c20c523de8
Review URL: https://codereview.chromium.org//11644017 git-svn-id: https://dart.googlecode.com/svn/branches/bleeding_edge/dart@16308 260f80e4-7a28-3924-810f-c04153c831b5
565 lines
17 KiB
C++
565 lines
17 KiB
C++
// Copyright (c) 2012, the Dart project authors. Please see the AUTHORS file
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// for details. All rights reserved. Use of this source code is governed by a
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// BSD-style license that can be found in the LICENSE file.
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#include "bin/process.h"
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#include <errno.h>
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#include <fcntl.h>
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#include <poll.h>
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#include <signal.h>
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include <sys/wait.h>
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#include <unistd.h>
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#include "bin/fdutils.h"
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#include "bin/log.h"
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#include "bin/thread.h"
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extern char **environ;
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// ProcessInfo is used to map a process id to the file descriptor for
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// the pipe used to communicate the exit code of the process to Dart.
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// ProcessInfo objects are kept in the static singly-linked
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// ProcessInfoList.
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class ProcessInfo {
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public:
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ProcessInfo(pid_t pid, intptr_t fd) : pid_(pid), fd_(fd) { }
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~ProcessInfo() {
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int closed = TEMP_FAILURE_RETRY(close(fd_));
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if (closed != 0) {
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FATAL("Failed to close process exit code pipe");
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}
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}
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pid_t pid() { return pid_; }
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intptr_t fd() { return fd_; }
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ProcessInfo* next() { return next_; }
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void set_next(ProcessInfo* info) { next_ = info; }
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private:
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pid_t pid_;
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intptr_t fd_;
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ProcessInfo* next_;
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};
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// Singly-linked list of ProcessInfo objects for all active processes
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// started from Dart.
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class ProcessInfoList {
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public:
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static void AddProcess(pid_t pid, intptr_t fd) {
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MutexLocker locker(&mutex_);
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ProcessInfo* info = new ProcessInfo(pid, fd);
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info->set_next(active_processes_);
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active_processes_ = info;
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}
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static intptr_t LookupProcessExitFd(pid_t pid) {
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MutexLocker locker(&mutex_);
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ProcessInfo* current = active_processes_;
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while (current != NULL) {
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if (current->pid() == pid) {
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return current->fd();
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}
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current = current->next();
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}
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return 0;
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}
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static void RemoveProcess(pid_t pid) {
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MutexLocker locker(&mutex_);
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ProcessInfo* prev = NULL;
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ProcessInfo* current = active_processes_;
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while (current != NULL) {
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if (current->pid() == pid) {
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if (prev == NULL) {
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active_processes_ = current->next();
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} else {
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prev->set_next(current->next());
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}
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delete current;
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return;
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}
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prev = current;
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current = current->next();
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}
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}
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private:
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// Linked list of ProcessInfo objects for all active processes
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// started from Dart code.
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static ProcessInfo* active_processes_;
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// Mutex protecting all accesses to the linked list of active
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// processes.
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static dart::Mutex mutex_;
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};
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ProcessInfo* ProcessInfoList::active_processes_ = NULL;
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dart::Mutex ProcessInfoList::mutex_;
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// The exit code handler sets up a separate thread which is signalled
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// on SIGCHLD. That separate thread can then get the exit code from
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// processes that have exited and communicate it to Dart through the
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// event loop.
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class ExitCodeHandler {
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public:
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// Ensure that the ExitCodeHandler has been initialized.
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static bool EnsureInitialized() {
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// Multiple isolates could be starting processes at the same
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// time. Make sure that only one of them initializes the
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// ExitCodeHandler.
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MutexLocker locker(&mutex_);
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if (initialized_) {
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return true;
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}
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// Allocate a pipe that the signal handler can write a byte to and
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// that the exit handler thread can poll.
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int result = TEMP_FAILURE_RETRY(pipe(sig_chld_fds_));
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if (result < 0) {
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return false;
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}
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FDUtils::SetCloseOnExec(sig_chld_fds_[0]);
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FDUtils::SetCloseOnExec(sig_chld_fds_[1]);
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// Start thread that polls the pipe and handles process exits when
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// data is received on the pipe.
