367 lines
12 KiB
C++
367 lines
12 KiB
C++
/*
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* Copyright (C) 2011 The Android Open Source Project
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#include "exec_utils.h"
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#include <poll.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 <ctime>
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#include <string_view>
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#ifdef __BIONIC__
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#include <sys/pidfd.h>
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#endif
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#include <chrono>
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#include <climits>
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#include <condition_variable>
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#include <cstdint>
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#include <mutex>
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#include <string>
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#include <thread>
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#include <vector>
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#include "android-base/file.h"
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#include "android-base/parseint.h"
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#include "android-base/scopeguard.h"
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#include "android-base/stringprintf.h"
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#include "android-base/strings.h"
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#include "android-base/unique_fd.h"
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#include "base/macros.h"
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#include "base/utils.h"
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#include "runtime.h"
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namespace art {
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namespace {
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using ::android::base::ParseInt;
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using ::android::base::ReadFileToString;
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using ::android::base::StringPrintf;
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using ::android::base::unique_fd;
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std::string ToCommandLine(const std::vector<std::string>& args) {
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return android::base::Join(args, ' ');
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}
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// Fork and execute a command specified in a subprocess.
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// If there is a runtime (Runtime::Current != nullptr) then the subprocess is created with the
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// same environment that existed when the runtime was started.
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// Returns the process id of the child process on success, -1 otherwise.
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pid_t ExecWithoutWait(const std::vector<std::string>& arg_vector, std::string* error_msg) {
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// Convert the args to char pointers.
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const char* program = arg_vector[0].c_str();
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std::vector<char*> args;
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args.reserve(arg_vector.size() + 1);
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for (const auto& arg : arg_vector) {
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args.push_back(const_cast<char*>(arg.c_str()));
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}
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args.push_back(nullptr);
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// fork and exec
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pid_t pid = fork();
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if (pid == 0) {
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// no allocation allowed between fork and exec
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// change process groups, so we don't get reaped by ProcessManager
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setpgid(0, 0);
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// (b/30160149): protect subprocesses from modifications to LD_LIBRARY_PATH, etc.
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// Use the snapshot of the environment from the time the runtime was created.
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char** envp = (Runtime::Current() == nullptr) ? nullptr : Runtime::Current()->GetEnvSnapshot();
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if (envp == nullptr) {
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execv(program, &args[0]);
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} else {
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execve(program, &args[0], envp);
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}
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// This should be regarded as a crash rather than a normal return.
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PLOG(FATAL) << "Failed to execute (" << ToCommandLine(arg_vector) << ")";
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UNREACHABLE();
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} else if (pid == -1) {
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*error_msg = StringPrintf("Failed to execute (%s) because fork failed: %s",
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ToCommandLine(arg_vector).c_str(),
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strerror(errno));
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return -1;
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} else {
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return pid;
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}
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}
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ExecResult WaitChild(pid_t pid,
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const std::vector<std::string>& arg_vector,
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bool no_wait,
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std::string* error_msg) {
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siginfo_t info;
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// WNOWAIT leaves the child in a waitable state. The call is still blocking.
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int options = WEXITED | (no_wait ? WNOWAIT : 0);
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if (TEMP_FAILURE_RETRY(waitid(P_PID, pid, &info, options)) != 0) {
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*error_msg = StringPrintf("waitid failed for (%s) pid %d: %s",
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ToCommandLine(arg_vector).c_str(),
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pid,
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strerror(errno));
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return {.status = ExecResult::kUnknown};
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}
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if (info.si_pid != pid) {
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*error_msg = StringPrintf("waitid failed for (%s): wanted pid %d, got %d: %s",
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ToCommandLine(arg_vector).c_str(),
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pid,
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info.si_pid,
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strerror(errno));
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return {.status = ExecResult::kUnknown};
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}
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if (info.si_code != CLD_EXITED) {
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*error_msg =
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StringPrintf("Failed to execute (%s) because the child process is terminated by signal %d",
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ToCommandLine(arg_vector).c_str(),
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info.si_status);
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return {.status = ExecResult::kSignaled, .signal = info.si_status};
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}
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return {.status = ExecResult::kExited, .exit_code = info.si_status};
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}
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// A fallback implementation of `WaitChildWithTimeout` that creates a thread to wait instead of
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// relying on `pidfd_open`.
