739       m_thread_list(this), m_extended_thread_list(this),
740       m_extended_thread_stop_id(0), m_queue_list(this), m_queue_list_stop_id(0),
741       m_notifications(), m_image_tokens(), m_listener_sp(listener_sp),
742       m_breakpoint_site_list(), m_dynamic_checkers_ap(),
743       m_unix_signals_sp(unix_signals_sp), m_abi_sp(), m_process_input_reader(),
744       m_stdio_communication("process.stdio"), m_stdio_communication_mutex(),
745       m_stdin_forward(false), m_stdout_data(), m_stderr_data(),
746       m_profile_data_comm_mutex(), m_profile_data(), m_iohandler_sync(0),
747       m_memory_cache(*this), m_allocated_memory_cache(*this),
748       m_should_detach(false), m_next_event_action_ap(), m_public_run_lock(),
749       m_private_run_lock(), m_finalizing(false), m_finalize_called(false),
750       m_clear_thread_plans_on_stop(false), m_force_next_event_delivery(false),
751       m_last_broadcast_state(eStateInvalid), m_destroy_in_process(false),
752       m_can_interpret_function_calls(false), m_warnings_issued(),
753       m_run_thread_plan_lock(), m_can_jit(eCanJITDontKnow) {
754   CheckInWithManager();
755 
756   Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_OBJECT));
757   if (log)
758     log->Printf("%p Process::Process()", static_cast<void *>(this));
759 
760   if (!m_unix_signals_sp)
761     m_unix_signals_sp = std::make_shared<UnixSignals>();
762 
763   SetEventName(eBroadcastBitStateChanged, "state-changed");
764   SetEventName(eBroadcastBitInterrupt, "interrupt");
765   SetEventName(eBroadcastBitSTDOUT, "stdout-available");
766   SetEventName(eBroadcastBitSTDERR, "stderr-available");
767   SetEventName(eBroadcastBitProfileData, "profile-data-available");
768   SetEventName(eBroadcastBitStructuredData, "structured-data-available");
769 
770   m_private_state_control_broadcaster.SetEventName(
771       eBroadcastInternalStateControlStop, "control-stop");
772   m_private_state_control_broadcaster.SetEventName(
773       eBroadcastInternalStateControlPause, "control-pause");
774   m_private_state_control_broadcaster.SetEventName(
775       eBroadcastInternalStateControlResume, "control-resume");
776 
777   m_listener_sp->StartListeningForEvents(
778       this, eBroadcastBitStateChanged | eBroadcastBitInterrupt |
779                 eBroadcastBitSTDOUT | eBroadcastBitSTDERR |
780                 eBroadcastBitProfileData | eBroadcastBitStructuredData);
781 
782   m_private_state_listener_sp->StartListeningForEvents(
783       &m_private_state_broadcaster,
784       eBroadcastBitStateChanged | eBroadcastBitInterrupt);
785 
786   m_private_state_listener_sp->StartListeningForEvents(
787       &m_private_state_control_broadcaster,
788       eBroadcastInternalStateControlStop | eBroadcastInternalStateControlPause |
789           eBroadcastInternalStateControlResume);
790   // We need something valid here, even if just the default UnixSignalsSP.
791   assert(m_unix_signals_sp && "null m_unix_signals_sp after initialization");
792 
793   // Allow the platform to override the default cache line size
794   OptionValueSP value_sp =
795       m_collection_sp
796           ->GetPropertyAtIndex(nullptr, true, ePropertyMemCacheLineSize)
797           ->GetValue();
798   uint32_t platform_cache_line_size =
799       target_sp->GetPlatform()->GetDefaultMemoryCacheLineSize();
800   if (!value_sp->OptionWasSet() && platform_cache_line_size != 0)
801     value_sp->SetUInt64Value(platform_cache_line_size);
802 }
803 
804 Process::~Process() {
805   Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_OBJECT));
806   if (log)
807     log->Printf("%p Process::~Process()", static_cast<void *>(this));
808   StopPrivateStateThread();
809 
810   // ThreadList::Clear() will try to acquire this process's mutex, so
811   // explicitly clear the thread list here to ensure that the mutex is not
812   // destroyed before the thread list.
813   m_thread_list.Clear();
814 }
815 
816 const ProcessPropertiesSP &Process::GetGlobalProperties() {
817   // NOTE: intentional leak so we don't crash if global destructor chain gets
818   // called as other threads still use the result of this function
819   static ProcessPropertiesSP *g_settings_sp_ptr =
820       new ProcessPropertiesSP(new ProcessProperties(nullptr));
821   return *g_settings_sp_ptr;
822 }
823 
824 void Process::Finalize() {
825   m_finalizing = true;
826 
827   // Destroy this process if needed
828   switch (GetPrivateState()) {
829   case eStateConnected:
830   case eStateAttaching:
831   case eStateLaunching:
832   case eStateStopped:
833   case eStateRunning:
834   case eStateStepping:
835   case eStateCrashed:
836   case eStateSuspended:
837     Destroy(false);
838     break;
839 
840   case eStateInvalid:
841   case eStateUnloaded:
842   case eStateDetached:
843   case eStateExited:
844     break;
845   }
846 
847   // Clear our broadcaster before we proceed with destroying
848   Broadcaster::Clear();
849 
850   // Do any cleanup needed prior to being destructed... Subclasses that
851   // override this method should call this superclass method as well.
852 
853   // We need to destroy the loader before the derived Process class gets
854   // destroyed since it is very likely that undoing the loader will require
855   // access to the real process.
856   m_dynamic_checkers_ap.reset();
857   m_abi_sp.reset();
858   m_os_ap.reset();
859   m_system_runtime_ap.reset();
860   m_dyld_ap.reset();
861   m_jit_loaders_ap.reset();
862   m_thread_list_real.Destroy();
863   m_thread_list.Destroy();
864   m_extended_thread_list.Destroy();
865   m_queue_list.Clear();
866   m_queue_list_stop_id = 0;
867   std::vector<Notifications> empty_notifications;
868   m_notifications.swap(empty_notifications);
869   m_image_tokens.clear();
870   m_memory_cache.Clear();
871   m_allocated_memory_cache.Clear();
872   m_language_runtimes.clear();
873   m_instrumentation_runtimes.clear();
874   m_next_event_action_ap.reset();
875   // Clear the last natural stop ID since it has a strong reference to this
876   // process
877   m_mod_id.SetStopEventForLastNaturalStopID(EventSP());
878   //#ifdef LLDB_CONFIGURATION_DEBUG
879   //    StreamFile s(stdout, false);
880   //    EventSP event_sp;
881   //    while (m_private_state_listener_sp->GetNextEvent(event_sp))
882   //    {
883   //        event_sp->Dump (&s);
884   //        s.EOL();
885   //    }
886   //#endif
887   // We have to be very careful here as the m_private_state_listener might
888   // contain events that have ProcessSP values in them which can keep this
889   // process around forever. These events need to be cleared out.
890   m_private_state_listener_sp->Clear();
891   m_public_run_lock.TrySetRunning(); // This will do nothing if already locked
892   m_public_run_lock.SetStopped();
893   m_private_run_lock.TrySetRunning(); // This will do nothing if already locked
894   m_private_run_lock.SetStopped();
895   m_structured_data_plugin_map.clear();
896   m_finalize_called = true;
897 }
898 
899 void Process::RegisterNotificationCallbacks(const Notifications &callbacks) {
900   m_notifications.push_back(callbacks);
901   if (callbacks.initialize != nullptr)
902     callbacks.initialize(callbacks.baton, this);
903 }
904 
905 bool Process::UnregisterNotificationCallbacks(const Notifications &callbacks) {
906   std::vector<Notifications>::iterator pos, end = m_notifications.end();
907   for (pos = m_notifications.begin(); pos != end; ++pos) {
908     if (pos->baton == callbacks.baton &&
909         pos->initialize == callbacks.initialize &&
910         pos->process_state_changed == callbacks.process_state_changed) {
911       m_notifications.erase(pos);
912       return true;
913     }
914   }
915   return false;
916 }
917 
918 void Process::SynchronouslyNotifyStateChanged(StateType state) {
919   std::vector<Notifications>::iterator notification_pos,
920       notification_end = m_notifications.end();
921   for (notification_pos = m_notifications.begin();
922        notification_pos != notification_end; ++notification_pos) {
923     if (notification_pos->process_state_changed)
924       notification_pos->process_state_changed(notification_pos->baton, this,
925                                               state);
926   }
927 }
928 
929 // FIXME: We need to do some work on events before the general Listener sees
930 // them.
931 // For instance if we are continuing from a breakpoint, we need to ensure that
932 // we do the little "insert real insn, step & stop" trick.  But we can't do
933 // that when the event is delivered by the broadcaster - since that is done on
934 // the thread that is waiting for new events, so if we needed more than one
935 // event for our handling, we would stall.  So instead we do it when we fetch
936 // the event off of the queue.
937 //
938 
939 StateType Process::GetNextEvent(EventSP &event_sp) {
940   StateType state = eStateInvalid;
941 
942   if (m_listener_sp->GetEventForBroadcaster(this, event_sp,
943                                             std::chrono::seconds(0)) &&
944       event_sp)
945     state = Process::ProcessEventData::GetStateFromEvent(event_sp.get());
946 
947   return state;
948 }
949 
950 void Process::SyncIOHandler(uint32_t iohandler_id,
951                             const Timeout<std::micro> &timeout) {
952   // don't sync (potentially context switch) in case where there is no process
953   // IO
954   if (!m_process_input_reader)
955     return;
956 
957   auto Result = m_iohandler_sync.WaitForValueNotEqualTo(iohandler_id, timeout);
958 
959   Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
960   if (Result) {
961     LLDB_LOG(
962         log,
963         "waited from m_iohandler_sync to change from {0}. New value is {1}.",
964         iohandler_id, *Result);
965   } else {
966     LLDB_LOG(log, "timed out waiting for m_iohandler_sync to change from {0}.",
967              iohandler_id);
968   }
969 }
970 
971 StateType Process::WaitForProcessToStop(const Timeout<std::micro> &timeout,
972                                         EventSP *event_sp_ptr, bool wait_always,
973                                         ListenerSP hijack_listener_sp,
974                                         Stream *stream, bool use_run_lock) {
975   // We can't just wait for a "stopped" event, because the stopped event may
976   // have restarted the target. We have to actually check each event, and in
977   // the case of a stopped event check the restarted flag on the event.
978   if (event_sp_ptr)
979     event_sp_ptr->reset();
980   StateType state = GetState();
981   // If we are exited or detached, we won't ever get back to any other valid
982   // state...
983   if (state == eStateDetached || state == eStateExited)
984     return state;
985 
986   Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
987   LLDB_LOG(log, "timeout = {0}", timeout);
988 
989   if (!wait_always && StateIsStoppedState(state, true) &&
990       StateIsStoppedState(GetPrivateState(), true)) {
991     if (log)
992       log->Printf("Process::%s returning without waiting for events; process "
993                   "private and public states are already 'stopped'.",
994                   __FUNCTION__);
995     // We need to toggle the run lock as this won't get done in
996     // SetPublicState() if the process is hijacked.
997     if (hijack_listener_sp && use_run_lock)
998       m_public_run_lock.SetStopped();
999     return state;
1000   }
1001 
1002   while (state != eStateInvalid) {
1003     EventSP event_sp;
1004     state = GetStateChangedEvents(event_sp, timeout, hijack_listener_sp);
1005     if (event_sp_ptr && event_sp)
1006       *event_sp_ptr = event_sp;
1007 
1008     bool pop_process_io_handler = (hijack_listener_sp.get() != nullptr);
1009     Process::HandleProcessStateChangedEvent(event_sp, stream,
1010                                             pop_process_io_handler);
1011 
1012     switch (state) {
1013     case eStateCrashed:
1014     case eStateDetached:
1015     case eStateExited:
1016     case eStateUnloaded:
1017       // We need to toggle the run lock as this won't get done in
1018       // SetPublicState() if the process is hijacked.
1019       if (hijack_listener_sp && use_run_lock)
1020         m_public_run_lock.SetStopped();
1021       return state;
1022     case eStateStopped:
1023       if (Process::ProcessEventData::GetRestartedFromEvent(event_sp.get()))
1024         continue;
1025       else {
1026         // We need to toggle the run lock as this won't get done in
1027         // SetPublicState() if the process is hijacked.
1028         if (hijack_listener_sp && use_run_lock)
1029           m_public_run_lock.SetStopped();
1030         return state;
1031       }
1032     default:
1033       continue;
1034     }
1035   }
1036   return state;
1037 }
1038 
1039 bool Process::HandleProcessStateChangedEvent(const EventSP &event_sp,
1040                                              Stream *stream,
1041                                              bool &pop_process_io_handler) {
1042   const bool handle_pop = pop_process_io_handler;
1043 
1044   pop_process_io_handler = false;
1045   ProcessSP process_sp =
1046       Process::ProcessEventData::GetProcessFromEvent(event_sp.get());
1047 
1048   if (!process_sp)
1049     return false;
1050 
1051   StateType event_state =
1052       Process::ProcessEventData::GetStateFromEvent(event_sp.get());
1053   if (event_state == eStateInvalid)
1054     return false;
1055 
1056   switch (event_state) {
1057   case eStateInvalid:
1058   case eStateUnloaded:
1059   case eStateAttaching:
1060   case eStateLaunching:
1061   case eStateStepping:
1062   case eStateDetached:
1063     if (stream)
1064       stream->Printf("Process %" PRIu64 " %s\n", process_sp->GetID(),
1065                      StateAsCString(event_state));
1066     if (event_state == eStateDetached)
1067       pop_process_io_handler = true;
1068     break;
1069 
1070   case eStateConnected:
1071   case eStateRunning:
1072     // Don't be chatty when we run...
1073     break;
1074 
1075   case eStateExited:
1076     if (stream)
1077       process_sp->GetStatus(*stream);
1078     pop_process_io_handler = true;
1079     break;
1080 
1081   case eStateStopped:
1082   case eStateCrashed:
1083   case eStateSuspended:
1084     // Make sure the program hasn't been auto-restarted:
1085     if (Process::ProcessEventData::GetRestartedFromEvent(event_sp.get())) {
1086       if (stream) {
1087         size_t num_reasons =
1088             Process::ProcessEventData::GetNumRestartedReasons(event_sp.get());
1089         if (num_reasons > 0) {
1090           // FIXME: Do we want to report this, or would that just be annoyingly
1091           // chatty?
1092           if (num_reasons == 1) {
1093             const char *reason =
1094                 Process::ProcessEventData::GetRestartedReasonAtIndex(
1095                     event_sp.get(), 0);
1096             stream->Printf("Process %" PRIu64 " stopped and restarted: %s\n",
1097                            process_sp->GetID(),
1098                            reason ? reason : "<UNKNOWN REASON>");
1099           } else {
1100             stream->Printf("Process %" PRIu64
1101                            " stopped and restarted, reasons:\n",
1102                            process_sp->GetID());
1103 
1104             for (size_t i = 0; i < num_reasons; i++) {
1105               const char *reason =
1106                   Process::ProcessEventData::GetRestartedReasonAtIndex(
1107                       event_sp.get(), i);
1108               stream->Printf("\t%s\n", reason ? reason : "<UNKNOWN REASON>");
1109             }
1110           }
1111         }
1112       }
1113     } else {
1114       StopInfoSP curr_thread_stop_info_sp;
1115       // Lock the thread list so it doesn't change on us, this is the scope for
1116       // the locker:
1117       {
1118         ThreadList &thread_list = process_sp->GetThreadList();
1119         std::lock_guard<std::recursive_mutex> guard(thread_list.GetMutex());
1120 
1121         ThreadSP curr_thread(thread_list.GetSelectedThread());
1122         ThreadSP thread;
1123         StopReason curr_thread_stop_reason = eStopReasonInvalid;
1124         if (curr_thread) {
1125           curr_thread_stop_reason = curr_thread->GetStopReason();
1126           curr_thread_stop_info_sp = curr_thread->GetStopInfo();
1127         }
1128         if (!curr_thread || !curr_thread->IsValid() ||
1129             curr_thread_stop_reason == eStopReasonInvalid ||
1130             curr_thread_stop_reason == eStopReasonNone) {
1131           // Prefer a thread that has just completed its plan over another
1132           // thread as current thread.
1133           ThreadSP plan_thread;
1134           ThreadSP other_thread;
1135 
1136           const size_t num_threads = thread_list.GetSize();
1137           size_t i;
1138           for (i = 0; i < num_threads; ++i) {
1139             thread = thread_list.GetThreadAtIndex(i);
1140             StopReason thread_stop_reason = thread->GetStopReason();
1141             switch (thread_stop_reason) {
1142             case eStopReasonInvalid:
1143             case eStopReasonNone:
1144               break;
1145 
1146             case eStopReasonSignal: {
1147               // Don't select a signal thread if we weren't going to stop at
1148               // that signal.  We have to have had another reason for stopping
1149               // here, and the user doesn't want to see this thread.
1150               uint64_t signo = thread->GetStopInfo()->GetValue();
1151               if (process_sp->GetUnixSignals()->GetShouldStop(signo)) {
1152                 if (!other_thread)
1153                   other_thread = thread;
1154               }
1155               break;
1156             }
1157             case eStopReasonTrace:
1158             case eStopReasonBreakpoint:
1159             case eStopReasonWatchpoint:
1160             case eStopReasonException:
1161             case eStopReasonExec:
1162             case eStopReasonThreadExiting:
1163             case eStopReasonInstrumentation:
1164               if (!other_thread)
1165                 other_thread = thread;
1166               break;
1167             case eStopReasonPlanComplete:
1168               if (!plan_thread)
1169                 plan_thread = thread;
1170               break;
1171             }
1172           }
1173           if (plan_thread)
1174             thread_list.SetSelectedThreadByID(plan_thread->GetID());
1175           else if (other_thread)
1176             thread_list.SetSelectedThreadByID(other_thread->GetID());
1177           else {
1178             if (curr_thread && curr_thread->IsValid())
1179               thread = curr_thread;
1180             else
1181               thread = thread_list.GetThreadAtIndex(0);
1182 
1183             if (thread)
1184               thread_list.SetSelectedThreadByID(thread->GetID());
1185           }
1186         }
1187       }
1188       // Drop the ThreadList mutex by here, since GetThreadStatus below might
1189       // have to run code, e.g. for Data formatters, and if we hold the
1190       // ThreadList mutex, then the process is going to have a hard time
1191       // restarting the process.
1192       if (stream) {
1193         Debugger &debugger = process_sp->GetTarget().GetDebugger();
1194         if (debugger.GetTargetList().GetSelectedTarget().get() ==
1195             &process_sp->GetTarget()) {
1196           const bool only_threads_with_stop_reason = true;
1197           const uint32_t start_frame = 0;
1198           const uint32_t num_frames = 1;
1199           const uint32_t num_frames_with_source = 1;
1200           const bool stop_format = true;
1201           process_sp->GetStatus(*stream);
1202           process_sp->GetThreadStatus(*stream, only_threads_with_stop_reason,
1203                                       start_frame, num_frames,
1204                                       num_frames_with_source,
1205                                       stop_format);
1206           if (curr_thread_stop_info_sp) {
1207             lldb::addr_t crashing_address;
1208             ValueObjectSP valobj_sp = StopInfo::GetCrashingDereference(
1209                 curr_thread_stop_info_sp, &crashing_address);
1210             if (valobj_sp) {
1211               const bool qualify_cxx_base_classes = false;
1212 
1213               const ValueObject::GetExpressionPathFormat format =
1214                   ValueObject::GetExpressionPathFormat::
1215                       eGetExpressionPathFormatHonorPointers;
1216               stream->PutCString("Likely cause: ");
1217               valobj_sp->GetExpressionPath(*stream, qualify_cxx_base_classes,
1218                                            format);
1219               stream->Printf(" accessed 0x%" PRIx64 "\n", crashing_address);
1220             }
1221           }
1222         } else {
1223           uint32_t target_idx = debugger.GetTargetList().GetIndexOfTarget(
1224               process_sp->GetTarget().shared_from_this());
1225           if (target_idx != UINT32_MAX)
1226             stream->Printf("Target %d: (", target_idx);
1227           else
1228             stream->Printf("Target <unknown index>: (");
1229           process_sp->GetTarget().Dump(stream, eDescriptionLevelBrief);
1230           stream->Printf(") stopped.\n");
1231         }
1232       }
1233 
1234       // Pop the process IO handler
1235       pop_process_io_handler = true;
1236     }
1237     break;
1238   }
1239 
1240   if (handle_pop && pop_process_io_handler)
1241     process_sp->PopProcessIOHandler();
1242 
1243   return true;
1244 }
1245 
1246 bool Process::HijackProcessEvents(ListenerSP listener_sp) {
1247   if (listener_sp) {
1248     return HijackBroadcaster(listener_sp, eBroadcastBitStateChanged |
1249                                               eBroadcastBitInterrupt);
1250   } else
1251     return false;
1252 }
1253 
1254 void Process::RestoreProcessEvents() { RestoreBroadcaster(); }
1255 
1256 StateType Process::GetStateChangedEvents(EventSP &event_sp,
1257                                          const Timeout<std::micro> &timeout,
1258                                          ListenerSP hijack_listener_sp) {
1259   Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
1260   LLDB_LOG(log, "timeout = {0}, event_sp)...", timeout);
1261 
1262   ListenerSP listener_sp = hijack_listener_sp;
1263   if (!listener_sp)
1264     listener_sp = m_listener_sp;
1265 
1266   StateType state = eStateInvalid;
1267   if (listener_sp->GetEventForBroadcasterWithType(
1268           this, eBroadcastBitStateChanged | eBroadcastBitInterrupt, event_sp,
1269           timeout)) {
1270     if (event_sp && event_sp->GetType() == eBroadcastBitStateChanged)
1271       state = Process::ProcessEventData::GetStateFromEvent(event_sp.get());
1272     else
1273       LLDB_LOG(log, "got no event or was interrupted.");
1274   }
1275 
1276   LLDB_LOG(log, "timeout = {0}, event_sp) => {1}", timeout, state);
1277   return state;
1278 }
1279 
1280 Event *Process::PeekAtStateChangedEvents() {
1281   Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
1282 
1283   if (log)
1284     log->Printf("Process::%s...", __FUNCTION__);
1285 
1286   Event *event_ptr;
1287   event_ptr = m_listener_sp->PeekAtNextEventForBroadcasterWithType(
1288       this, eBroadcastBitStateChanged);
1289   if (log) {
1290     if (event_ptr) {
1291       log->Printf(
1292           "Process::%s (event_ptr) => %s", __FUNCTION__,
1293           StateAsCString(ProcessEventData::GetStateFromEvent(event_ptr)));
1294     } else {
1295       log->Printf("Process::%s no events found", __FUNCTION__);
1296     }
1297   }
1298   return event_ptr;
1299 }
1300 
1301 StateType
1302 Process::GetStateChangedEventsPrivate(EventSP &event_sp,
1303                                       const Timeout<std::micro> &timeout) {
1304   Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
1305   LLDB_LOG(log, "timeout = {0}, event_sp)...", timeout);
1306 
1307   StateType state = eStateInvalid;
1308   if (m_private_state_listener_sp->GetEventForBroadcasterWithType(
1309           &m_private_state_broadcaster,
1310           eBroadcastBitStateChanged | eBroadcastBitInterrupt, event_sp,
1311           timeout))
1312     if (event_sp && event_sp->GetType() == eBroadcastBitStateChanged)
1313       state = Process::ProcessEventData::GetStateFromEvent(event_sp.get());
1314 
1315   LLDB_LOG(log, "timeout = {0}, event_sp) => {1}", timeout,
1316            state == eStateInvalid ? "TIMEOUT" : StateAsCString(state));
1317   return state;
1318 }
1319 
1320 bool Process::GetEventsPrivate(EventSP &event_sp,
1321                                const Timeout<std::micro> &timeout,
1322                                bool control_only) {
1323   Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
1324   LLDB_LOG(log, "timeout = {0}, event_sp)...", timeout);
1325 
1326   if (control_only)
1327     return m_private_state_listener_sp->GetEventForBroadcaster(
1328         &m_private_state_control_broadcaster, event_sp, timeout);
1329   else
1330     return m_private_state_listener_sp->GetEvent(event_sp, timeout);
1331 }
1332 
1333 bool Process::IsRunning() const {
1334   return StateIsRunningState(m_public_state.GetValue());
1335 }
1336 
1337 int Process::GetExitStatus() {
1338   std::lock_guard<std::mutex> guard(m_exit_status_mutex);
1339 
1340   if (m_public_state.GetValue() == eStateExited)
1341     return m_exit_status;
1342   return -1;
1343 }
1344 
1345 const char *Process::GetExitDescription() {
1346   std::lock_guard<std::mutex> guard(m_exit_status_mutex);
1347 
1348   if (m_public_state.GetValue() == eStateExited && !m_exit_string.empty())
1349     return m_exit_string.c_str();
1350   return nullptr;
1351 }
1352 
1353 bool Process::SetExitStatus(int status, const char *cstr) {
1354   // Use a mutex to protect setting the exit status.
1355   std::lock_guard<std::mutex> guard(m_exit_status_mutex);
1356 
1357   Log *log(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_STATE |
1358                                                   LIBLLDB_LOG_PROCESS));
1359   if (log)
1360     log->Printf(
1361         "Process::SetExitStatus (status=%i (0x%8.8x), description=%s%s%s)",
1362         status, status, cstr ? "\"" : "", cstr ? cstr : "NULL",
1363         cstr ? "\"" : "");
1364 
1365   // We were already in the exited state
1366   if (m_private_state.GetValue() == eStateExited) {
1367     if (log)
1368       log->Printf("Process::SetExitStatus () ignoring exit status because "
1369                   "state was already set to eStateExited");
1370     return false;
1371   }
1372 
1373   m_exit_status = status;
1374   if (cstr)
1375     m_exit_string = cstr;
1376   else
1377     m_exit_string.clear();
1378 
1379   // Clear the last natural stop ID since it has a strong reference to this
1380   // process
1381   m_mod_id.SetStopEventForLastNaturalStopID(EventSP());
1382 
1383   SetPrivateState(eStateExited);
1384 
1385   // Allow subclasses to do some cleanup
1386   DidExit();
1387 
1388   return true;
1389 }
1390 
1391 bool Process::IsAlive() {
1392   switch (m_private_state.GetValue()) {
1393   case eStateConnected:
1394   case eStateAttaching:
1395   case eStateLaunching:
1396   case eStateStopped:
1397   case eStateRunning:
1398   case eStateStepping:
1399   case eStateCrashed:
1400   case eStateSuspended:
1401     return true;
1402   default:
1403     return false;
1404   }
1405 }
1406 
1407 // This static callback can be used to watch for local child processes on the
1408 // current host. The child process exits, the process will be found in the
1409 // global target list (we want to be completely sure that the
1410 // lldb_private::Process doesn't go away before we can deliver the signal.