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result = dart::Thread::Start(ExitCodeHandlerEntry, sig_chld_fds_[0]);
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if (result != 0) {
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FATAL1("Failed to start exit code handler worker thread %d", result);
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}
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// Mark write end non-blocking.
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FDUtils::SetNonBlocking(sig_chld_fds_[1]);
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// Thread started and the ExitCodeHandler is initialized.
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initialized_ = true;
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return true;
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}
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// Get the write end of the pipe.
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static int WakeUpFd() {
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ASSERT(initialized_);
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return sig_chld_fds_[1];
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}
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static void TerminateExitCodeThread() {
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MutexLocker locker(&mutex_);
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if (!initialized_) {
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return;
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}
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uint8_t data = kThreadTerminateByte;
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ssize_t result =
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TEMP_FAILURE_RETRY(write(ExitCodeHandler::WakeUpFd(), &data, 1));
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if (result < 1) {
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perror("Failed to write to wake-up fd to terminate exit code thread");
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}
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{
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MonitorLocker terminate_locker(&thread_terminate_monitor_);
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while (!thread_terminated_) {
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terminate_locker.Wait();
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}
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}
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}
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static void ExitCodeThreadTerminated() {
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MonitorLocker locker(&thread_terminate_monitor_);
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thread_terminated_ = true;
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locker.Notify();
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}
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private:
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static const uint8_t kThreadTerminateByte = 1;
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// GetProcessExitCodes is called on a separate thread when a SIGCHLD
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// signal is received to retrieve the exit codes and post them to
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// dart.
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static void GetProcessExitCodes() {
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pid_t pid = 0;
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int status = 0;
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while ((pid = TEMP_FAILURE_RETRY(waitpid(-1, &status, WNOHANG))) > 0) {
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int exit_code = 0;
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int negative = 0;
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if (WIFEXITED(status)) {
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exit_code = WEXITSTATUS(status);
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}
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if (WIFSIGNALED(status)) {
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exit_code = WTERMSIG(status);
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negative = 1;
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}
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intptr_t exit_code_fd = ProcessInfoList::LookupProcessExitFd(pid);
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if (exit_code_fd != 0) {
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int message[2] = { exit_code, negative };
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ssize_t result =
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FDUtils::WriteToBlocking(exit_code_fd, &message, sizeof(message));
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// If the process has been closed, the read end of the exit
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// pipe has been closed. It is therefore not a problem that
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// write fails with a broken pipe error. Other errors should
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// not happen.
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if (result != -1 && result != sizeof(message)) {
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FATAL("Failed to write entire process exit message");
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} else if (result == -1 && errno != EPIPE) {
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FATAL1("Failed to write exit code: %d", errno);
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}
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ProcessInfoList::RemoveProcess(pid);
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}
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}
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}
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// Entry point for the separate exit code handler thread started by
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// the ExitCodeHandler.
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static void ExitCodeHandlerEntry(uword param) {
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struct pollfd pollfds;
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pollfds.fd = param;
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pollfds.events = POLLIN;
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while (true) {
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int result = TEMP_FAILURE_RETRY(poll(&pollfds, 1, -1));
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if (result == -1) {
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ASSERT(EAGAIN == EWOULDBLOCK);
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if (errno != EWOULDBLOCK) {
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perror("ExitCodeHandler poll failed");
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}
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} else {
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// Read the byte from the wake-up fd.
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ASSERT(result = 1);
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intptr_t data = 0;
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ssize_t read_bytes = FDUtils::ReadFromBlocking(pollfds.fd, &data, 1);
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if (read_bytes < 1) {
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perror("Failed to read from wake-up fd in exit-code handler");
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}
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if (data == ExitCodeHandler::kThreadTerminateByte) {
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ExitCodeThreadTerminated();
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return;
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}
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// Get the exit code from all processes that have died.
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GetProcessExitCodes();
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}
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}
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}
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static dart::Mutex mutex_;
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static bool initialized_;
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static int sig_chld_fds_[2];
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static bool thread_terminated_;
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static dart::Monitor thread_terminate_monitor_;
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};
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dart::Mutex ExitCodeHandler::mutex_;
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bool ExitCodeHandler::initialized_ = false;
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int ExitCodeHandler::sig_chld_fds_[2] = { 0, 0 };
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bool ExitCodeHandler::thread_terminated_ = false;
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dart::Monitor ExitCodeHandler::thread_terminate_monitor_;
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static void SetChildOsErrorMessage(char** os_error_message) {
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*os_error_message = strdup(strerror(errno));
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}
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static void SigChldHandler(int process_signal, siginfo_t* siginfo, void* tmp) {
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// Save errno so it can be restored at the end.
