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Fix VerifyMemberInside(). BUG=chrome-os-partner:703 TEST=make && make runtests Review URL: http://codereview.chromium.org/3126013
414 lines
14 KiB
C
414 lines
14 KiB
C
/* Copyright (c) 2010 The Chromium OS Authors. All rights reserved.
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* Use of this source code is governed by a BSD-style license that can be
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* found in the LICENSE file.
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*
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* Functions for loading a kernel from disk.
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* (Firmware portion)
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*/
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#include "vboot_kernel.h"
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#include "boot_device.h"
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#include "cgptlib.h"
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#include "cgptlib_internal.h"
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#include "load_kernel_fw.h"
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#include "rollback_index.h"
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#include "utility.h"
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#include "vboot_common.h"
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#define KBUF_SIZE 65536 /* Bytes to read at start of kernel partition */
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/* Allocates and reads GPT data from the drive. The sector_bytes and
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* drive_sectors fields should be filled on input. The primary and
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* secondary header and entries are filled on output.
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*
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* Returns 0 if successful, 1 if error. */
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int AllocAndReadGptData(GptData* gptdata) {
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uint64_t entries_sectors = TOTAL_ENTRIES_SIZE / gptdata->sector_bytes;
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/* No data to be written yet */
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gptdata->modified = 0;
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/* Allocate all buffers */
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gptdata->primary_header = (uint8_t*)Malloc(gptdata->sector_bytes);
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gptdata->secondary_header = (uint8_t*)Malloc(gptdata->sector_bytes);
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gptdata->primary_entries = (uint8_t*)Malloc(TOTAL_ENTRIES_SIZE);
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gptdata->secondary_entries = (uint8_t*)Malloc(TOTAL_ENTRIES_SIZE);
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if (gptdata->primary_header == NULL || gptdata->secondary_header == NULL ||
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gptdata->primary_entries == NULL || gptdata->secondary_entries == NULL)
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return 1;
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/* Read data from the drive, skipping the protective MBR */
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if (0 != BootDeviceReadLBA(1, 1, gptdata->primary_header))
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return 1;
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if (0 != BootDeviceReadLBA(2, entries_sectors, gptdata->primary_entries))
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return 1;
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if (0 != BootDeviceReadLBA(gptdata->drive_sectors - entries_sectors - 1,
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entries_sectors, gptdata->secondary_entries))
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return 1;
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if (0 != BootDeviceReadLBA(gptdata->drive_sectors - 1,
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1, gptdata->secondary_header))
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return 1;
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return 0;
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}
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/* Writes any changes for the GPT data back to the drive, then frees
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* the buffers.
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*
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* Returns 0 if successful, 1 if error. */
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int WriteAndFreeGptData(GptData* gptdata) {
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uint64_t entries_sectors = TOTAL_ENTRIES_SIZE / gptdata->sector_bytes;
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if (gptdata->primary_header) {
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if (gptdata->modified & GPT_MODIFIED_HEADER1) {
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VBDEBUG(("Updating GPT header 1\n"));
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if (0 != BootDeviceWriteLBA(1, 1, gptdata->primary_header))
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return 1;
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}
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Free(gptdata->primary_header);
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}
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if (gptdata->primary_entries) {
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if (gptdata->modified & GPT_MODIFIED_ENTRIES1) {
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VBDEBUG(("Updating GPT entries 1\n"));
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if (0 != BootDeviceWriteLBA(2, entries_sectors,
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gptdata->primary_entries))
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return 1;
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}
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Free(gptdata->primary_entries);
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}
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if (gptdata->secondary_entries) {
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if (gptdata->modified & GPT_MODIFIED_ENTRIES2) {
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VBDEBUG(("Updating GPT header 2\n"));
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if (0 != BootDeviceWriteLBA(gptdata->drive_sectors - entries_sectors - 1,
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entries_sectors, gptdata->secondary_entries))
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return 1;
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}
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Free(gptdata->secondary_entries);
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}
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if (gptdata->secondary_header) {
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if (gptdata->modified & GPT_MODIFIED_HEADER2) {
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VBDEBUG(("Updating GPT entries 2\n"));
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if (0 != BootDeviceWriteLBA(gptdata->drive_sectors - 1, 1,
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gptdata->secondary_header))
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return 1;
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}
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Free(gptdata->secondary_header);
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}
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/* Success */
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return 0;
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}
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/* disable MSVC warning on const logical expression (as in } while(0);) */
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__pragma(warning(disable: 4127))
