a13fa38fa4
so fork() doesn't corrupt log files; lets --generate_suppressions work even with the hacky valgrind fix that makes anything but --log-file crash on child of fork(). Also avoid killing user desktop session if zygote dies! BUG=none, but related to fix for http://crbug.com/15771 TEST=patch valgrind with fork workaround; sh tools/valgrind/chrome_tests.sh --generate_suppressions -t ui logs you out on linux without this. Review URL: http://codereview.chromium.org/155130 git-svn-id: svn://svn.chromium.org/chrome/trunk/src@20024 0039d316-1c4b-4281-b951-d872f2087c98
546 linhas
15 KiB
C++
546 linhas
15 KiB
C++
// Copyright (c) 2006-2008 The Chromium Authors. All rights reserved.
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// Use of this source code is governed by a BSD-style license that can be
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// found in the LICENSE file.
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#include <dirent.h>
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#include <errno.h>
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#include <fcntl.h>
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#include <signal.h>
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#include <stdlib.h>
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#include <sys/resource.h>
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#include <sys/time.h>
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#include <sys/types.h>
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#include <sys/wait.h>
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#include <unistd.h>
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#include <limits>
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#include <set>
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#include "base/basictypes.h"
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#include "base/eintr_wrapper.h"
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#include "base/logging.h"
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#include "base/platform_thread.h"
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#include "base/process_util.h"
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#include "base/scoped_ptr.h"
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#include "base/sys_info.h"
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#include "base/time.h"
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#include "base/waitable_event.h"
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const int kMicrosecondsPerSecond = 1000000;
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namespace base {
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ProcessId GetCurrentProcId() {
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return getpid();
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}
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ProcessHandle GetCurrentProcessHandle() {
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return GetCurrentProcId();
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}
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bool OpenProcessHandle(ProcessId pid, ProcessHandle* handle) {
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// On Posix platforms, process handles are the same as PIDs, so we
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// don't need to do anything.
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*handle = pid;
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return true;
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}
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bool OpenPrivilegedProcessHandle(ProcessId pid, ProcessHandle* handle) {
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// On POSIX permissions are checked for each operation on process,
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// not when opening a "handle".
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return OpenProcessHandle(pid, handle);
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}
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void CloseProcessHandle(ProcessHandle process) {
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// See OpenProcessHandle, nothing to do.
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return;
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}
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ProcessId GetProcId(ProcessHandle process) {
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return process;
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}
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// Attempts to kill the process identified by the given process
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// entry structure. Ignores specified exit_code; posix can't force that.
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// Returns true if this is successful, false otherwise.
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bool KillProcess(ProcessHandle process_id, int exit_code, bool wait) {
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DCHECK(process_id > 1);
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if (process_id <= 1) {
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LOG(ERROR) << "tried to kill process_id " << process_id;
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return false;
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}
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bool result = kill(process_id, SIGTERM) == 0;
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if (result && wait) {
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int tries = 60;
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// The process may not end immediately due to pending I/O
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while (tries-- > 0) {
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int pid = HANDLE_EINTR(waitpid(process_id, NULL, WNOHANG));
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if (pid == process_id)
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break;
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sleep(1);
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}
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result = kill(process_id, SIGKILL) == 0;
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}
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if (!result)
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DLOG(ERROR) << "Unable to terminate process.";
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return result;
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}
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// A class to handle auto-closing of DIR*'s.
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class ScopedDIRClose {
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public:
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inline void operator()(DIR* x) const {
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if (x) {
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closedir(x);
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}
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}
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};
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typedef scoped_ptr_malloc<DIR, ScopedDIRClose> ScopedDIR;
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void CloseSuperfluousFds(const base::InjectiveMultimap& saved_mapping) {
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#if defined(OS_LINUX)
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static const rlim_t kSystemDefaultMaxFds = 8192;
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static const char fd_dir[] = "/proc/self/fd";
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#elif defined(OS_MACOSX)
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static const rlim_t kSystemDefaultMaxFds = 256;
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static const char fd_dir[] = "/dev/fd";
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#endif
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std::set<int> saved_fds;
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// Get the maximum number of FDs possible.
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struct rlimit nofile;
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rlim_t max_fds;
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if (getrlimit(RLIMIT_NOFILE, &nofile)) {
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// getrlimit failed. Take a best guess.
