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Issue 24024007: Simplify process exit-code handling on Posix. (Closed) Base URL: https://dart.googlecode.com/svn/branches/bleeding_edge/dart
Patch Set: Created 7 years, 3 months ago
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1 // Copyright (c) 2012, the Dart project authors. Please see the AUTHORS file 1 // Copyright (c) 2012, the Dart project authors. Please see the AUTHORS file
2 // for details. All rights reserved. Use of this source code is governed by a 2 // for details. All rights reserved. Use of this source code is governed by a
3 // BSD-style license that can be found in the LICENSE file. 3 // BSD-style license that can be found in the LICENSE file.
4 4
5 #include "platform/globals.h" 5 #include "platform/globals.h"
6 #if defined(TARGET_OS_ANDROID) 6 #if defined(TARGET_OS_ANDROID)
7 7
8 #include "bin/process.h" 8 #include "bin/process.h"
9 9
10 #include <errno.h> // NOLINT 10 #include <errno.h> // NOLINT
11 #include <fcntl.h> // NOLINT 11 #include <fcntl.h> // NOLINT
12 #include <poll.h> // NOLINT 12 #include <poll.h> // NOLINT
13 #include <signal.h> // NOLINT
14 #include <stdio.h> // NOLINT 13 #include <stdio.h> // NOLINT
15 #include <stdlib.h> // NOLINT 14 #include <stdlib.h> // NOLINT
16 #include <string.h> // NOLINT 15 #include <string.h> // NOLINT
17 #include <sys/wait.h> // NOLINT 16 #include <sys/wait.h> // NOLINT
18 #include <unistd.h> // NOLINT 17 #include <unistd.h> // NOLINT
19 18
20 #include "bin/fdutils.h" 19 #include "bin/fdutils.h"
21 #include "bin/log.h" 20 #include "bin/log.h"
22 #include "bin/thread.h" 21 #include "bin/thread.h"
23 22
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104 // Mutex protecting all accesses to the linked list of active 103 // Mutex protecting all accesses to the linked list of active
105 // processes. 104 // processes.
106 static dart::Mutex* mutex_; 105 static dart::Mutex* mutex_;
107 }; 106 };
108 107
109 108
110 ProcessInfo* ProcessInfoList::active_processes_ = NULL; 109 ProcessInfo* ProcessInfoList::active_processes_ = NULL;
111 dart::Mutex* ProcessInfoList::mutex_ = new dart::Mutex(); 110 dart::Mutex* ProcessInfoList::mutex_ = new dart::Mutex();
112 111
113 112
114 // The exit code handler sets up a separate thread which is signalled 113 // The exit code handler sets up a separate thread which waits for child
115 // on SIGCHLD. That separate thread can then get the exit code from 114 // processes to die. That separate thread can then get the exit code from
116 // processes that have exited and communicate it to Dart through the 115 // processes that have exited and communicate it to Dart through the
117 // event loop. 116 // event loop.
118 class ExitCodeHandler { 117 class ExitCodeHandler {
119 public: 118 public:
120 // Ensure that the ExitCodeHandler has been initialized. 119 // Ensure that the ExitCodeHandler has been initialized.
121 static bool EnsureInitialized() { 120 static bool EnsureInitialized() {
122 // Multiple isolates could be starting processes at the same 121 // Multiple isolates could be starting processes at the same
123 // time. Make sure that only one of them initializes the 122 // time. Make sure that only one of them initializes the
124 // ExitCodeHandler. 123 // ExitCodeHandler.
125 MutexLocker locker(mutex_); 124 MutexLocker locker(mutex_);
126 if (initialized_) { 125 if (initialized_) {
127 return true; 126 return true;
128 } 127 }
129 128
130 // Allocate a pipe that the signal handler can write a byte to and 129 // Start thread that handles process exits when waitpid returns.
131 // that the exit handler thread can poll. 130 int result = dart::Thread::Start(ExitCodeHandlerEntry, 0);
132 int result = TEMP_FAILURE_RETRY(pipe(sig_chld_fds_));
133 if (result < 0) {
134 return false;
135 }
136 FDUtils::SetCloseOnExec(sig_chld_fds_[0]);
137 FDUtils::SetCloseOnExec(sig_chld_fds_[1]);
138
139 // Start thread that polls the pipe and handles process exits when
140 // data is received on the pipe.