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int entry_errno = errno;
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// Signal the exit code handler where the actual processing takes
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// place.
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ssize_t result =
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TEMP_FAILURE_RETRY(write(ExitCodeHandler::WakeUpFd(), "", 1));
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if (result < 1) {
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perror("Failed to write to wake-up fd in SIGCHLD handler");
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}
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// Restore errno.
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errno = entry_errno;
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}
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static void ReportChildError(int exec_control_fd) {
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// In the case of failure in the child process write the errno and
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// the OS error message to the exec control pipe and exit.
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int child_errno = errno;
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char* os_error_message = strerror(errno);
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ASSERT(sizeof(child_errno) == sizeof(errno));
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int bytes_written =
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FDUtils::WriteToBlocking(
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exec_control_fd, &child_errno, sizeof(child_errno));
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if (bytes_written == sizeof(child_errno)) {
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FDUtils::WriteToBlocking(
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exec_control_fd, os_error_message, strlen(os_error_message) + 1);
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}
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TEMP_FAILURE_RETRY(close(exec_control_fd));
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exit(1);
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}
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int Process::Start(const char* path,
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char* arguments[],
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intptr_t arguments_length,
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const char* working_directory,
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char* environment[],
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intptr_t environment_length,
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intptr_t* in,
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intptr_t* out,
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intptr_t* err,
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intptr_t* id,
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intptr_t* exit_event,
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char** os_error_message) {
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pid_t pid;
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int read_in[2]; // Pipe for stdout to child process.
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int read_err[2]; // Pipe for stderr to child process.
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int write_out[2]; // Pipe for stdin to child process.
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int exec_control[2]; // Pipe to get the result from exec.
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int result;
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bool initialized = ExitCodeHandler::EnsureInitialized();
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if (!initialized) {
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SetChildOsErrorMessage(os_error_message);
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Log::PrintErr(
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"Error initializing exit code handler: %s\n",
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*os_error_message);
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return errno;
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}
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result = TEMP_FAILURE_RETRY(pipe(read_in));
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if (result < 0) {
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SetChildOsErrorMessage(os_error_message);
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Log::PrintErr("Error pipe creation failed: %s\n", *os_error_message);
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return errno;
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}
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result = TEMP_FAILURE_RETRY(pipe(read_err));
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if (result < 0) {
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SetChildOsErrorMessage(os_error_message);
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TEMP_FAILURE_RETRY(close(read_in[0]));
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TEMP_FAILURE_RETRY(close(read_in[1]));
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Log::PrintErr("Error pipe creation failed: %s\n", *os_error_message);
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return errno;
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}
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result = TEMP_FAILURE_RETRY(pipe(write_out));
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if (result < 0) {
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SetChildOsErrorMessage(os_error_message);
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TEMP_FAILURE_RETRY(close(read_in[0]));
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TEMP_FAILURE_RETRY(close(read_in[1]));
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TEMP_FAILURE_RETRY(close(read_err[0]));
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TEMP_FAILURE_RETRY(close(read_err[1]));
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Log::PrintErr("Error pipe creation failed: %s\n", *os_error_message);
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return errno;
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}
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result = TEMP_FAILURE_RETRY(pipe(exec_control));
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if (result < 0) {
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SetChildOsErrorMessage(os_error_message);
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TEMP_FAILURE_RETRY(close(read_in[0]));
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TEMP_FAILURE_RETRY(close(read_in[1]));
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TEMP_FAILURE_RETRY(close(read_err[0]));
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TEMP_FAILURE_RETRY(close(read_err[1]));
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TEMP_FAILURE_RETRY(close(write_out[0]));
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TEMP_FAILURE_RETRY(close(write_out[1]));
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Log::PrintErr("Error pipe creation failed: %s\n", *os_error_message);
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return errno;
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}
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// Set close on exec on the write file descriptor of the exec control pipe.
