5140f3ad47
During selinux transition, daemon will notify `init` process by writing to file "/metadata/ota/daemon-alive-indicator". Init will wait until daemon notifies it. Furthermore, daemon will only write to that file once all threads are spin up and attached to dm-user misc devices. Once snapshot-merge is completed, this file will be removed. Additionally, during boot, init will also ensure that there are no stale files and will try to remove just before selinux transition. Bug: 262407519 Test: OTA on Pixel - Verify new file exits and init waits until daemon is fully up. Change-Id: Iabef58ad282d80a7afa493e9df9468ae41a13e44 Signed-off-by: Akilesh Kailash <akailash@google.com>
448 lines
14 KiB
C++
448 lines
14 KiB
C++
/*
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* Copyright (C) 2020 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 "snapuserd_transition.h"
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#include <sys/mman.h>
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#include <sys/socket.h>
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#include <sys/syscall.h>
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#include <sys/xattr.h>
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#include <unistd.h>
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#include <filesystem>
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#include <string>
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#include <string_view>
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#include <android-base/file.h>
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#include <android-base/logging.h>
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#include <android-base/parseint.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 <cutils/sockets.h>
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#include <fs_avb/fs_avb.h>
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#include <libsnapshot/snapshot.h>
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#include <private/android_filesystem_config.h>
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#include <procinfo/process_map.h>
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#include <selinux/android.h>
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#include <snapuserd/snapuserd_client.h>
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#include "block_dev_initializer.h"
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#include "lmkd_service.h"
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#include "service_utils.h"
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#include "util.h"
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namespace android {
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namespace init {
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using namespace std::string_literals;
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using android::base::unique_fd;
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using android::snapshot::SnapshotManager;
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using android::snapshot::SnapuserdClient;
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static constexpr char kSnapuserdPath[] = "/system/bin/snapuserd";
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static constexpr char kSnapuserdFirstStagePidVar[] = "FIRST_STAGE_SNAPUSERD_PID";
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static constexpr char kSnapuserdFirstStageFdVar[] = "FIRST_STAGE_SNAPUSERD_FD";
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static constexpr char kSnapuserdFirstStageInfoVar[] = "FIRST_STAGE_SNAPUSERD_INFO";
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static constexpr char kSnapuserdLabel[] = "u:object_r:snapuserd_exec:s0";
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static constexpr char kSnapuserdSocketLabel[] = "u:object_r:snapuserd_socket:s0";
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void LaunchFirstStageSnapuserd(SnapshotDriver driver) {
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SocketDescriptor socket_desc;
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socket_desc.name = android::snapshot::kSnapuserdSocket;
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socket_desc.type = SOCK_STREAM;
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socket_desc.perm = 0660;
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socket_desc.uid = AID_SYSTEM;
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socket_desc.gid = AID_SYSTEM;
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// We specify a label here even though it technically is not needed. During
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// first_stage_mount there is no sepolicy loaded. Once sepolicy is loaded,
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// we bypass the socket entirely.