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max_fds = kSystemDefaultMaxFds;
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DLOG(ERROR) << "getrlimit(RLIMIT_NOFILE) failed: " << errno;
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} else {
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max_fds = nofile.rlim_cur;
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}
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if (max_fds > INT_MAX)
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max_fds = INT_MAX;
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// Don't close stdin, stdout and stderr
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saved_fds.insert(STDIN_FILENO);
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saved_fds.insert(STDOUT_FILENO);
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saved_fds.insert(STDERR_FILENO);
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for (base::InjectiveMultimap::const_iterator
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i = saved_mapping.begin(); i != saved_mapping.end(); ++i) {
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saved_fds.insert(i->dest);
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}
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ScopedDIR dir_closer(opendir(fd_dir));
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DIR *dir = dir_closer.get();
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if (NULL == dir) {
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DLOG(ERROR) << "Unable to open " << fd_dir;
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// Fallback case: Try every possible fd.
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for (rlim_t i = 0; i < max_fds; ++i) {
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const int fd = static_cast<int>(i);
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if (saved_fds.find(fd) != saved_fds.end())
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continue;
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HANDLE_EINTR(close(fd));
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}
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return;
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}
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int dir_fd = dirfd(dir);
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struct dirent *ent;
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while ((ent = readdir(dir))) {
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// Skip . and .. entries.
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if (ent->d_name[0] == '.')
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continue;
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char *endptr;
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errno = 0;
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const long int fd = strtol(ent->d_name, &endptr, 10);
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if (ent->d_name[0] == 0 || *endptr || fd < 0 || errno)
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continue;
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if (saved_fds.find(fd) != saved_fds.end())
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continue;
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if (fd == dir_fd)
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continue;
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// When running under Valgrind, Valgrind opens several FDs for its
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// own use and will complain if we try to close them. All of
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// these FDs are >= |max_fds|, so we can check against that here
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// before closing. See https://bugs.kde.org/show_bug.cgi?id=191758
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if (fd < static_cast<int>(max_fds))
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HANDLE_EINTR(close(fd));
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}
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}
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// Sets all file descriptors to close on exec except for stdin, stdout
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// and stderr.
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// TODO(agl): Remove this function. It's fundamentally broken for multithreaded
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// apps.
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void SetAllFDsToCloseOnExec() {
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#if defined(OS_LINUX)
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const char fd_dir[] = "/proc/self/fd";
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#elif defined(OS_MACOSX)
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const char fd_dir[] = "/dev/fd";
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#endif
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ScopedDIR dir_closer(opendir(fd_dir));
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DIR *dir = dir_closer.get();
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if (NULL == dir) {
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DLOG(ERROR) << "Unable to open " << fd_dir;
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return;
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}
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struct dirent *ent;
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while ((ent = readdir(dir))) {
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// Skip . and .. entries.
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if (ent->d_name[0] == '.')
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continue;
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int i = atoi(ent->d_name);
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// We don't close stdin, stdout or stderr.
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if (i <= STDERR_FILENO)
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continue;
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int flags = fcntl(i, F_GETFD);
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if ((flags == -1) || (fcntl(i, F_SETFD, flags | FD_CLOEXEC) == -1)) {
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DLOG(ERROR) << "fcntl failure.";
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}
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}
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}
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ProcessMetrics::ProcessMetrics(ProcessHandle process) : process_(process),
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last_time_(0),
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last_system_time_(0) {
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processor_count_ = base::SysInfo::NumberOfProcessors();
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}
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// static
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ProcessMetrics* ProcessMetrics::CreateProcessMetrics(ProcessHandle process) {
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return new ProcessMetrics(process);
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}
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ProcessMetrics::~ProcessMetrics() { }
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void EnableTerminationOnHeapCorruption() {
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// On POSIX, there nothing to do AFAIK.
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}
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void RaiseProcessToHighPriority() {
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// On POSIX, we don't actually do anything here. We could try to nice() or
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// setpriority() or sched_getscheduler, but these all require extra rights.
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}
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bool DidProcessCrash(bool* child_exited, ProcessHandle handle) {
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int status;
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const int result = HANDLE_EINTR(waitpid(handle, &status, WNOHANG));
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if (result == -1) {
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LOG(ERROR) << "waitpid failed pid:" << handle << " errno:" << errno;
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if (child_exited)
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*child_exited = false;
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return false;
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} else if (result == 0) {
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// the child hasn't exited yet.
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if (child_exited)
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*child_exited = false;
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return false;
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}
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if (child_exited)
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*child_exited = true;
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if (WIFSIGNALED(status)) {
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switch(WTERMSIG(status)) {
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case SIGSEGV:
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case SIGILL:
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case SIGABRT:
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case SIGFPE:
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return true;
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default:
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return false;
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}
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}
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if (WIFEXITED(status))
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return WEXITSTATUS(status) != 0;
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return false;
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}
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bool WaitForExitCode(ProcessHandle handle, int* exit_code) {
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int status;
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if (HANDLE_EINTR(waitpid(handle, &status, 0)) == -1) {
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NOTREACHED();
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return false;
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}
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if (WIFEXITED(status)) {
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*exit_code = WEXITSTATUS(status);
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return true;
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}
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// If it didn't exit cleanly, it must have been signaled.