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result = TEMP_FAILURE_RETRY(
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fcntl(exec_control[1],
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F_SETFD,
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TEMP_FAILURE_RETRY(fcntl(exec_control[1], F_GETFD)) | FD_CLOEXEC));
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if (result < 0) {
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SetChildOsErrorMessage(os_error_message);
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TEMP_FAILURE_RETRY(close(read_in[0]));
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TEMP_FAILURE_RETRY(close(read_in[1]));
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TEMP_FAILURE_RETRY(close(read_err[0]));
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TEMP_FAILURE_RETRY(close(read_err[1]));
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TEMP_FAILURE_RETRY(close(write_out[0]));
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TEMP_FAILURE_RETRY(close(write_out[1]));
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TEMP_FAILURE_RETRY(close(exec_control[0]));
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TEMP_FAILURE_RETRY(close(exec_control[1]));
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Log::PrintErr("fcntl failed: %s\n", *os_error_message);
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return errno;
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}
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char** program_arguments = new char*[arguments_length + 2];
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program_arguments[0] = const_cast<char*>(path);
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for (int i = 0; i < arguments_length; i++) {
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program_arguments[i + 1] = arguments[i];
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}
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program_arguments[arguments_length + 1] = NULL;
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char** program_environment = NULL;
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if (environment != NULL) {
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program_environment = new char*[environment_length + 1];
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for (int i = 0; i < environment_length; i++) {
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program_environment[i] = environment[i];
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}
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program_environment[environment_length] = NULL;
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}
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struct sigaction act;
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bzero(&act, sizeof(act));
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act.sa_sigaction = SigChldHandler;
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act.sa_flags = SA_NOCLDSTOP | SA_SIGINFO;
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if (sigaction(SIGCHLD, &act, 0) != 0) {
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perror("Process start: setting signal handler failed");
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}
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pid = TEMP_FAILURE_RETRY(fork());
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if (pid < 0) {
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SetChildOsErrorMessage(os_error_message);
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delete[] program_arguments;
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TEMP_FAILURE_RETRY(close(read_in[0]));
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TEMP_FAILURE_RETRY(close(read_in[1]));
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TEMP_FAILURE_RETRY(close(read_err[0]));
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TEMP_FAILURE_RETRY(close(read_err[1]));
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TEMP_FAILURE_RETRY(close(write_out[0]));
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TEMP_FAILURE_RETRY(close(write_out[1]));
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TEMP_FAILURE_RETRY(close(exec_control[0]));
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TEMP_FAILURE_RETRY(close(exec_control[1]));
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return errno;
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} else if (pid == 0) {
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// Wait for parent process before setting up the child process.
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char msg;
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int bytes_read = FDUtils::ReadFromBlocking(read_in[0], &msg, sizeof(msg));
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if (bytes_read != sizeof(msg)) {
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perror("Failed receiving notification message");
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exit(1);
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}
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TEMP_FAILURE_RETRY(close(write_out[1]));
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TEMP_FAILURE_RETRY(close(read_in[0]));
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TEMP_FAILURE_RETRY(close(read_err[0]));
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TEMP_FAILURE_RETRY(close(exec_control[0]));
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if (TEMP_FAILURE_RETRY(dup2(write_out[0], STDIN_FILENO)) == -1) {
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ReportChildError(exec_control[1]);
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}
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TEMP_FAILURE_RETRY(close(write_out[0]));
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if (TEMP_FAILURE_RETRY(dup2(read_in[1], STDOUT_FILENO)) == -1) {
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ReportChildError(exec_control[1]);
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}
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TEMP_FAILURE_RETRY(close(read_in[1]));
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if (TEMP_FAILURE_RETRY(dup2(read_err[1], STDERR_FILENO)) == -1) {
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ReportChildError(exec_control[1]);
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}
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TEMP_FAILURE_RETRY(close(read_err[1]));
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if (working_directory != NULL &&
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TEMP_FAILURE_RETRY(chdir(working_directory)) == -1) {
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ReportChildError(exec_control[1]);
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}
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if (program_environment != NULL) {
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environ = program_environment;
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}
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TEMP_FAILURE_RETRY(
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execvp(path, const_cast<char* const*>(program_arguments)));
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ReportChildError(exec_control[1]);
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}
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// The arguments and environment for the spawned process are not needed
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// any longer.