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ExecResult WaitChildWithTimeoutFallback(pid_t pid,
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const std::vector<std::string>& arg_vector,
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int timeout_ms,
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std::string* error_msg) {
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bool child_exited = false;
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bool timed_out = false;
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std::condition_variable cv;
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std::mutex m;
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std::thread wait_thread([&]() {
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std::unique_lock<std::mutex> lock(m);
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if (!cv.wait_for(lock, std::chrono::milliseconds(timeout_ms), [&] { return child_exited; })) {
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timed_out = true;
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kill(pid, SIGKILL);
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}
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});
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ExecResult result = WaitChild(pid, arg_vector, /*no_wait=*/true, error_msg);
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{
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std::unique_lock<std::mutex> lock(m);
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child_exited = true;
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}
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cv.notify_all();
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wait_thread.join();
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// The timeout error should have a higher priority than any other error.
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if (timed_out) {
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*error_msg =
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StringPrintf("Failed to execute (%s) because the child process timed out after %dms",
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ToCommandLine(arg_vector).c_str(),
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timeout_ms);
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return ExecResult{.status = ExecResult::kTimedOut};
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}
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return result;
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}
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// Waits for the child process to finish and leaves the child in a waitable state.
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ExecResult WaitChildWithTimeout(pid_t pid,
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unique_fd pidfd,
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const std::vector<std::string>& arg_vector,
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int timeout_ms,
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std::string* error_msg) {
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auto cleanup = android::base::make_scope_guard([&]() {
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kill(pid, SIGKILL);
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std::string ignored_error_msg;
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WaitChild(pid, arg_vector, /*no_wait=*/true, &ignored_error_msg);
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});
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struct pollfd pfd;
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pfd.fd = pidfd.get();
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pfd.events = POLLIN;
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int poll_ret = TEMP_FAILURE_RETRY(poll(&pfd, /*nfds=*/1, timeout_ms));
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pidfd.reset();
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if (poll_ret < 0) {
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*error_msg = StringPrintf("poll failed for pid %d: %s", pid, strerror(errno));
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return {.status = ExecResult::kUnknown};
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}
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if (poll_ret == 0) {
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*error_msg =
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StringPrintf("Failed to execute (%s) because the child process timed out after %dms",
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ToCommandLine(arg_vector).c_str(),
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timeout_ms);
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return {.status = ExecResult::kTimedOut};
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}
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cleanup.Disable();
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return WaitChild(pid, arg_vector, /*no_wait=*/true, error_msg);
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}
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bool ParseProcStat(const std::string& stat_content,
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int64_t uptime_ms,
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int64_t ticks_per_sec,
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/*out*/ ProcessStat* stat) {
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size_t pos = stat_content.rfind(") ");
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if (pos == std::string::npos) {
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return false;
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}
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std::vector<std::string> stat_fields;
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// Skip the first two fields. The second field is the parenthesized process filename, which can
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// contain anything, including spaces.
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Split(std::string_view(stat_content).substr(pos + 2), ' ', &stat_fields);
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constexpr int kSkippedFields = 2;
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int64_t utime, stime, cutime, cstime, starttime;
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if (stat_fields.size() < 22 - kSkippedFields ||
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!ParseInt(stat_fields[13 - kSkippedFields], &utime) ||
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!ParseInt(stat_fields[14 - kSkippedFields], &stime) ||
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!ParseInt(stat_fields[15 - kSkippedFields], &cutime) ||
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!ParseInt(stat_fields[16 - kSkippedFields], &cstime) ||
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!ParseInt(stat_fields[21 - kSkippedFields], &starttime)) {
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return false;
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}
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stat->cpu_time_ms = (utime + stime + cutime + cstime) * 1000 / ticks_per_sec;
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stat->wall_time_ms = uptime_ms - starttime * 1000 / ticks_per_sec;
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return true;
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}
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} // namespace
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int ExecUtils::ExecAndReturnCode(const std::vector<std::string>& arg_vector,
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std::string* error_msg) const {
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return ExecAndReturnResult(arg_vector, /*timeout_sec=*/-1, error_msg).exit_code;
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}
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ExecResult ExecUtils::ExecAndReturnResult(const std::vector<std::string>& arg_vector,
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int timeout_sec,
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std::string* error_msg) const {
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return ExecAndReturnResult(arg_vector, timeout_sec, ExecCallbacks(), /*stat=*/nullptr, error_msg);
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}
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ExecResult ExecUtils::ExecAndReturnResult(const std::vector<std::string>& arg_vector,
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int timeout_sec,
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const ExecCallbacks& callbacks,
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/*out*/ ProcessStat* stat,
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/*out*/ std::string* error_msg) const {
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if (timeout_sec > INT_MAX / 1000) {
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*error_msg = "Timeout too large";
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return {.status = ExecResult::kStartFailed};
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}
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// Start subprocess.