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int LoadKernel(LoadKernelParams* params) {
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VbPublicKey* kernel_subkey;
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GptData gpt;
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uint64_t part_start, part_size;
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uint64_t blba;
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uint64_t kbuf_sectors;
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uint8_t* kbuf = NULL;
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int found_partitions = 0;
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int good_partition = -1;
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uint32_t tpm_version = 0;
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uint64_t lowest_version = 0xFFFFFFFF;
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int is_dev;
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int is_rec;
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int is_normal;
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uint32_t status;
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/* Sanity Checks */
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if (!params ||
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!params->bytes_per_lba ||
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!params->ending_lba ||
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!params->kernel_buffer ||
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!params->kernel_buffer_size) {
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VBDEBUG(("LoadKernel() called with invalid params\n"));
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return LOAD_KERNEL_INVALID;
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}
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/* Initialization */
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kernel_subkey = (VbPublicKey*)params->header_sign_key_blob;
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blba = params->bytes_per_lba;
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kbuf_sectors = KBUF_SIZE / blba;
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is_dev = (BOOT_FLAG_DEVELOPER & params->boot_flags ? 1 : 0);
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is_rec = (BOOT_FLAG_RECOVERY & params->boot_flags ? 1 : 0);
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is_normal = (!is_dev && !is_rec);
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/* Clear output params in case we fail */
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params->partition_number = 0;
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params->bootloader_address = 0;
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params->bootloader_size = 0;
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/* Let the TPM know if we're in recovery mode */
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if (is_rec) {
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if (0 != RollbackKernelRecovery(is_dev)) {
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VBDEBUG(("Error setting up TPM for recovery kernel\n"));
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/* Ignore return code, since we need to boot recovery mode to
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* fix the TPM. */
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}
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}
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if (is_normal) {
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/* Read current kernel key index from TPM. Assumes TPM is already
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* initialized. */
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status = RollbackKernelRead(&tpm_version);
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if (0 != status) {
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VBDEBUG(("Unable to get kernel versions from TPM\n"));
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return (status == TPM_E_MUST_REBOOT ?
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LOAD_KERNEL_REBOOT : LOAD_KERNEL_RECOVERY);
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}
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}
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do {
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/* Read GPT data */
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gpt.sector_bytes = (uint32_t)blba;
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gpt.drive_sectors = params->ending_lba + 1;
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if (0 != AllocAndReadGptData(&gpt)) {
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VBDEBUG(("Unable to read GPT data\n"));
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break;
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}
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/* Initialize GPT library */
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if (GPT_SUCCESS != GptInit(&gpt)) {
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VBDEBUG(("Error parsing GPT\n"));
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break;
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}
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/* Allocate kernel header buffers */
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kbuf = (uint8_t*)Malloc(KBUF_SIZE);
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if (!kbuf)
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break;
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/* Loop over candidate kernel partitions */
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while (GPT_SUCCESS == GptNextKernelEntry(&gpt, &part_start, &part_size)) {
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VbKeyBlockHeader* key_block;
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VbKernelPreambleHeader* preamble;
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RSAPublicKey* data_key;
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uint64_t key_version;
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uint64_t combined_version;
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uint64_t body_offset;
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VBDEBUG(("Found kernel entry at %" PRIu64 " size %" PRIu64 "\n",
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part_start, part_size));
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/* Found at least one kernel partition. */
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found_partitions++;
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/* Read the first part of the kernel partition */
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if (part_size < kbuf_sectors)
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continue;
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if (0 != BootDeviceReadLBA(part_start, kbuf_sectors, kbuf))
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continue;
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/* Verify the key block. In developer mode, we ignore the key
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* and use only the SHA-512 hash to verify the key block. */
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key_block = (VbKeyBlockHeader*)kbuf;
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if ((0 != KeyBlockVerify(key_block, KBUF_SIZE, kernel_subkey,
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is_dev && !is_rec))) {
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VBDEBUG(("Verifying key block failed.\n"));
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continue;
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}
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/* Check the key block flags against the current boot mode in normal
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* and recovery modes (not in developer mode booting from SSD). */
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if (is_rec || is_normal) {
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if (!(key_block->key_block_flags &
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(is_dev ? KEY_BLOCK_FLAG_DEVELOPER_1 :