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DCHECK(WIFSIGNALED(status));
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return false;
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}
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namespace {
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int WaitpidWithTimeout(ProcessHandle handle, int64 wait_milliseconds,
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bool* success) {
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// This POSIX version of this function only guarantees that we wait no less
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// than |wait_milliseconds| for the proces to exit. The child process may
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// exit sometime before the timeout has ended but we may still block for
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// up to 0.25 seconds after the fact.
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//
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// waitpid() has no direct support on POSIX for specifying a timeout, you can
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// either ask it to block indefinitely or return immediately (WNOHANG).
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// When a child process terminates a SIGCHLD signal is sent to the parent.
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// Catching this signal would involve installing a signal handler which may
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// affect other parts of the application and would be difficult to debug.
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//
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// Our strategy is to call waitpid() once up front to check if the process
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// has already exited, otherwise to loop for wait_milliseconds, sleeping for
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// at most 0.25 secs each time using usleep() and then calling waitpid().
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//
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// usleep() is speced to exit if a signal is received for which a handler
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// has been installed. This means that when a SIGCHLD is sent, it will exit
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// depending on behavior external to this function.
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//
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// This function is used primarily for unit tests, if we want to use it in
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// the application itself it would probably be best to examine other routes.
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int status = -1;
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pid_t ret_pid = HANDLE_EINTR(waitpid(handle, &status, WNOHANG));
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static const int64 kQuarterSecondInMicroseconds = kMicrosecondsPerSecond/4;
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// If the process hasn't exited yet, then sleep and try again.
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Time wakeup_time = Time::Now() + TimeDelta::FromMilliseconds(
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wait_milliseconds);
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while (ret_pid == 0) {
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Time now = Time::Now();
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if (now > wakeup_time)
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break;
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// Guaranteed to be non-negative!
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int64 sleep_time_usecs = (wakeup_time - now).InMicroseconds();
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// Don't sleep for more than 0.25 secs at a time.
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if (sleep_time_usecs > kQuarterSecondInMicroseconds) {
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sleep_time_usecs = kQuarterSecondInMicroseconds;
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}
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// usleep() will return 0 and set errno to EINTR on receipt of a signal
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// such as SIGCHLD.
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usleep(sleep_time_usecs);
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ret_pid = HANDLE_EINTR(waitpid(handle, &status, WNOHANG));
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}
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if (success)
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*success = (ret_pid != -1);
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return status;
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}
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} // namespace
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bool WaitForSingleProcess(ProcessHandle handle, int64 wait_milliseconds) {
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bool waitpid_success;
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int status;
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if (wait_milliseconds == base::kNoTimeout)
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waitpid_success = (HANDLE_EINTR(waitpid(handle, &status, 0)) != -1);
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else
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status = WaitpidWithTimeout(handle, wait_milliseconds, &waitpid_success);
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if (status != -1) {
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DCHECK(waitpid_success);
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return WIFEXITED(status);
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} else {
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return false;
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}
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}
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bool CrashAwareSleep(ProcessHandle handle, int64 wait_milliseconds) {
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bool waitpid_success;
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int status = WaitpidWithTimeout(handle, wait_milliseconds, &waitpid_success);
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if (status != -1) {
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DCHECK(waitpid_success);
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return !(WIFEXITED(status) || WIFSIGNALED(status));
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} else {
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// If waitpid returned with an error, then the process doesn't exist
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// (which most probably means it didn't exist before our call).
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return waitpid_success;
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}
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}
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namespace {
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int64 TimeValToMicroseconds(const struct timeval& tv) {
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return tv.tv_sec * kMicrosecondsPerSecond + tv.tv_usec;
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}
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}
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int ProcessMetrics::GetCPUUsage() {
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struct timeval now;
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struct rusage usage;
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int retval = gettimeofday(&now, NULL);
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if (retval)
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return 0;
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retval = getrusage(RUSAGE_SELF, &usage);
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if (retval)
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return 0;
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int64 system_time = (TimeValToMicroseconds(usage.ru_stime) +
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TimeValToMicroseconds(usage.ru_utime)) /
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processor_count_;
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int64 time = TimeValToMicroseconds(now);
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if ((last_system_time_ == 0) || (last_time_ == 0)) {
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// First call, just set the last values.