1411 bool Process::SetProcessExitStatus(
1412     lldb::pid_t pid, bool exited,
1413     int signo,      // Zero for no signal
1414     int exit_status // Exit value of process if signal is zero
1415     ) {
1416   Log *log(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_PROCESS));
1417   if (log)
1418     log->Printf("Process::SetProcessExitStatus (pid=%" PRIu64
1419                 ", exited=%i, signal=%i, exit_status=%i)\n",
1420                 pid, exited, signo, exit_status);
1421 
1422   if (exited) {
1423     TargetSP target_sp(Debugger::FindTargetWithProcessID(pid));
1424     if (target_sp) {
1425       ProcessSP process_sp(target_sp->GetProcessSP());
1426       if (process_sp) {
1427         const char *signal_cstr = nullptr;
1428         if (signo)
1429           signal_cstr = process_sp->GetUnixSignals()->GetSignalAsCString(signo);
1430 
1431         process_sp->SetExitStatus(exit_status, signal_cstr);
1432       }
1433     }
1434     return true;
1435   }
1436   return false;
1437 }
1438 
1439 void Process::UpdateThreadListIfNeeded() {
1440   const uint32_t stop_id = GetStopID();
1441   if (m_thread_list.GetSize(false) == 0 ||
1442       stop_id != m_thread_list.GetStopID()) {
1443     const StateType state = GetPrivateState();
1444     if (StateIsStoppedState(state, true)) {
1445       std::lock_guard<std::recursive_mutex> guard(m_thread_list.GetMutex());
1446       // m_thread_list does have its own mutex, but we need to hold onto the
1447       // mutex between the call to UpdateThreadList(...) and the
1448       // os->UpdateThreadList(...) so it doesn't change on us
1449       ThreadList &old_thread_list = m_thread_list;
1450       ThreadList real_thread_list(this);
1451       ThreadList new_thread_list(this);
1452       // Always update the thread list with the protocol specific thread list,
1453       // but only update if "true" is returned
1454       if (UpdateThreadList(m_thread_list_real, real_thread_list)) {
1455         // Don't call into the OperatingSystem to update the thread list if we
1456         // are shutting down, since that may call back into the SBAPI's,
1457         // requiring the API lock which is already held by whoever is shutting
1458         // us down, causing a deadlock.
1459         OperatingSystem *os = GetOperatingSystem();
1460         if (os && !m_destroy_in_process) {
1461           // Clear any old backing threads where memory threads might have been
1462           // backed by actual threads from the lldb_private::Process subclass
1463           size_t num_old_threads = old_thread_list.GetSize(false);
1464           for (size_t i = 0; i < num_old_threads; ++i)
1465             old_thread_list.GetThreadAtIndex(i, false)->ClearBackingThread();
1466 
1467           // Turn off dynamic types to ensure we don't run any expressions.
1468           // Objective-C can run an expression to determine if a SBValue is a
1469           // dynamic type or not and we need to avoid this. OperatingSystem
1470           // plug-ins can't run expressions that require running code...
1471 
1472           Target &target = GetTarget();
1473           const lldb::DynamicValueType saved_prefer_dynamic =
1474               target.GetPreferDynamicValue();
1475           if (saved_prefer_dynamic != lldb::eNoDynamicValues)
1476             target.SetPreferDynamicValue(lldb::eNoDynamicValues);
1477 
1478           // Now let the OperatingSystem plug-in update the thread list
1479 
1480           os->UpdateThreadList(
1481               old_thread_list, // Old list full of threads created by OS plug-in
1482               real_thread_list, // The actual thread list full of threads
1483                                 // created by each lldb_private::Process
1484                                 // subclass
1485               new_thread_list); // The new thread list that we will show to the
1486                                 // user that gets filled in
1487 
1488           if (saved_prefer_dynamic != lldb::eNoDynamicValues)
1489             target.SetPreferDynamicValue(saved_prefer_dynamic);
1490         } else {
1491           // No OS plug-in, the new thread list is the same as the real thread
1492           // list
1493           new_thread_list = real_thread_list;
1494         }
1495 
1496         m_thread_list_real.Update(real_thread_list);
1497         m_thread_list.Update(new_thread_list);
1498         m_thread_list.SetStopID(stop_id);
1499 
1500         if (GetLastNaturalStopID() != m_extended_thread_stop_id) {
1501           // Clear any extended threads that we may have accumulated previously
1502           m_extended_thread_list.Clear();
1503           m_extended_thread_stop_id = GetLastNaturalStopID();
1504 
1505           m_queue_list.Clear();
1506           m_queue_list_stop_id = GetLastNaturalStopID();
1507         }
1508       }
1509     }
1510   }
1511 }
1512 
1513 void Process::UpdateQueueListIfNeeded() {
1514   if (m_system_runtime_ap) {
1515     if (m_queue_list.GetSize() == 0 ||
1516         m_queue_list_stop_id != GetLastNaturalStopID()) {
1517       const StateType state = GetPrivateState();
1518       if (StateIsStoppedState(state, true)) {
1519         m_system_runtime_ap->PopulateQueueList(m_queue_list);
1520         m_queue_list_stop_id = GetLastNaturalStopID();
1521       }
1522     }
1523   }
1524 }
1525 
1526 ThreadSP Process::CreateOSPluginThread(lldb::tid_t tid, lldb::addr_t context) {
1527   OperatingSystem *os = GetOperatingSystem();
1528   if (os)
1529     return os->CreateThread(tid, context);
1530   return ThreadSP();
1531 }
1532 
1533 uint32_t Process::GetNextThreadIndexID(uint64_t thread_id) {
1534   return AssignIndexIDToThread(thread_id);
1535 }
1536 
1537 bool Process::HasAssignedIndexIDToThread(uint64_t thread_id) {
1538   return (m_thread_id_to_index_id_map.find(thread_id) !=
1539           m_thread_id_to_index_id_map.end());
1540 }
1541 
1542 uint32_t Process::AssignIndexIDToThread(uint64_t thread_id) {
1543   uint32_t result = 0;
1544   std::map<uint64_t, uint32_t>::iterator iterator =
1545       m_thread_id_to_index_id_map.find(thread_id);
1546   if (iterator == m_thread_id_to_index_id_map.end()) {
1547     result = ++m_thread_index_id;
1548     m_thread_id_to_index_id_map[thread_id] = result;
1549   } else {
1550     result = iterator->second;
1551   }
1552 
1553   return result;
1554 }
1555 
1556 StateType Process::GetState() {
1557   return m_public_state.GetValue();
1558 }
1559 
1560 bool Process::StateChangedIsExternallyHijacked() {
1561   if (IsHijackedForEvent(eBroadcastBitStateChanged)) {
1562     const char *hijacking_name = GetHijackingListenerName();
1563     if (hijacking_name &&
1564         strcmp(hijacking_name, "lldb.Process.ResumeSynchronous.hijack"))
1565       return true;
1566   }
1567   return false;
1568 }
1569 
1570 void Process::SetPublicState(StateType new_state, bool restarted) {
1571   Log *log(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_STATE |
1572                                                   LIBLLDB_LOG_PROCESS));
1573   if (log)
1574     log->Printf("Process::SetPublicState (state = %s, restarted = %i)",
1575                 StateAsCString(new_state), restarted);
1576   const StateType old_state = m_public_state.GetValue();
1577   m_public_state.SetValue(new_state);
1578 
1579   // On the transition from Run to Stopped, we unlock the writer end of the run
1580   // lock.  The lock gets locked in Resume, which is the public API to tell the
1581   // program to run.
1582   if (!StateChangedIsExternallyHijacked()) {
1583     if (new_state == eStateDetached) {
1584       if (log)
1585         log->Printf(
1586             "Process::SetPublicState (%s) -- unlocking run lock for detach",
1587             StateAsCString(new_state));
1588       m_public_run_lock.SetStopped();
1589     } else {
1590       const bool old_state_is_stopped = StateIsStoppedState(old_state, false);
1591       const bool new_state_is_stopped = StateIsStoppedState(new_state, false);
1592       if ((old_state_is_stopped != new_state_is_stopped)) {
1593         if (new_state_is_stopped && !restarted) {
1594           if (log)
1595             log->Printf("Process::SetPublicState (%s) -- unlocking run lock",
1596                         StateAsCString(new_state));
1597           m_public_run_lock.SetStopped();
1598         }
1599       }
1600     }
1601   }
1602 }
1603 
1604 Status Process::Resume() {
1605   Log *log(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_STATE |
1606                                                   LIBLLDB_LOG_PROCESS));
1607   if (log)
1608     log->Printf("Process::Resume -- locking run lock");
1609   if (!m_public_run_lock.TrySetRunning()) {
1610     Status error("Resume request failed - process still running.");
1611     if (log)
1612       log->Printf("Process::Resume: -- TrySetRunning failed, not resuming.");
1613     return error;
1614   }
1615   Status error = PrivateResume();
1616   if (!error.Success()) {
1617     // Undo running state change
1618     m_public_run_lock.SetStopped();
1619   }
1620   return error;
1621 }
1622 
1623 Status Process::ResumeSynchronous(Stream *stream) {
1624   Log *log(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_STATE |
1625                                                   LIBLLDB_LOG_PROCESS));
1626   if (log)
1627     log->Printf("Process::ResumeSynchronous -- locking run lock");
1628   if (!m_public_run_lock.TrySetRunning()) {
1629     Status error("Resume request failed - process still running.");
1630     if (log)
1631       log->Printf("Process::Resume: -- TrySetRunning failed, not resuming.");
1632     return error;
1633   }
1634 
1635   ListenerSP listener_sp(
1636       Listener::MakeListener("lldb.Process.ResumeSynchronous.hijack"));
1637   HijackProcessEvents(listener_sp);
1638 
1639   Status error = PrivateResume();
1640   if (error.Success()) {
1641     StateType state =
1642         WaitForProcessToStop(llvm::None, NULL, true, listener_sp, stream);
1643     const bool must_be_alive =
1644         false; // eStateExited is ok, so this must be false
1645     if (!StateIsStoppedState(state, must_be_alive))
1646       error.SetErrorStringWithFormat(
1647           "process not in stopped state after synchronous resume: %s",
1648           StateAsCString(state));
1649   } else {
1650     // Undo running state change
1651     m_public_run_lock.SetStopped();
1652   }
1653 
1654   // Undo the hijacking of process events...
1655   RestoreProcessEvents();
1656 
1657   return error;
1658 }
1659 
1660 StateType Process::GetPrivateState() { return m_private_state.GetValue(); }
1661 
1662 void Process::SetPrivateState(StateType new_state) {
1663   if (m_finalize_called)
1664     return;
1665 
1666   Log *log(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_STATE |
1667                                                   LIBLLDB_LOG_PROCESS));
1668   bool state_changed = false;
1669 
1670   if (log)
1671     log->Printf("Process::SetPrivateState (%s)", StateAsCString(new_state));
1672 
1673   std::lock_guard<std::recursive_mutex> thread_guard(m_thread_list.GetMutex());
1674   std::lock_guard<std::recursive_mutex> guard(m_private_state.GetMutex());
1675 
1676   const StateType old_state = m_private_state.GetValueNoLock();
1677   state_changed = old_state != new_state;
1678 
1679   const bool old_state_is_stopped = StateIsStoppedState(old_state, false);
1680   const bool new_state_is_stopped = StateIsStoppedState(new_state, false);
1681   if (old_state_is_stopped != new_state_is_stopped) {
1682     if (new_state_is_stopped)
1683       m_private_run_lock.SetStopped();
1684     else
1685       m_private_run_lock.SetRunning();
1686   }
1687 
1688   if (state_changed) {
1689     m_private_state.SetValueNoLock(new_state);
1690     EventSP event_sp(
1691         new Event(eBroadcastBitStateChanged,
1692                   new ProcessEventData(shared_from_this(), new_state)));
1693     if (StateIsStoppedState(new_state, false)) {
1694       // Note, this currently assumes that all threads in the list stop when
1695       // the process stops.  In the future we will want to support a debugging
1696       // model where some threads continue to run while others are stopped.
1697       // When that happens we will either need a way for the thread list to
1698       // identify which threads are stopping or create a special thread list
1699       // containing only threads which actually stopped.
1700       //
1701       // The process plugin is responsible for managing the actual behavior of
1702       // the threads and should have stopped any threads that are going to stop
1703       // before we get here.
1704       m_thread_list.DidStop();
1705 
1706       m_mod_id.BumpStopID();
1707       if (!m_mod_id.IsLastResumeForUserExpression())
1708         m_mod_id.SetStopEventForLastNaturalStopID(event_sp);
1709       m_memory_cache.Clear();
1710       if (log)
1711         log->Printf("Process::SetPrivateState (%s) stop_id = %u",
1712                     StateAsCString(new_state), m_mod_id.GetStopID());
1713     }
1714 
1715     // Use our target to get a shared pointer to ourselves...
1716     if (m_finalize_called && !PrivateStateThreadIsValid())
1717       BroadcastEvent(event_sp);
1718     else
1719       m_private_state_broadcaster.BroadcastEvent(event_sp);
1720   } else {
1721     if (log)
1722       log->Printf(
1723           "Process::SetPrivateState (%s) state didn't change. Ignoring...",
1724           StateAsCString(new_state));
1725   }
1726 }
1727 
1728 void Process::SetRunningUserExpression(bool on) {
1729   m_mod_id.SetRunningUserExpression(on);
1730 }
1731 
1732 void Process::SetRunningUtilityFunction(bool on) {
1733   m_mod_id.SetRunningUtilityFunction(on);
1734 }
1735 
1736 addr_t Process::GetImageInfoAddress() { return LLDB_INVALID_ADDRESS; }
1737 
1738 const lldb::ABISP &Process::GetABI() {
1739   if (!m_abi_sp)
1740     m_abi_sp = ABI::FindPlugin(shared_from_this(), GetTarget().GetArchitecture());
1741   return m_abi_sp;
1742 }
1743 
1744 LanguageRuntime *Process::GetLanguageRuntime(lldb::LanguageType language,
1745                                              bool retry_if_null) {
1746   if (m_finalizing)
1747     return nullptr;
1748 
1749   LanguageRuntimeCollection::iterator pos;
1750   pos = m_language_runtimes.find(language);
1751   if (pos == m_language_runtimes.end() || (retry_if_null && !(*pos).second)) {
1752     lldb::LanguageRuntimeSP runtime_sp(
1753         LanguageRuntime::FindPlugin(this, language));
1754 
1755     m_language_runtimes[language] = runtime_sp;
1756     return runtime_sp.get();
1757   } else
1758     return (*pos).second.get();
1759 }
1760 
1761 CPPLanguageRuntime *Process::GetCPPLanguageRuntime(bool retry_if_null) {
1762   LanguageRuntime *runtime =
1763       GetLanguageRuntime(eLanguageTypeC_plus_plus, retry_if_null);
1764   if (runtime != nullptr &&
1765       runtime->GetLanguageType() == eLanguageTypeC_plus_plus)
1766     return static_cast<CPPLanguageRuntime *>(runtime);
1767   return nullptr;
1768 }
1769 
1770 ObjCLanguageRuntime *Process::GetObjCLanguageRuntime(bool retry_if_null) {
1771   LanguageRuntime *runtime =
1772       GetLanguageRuntime(eLanguageTypeObjC, retry_if_null);
1773   if (runtime != nullptr && runtime->GetLanguageType() == eLanguageTypeObjC)
1774     return static_cast<ObjCLanguageRuntime *>(runtime);
1775   return nullptr;
1776 }
1777 
1778 bool Process::IsPossibleDynamicValue(ValueObject &in_value) {
1779   if (m_finalizing)
1780     return false;
1781 
1782   if (in_value.IsDynamic())
1783     return false;
1784   LanguageType known_type = in_value.GetObjectRuntimeLanguage();
1785 
1786   if (known_type != eLanguageTypeUnknown && known_type != eLanguageTypeC) {
1787     LanguageRuntime *runtime = GetLanguageRuntime(known_type);
1788     return runtime ? runtime->CouldHaveDynamicValue(in_value) : false;
1789   }
1790 
1791   LanguageRuntime *cpp_runtime = GetLanguageRuntime(eLanguageTypeC_plus_plus);
1792   if (cpp_runtime && cpp_runtime->CouldHaveDynamicValue(in_value))
1793     return true;
1794 
1795   LanguageRuntime *objc_runtime = GetLanguageRuntime(eLanguageTypeObjC);
1796   return objc_runtime ? objc_runtime->CouldHaveDynamicValue(in_value) : false;
1797 }
1798 
1799 void Process::SetDynamicCheckers(DynamicCheckerFunctions *dynamic_checkers) {
1800   m_dynamic_checkers_ap.reset(dynamic_checkers);
1801 }
1802 
1803 BreakpointSiteList &Process::GetBreakpointSiteList() {
1804   return m_breakpoint_site_list;
1805 }
1806 
1807 const BreakpointSiteList &Process::GetBreakpointSiteList() const {
1808   return m_breakpoint_site_list;
1809 }
1810 
1811 void Process::DisableAllBreakpointSites() {
1812   m_breakpoint_site_list.ForEach([this](BreakpointSite *bp_site) -> void {
1813     //        bp_site->SetEnabled(true);
1814     DisableBreakpointSite(bp_site);
1815   });
1816 }
1817 
1818 Status Process::ClearBreakpointSiteByID(lldb::user_id_t break_id) {
1819   Status error(DisableBreakpointSiteByID(break_id));
1820 
1821   if (error.Success())
1822     m_breakpoint_site_list.Remove(break_id);
1823 
1824   return error;
1825 }
1826 
1827 Status Process::DisableBreakpointSiteByID(lldb::user_id_t break_id) {
1828   Status error;
1829   BreakpointSiteSP bp_site_sp = m_breakpoint_site_list.FindByID(break_id);
1830   if (bp_site_sp) {
1831     if (bp_site_sp->IsEnabled())
1832       error = DisableBreakpointSite(bp_site_sp.get());
1833   } else {
1834     error.SetErrorStringWithFormat("invalid breakpoint site ID: %" PRIu64,
1835                                    break_id);
1836   }
1837 
1838   return error;
1839 }
1840 
1841 Status Process::EnableBreakpointSiteByID(lldb::user_id_t break_id) {
1842   Status error;
1843   BreakpointSiteSP bp_site_sp = m_breakpoint_site_list.FindByID(break_id);
1844   if (bp_site_sp) {
1845     if (!bp_site_sp->IsEnabled())
1846       error = EnableBreakpointSite(bp_site_sp.get());
1847   } else {
1848     error.SetErrorStringWithFormat("invalid breakpoint site ID: %" PRIu64,
1849                                    break_id);
1850   }
1851   return error;
1852 }
1853 
1854 lldb::break_id_t
1855 Process::CreateBreakpointSite(const BreakpointLocationSP &owner,
1856                               bool use_hardware) {
1857   addr_t load_addr = LLDB_INVALID_ADDRESS;
1858 
1859   bool show_error = true;
1860   switch (GetState()) {
1861   case eStateInvalid:
1862   case eStateUnloaded:
1863   case eStateConnected:
1864   case eStateAttaching:
1865   case eStateLaunching:
1866   case eStateDetached:
1867   case eStateExited:
1868     show_error = false;
1869     break;
1870 
1871   case eStateStopped:
1872   case eStateRunning:
1873   case eStateStepping:
1874   case eStateCrashed:
1875   case eStateSuspended:
1876     show_error = IsAlive();
1877     break;
1878   }
1879 
1880   // Reset the IsIndirect flag here, in case the location changes from pointing
1881   // to a indirect symbol to a regular symbol.
1882   owner->SetIsIndirect(false);
1883 
1884   if (owner->ShouldResolveIndirectFunctions()) {
1885     Symbol *symbol = owner->GetAddress().CalculateSymbolContextSymbol();
1886     if (symbol && symbol->IsIndirect()) {
1887       Status error;
1888       Address symbol_address = symbol->GetAddress();
1889       load_addr = ResolveIndirectFunction(&symbol_address, error);
1890       if (!error.Success() && show_error) {
1891         GetTarget().GetDebugger().GetErrorFile()->Printf(
1892             "warning: failed to resolve indirect function at 0x%" PRIx64
1893             " for breakpoint %i.%i: %s\n",
1894             symbol->GetLoadAddress(&GetTarget()),
1895             owner->GetBreakpoint().GetID(), owner->GetID(),
1896             error.AsCString() ? error.AsCString() : "unknown error");
1897         return LLDB_INVALID_BREAK_ID;
1898       }
1899       Address resolved_address(load_addr);
1900       load_addr = resolved_address.GetOpcodeLoadAddress(&GetTarget());
1901       owner->SetIsIndirect(true);
1902     } else
1903       load_addr = owner->GetAddress().GetOpcodeLoadAddress(&GetTarget());
1904   } else
1905     load_addr = owner->GetAddress().GetOpcodeLoadAddress(&GetTarget());
1906 
1907   if (load_addr != LLDB_INVALID_ADDRESS) {
1908     BreakpointSiteSP bp_site_sp;
1909 
1910     // Look up this breakpoint site.  If it exists, then add this new owner,
1911     // otherwise create a new breakpoint site and add it.
1912 
1913     bp_site_sp = m_breakpoint_site_list.FindByAddress(load_addr);
1914 
1915     if (bp_site_sp) {
1916       bp_site_sp->AddOwner(owner);
1917       owner->SetBreakpointSite(bp_site_sp);
1918       return bp_site_sp->GetID();
1919     } else {
1920       bp_site_sp.reset(new BreakpointSite(&m_breakpoint_site_list, owner,
1921                                           load_addr, use_hardware));
1922       if (bp_site_sp) {
1923         Status error = EnableBreakpointSite(bp_site_sp.get());
1924         if (error.Success()) {
1925           owner->SetBreakpointSite(bp_site_sp);
1926           return m_breakpoint_site_list.Add(bp_site_sp);
1927         } else {
1928           if (show_error) {
1929             // Report error for setting breakpoint...
1930             GetTarget().GetDebugger().GetErrorFile()->Printf(
1931                 "warning: failed to set breakpoint site at 0x%" PRIx64
1932                 " for breakpoint %i.%i: %s\n",
1933                 load_addr, owner->GetBreakpoint().GetID(), owner->GetID(),
1934                 error.AsCString() ? error.AsCString() : "unknown error");
1935           }
1936         }
1937       }
1938     }
1939   }
1940   // We failed to enable the breakpoint
1941   return LLDB_INVALID_BREAK_ID;
1942 }
1943 
1944 void Process::RemoveOwnerFromBreakpointSite(lldb::user_id_t owner_id,
1945                                             lldb::user_id_t owner_loc_id,
1946                                             BreakpointSiteSP &bp_site_sp) {
1947   uint32_t num_owners = bp_site_sp->RemoveOwner(owner_id, owner_loc_id);
1948   if (num_owners == 0) {
1949     // Don't try to disable the site if we don't have a live process anymore.
1950     if (IsAlive())
1951       DisableBreakpointSite(bp_site_sp.get());
1952     m_breakpoint_site_list.RemoveByAddress(bp_site_sp->GetLoadAddress());
1953   }
1954 }
1955 
1956 size_t Process::RemoveBreakpointOpcodesFromBuffer(addr_t bp_addr, size_t size,
1957                                                   uint8_t *buf) const {
1958   size_t bytes_removed = 0;
1959   BreakpointSiteList bp_sites_in_range;
1960 
1961   if (m_breakpoint_site_list.FindInRange(bp_addr, bp_addr + size,
1962                                          bp_sites_in_range)) {
1963     bp_sites_in_range.ForEach([bp_addr, size,
1964                                buf](BreakpointSite *bp_site) -> void {
1965       if (bp_site->GetType() == BreakpointSite::eSoftware) {
1966         addr_t intersect_addr;
1967         size_t intersect_size;
1968         size_t opcode_offset;
1969         if (bp_site->IntersectsRange(bp_addr, size, &intersect_addr,
1970                                      &intersect_size, &opcode_offset)) {
1971           assert(bp_addr <= intersect_addr && intersect_addr < bp_addr + size);
1972           assert(bp_addr < intersect_addr + intersect_size &&
1973                  intersect_addr + intersect_size <= bp_addr + size);
1974           assert(opcode_offset + intersect_size <= bp_site->GetByteSize());
1975           size_t buf_offset = intersect_addr - bp_addr;
1976           ::memcpy(buf + buf_offset,
1977                    bp_site->GetSavedOpcodeBytes() + opcode_offset,
1978                    intersect_size);
1979         }
1980       }
1981     });
1982   }
1983   return bytes_removed;
1984 }
1985 
1986 size_t Process::GetSoftwareBreakpointTrapOpcode(BreakpointSite *bp_site) {
1987   PlatformSP platform_sp(GetTarget().GetPlatform());
1988   if (platform_sp)
1989     return platform_sp->GetSoftwareBreakpointTrapOpcode(GetTarget(), bp_site);
1990   return 0;
1991 }
1992 
1993 Status Process::EnableSoftwareBreakpoint(BreakpointSite *bp_site) {
1994   Status error;
1995   assert(bp_site != nullptr);
1996   Log *log(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_BREAKPOINTS));
1997   const addr_t bp_addr = bp_site->GetLoadAddress();
1998   if (log)
1999     log->Printf(
2000         "Process::EnableSoftwareBreakpoint (site_id = %d) addr = 0x%" PRIx64,
2001         bp_site->GetID(), (uint64_t)bp_addr);
2002   if (bp_site->IsEnabled()) {
2003     if (log)
2004       log->Printf(
2005           "Process::EnableSoftwareBreakpoint (site_id = %d) addr = 0x%" PRIx64
2006           " -- already enabled",
2007           bp_site->GetID(), (uint64_t)bp_addr);
2008     return error;
2009   }
2010 
2011   if (bp_addr == LLDB_INVALID_ADDRESS) {
2012     error.SetErrorString("BreakpointSite contains an invalid load address.");
2013     return error;
2014   }
2015   // Ask the lldb::Process subclass to fill in the correct software breakpoint
2016   // trap for the breakpoint site
2017   const size_t bp_opcode_size = GetSoftwareBreakpointTrapOpcode(bp_site);
2018 
2019   if (bp_opcode_size == 0) {
2020     error.SetErrorStringWithFormat("Process::GetSoftwareBreakpointTrapOpcode() "
2021                                    "returned zero, unable to get breakpoint "
2022                                    "trap for address 0x%" PRIx64,
2023                                    bp_addr);
2024   } else {
2025     const uint8_t *const bp_opcode_bytes = bp_site->GetTrapOpcodeBytes();
2026 
2027     if (bp_opcode_bytes == nullptr) {
2028       error.SetErrorString(
2029           "BreakpointSite doesn't contain a valid breakpoint trap opcode.");
2030       return error;
2031     }
2032 
2033     // Save the original opcode by reading it
2034     if (DoReadMemory(bp_addr, bp_site->GetSavedOpcodeBytes(), bp_opcode_size,
2035                      error) == bp_opcode_size) {
2036       // Write a software breakpoint in place of the original opcode
2037       if (DoWriteMemory(bp_addr, bp_opcode_bytes, bp_opcode_size, error) ==
2038           bp_opcode_size) {
2039         uint8_t verify_bp_opcode_bytes[64];
2040         if (DoReadMemory(bp_addr, verify_bp_opcode_bytes, bp_opcode_size,
2041                          error) == bp_opcode_size) {
2042           if (::memcmp(bp_opcode_bytes, verify_bp_opcode_bytes,
2043                        bp_opcode_size) == 0) {
2044             bp_site->SetEnabled(true);
2045             bp_site->SetType(BreakpointSite::eSoftware);
2046             if (log)
2047               log->Printf("Process::EnableSoftwareBreakpoint (site_id = %d) "
2048                           "addr = 0x%" PRIx64 " -- SUCCESS",
2049                           bp_site->GetID(), (uint64_t)bp_addr);
2050           } else
2051             error.SetErrorString(
2052                 "failed to verify the breakpoint trap in memory.");
2053         } else
2054           error.SetErrorString(
2055               "Unable to read memory to verify breakpoint trap.");
2056       } else
2057         error.SetErrorString("Unable to write breakpoint trap to memory.");
2058     } else
2059       error.SetErrorString("Unable to read memory at breakpoint address.");
2060   }
2061   if (log && error.Fail())
2062     log->Printf(
2063         "Process::EnableSoftwareBreakpoint (site_id = %d) addr = 0x%" PRIx64
2064         " -- FAILED: %s",
2065         bp_site->GetID(), (uint64_t)bp_addr, error.AsCString());
2066   return error;
2067 }
2068 
2069 Status Process::DisableSoftwareBreakpoint(BreakpointSite *bp_site) {
2070   Status error;
2071   assert(bp_site != nullptr);
2072   Log *log(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_BREAKPOINTS));
2073   addr_t bp_addr = bp_site->GetLoadAddress();
2074   lldb::user_id_t breakID = bp_site->GetID();
2075   if (log)
2076     log->Printf("Process::DisableSoftwareBreakpoint (breakID = %" PRIu64
2077                 ") addr = 0x%" PRIx64,
2078                 breakID, (uint64_t)bp_addr);
2079 
2080   if (bp_site->IsHardware()) {
2081     error.SetErrorString("Breakpoint site is a hardware breakpoint.");
2082   } else if (bp_site->IsEnabled()) {
2083     const size_t break_op_size = bp_site->GetByteSize();
2084     const uint8_t *const break_op = bp_site->GetTrapOpcodeBytes();
2085     if (break_op_size > 0) {
2086       // Clear a software breakpoint instruction
2087       uint8_t curr_break_op[8];
2088       assert(break_op_size <= sizeof(curr_break_op));
2089       bool break_op_found = false;
2090 
2091       // Read the breakpoint opcode
2092       if (DoReadMemory(bp_addr, curr_break_op, break_op_size, error) ==
2093           break_op_size) {
2094         bool verify = false;
2095         // Make sure the breakpoint opcode exists at this address
2096         if (::memcmp(curr_break_op, break_op, break_op_size) == 0) {
2097           break_op_found = true;
2098           // We found a valid breakpoint opcode at this address, now restore
2099           // the saved opcode.