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auto socket = socket_desc.Create(kSnapuserdSocketLabel);
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if (!socket.ok()) {
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LOG(FATAL) << "Could not create snapuserd socket: " << socket.error();
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}
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pid_t pid = fork();
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if (pid < 0) {
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PLOG(FATAL) << "Cannot launch snapuserd; fork failed";
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}
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if (pid == 0) {
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socket->Publish();
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if (driver == SnapshotDriver::DM_USER) {
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char arg0[] = "/system/bin/snapuserd";
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char arg1[] = "-user_snapshot";
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char* const argv[] = {arg0, arg1, nullptr};
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if (execv(arg0, argv) < 0) {
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PLOG(FATAL) << "Cannot launch snapuserd; execv failed";
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}
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_exit(127);
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} else {
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char arg0[] = "/system/bin/snapuserd";
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char* const argv[] = {arg0, nullptr};
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if (execv(arg0, argv) < 0) {
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PLOG(FATAL) << "Cannot launch snapuserd; execv failed";
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}
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_exit(127);
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}
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}
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auto client = SnapuserdClient::Connect(android::snapshot::kSnapuserdSocket, 10s);
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if (!client) {
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LOG(FATAL) << "Could not connect to first-stage snapuserd";
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}
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if (client->SupportsSecondStageSocketHandoff()) {
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setenv(kSnapuserdFirstStageInfoVar, "socket", 1);
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}
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setenv(kSnapuserdFirstStagePidVar, std::to_string(pid).c_str(), 1);
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if (!client->RemoveTransitionedDaemonIndicator()) {
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LOG(ERROR) << "RemoveTransitionedDaemonIndicator failed";
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}
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LOG(INFO) << "Relaunched snapuserd with pid: " << pid;
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}
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std::optional<pid_t> GetSnapuserdFirstStagePid() {
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const char* pid_str = getenv(kSnapuserdFirstStagePidVar);
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if (!pid_str) {
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return {};
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}
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int pid = 0;
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if (!android::base::ParseInt(pid_str, &pid)) {
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LOG(FATAL) << "Could not parse pid in environment, " << kSnapuserdFirstStagePidVar << "="
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<< pid_str;
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}
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return {pid};
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}
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static void RelabelLink(const std::string& link) {
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selinux_android_restorecon(link.c_str(), 0);
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std::string path;
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if (android::base::Readlink(link, &path)) {
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selinux_android_restorecon(path.c_str(), 0);
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}
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}
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static void RelabelDeviceMapper() {
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selinux_android_restorecon("/dev/device-mapper", 0);
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std::error_code ec;
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for (auto& iter : std::filesystem::directory_iterator("/dev/block", ec)) {
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const auto& path = iter.path();
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if (android::base::StartsWith(path.string(), "/dev/block/dm-")) {
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selinux_android_restorecon(path.string().c_str(), 0);
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}
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}
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}
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static std::optional<int> GetRamdiskSnapuserdFd() {
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const char* fd_str = getenv(kSnapuserdFirstStageFdVar);
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if (!fd_str) {
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return {};
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}
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int fd;
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if (!android::base::ParseInt(fd_str, &fd)) {
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LOG(FATAL) << "Could not parse fd in environment, " << kSnapuserdFirstStageFdVar << "="
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<< fd_str;
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}
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return {fd};
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}
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void RestoreconRamdiskSnapuserd(int fd) {
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if (fsetxattr(fd, XATTR_NAME_SELINUX, kSnapuserdLabel, strlen(kSnapuserdLabel) + 1, 0) < 0) {
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PLOG(FATAL) << "fsetxattr snapuserd failed";
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}
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}
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SnapuserdSelinuxHelper::SnapuserdSelinuxHelper(std::unique_ptr<SnapshotManager>&& sm, pid_t old_pid)
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: sm_(std::move(sm)), old_pid_(old_pid) {
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// Only dm-user device names change during transitions, so the other
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// devices are expected to be present.
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sm_->SetUeventRegenCallback([this](const std::string& device) -> bool {
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if (android::base::StartsWith(device, "/dev/dm-user/")) {
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return block_dev_init_.InitDmUser(android::base::Basename(device));
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}
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return true;
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});
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}
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static void LockAllSystemPages() {
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bool ok = true;
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auto callback = [&](const android::procinfo::MapInfo& map) -> void {
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if (!ok || android::base::StartsWith(map.name, "/dev/") ||
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!android::base::StartsWith(map.name, "/")) {
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return;
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}
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auto start = reinterpret_cast<const void*>(map.start);
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auto len = map.end - map.start;
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if (!len) {
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return;
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}
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if (mlock(start, len) < 0) {
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LOG(ERROR) << "mlock failed, " << start << " for " << len << " bytes.";
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ok = false;
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}
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};
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if (!android::procinfo::ReadProcessMaps(getpid(), callback) || !ok) {
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LOG(FATAL) << "Could not process /proc/" << getpid() << "/maps file for init, "
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<< "falling back to mlockall().";
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if (mlockall(MCL_CURRENT) < 0) {
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LOG(FATAL) << "mlockall failed";
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}
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}
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}
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void SnapuserdSelinuxHelper::StartTransition() {
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LOG(INFO) << "Starting SELinux transition of snapuserd";
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// The restorecon path reads from /system etc, so make sure any reads have
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// been cached before proceeding.
