444 lines
15 KiB
C++
444 lines
15 KiB
C++
/*
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* Copyright (C) 2015 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 <libboot_control/libboot_control.h>
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#include <endian.h>
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#include <errno.h>
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#include <fcntl.h>
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#include <string.h>
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#include <string>
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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/properties.h>
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#include <android-base/stringprintf.h>
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#include <android-base/unique_fd.h>
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#include <bootloader_message/bootloader_message.h>
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#include "private/boot_control_definition.h"
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namespace android {
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namespace bootable {
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using ::android::hardware::boot::V1_1::MergeStatus;
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// The number of boot attempts that should be made from a new slot before
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// rolling back to the previous slot.
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constexpr unsigned int kDefaultBootAttempts = 7;
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static_assert(kDefaultBootAttempts < 8, "tries_remaining field only has 3 bits");
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constexpr unsigned int kMaxNumSlots =
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sizeof(bootloader_control::slot_info) / sizeof(bootloader_control::slot_info[0]);
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constexpr const char* kSlotSuffixes[kMaxNumSlots] = { "_a", "_b", "_c", "_d" };
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constexpr off_t kBootloaderControlOffset = offsetof(bootloader_message_ab, slot_suffix);
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static uint32_t CRC32(const uint8_t* buf, size_t size) {
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static uint32_t crc_table[256];
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// Compute the CRC-32 table only once.
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if (!crc_table[1]) {
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for (uint32_t i = 0; i < 256; ++i) {
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uint32_t crc = i;
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for (uint32_t j = 0; j < 8; ++j) {
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uint32_t mask = -(crc & 1);
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crc = (crc >> 1) ^ (0xEDB88320 & mask);
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}
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crc_table[i] = crc;
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}
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}
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uint32_t ret = -1;
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for (size_t i = 0; i < size; ++i) {
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ret = (ret >> 8) ^ crc_table[(ret ^ buf[i]) & 0xFF];
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}
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return ~ret;
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}
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// Return the little-endian representation of the CRC-32 of the first fields
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// in |boot_ctrl| up to the crc32_le field.
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uint32_t BootloaderControlLECRC(const bootloader_control* boot_ctrl) {
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return htole32(
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CRC32(reinterpret_cast<const uint8_t*>(boot_ctrl), offsetof(bootloader_control, crc32_le)));
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}
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bool LoadBootloaderControl(const std::string& misc_device, bootloader_control* buffer) {
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android::base::unique_fd fd(open(misc_device.c_str(), O_RDONLY));
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if (fd.get() == -1) {
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PLOG(ERROR) << "failed to open " << misc_device;
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return false;
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}
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if (lseek(fd, kBootloaderControlOffset, SEEK_SET) != kBootloaderControlOffset) {
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PLOG(ERROR) << "failed to lseek " << misc_device;
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return false;
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}
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if (!android::base::ReadFully(fd.get(), buffer, sizeof(bootloader_control))) {
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PLOG(ERROR) << "failed to read " << misc_device;
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return false;
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}
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return true;
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}
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bool UpdateAndSaveBootloaderControl(const std::string& misc_device, bootloader_control* buffer) {
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buffer->crc32_le = BootloaderControlLECRC(buffer);
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android::base::unique_fd fd(open(misc_device.c_str(), O_WRONLY | O_SYNC));
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if (fd.get() == -1) {
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PLOG(ERROR) << "failed to open " << misc_device;
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return false;
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}
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if (lseek(fd.get(), kBootloaderControlOffset, SEEK_SET) != kBootloaderControlOffset) {
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PLOG(ERROR) << "failed to lseek " << misc_device;
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return false;
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}
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if (!android::base::WriteFully(fd.get(), buffer, sizeof(bootloader_control))) {
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PLOG(ERROR) << "failed to write " << misc_device;
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return false;
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}
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return true;
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}
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void InitDefaultBootloaderControl(BootControl* control, bootloader_control* boot_ctrl) {
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memset(boot_ctrl, 0, sizeof(*boot_ctrl));
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unsigned int current_slot = control->GetCurrentSlot();
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if (current_slot < kMaxNumSlots) {
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strlcpy(boot_ctrl->slot_suffix, kSlotSuffixes[current_slot], sizeof(boot_ctrl->slot_suffix));
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}
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boot_ctrl->magic = BOOT_CTRL_MAGIC;
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boot_ctrl->version = BOOT_CTRL_VERSION;
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// Figure out the number of slots by checking if the partitions exist,
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// otherwise assume the maximum supported by the header.