2100           if (DoWriteMemory(bp_addr, bp_site->GetSavedOpcodeBytes(),
2101                             break_op_size, error) == break_op_size) {
2102             verify = true;
2103           } else
2104             error.SetErrorString(
2105                 "Memory write failed when restoring original opcode.");
2106         } else {
2107           error.SetErrorString(
2108               "Original breakpoint trap is no longer in memory.");
2109           // Set verify to true and so we can check if the original opcode has
2110           // already been restored
2111           verify = true;
2112         }
2113 
2114         if (verify) {
2115           uint8_t verify_opcode[8];
2116           assert(break_op_size < sizeof(verify_opcode));
2117           // Verify that our original opcode made it back to the inferior
2118           if (DoReadMemory(bp_addr, verify_opcode, break_op_size, error) ==
2119               break_op_size) {
2120             // compare the memory we just read with the original opcode
2121             if (::memcmp(bp_site->GetSavedOpcodeBytes(), verify_opcode,
2122                          break_op_size) == 0) {
2123               // SUCCESS
2124               bp_site->SetEnabled(false);
2125               if (log)
2126                 log->Printf("Process::DisableSoftwareBreakpoint (site_id = %d) "
2127                             "addr = 0x%" PRIx64 " -- SUCCESS",
2128                             bp_site->GetID(), (uint64_t)bp_addr);
2129               return error;
2130             } else {
2131               if (break_op_found)
2132                 error.SetErrorString("Failed to restore original opcode.");
2133             }
2134           } else
2135             error.SetErrorString("Failed to read memory to verify that "
2136                                  "breakpoint trap was restored.");
2137         }
2138       } else
2139         error.SetErrorString(
2140             "Unable to read memory that should contain the breakpoint trap.");
2141     }
2142   } else {
2143     if (log)
2144       log->Printf(
2145           "Process::DisableSoftwareBreakpoint (site_id = %d) addr = 0x%" PRIx64
2146           " -- already disabled",
2147           bp_site->GetID(), (uint64_t)bp_addr);
2148     return error;
2149   }
2150 
2151   if (log)
2152     log->Printf(
2153         "Process::DisableSoftwareBreakpoint (site_id = %d) addr = 0x%" PRIx64
2154         " -- FAILED: %s",
2155         bp_site->GetID(), (uint64_t)bp_addr, error.AsCString());
2156   return error;
2157 }
2158 
2159 // Uncomment to verify memory caching works after making changes to caching
2160 // code
2161 //#define VERIFY_MEMORY_READS
2162 
2163 size_t Process::ReadMemory(addr_t addr, void *buf, size_t size, Status &error) {
2164   error.Clear();
2165   if (!GetDisableMemoryCache()) {
2166 #if defined(VERIFY_MEMORY_READS)
2167     // Memory caching is enabled, with debug verification
2168 
2169     if (buf && size) {
2170       // Uncomment the line below to make sure memory caching is working.
2171       // I ran this through the test suite and got no assertions, so I am
2172       // pretty confident this is working well. If any changes are made to
2173       // memory caching, uncomment the line below and test your changes!
2174 
2175       // Verify all memory reads by using the cache first, then redundantly
2176       // reading the same memory from the inferior and comparing to make sure
2177       // everything is exactly the same.
2178       std::string verify_buf(size, '\0');
2179       assert(verify_buf.size() == size);
2180       const size_t cache_bytes_read =
2181           m_memory_cache.Read(this, addr, buf, size, error);
2182       Status verify_error;
2183       const size_t verify_bytes_read =
2184           ReadMemoryFromInferior(addr, const_cast<char *>(verify_buf.data()),
2185                                  verify_buf.size(), verify_error);
2186       assert(cache_bytes_read == verify_bytes_read);
2187       assert(memcmp(buf, verify_buf.data(), verify_buf.size()) == 0);
2188       assert(verify_error.Success() == error.Success());
2189       return cache_bytes_read;
2190     }
2191     return 0;
2192 #else  // !defined(VERIFY_MEMORY_READS)
2193     // Memory caching is enabled, without debug verification
2194 
2195     return m_memory_cache.Read(addr, buf, size, error);
2196 #endif // defined (VERIFY_MEMORY_READS)
2197   } else {
2198     // Memory caching is disabled
2199 
2200     return ReadMemoryFromInferior(addr, buf, size, error);
2201   }
2202 }
2203 
2204 size_t Process::ReadCStringFromMemory(addr_t addr, std::string &out_str,
2205                                       Status &error) {
2206   char buf[256];
2207   out_str.clear();
2208   addr_t curr_addr = addr;
2209   while (true) {
2210     size_t length = ReadCStringFromMemory(curr_addr, buf, sizeof(buf), error);
2211     if (length == 0)
2212       break;
2213     out_str.append(buf, length);
2214     // If we got "length - 1" bytes, we didn't get the whole C string, we need
2215     // to read some more characters
2216     if (length == sizeof(buf) - 1)
2217       curr_addr += length;
2218     else
2219       break;
2220   }
2221   return out_str.size();
2222 }
2223 
2224 size_t Process::ReadStringFromMemory(addr_t addr, char *dst, size_t max_bytes,
2225                                      Status &error, size_t type_width) {
2226   size_t total_bytes_read = 0;
2227   if (dst && max_bytes && type_width && max_bytes >= type_width) {
2228     // Ensure a null terminator independent of the number of bytes that is
2229     // read.
2230     memset(dst, 0, max_bytes);
2231     size_t bytes_left = max_bytes - type_width;
2232 
2233     const char terminator[4] = {'\0', '\0', '\0', '\0'};
2234     assert(sizeof(terminator) >= type_width && "Attempting to validate a "
2235                                                "string with more than 4 bytes "
2236                                                "per character!");
2237 
2238     addr_t curr_addr = addr;
2239     const size_t cache_line_size = m_memory_cache.GetMemoryCacheLineSize();
2240     char *curr_dst = dst;
2241 
2242     error.Clear();
2243     while (bytes_left > 0 && error.Success()) {
2244       addr_t cache_line_bytes_left =
2245           cache_line_size - (curr_addr % cache_line_size);
2246       addr_t bytes_to_read =
2247           std::min<addr_t>(bytes_left, cache_line_bytes_left);
2248       size_t bytes_read = ReadMemory(curr_addr, curr_dst, bytes_to_read, error);
2249 
2250       if (bytes_read == 0)
2251         break;
2252 
2253       // Search for a null terminator of correct size and alignment in
2254       // bytes_read
2255       size_t aligned_start = total_bytes_read - total_bytes_read % type_width;
2256       for (size_t i = aligned_start;
2257            i + type_width <= total_bytes_read + bytes_read; i += type_width)
2258         if (::memcmp(&dst[i], terminator, type_width) == 0) {
2259           error.Clear();
2260           return i;
2261         }
2262 
2263       total_bytes_read += bytes_read;
2264       curr_dst += bytes_read;
2265       curr_addr += bytes_read;
2266       bytes_left -= bytes_read;
2267     }
2268   } else {
2269     if (max_bytes)
2270       error.SetErrorString("invalid arguments");
2271   }
2272   return total_bytes_read;
2273 }
2274 
2275 // Deprecated in favor of ReadStringFromMemory which has wchar support and
2276 // correct code to find null terminators.
2277 size_t Process::ReadCStringFromMemory(addr_t addr, char *dst,
2278                                       size_t dst_max_len,
2279                                       Status &result_error) {
2280   size_t total_cstr_len = 0;
2281   if (dst && dst_max_len) {
2282     result_error.Clear();
2283     // NULL out everything just to be safe
2284     memset(dst, 0, dst_max_len);
2285     Status error;
2286     addr_t curr_addr = addr;
2287     const size_t cache_line_size = m_memory_cache.GetMemoryCacheLineSize();
2288     size_t bytes_left = dst_max_len - 1;
2289     char *curr_dst = dst;
2290 
2291     while (bytes_left > 0) {
2292       addr_t cache_line_bytes_left =
2293           cache_line_size - (curr_addr % cache_line_size);
2294       addr_t bytes_to_read =
2295           std::min<addr_t>(bytes_left, cache_line_bytes_left);
2296       size_t bytes_read = ReadMemory(curr_addr, curr_dst, bytes_to_read, error);
2297 
2298       if (bytes_read == 0) {
2299         result_error = error;
2300         dst[total_cstr_len] = '\0';
2301         break;
2302       }
2303       const size_t len = strlen(curr_dst);
2304 
2305       total_cstr_len += len;
2306 
2307       if (len < bytes_to_read)
2308         break;
2309 
2310       curr_dst += bytes_read;
2311       curr_addr += bytes_read;
2312       bytes_left -= bytes_read;
2313     }
2314   } else {
2315     if (dst == nullptr)
2316       result_error.SetErrorString("invalid arguments");
2317     else
2318       result_error.Clear();
2319   }
2320   return total_cstr_len;
2321 }
2322 
2323 size_t Process::ReadMemoryFromInferior(addr_t addr, void *buf, size_t size,
2324                                        Status &error) {
2325   if (buf == nullptr || size == 0)
2326     return 0;
2327 
2328   size_t bytes_read = 0;
2329   uint8_t *bytes = (uint8_t *)buf;
2330 
2331   while (bytes_read < size) {
2332     const size_t curr_size = size - bytes_read;
2333     const size_t curr_bytes_read =
2334         DoReadMemory(addr + bytes_read, bytes + bytes_read, curr_size, error);
2335     bytes_read += curr_bytes_read;
2336     if (curr_bytes_read == curr_size || curr_bytes_read == 0)
2337       break;
2338   }
2339 
2340   // Replace any software breakpoint opcodes that fall into this range back
2341   // into "buf" before we return
2342   if (bytes_read > 0)
2343     RemoveBreakpointOpcodesFromBuffer(addr, bytes_read, (uint8_t *)buf);
2344   return bytes_read;
2345 }
2346 
2347 uint64_t Process::ReadUnsignedIntegerFromMemory(lldb::addr_t vm_addr,
2348                                                 size_t integer_byte_size,
2349                                                 uint64_t fail_value,
2350                                                 Status &error) {
2351   Scalar scalar;
2352   if (ReadScalarIntegerFromMemory(vm_addr, integer_byte_size, false, scalar,
2353                                   error))
2354     return scalar.ULongLong(fail_value);
2355   return fail_value;
2356 }
2357 
2358 int64_t Process::ReadSignedIntegerFromMemory(lldb::addr_t vm_addr,
2359                                              size_t integer_byte_size,
2360                                              int64_t fail_value,
2361                                              Status &error) {
2362   Scalar scalar;
2363   if (ReadScalarIntegerFromMemory(vm_addr, integer_byte_size, true, scalar,
2364                                   error))
2365     return scalar.SLongLong(fail_value);
2366   return fail_value;
2367 }
2368 
2369 addr_t Process::ReadPointerFromMemory(lldb::addr_t vm_addr, Status &error) {
2370   Scalar scalar;
2371   if (ReadScalarIntegerFromMemory(vm_addr, GetAddressByteSize(), false, scalar,
2372                                   error))
2373     return scalar.ULongLong(LLDB_INVALID_ADDRESS);
2374   return LLDB_INVALID_ADDRESS;
2375 }
2376 
2377 bool Process::WritePointerToMemory(lldb::addr_t vm_addr, lldb::addr_t ptr_value,
2378                                    Status &error) {
2379   Scalar scalar;
2380   const uint32_t addr_byte_size = GetAddressByteSize();
2381   if (addr_byte_size <= 4)
2382     scalar = (uint32_t)ptr_value;
2383   else
2384     scalar = ptr_value;
2385   return WriteScalarToMemory(vm_addr, scalar, addr_byte_size, error) ==
2386          addr_byte_size;
2387 }
2388 
2389 size_t Process::WriteMemoryPrivate(addr_t addr, const void *buf, size_t size,
2390                                    Status &error) {
2391   size_t bytes_written = 0;
2392   const uint8_t *bytes = (const uint8_t *)buf;
2393 
2394   while (bytes_written < size) {
2395     const size_t curr_size = size - bytes_written;
2396     const size_t curr_bytes_written = DoWriteMemory(
2397         addr + bytes_written, bytes + bytes_written, curr_size, error);
2398     bytes_written += curr_bytes_written;
2399     if (curr_bytes_written == curr_size || curr_bytes_written == 0)
2400       break;
2401   }
2402   return bytes_written;
2403 }
2404 
2405 size_t Process::WriteMemory(addr_t addr, const void *buf, size_t size,
2406                             Status &error) {
2407 #if defined(ENABLE_MEMORY_CACHING)
2408   m_memory_cache.Flush(addr, size);
2409 #endif
2410 
2411   if (buf == nullptr || size == 0)
2412     return 0;
2413 
2414   m_mod_id.BumpMemoryID();
2415 
2416   // We need to write any data that would go where any current software traps
2417   // (enabled software breakpoints) any software traps (breakpoints) that we
2418   // may have placed in our tasks memory.
2419 
2420   BreakpointSiteList bp_sites_in_range;
2421 
2422   if (m_breakpoint_site_list.FindInRange(addr, addr + size,
2423                                          bp_sites_in_range)) {
2424     // No breakpoint sites overlap
2425     if (bp_sites_in_range.IsEmpty())
2426       return WriteMemoryPrivate(addr, buf, size, error);
2427     else {
2428       const uint8_t *ubuf = (const uint8_t *)buf;
2429       uint64_t bytes_written = 0;
2430 
2431       bp_sites_in_range.ForEach([this, addr, size, &bytes_written, &ubuf,
2432                                  &error](BreakpointSite *bp) -> void {
2433 
2434         if (error.Success()) {
2435           addr_t intersect_addr;
2436           size_t intersect_size;
2437           size_t opcode_offset;
2438           const bool intersects = bp->IntersectsRange(
2439               addr, size, &intersect_addr, &intersect_size, &opcode_offset);
2440           UNUSED_IF_ASSERT_DISABLED(intersects);
2441           assert(intersects);
2442           assert(addr <= intersect_addr && intersect_addr < addr + size);
2443           assert(addr < intersect_addr + intersect_size &&
2444                  intersect_addr + intersect_size <= addr + size);
2445           assert(opcode_offset + intersect_size <= bp->GetByteSize());
2446 
2447           // Check for bytes before this breakpoint
2448           const addr_t curr_addr = addr + bytes_written;
2449           if (intersect_addr > curr_addr) {
2450             // There are some bytes before this breakpoint that we need to just
2451             // write to memory
2452             size_t curr_size = intersect_addr - curr_addr;
2453             size_t curr_bytes_written = WriteMemoryPrivate(
2454                 curr_addr, ubuf + bytes_written, curr_size, error);
2455             bytes_written += curr_bytes_written;
2456             if (curr_bytes_written != curr_size) {
2457               // We weren't able to write all of the requested bytes, we are
2458               // done looping and will return the number of bytes that we have
2459               // written so far.
2460               if (error.Success())
2461                 error.SetErrorToGenericError();
2462             }
2463           }
2464           // Now write any bytes that would cover up any software breakpoints
2465           // directly into the breakpoint opcode buffer
2466           ::memcpy(bp->GetSavedOpcodeBytes() + opcode_offset,
2467                    ubuf + bytes_written, intersect_size);
2468           bytes_written += intersect_size;
2469         }
2470       });
2471 
2472       if (bytes_written < size)
2473         WriteMemoryPrivate(addr + bytes_written, ubuf + bytes_written,
2474                            size - bytes_written, error);
2475     }
2476   } else {
2477     return WriteMemoryPrivate(addr, buf, size, error);
2478   }
2479 
2480   // Write any remaining bytes after the last breakpoint if we have any left
2481   return 0; // bytes_written;
2482 }
2483 
2484 size_t Process::WriteScalarToMemory(addr_t addr, const Scalar &scalar,
2485                                     size_t byte_size, Status &error) {
2486   if (byte_size == UINT32_MAX)
2487     byte_size = scalar.GetByteSize();
2488   if (byte_size > 0) {
2489     uint8_t buf[32];
2490     const size_t mem_size =
2491         scalar.GetAsMemoryData(buf, byte_size, GetByteOrder(), error);
2492     if (mem_size > 0)
2493       return WriteMemory(addr, buf, mem_size, error);
2494     else
2495       error.SetErrorString("failed to get scalar as memory data");
2496   } else {
2497     error.SetErrorString("invalid scalar value");
2498   }
2499   return 0;
2500 }
2501 
2502 size_t Process::ReadScalarIntegerFromMemory(addr_t addr, uint32_t byte_size,
2503                                             bool is_signed, Scalar &scalar,
2504                                             Status &error) {
2505   uint64_t uval = 0;
2506   if (byte_size == 0) {
2507     error.SetErrorString("byte size is zero");
2508   } else if (byte_size & (byte_size - 1)) {
2509     error.SetErrorStringWithFormat("byte size %u is not a power of 2",
2510                                    byte_size);
2511   } else if (byte_size <= sizeof(uval)) {
2512     const size_t bytes_read = ReadMemory(addr, &uval, byte_size, error);
2513     if (bytes_read == byte_size) {
2514       DataExtractor data(&uval, sizeof(uval), GetByteOrder(),
2515                          GetAddressByteSize());
2516       lldb::offset_t offset = 0;
2517       if (byte_size <= 4)
2518         scalar = data.GetMaxU32(&offset, byte_size);
2519       else
2520         scalar = data.GetMaxU64(&offset, byte_size);
2521       if (is_signed)
2522         scalar.SignExtend(byte_size * 8);
2523       return bytes_read;
2524     }
2525   } else {
2526     error.SetErrorStringWithFormat(
2527         "byte size of %u is too large for integer scalar type", byte_size);
2528   }
2529   return 0;
2530 }
2531 
2532 Status Process::WriteObjectFile(std::vector<ObjectFile::LoadableData> entries) {
2533   Status error;
2534   for (const auto &Entry : entries) {
2535     WriteMemory(Entry.Dest, Entry.Contents.data(), Entry.Contents.size(),
2536                 error);
2537     if (!error.Success())
2538       break;
2539   }
2540   return error;
2541 }
2542 
2543 #define USE_ALLOCATE_MEMORY_CACHE 1
2544 addr_t Process::AllocateMemory(size_t size, uint32_t permissions,
2545                                Status &error) {
2546   if (GetPrivateState() != eStateStopped) {
2547     error.SetErrorToGenericError();
2548     return LLDB_INVALID_ADDRESS;
2549   }
2550 
2551 #if defined(USE_ALLOCATE_MEMORY_CACHE)
2552   return m_allocated_memory_cache.AllocateMemory(size, permissions, error);
2553 #else
2554   addr_t allocated_addr = DoAllocateMemory(size, permissions, error);
2555   Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
2556   if (log)
2557     log->Printf("Process::AllocateMemory(size=%" PRIu64
2558                 ", permissions=%s) => 0x%16.16" PRIx64
2559                 " (m_stop_id = %u m_memory_id = %u)",
2560                 (uint64_t)size, GetPermissionsAsCString(permissions),
2561                 (uint64_t)allocated_addr, m_mod_id.GetStopID(),
2562                 m_mod_id.GetMemoryID());
2563   return allocated_addr;
2564 #endif
2565 }
2566 
2567 addr_t Process::CallocateMemory(size_t size, uint32_t permissions,
2568                                 Status &error) {
2569   addr_t return_addr = AllocateMemory(size, permissions, error);
2570   if (error.Success()) {
2571     std::string buffer(size, 0);
2572     WriteMemory(return_addr, buffer.c_str(), size, error);
2573   }
2574   return return_addr;
2575 }
2576 
2577 bool Process::CanJIT() {
2578   if (m_can_jit == eCanJITDontKnow) {
2579     Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
2580     Status err;
2581 
2582     uint64_t allocated_memory = AllocateMemory(
2583         8, ePermissionsReadable | ePermissionsWritable | ePermissionsExecutable,
2584         err);
2585 
2586     if (err.Success()) {
2587       m_can_jit = eCanJITYes;
2588       if (log)
2589         log->Printf("Process::%s pid %" PRIu64
2590                     " allocation test passed, CanJIT () is true",
2591                     __FUNCTION__, GetID());
2592     } else {
2593       m_can_jit = eCanJITNo;
2594       if (log)
2595         log->Printf("Process::%s pid %" PRIu64
2596                     " allocation test failed, CanJIT () is false: %s",
2597                     __FUNCTION__, GetID(), err.AsCString());
2598     }
2599 
2600     DeallocateMemory(allocated_memory);
2601   }
2602 
2603   return m_can_jit == eCanJITYes;
2604 }
2605 
2606 void Process::SetCanJIT(bool can_jit) {
2607   m_can_jit = (can_jit ? eCanJITYes : eCanJITNo);
2608 }
2609 
2610 void Process::SetCanRunCode(bool can_run_code) {
2611   SetCanJIT(can_run_code);
2612   m_can_interpret_function_calls = can_run_code;
2613 }
2614 
2615 Status Process::DeallocateMemory(addr_t ptr) {
2616   Status error;
2617 #if defined(USE_ALLOCATE_MEMORY_CACHE)
2618   if (!m_allocated_memory_cache.DeallocateMemory(ptr)) {
2619     error.SetErrorStringWithFormat(
2620         "deallocation of memory at 0x%" PRIx64 " failed.", (uint64_t)ptr);
2621   }
2622 #else
2623   error = DoDeallocateMemory(ptr);
2624 
2625   Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
2626   if (log)
2627     log->Printf("Process::DeallocateMemory(addr=0x%16.16" PRIx64
2628                 ") => err = %s (m_stop_id = %u, m_memory_id = %u)",
2629                 ptr, error.AsCString("SUCCESS"), m_mod_id.GetStopID(),
2630                 m_mod_id.GetMemoryID());
2631 #endif
2632   return error;
2633 }
2634 
2635 ModuleSP Process::ReadModuleFromMemory(const FileSpec &file_spec,
2636                                        lldb::addr_t header_addr,
2637                                        size_t size_to_read) {
2638   Log *log = lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_HOST);
2639   if (log) {
2640     log->Printf("Process::ReadModuleFromMemory reading %s binary from memory",
2641                 file_spec.GetPath().c_str());
2642   }
2643   ModuleSP module_sp(new Module(file_spec, ArchSpec()));
2644   if (module_sp) {
2645     Status error;
2646     ObjectFile *objfile = module_sp->GetMemoryObjectFile(
2647         shared_from_this(), header_addr, error, size_to_read);
2648     if (objfile)
2649       return module_sp;
2650   }
2651   return ModuleSP();
2652 }
2653 
2654 bool Process::GetLoadAddressPermissions(lldb::addr_t load_addr,
2655                                         uint32_t &permissions) {
2656   MemoryRegionInfo range_info;
2657   permissions = 0;
2658   Status error(GetMemoryRegionInfo(load_addr, range_info));
2659   if (!error.Success())
2660     return false;
2661   if (range_info.GetReadable() == MemoryRegionInfo::eDontKnow ||
2662       range_info.GetWritable() == MemoryRegionInfo::eDontKnow ||
2663       range_info.GetExecutable() == MemoryRegionInfo::eDontKnow) {
2664     return false;
2665   }
2666 
2667   if (range_info.GetReadable() == MemoryRegionInfo::eYes)
2668     permissions |= lldb::ePermissionsReadable;
2669 
2670   if (range_info.GetWritable() == MemoryRegionInfo::eYes)
2671     permissions |= lldb::ePermissionsWritable;
2672 
2673   if (range_info.GetExecutable() == MemoryRegionInfo::eYes)
2674     permissions |= lldb::ePermissionsExecutable;
2675 
2676   return true;
2677 }
2678 
2679 Status Process::EnableWatchpoint(Watchpoint *watchpoint, bool notify) {
2680   Status error;
2681   error.SetErrorString("watchpoints are not supported");
2682   return error;
2683 }
2684 
2685 Status Process::DisableWatchpoint(Watchpoint *watchpoint, bool notify) {
2686   Status error;
2687   error.SetErrorString("watchpoints are not supported");
2688   return error;
2689 }
2690 
2691 StateType
2692 Process::WaitForProcessStopPrivate(EventSP &event_sp,
2693                                    const Timeout<std::micro> &timeout) {
2694   StateType state;
2695 
2696   while (true) {
2697     event_sp.reset();
2698     state = GetStateChangedEventsPrivate(event_sp, timeout);
2699 
2700     if (StateIsStoppedState(state, false))
2701       break;
2702 
2703     // If state is invalid, then we timed out
2704     if (state == eStateInvalid)
2705       break;
2706 
2707     if (event_sp)
2708       HandlePrivateEvent(event_sp);
2709   }
2710   return state;
2711 }
2712 
2713 void Process::LoadOperatingSystemPlugin(bool flush) {
2714   if (flush)
2715     m_thread_list.Clear();
2716   m_os_ap.reset(OperatingSystem::FindPlugin(this, nullptr));
2717   if (flush)
2718     Flush();
2719 }
2720 
2721 Status Process::Launch(ProcessLaunchInfo &launch_info) {
2722   Status error;
2723   m_abi_sp.reset();
2724   m_dyld_ap.reset();
2725   m_jit_loaders_ap.reset();
2726   m_system_runtime_ap.reset();
2727   m_os_ap.reset();
2728   m_process_input_reader.reset();
2729 
2730   Module *exe_module = GetTarget().GetExecutableModulePointer();
2731   if (exe_module) {
2732     char local_exec_file_path[PATH_MAX];
2733     char platform_exec_file_path[PATH_MAX];
2734     exe_module->GetFileSpec().GetPath(local_exec_file_path,
2735                                       sizeof(local_exec_file_path));
2736     exe_module->GetPlatformFileSpec().GetPath(platform_exec_file_path,
2737                                               sizeof(platform_exec_file_path));
2738     if (exe_module->GetFileSpec().Exists()) {
2739       // Install anything that might need to be installed prior to launching.