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auto handle = selinux_android_file_context_handle();
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if (!handle) {
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LOG(FATAL) << "Could not create SELinux file context handle";
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}
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selinux_android_set_sehandle(handle);
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// We cannot access /system after the transition, so make sure init is
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// pinned in memory.
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LockAllSystemPages();
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argv_.emplace_back("snapuserd");
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argv_.emplace_back("-no_socket");
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if (!sm_->PrepareSnapuserdArgsForSelinux(&argv_)) {
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LOG(FATAL) << "Could not perform selinux transition";
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}
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}
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void SnapuserdSelinuxHelper::FinishTransition() {
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RelabelLink("/dev/block/by-name/super");
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RelabelDeviceMapper();
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selinux_android_restorecon("/dev/null", 0);
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selinux_android_restorecon("/dev/urandom", 0);
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selinux_android_restorecon("/dev/kmsg", 0);
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selinux_android_restorecon("/dev/dm-user", SELINUX_ANDROID_RESTORECON_RECURSE);
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RelaunchFirstStageSnapuserd();
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if (munlockall() < 0) {
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PLOG(ERROR) << "munlockall failed";
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}
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}
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/*
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* Before starting init second stage, we will wait
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* for snapuserd daemon to be up and running; bionic libc
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* may read /system/etc/selinux/plat_property_contexts file
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* before invoking main() function. This will happen if
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* init initializes property during second stage. Any access
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* to /system without snapuserd daemon will lead to a deadlock.
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*
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* Thus, we do a simple probe by reading system partition. This
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* read will eventually be serviced by daemon confirming that
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* daemon is up and running. Furthermore, we are still in the kernel
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* domain and sepolicy has not been enforced yet. Thus, access
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* to these device mapper block devices are ok even though
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* we may see audit logs.
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*/
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bool SnapuserdSelinuxHelper::TestSnapuserdIsReady() {
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// Wait for the daemon to be fully up. Daemon will write to path
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// /metadata/ota/daemon-alive-indicator only when all the threads
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// are ready and attached to dm-user.
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//
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// This check will fail for GRF devices with vendor on Android S.
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// snapuserd binary from Android S won't be able to communicate
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// and hence, we will fallback and issue I/O to verify
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// the presence of daemon.
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auto client = std::make_unique<SnapuserdClient>();
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if (!client->IsTransitionedDaemonReady()) {
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LOG(ERROR) << "IsTransitionedDaemonReady failed";
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}
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std::string dev = "/dev/block/mapper/system"s + fs_mgr_get_slot_suffix();
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android::base::unique_fd fd(open(dev.c_str(), O_RDONLY | O_DIRECT));
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if (fd < 0) {
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PLOG(ERROR) << "open " << dev << " failed";
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return false;
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}
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void* addr;
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ssize_t page_size = getpagesize();
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if (posix_memalign(&addr, page_size, page_size) < 0) {
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PLOG(ERROR) << "posix_memalign with page size " << page_size;
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return false;
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}
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std::unique_ptr<void, decltype(&::free)> buffer(addr, ::free);
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int iter = 0;
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while (iter < 10) {
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ssize_t n = TEMP_FAILURE_RETRY(pread(fd.get(), buffer.get(), page_size, 0));
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if (n < 0) {
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// Wait for sometime before retry
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std::this_thread::sleep_for(100ms);
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} else if (n == page_size) {
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return true;
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} else {
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LOG(ERROR) << "pread returned: " << n << " from: " << dev << " expected: " << page_size;
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}
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iter += 1;
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}
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return false;
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}
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void SnapuserdSelinuxHelper::RelaunchFirstStageSnapuserd() {
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if (!sm_->DetachFirstStageSnapuserdForSelinux()) {
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LOG(FATAL) << "Could not perform selinux transition";
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}
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KillFirstStageSnapuserd(old_pid_);
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auto fd = GetRamdiskSnapuserdFd();
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if (!fd) {
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LOG(FATAL) << "Environment variable " << kSnapuserdFirstStageFdVar << " was not set!";
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}
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unsetenv(kSnapuserdFirstStageFdVar);
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RestoreconRamdiskSnapuserd(fd.value());
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pid_t pid = fork();
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if (pid < 0) {
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PLOG(FATAL) << "Fork to relaunch snapuserd failed";
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}
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if (pid > 0) {
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// We don't need the descriptor anymore, and it should be closed to
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// avoid leaking into subprocesses.