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boot_ctrl->nb_slot = kMaxNumSlots;
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std::string base_path = control->misc_device();
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size_t last_path_sep = base_path.rfind('/');
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if (last_path_sep != std::string::npos) {
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// We test the existence of the "boot" partition on each possible slot,
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// which is a partition required by Android Bootloader Requirements.
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base_path = base_path.substr(0, last_path_sep + 1) + "boot";
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int last_existing_slot = -1;
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int first_missing_slot = -1;
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for (unsigned int slot = 0; slot < kMaxNumSlots; ++slot) {
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std::string partition_path = base_path + kSlotSuffixes[slot];
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struct stat part_stat;
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int err = stat(partition_path.c_str(), &part_stat);
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if (!err) {
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last_existing_slot = slot;
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LOG(INFO) << "Found slot: " << kSlotSuffixes[slot];
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} else if (err < 0 && errno == ENOENT && first_missing_slot == -1) {
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first_missing_slot = slot;
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}
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}
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// We only declare that we found the actual number of slots if we found all
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// the boot partitions up to the number of slots, and no boot partition
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// after that. Not finding any of the boot partitions implies a problem so
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// we just leave the number of slots in the maximum value.
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if ((last_existing_slot != -1 && last_existing_slot + 1 == first_missing_slot) ||
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(first_missing_slot == -1 && last_existing_slot + 1 == kMaxNumSlots)) {
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boot_ctrl->nb_slot = last_existing_slot + 1;
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LOG(INFO) << "Found a system with " << last_existing_slot + 1 << " slots.";
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}
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}
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for (unsigned int slot = 0; slot < kMaxNumSlots; ++slot) {
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slot_metadata entry = {};
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if (slot < boot_ctrl->nb_slot) {
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entry.priority = 7;
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entry.tries_remaining = kDefaultBootAttempts;
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entry.successful_boot = 0;
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} else {
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entry.priority = 0; // Unbootable
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}
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// When the boot_control stored on disk is invalid, we assume that the
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// current slot is successful. The bootloader should repair this situation
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// before booting and write a valid boot_control slot, so if we reach this
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// stage it means that the misc partition was corrupted since boot.
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if (current_slot == slot) {
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entry.successful_boot = 1;
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}
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boot_ctrl->slot_info[slot] = entry;
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}
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boot_ctrl->recovery_tries_remaining = 0;
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boot_ctrl->crc32_le = BootloaderControlLECRC(boot_ctrl);
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}
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// Return the index of the slot suffix passed or -1 if not a valid slot suffix.
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int SlotSuffixToIndex(const char* suffix) {
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for (unsigned int slot = 0; slot < kMaxNumSlots; ++slot) {
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if (!strcmp(kSlotSuffixes[slot], suffix)) return slot;
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}
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return -1;
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}
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// Initialize the boot_control_private struct with the information from
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// the bootloader_message buffer stored in |boot_ctrl|. Returns whether the
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// initialization succeeded.
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bool BootControl::Init() {
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if (initialized_) return true;
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// Initialize the current_slot from the read-only property. If the property
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// was not set (from either the command line or the device tree), we can later
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// initialize it from the bootloader_control struct.
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std::string suffix_prop = android::base::GetProperty("ro.boot.slot_suffix", "");
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if (suffix_prop.empty()) {
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LOG(ERROR) << "Slot suffix property is not set";
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return false;
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}
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current_slot_ = SlotSuffixToIndex(suffix_prop.c_str());
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std::string err;
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std::string device = get_bootloader_message_blk_device(&err);
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if (device.empty()) {
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LOG(ERROR) << "Could not find bootloader message block device: " << err;
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return false;
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}
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bootloader_control boot_ctrl;
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if (!LoadBootloaderControl(device.c_str(), &boot_ctrl)) {
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LOG(ERROR) << "Failed to load bootloader control block";
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return false;
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}
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// Note that since there isn't a module unload function this memory is leaked.