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KEY_BLOCK_FLAG_DEVELOPER_0))) {
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VBDEBUG(("Developer flag mismatch.\n"));
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continue;
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}
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if (!(key_block->key_block_flags &
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(is_rec ? KEY_BLOCK_FLAG_RECOVERY_1 :
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KEY_BLOCK_FLAG_RECOVERY_0))) {
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VBDEBUG(("Recovery flag mismatch.\n"));
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continue;
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}
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}
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/* Check for rollback of key version. Note this is implicitly
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* skipped in recovery and developer modes because those set
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* key_version=0 above. */
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key_version = key_block->data_key.key_version;
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if (key_version < (tpm_version >> 16)) {
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VBDEBUG(("Key version too old.\n"));
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continue;
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}
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/* Get the key for preamble/data verification from the key block */
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data_key = PublicKeyToRSA(&key_block->data_key);
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if (!data_key)
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continue;
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/* Verify the preamble, which follows the key block */
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preamble = (VbKernelPreambleHeader*)(kbuf + key_block->key_block_size);
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if ((0 != VerifyKernelPreamble(preamble,
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KBUF_SIZE - key_block->key_block_size,
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data_key))) {
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VBDEBUG(("Preamble verification failed.\n"));
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RSAPublicKeyFree(data_key);
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continue;
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}
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/* Check for rollback of kernel version. Note this is implicitly
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* skipped in recovery and developer modes because rollback_index
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* sets those to 0 in those modes. */
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combined_version = ((key_version << 16) |
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(preamble->kernel_version & 0xFFFF));
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if (combined_version < tpm_version) {
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VBDEBUG(("Kernel version too low.\n"));
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RSAPublicKeyFree(data_key);
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continue;
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}
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VBDEBUG(("Kernel preamble is good.\n"));
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/* Check for lowest version from a valid header. */
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if (lowest_version > combined_version)
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lowest_version = combined_version;
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/* If we already have a good kernel, no need to read another
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* one; we only needed to look at the versions to check for
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* rollback. */
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if (-1 != good_partition)
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continue;
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/* Verify body load address matches what we expect */
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if ((preamble->body_load_address != (size_t)params->kernel_buffer) &&
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!(params->boot_flags & BOOT_FLAG_SKIP_ADDR_CHECK)) {
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VBDEBUG(("Wrong body load address.\n"));
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RSAPublicKeyFree(data_key);
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continue;
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}
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/* Verify kernel body starts at a multiple of the sector size. */
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body_offset = key_block->key_block_size + preamble->preamble_size;
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if (0 != body_offset % blba) {
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VBDEBUG(("Kernel body not at multiple of sector size.\n"));
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RSAPublicKeyFree(data_key);
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continue;
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}
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/* Verify kernel body fits in the partition */
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if (body_offset + preamble->body_signature.data_size >
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part_size * blba) {
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VBDEBUG(("Kernel body doesn't fit in partition.\n"));
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RSAPublicKeyFree(data_key);
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continue;
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}
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/* Read the kernel data */
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if (0 != BootDeviceReadLBA(
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part_start + (body_offset / blba),
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(preamble->body_signature.data_size + blba - 1) / blba,
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params->kernel_buffer)) {
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VBDEBUG(("Unable to read kernel data.\n"));
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RSAPublicKeyFree(data_key);
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continue;
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}
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/* Verify kernel data */
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if (0 != VerifyData((const uint8_t*)params->kernel_buffer,
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params->kernel_buffer_size,
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&preamble->body_signature, data_key)) {
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VBDEBUG(("Kernel data verification failed.\n"));
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RSAPublicKeyFree(data_key);
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continue;
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}
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/* Done with the kernel signing key, so can free it now */
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RSAPublicKeyFree(data_key);
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/* If we're still here, the kernel is valid. */
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/* Save the first good partition we find; that's the one we'll boot */
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VBDEBUG(("Partiton is good.\n"));
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/* TODO: GPT partitions start at 1, but cgptlib starts them at 0.