2740       // For host systems, this will do nothing, but if we are connected to a
2741       // remote platform it will install any needed binaries
2742       error = GetTarget().Install(&launch_info);
2743       if (error.Fail())
2744         return error;
2745 
2746       if (PrivateStateThreadIsValid())
2747         PausePrivateStateThread();
2748 
2749       error = WillLaunch(exe_module);
2750       if (error.Success()) {
2751         const bool restarted = false;
2752         SetPublicState(eStateLaunching, restarted);
2753         m_should_detach = false;
2754 
2755         if (m_public_run_lock.TrySetRunning()) {
2756           // Now launch using these arguments.
2757           error = DoLaunch(exe_module, launch_info);
2758         } else {
2759           // This shouldn't happen
2760           error.SetErrorString("failed to acquire process run lock");
2761         }
2762 
2763         if (error.Fail()) {
2764           if (GetID() != LLDB_INVALID_PROCESS_ID) {
2765             SetID(LLDB_INVALID_PROCESS_ID);
2766             const char *error_string = error.AsCString();
2767             if (error_string == nullptr)
2768               error_string = "launch failed";
2769             SetExitStatus(-1, error_string);
2770           }
2771         } else {
2772           EventSP event_sp;
2773 
2774           // Now wait for the process to launch and return control to us, and then call
2775           // DidLaunch:
2776           StateType state = WaitForProcessStopPrivate(event_sp, seconds(10));
2777 
2778           if (state == eStateInvalid || !event_sp) {
2779             // We were able to launch the process, but we failed to catch the
2780             // initial stop.
2781             error.SetErrorString("failed to catch stop after launch");
2782             SetExitStatus(0, "failed to catch stop after launch");
2783             Destroy(false);
2784           } else if (state == eStateStopped || state == eStateCrashed) {
2785             DidLaunch();
2786 
2787             DynamicLoader *dyld = GetDynamicLoader();
2788             if (dyld)
2789               dyld->DidLaunch();
2790 
2791             GetJITLoaders().DidLaunch();
2792 
2793             SystemRuntime *system_runtime = GetSystemRuntime();
2794             if (system_runtime)
2795               system_runtime->DidLaunch();
2796 
2797             if (!m_os_ap)
2798                 LoadOperatingSystemPlugin(false);
2799 
2800             // We successfully launched the process and stopped, now it the
2801             // right time to set up signal filters before resuming.
2802             UpdateAutomaticSignalFiltering();
2803 
2804             // Note, the stop event was consumed above, but not handled. This
2805             // was done to give DidLaunch a chance to run. The target is either
2806             // stopped or crashed. Directly set the state.  This is done to
2807             // prevent a stop message with a bunch of spurious output on thread
2808             // status, as well as not pop a ProcessIOHandler.
2809             SetPublicState(state, false);
2810 
2811             if (PrivateStateThreadIsValid())
2812               ResumePrivateStateThread();
2813             else
2814               StartPrivateStateThread();
2815 
2816             // Target was stopped at entry as was intended. Need to notify the
2817             // listeners about it.
2818             if (state == eStateStopped &&
2819                 launch_info.GetFlags().Test(eLaunchFlagStopAtEntry))
2820               HandlePrivateEvent(event_sp);
2821           } else if (state == eStateExited) {
2822             // We exited while trying to launch somehow.  Don't call DidLaunch
2823             // as that's not likely to work, and return an invalid pid.
2824             HandlePrivateEvent(event_sp);
2825           }
2826         }
2827       }
2828     } else {
2829       error.SetErrorStringWithFormat("file doesn't exist: '%s'",
2830                                      local_exec_file_path);
2831     }
2832   }
2833   return error;
2834 }
2835 
2836 Status Process::LoadCore() {
2837   Status error = DoLoadCore();
2838   if (error.Success()) {
2839     ListenerSP listener_sp(
2840         Listener::MakeListener("lldb.process.load_core_listener"));
2841     HijackProcessEvents(listener_sp);
2842 
2843     if (PrivateStateThreadIsValid())
2844       ResumePrivateStateThread();
2845     else
2846       StartPrivateStateThread();
2847 
2848     DynamicLoader *dyld = GetDynamicLoader();
2849     if (dyld)
2850       dyld->DidAttach();
2851 
2852     GetJITLoaders().DidAttach();
2853 
2854     SystemRuntime *system_runtime = GetSystemRuntime();
2855     if (system_runtime)
2856       system_runtime->DidAttach();
2857 
2858     if (!m_os_ap)
2859       LoadOperatingSystemPlugin(false);
2860 
2861     // We successfully loaded a core file, now pretend we stopped so we can
2862     // show all of the threads in the core file and explore the crashed state.
2863     SetPrivateState(eStateStopped);
2864 
2865     // Wait for a stopped event since we just posted one above...
2866     lldb::EventSP event_sp;
2867     StateType state =
2868         WaitForProcessToStop(seconds(10), &event_sp, true, listener_sp);
2869 
2870     if (!StateIsStoppedState(state, false)) {
2871       Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
2872       if (log)
2873         log->Printf("Process::Halt() failed to stop, state is: %s",
2874                     StateAsCString(state));
2875       error.SetErrorString(
2876           "Did not get stopped event after loading the core file.");
2877     }
2878     RestoreProcessEvents();
2879   }
2880   return error;
2881 }
2882 
2883 DynamicLoader *Process::GetDynamicLoader() {
2884   if (!m_dyld_ap)
2885     m_dyld_ap.reset(DynamicLoader::FindPlugin(this, nullptr));
2886   return m_dyld_ap.get();
2887 }
2888 
2889 const lldb::DataBufferSP Process::GetAuxvData() { return DataBufferSP(); }
2890 
2891 JITLoaderList &Process::GetJITLoaders() {
2892   if (!m_jit_loaders_ap) {
2893     m_jit_loaders_ap.reset(new JITLoaderList());
2894     JITLoader::LoadPlugins(this, *m_jit_loaders_ap);
2895   }
2896   return *m_jit_loaders_ap;
2897 }
2898 
2899 SystemRuntime *Process::GetSystemRuntime() {
2900   if (!m_system_runtime_ap)
2901     m_system_runtime_ap.reset(SystemRuntime::FindPlugin(this));
2902   return m_system_runtime_ap.get();
2903 }
2904 
2905 Process::AttachCompletionHandler::AttachCompletionHandler(Process *process,
2906                                                           uint32_t exec_count)
2907     : NextEventAction(process), m_exec_count(exec_count) {
2908   Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
2909   if (log)
2910     log->Printf(
2911         "Process::AttachCompletionHandler::%s process=%p, exec_count=%" PRIu32,
2912         __FUNCTION__, static_cast<void *>(process), exec_count);
2913 }
2914 
2915 Process::NextEventAction::EventActionResult
2916 Process::AttachCompletionHandler::PerformAction(lldb::EventSP &event_sp) {
2917   Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
2918 
2919   StateType state = ProcessEventData::GetStateFromEvent(event_sp.get());
2920   if (log)
2921     log->Printf(
2922         "Process::AttachCompletionHandler::%s called with state %s (%d)",
2923         __FUNCTION__, StateAsCString(state), static_cast<int>(state));
2924 
2925   switch (state) {
2926   case eStateAttaching:
2927     return eEventActionSuccess;
2928 
2929   case eStateRunning:
2930   case eStateConnected:
2931     return eEventActionRetry;
2932 
2933   case eStateStopped:
2934   case eStateCrashed:
2935     // During attach, prior to sending the eStateStopped event,
2936     // lldb_private::Process subclasses must set the new process ID.
2937     assert(m_process->GetID() != LLDB_INVALID_PROCESS_ID);
2938     // We don't want these events to be reported, so go set the
2939     // ShouldReportStop here:
2940     m_process->GetThreadList().SetShouldReportStop(eVoteNo);
2941 
2942     if (m_exec_count > 0) {
2943       --m_exec_count;
2944 
2945       if (log)
2946         log->Printf("Process::AttachCompletionHandler::%s state %s: reduced "
2947                     "remaining exec count to %" PRIu32 ", requesting resume",
2948                     __FUNCTION__, StateAsCString(state), m_exec_count);
2949 
2950       RequestResume();
2951       return eEventActionRetry;
2952     } else {
2953       if (log)
2954         log->Printf("Process::AttachCompletionHandler::%s state %s: no more "
2955                     "execs expected to start, continuing with attach",
2956                     __FUNCTION__, StateAsCString(state));
2957 
2958       m_process->CompleteAttach();
2959       return eEventActionSuccess;
2960     }
2961     break;
2962 
2963   default:
2964   case eStateExited:
2965   case eStateInvalid:
2966     break;
2967   }
2968 
2969   m_exit_string.assign("No valid Process");
2970   return eEventActionExit;
2971 }
2972 
2973 Process::NextEventAction::EventActionResult
2974 Process::AttachCompletionHandler::HandleBeingInterrupted() {
2975   return eEventActionSuccess;
2976 }
2977 
2978 const char *Process::AttachCompletionHandler::GetExitString() {
2979   return m_exit_string.c_str();
2980 }
2981 
2982 ListenerSP ProcessAttachInfo::GetListenerForProcess(Debugger &debugger) {
2983   if (m_listener_sp)
2984     return m_listener_sp;
2985   else
2986     return debugger.GetListener();
2987 }
2988 
2989 Status Process::Attach(ProcessAttachInfo &attach_info) {
2990   m_abi_sp.reset();
2991   m_process_input_reader.reset();
2992   m_dyld_ap.reset();
2993   m_jit_loaders_ap.reset();
2994   m_system_runtime_ap.reset();
2995   m_os_ap.reset();
2996 
2997   lldb::pid_t attach_pid = attach_info.GetProcessID();
2998   Status error;
2999   if (attach_pid == LLDB_INVALID_PROCESS_ID) {
3000     char process_name[PATH_MAX];
3001 
3002     if (attach_info.GetExecutableFile().GetPath(process_name,
3003                                                 sizeof(process_name))) {
3004       const bool wait_for_launch = attach_info.GetWaitForLaunch();
3005 
3006       if (wait_for_launch) {
3007         error = WillAttachToProcessWithName(process_name, wait_for_launch);
3008         if (error.Success()) {
3009           if (m_public_run_lock.TrySetRunning()) {
3010             m_should_detach = true;
3011             const bool restarted = false;
3012             SetPublicState(eStateAttaching, restarted);
3013             // Now attach using these arguments.
3014             error = DoAttachToProcessWithName(process_name, attach_info);
3015           } else {
3016             // This shouldn't happen
3017             error.SetErrorString("failed to acquire process run lock");
3018           }
3019 
3020           if (error.Fail()) {
3021             if (GetID() != LLDB_INVALID_PROCESS_ID) {
3022               SetID(LLDB_INVALID_PROCESS_ID);
3023               if (error.AsCString() == nullptr)
3024                 error.SetErrorString("attach failed");
3025 
3026               SetExitStatus(-1, error.AsCString());
3027             }
3028           } else {
3029             SetNextEventAction(new Process::AttachCompletionHandler(
3030                 this, attach_info.GetResumeCount()));
3031             StartPrivateStateThread();
3032           }
3033           return error;
3034         }
3035       } else {
3036         ProcessInstanceInfoList process_infos;
3037         PlatformSP platform_sp(GetTarget().GetPlatform());
3038 
3039         if (platform_sp) {
3040           ProcessInstanceInfoMatch match_info;
3041           match_info.GetProcessInfo() = attach_info;
3042           match_info.SetNameMatchType(NameMatch::Equals);
3043           platform_sp->FindProcesses(match_info, process_infos);
3044           const uint32_t num_matches = process_infos.GetSize();
3045           if (num_matches == 1) {
3046             attach_pid = process_infos.GetProcessIDAtIndex(0);
3047             // Fall through and attach using the above process ID
3048           } else {
3049             match_info.GetProcessInfo().GetExecutableFile().GetPath(
3050                 process_name, sizeof(process_name));
3051             if (num_matches > 1) {
3052               StreamString s;
3053               ProcessInstanceInfo::DumpTableHeader(s, platform_sp.get(), true,
3054                                                    false);
3055               for (size_t i = 0; i < num_matches; i++) {
3056                 process_infos.GetProcessInfoAtIndex(i).DumpAsTableRow(
3057                     s, platform_sp.get(), true, false);
3058               }
3059               error.SetErrorStringWithFormat(
3060                   "more than one process named %s:\n%s", process_name,
3061                   s.GetData());
3062             } else
3063               error.SetErrorStringWithFormat(
3064                   "could not find a process named %s", process_name);
3065           }
3066         } else {
3067           error.SetErrorString(
3068               "invalid platform, can't find processes by name");
3069           return error;
3070         }
3071       }
3072     } else {
3073       error.SetErrorString("invalid process name");
3074     }
3075   }
3076 
3077   if (attach_pid != LLDB_INVALID_PROCESS_ID) {
3078     error = WillAttachToProcessWithID(attach_pid);
3079     if (error.Success()) {
3080 
3081       if (m_public_run_lock.TrySetRunning()) {
3082         // Now attach using these arguments.
3083         m_should_detach = true;
3084         const bool restarted = false;
3085         SetPublicState(eStateAttaching, restarted);
3086         error = DoAttachToProcessWithID(attach_pid, attach_info);
3087       } else {
3088         // This shouldn't happen
3089         error.SetErrorString("failed to acquire process run lock");
3090       }
3091 
3092       if (error.Success()) {
3093         SetNextEventAction(new Process::AttachCompletionHandler(
3094             this, attach_info.GetResumeCount()));
3095         StartPrivateStateThread();
3096       } else {
3097         if (GetID() != LLDB_INVALID_PROCESS_ID)
3098           SetID(LLDB_INVALID_PROCESS_ID);
3099 
3100         const char *error_string = error.AsCString();
3101         if (error_string == nullptr)
3102           error_string = "attach failed";
3103 
3104         SetExitStatus(-1, error_string);
3105       }
3106     }
3107   }
3108   return error;
3109 }
3110 
3111 void Process::CompleteAttach() {
3112   Log *log(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_PROCESS |
3113                                                   LIBLLDB_LOG_TARGET));
3114   if (log)
3115     log->Printf("Process::%s()", __FUNCTION__);
3116 
3117   // Let the process subclass figure out at much as it can about the process
3118   // before we go looking for a dynamic loader plug-in.
3119   ArchSpec process_arch;
3120   DidAttach(process_arch);
3121 
3122   if (process_arch.IsValid()) {
3123     GetTarget().SetArchitecture(process_arch);
3124     if (log) {
3125       const char *triple_str = process_arch.GetTriple().getTriple().c_str();
3126       log->Printf("Process::%s replacing process architecture with DidAttach() "
3127                   "architecture: %s",
3128                   __FUNCTION__, triple_str ? triple_str : "<null>");
3129     }
3130   }
3131 
3132   // We just attached.  If we have a platform, ask it for the process
3133   // architecture, and if it isn't the same as the one we've already set,
3134   // switch architectures.
3135   PlatformSP platform_sp(GetTarget().GetPlatform());
3136   assert(platform_sp);
3137   if (platform_sp) {
3138     const ArchSpec &target_arch = GetTarget().GetArchitecture();
3139     if (target_arch.IsValid() &&
3140         !platform_sp->IsCompatibleArchitecture(target_arch, false, nullptr)) {
3141       ArchSpec platform_arch;
3142       platform_sp =
3143           platform_sp->GetPlatformForArchitecture(target_arch, &platform_arch);
3144       if (platform_sp) {
3145         GetTarget().SetPlatform(platform_sp);
3146         GetTarget().SetArchitecture(platform_arch);
3147         if (log)
3148           log->Printf("Process::%s switching platform to %s and architecture "
3149                       "to %s based on info from attach",
3150                       __FUNCTION__, platform_sp->GetName().AsCString(""),
3151                       platform_arch.GetTriple().getTriple().c_str());
3152       }
3153     } else if (!process_arch.IsValid()) {
3154       ProcessInstanceInfo process_info;
3155       GetProcessInfo(process_info);
3156       const ArchSpec &process_arch = process_info.GetArchitecture();
3157       if (process_arch.IsValid() &&
3158           !GetTarget().GetArchitecture().IsExactMatch(process_arch)) {
3159         GetTarget().SetArchitecture(process_arch);
3160         if (log)
3161           log->Printf("Process::%s switching architecture to %s based on info "
3162                       "the platform retrieved for pid %" PRIu64,
3163                       __FUNCTION__,
3164                       process_arch.GetTriple().getTriple().c_str(), GetID());
3165       }
3166     }
3167   }
3168 
3169   // We have completed the attach, now it is time to find the dynamic loader
3170   // plug-in
3171   DynamicLoader *dyld = GetDynamicLoader();
3172   if (dyld) {
3173     dyld->DidAttach();
3174     if (log) {
3175       ModuleSP exe_module_sp = GetTarget().GetExecutableModule();
3176       log->Printf("Process::%s after DynamicLoader::DidAttach(), target "
3177                   "executable is %s (using %s plugin)",
3178                   __FUNCTION__,
3179                   exe_module_sp ? exe_module_sp->GetFileSpec().GetPath().c_str()
3180                                 : "<none>",
3181                   dyld->GetPluginName().AsCString("<unnamed>"));
3182     }
3183   }
3184 
3185   GetJITLoaders().DidAttach();
3186 
3187   SystemRuntime *system_runtime = GetSystemRuntime();
3188   if (system_runtime) {
3189     system_runtime->DidAttach();
3190     if (log) {
3191       ModuleSP exe_module_sp = GetTarget().GetExecutableModule();
3192       log->Printf("Process::%s after SystemRuntime::DidAttach(), target "
3193                   "executable is %s (using %s plugin)",
3194                   __FUNCTION__,
3195                   exe_module_sp ? exe_module_sp->GetFileSpec().GetPath().c_str()
3196                                 : "<none>",
3197                   system_runtime->GetPluginName().AsCString("<unnamed>"));
3198     }
3199   }
3200 
3201   if (!m_os_ap)
3202     LoadOperatingSystemPlugin(false);
3203   // Figure out which one is the executable, and set that in our target:
3204   const ModuleList &target_modules = GetTarget().GetImages();
3205   std::lock_guard<std::recursive_mutex> guard(target_modules.GetMutex());
3206   size_t num_modules = target_modules.GetSize();
3207   ModuleSP new_executable_module_sp;
3208 
3209   for (size_t i = 0; i < num_modules; i++) {
3210     ModuleSP module_sp(target_modules.GetModuleAtIndexUnlocked(i));
3211     if (module_sp && module_sp->IsExecutable()) {
3212       if (GetTarget().GetExecutableModulePointer() != module_sp.get())
3213         new_executable_module_sp = module_sp;
3214       break;
3215     }
3216   }
3217   if (new_executable_module_sp) {
3218     GetTarget().SetExecutableModule(new_executable_module_sp,
3219                                     eLoadDependentsNo);
3220     if (log) {
3221       ModuleSP exe_module_sp = GetTarget().GetExecutableModule();
3222       log->Printf(
3223           "Process::%s after looping through modules, target executable is %s",
3224           __FUNCTION__,
3225           exe_module_sp ? exe_module_sp->GetFileSpec().GetPath().c_str()
3226                         : "<none>");
3227     }
3228   }
3229 }
3230 
3231 Status Process::ConnectRemote(Stream *strm, llvm::StringRef remote_url) {
3232   m_abi_sp.reset();
3233   m_process_input_reader.reset();
3234 
3235   // Find the process and its architecture.  Make sure it matches the
3236   // architecture of the current Target, and if not adjust it.
3237 
3238   Status error(DoConnectRemote(strm, remote_url));
3239   if (error.Success()) {
3240     if (GetID() != LLDB_INVALID_PROCESS_ID) {
3241       EventSP event_sp;
3242       StateType state = WaitForProcessStopPrivate(event_sp, llvm::None);
3243 
3244       if (state == eStateStopped || state == eStateCrashed) {
3245         // If we attached and actually have a process on the other end, then
3246         // this ended up being the equivalent of an attach.
3247         CompleteAttach();
3248 
3249         // This delays passing the stopped event to listeners till
3250         // CompleteAttach gets a chance to complete...
3251         HandlePrivateEvent(event_sp);
3252       }
3253     }
3254 
3255     if (PrivateStateThreadIsValid())
3256       ResumePrivateStateThread();
3257     else
3258       StartPrivateStateThread();
3259   }
3260   return error;
3261 }
3262 
3263 Status Process::PrivateResume() {
3264   Log *log(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_PROCESS |
3265                                                   LIBLLDB_LOG_STEP));
3266   if (log)
3267     log->Printf("Process::PrivateResume() m_stop_id = %u, public state: %s "
3268                 "private state: %s",
3269                 m_mod_id.GetStopID(), StateAsCString(m_public_state.GetValue()),
3270                 StateAsCString(m_private_state.GetValue()));
3271 
3272   // If signals handing status changed we might want to update our signal
3273   // filters before resuming.
3274   UpdateAutomaticSignalFiltering();
3275 
3276   Status error(WillResume());
3277   // Tell the process it is about to resume before the thread list
3278   if (error.Success()) {
3279     // Now let the thread list know we are about to resume so it can let all of
3280     // our threads know that they are about to be resumed. Threads will each be
3281     // called with Thread::WillResume(StateType) where StateType contains the
3282     // state that they are supposed to have when the process is resumed
3283     // (suspended/running/stepping). Threads should also check their resume
3284     // signal in lldb::Thread::GetResumeSignal() to see if they are supposed to
3285     // start back up with a signal.
3286     if (m_thread_list.WillResume()) {
3287       // Last thing, do the PreResumeActions.
3288       if (!RunPreResumeActions()) {
3289         error.SetErrorStringWithFormat(
3290             "Process::PrivateResume PreResumeActions failed, not resuming.");
3291       } else {
3292         m_mod_id.BumpResumeID();
3293         error = DoResume();
3294         if (error.Success()) {
3295           DidResume();
3296           m_thread_list.DidResume();
3297           if (log)
3298             log->Printf("Process thinks the process has resumed.");
3299         }
3300       }
3301     } else {
3302       // Somebody wanted to run without running (e.g. we were faking a step
3303       // from one frame of a set of inlined frames that share the same PC to
3304       // another.)  So generate a continue & a stopped event, and let the world
3305       // handle them.
3306       if (log)
3307         log->Printf(
3308             "Process::PrivateResume() asked to simulate a start & stop.");
3309 
3310       SetPrivateState(eStateRunning);
3311       SetPrivateState(eStateStopped);
3312     }
3313   } else if (log)
3314     log->Printf("Process::PrivateResume() got an error \"%s\".",
3315                 error.AsCString("<unknown error>"));
3316   return error;
3317 }
3318 
3319 Status Process::Halt(bool clear_thread_plans, bool use_run_lock) {
3320   if (!StateIsRunningState(m_public_state.GetValue()))
3321     return Status("Process is not running.");
3322 
3323   // Don't clear the m_clear_thread_plans_on_stop, only set it to true if in
3324   // case it was already set and some thread plan logic calls halt on its own.
3325   m_clear_thread_plans_on_stop |= clear_thread_plans;
3326 
3327   ListenerSP halt_listener_sp(
3328       Listener::MakeListener("lldb.process.halt_listener"));
3329   HijackProcessEvents(halt_listener_sp);
3330 
3331   EventSP event_sp;
3332 
3333   SendAsyncInterrupt();
3334 
3335   if (m_public_state.GetValue() == eStateAttaching) {
3336     // Don't hijack and eat the eStateExited as the code that was doing the
3337     // attach will be waiting for this event...
3338     RestoreProcessEvents();
3339     SetExitStatus(SIGKILL, "Cancelled async attach.");
3340     Destroy(false);
3341     return Status();
3342   }
3343 
3344   // Wait for 10 second for the process to stop.
3345   StateType state = WaitForProcessToStop(
3346       seconds(10), &event_sp, true, halt_listener_sp, nullptr, use_run_lock);
3347   RestoreProcessEvents();
3348 
3349   if (state == eStateInvalid || !event_sp) {
3350     // We timed out and didn't get a stop event...
3351     return Status("Halt timed out. State = %s", StateAsCString(GetState()));
3352   }
3353 
3354   BroadcastEvent(event_sp);
3355 
3356   return Status();
3357 }
3358 
3359 Status Process::StopForDestroyOrDetach(lldb::EventSP &exit_event_sp) {
3360   Status error;
3361 
3362   // Check both the public & private states here.  If we're hung evaluating an
3363   // expression, for instance, then the public state will be stopped, but we
3364   // still need to interrupt.
3365   if (m_public_state.GetValue() == eStateRunning ||
3366       m_private_state.GetValue() == eStateRunning) {
3367     Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
3368     if (log)
3369       log->Printf("Process::%s() About to stop.", __FUNCTION__);
3370 
3371     ListenerSP listener_sp(
3372         Listener::MakeListener("lldb.Process.StopForDestroyOrDetach.hijack"));
3373     HijackProcessEvents(listener_sp);
3374 
3375     SendAsyncInterrupt();
3376 
3377     // Consume the interrupt event.
3378     StateType state =
3379         WaitForProcessToStop(seconds(10), &exit_event_sp, true, listener_sp);
3380 
3381     RestoreProcessEvents();
3382 
3383     // If the process exited while we were waiting for it to stop, put the
3384     // exited event into the shared pointer passed in and return.  Our caller
3385     // doesn't need to do anything else, since they don't have a process
3386     // anymore...
3387 
3388     if (state == eStateExited || m_private_state.GetValue() == eStateExited) {
3389       if (log)
3390         log->Printf("Process::%s() Process exited while waiting to stop.",
3391                     __FUNCTION__);
3392       return error;
3393     } else
3394       exit_event_sp.reset(); // It is ok to consume any non-exit stop events
3395 
3396     if (state != eStateStopped) {
3397       if (log)
3398         log->Printf("Process::%s() failed to stop, state is: %s", __FUNCTION__,
3399                     StateAsCString(state));
3400       // If we really couldn't stop the process then we should just error out
3401       // here, but if the lower levels just bobbled sending the event and we
3402       // really are stopped, then continue on.
3403       StateType private_state = m_private_state.GetValue();
3404       if (private_state != eStateStopped) {
3405         return Status(
3406             "Attempt to stop the target in order to detach timed out. "
3407             "State = %s",
3408             StateAsCString(GetState()));
3409       }
3410     }
3411   }
3412   return error;
3413 }
3414 
3415 Status Process::Detach(bool keep_stopped) {
3416   EventSP exit_event_sp;
3417   Status error;
3418   m_destroy_in_process = true;
3419 
3420   error = WillDetach();
3421 
3422   if (error.Success()) {
3423     if (DetachRequiresHalt()) {
3424       error = StopForDestroyOrDetach(exit_event_sp);
3425       if (!error.Success()) {
3426         m_destroy_in_process = false;
3427         return error;
3428       } else if (exit_event_sp) {
3429         // We shouldn't need to do anything else here.  There's no process left
3430         // to detach from...