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last_system_time_ = system_time;
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last_time_ = time;
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return 0;
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}
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int64 system_time_delta = system_time - last_system_time_;
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int64 time_delta = time - last_time_;
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DCHECK(time_delta != 0);
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if (time_delta == 0)
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return 0;
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// We add time_delta / 2 so the result is rounded.
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int cpu = static_cast<int>((system_time_delta * 100 + time_delta / 2) /
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time_delta);
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last_system_time_ = system_time;
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last_time_ = time;
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return cpu;
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}
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bool GetAppOutput(const CommandLine& cl, std::string* output) {
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int pipe_fd[2];
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pid_t pid;
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if (pipe(pipe_fd) < 0)
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return false;
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switch (pid = fork()) {
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case -1: // error
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close(pipe_fd[0]);
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close(pipe_fd[1]);
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return false;
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case 0: // child
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{
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int dev_null = open("/dev/null", O_WRONLY);
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if (dev_null < 0)
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exit(127);
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InjectiveMultimap fd_shuffle;
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fd_shuffle.push_back(InjectionArc(pipe_fd[1], STDOUT_FILENO, true));
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fd_shuffle.push_back(InjectionArc(dev_null, STDERR_FILENO, true));
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fd_shuffle.push_back(InjectionArc(dev_null, STDIN_FILENO, true));
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if (!ShuffleFileDescriptors(fd_shuffle))
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exit(127);
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CloseSuperfluousFds(fd_shuffle);
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const std::vector<std::string> argv = cl.argv();
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scoped_array<char*> argv_cstr(new char*[argv.size() + 1]);
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for (size_t i = 0; i < argv.size(); i++)
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argv_cstr[i] = const_cast<char*>(argv[i].c_str());
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argv_cstr[argv.size()] = NULL;
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execvp(argv_cstr[0], argv_cstr.get());
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exit(127);
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}
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default: // parent
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{
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// Close our writing end of pipe now. Otherwise later read would not
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// be able to detect end of child's output (in theory we could still
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// write to the pipe).
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close(pipe_fd[1]);
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char buffer[256];
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std::string buf_output;
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while (true) {
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ssize_t bytes_read =
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HANDLE_EINTR(read(pipe_fd[0], buffer, sizeof(buffer)));
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if (bytes_read <= 0)
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break;
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buf_output.append(buffer, bytes_read);
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}
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close(pipe_fd[0]);
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int exit_code = EXIT_FAILURE;
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bool success = WaitForExitCode(pid, &exit_code);
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if (!success || exit_code != EXIT_SUCCESS)
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return false;
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output->swap(buf_output);
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return true;
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}
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}
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}
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int GetProcessCount(const std::wstring& executable_name,
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const ProcessFilter* filter) {
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int count = 0;
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NamedProcessIterator iter(executable_name, filter);
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while (iter.NextProcessEntry())
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++count;
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return count;
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}
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bool KillProcesses(const std::wstring& executable_name, int exit_code,
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const ProcessFilter* filter) {
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bool result = true;
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const ProcessEntry* entry;
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NamedProcessIterator iter(executable_name, filter);
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while ((entry = iter.NextProcessEntry()) != NULL)
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result = KillProcess((*entry).pid, exit_code, true) && result;
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return result;
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}
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bool WaitForProcessesToExit(const std::wstring& executable_name,
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int64 wait_milliseconds,
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const ProcessFilter* filter) {
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bool result = false;
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|
// TODO(port): This is inefficient, but works if there are multiple procs.
|
|
// TODO(port): use waitpid to avoid leaving zombies around
|
|
|
|
base::Time end_time = base::Time::Now() +
|
|
base::TimeDelta::FromMilliseconds(wait_milliseconds);
|
|
do {
|
|
NamedProcessIterator iter(executable_name, filter);
|
|
if (!iter.NextProcessEntry()) {
|
|
result = true;
|
|
break;
|
|
}
|
|
PlatformThread::Sleep(100);
|
|
} while ((base::Time::Now() - end_time) > base::TimeDelta());
|
|
|
|
return result;
|
|
}
|
|
|
|
bool CleanupProcesses(const std::wstring& executable_name,
|
|
int64 wait_milliseconds,
|
|
int exit_code,
|
|
const ProcessFilter* filter) {
|
|
bool exited_cleanly =
|
|
WaitForProcessesToExit(executable_name, wait_milliseconds,
|
|
filter);
|
|
if (!exited_cleanly)
|
|
KillProcesses(executable_name, exit_code, filter);
|
|
return exited_cleanly;
|
|
}
|
|
|
|
} // namespace base
|