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// We use `device` below sometimes, so it's not moved out of here.
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misc_device_ = device;
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initialized_ = true;
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// Validate the loaded data, otherwise we will destroy it and re-initialize it
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// with the current information.
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uint32_t computed_crc32 = BootloaderControlLECRC(&boot_ctrl);
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if (boot_ctrl.crc32_le != computed_crc32) {
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LOG(WARNING) << "Invalid boot control found, expected CRC-32 0x" << std::hex << computed_crc32
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<< " but found 0x" << std::hex << boot_ctrl.crc32_le << ". Re-initializing.";
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InitDefaultBootloaderControl(this, &boot_ctrl);
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UpdateAndSaveBootloaderControl(device.c_str(), &boot_ctrl);
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}
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if (!InitMiscVirtualAbMessageIfNeeded()) {
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return false;
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}
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num_slots_ = boot_ctrl.nb_slot;
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return true;
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}
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unsigned int BootControl::GetNumberSlots() {
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return num_slots_;
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}
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unsigned int BootControl::GetCurrentSlot() {
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return current_slot_;
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}
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bool BootControl::MarkBootSuccessful() {
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bootloader_control bootctrl;
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if (!LoadBootloaderControl(misc_device_, &bootctrl)) return false;
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bootctrl.slot_info[current_slot_].successful_boot = 1;
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// tries_remaining == 0 means that the slot is not bootable anymore, make
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// sure we mark the current slot as bootable if it succeeds in the last
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// attempt.
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bootctrl.slot_info[current_slot_].tries_remaining = 1;
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return UpdateAndSaveBootloaderControl(misc_device_, &bootctrl);
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}
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unsigned int BootControl::GetActiveBootSlot() {
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bootloader_control bootctrl;
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if (!LoadBootloaderControl(misc_device_, &bootctrl)) return false;
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// Use the current slot by default.
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unsigned int active_boot_slot = current_slot_;
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unsigned int max_priority = bootctrl.slot_info[current_slot_].priority;
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// Find the slot with the highest priority.
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for (unsigned int i = 0; i < num_slots_; ++i) {
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if (bootctrl.slot_info[i].priority > max_priority) {
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max_priority = bootctrl.slot_info[i].priority;
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active_boot_slot = i;
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}
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}
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return active_boot_slot;
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}
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bool BootControl::SetActiveBootSlot(unsigned int slot) {
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if (slot >= kMaxNumSlots || slot >= num_slots_) {
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// Invalid slot number.
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return false;
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}
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bootloader_control bootctrl;
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if (!LoadBootloaderControl(misc_device_, &bootctrl)) return false;
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// Set every other slot with a lower priority than the new "active" slot.
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const unsigned int kActivePriority = 15;
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const unsigned int kActiveTries = 6;
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for (unsigned int i = 0; i < num_slots_; ++i) {
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if (i != slot) {
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if (bootctrl.slot_info[i].priority >= kActivePriority)
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bootctrl.slot_info[i].priority = kActivePriority - 1;
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}
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}
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// Note that setting a slot as active doesn't change the successful bit.
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// The successful bit will only be changed by setSlotAsUnbootable().
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bootctrl.slot_info[slot].priority = kActivePriority;
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bootctrl.slot_info[slot].tries_remaining = kActiveTries;
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// Setting the current slot as active is a way to revert the operation that
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// set *another* slot as active at the end of an updater. This is commonly
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// used to cancel the pending update. We should only reset the verity_corrpted
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// bit when attempting a new slot, otherwise the verity bit on the current
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// slot would be flip.
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if (slot != current_slot_) bootctrl.slot_info[slot].verity_corrupted = 0;
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return UpdateAndSaveBootloaderControl(misc_device_, &bootctrl);
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}
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bool BootControl::SetSlotAsUnbootable(unsigned int slot) {
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if (slot >= kMaxNumSlots || slot >= num_slots_) {
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// Invalid slot number.
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return false;
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}
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bootloader_control bootctrl;
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if (!LoadBootloaderControl(misc_device_, &bootctrl)) return false;
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// The only way to mark a slot as unbootable, regardless of the priority is to
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// set the tries_remaining to 0.