3431         StopPrivateStateThread();
3432         m_destroy_in_process = false;
3433         return error;
3434       }
3435     }
3436 
3437     m_thread_list.DiscardThreadPlans();
3438     DisableAllBreakpointSites();
3439 
3440     error = DoDetach(keep_stopped);
3441     if (error.Success()) {
3442       DidDetach();
3443       StopPrivateStateThread();
3444     } else {
3445       return error;
3446     }
3447   }
3448   m_destroy_in_process = false;
3449 
3450   // If we exited when we were waiting for a process to stop, then forward the
3451   // event here so we don't lose the event
3452   if (exit_event_sp) {
3453     // Directly broadcast our exited event because we shut down our private
3454     // state thread above
3455     BroadcastEvent(exit_event_sp);
3456   }
3457 
3458   // If we have been interrupted (to kill us) in the middle of running, we may
3459   // not end up propagating the last events through the event system, in which
3460   // case we might strand the write lock.  Unlock it here so when we do to tear
3461   // down the process we don't get an error destroying the lock.
3462 
3463   m_public_run_lock.SetStopped();
3464   return error;
3465 }
3466 
3467 Status Process::Destroy(bool force_kill) {
3468 
3469   // Tell ourselves we are in the process of destroying the process, so that we
3470   // don't do any unnecessary work that might hinder the destruction.  Remember
3471   // to set this back to false when we are done.  That way if the attempt
3472   // failed and the process stays around for some reason it won't be in a
3473   // confused state.
3474 
3475   if (force_kill)
3476     m_should_detach = false;
3477 
3478   if (GetShouldDetach()) {
3479     // FIXME: This will have to be a process setting:
3480     bool keep_stopped = false;
3481     Detach(keep_stopped);
3482   }
3483 
3484   m_destroy_in_process = true;
3485 
3486   Status error(WillDestroy());
3487   if (error.Success()) {
3488     EventSP exit_event_sp;
3489     if (DestroyRequiresHalt()) {
3490       error = StopForDestroyOrDetach(exit_event_sp);
3491     }
3492 
3493     if (m_public_state.GetValue() != eStateRunning) {
3494       // Ditch all thread plans, and remove all our breakpoints: in case we
3495       // have to restart the target to kill it, we don't want it hitting a
3496       // breakpoint... Only do this if we've stopped, however, since if we
3497       // didn't manage to halt it above, then we're not going to have much luck
3498       // doing this now.
3499       m_thread_list.DiscardThreadPlans();
3500       DisableAllBreakpointSites();
3501     }
3502 
3503     error = DoDestroy();
3504     if (error.Success()) {
3505       DidDestroy();
3506       StopPrivateStateThread();
3507     }
3508     m_stdio_communication.Disconnect();
3509     m_stdio_communication.StopReadThread();
3510     m_stdin_forward = false;
3511 
3512     if (m_process_input_reader) {
3513       m_process_input_reader->SetIsDone(true);
3514       m_process_input_reader->Cancel();
3515       m_process_input_reader.reset();
3516     }
3517 
3518     // If we exited when we were waiting for a process to stop, then forward
3519     // the event here so we don't lose the event
3520     if (exit_event_sp) {
3521       // Directly broadcast our exited event because we shut down our private
3522       // state thread above
3523       BroadcastEvent(exit_event_sp);
3524     }
3525 
3526     // If we have been interrupted (to kill us) in the middle of running, we
3527     // may not end up propagating the last events through the event system, in
3528     // which case we might strand the write lock.  Unlock it here so when we do
3529     // to tear down the process we don't get an error destroying the lock.
3530     m_public_run_lock.SetStopped();
3531   }
3532 
3533   m_destroy_in_process = false;
3534 
3535   return error;
3536 }
3537 
3538 Status Process::Signal(int signal) {
3539   Status error(WillSignal());
3540   if (error.Success()) {
3541     error = DoSignal(signal);
3542     if (error.Success())
3543       DidSignal();
3544   }
3545   return error;
3546 }
3547 
3548 void Process::SetUnixSignals(UnixSignalsSP &&signals_sp) {
3549   assert(signals_sp && "null signals_sp");
3550   m_unix_signals_sp = signals_sp;
3551 }
3552 
3553 const lldb::UnixSignalsSP &Process::GetUnixSignals() {
3554   assert(m_unix_signals_sp && "null m_unix_signals_sp");
3555   return m_unix_signals_sp;
3556 }
3557 
3558 lldb::ByteOrder Process::GetByteOrder() const {
3559   return GetTarget().GetArchitecture().GetByteOrder();
3560 }
3561 
3562 uint32_t Process::GetAddressByteSize() const {
3563   return GetTarget().GetArchitecture().GetAddressByteSize();
3564 }
3565 
3566 bool Process::ShouldBroadcastEvent(Event *event_ptr) {
3567   const StateType state =
3568       Process::ProcessEventData::GetStateFromEvent(event_ptr);
3569   bool return_value = true;
3570   Log *log(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_EVENTS |
3571                                                   LIBLLDB_LOG_PROCESS));
3572 
3573   switch (state) {
3574   case eStateDetached:
3575   case eStateExited:
3576   case eStateUnloaded:
3577     m_stdio_communication.SynchronizeWithReadThread();
3578     m_stdio_communication.Disconnect();
3579     m_stdio_communication.StopReadThread();
3580     m_stdin_forward = false;
3581 
3582     LLVM_FALLTHROUGH;
3583   case eStateConnected:
3584   case eStateAttaching:
3585   case eStateLaunching:
3586     // These events indicate changes in the state of the debugging session,
3587     // always report them.
3588     return_value = true;
3589     break;
3590   case eStateInvalid:
3591     // We stopped for no apparent reason, don't report it.
3592     return_value = false;
3593     break;
3594   case eStateRunning:
3595   case eStateStepping:
3596     // If we've started the target running, we handle the cases where we are
3597     // already running and where there is a transition from stopped to running
3598     // differently. running -> running: Automatically suppress extra running
3599     // events stopped -> running: Report except when there is one or more no
3600     // votes
3601     //     and no yes votes.
3602     SynchronouslyNotifyStateChanged(state);
3603     if (m_force_next_event_delivery)
3604       return_value = true;
3605     else {
3606       switch (m_last_broadcast_state) {
3607       case eStateRunning:
3608       case eStateStepping:
3609         // We always suppress multiple runnings with no PUBLIC stop in between.
3610         return_value = false;
3611         break;
3612       default:
3613         // TODO: make this work correctly. For now always report
3614         // run if we aren't running so we don't miss any running events. If I
3615         // run the lldb/test/thread/a.out file and break at main.cpp:58, run
3616         // and hit the breakpoints on multiple threads, then somehow during the
3617         // stepping over of all breakpoints no run gets reported.
3618 
3619         // This is a transition from stop to run.
3620         switch (m_thread_list.ShouldReportRun(event_ptr)) {
3621         case eVoteYes:
3622         case eVoteNoOpinion:
3623           return_value = true;
3624           break;
3625         case eVoteNo:
3626           return_value = false;
3627           break;
3628         }
3629         break;
3630       }
3631     }
3632     break;
3633   case eStateStopped:
3634   case eStateCrashed:
3635   case eStateSuspended:
3636     // We've stopped.  First see if we're going to restart the target. If we
3637     // are going to stop, then we always broadcast the event. If we aren't
3638     // going to stop, let the thread plans decide if we're going to report this
3639     // event. If no thread has an opinion, we don't report it.
3640 
3641     m_stdio_communication.SynchronizeWithReadThread();
3642     RefreshStateAfterStop();
3643     if (ProcessEventData::GetInterruptedFromEvent(event_ptr)) {
3644       if (log)
3645         log->Printf("Process::ShouldBroadcastEvent (%p) stopped due to an "
3646                     "interrupt, state: %s",
3647                     static_cast<void *>(event_ptr), StateAsCString(state));
3648       // Even though we know we are going to stop, we should let the threads
3649       // have a look at the stop, so they can properly set their state.
3650       m_thread_list.ShouldStop(event_ptr);
3651       return_value = true;
3652     } else {
3653       bool was_restarted = ProcessEventData::GetRestartedFromEvent(event_ptr);
3654       bool should_resume = false;
3655 
3656       // It makes no sense to ask "ShouldStop" if we've already been
3657       // restarted... Asking the thread list is also not likely to go well,
3658       // since we are running again. So in that case just report the event.
3659 
3660       if (!was_restarted)
3661         should_resume = !m_thread_list.ShouldStop(event_ptr);
3662 
3663       if (was_restarted || should_resume || m_resume_requested) {
3664         Vote stop_vote = m_thread_list.ShouldReportStop(event_ptr);
3665         if (log)
3666           log->Printf("Process::ShouldBroadcastEvent: should_resume: %i state: "
3667                       "%s was_restarted: %i stop_vote: %d.",
3668                       should_resume, StateAsCString(state), was_restarted,
3669                       stop_vote);
3670 
3671         switch (stop_vote) {
3672         case eVoteYes:
3673           return_value = true;
3674           break;
3675         case eVoteNoOpinion:
3676         case eVoteNo:
3677           return_value = false;
3678           break;
3679         }
3680 
3681         if (!was_restarted) {
3682           if (log)
3683             log->Printf("Process::ShouldBroadcastEvent (%p) Restarting process "
3684                         "from state: %s",
3685                         static_cast<void *>(event_ptr), StateAsCString(state));
3686           ProcessEventData::SetRestartedInEvent(event_ptr, true);
3687           PrivateResume();
3688         }
3689       } else {
3690         return_value = true;
3691         SynchronouslyNotifyStateChanged(state);
3692       }
3693     }
3694     break;
3695   }
3696 
3697   // Forcing the next event delivery is a one shot deal.  So reset it here.
3698   m_force_next_event_delivery = false;
3699 
3700   // We do some coalescing of events (for instance two consecutive running
3701   // events get coalesced.) But we only coalesce against events we actually
3702   // broadcast.  So we use m_last_broadcast_state to track that.  NB - you
3703   // can't use "m_public_state.GetValue()" for that purpose, as was originally
3704   // done, because the PublicState reflects the last event pulled off the
3705   // queue, and there may be several events stacked up on the queue unserviced.
3706   // So the PublicState may not reflect the last broadcasted event yet.
3707   // m_last_broadcast_state gets updated here.
3708 
3709   if (return_value)
3710     m_last_broadcast_state = state;
3711 
3712   if (log)
3713     log->Printf("Process::ShouldBroadcastEvent (%p) => new state: %s, last "
3714                 "broadcast state: %s - %s",
3715                 static_cast<void *>(event_ptr), StateAsCString(state),
3716                 StateAsCString(m_last_broadcast_state),
3717                 return_value ? "YES" : "NO");
3718   return return_value;
3719 }
3720 
3721 bool Process::StartPrivateStateThread(bool is_secondary_thread) {
3722   Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_EVENTS));
3723 
3724   bool already_running = PrivateStateThreadIsValid();
3725   if (log)
3726     log->Printf("Process::%s()%s ", __FUNCTION__,
3727                 already_running ? " already running"
3728                                 : " starting private state thread");
3729 
3730   if (!is_secondary_thread && already_running)
3731     return true;
3732 
3733   // Create a thread that watches our internal state and controls which events
3734   // make it to clients (into the DCProcess event queue).
3735   char thread_name[1024];
3736   uint32_t max_len = llvm::get_max_thread_name_length();
3737   if (max_len > 0 && max_len <= 30) {
3738     // On platforms with abbreviated thread name lengths, choose thread names
3739     // that fit within the limit.
3740     if (already_running)
3741       snprintf(thread_name, sizeof(thread_name), "intern-state-OV");
3742     else
3743       snprintf(thread_name, sizeof(thread_name), "intern-state");
3744   } else {
3745     if (already_running)
3746       snprintf(thread_name, sizeof(thread_name),
3747                "<lldb.process.internal-state-override(pid=%" PRIu64 ")>",
3748                GetID());
3749     else
3750       snprintf(thread_name, sizeof(thread_name),
3751                "<lldb.process.internal-state(pid=%" PRIu64 ")>", GetID());
3752   }
3753 
3754   // Create the private state thread, and start it running.
3755   PrivateStateThreadArgs *args_ptr =
3756       new PrivateStateThreadArgs(this, is_secondary_thread);
3757   m_private_state_thread =
3758       ThreadLauncher::LaunchThread(thread_name, Process::PrivateStateThread,
3759                                    (void *)args_ptr, nullptr, 8 * 1024 * 1024);
3760   if (m_private_state_thread.IsJoinable()) {
3761     ResumePrivateStateThread();
3762     return true;
3763   } else
3764     return false;
3765 }
3766 
3767 void Process::PausePrivateStateThread() {
3768   ControlPrivateStateThread(eBroadcastInternalStateControlPause);
3769 }
3770 
3771 void Process::ResumePrivateStateThread() {
3772   ControlPrivateStateThread(eBroadcastInternalStateControlResume);
3773 }
3774 
3775 void Process::StopPrivateStateThread() {
3776   if (m_private_state_thread.IsJoinable())
3777     ControlPrivateStateThread(eBroadcastInternalStateControlStop);
3778   else {
3779     Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
3780     if (log)
3781       log->Printf(
3782           "Went to stop the private state thread, but it was already invalid.");
3783   }
3784 }
3785 
3786 void Process::ControlPrivateStateThread(uint32_t signal) {
3787   Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
3788 
3789   assert(signal == eBroadcastInternalStateControlStop ||
3790          signal == eBroadcastInternalStateControlPause ||
3791          signal == eBroadcastInternalStateControlResume);
3792 
3793   if (log)
3794     log->Printf("Process::%s (signal = %d)", __FUNCTION__, signal);
3795 
3796   // Signal the private state thread
3797   if (m_private_state_thread.IsJoinable()) {
3798     // Broadcast the event.
3799     // It is important to do this outside of the if below, because it's
3800     // possible that the thread state is invalid but that the thread is waiting
3801     // on a control event instead of simply being on its way out (this should
3802     // not happen, but it apparently can).
3803     if (log)
3804       log->Printf("Sending control event of type: %d.", signal);
3805     std::shared_ptr<EventDataReceipt> event_receipt_sp(new EventDataReceipt());
3806     m_private_state_control_broadcaster.BroadcastEvent(signal,
3807                                                        event_receipt_sp);
3808 
3809     // Wait for the event receipt or for the private state thread to exit
3810     bool receipt_received = false;
3811     if (PrivateStateThreadIsValid()) {
3812       while (!receipt_received) {
3813         // Check for a receipt for 2 seconds and then check if the private
3814         // state thread is still around.
3815         receipt_received =
3816             event_receipt_sp->WaitForEventReceived(std::chrono::seconds(2));
3817         if (!receipt_received) {
3818           // Check if the private state thread is still around. If it isn't
3819           // then we are done waiting
3820           if (!PrivateStateThreadIsValid())
3821             break; // Private state thread exited or is exiting, we are done
3822         }
3823       }
3824     }
3825 
3826     if (signal == eBroadcastInternalStateControlStop) {
3827       thread_result_t result = NULL;
3828       m_private_state_thread.Join(&result);
3829       m_private_state_thread.Reset();
3830     }
3831   } else {
3832     if (log)
3833       log->Printf(
3834           "Private state thread already dead, no need to signal it to stop.");
3835   }
3836 }
3837 
3838 void Process::SendAsyncInterrupt() {
3839   if (PrivateStateThreadIsValid())
3840     m_private_state_broadcaster.BroadcastEvent(Process::eBroadcastBitInterrupt,
3841                                                nullptr);
3842   else
3843     BroadcastEvent(Process::eBroadcastBitInterrupt, nullptr);
3844 }
3845 
3846 void Process::HandlePrivateEvent(EventSP &event_sp) {
3847   Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
3848   m_resume_requested = false;
3849 
3850   const StateType new_state =
3851       Process::ProcessEventData::GetStateFromEvent(event_sp.get());
3852 
3853   // First check to see if anybody wants a shot at this event:
3854   if (m_next_event_action_ap) {
3855     NextEventAction::EventActionResult action_result =
3856         m_next_event_action_ap->PerformAction(event_sp);
3857     if (log)
3858       log->Printf("Ran next event action, result was %d.", action_result);
3859 
3860     switch (action_result) {
3861     case NextEventAction::eEventActionSuccess:
3862       SetNextEventAction(nullptr);
3863       break;
3864 
3865     case NextEventAction::eEventActionRetry:
3866       break;
3867 
3868     case NextEventAction::eEventActionExit:
3869       // Handle Exiting Here.  If we already got an exited event, we should
3870       // just propagate it.  Otherwise, swallow this event, and set our state
3871       // to exit so the next event will kill us.
3872       if (new_state != eStateExited) {
3873         // FIXME: should cons up an exited event, and discard this one.
3874         SetExitStatus(0, m_next_event_action_ap->GetExitString());
3875         SetNextEventAction(nullptr);
3876         return;
3877       }
3878       SetNextEventAction(nullptr);
3879       break;
3880     }
3881   }
3882 
3883   // See if we should broadcast this state to external clients?
3884   const bool should_broadcast = ShouldBroadcastEvent(event_sp.get());
3885 
3886   if (should_broadcast) {
3887     const bool is_hijacked = IsHijackedForEvent(eBroadcastBitStateChanged);
3888     if (log) {
3889       log->Printf("Process::%s (pid = %" PRIu64
3890                   ") broadcasting new state %s (old state %s) to %s",
3891                   __FUNCTION__, GetID(), StateAsCString(new_state),
3892                   StateAsCString(GetState()),
3893                   is_hijacked ? "hijacked" : "public");
3894     }
3895     Process::ProcessEventData::SetUpdateStateOnRemoval(event_sp.get());
3896     if (StateIsRunningState(new_state)) {
3897       // Only push the input handler if we aren't fowarding events, as this
3898       // means the curses GUI is in use... Or don't push it if we are launching
3899       // since it will come up stopped.
3900       if (!GetTarget().GetDebugger().IsForwardingEvents() &&
3901           new_state != eStateLaunching && new_state != eStateAttaching) {
3902         PushProcessIOHandler();
3903         m_iohandler_sync.SetValue(m_iohandler_sync.GetValue() + 1,
3904                                   eBroadcastAlways);
3905         if (log)
3906           log->Printf("Process::%s updated m_iohandler_sync to %d",
3907                       __FUNCTION__, m_iohandler_sync.GetValue());
3908       }
3909     } else if (StateIsStoppedState(new_state, false)) {
3910       if (!Process::ProcessEventData::GetRestartedFromEvent(event_sp.get())) {
3911         // If the lldb_private::Debugger is handling the events, we don't want
3912         // to pop the process IOHandler here, we want to do it when we receive
3913         // the stopped event so we can carefully control when the process
3914         // IOHandler is popped because when we stop we want to display some
3915         // text stating how and why we stopped, then maybe some
3916         // process/thread/frame info, and then we want the "(lldb) " prompt to
3917         // show up. If we pop the process IOHandler here, then we will cause
3918         // the command interpreter to become the top IOHandler after the
3919         // process pops off and it will update its prompt right away... See the
3920         // Debugger.cpp file where it calls the function as
3921         // "process_sp->PopProcessIOHandler()" to see where I am talking about.
3922         // Otherwise we end up getting overlapping "(lldb) " prompts and
3923         // garbled output.
3924         //
3925         // If we aren't handling the events in the debugger (which is indicated
3926         // by "m_target.GetDebugger().IsHandlingEvents()" returning false) or
3927         // we are hijacked, then we always pop the process IO handler manually.
3928         // Hijacking happens when the internal process state thread is running
3929         // thread plans, or when commands want to run in synchronous mode and
3930         // they call "process->WaitForProcessToStop()". An example of something
3931         // that will hijack the events is a simple expression:
3932         //
3933         //  (lldb) expr (int)puts("hello")
3934         //
3935         // This will cause the internal process state thread to resume and halt
3936         // the process (and _it_ will hijack the eBroadcastBitStateChanged
3937         // events) and we do need the IO handler to be pushed and popped
3938         // correctly.
3939 
3940         if (is_hijacked || !GetTarget().GetDebugger().IsHandlingEvents())
3941           PopProcessIOHandler();
3942       }
3943     }
3944 
3945     BroadcastEvent(event_sp);
3946   } else {
3947     if (log) {
3948       log->Printf(
3949           "Process::%s (pid = %" PRIu64
3950           ") suppressing state %s (old state %s): should_broadcast == false",
3951           __FUNCTION__, GetID(), StateAsCString(new_state),
3952           StateAsCString(GetState()));
3953     }
3954   }
3955 }
3956 
3957 Status Process::HaltPrivate() {
3958   EventSP event_sp;
3959   Status error(WillHalt());
3960   if (error.Fail())
3961     return error;
3962 
3963   // Ask the process subclass to actually halt our process
3964   bool caused_stop;
3965   error = DoHalt(caused_stop);
3966 
3967   DidHalt();
3968   return error;
3969 }
3970 
3971 thread_result_t Process::PrivateStateThread(void *arg) {
3972   std::unique_ptr<PrivateStateThreadArgs> args_up(
3973       static_cast<PrivateStateThreadArgs *>(arg));
3974   thread_result_t result =
3975       args_up->process->RunPrivateStateThread(args_up->is_secondary_thread);
3976   return result;
3977 }
3978 
3979 thread_result_t Process::RunPrivateStateThread(bool is_secondary_thread) {
3980   bool control_only = true;
3981 
3982   Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
3983   if (log)
3984     log->Printf("Process::%s (arg = %p, pid = %" PRIu64 ") thread starting...",
3985                 __FUNCTION__, static_cast<void *>(this), GetID());
3986 
3987   bool exit_now = false;
3988   bool interrupt_requested = false;
3989   while (!exit_now) {
3990     EventSP event_sp;
3991     GetEventsPrivate(event_sp, llvm::None, control_only);
3992     if (event_sp->BroadcasterIs(&m_private_state_control_broadcaster)) {
3993       if (log)
3994         log->Printf("Process::%s (arg = %p, pid = %" PRIu64
3995                     ") got a control event: %d",
3996                     __FUNCTION__, static_cast<void *>(this), GetID(),
3997                     event_sp->GetType());
3998 
3999       switch (event_sp->GetType()) {
4000       case eBroadcastInternalStateControlStop:
4001         exit_now = true;
4002         break; // doing any internal state management below
4003 
4004       case eBroadcastInternalStateControlPause:
4005         control_only = true;
4006         break;
4007 
4008       case eBroadcastInternalStateControlResume:
4009         control_only = false;
4010         break;
4011       }
4012 
4013       continue;
4014     } else if (event_sp->GetType() == eBroadcastBitInterrupt) {
4015       if (m_public_state.GetValue() == eStateAttaching) {
4016         if (log)
4017           log->Printf("Process::%s (arg = %p, pid = %" PRIu64
4018                       ") woke up with an interrupt while attaching - "
4019                       "forwarding interrupt.",
4020                       __FUNCTION__, static_cast<void *>(this), GetID());
4021         BroadcastEvent(eBroadcastBitInterrupt, nullptr);
4022       } else if (StateIsRunningState(m_last_broadcast_state)) {
4023         if (log)
4024           log->Printf("Process::%s (arg = %p, pid = %" PRIu64
4025                       ") woke up with an interrupt - Halting.",
4026                       __FUNCTION__, static_cast<void *>(this), GetID());
4027         Status error = HaltPrivate();
4028         if (error.Fail() && log)
4029           log->Printf("Process::%s (arg = %p, pid = %" PRIu64
4030                       ") failed to halt the process: %s",
4031                       __FUNCTION__, static_cast<void *>(this), GetID(),
4032                       error.AsCString());
4033         // Halt should generate a stopped event. Make a note of the fact that
4034         // we were doing the interrupt, so we can set the interrupted flag
4035         // after we receive the event. We deliberately set this to true even if
4036         // HaltPrivate failed, so that we can interrupt on the next natural
4037         // stop.
4038         interrupt_requested = true;
4039       } else {
4040         // This can happen when someone (e.g. Process::Halt) sees that we are
4041         // running and sends an interrupt request, but the process actually
4042         // stops before we receive it. In that case, we can just ignore the
4043         // request. We use m_last_broadcast_state, because the Stopped event
4044         // may not have been popped of the event queue yet, which is when the
4045         // public state gets updated.
4046         if (log)
4047           log->Printf(
4048               "Process::%s ignoring interrupt as we have already stopped.",
4049               __FUNCTION__);
4050       }
4051       continue;
4052     }
4053 
4054     const StateType internal_state =
4055         Process::ProcessEventData::GetStateFromEvent(event_sp.get());
4056 
4057     if (internal_state != eStateInvalid) {
4058       if (m_clear_thread_plans_on_stop &&
4059           StateIsStoppedState(internal_state, true)) {
4060         m_clear_thread_plans_on_stop = false;
4061         m_thread_list.DiscardThreadPlans();
4062       }
4063 
4064       if (interrupt_requested) {
4065         if (StateIsStoppedState(internal_state, true)) {
4066           // We requested the interrupt, so mark this as such in the stop event
4067           // so clients can tell an interrupted process from a natural stop
4068           ProcessEventData::SetInterruptedInEvent(event_sp.get(), true);
4069           interrupt_requested = false;
4070         } else if (log) {
4071           log->Printf("Process::%s interrupt_requested, but a non-stopped "
4072                       "state '%s' received.",
4073                       __FUNCTION__, StateAsCString(internal_state));
4074         }
4075       }
4076 
4077       HandlePrivateEvent(event_sp);
4078     }
4079 
4080     if (internal_state == eStateInvalid || internal_state == eStateExited ||
4081         internal_state == eStateDetached) {
4082       if (log)
4083         log->Printf("Process::%s (arg = %p, pid = %" PRIu64
4084                     ") about to exit with internal state %s...",
4085                     __FUNCTION__, static_cast<void *>(this), GetID(),
4086                     StateAsCString(internal_state));
4087 
4088       break;
4089     }
4090   }
4091 
4092   // Verify log is still enabled before attempting to write to it...
4093   if (log)
4094     log->Printf("Process::%s (arg = %p, pid = %" PRIu64 ") thread exiting...",
4095                 __FUNCTION__, static_cast<void *>(this), GetID());
4096 
4097   // If we are a secondary thread, then the primary thread we are working for
4098   // will have already acquired the public_run_lock, and isn't done with what
4099   // it was doing yet, so don't try to change it on the way out.
4100   if (!is_secondary_thread)
4101     m_public_run_lock.SetStopped();
4102   return NULL;
4103 }
4104 
4105 //------------------------------------------------------------------
4106 // Process Event Data
4107 //------------------------------------------------------------------
4108 
4109 Process::ProcessEventData::ProcessEventData()
4110     : EventData(), m_process_wp(), m_state(eStateInvalid), m_restarted(false),
4111       m_update_state(0), m_interrupted(false) {}
4112 
4113 Process::ProcessEventData::ProcessEventData(const ProcessSP &process_sp,
4114                                             StateType state)
4115     : EventData(), m_process_wp(), m_state(state), m_restarted(false),
4116       m_update_state(0), m_interrupted(false) {
4117   if (process_sp)
4118     m_process_wp = process_sp;
4119 }
4120 
4121 Process::ProcessEventData::~ProcessEventData() = default;
4122 
4123 const ConstString &Process::ProcessEventData::GetFlavorString() {
4124   static ConstString g_flavor("Process::ProcessEventData");
4125   return g_flavor;
4126 }
4127 
4128 const ConstString &Process::ProcessEventData::GetFlavor() const {
4129   return ProcessEventData::GetFlavorString();
4130 }
4131 
4132 void Process::ProcessEventData::DoOnRemoval(Event *event_ptr) {
4133   ProcessSP process_sp(m_process_wp.lock());
4134 
4135   if (!process_sp)
4136     return;
4137 
4138   // This function gets called twice for each event, once when the event gets
4139   // pulled off of the private process event queue, and then any number of
4140   // times, first when it gets pulled off of the public event queue, then other
4141   // times when we're pretending that this is where we stopped at the end of
4142   // expression evaluation.  m_update_state is used to distinguish these three
4143   // cases; it is 0 when we're just pulling it off for private handling, and >
4144   // 1 for expression evaluation, and we don't want to do the breakpoint
4145   // command handling then.