141 result = dart::Thread::Start(ExitCodeHandlerEntry, sig_chld_fds_[0]);
142 if (result != 0) { 131 if (result != 0) {
143 FATAL1("Failed to start exit code handler worker thread %d", result); 132 FATAL1("Failed to start exit code handler worker thread %d", result);
144 } 133 }
145 134
146 // Mark write end non-blocking.
147 FDUtils::SetNonBlocking(sig_chld_fds_[1]);
148
149 // Thread started and the ExitCodeHandler is initialized. 135 // Thread started and the ExitCodeHandler is initialized.
150 initialized_ = true; 136 initialized_ = true;
151 return true; 137 return true;
152 } 138 }
153 139
154 // Get the write end of the pipe.
155 static int WakeUpFd() {
156 return sig_chld_fds_[1];
157 }
158
159 static void TerminateExitCodeThread() { 140 static void TerminateExitCodeThread() {
160 MutexLocker locker(mutex_); 141 MutexLocker locker(mutex_);
161 if (!initialized_) { 142 if (!initialized_) {
162 return; 143 return;
163 } 144 }
164 145
165 uint8_t data = kThreadTerminateByte; 146 thread_terminate_monitor_->Enter();
166 ssize_t result = 147
167 TEMP_FAILURE_RETRY(write(ExitCodeHandler::WakeUpFd(), &data, 1)); 148 terminate_ = true;
168 if (result < 1) { 149 // Fork to wake up waitpid.
169 perror("Failed to write to wake-up fd to terminate exit code thread"); 150 if (TEMP_FAILURE_RETRY(fork()) == 0) {
151 exit(0);
170 } 152 }
171 153
172 { 154 thread_terminate_monitor_->Wait(dart::Monitor::kNoTimeout);
173 MonitorLocker terminate_locker(thread_terminate_monitor_); 155 thread_terminate_monitor_->Exit();
174 while (!thread_terminated_) {
175 terminate_locker.Wait();
176 }
177 }
178 }
179
180 static void ExitCodeThreadTerminated() {
181 MonitorLocker locker(thread_terminate_monitor_);
182 thread_terminated_ = true;
183 locker.Notify();
184 } 156 }
185 157
186 private: 158 private:
187 static const uint8_t kThreadTerminateByte = 1;
188
189 // GetProcessExitCodes is called on a separate thread when a SIGCHLD
190 // signal is received to retrieve the exit codes and post them to
191 // dart.
192 static void GetProcessExitCodes() {
193 pid_t pid = 0;
194 int status = 0;
195 while ((pid = TEMP_FAILURE_RETRY(waitpid(-1, &status, WNOHANG))) > 0) {
196 int exit_code = 0;
197 int negative = 0;
198 if (WIFEXITED(status)) {
199 exit_code = WEXITSTATUS(status);
200 }
201 if (WIFSIGNALED(status)) {
202 exit_code = WTERMSIG(status);
203 negative = 1;
204 }
205 intptr_t exit_code_fd = ProcessInfoList::LookupProcessExitFd(pid);
206 if (exit_code_fd != 0) {
207 int message[2] = { exit_code, negative };
208 ssize_t result =
209 FDUtils::WriteToBlocking(exit_code_fd, &message, sizeof(message));
210 // If the process has been closed, the read end of the exit
211 // pipe has been closed. It is therefore not a problem that
212 // write fails with a broken pipe error. Other errors should
213 // not happen.
214 if (result != -1 && result != sizeof(message)) {
215 FATAL("Failed to write entire process exit message");
216 } else if (result == -1 && errno != EPIPE) {
217 FATAL1("Failed to write exit code: %d", errno);
218 }
219 ProcessInfoList::RemoveProcess(pid);
220 }
221 }
222 }
223
224
225 // Entry point for the separate exit code handler thread started by 159 // Entry point for the separate exit code handler thread started by
226 // the ExitCodeHandler. 160 // the ExitCodeHandler.