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bootctrl.slot_info[slot].successful_boot = 0;
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bootctrl.slot_info[slot].tries_remaining = 0;
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return UpdateAndSaveBootloaderControl(misc_device_, &bootctrl);
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}
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bool BootControl::IsSlotBootable(unsigned int slot) {
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if (slot >= kMaxNumSlots || slot >= num_slots_) {
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// Invalid slot number.
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return false;
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}
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bootloader_control bootctrl;
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if (!LoadBootloaderControl(misc_device_, &bootctrl)) return false;
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return bootctrl.slot_info[slot].tries_remaining != 0;
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}
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bool BootControl::IsSlotMarkedSuccessful(unsigned int slot) {
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if (slot >= kMaxNumSlots || slot >= num_slots_) {
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// Invalid slot number.
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return false;
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}
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bootloader_control bootctrl;
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if (!LoadBootloaderControl(misc_device_, &bootctrl)) return false;
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return bootctrl.slot_info[slot].successful_boot && bootctrl.slot_info[slot].tries_remaining;
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}
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bool BootControl::IsValidSlot(unsigned int slot) {
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return slot < kMaxNumSlots && slot < num_slots_;
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}
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bool BootControl::SetSnapshotMergeStatus(MergeStatus status) {
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return SetMiscVirtualAbMergeStatus(current_slot_, status);
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}
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MergeStatus BootControl::GetSnapshotMergeStatus() {
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MergeStatus status;
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if (!GetMiscVirtualAbMergeStatus(current_slot_, &status)) {
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return MergeStatus::UNKNOWN;
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}
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return status;
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}
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const char* BootControl::GetSuffix(unsigned int slot) {
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if (slot >= kMaxNumSlots || slot >= num_slots_) {
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return nullptr;
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}
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return kSlotSuffixes[slot];
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}
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bool InitMiscVirtualAbMessageIfNeeded() {
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std::string err;
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misc_virtual_ab_message message;
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if (!ReadMiscVirtualAbMessage(&message, &err)) {
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LOG(ERROR) << "Could not read merge status: " << err;
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return false;
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}
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if (message.version == MISC_VIRTUAL_AB_MESSAGE_VERSION &&
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message.magic == MISC_VIRTUAL_AB_MAGIC_HEADER) {
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// Already initialized.
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return true;
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}
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message = {};
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message.version = MISC_VIRTUAL_AB_MESSAGE_VERSION;
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message.magic = MISC_VIRTUAL_AB_MAGIC_HEADER;
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if (!WriteMiscVirtualAbMessage(message, &err)) {
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LOG(ERROR) << "Could not write merge status: " << err;
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return false;
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}
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return true;
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}
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bool SetMiscVirtualAbMergeStatus(unsigned int current_slot,
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android::hardware::boot::V1_1::MergeStatus status) {
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std::string err;
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misc_virtual_ab_message message;
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if (!ReadMiscVirtualAbMessage(&message, &err)) {
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LOG(ERROR) << "Could not read merge status: " << err;
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return false;
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}
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message.merge_status = static_cast<uint8_t>(status);
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message.source_slot = current_slot;
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if (!WriteMiscVirtualAbMessage(message, &err)) {
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LOG(ERROR) << "Could not write merge status: " << err;
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return false;
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}
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return true;
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}
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bool GetMiscVirtualAbMergeStatus(unsigned int current_slot,
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android::hardware::boot::V1_1::MergeStatus* status) {
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std::string err;
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misc_virtual_ab_message message;
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if (!ReadMiscVirtualAbMessage(&message, &err)) {
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LOG(ERROR) << "Could not read merge status: " << err;
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return false;
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}
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// If the slot reverted after having created a snapshot, then the snapshot will
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// be thrown away at boot. Thus we don't count this as being in a snapshotted
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// state.
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*status = static_cast<MergeStatus>(message.merge_status);
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if (*status == MergeStatus::SNAPSHOTTED && current_slot == message.source_slot) {
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*status = MergeStatus::NONE;
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}
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return true;
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}
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} // namespace bootable
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} // namespace android
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