4146   if (m_update_state != 1)
4147     return;
4148 
4149   process_sp->SetPublicState(
4150       m_state, Process::ProcessEventData::GetRestartedFromEvent(event_ptr));
4151 
4152   if (m_state == eStateStopped && !m_restarted) {
4153     // Let process subclasses know we are about to do a public stop and do
4154     // anything they might need to in order to speed up register and memory
4155     // accesses.
4156     process_sp->WillPublicStop();
4157   }
4158 
4159   // If this is a halt event, even if the halt stopped with some reason other
4160   // than a plain interrupt (e.g. we had already stopped for a breakpoint when
4161   // the halt request came through) don't do the StopInfo actions, as they may
4162   // end up restarting the process.
4163   if (m_interrupted)
4164     return;
4165 
4166   // If we're stopped and haven't restarted, then do the StopInfo actions here:
4167   if (m_state == eStateStopped && !m_restarted) {
4168     ThreadList &curr_thread_list = process_sp->GetThreadList();
4169     uint32_t num_threads = curr_thread_list.GetSize();
4170     uint32_t idx;
4171 
4172     // The actions might change one of the thread's stop_info's opinions about
4173     // whether we should stop the process, so we need to query that as we go.
4174 
4175     // One other complication here, is that we try to catch any case where the
4176     // target has run (except for expressions) and immediately exit, but if we
4177     // get that wrong (which is possible) then the thread list might have
4178     // changed, and that would cause our iteration here to crash.  We could
4179     // make a copy of the thread list, but we'd really like to also know if it
4180     // has changed at all, so we make up a vector of the thread ID's and check
4181     // what we get back against this list & bag out if anything differs.
4182     std::vector<uint32_t> thread_index_array(num_threads);
4183     for (idx = 0; idx < num_threads; ++idx)
4184       thread_index_array[idx] =
4185           curr_thread_list.GetThreadAtIndex(idx)->GetIndexID();
4186 
4187     // Use this to track whether we should continue from here.  We will only
4188     // continue the target running if no thread says we should stop.  Of course
4189     // if some thread's PerformAction actually sets the target running, then it
4190     // doesn't matter what the other threads say...
4191 
4192     bool still_should_stop = false;
4193 
4194     // Sometimes - for instance if we have a bug in the stub we are talking to,
4195     // we stop but no thread has a valid stop reason.  In that case we should
4196     // just stop, because we have no way of telling what the right thing to do
4197     // is, and it's better to let the user decide than continue behind their
4198     // backs.
4199 
4200     bool does_anybody_have_an_opinion = false;
4201 
4202     for (idx = 0; idx < num_threads; ++idx) {
4203       curr_thread_list = process_sp->GetThreadList();
4204       if (curr_thread_list.GetSize() != num_threads) {
4205         Log *log(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_STEP |
4206                                                         LIBLLDB_LOG_PROCESS));
4207         if (log)
4208           log->Printf(
4209               "Number of threads changed from %u to %u while processing event.",
4210               num_threads, curr_thread_list.GetSize());
4211         break;
4212       }
4213 
4214       lldb::ThreadSP thread_sp = curr_thread_list.GetThreadAtIndex(idx);
4215 
4216       if (thread_sp->GetIndexID() != thread_index_array[idx]) {
4217         Log *log(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_STEP |
4218                                                         LIBLLDB_LOG_PROCESS));
4219         if (log)
4220           log->Printf("The thread at position %u changed from %u to %u while "
4221                       "processing event.",
4222                       idx, thread_index_array[idx], thread_sp->GetIndexID());
4223         break;
4224       }
4225 
4226       StopInfoSP stop_info_sp = thread_sp->GetStopInfo();
4227       if (stop_info_sp && stop_info_sp->IsValid()) {
4228         does_anybody_have_an_opinion = true;
4229         bool this_thread_wants_to_stop;
4230         if (stop_info_sp->GetOverrideShouldStop()) {
4231           this_thread_wants_to_stop =
4232               stop_info_sp->GetOverriddenShouldStopValue();
4233         } else {
4234           stop_info_sp->PerformAction(event_ptr);
4235           // The stop action might restart the target.  If it does, then we
4236           // want to mark that in the event so that whoever is receiving it
4237           // will know to wait for the running event and reflect that state
4238           // appropriately. We also need to stop processing actions, since they
4239           // aren't expecting the target to be running.
4240 
4241           // FIXME: we might have run.
4242           if (stop_info_sp->HasTargetRunSinceMe()) {
4243             SetRestarted(true);
4244             break;
4245           }
4246 
4247           this_thread_wants_to_stop = stop_info_sp->ShouldStop(event_ptr);
4248         }
4249 
4250         if (!still_should_stop)
4251           still_should_stop = this_thread_wants_to_stop;
4252       }
4253     }
4254 
4255     if (!GetRestarted()) {
4256       if (!still_should_stop && does_anybody_have_an_opinion) {
4257         // We've been asked to continue, so do that here.
4258         SetRestarted(true);
4259         // Use the public resume method here, since this is just extending a
4260         // public resume.
4261         process_sp->PrivateResume();
4262       } else {
4263         // If we didn't restart, run the Stop Hooks here: They might also
4264         // restart the target, so watch for that.
4265         process_sp->GetTarget().RunStopHooks();
4266         if (process_sp->GetPrivateState() == eStateRunning)
4267           SetRestarted(true);
4268       }
4269     }
4270   }
4271 }
4272 
4273 void Process::ProcessEventData::Dump(Stream *s) const {
4274   ProcessSP process_sp(m_process_wp.lock());
4275 
4276   if (process_sp)
4277     s->Printf(" process = %p (pid = %" PRIu64 "), ",
4278               static_cast<void *>(process_sp.get()), process_sp->GetID());
4279   else
4280     s->PutCString(" process = NULL, ");
4281 
4282   s->Printf("state = %s", StateAsCString(GetState()));
4283 }
4284 
4285 const Process::ProcessEventData *
4286 Process::ProcessEventData::GetEventDataFromEvent(const Event *event_ptr) {
4287   if (event_ptr) {
4288     const EventData *event_data = event_ptr->GetData();
4289     if (event_data &&
4290         event_data->GetFlavor() == ProcessEventData::GetFlavorString())
4291       return static_cast<const ProcessEventData *>(event_ptr->GetData());
4292   }
4293   return nullptr;
4294 }
4295 
4296 ProcessSP
4297 Process::ProcessEventData::GetProcessFromEvent(const Event *event_ptr) {
4298   ProcessSP process_sp;
4299   const ProcessEventData *data = GetEventDataFromEvent(event_ptr);
4300   if (data)
4301     process_sp = data->GetProcessSP();
4302   return process_sp;
4303 }
4304 
4305 StateType Process::ProcessEventData::GetStateFromEvent(const Event *event_ptr) {
4306   const ProcessEventData *data = GetEventDataFromEvent(event_ptr);
4307   if (data == nullptr)
4308     return eStateInvalid;
4309   else
4310     return data->GetState();
4311 }
4312 
4313 bool Process::ProcessEventData::GetRestartedFromEvent(const Event *event_ptr) {
4314   const ProcessEventData *data = GetEventDataFromEvent(event_ptr);
4315   if (data == nullptr)
4316     return false;
4317   else
4318     return data->GetRestarted();
4319 }
4320 
4321 void Process::ProcessEventData::SetRestartedInEvent(Event *event_ptr,
4322                                                     bool new_value) {
4323   ProcessEventData *data =
4324       const_cast<ProcessEventData *>(GetEventDataFromEvent(event_ptr));
4325   if (data != nullptr)
4326     data->SetRestarted(new_value);
4327 }
4328 
4329 size_t
4330 Process::ProcessEventData::GetNumRestartedReasons(const Event *event_ptr) {
4331   ProcessEventData *data =
4332       const_cast<ProcessEventData *>(GetEventDataFromEvent(event_ptr));
4333   if (data != nullptr)
4334     return data->GetNumRestartedReasons();
4335   else
4336     return 0;
4337 }
4338 
4339 const char *
4340 Process::ProcessEventData::GetRestartedReasonAtIndex(const Event *event_ptr,
4341                                                      size_t idx) {
4342   ProcessEventData *data =
4343       const_cast<ProcessEventData *>(GetEventDataFromEvent(event_ptr));
4344   if (data != nullptr)
4345     return data->GetRestartedReasonAtIndex(idx);
4346   else
4347     return nullptr;
4348 }
4349 
4350 void Process::ProcessEventData::AddRestartedReason(Event *event_ptr,
4351                                                    const char *reason) {
4352   ProcessEventData *data =
4353       const_cast<ProcessEventData *>(GetEventDataFromEvent(event_ptr));
4354   if (data != nullptr)
4355     data->AddRestartedReason(reason);
4356 }
4357 
4358 bool Process::ProcessEventData::GetInterruptedFromEvent(
4359     const Event *event_ptr) {
4360   const ProcessEventData *data = GetEventDataFromEvent(event_ptr);
4361   if (data == nullptr)
4362     return false;
4363   else
4364     return data->GetInterrupted();
4365 }
4366 
4367 void Process::ProcessEventData::SetInterruptedInEvent(Event *event_ptr,
4368                                                       bool new_value) {
4369   ProcessEventData *data =
4370       const_cast<ProcessEventData *>(GetEventDataFromEvent(event_ptr));
4371   if (data != nullptr)
4372     data->SetInterrupted(new_value);
4373 }
4374 
4375 bool Process::ProcessEventData::SetUpdateStateOnRemoval(Event *event_ptr) {
4376   ProcessEventData *data =
4377       const_cast<ProcessEventData *>(GetEventDataFromEvent(event_ptr));
4378   if (data) {
4379     data->SetUpdateStateOnRemoval();
4380     return true;
4381   }
4382   return false;
4383 }
4384 
4385 lldb::TargetSP Process::CalculateTarget() { return m_target_wp.lock(); }
4386 
4387 void Process::CalculateExecutionContext(ExecutionContext &exe_ctx) {
4388   exe_ctx.SetTargetPtr(&GetTarget());
4389   exe_ctx.SetProcessPtr(this);
4390   exe_ctx.SetThreadPtr(nullptr);
4391   exe_ctx.SetFramePtr(nullptr);
4392 }
4393 
4394 // uint32_t
4395 // Process::ListProcessesMatchingName (const char *name, StringList &matches,
4396 // std::vector<lldb::pid_t> &pids)
4397 //{
4398 //    return 0;
4399 //}
4400 //
4401 // ArchSpec
4402 // Process::GetArchSpecForExistingProcess (lldb::pid_t pid)
4403 //{
4404 //    return Host::GetArchSpecForExistingProcess (pid);
4405 //}
4406 //
4407 // ArchSpec
4408 // Process::GetArchSpecForExistingProcess (const char *process_name)
4409 //{
4410 //    return Host::GetArchSpecForExistingProcess (process_name);
4411 //}
4412 
4413 void Process::AppendSTDOUT(const char *s, size_t len) {
4414   std::lock_guard<std::recursive_mutex> guard(m_stdio_communication_mutex);
4415   m_stdout_data.append(s, len);
4416   BroadcastEventIfUnique(eBroadcastBitSTDOUT,
4417                          new ProcessEventData(shared_from_this(), GetState()));
4418 }
4419 
4420 void Process::AppendSTDERR(const char *s, size_t len) {
4421   std::lock_guard<std::recursive_mutex> guard(m_stdio_communication_mutex);
4422   m_stderr_data.append(s, len);
4423   BroadcastEventIfUnique(eBroadcastBitSTDERR,
4424                          new ProcessEventData(shared_from_this(), GetState()));
4425 }
4426 
4427 void Process::BroadcastAsyncProfileData(const std::string &one_profile_data) {
4428   std::lock_guard<std::recursive_mutex> guard(m_profile_data_comm_mutex);
4429   m_profile_data.push_back(one_profile_data);
4430   BroadcastEventIfUnique(eBroadcastBitProfileData,
4431                          new ProcessEventData(shared_from_this(), GetState()));
4432 }
4433 
4434 void Process::BroadcastStructuredData(const StructuredData::ObjectSP &object_sp,
4435                                       const StructuredDataPluginSP &plugin_sp) {
4436   BroadcastEvent(
4437       eBroadcastBitStructuredData,
4438       new EventDataStructuredData(shared_from_this(), object_sp, plugin_sp));
4439 }
4440 
4441 StructuredDataPluginSP
4442 Process::GetStructuredDataPlugin(const ConstString &type_name) const {
4443   auto find_it = m_structured_data_plugin_map.find(type_name);
4444   if (find_it != m_structured_data_plugin_map.end())
4445     return find_it->second;
4446   else
4447     return StructuredDataPluginSP();
4448 }
4449 
4450 size_t Process::GetAsyncProfileData(char *buf, size_t buf_size, Status &error) {
4451   std::lock_guard<std::recursive_mutex> guard(m_profile_data_comm_mutex);
4452   if (m_profile_data.empty())
4453     return 0;
4454 
4455   std::string &one_profile_data = m_profile_data.front();
4456   size_t bytes_available = one_profile_data.size();
4457   if (bytes_available > 0) {
4458     Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
4459     if (log)
4460       log->Printf("Process::GetProfileData (buf = %p, size = %" PRIu64 ")",
4461                   static_cast<void *>(buf), static_cast<uint64_t>(buf_size));
4462     if (bytes_available > buf_size) {
4463       memcpy(buf, one_profile_data.c_str(), buf_size);
4464       one_profile_data.erase(0, buf_size);
4465       bytes_available = buf_size;
4466     } else {
4467       memcpy(buf, one_profile_data.c_str(), bytes_available);
4468       m_profile_data.erase(m_profile_data.begin());
4469     }
4470   }
4471   return bytes_available;
4472 }
4473 
4474 //------------------------------------------------------------------
4475 // Process STDIO
4476 //------------------------------------------------------------------
4477 
4478 size_t Process::GetSTDOUT(char *buf, size_t buf_size, Status &error) {
4479   std::lock_guard<std::recursive_mutex> guard(m_stdio_communication_mutex);
4480   size_t bytes_available = m_stdout_data.size();
4481   if (bytes_available > 0) {
4482     Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
4483     if (log)
4484       log->Printf("Process::GetSTDOUT (buf = %p, size = %" PRIu64 ")",
4485                   static_cast<void *>(buf), static_cast<uint64_t>(buf_size));
4486     if (bytes_available > buf_size) {
4487       memcpy(buf, m_stdout_data.c_str(), buf_size);
4488       m_stdout_data.erase(0, buf_size);
4489       bytes_available = buf_size;
4490     } else {
4491       memcpy(buf, m_stdout_data.c_str(), bytes_available);
4492       m_stdout_data.clear();
4493     }
4494   }
4495   return bytes_available;
4496 }
4497 
4498 size_t Process::GetSTDERR(char *buf, size_t buf_size, Status &error) {
4499   std::lock_guard<std::recursive_mutex> gaurd(m_stdio_communication_mutex);
4500   size_t bytes_available = m_stderr_data.size();
4501   if (bytes_available > 0) {
4502     Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
4503     if (log)
4504       log->Printf("Process::GetSTDERR (buf = %p, size = %" PRIu64 ")",
4505                   static_cast<void *>(buf), static_cast<uint64_t>(buf_size));
4506     if (bytes_available > buf_size) {
4507       memcpy(buf, m_stderr_data.c_str(), buf_size);
4508       m_stderr_data.erase(0, buf_size);
4509       bytes_available = buf_size;
4510     } else {
4511       memcpy(buf, m_stderr_data.c_str(), bytes_available);
4512       m_stderr_data.clear();
4513     }
4514   }
4515   return bytes_available;
4516 }
4517 
4518 void Process::STDIOReadThreadBytesReceived(void *baton, const void *src,
4519                                            size_t src_len) {
4520   Process *process = (Process *)baton;
4521   process->AppendSTDOUT(static_cast<const char *>(src), src_len);
4522 }
4523 
4524 class IOHandlerProcessSTDIO : public IOHandler {
4525 public:
4526   IOHandlerProcessSTDIO(Process *process, int write_fd)
4527       : IOHandler(process->GetTarget().GetDebugger(),
4528                   IOHandler::Type::ProcessIO),
4529         m_process(process), m_write_file(write_fd, false) {
4530     m_pipe.CreateNew(false);
4531     m_read_file.SetDescriptor(GetInputFD(), false);
4532   }
4533 
4534   ~IOHandlerProcessSTDIO() override = default;
4535 
4536   // Each IOHandler gets to run until it is done. It should read data from the
4537   // "in" and place output into "out" and "err and return when done.
4538   void Run() override {
4539     if (!m_read_file.IsValid() || !m_write_file.IsValid() ||
4540         !m_pipe.CanRead() || !m_pipe.CanWrite()) {
4541       SetIsDone(true);
4542       return;
4543     }
4544 
4545     SetIsDone(false);
4546     const int read_fd = m_read_file.GetDescriptor();
4547     TerminalState terminal_state;
4548     terminal_state.Save(read_fd, false);
4549     Terminal terminal(read_fd);
4550     terminal.SetCanonical(false);
4551     terminal.SetEcho(false);
4552 // FD_ZERO, FD_SET are not supported on windows
4553 #ifndef _WIN32
4554     const int pipe_read_fd = m_pipe.GetReadFileDescriptor();
4555     m_is_running = true;
4556     while (!GetIsDone()) {
4557       SelectHelper select_helper;
4558       select_helper.FDSetRead(read_fd);
4559       select_helper.FDSetRead(pipe_read_fd);
4560       Status error = select_helper.Select();
4561 
4562       if (error.Fail()) {
4563         SetIsDone(true);
4564       } else {
4565         char ch = 0;
4566         size_t n;
4567         if (select_helper.FDIsSetRead(read_fd)) {
4568           n = 1;
4569           if (m_read_file.Read(&ch, n).Success() && n == 1) {
4570             if (m_write_file.Write(&ch, n).Fail() || n != 1)
4571               SetIsDone(true);
4572           } else
4573             SetIsDone(true);
4574         }
4575         if (select_helper.FDIsSetRead(pipe_read_fd)) {
4576           size_t bytes_read;
4577           // Consume the interrupt byte
4578           Status error = m_pipe.Read(&ch, 1, bytes_read);
4579           if (error.Success()) {
4580             switch (ch) {
4581             case 'q':
4582               SetIsDone(true);
4583               break;
4584             case 'i':
4585               if (StateIsRunningState(m_process->GetState()))
4586                 m_process->SendAsyncInterrupt();
4587               break;
4588             }
4589           }
4590         }
4591       }
4592     }
4593     m_is_running = false;
4594 #endif
4595     terminal_state.Restore();
4596   }
4597 
4598   void Cancel() override {
4599     SetIsDone(true);
4600     // Only write to our pipe to cancel if we are in
4601     // IOHandlerProcessSTDIO::Run(). We can end up with a python command that
4602     // is being run from the command interpreter:
4603     //
4604     // (lldb) step_process_thousands_of_times
4605     //
4606     // In this case the command interpreter will be in the middle of handling
4607     // the command and if the process pushes and pops the IOHandler thousands
4608     // of times, we can end up writing to m_pipe without ever consuming the
4609     // bytes from the pipe in IOHandlerProcessSTDIO::Run() and end up
4610     // deadlocking when the pipe gets fed up and blocks until data is consumed.
4611     if (m_is_running) {
4612       char ch = 'q'; // Send 'q' for quit
4613       size_t bytes_written = 0;
4614       m_pipe.Write(&ch, 1, bytes_written);
4615     }
4616   }
4617 
4618   bool Interrupt() override {
4619     // Do only things that are safe to do in an interrupt context (like in a
4620     // SIGINT handler), like write 1 byte to a file descriptor. This will
4621     // interrupt the IOHandlerProcessSTDIO::Run() and we can look at the byte
4622     // that was written to the pipe and then call
4623     // m_process->SendAsyncInterrupt() from a much safer location in code.
4624     if (m_active) {
4625       char ch = 'i'; // Send 'i' for interrupt
4626       size_t bytes_written = 0;
4627       Status result = m_pipe.Write(&ch, 1, bytes_written);
4628       return result.Success();
4629     } else {
4630       // This IOHandler might be pushed on the stack, but not being run
4631       // currently so do the right thing if we aren't actively watching for
4632       // STDIN by sending the interrupt to the process. Otherwise the write to
4633       // the pipe above would do nothing. This can happen when the command
4634       // interpreter is running and gets a "expression ...". It will be on the
4635       // IOHandler thread and sending the input is complete to the delegate
4636       // which will cause the expression to run, which will push the process IO
4637       // handler, but not run it.
4638 
4639       if (StateIsRunningState(m_process->GetState())) {
4640         m_process->SendAsyncInterrupt();
4641         return true;
4642       }
4643     }
4644     return false;
4645   }
4646 
4647   void GotEOF() override {}
4648 
4649 protected:
4650   Process *m_process;
4651   File m_read_file;  // Read from this file (usually actual STDIN for LLDB
4652   File m_write_file; // Write to this file (usually the master pty for getting
4653                      // io to debuggee)
4654   Pipe m_pipe;
4655   std::atomic<bool> m_is_running{false};
4656 };
4657 
4658 void Process::SetSTDIOFileDescriptor(int fd) {
4659   // First set up the Read Thread for reading/handling process I/O
4660 
4661   std::unique_ptr<ConnectionFileDescriptor> conn_ap(
4662       new ConnectionFileDescriptor(fd, true));
4663 
4664   if (conn_ap) {
4665     m_stdio_communication.SetConnection(conn_ap.release());
4666     if (m_stdio_communication.IsConnected()) {
4667       m_stdio_communication.SetReadThreadBytesReceivedCallback(
4668           STDIOReadThreadBytesReceived, this);
4669       m_stdio_communication.StartReadThread();
4670 
4671       // Now read thread is set up, set up input reader.
4672 
4673       if (!m_process_input_reader)
4674         m_process_input_reader.reset(new IOHandlerProcessSTDIO(this, fd));
4675     }
4676   }
4677 }
4678 
4679 bool Process::ProcessIOHandlerIsActive() {
4680   IOHandlerSP io_handler_sp(m_process_input_reader);
4681   if (io_handler_sp)
4682     return GetTarget().GetDebugger().IsTopIOHandler(io_handler_sp);
4683   return false;
4684 }
4685 bool Process::PushProcessIOHandler() {
4686   IOHandlerSP io_handler_sp(m_process_input_reader);
4687   if (io_handler_sp) {
4688     Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
4689     if (log)
4690       log->Printf("Process::%s pushing IO handler", __FUNCTION__);
4691 
4692     io_handler_sp->SetIsDone(false);
4693     // If we evaluate an utility function, then we don't cancel the current
4694     // IOHandler. Our IOHandler is non-interactive and shouldn't disturb the
4695     // existing IOHandler that potentially provides the user interface (e.g.
4696     // the IOHandler for Editline).
4697     bool cancel_top_handler = !m_mod_id.IsRunningUtilityFunction();
4698     GetTarget().GetDebugger().PushIOHandler(io_handler_sp, cancel_top_handler);
4699     return true;
4700   }
4701   return false;
4702 }
4703 
4704 bool Process::PopProcessIOHandler() {
4705   IOHandlerSP io_handler_sp(m_process_input_reader);
4706   if (io_handler_sp)
4707     return GetTarget().GetDebugger().PopIOHandler(io_handler_sp);
4708   return false;
4709 }
4710 
4711 // The process needs to know about installed plug-ins
4712 void Process::SettingsInitialize() { Thread::SettingsInitialize(); }
4713 
4714 void Process::SettingsTerminate() { Thread::SettingsTerminate(); }
4715 
4716 namespace {
4717 // RestorePlanState is used to record the "is private", "is master" and "okay
4718 // to discard" fields of the plan we are running, and reset it on Clean or on
4719 // destruction. It will only reset the state once, so you can call Clean and
4720 // then monkey with the state and it won't get reset on you again.
4721 
4722 class RestorePlanState {
4723 public:
4724   RestorePlanState(lldb::ThreadPlanSP thread_plan_sp)
4725       : m_thread_plan_sp(thread_plan_sp), m_already_reset(false) {
4726     if (m_thread_plan_sp) {
4727       m_private = m_thread_plan_sp->GetPrivate();
4728       m_is_master = m_thread_plan_sp->IsMasterPlan();
4729       m_okay_to_discard = m_thread_plan_sp->OkayToDiscard();
4730     }
4731   }
4732 
4733   ~RestorePlanState() { Clean(); }
4734 
4735   void Clean() {
4736     if (!m_already_reset && m_thread_plan_sp) {
4737       m_already_reset = true;
4738       m_thread_plan_sp->SetPrivate(m_private);
4739       m_thread_plan_sp->SetIsMasterPlan(m_is_master);
4740       m_thread_plan_sp->SetOkayToDiscard(m_okay_to_discard);
4741     }
4742   }
4743 
4744 private:
4745   lldb::ThreadPlanSP m_thread_plan_sp;
4746   bool m_already_reset;
4747   bool m_private;
4748   bool m_is_master;
4749   bool m_okay_to_discard;
4750 };
4751 } // anonymous namespace
4752 
4753 static microseconds
4754 GetOneThreadExpressionTimeout(const EvaluateExpressionOptions &options) {
4755   const milliseconds default_one_thread_timeout(250);
4756 
4757   // If the overall wait is forever, then we don't need to worry about it.
4758   if (!options.GetTimeout()) {
4759     return options.GetOneThreadTimeout() ? *options.GetOneThreadTimeout()
4760                                          : default_one_thread_timeout;
4761   }
4762 
4763   // If the one thread timeout is set, use it.
4764   if (options.GetOneThreadTimeout())
4765     return *options.GetOneThreadTimeout();
4766 
4767   // Otherwise use half the total timeout, bounded by the
4768   // default_one_thread_timeout.
4769   return std::min<microseconds>(default_one_thread_timeout,
4770                                 *options.GetTimeout() / 2);
4771 }
4772 
4773 static Timeout<std::micro>
4774 GetExpressionTimeout(const EvaluateExpressionOptions &options,
4775                      bool before_first_timeout) {
4776   // If we are going to run all threads the whole time, or if we are only going
4777   // to run one thread, we can just return the overall timeout.
4778   if (!options.GetStopOthers() || !options.GetTryAllThreads())
4779     return options.GetTimeout();
4780 
4781   if (before_first_timeout)
4782     return GetOneThreadExpressionTimeout(options);
4783 
4784   if (!options.GetTimeout())
4785     return llvm::None;
4786   else
4787     return *options.GetTimeout() - GetOneThreadExpressionTimeout(options);
4788 }
4789 
4790 static llvm::Optional<ExpressionResults>
4791 HandleStoppedEvent(Thread &thread, const ThreadPlanSP &thread_plan_sp,
4792                    RestorePlanState &restorer, const EventSP &event_sp,
4793                    EventSP &event_to_broadcast_sp,
4794                    const EvaluateExpressionOptions &options, bool handle_interrupts) {
4795   Log *log = GetLogIfAnyCategoriesSet(LIBLLDB_LOG_STEP | LIBLLDB_LOG_PROCESS);
4796 
4797   ThreadPlanSP plan = thread.GetCompletedPlan();
4798   if (plan == thread_plan_sp && plan->PlanSucceeded()) {
4799     LLDB_LOG(log, "execution completed successfully");
4800 
4801     // Restore the plan state so it will get reported as intended when we are
4802     // done.