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delete[] program_arguments;
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delete[] program_environment;
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int event_fds[2];
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result = TEMP_FAILURE_RETRY(pipe(event_fds));
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if (result < 0) {
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SetChildOsErrorMessage(os_error_message);
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TEMP_FAILURE_RETRY(close(read_in[0]));
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TEMP_FAILURE_RETRY(close(read_in[1]));
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TEMP_FAILURE_RETRY(close(read_err[0]));
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TEMP_FAILURE_RETRY(close(read_err[1]));
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TEMP_FAILURE_RETRY(close(write_out[0]));
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TEMP_FAILURE_RETRY(close(write_out[1]));
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Log::PrintErr("Error pipe creation failed: %s\n", *os_error_message);
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return errno;
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}
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FDUtils::SetCloseOnExec(event_fds[0]);
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FDUtils::SetCloseOnExec(event_fds[1]);
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ProcessInfoList::AddProcess(pid, event_fds[1]);
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*exit_event = event_fds[0];
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FDUtils::SetNonBlocking(event_fds[0]);
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|
|
// Notify child process to start.
|
|
char msg = '1';
|
|
result = FDUtils::WriteToBlocking(read_in[1], &msg, sizeof(msg));
|
|
if (result != sizeof(msg)) {
|
|
perror("Failed sending notification message");
|
|
}
|
|
|
|
// Read exec result from child. If no data is returned the exec was
|
|
// successful and the exec call closed the pipe. Otherwise the errno
|
|
// is written to the pipe.
|
|
TEMP_FAILURE_RETRY(close(exec_control[1]));
|
|
int child_errno;
|
|
int bytes_read = -1;
|
|
ASSERT(sizeof(child_errno) == sizeof(errno));
|
|
bytes_read =
|
|
FDUtils::ReadFromBlocking(
|
|
exec_control[0], &child_errno, sizeof(child_errno));
|
|
if (bytes_read == sizeof(child_errno)) {
|
|
static const int kMaxMessageSize = 256;
|
|
char* message = static_cast<char*>(malloc(kMaxMessageSize));
|
|
bytes_read = FDUtils::ReadFromBlocking(exec_control[0],
|
|
message,
|
|
kMaxMessageSize);
|
|
message[kMaxMessageSize - 1] = '\0';
|
|
*os_error_message = message;
|
|
}
|
|
TEMP_FAILURE_RETRY(close(exec_control[0]));
|
|
|
|
// Return error code if any failures.
|
|
if (bytes_read != 0) {
|
|
TEMP_FAILURE_RETRY(close(read_in[0]));
|
|
TEMP_FAILURE_RETRY(close(read_in[1]));
|
|
TEMP_FAILURE_RETRY(close(read_err[0]));
|
|
TEMP_FAILURE_RETRY(close(read_err[1]));
|
|
TEMP_FAILURE_RETRY(close(write_out[0]));
|
|
TEMP_FAILURE_RETRY(close(write_out[1]));
|
|
if (bytes_read == -1) {
|
|
return errno; // Read failed.
|
|
} else {
|
|
return child_errno; // Exec failed.
|
|
}
|
|
}
|
|
|
|
FDUtils::SetNonBlocking(read_in[0]);
|
|
*in = read_in[0];
|
|
TEMP_FAILURE_RETRY(close(read_in[1]));
|
|
FDUtils::SetNonBlocking(write_out[1]);
|
|
*out = write_out[1];
|
|
TEMP_FAILURE_RETRY(close(write_out[0]));
|
|
FDUtils::SetNonBlocking(read_err[0]);
|
|
*err = read_err[0];
|
|
TEMP_FAILURE_RETRY(close(read_err[1]));
|
|
|
|
*id = pid;
|
|
return 0;
|
|
}
|
|
|
|
|
|
bool Process::Kill(intptr_t id, int signal) {
|
|
return (TEMP_FAILURE_RETRY(kill(id, signal)) != -1);
|
|
}
|
|
|
|
|
|
void Process::TerminateExitCodeHandler() {
|
|
ExitCodeHandler::TerminateExitCodeThread();
|
|
}
|
|
|
|
|
|
intptr_t Process::CurrentProcessId() {
|
|
return static_cast<intptr_t>(getpid());
|
|
}
|