227 static void ExitCodeHandlerEntry(uword param) { 161 static void ExitCodeHandlerEntry(uword param) {
228 struct pollfd pollfds; 162 pid_t pid = 0;
229 pollfds.fd = param; 163 int status = 0;
230 pollfds.events = POLLIN; 164 while (!terminate_) {
231 while (true) { 165 if ((pid = TEMP_FAILURE_RETRY(waitpid(-1, &status, 0))) > 0) {
232 int result = TEMP_FAILURE_RETRY(poll(&pollfds, 1, -1)); 166 int exit_code = 0;
233 if (result == -1) { 167 int negative = 0;
234 ASSERT(EAGAIN == EWOULDBLOCK); 168 if (WIFEXITED(status)) {
235 if (errno != EWOULDBLOCK) { 169 exit_code = WEXITSTATUS(status);
236 perror("ExitCodeHandler poll failed");
237 } 170 }
238 } else { 171 if (WIFSIGNALED(status)) {
239 // Read the byte from the wake-up fd. 172 exit_code = WTERMSIG(status);
240 ASSERT(result = 1); 173 negative = 1;
241 intptr_t data = 0;
242 ssize_t read_bytes = FDUtils::ReadFromBlocking(pollfds.fd, &data, 1);
243 if (read_bytes < 1) {
244 perror("Failed to read from wake-up fd in exit-code handler");
245 } 174 }
246 if (data == ExitCodeHandler::kThreadTerminateByte) { 175 intptr_t exit_code_fd = ProcessInfoList::LookupProcessExitFd(pid);
247 ExitCodeThreadTerminated(); 176 if (exit_code_fd != 0) {
248 return; 177 int message[2] = { exit_code, negative };
178 ssize_t result =
179 FDUtils::WriteToBlocking(exit_code_fd, &message, sizeof(message));
180 // If the process has been closed, the read end of the exit
181 // pipe has been closed. It is therefore not a problem that
182 // write fails with a broken pipe error. Other errors should
183 // not happen.
184 if (result != -1 && result != sizeof(message)) {
185 FATAL("Failed to write entire process exit message");
186 } else if (result == -1 && errno != EPIPE) {
187 FATAL1("Failed to write exit code: %d", errno);
188 }
189 ProcessInfoList::RemoveProcess(pid);
249 } 190 }
250 // Get the exit code from all processes that have died.
251 GetProcessExitCodes();
252 } 191 }
253 } 192 }
193 thread_terminate_monitor_->Enter();
194 thread_terminate_monitor_->Notify();
195 thread_terminate_monitor_->Exit();
254 } 196 }
255 197
256 static dart::Mutex* mutex_; 198 static dart::Mutex* mutex_;
257 static bool initialized_; 199 static bool initialized_;
258 static int sig_chld_fds_[2]; 200 static bool terminate_;
259 static bool thread_terminated_;
260 static dart::Monitor* thread_terminate_monitor_; 201 static dart::Monitor* thread_terminate_monitor_;
261 }; 202 };
262 203
263 204
264 dart::Mutex* ExitCodeHandler::mutex_ = new dart::Mutex(); 205 dart::Mutex* ExitCodeHandler::mutex_ = new dart::Mutex();
265 bool ExitCodeHandler::initialized_ = false; 206 bool ExitCodeHandler::initialized_ = false;
266 int ExitCodeHandler::sig_chld_fds_[2] = { 0, 0 }; 207 bool ExitCodeHandler::terminate_ = false;
267 bool ExitCodeHandler::thread_terminated_ = false;
268 dart::Monitor* ExitCodeHandler::thread_terminate_monitor_ = new dart::Monitor(); 208 dart::Monitor* ExitCodeHandler::thread_terminate_monitor_ = new dart::Monitor();
269 209
270 210
271 static void SetChildOsErrorMessage(char** os_error_message) { 211 static void SetChildOsErrorMessage(char** os_error_message) {
272 const int kBufferSize = 1024; 212 const int kBufferSize = 1024;
273 char error_message[kBufferSize]; 213 char error_message[kBufferSize];
274 strerror_r(errno, error_message, kBufferSize); 214 strerror_r(errno, error_message, kBufferSize);
275 *os_error_message = strdup(error_message); 215 *os_error_message = strdup(error_message);
276 } 216 }
277 217
278 218
279 static void SigChldHandler(int process_signal, siginfo_t* siginfo, void* tmp) {
280 // Save errno so it can be restored at the end.