4803     restorer.Clean();
4804     return eExpressionCompleted;
4805   }
4806 
4807   StopInfoSP stop_info_sp = thread.GetStopInfo();
4808   if (stop_info_sp && stop_info_sp->GetStopReason() == eStopReasonBreakpoint &&
4809       stop_info_sp->ShouldNotify(event_sp.get())) {
4810     LLDB_LOG(log, "stopped for breakpoint: {0}.", stop_info_sp->GetDescription());
4811     if (!options.DoesIgnoreBreakpoints()) {
4812       // Restore the plan state and then force Private to false.  We are going
4813       // to stop because of this plan so we need it to become a public plan or
4814       // it won't report correctly when we continue to its termination later
4815       // on.
4816       restorer.Clean();
4817       thread_plan_sp->SetPrivate(false);
4818       event_to_broadcast_sp = event_sp;
4819     }
4820     return eExpressionHitBreakpoint;
4821   }
4822 
4823   if (!handle_interrupts &&
4824       Process::ProcessEventData::GetInterruptedFromEvent(event_sp.get()))
4825     return llvm::None;
4826 
4827   LLDB_LOG(log, "thread plan did not successfully complete");
4828   if (!options.DoesUnwindOnError())
4829     event_to_broadcast_sp = event_sp;
4830   return eExpressionInterrupted;
4831 }
4832 
4833 ExpressionResults
4834 Process::RunThreadPlan(ExecutionContext &exe_ctx,
4835                        lldb::ThreadPlanSP &thread_plan_sp,
4836                        const EvaluateExpressionOptions &options,
4837                        DiagnosticManager &diagnostic_manager) {
4838   ExpressionResults return_value = eExpressionSetupError;
4839 
4840   std::lock_guard<std::mutex> run_thread_plan_locker(m_run_thread_plan_lock);
4841 
4842   if (!thread_plan_sp) {
4843     diagnostic_manager.PutString(
4844         eDiagnosticSeverityError,
4845         "RunThreadPlan called with empty thread plan.");
4846     return eExpressionSetupError;
4847   }
4848 
4849   if (!thread_plan_sp->ValidatePlan(nullptr)) {
4850     diagnostic_manager.PutString(
4851         eDiagnosticSeverityError,
4852         "RunThreadPlan called with an invalid thread plan.");
4853     return eExpressionSetupError;
4854   }
4855 
4856   if (exe_ctx.GetProcessPtr() != this) {
4857     diagnostic_manager.PutString(eDiagnosticSeverityError,
4858                                  "RunThreadPlan called on wrong process.");
4859     return eExpressionSetupError;
4860   }
4861 
4862   Thread *thread = exe_ctx.GetThreadPtr();
4863   if (thread == nullptr) {
4864     diagnostic_manager.PutString(eDiagnosticSeverityError,
4865                                  "RunThreadPlan called with invalid thread.");
4866     return eExpressionSetupError;
4867   }
4868 
4869   // We need to change some of the thread plan attributes for the thread plan
4870   // runner.  This will restore them when we are done:
4871 
4872   RestorePlanState thread_plan_restorer(thread_plan_sp);
4873 
4874   // We rely on the thread plan we are running returning "PlanCompleted" if
4875   // when it successfully completes. For that to be true the plan can't be
4876   // private - since private plans suppress themselves in the GetCompletedPlan
4877   // call.
4878 
4879   thread_plan_sp->SetPrivate(false);
4880 
4881   // The plans run with RunThreadPlan also need to be terminal master plans or
4882   // when they are done we will end up asking the plan above us whether we
4883   // should stop, which may give the wrong answer.
4884 
4885   thread_plan_sp->SetIsMasterPlan(true);
4886   thread_plan_sp->SetOkayToDiscard(false);
4887 
4888   // If we are running some utility expression for LLDB, we now have to mark
4889   // this in the ProcesModID of this process. This RAII takes care of marking
4890   // and reverting the mark it once we are done running the expression.
4891   UtilityFunctionScope util_scope(options.IsForUtilityExpr() ? this : nullptr);
4892 
4893   if (m_private_state.GetValue() != eStateStopped) {
4894     diagnostic_manager.PutString(
4895         eDiagnosticSeverityError,
4896         "RunThreadPlan called while the private state was not stopped.");
4897     return eExpressionSetupError;
4898   }
4899 
4900   // Save the thread & frame from the exe_ctx for restoration after we run
4901   const uint32_t thread_idx_id = thread->GetIndexID();
4902   StackFrameSP selected_frame_sp = thread->GetSelectedFrame();
4903   if (!selected_frame_sp) {
4904     thread->SetSelectedFrame(nullptr);
4905     selected_frame_sp = thread->GetSelectedFrame();
4906     if (!selected_frame_sp) {
4907       diagnostic_manager.Printf(
4908           eDiagnosticSeverityError,
4909           "RunThreadPlan called without a selected frame on thread %d",
4910           thread_idx_id);
4911       return eExpressionSetupError;
4912     }
4913   }
4914 
4915   // Make sure the timeout values make sense. The one thread timeout needs to
4916   // be smaller than the overall timeout.
4917   if (options.GetOneThreadTimeout() && options.GetTimeout() &&
4918       *options.GetTimeout() < *options.GetOneThreadTimeout()) {
4919     diagnostic_manager.PutString(eDiagnosticSeverityError,
4920                                  "RunThreadPlan called with one thread "
4921                                  "timeout greater than total timeout");
4922     return eExpressionSetupError;
4923   }
4924 
4925   StackID ctx_frame_id = selected_frame_sp->GetStackID();
4926 
4927   // N.B. Running the target may unset the currently selected thread and frame.
4928   // We don't want to do that either, so we should arrange to reset them as
4929   // well.
4930 
4931   lldb::ThreadSP selected_thread_sp = GetThreadList().GetSelectedThread();
4932 
4933   uint32_t selected_tid;
4934   StackID selected_stack_id;
4935   if (selected_thread_sp) {
4936     selected_tid = selected_thread_sp->GetIndexID();
4937     selected_stack_id = selected_thread_sp->GetSelectedFrame()->GetStackID();
4938   } else {
4939     selected_tid = LLDB_INVALID_THREAD_ID;
4940   }
4941 
4942   HostThread backup_private_state_thread;
4943   lldb::StateType old_state = eStateInvalid;
4944   lldb::ThreadPlanSP stopper_base_plan_sp;
4945 
4946   Log *log(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_STEP |
4947                                                   LIBLLDB_LOG_PROCESS));
4948   if (m_private_state_thread.EqualsThread(Host::GetCurrentThread())) {
4949     // Yikes, we are running on the private state thread!  So we can't wait for
4950     // public events on this thread, since we are the thread that is generating
4951     // public events. The simplest thing to do is to spin up a temporary thread
4952     // to handle private state thread events while we are fielding public
4953     // events here.
4954     if (log)
4955       log->Printf("Running thread plan on private state thread, spinning up "
4956                   "another state thread to handle the events.");
4957 
4958     backup_private_state_thread = m_private_state_thread;
4959 
4960     // One other bit of business: we want to run just this thread plan and
4961     // anything it pushes, and then stop, returning control here. But in the
4962     // normal course of things, the plan above us on the stack would be given a
4963     // shot at the stop event before deciding to stop, and we don't want that.
4964     // So we insert a "stopper" base plan on the stack before the plan we want
4965     // to run.  Since base plans always stop and return control to the user,
4966     // that will do just what we want.
4967     stopper_base_plan_sp.reset(new ThreadPlanBase(*thread));
4968     thread->QueueThreadPlan(stopper_base_plan_sp, false);
4969     // Have to make sure our public state is stopped, since otherwise the
4970     // reporting logic below doesn't work correctly.
4971     old_state = m_public_state.GetValue();
4972     m_public_state.SetValueNoLock(eStateStopped);
4973 
4974     // Now spin up the private state thread:
4975     StartPrivateStateThread(true);
4976   }
4977 
4978   thread->QueueThreadPlan(
4979       thread_plan_sp, false); // This used to pass "true" does that make sense?
4980 
4981   if (options.GetDebug()) {
4982     // In this case, we aren't actually going to run, we just want to stop
4983     // right away. Flush this thread so we will refetch the stacks and show the
4984     // correct backtrace.
4985     // FIXME: To make this prettier we should invent some stop reason for this,
4986     // but that
4987     // is only cosmetic, and this functionality is only of use to lldb
4988     // developers who can live with not pretty...
4989     thread->Flush();
4990     return eExpressionStoppedForDebug;
4991   }
4992 
4993   ListenerSP listener_sp(
4994       Listener::MakeListener("lldb.process.listener.run-thread-plan"));
4995 
4996   lldb::EventSP event_to_broadcast_sp;
4997 
4998   {
4999     // This process event hijacker Hijacks the Public events and its destructor
5000     // makes sure that the process events get restored on exit to the function.
5001     //
5002     // If the event needs to propagate beyond the hijacker (e.g., the process
5003     // exits during execution), then the event is put into
5004     // event_to_broadcast_sp for rebroadcasting.
5005 
5006     ProcessEventHijacker run_thread_plan_hijacker(*this, listener_sp);
5007 
5008     if (log) {
5009       StreamString s;
5010       thread_plan_sp->GetDescription(&s, lldb::eDescriptionLevelVerbose);
5011       log->Printf("Process::RunThreadPlan(): Resuming thread %u - 0x%4.4" PRIx64
5012                   " to run thread plan \"%s\".",
5013                   thread->GetIndexID(), thread->GetID(), s.GetData());
5014     }
5015 
5016     bool got_event;
5017     lldb::EventSP event_sp;
5018     lldb::StateType stop_state = lldb::eStateInvalid;
5019 
5020     bool before_first_timeout = true; // This is set to false the first time
5021                                       // that we have to halt the target.
5022     bool do_resume = true;
5023     bool handle_running_event = true;
5024 
5025     // This is just for accounting:
5026     uint32_t num_resumes = 0;
5027 
5028     // If we are going to run all threads the whole time, or if we are only
5029     // going to run one thread, then we don't need the first timeout.  So we
5030     // pretend we are after the first timeout already.
5031     if (!options.GetStopOthers() || !options.GetTryAllThreads())
5032       before_first_timeout = false;
5033 
5034     if (log)
5035       log->Printf("Stop others: %u, try all: %u, before_first: %u.\n",
5036                   options.GetStopOthers(), options.GetTryAllThreads(),
5037                   before_first_timeout);
5038 
5039     // This isn't going to work if there are unfetched events on the queue. Are
5040     // there cases where we might want to run the remaining events here, and
5041     // then try to call the function?  That's probably being too tricky for our
5042     // own good.
5043 
5044     Event *other_events = listener_sp->PeekAtNextEvent();
5045     if (other_events != nullptr) {
5046       diagnostic_manager.PutString(
5047           eDiagnosticSeverityError,
5048           "RunThreadPlan called with pending events on the queue.");
5049       return eExpressionSetupError;
5050     }
5051 
5052     // We also need to make sure that the next event is delivered.  We might be
5053     // calling a function as part of a thread plan, in which case the last
5054     // delivered event could be the running event, and we don't want event
5055     // coalescing to cause us to lose OUR running event...
5056     ForceNextEventDelivery();
5057 
5058 // This while loop must exit out the bottom, there's cleanup that we need to do
5059 // when we are done. So don't call return anywhere within it.
5060 
5061 #ifdef LLDB_RUN_THREAD_HALT_WITH_EVENT
5062     // It's pretty much impossible to write test cases for things like: One
5063     // thread timeout expires, I go to halt, but the process already stopped on
5064     // the function call stop breakpoint.  Turning on this define will make us
5065     // not fetch the first event till after the halt.  So if you run a quick
5066     // function, it will have completed, and the completion event will be
5067     // waiting, when you interrupt for halt. The expression evaluation should
5068     // still succeed.
5069     bool miss_first_event = true;
5070 #endif
5071     while (true) {
5072       // We usually want to resume the process if we get to the top of the
5073       // loop. The only exception is if we get two running events with no
5074       // intervening stop, which can happen, we will just wait for then next
5075       // stop event.
5076       if (log)
5077         log->Printf("Top of while loop: do_resume: %i handle_running_event: %i "
5078                     "before_first_timeout: %i.",
5079                     do_resume, handle_running_event, before_first_timeout);
5080 
5081       if (do_resume || handle_running_event) {
5082         // Do the initial resume and wait for the running event before going
5083         // further.
5084 
5085         if (do_resume) {
5086           num_resumes++;
5087           Status resume_error = PrivateResume();
5088           if (!resume_error.Success()) {
5089             diagnostic_manager.Printf(
5090                 eDiagnosticSeverityError,
5091                 "couldn't resume inferior the %d time: \"%s\".", num_resumes,
5092                 resume_error.AsCString());
5093             return_value = eExpressionSetupError;
5094             break;
5095           }
5096         }
5097 
5098         got_event =
5099             listener_sp->GetEvent(event_sp, std::chrono::milliseconds(500));
5100         if (!got_event) {
5101           if (log)
5102             log->Printf("Process::RunThreadPlan(): didn't get any event after "
5103                         "resume %" PRIu32 ", exiting.",
5104                         num_resumes);
5105 
5106           diagnostic_manager.Printf(eDiagnosticSeverityError,
5107                                     "didn't get any event after resume %" PRIu32
5108                                     ", exiting.",
5109                                     num_resumes);
5110           return_value = eExpressionSetupError;
5111           break;
5112         }
5113 
5114         stop_state =
5115             Process::ProcessEventData::GetStateFromEvent(event_sp.get());
5116 
5117         if (stop_state != eStateRunning) {
5118           bool restarted = false;
5119 
5120           if (stop_state == eStateStopped) {
5121             restarted = Process::ProcessEventData::GetRestartedFromEvent(
5122                 event_sp.get());
5123             if (log)
5124               log->Printf(
5125                   "Process::RunThreadPlan(): didn't get running event after "
5126                   "resume %d, got %s instead (restarted: %i, do_resume: %i, "
5127                   "handle_running_event: %i).",
5128                   num_resumes, StateAsCString(stop_state), restarted, do_resume,
5129                   handle_running_event);
5130           }
5131 
5132           if (restarted) {
5133             // This is probably an overabundance of caution, I don't think I
5134             // should ever get a stopped & restarted event here.  But if I do,
5135             // the best thing is to Halt and then get out of here.
5136             const bool clear_thread_plans = false;
5137             const bool use_run_lock = false;
5138             Halt(clear_thread_plans, use_run_lock);
5139           }
5140 
5141           diagnostic_manager.Printf(
5142               eDiagnosticSeverityError,
5143               "didn't get running event after initial resume, got %s instead.",
5144               StateAsCString(stop_state));
5145           return_value = eExpressionSetupError;
5146           break;
5147         }
5148 
5149         if (log)
5150           log->PutCString("Process::RunThreadPlan(): resuming succeeded.");
5151         // We need to call the function synchronously, so spin waiting for it
5152         // to return. If we get interrupted while executing, we're going to
5153         // lose our context, and won't be able to gather the result at this
5154         // point. We set the timeout AFTER the resume, since the resume takes
5155         // some time and we don't want to charge that to the timeout.
5156       } else {
5157         if (log)
5158           log->PutCString("Process::RunThreadPlan(): waiting for next event.");
5159       }
5160 
5161       do_resume = true;
5162       handle_running_event = true;
5163 
5164       // Now wait for the process to stop again:
5165       event_sp.reset();
5166 
5167       Timeout<std::micro> timeout =
5168           GetExpressionTimeout(options, before_first_timeout);
5169       if (log) {
5170         if (timeout) {
5171           auto now = system_clock::now();
5172           log->Printf("Process::RunThreadPlan(): about to wait - now is %s - "
5173                       "endpoint is %s",
5174                       llvm::to_string(now).c_str(),
5175                       llvm::to_string(now + *timeout).c_str());
5176         } else {
5177           log->Printf("Process::RunThreadPlan(): about to wait forever.");
5178         }
5179       }
5180 
5181 #ifdef LLDB_RUN_THREAD_HALT_WITH_EVENT
5182       // See comment above...
5183       if (miss_first_event) {
5184         usleep(1000);
5185         miss_first_event = false;
5186         got_event = false;
5187       } else
5188 #endif
5189         got_event = listener_sp->GetEvent(event_sp, timeout);
5190 
5191       if (got_event) {
5192         if (event_sp) {
5193           bool keep_going = false;
5194           if (event_sp->GetType() == eBroadcastBitInterrupt) {
5195             const bool clear_thread_plans = false;
5196             const bool use_run_lock = false;
5197             Halt(clear_thread_plans, use_run_lock);
5198             return_value = eExpressionInterrupted;
5199             diagnostic_manager.PutString(eDiagnosticSeverityRemark,
5200                                          "execution halted by user interrupt.");
5201             if (log)
5202               log->Printf("Process::RunThreadPlan(): Got  interrupted by "
5203                           "eBroadcastBitInterrupted, exiting.");
5204             break;
5205           } else {
5206             stop_state =
5207                 Process::ProcessEventData::GetStateFromEvent(event_sp.get());
5208             if (log)
5209               log->Printf(
5210                   "Process::RunThreadPlan(): in while loop, got event: %s.",
5211                   StateAsCString(stop_state));
5212 
5213             switch (stop_state) {
5214             case lldb::eStateStopped: {
5215               // We stopped, figure out what we are going to do now.
5216               ThreadSP thread_sp =
5217                   GetThreadList().FindThreadByIndexID(thread_idx_id);
5218               if (!thread_sp) {
5219                 // Ooh, our thread has vanished.  Unlikely that this was
5220                 // successful execution...
5221                 if (log)
5222                   log->Printf("Process::RunThreadPlan(): execution completed "
5223                               "but our thread (index-id=%u) has vanished.",
5224                               thread_idx_id);
5225                 return_value = eExpressionInterrupted;
5226               } else if (Process::ProcessEventData::GetRestartedFromEvent(
5227                              event_sp.get())) {
5228                 // If we were restarted, we just need to go back up to fetch
5229                 // another event.
5230                 if (log) {
5231                   log->Printf("Process::RunThreadPlan(): Got a stop and "
5232                               "restart, so we'll continue waiting.");
5233                 }
5234                 keep_going = true;
5235                 do_resume = false;
5236                 handle_running_event = true;
5237               } else {
5238                 const bool handle_interrupts = true;
5239                 return_value = *HandleStoppedEvent(
5240                     *thread, thread_plan_sp, thread_plan_restorer, event_sp,
5241                     event_to_broadcast_sp, options, handle_interrupts);
5242               }
5243             } break;
5244 
5245             case lldb::eStateRunning:
5246               // This shouldn't really happen, but sometimes we do get two
5247               // running events without an intervening stop, and in that case
5248               // we should just go back to waiting for the stop.
5249               do_resume = false;
5250               keep_going = true;
5251               handle_running_event = false;
5252               break;
5253 
5254             default:
5255               if (log)
5256                 log->Printf("Process::RunThreadPlan(): execution stopped with "
5257                             "unexpected state: %s.",
5258                             StateAsCString(stop_state));
5259 
5260               if (stop_state == eStateExited)
5261                 event_to_broadcast_sp = event_sp;
5262 
5263               diagnostic_manager.PutString(
5264                   eDiagnosticSeverityError,
5265                   "execution stopped with unexpected state.");
5266               return_value = eExpressionInterrupted;
5267               break;
5268             }
5269           }
5270 
5271           if (keep_going)
5272             continue;
5273           else
5274             break;
5275         } else {
5276           if (log)
5277             log->PutCString("Process::RunThreadPlan(): got_event was true, but "
5278                             "the event pointer was null.  How odd...");
5279           return_value = eExpressionInterrupted;
5280           break;
5281         }
5282       } else {
5283         // If we didn't get an event that means we've timed out... We will
5284         // interrupt the process here.  Depending on what we were asked to do
5285         // we will either exit, or try with all threads running for the same
5286         // timeout.
5287 
5288         if (log) {
5289           if (options.GetTryAllThreads()) {
5290             if (before_first_timeout) {
5291               LLDB_LOG(log,
5292                        "Running function with one thread timeout timed out.");
5293             } else
5294               LLDB_LOG(log, "Restarting function with all threads enabled and "
5295                             "timeout: {0} timed out, abandoning execution.",
5296                        timeout);
5297           } else
5298             LLDB_LOG(log, "Running function with timeout: {0} timed out, "
5299                           "abandoning execution.",
5300                      timeout);
5301         }
5302 
5303         // It is possible that between the time we issued the Halt, and we get
5304         // around to calling Halt the target could have stopped.  That's fine,
5305         // Halt will figure that out and send the appropriate Stopped event.
5306         // BUT it is also possible that we stopped & restarted (e.g. hit a
5307         // signal with "stop" set to false.)  In
5308         // that case, we'll get the stopped & restarted event, and we should go
5309         // back to waiting for the Halt's stopped event.  That's what this
5310         // while loop does.
5311 
5312         bool back_to_top = true;
5313         uint32_t try_halt_again = 0;
5314         bool do_halt = true;
5315         const uint32_t num_retries = 5;
5316         while (try_halt_again < num_retries) {
5317           Status halt_error;
5318           if (do_halt) {
5319             if (log)
5320               log->Printf("Process::RunThreadPlan(): Running Halt.");
5321             const bool clear_thread_plans = false;
5322             const bool use_run_lock = false;
5323             Halt(clear_thread_plans, use_run_lock);
5324           }
5325           if (halt_error.Success()) {
5326             if (log)
5327               log->PutCString("Process::RunThreadPlan(): Halt succeeded.");
5328 
5329             got_event =
5330                 listener_sp->GetEvent(event_sp, std::chrono::milliseconds(500));
5331 
5332             if (got_event) {
5333               stop_state =
5334                   Process::ProcessEventData::GetStateFromEvent(event_sp.get());
5335               if (log) {
5336                 log->Printf("Process::RunThreadPlan(): Stopped with event: %s",
5337                             StateAsCString(stop_state));
5338                 if (stop_state == lldb::eStateStopped &&
5339                     Process::ProcessEventData::GetInterruptedFromEvent(
5340                         event_sp.get()))
5341                   log->PutCString("    Event was the Halt interruption event.");
5342               }
5343 
5344               if (stop_state == lldb::eStateStopped) {
5345                 if (Process::ProcessEventData::GetRestartedFromEvent(
5346                         event_sp.get())) {
5347                   if (log)
5348                     log->PutCString("Process::RunThreadPlan(): Went to halt "
5349                                     "but got a restarted event, there must be "
5350                                     "an un-restarted stopped event so try "
5351                                     "again...  "
5352                                     "Exiting wait loop.");
5353                   try_halt_again++;
5354                   do_halt = false;
5355                   continue;
5356                 }
5357 
5358                 // Between the time we initiated the Halt and the time we
5359                 // delivered it, the process could have already finished its
5360                 // job.  Check that here:
5361                 const bool handle_interrupts = false;
5362                 if (auto result = HandleStoppedEvent(
5363                         *thread, thread_plan_sp, thread_plan_restorer, event_sp,
5364                         event_to_broadcast_sp, options, handle_interrupts)) {
5365                   return_value = *result;
5366                   back_to_top = false;
5367                   break;
5368                 }
5369 
5370                 if (!options.GetTryAllThreads()) {
5371                   if (log)
5372                     log->PutCString("Process::RunThreadPlan(): try_all_threads "
5373                                     "was false, we stopped so now we're "
5374                                     "quitting.");
5375                   return_value = eExpressionInterrupted;
5376                   back_to_top = false;
5377                   break;
5378                 }
5379 
5380                 if (before_first_timeout) {
5381                   // Set all the other threads to run, and return to the top of
5382                   // the loop, which will continue;
5383                   before_first_timeout = false;
5384                   thread_plan_sp->SetStopOthers(false);
5385                   if (log)
5386                     log->PutCString(
5387                         "Process::RunThreadPlan(): about to resume.");
5388 
5389                   back_to_top = true;
5390                   break;
5391                 } else {
5392                   // Running all threads failed, so return Interrupted.
5393                   if (log)
5394                     log->PutCString("Process::RunThreadPlan(): running all "
5395                                     "threads timed out.");
5396                   return_value = eExpressionInterrupted;
5397                   back_to_top = false;
5398                   break;
5399                 }
5400               }
5401             } else {
5402               if (log)
5403                 log->PutCString("Process::RunThreadPlan(): halt said it "
5404                                 "succeeded, but I got no event.  "
5405                                 "I'm getting out of here passing Interrupted.");
5406               return_value = eExpressionInterrupted;
5407               back_to_top = false;
5408               break;
5409             }
5410           } else {
5411             try_halt_again++;
5412             continue;
5413           }
5414         }
5415 
5416         if (!back_to_top || try_halt_again > num_retries)
5417           break;
5418         else
5419           continue;
5420       }
5421     } // END WAIT LOOP
5422 
5423     // If we had to start up a temporary private state thread to run this
5424     // thread plan, shut it down now.
5425     if (backup_private_state_thread.IsJoinable()) {
5426       StopPrivateStateThread();
5427       Status error;
5428       m_private_state_thread = backup_private_state_thread;
5429       if (stopper_base_plan_sp) {
5430         thread->DiscardThreadPlansUpToPlan(stopper_base_plan_sp);
5431       }
5432       if (old_state != eStateInvalid)
5433         m_public_state.SetValueNoLock(old_state);
5434     }
5435 
5436     if (return_value != eExpressionCompleted && log) {
5437       // Print a backtrace into the log so we can figure out where we are:
5438       StreamString s;
5439       s.PutCString("Thread state after unsuccessful completion: \n");
5440       thread->GetStackFrameStatus(s, 0, UINT32_MAX, true, UINT32_MAX);
5441       log->PutString(s.GetString());
5442     }
5443     // Restore the thread state if we are going to discard the plan execution.
5444     // There are three cases where this could happen: 1) The execution
5445     // successfully completed 2) We hit a breakpoint, and ignore_breakpoints
5446     // was true 3) We got some other error, and discard_on_error was true
5447     bool should_unwind = (return_value == eExpressionInterrupted &&
5448                           options.DoesUnwindOnError()) ||
5449                          (return_value == eExpressionHitBreakpoint &&
5450                           options.DoesIgnoreBreakpoints());
5451 
5452     if (return_value == eExpressionCompleted || should_unwind) {
5453       thread_plan_sp->RestoreThreadState();
5454     }
5455 
5456     // Now do some processing on the results of the run:
5457     if (return_value == eExpressionInterrupted ||
5458         return_value == eExpressionHitBreakpoint) {
5459       if (log) {
5460         StreamString s;
5461         if (event_sp)
5462           event_sp->Dump(&s);
5463         else {
5464           log->PutCString("Process::RunThreadPlan(): Stop event that "
5465                           "interrupted us is NULL.");
5466         }
5467 
5468         StreamString ts;
5469 
5470         const char *event_explanation = nullptr;
5471 
5472         do {
5473           if (!event_sp) {
5474             event_explanation = "<no event>";
5475             break;
5476           } else if (event_sp->GetType() == eBroadcastBitInterrupt) {
5477             event_explanation = "<user interrupt>";
5478             break;
5479           } else {
5480             const Process::ProcessEventData *event_data =
5481                 Process::ProcessEventData::GetEventDataFromEvent(
5482                     event_sp.get());
5483 
5484             if (!event_data) {
5485               event_explanation = "<no event data>";
5486               break;
5487             }
5488 
5489             Process *process = event_data->GetProcessSP().get();
5490 
5491             if (!process) {
5492               event_explanation = "<no process>";
5493               break;
5494             }
5495 
5496             ThreadList &thread_list = process->GetThreadList();
5497 
5498             uint32_t num_threads = thread_list.GetSize();
5499             uint32_t thread_index;
5500 
5501             ts.Printf("<%u threads> ", num_threads);
5502 
5503             for (thread_index = 0; thread_index < num_threads; ++thread_index) {
5504               Thread *thread = thread_list.GetThreadAtIndex(thread_index).get();
5505 
5506               if (!thread) {
5507                 ts.Printf("<?> ");
5508                 continue;
5509               }
5510 
5511               ts.Printf("<0x%4.4" PRIx64 " ", thread->GetID());
5512               RegisterContext *register_context =
5513                   thread->GetRegisterContext().get();
5514 
5515               if (register_context)
5516                 ts.Printf("[ip 0x%" PRIx64 "] ", register_context->GetPC());
5517               else
5518                 ts.Printf("[ip unknown] ");
5519 
5520               // Show the private stop info here, the public stop info will be
5521               // from the last natural stop.