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close(fd.value());
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setenv(kSnapuserdFirstStagePidVar, std::to_string(pid).c_str(), 1);
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LOG(INFO) << "Relaunched snapuserd with pid: " << pid;
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// Since daemon is not started as a service, we have
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// to explicitly set the OOM score to default which is unkillable
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std::string oom_str = std::to_string(DEFAULT_OOM_SCORE_ADJUST);
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std::string oom_file = android::base::StringPrintf("/proc/%d/oom_score_adj", pid);
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if (!android::base::WriteStringToFile(oom_str, oom_file)) {
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PLOG(ERROR) << "couldn't write oom_score_adj to snapuserd daemon with pid: " << pid;
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}
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if (!TestSnapuserdIsReady()) {
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PLOG(FATAL) << "snapuserd daemon failed to launch";
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} else {
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LOG(INFO) << "snapuserd daemon is up and running";
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}
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return;
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}
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// Make sure the descriptor is gone after we exec.
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if (fcntl(fd.value(), F_SETFD, FD_CLOEXEC) < 0) {
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PLOG(FATAL) << "fcntl FD_CLOEXEC failed for snapuserd fd";
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}
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std::vector<char*> argv;
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for (auto& arg : argv_) {
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argv.emplace_back(arg.data());
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}
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argv.emplace_back(nullptr);
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int rv = syscall(SYS_execveat, fd.value(), "", reinterpret_cast<char* const*>(argv.data()),
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nullptr, AT_EMPTY_PATH);
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if (rv < 0) {
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PLOG(FATAL) << "Failed to execveat() snapuserd";
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}
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}
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std::unique_ptr<SnapuserdSelinuxHelper> SnapuserdSelinuxHelper::CreateIfNeeded() {
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if (IsRecoveryMode()) {
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return nullptr;
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}
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auto old_pid = GetSnapuserdFirstStagePid();
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if (!old_pid) {
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return nullptr;
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}
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auto sm = SnapshotManager::NewForFirstStageMount();
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if (!sm) {
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LOG(FATAL) << "Unable to create SnapshotManager";
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}
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return std::make_unique<SnapuserdSelinuxHelper>(std::move(sm), old_pid.value());
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}
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void KillFirstStageSnapuserd(pid_t pid) {
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if (kill(pid, SIGTERM) < 0 && errno != ESRCH) {
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LOG(ERROR) << "Kill snapuserd pid failed: " << pid;
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} else {
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LOG(INFO) << "Sent SIGTERM to snapuserd process " << pid;
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}
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}
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void CleanupSnapuserdSocket() {
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auto socket_path = ANDROID_SOCKET_DIR "/"s + android::snapshot::kSnapuserdSocket;
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if (access(socket_path.c_str(), F_OK) != 0) {
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return;
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}
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// Tell the daemon to stop accepting connections and to gracefully exit
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// once all outstanding handlers have terminated.
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if (auto client = SnapuserdClient::Connect(android::snapshot::kSnapuserdSocket, 3s)) {
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client->DetachSnapuserd();
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}
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// Unlink the socket so we can create it again in second-stage.
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if (unlink(socket_path.c_str()) < 0) {
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PLOG(FATAL) << "unlink " << socket_path << " failed";
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}
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}
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void SaveRamdiskPathToSnapuserd() {
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int fd = open(kSnapuserdPath, O_PATH);
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if (fd < 0) {
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PLOG(FATAL) << "Unable to open snapuserd: " << kSnapuserdPath;
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}
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auto value = std::to_string(fd);
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if (setenv(kSnapuserdFirstStageFdVar, value.c_str(), 1) < 0) {
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PLOG(FATAL) << "setenv failed: " << kSnapuserdFirstStageFdVar << "=" << value;
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}
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}
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bool IsFirstStageSnapuserdRunning() {
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return GetSnapuserdFirstStagePid().has_value();
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}
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std::vector<std::string> GetSnapuserdFirstStageInfo() {
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const char* pid_str = getenv(kSnapuserdFirstStageInfoVar);
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if (!pid_str) {
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return {};
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}
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return android::base::Split(pid_str, ",");
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}
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} // namespace init
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} // namespace android
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