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* Adjust here, until cgptlib is fixed. */
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good_partition = gpt.current_kernel + 1;
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params->partition_number = gpt.current_kernel + 1;
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GetCurrentKernelUniqueGuid(&gpt, ¶ms->partition_guid);
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/* TODO: GetCurrentKernelUniqueGuid() should take a destination size, or
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* the dest should be a struct, so we know it's big enough. */
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params->bootloader_address = preamble->bootloader_address;
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params->bootloader_size = preamble->bootloader_size;
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/* If we're in developer or recovery mode, there's no rollback
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* protection, so we can stop at the first valid kernel. */
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if (!is_normal) {
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VBDEBUG(("Boot_flags = !is_normal\n"));
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break;
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}
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/* Otherwise, we're in normal boot mode, so we do care about the
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* key index in the TPM. If the good partition's key version is
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* the same as the tpm, then the TPM doesn't need updating; we
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* can stop now. Otherwise, we'll check all the other headers
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* to see if they contain a newer key. */
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if (combined_version == tpm_version) {
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VBDEBUG(("Same kernel version\n"));
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break;
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}
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} /* while(GptNextKernelEntry) */
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} while(0);
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/* Free kernel buffer */
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if (kbuf)
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Free(kbuf);
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/* Write and free GPT data */
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WriteAndFreeGptData(&gpt);
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/* Handle finding a good partition */
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if (good_partition >= 0) {
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VBDEBUG(("Good_partition >= 0\n"));
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/* See if we need to update the TPM */
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if (is_normal) {
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/* We only update the TPM in normal boot mode. In developer
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* mode, the kernel is self-signed by the developer, so we can't
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* trust the key version and wouldn't want to roll the TPM
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* forward. In recovery mode, the TPM stays PP-unlocked, so
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* anything we write gets blown away by the firmware when we go
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* back to normal mode. */
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VBDEBUG(("Boot_flags = is_normal\n"));
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if (lowest_version > tpm_version) {
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status = RollbackKernelWrite((uint32_t)lowest_version);
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if (0 != status) {
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VBDEBUG(("Error writing kernel versions to TPM.\n"));
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return (status == TPM_E_MUST_REBOOT ?
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LOAD_KERNEL_REBOOT : LOAD_KERNEL_RECOVERY);
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}
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}
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}
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/* Lock the kernel versions */
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status = RollbackKernelLock();
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if (0 != status) {
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VBDEBUG(("Error locking kernel versions.\n"));
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/* Don't reboot to recovery mode if we're already there */
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if (!is_rec)
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return (status == TPM_E_MUST_REBOOT ?
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LOAD_KERNEL_REBOOT : LOAD_KERNEL_RECOVERY);
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}
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/* Success! */
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return LOAD_KERNEL_SUCCESS;
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}
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// Handle error cases
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if (found_partitions)
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return LOAD_KERNEL_INVALID;
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else
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return LOAD_KERNEL_NOT_FOUND;
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}
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