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pid_t pid = ExecWithoutWait(arg_vector, error_msg);
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if (pid == -1) {
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return {.status = ExecResult::kStartFailed};
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}
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callbacks.on_start(pid);
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// Wait for subprocess to finish.
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ExecResult result;
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if (timeout_sec >= 0) {
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unique_fd pidfd = PidfdOpen(pid);
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if (pidfd.get() >= 0) {
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result =
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WaitChildWithTimeout(pid, std::move(pidfd), arg_vector, timeout_sec * 1000, error_msg);
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} else {
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LOG(DEBUG) << StringPrintf(
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"pidfd_open failed for pid %d: %s, falling back", pid, strerror(errno));
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result = WaitChildWithTimeoutFallback(pid, arg_vector, timeout_sec * 1000, error_msg);
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}
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} else {
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result = WaitChild(pid, arg_vector, /*no_wait=*/true, error_msg);
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}
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if (stat != nullptr) {
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std::string local_error_msg;
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if (!GetStat(pid, stat, &local_error_msg)) {
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LOG(ERROR) << "Failed to get process stat: " << local_error_msg;
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}
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}
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callbacks.on_end(pid);
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std::string local_error_msg;
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// TODO(jiakaiz): Use better logic to detect waitid failure.
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if (WaitChild(pid, arg_vector, /*no_wait=*/false, &local_error_msg).status ==
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ExecResult::kUnknown) {
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LOG(ERROR) << "Failed to clean up child process '" << arg_vector[0] << "': " << local_error_msg;
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}
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return result;
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}
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bool ExecUtils::Exec(const std::vector<std::string>& arg_vector, std::string* error_msg) const {
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int status = ExecAndReturnCode(arg_vector, error_msg);
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if (status < 0) {
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// Internal error. The error message is already set.
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return false;
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}
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if (status > 0) {
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*error_msg =
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StringPrintf("Failed to execute (%s) because the child process returns non-zero exit code",
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ToCommandLine(arg_vector).c_str());
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return false;
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}
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return true;
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}
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unique_fd ExecUtils::PidfdOpen(pid_t pid) const {
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#ifdef __BIONIC__
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return unique_fd(pidfd_open(pid, /*flags=*/0));
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#else
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// There is no glibc wrapper for pidfd_open.
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#ifndef SYS_pidfd_open
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constexpr int SYS_pidfd_open = 434;
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#endif
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return unique_fd(syscall(SYS_pidfd_open, pid, /*flags=*/0));
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#endif
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}
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std::string ExecUtils::GetProcStat(pid_t pid) const {
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std::string stat_content;
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if (!ReadFileToString(StringPrintf("/proc/%d/stat", pid), &stat_content)) {
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stat_content = "";
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}
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return stat_content;
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}
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int64_t ExecUtils::GetUptimeMs() const {
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timespec t;
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clock_gettime(CLOCK_MONOTONIC, &t);
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return t.tv_sec * 1000 + t.tv_nsec / 1000000;
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}
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int64_t ExecUtils::GetTicksPerSec() const { return sysconf(_SC_CLK_TCK); }
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bool ExecUtils::GetStat(pid_t pid,
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/*out*/ ProcessStat* stat,
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/*out*/ std::string* error_msg) const {
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int64_t uptime_ms = GetUptimeMs();
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std::string stat_content = GetProcStat(pid);
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if (stat_content.empty()) {
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*error_msg = StringPrintf("Failed to read /proc/%d/stat: %s", pid, strerror(errno));
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return false;
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}
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int64_t ticks_per_sec = GetTicksPerSec();
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if (!ParseProcStat(stat_content, uptime_ms, ticks_per_sec, stat)) {
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*error_msg = StringPrintf("Failed to parse /proc/%d/stat '%s'", pid, stat_content.c_str());
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return false;
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}
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return true;
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}
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} // namespace art
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