281 int entry_errno = errno;
282 // Signal the exit code handler where the actual processing takes
283 // place.
284 ssize_t result =
285 TEMP_FAILURE_RETRY(write(ExitCodeHandler::WakeUpFd(), "", 1));
286 if (result < 1) {
287 perror("Failed to write to wake-up fd in SIGCHLD handler");
288 }
289 // Restore errno.
290 errno = entry_errno;
291 }
292
293
294 static void ReportChildError(int exec_control_fd) { 219 static void ReportChildError(int exec_control_fd) {
295 // In the case of failure in the child process write the errno and 220 // In the case of failure in the child process write the errno and
296 // the OS error message to the exec control pipe and exit. 221 // the OS error message to the exec control pipe and exit.
297 int child_errno = errno; 222 int child_errno = errno;
298 const int kBufferSize = 1024; 223 const int kBufferSize = 1024;
299 char os_error_message[kBufferSize]; 224 char os_error_message[kBufferSize];
300 strerror_r(errno, os_error_message, kBufferSize); 225 strerror_r(errno, os_error_message, kBufferSize);
301 ASSERT(sizeof(child_errno) == sizeof(errno)); 226 ASSERT(sizeof(child_errno) == sizeof(errno));
302 int bytes_written = 227 int bytes_written =
303 FDUtils::WriteToBlocking( 228 FDUtils::WriteToBlocking(
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406 331
407 char** program_environment = NULL; 332 char** program_environment = NULL;
408 if (environment != NULL) { 333 if (environment != NULL) {
409 program_environment = new char*[environment_length + 1]; 334 program_environment = new char*[environment_length + 1];
410 for (int i = 0; i < environment_length; i++) { 335 for (int i = 0; i < environment_length; i++) {
411 program_environment[i] = environment[i]; 336 program_environment[i] = environment[i];
412 } 337 }
413 program_environment[environment_length] = NULL; 338 program_environment[environment_length] = NULL;
414 } 339 }
415 340
416 struct sigaction act;
417 bzero(&act, sizeof(act));
418 act.sa_sigaction = SigChldHandler;
419 act.sa_flags = SA_NOCLDSTOP | SA_SIGINFO;
420 if (sigaction(SIGCHLD, &act, 0) != 0) {
421 perror("Process start: setting signal handler failed");
422 }
423 pid = TEMP_FAILURE_RETRY(fork()); 341 pid = TEMP_FAILURE_RETRY(fork());
424 if (pid < 0) { 342 if (pid < 0) {
425 SetChildOsErrorMessage(os_error_message); 343 SetChildOsErrorMessage(os_error_message);
426 delete[] program_arguments; 344 delete[] program_arguments;
427 TEMP_FAILURE_RETRY(close(read_in[0])); 345 TEMP_FAILURE_RETRY(close(read_in[0]));
428 TEMP_FAILURE_RETRY(close(read_in[1])); 346 TEMP_FAILURE_RETRY(close(read_in[1]));
429 TEMP_FAILURE_RETRY(close(read_err[0])); 347 TEMP_FAILURE_RETRY(close(read_err[0]));
430 TEMP_FAILURE_RETRY(close(read_err[1])); 348 TEMP_FAILURE_RETRY(close(read_err[1]));
431 TEMP_FAILURE_RETRY(close(write_out[0])); 349 TEMP_FAILURE_RETRY(close(write_out[0]));
432 TEMP_FAILURE_RETRY(close(write_out[1])); 350 TEMP_FAILURE_RETRY(close(write_out[1]));
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696 614
697 615
698 intptr_t Process::CurrentProcessId() { 616 intptr_t Process::CurrentProcessId() {
699 return static_cast<intptr_t>(getpid()); 617 return static_cast<intptr_t>(getpid());
700 } 618 }
701 619
702 } // namespace bin 620 } // namespace bin
703 } // namespace dart 621 } // namespace dart
704 622
705 #endif // defined(TARGET_OS_ANDROID) 623 #endif // defined(TARGET_OS_ANDROID)
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