5522               lldb::StopInfoSP stop_info_sp = thread->GetPrivateStopInfo();
5523               if (stop_info_sp) {
5524                 const char *stop_desc = stop_info_sp->GetDescription();
5525                 if (stop_desc)
5526                   ts.PutCString(stop_desc);
5527               }
5528               ts.Printf(">");
5529             }
5530 
5531             event_explanation = ts.GetData();
5532           }
5533         } while (0);
5534 
5535         if (event_explanation)
5536           log->Printf("Process::RunThreadPlan(): execution interrupted: %s %s",
5537                       s.GetData(), event_explanation);
5538         else
5539           log->Printf("Process::RunThreadPlan(): execution interrupted: %s",
5540                       s.GetData());
5541       }
5542 
5543       if (should_unwind) {
5544         if (log)
5545           log->Printf("Process::RunThreadPlan: ExecutionInterrupted - "
5546                       "discarding thread plans up to %p.",
5547                       static_cast<void *>(thread_plan_sp.get()));
5548         thread->DiscardThreadPlansUpToPlan(thread_plan_sp);
5549       } else {
5550         if (log)
5551           log->Printf("Process::RunThreadPlan: ExecutionInterrupted - for "
5552                       "plan: %p not discarding.",
5553                       static_cast<void *>(thread_plan_sp.get()));
5554       }
5555     } else if (return_value == eExpressionSetupError) {
5556       if (log)
5557         log->PutCString("Process::RunThreadPlan(): execution set up error.");
5558 
5559       if (options.DoesUnwindOnError()) {
5560         thread->DiscardThreadPlansUpToPlan(thread_plan_sp);
5561       }
5562     } else {
5563       if (thread->IsThreadPlanDone(thread_plan_sp.get())) {
5564         if (log)
5565           log->PutCString("Process::RunThreadPlan(): thread plan is done");
5566         return_value = eExpressionCompleted;
5567       } else if (thread->WasThreadPlanDiscarded(thread_plan_sp.get())) {
5568         if (log)
5569           log->PutCString(
5570               "Process::RunThreadPlan(): thread plan was discarded");
5571         return_value = eExpressionDiscarded;
5572       } else {
5573         if (log)
5574           log->PutCString(
5575               "Process::RunThreadPlan(): thread plan stopped in mid course");
5576         if (options.DoesUnwindOnError() && thread_plan_sp) {
5577           if (log)
5578             log->PutCString("Process::RunThreadPlan(): discarding thread plan "
5579                             "'cause unwind_on_error is set.");
5580           thread->DiscardThreadPlansUpToPlan(thread_plan_sp);
5581         }
5582       }
5583     }
5584 
5585     // Thread we ran the function in may have gone away because we ran the
5586     // target Check that it's still there, and if it is put it back in the
5587     // context. Also restore the frame in the context if it is still present.
5588     thread = GetThreadList().FindThreadByIndexID(thread_idx_id, true).get();
5589     if (thread) {
5590       exe_ctx.SetFrameSP(thread->GetFrameWithStackID(ctx_frame_id));
5591     }
5592 
5593     // Also restore the current process'es selected frame & thread, since this
5594     // function calling may be done behind the user's back.
5595 
5596     if (selected_tid != LLDB_INVALID_THREAD_ID) {
5597       if (GetThreadList().SetSelectedThreadByIndexID(selected_tid) &&
5598           selected_stack_id.IsValid()) {
5599         // We were able to restore the selected thread, now restore the frame:
5600         std::lock_guard<std::recursive_mutex> guard(GetThreadList().GetMutex());
5601         StackFrameSP old_frame_sp =
5602             GetThreadList().GetSelectedThread()->GetFrameWithStackID(
5603                 selected_stack_id);
5604         if (old_frame_sp)
5605           GetThreadList().GetSelectedThread()->SetSelectedFrame(
5606               old_frame_sp.get());
5607       }
5608     }
5609   }
5610 
5611   // If the process exited during the run of the thread plan, notify everyone.
5612 
5613   if (event_to_broadcast_sp) {
5614     if (log)
5615       log->PutCString("Process::RunThreadPlan(): rebroadcasting event.");
5616     BroadcastEvent(event_to_broadcast_sp);
5617   }
5618 
5619   return return_value;
5620 }
5621 
5622 const char *Process::ExecutionResultAsCString(ExpressionResults result) {
5623   const char *result_name;
5624 
5625   switch (result) {
5626   case eExpressionCompleted:
5627     result_name = "eExpressionCompleted";
5628     break;
5629   case eExpressionDiscarded:
5630     result_name = "eExpressionDiscarded";
5631     break;
5632   case eExpressionInterrupted:
5633     result_name = "eExpressionInterrupted";
5634     break;
5635   case eExpressionHitBreakpoint:
5636     result_name = "eExpressionHitBreakpoint";
5637     break;
5638   case eExpressionSetupError:
5639     result_name = "eExpressionSetupError";
5640     break;
5641   case eExpressionParseError:
5642     result_name = "eExpressionParseError";
5643     break;
5644   case eExpressionResultUnavailable:
5645     result_name = "eExpressionResultUnavailable";
5646     break;
5647   case eExpressionTimedOut:
5648     result_name = "eExpressionTimedOut";
5649     break;
5650   case eExpressionStoppedForDebug:
5651     result_name = "eExpressionStoppedForDebug";
5652     break;
5653   }
5654   return result_name;
5655 }
5656 
5657 void Process::GetStatus(Stream &strm) {
5658   const StateType state = GetState();
5659   if (StateIsStoppedState(state, false)) {
5660     if (state == eStateExited) {
5661       int exit_status = GetExitStatus();
5662       const char *exit_description = GetExitDescription();
5663       strm.Printf("Process %" PRIu64 " exited with status = %i (0x%8.8x) %s\n",
5664                   GetID(), exit_status, exit_status,
5665                   exit_description ? exit_description : "");
5666     } else {
5667       if (state == eStateConnected)
5668         strm.Printf("Connected to remote target.\n");
5669       else
5670         strm.Printf("Process %" PRIu64 " %s\n", GetID(), StateAsCString(state));
5671     }
5672   } else {
5673     strm.Printf("Process %" PRIu64 " is running.\n", GetID());
5674   }
5675 }
5676 
5677 size_t Process::GetThreadStatus(Stream &strm,
5678                                 bool only_threads_with_stop_reason,
5679                                 uint32_t start_frame, uint32_t num_frames,
5680                                 uint32_t num_frames_with_source,
5681                                 bool stop_format) {
5682   size_t num_thread_infos_dumped = 0;
5683 
5684   // You can't hold the thread list lock while calling Thread::GetStatus.  That
5685   // very well might run code (e.g. if we need it to get return values or
5686   // arguments.)  For that to work the process has to be able to acquire it.
5687   // So instead copy the thread ID's, and look them up one by one:
5688 
5689   uint32_t num_threads;
5690   std::vector<lldb::tid_t> thread_id_array;
5691   // Scope for thread list locker;
5692   {
5693     std::lock_guard<std::recursive_mutex> guard(GetThreadList().GetMutex());
5694     ThreadList &curr_thread_list = GetThreadList();
5695     num_threads = curr_thread_list.GetSize();
5696     uint32_t idx;
5697     thread_id_array.resize(num_threads);
5698     for (idx = 0; idx < num_threads; ++idx)
5699       thread_id_array[idx] = curr_thread_list.GetThreadAtIndex(idx)->GetID();
5700   }
5701 
5702   for (uint32_t i = 0; i < num_threads; i++) {
5703     ThreadSP thread_sp(GetThreadList().FindThreadByID(thread_id_array[i]));
5704     if (thread_sp) {
5705       if (only_threads_with_stop_reason) {
5706         StopInfoSP stop_info_sp = thread_sp->GetStopInfo();
5707         if (!stop_info_sp || !stop_info_sp->IsValid())
5708           continue;
5709       }
5710       thread_sp->GetStatus(strm, start_frame, num_frames,
5711                            num_frames_with_source,
5712                            stop_format);
5713       ++num_thread_infos_dumped;
5714     } else {
5715       Log *log(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_PROCESS));
5716       if (log)
5717         log->Printf("Process::GetThreadStatus - thread 0x" PRIu64
5718                     " vanished while running Thread::GetStatus.");
5719     }
5720   }
5721   return num_thread_infos_dumped;
5722 }
5723 
5724 void Process::AddInvalidMemoryRegion(const LoadRange &region) {
5725   m_memory_cache.AddInvalidRange(region.GetRangeBase(), region.GetByteSize());
5726 }
5727 
5728 bool Process::RemoveInvalidMemoryRange(const LoadRange &region) {
5729   return m_memory_cache.RemoveInvalidRange(region.GetRangeBase(),
5730                                            region.GetByteSize());
5731 }
5732 
5733 void Process::AddPreResumeAction(PreResumeActionCallback callback,
5734                                  void *baton) {
5735   m_pre_resume_actions.push_back(PreResumeCallbackAndBaton(callback, baton));
5736 }
5737 
5738 bool Process::RunPreResumeActions() {
5739   bool result = true;
5740   while (!m_pre_resume_actions.empty()) {
5741     struct PreResumeCallbackAndBaton action = m_pre_resume_actions.back();
5742     m_pre_resume_actions.pop_back();
5743     bool this_result = action.callback(action.baton);
5744     if (result)
5745       result = this_result;
5746   }
5747   return result;
5748 }
5749 
5750 void Process::ClearPreResumeActions() { m_pre_resume_actions.clear(); }
5751 
5752 void Process::ClearPreResumeAction(PreResumeActionCallback callback, void *baton)
5753 {
5754     PreResumeCallbackAndBaton element(callback, baton);
5755     auto found_iter = std::find(m_pre_resume_actions.begin(), m_pre_resume_actions.end(), element);
5756     if (found_iter != m_pre_resume_actions.end())
5757     {
5758         m_pre_resume_actions.erase(found_iter);
5759     }
5760 }
5761 
5762 ProcessRunLock &Process::GetRunLock() {
5763   if (m_private_state_thread.EqualsThread(Host::GetCurrentThread()))
5764     return m_private_run_lock;
5765   else
5766     return m_public_run_lock;
5767 }
5768 
5769 void Process::Flush() {
5770   m_thread_list.Flush();
5771   m_extended_thread_list.Flush();
5772   m_extended_thread_stop_id = 0;
5773   m_queue_list.Clear();
5774   m_queue_list_stop_id = 0;
5775 }
5776 
5777 void Process::DidExec() {
5778   Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_PROCESS));
5779   if (log)
5780     log->Printf("Process::%s()", __FUNCTION__);
5781 
5782   Target &target = GetTarget();
5783   target.CleanupProcess();
5784   target.ClearModules(false);
5785   m_dynamic_checkers_ap.reset();
5786   m_abi_sp.reset();
5787   m_system_runtime_ap.reset();
5788   m_os_ap.reset();
5789   m_dyld_ap.reset();
5790   m_jit_loaders_ap.reset();
5791   m_image_tokens.clear();
5792   m_allocated_memory_cache.Clear();
5793   m_language_runtimes.clear();
5794   m_instrumentation_runtimes.clear();
5795   m_thread_list.DiscardThreadPlans();
5796   m_memory_cache.Clear(true);
5797   DoDidExec();
5798   CompleteAttach();
5799   // Flush the process (threads and all stack frames) after running
5800   // CompleteAttach() in case the dynamic loader loaded things in new
5801   // locations.
5802   Flush();
5803 
5804   // After we figure out what was loaded/unloaded in CompleteAttach, we need to
5805   // let the target know so it can do any cleanup it needs to.
5806   target.DidExec();
5807 }
5808 
5809 addr_t Process::ResolveIndirectFunction(const Address *address, Status &error) {
5810   if (address == nullptr) {
5811     error.SetErrorString("Invalid address argument");
5812     return LLDB_INVALID_ADDRESS;
5813   }
5814 
5815   addr_t function_addr = LLDB_INVALID_ADDRESS;
5816 
5817   addr_t addr = address->GetLoadAddress(&GetTarget());
5818   std::map<addr_t, addr_t>::const_iterator iter =
5819       m_resolved_indirect_addresses.find(addr);
5820   if (iter != m_resolved_indirect_addresses.end()) {
5821     function_addr = (*iter).second;
5822   } else {
5823     if (!InferiorCall(this, address, function_addr)) {
5824       Symbol *symbol = address->CalculateSymbolContextSymbol();
5825       error.SetErrorStringWithFormat(
5826           "Unable to call resolver for indirect function %s",
5827           symbol ? symbol->GetName().AsCString() : "<UNKNOWN>");
5828       function_addr = LLDB_INVALID_ADDRESS;
5829     } else {
5830       m_resolved_indirect_addresses.insert(
5831           std::pair<addr_t, addr_t>(addr, function_addr));
5832     }
5833   }
5834   return function_addr;
5835 }
5836 
5837 void Process::ModulesDidLoad(ModuleList &module_list) {
5838   SystemRuntime *sys_runtime = GetSystemRuntime();
5839   if (sys_runtime) {
5840     sys_runtime->ModulesDidLoad(module_list);
5841   }
5842 
5843   GetJITLoaders().ModulesDidLoad(module_list);
5844 
5845   // Give runtimes a chance to be created.
5846   InstrumentationRuntime::ModulesDidLoad(module_list, this,
5847                                          m_instrumentation_runtimes);
5848 
5849   // Tell runtimes about new modules.
5850   for (auto pos = m_instrumentation_runtimes.begin();
5851        pos != m_instrumentation_runtimes.end(); ++pos) {
5852     InstrumentationRuntimeSP runtime = pos->second;
5853     runtime->ModulesDidLoad(module_list);
5854   }
5855 
5856   // Let any language runtimes we have already created know about the modules
5857   // that loaded.
5858 
5859   // Iterate over a copy of this language runtime list in case the language
5860   // runtime ModulesDidLoad somehow causes the language runtime to be
5861   // unloaded.
5862   LanguageRuntimeCollection language_runtimes(m_language_runtimes);
5863   for (const auto &pair : language_runtimes) {
5864     // We must check language_runtime_sp to make sure it is not nullptr as we
5865     // might cache the fact that we didn't have a language runtime for a
5866     // language.
5867     LanguageRuntimeSP language_runtime_sp = pair.second;
5868     if (language_runtime_sp)
5869       language_runtime_sp->ModulesDidLoad(module_list);
5870   }
5871 
5872   // If we don't have an operating system plug-in, try to load one since
5873   // loading shared libraries might cause a new one to try and load
5874   if (!m_os_ap)
5875     LoadOperatingSystemPlugin(false);
5876 
5877   // Give structured-data plugins a chance to see the modified modules.
5878   for (auto pair : m_structured_data_plugin_map) {
5879     if (pair.second)
5880       pair.second->ModulesDidLoad(*this, module_list);
5881   }
5882 }
5883 
5884 void Process::PrintWarning(uint64_t warning_type, const void *repeat_key,
5885                            const char *fmt, ...) {
5886   bool print_warning = true;
5887 
5888   StreamSP stream_sp = GetTarget().GetDebugger().GetAsyncOutputStream();
5889   if (!stream_sp)
5890     return;
5891   if (warning_type == eWarningsOptimization && !GetWarningsOptimization()) {
5892     return;
5893   }
5894 
5895   if (repeat_key != nullptr) {
5896     WarningsCollection::iterator it = m_warnings_issued.find(warning_type);
5897     if (it == m_warnings_issued.end()) {
5898       m_warnings_issued[warning_type] = WarningsPointerSet();
5899       m_warnings_issued[warning_type].insert(repeat_key);
5900     } else {
5901       if (it->second.find(repeat_key) != it->second.end()) {
5902         print_warning = false;
5903       } else {
5904         it->second.insert(repeat_key);
5905       }
5906     }
5907   }
5908 
5909   if (print_warning) {
5910     va_list args;
5911     va_start(args, fmt);
5912     stream_sp->PrintfVarArg(fmt, args);
5913     va_end(args);
5914   }
5915 }
5916 
5917 void Process::PrintWarningOptimization(const SymbolContext &sc) {
5918   if (GetWarningsOptimization() && sc.module_sp &&
5919       !sc.module_sp->GetFileSpec().GetFilename().IsEmpty() && sc.function &&
5920       sc.function->GetIsOptimized()) {
5921     PrintWarning(Process::Warnings::eWarningsOptimization, sc.module_sp.get(),
5922                  "%s was compiled with optimization - stepping may behave "
5923                  "oddly; variables may not be available.\n",
5924                  sc.module_sp->GetFileSpec().GetFilename().GetCString());
5925   }
5926 }
5927 
5928 bool Process::GetProcessInfo(ProcessInstanceInfo &info) {
5929   info.Clear();
5930 
5931   PlatformSP platform_sp = GetTarget().GetPlatform();
5932   if (!platform_sp)
5933     return false;
5934 
5935   return platform_sp->GetProcessInfo(GetID(), info);
5936 }
5937 
5938 ThreadCollectionSP Process::GetHistoryThreads(lldb::addr_t addr) {
5939   ThreadCollectionSP threads;
5940 
5941   const MemoryHistorySP &memory_history =
5942       MemoryHistory::FindPlugin(shared_from_this());
5943 
5944   if (!memory_history) {
5945     return threads;
5946   }
5947 
5948   threads.reset(new ThreadCollection(memory_history->GetHistoryThreads(addr)));
5949 
5950   return threads;
5951 }
5952 
5953 InstrumentationRuntimeSP
5954 Process::GetInstrumentationRuntime(lldb::InstrumentationRuntimeType type) {
5955   InstrumentationRuntimeCollection::iterator pos;
5956   pos = m_instrumentation_runtimes.find(type);
5957   if (pos == m_instrumentation_runtimes.end()) {
5958     return InstrumentationRuntimeSP();
5959   } else
5960     return (*pos).second;
5961 }
5962 
5963 bool Process::GetModuleSpec(const FileSpec &module_file_spec,
5964                             const ArchSpec &arch, ModuleSpec &module_spec) {
5965   module_spec.Clear();
5966   return false;
5967 }
5968 
5969 size_t Process::AddImageToken(lldb::addr_t image_ptr) {
5970   m_image_tokens.push_back(image_ptr);
5971   return m_image_tokens.size() - 1;
5972 }
5973 
5974 lldb::addr_t Process::GetImagePtrFromToken(size_t token) const {
5975   if (token < m_image_tokens.size())
5976     return m_image_tokens[token];
5977   return LLDB_INVALID_IMAGE_TOKEN;
5978 }
5979 
5980 void Process::ResetImageToken(size_t token) {
5981   if (token < m_image_tokens.size())
5982     m_image_tokens[token] = LLDB_INVALID_IMAGE_TOKEN;
5983 }
5984 
5985 Address
5986 Process::AdvanceAddressToNextBranchInstruction(Address default_stop_addr,
5987                                                AddressRange range_bounds) {
5988   Target &target = GetTarget();
5989   DisassemblerSP disassembler_sp;
5990   InstructionList *insn_list = nullptr;
5991 
5992   Address retval = default_stop_addr;
5993 
5994   if (!target.GetUseFastStepping())
5995     return retval;
5996   if (!default_stop_addr.IsValid())
5997     return retval;
5998 
5999   ExecutionContext exe_ctx(this);
6000   const char *plugin_name = nullptr;
6001   const char *flavor = nullptr;
6002   const bool prefer_file_cache = true;
6003   disassembler_sp = Disassembler::DisassembleRange(
6004       target.GetArchitecture(), plugin_name, flavor, exe_ctx, range_bounds,
6005       prefer_file_cache);
6006   if (disassembler_sp)
6007     insn_list = &disassembler_sp->GetInstructionList();
6008 
6009   if (insn_list == nullptr) {
6010     return retval;
6011   }
6012 
6013   size_t insn_offset =
6014       insn_list->GetIndexOfInstructionAtAddress(default_stop_addr);
6015   if (insn_offset == UINT32_MAX) {
6016     return retval;
6017   }
6018 
6019   uint32_t branch_index =
6020       insn_list->GetIndexOfNextBranchInstruction(insn_offset, target);
6021   if (branch_index == UINT32_MAX) {
6022     return retval;
6023   }
6024 
6025   if (branch_index > insn_offset) {
6026     Address next_branch_insn_address =
6027         insn_list->GetInstructionAtIndex(branch_index)->GetAddress();
6028     if (next_branch_insn_address.IsValid() &&
6029         range_bounds.ContainsFileAddress(next_branch_insn_address)) {
6030       retval = next_branch_insn_address;
6031     }
6032   }
6033 
6034   return retval;
6035 }
6036 
6037 Status
6038 Process::GetMemoryRegions(std::vector<lldb::MemoryRegionInfoSP> &region_list) {
6039 
6040   Status error;
6041 
6042   lldb::addr_t range_end = 0;
6043 
6044   region_list.clear();
6045   do {
6046     lldb::MemoryRegionInfoSP region_info(new lldb_private::MemoryRegionInfo());
6047     error = GetMemoryRegionInfo(range_end, *region_info);
6048     // GetMemoryRegionInfo should only return an error if it is unimplemented.
6049     if (error.Fail()) {
6050       region_list.clear();
6051       break;
6052     }
6053 
6054     range_end = region_info->GetRange().GetRangeEnd();
6055     if (region_info->GetMapped() == MemoryRegionInfo::eYes) {
6056       region_list.push_back(region_info);
6057     }
6058   } while (range_end != LLDB_INVALID_ADDRESS);
6059 
6060   return error;
6061 }
6062 
6063 Status
6064 Process::ConfigureStructuredData(const ConstString &type_name,
6065                                  const StructuredData::ObjectSP &config_sp) {
6066   // If you get this, the Process-derived class needs to implement a method to
6067   // enable an already-reported asynchronous structured data feature. See
6068   // ProcessGDBRemote for an example implementation over gdb-remote.
6069   return Status("unimplemented");
6070 }
6071 
6072 void Process::MapSupportedStructuredDataPlugins(
6073     const StructuredData::Array &supported_type_names) {
6074   Log *log(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_PROCESS));
6075 
6076   // Bail out early if there are no type names to map.
6077   if (supported_type_names.GetSize() == 0) {
6078     if (log)
6079       log->Printf("Process::%s(): no structured data types supported",
6080                   __FUNCTION__);
6081     return;
6082   }
6083 
6084   // Convert StructuredData type names to ConstString instances.
6085   std::set<ConstString> const_type_names;
6086 
6087   if (log)
6088     log->Printf("Process::%s(): the process supports the following async "
6089                 "structured data types:",
6090                 __FUNCTION__);
6091 
6092   supported_type_names.ForEach(
6093       [&const_type_names, &log](StructuredData::Object *object) {
6094         if (!object) {
6095           // Invalid - shouldn't be null objects in the array.
6096           return false;
6097         }
6098 
6099         auto type_name = object->GetAsString();
6100         if (!type_name) {
6101           // Invalid format - all type names should be strings.
6102           return false;
6103         }
6104 
6105         const_type_names.insert(ConstString(type_name->GetValue()));
6106         LLDB_LOG(log, "- {0}", type_name->GetValue());
6107         return true;
6108       });
6109 
6110   // For each StructuredDataPlugin, if the plugin handles any of the types in
6111   // the supported_type_names, map that type name to that plugin. Stop when
6112   // we've consumed all the type names.
6113   // FIXME: should we return an error if there are type names nobody
6114   // supports?
6115   for (uint32_t plugin_index = 0; !const_type_names.empty(); plugin_index++) {
6116     auto create_instance =
6117            PluginManager::GetStructuredDataPluginCreateCallbackAtIndex(
6118                plugin_index);
6119     if (!create_instance)
6120       break;
6121 
6122     // Create the plugin.
6123     StructuredDataPluginSP plugin_sp = (*create_instance)(*this);
6124     if (!plugin_sp) {
6125       // This plugin doesn't think it can work with the process. Move on to the
6126       // next.
6127       continue;
6128     }
6129 
6130     // For any of the remaining type names, map any that this plugin supports.
6131     std::vector<ConstString> names_to_remove;
6132     for (auto &type_name : const_type_names) {
6133       if (plugin_sp->SupportsStructuredDataType(type_name)) {
6134         m_structured_data_plugin_map.insert(
6135             std::make_pair(type_name, plugin_sp));
6136         names_to_remove.push_back(type_name);
6137         if (log)
6138           log->Printf("Process::%s(): using plugin %s for type name "
6139                       "%s",
6140                       __FUNCTION__, plugin_sp->GetPluginName().GetCString(),
6141                       type_name.GetCString());
6142       }
6143     }
6144 
6145     // Remove the type names that were consumed by this plugin.
6146     for (auto &type_name : names_to_remove)
6147       const_type_names.erase(type_name);
6148   }
6149 }
6150 
6151 bool Process::RouteAsyncStructuredData(
6152     const StructuredData::ObjectSP object_sp) {
6153   // Nothing to do if there's no data.
6154   if (!object_sp)
6155     return false;
6156 
6157   // The contract is this must be a dictionary, so we can look up the routing
6158   // key via the top-level 'type' string value within the dictionary.
6159   StructuredData::Dictionary *dictionary = object_sp->GetAsDictionary();
6160   if (!dictionary)
6161     return false;
6162 
6163   // Grab the async structured type name (i.e. the feature/plugin name).
6164   ConstString type_name;
6165   if (!dictionary->GetValueForKeyAsString("type", type_name))
6166     return false;
6167 
6168   // Check if there's a plugin registered for this type name.
6169   auto find_it = m_structured_data_plugin_map.find(type_name);
6170   if (find_it == m_structured_data_plugin_map.end()) {
6171     // We don't have a mapping for this structured data type.
6172     return false;
6173   }
6174 
6175   // Route the structured data to the plugin.
6176   find_it->second->HandleArrivalOfStructuredData(*this, type_name, object_sp);
6177   return true;
6178 }
6179 
6180 Status Process::UpdateAutomaticSignalFiltering() {
6181   // Default implementation does nothign.
6182   // No automatic signal filtering to speak of.
6183   return Status();
6184 }
6185 
6186 UtilityFunction *Process::GetLoadImageUtilityFunction(
6187     Platform *platform,
6188     llvm::function_ref<std::unique_ptr<UtilityFunction>()> factory) {
6189   if (platform != GetTarget().GetPlatform().get())
6190     return nullptr;
6191   std::call_once(m_dlopen_utility_func_flag_once,
6192                  [&] { m_dlopen_utility_func_up = factory(); });
6193   return m_dlopen_utility_func_up.get();
6194 }
6195