1d04d16b08
Fix comment greater than 80 columns. Change-Id: Ie0be96868e8a99f79781c6bafc8991a955f37ffa Signed-off-by: Naresh G Solanki <naresh.solanki@intel.com> Reviewed-on: https://review.coreboot.org/17265 Reviewed-by: Aaron Durbin <adurbin@chromium.org> Tested-by: build bot (Jenkins) Reviewed-by: Paul Menzel <paulepanter@users.sourceforge.net>
422 lines
11 KiB
C
422 lines
11 KiB
C
/*
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* This file is part of the coreboot project.
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*
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* Copyright 2014 Google Inc.
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*
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* This program is free software; you can redistribute it and/or modify
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* it under the terms of the GNU General Public License as published by
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* the Free Software Foundation; version 2 of the License.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*/
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#include <antirollback.h>
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#include <arch/exception.h>
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#include <assert.h>
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#include <bootmode.h>
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#include <console/console.h>
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#include <console/vtxprintf.h>
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#include <delay.h>
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#include <string.h>
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#include <timestamp.h>
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#include <vb2_api.h>
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#include <vboot/misc.h>
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#include <vboot/vbnv.h>
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/* The max hash size to expect is for SHA512. */
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#define VBOOT_MAX_HASH_SIZE VB2_SHA512_DIGEST_SIZE
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#define TODO_BLOCK_SIZE 1024
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static int is_slot_a(struct vb2_context *ctx)
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{
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return !(ctx->flags & VB2_CONTEXT_FW_SLOT_B);
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}
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/* exports */
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void vb2ex_printf(const char *func, const char *fmt, ...)
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{
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va_list args;
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printk(BIOS_INFO, "VB2:%s() ", func);
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va_start(args, fmt);
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do_printk_va_list(BIOS_INFO, fmt, args);
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va_end(args);
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return;
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}
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int vb2ex_tpm_clear_owner(struct vb2_context *ctx)
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{
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uint32_t rv;
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printk(BIOS_INFO, "Clearing TPM owner\n");
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rv = tpm_clear_and_reenable();
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if (rv)
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return VB2_ERROR_EX_TPM_CLEAR_OWNER;
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return VB2_SUCCESS;
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}
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int vb2ex_read_resource(struct vb2_context *ctx,
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enum vb2_resource_index index,
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uint32_t offset,
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void *buf,
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uint32_t size)
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{
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struct region_device rdev;
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const char *name;
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switch (index) {
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case VB2_RES_GBB:
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name = "GBB";
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break;
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case VB2_RES_FW_VBLOCK:
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if (is_slot_a(ctx))
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name = "VBLOCK_A";
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else
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name = "VBLOCK_B";
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break;
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default:
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return VB2_ERROR_EX_READ_RESOURCE_INDEX;
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}
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if (vboot_named_region_device(name, &rdev))
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return VB2_ERROR_EX_READ_RESOURCE_SIZE;
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if (rdev_readat(&rdev, buf, offset, size) != size)
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return VB2_ERROR_EX_READ_RESOURCE_SIZE;
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return VB2_SUCCESS;
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}
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/* No-op stubs that can be overridden by SoCs with hardware crypto support. */
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__attribute__((weak))
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int vb2ex_hwcrypto_digest_init(enum vb2_hash_algorithm hash_alg,
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uint32_t data_size)
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{
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return VB2_ERROR_EX_HWCRYPTO_UNSUPPORTED;
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}
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__attribute__((weak))
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int vb2ex_hwcrypto_digest_extend(const uint8_t *buf, uint32_t size)
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{
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BUG(); /* Should never get called if init() returned an error. */
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return VB2_ERROR_UNKNOWN;
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}
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__attribute__((weak))
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int vb2ex_hwcrypto_digest_finalize(uint8_t *digest, uint32_t digest_size)
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{
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BUG(); /* Should never get called if init() returned an error. */
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return VB2_ERROR_UNKNOWN;
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}
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static int handle_digest_result(void *slot_hash, size_t slot_hash_sz)
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{
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int is_resume;
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/*
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* Chrome EC is the only support for vboot_save_hash() &
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* vboot_retrieve_hash(), if Chrome EC is not enabled then return.
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*/
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if (!IS_ENABLED(CONFIG_EC_GOOGLE_CHROMEEC))
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return 0;
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/*
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* Nothing to do since resuming on the platform doesn't require
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* vboot verification again.
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*/
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if (!IS_ENABLED(CONFIG_RESUME_PATH_SAME_AS_BOOT))
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return 0;
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/*
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* Assume that if vboot doesn't start in bootblock verified
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* RW memory init code is not employed. i.e. memory init code
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* lives in RO CBFS.
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*/
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if (!IS_ENABLED(CONFIG_VBOOT_STARTS_IN_BOOTBLOCK))
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return 0;
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is_resume = vboot_platform_is_resuming();
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if (is_resume > 0) {
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uint8_t saved_hash[VBOOT_MAX_HASH_SIZE];
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const size_t saved_hash_sz = sizeof(saved_hash);
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assert(slot_hash_sz == saved_hash_sz);
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printk(BIOS_DEBUG, "Platform is resuming.\n");
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if (vboot_retrieve_hash(saved_hash, saved_hash_sz)) {
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printk(BIOS_ERR, "Couldn't retrieve saved hash.\n");
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return -1;
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}
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if (memcmp(saved_hash, slot_hash, slot_hash_sz)) {
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printk(BIOS_ERR, "Hash mismatch on resume.\n");
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return -1;
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}
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} else if (is_resume < 0)
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printk(BIOS_ERR, "Unable to determine if platform resuming.\n");
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printk(BIOS_DEBUG, "Saving vboot hash.\n");
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/* Always save the hash for the current boot. */
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if (vboot_save_hash(slot_hash, slot_hash_sz)) {
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printk(BIOS_ERR, "Error saving vboot hash.\n");
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/* Though this is an error don't report it up since it could
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* lead to a reboot loop. The consequence of this is that
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* we will most likely fail resuming because of EC issues or
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* the hash digest not matching. */
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return 0;
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}
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return 0;
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}
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static int hash_body(struct vb2_context *ctx, struct region_device *fw_main)
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{
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uint64_t load_ts;
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uint32_t expected_size;
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uint8_t block[TODO_BLOCK_SIZE];
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uint8_t hash_digest[VBOOT_MAX_HASH_SIZE];
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const size_t hash_digest_sz = sizeof(hash_digest);
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size_t block_size = sizeof(block);
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size_t offset;
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int rv;
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/* Clear the full digest so that any hash digests less than the
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* max have trailing zeros. */
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memset(hash_digest, 0, hash_digest_sz);
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/*
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* Since loading the firmware and calculating its hash is intertwined,
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* we use this little trick to measure them separately and pretend it
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* was first loaded and then hashed in one piece with the timestamps.
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* (This split won't make sense with memory-mapped media like on x86.)
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*/
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load_ts = timestamp_get();
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timestamp_add(TS_START_HASH_BODY, load_ts);
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expected_size = region_device_sz(fw_main);
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offset = 0;
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/* Start the body hash */
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rv = vb2api_init_hash(ctx, VB2_HASH_TAG_FW_BODY, &expected_size);
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if (rv)
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return rv;
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/*
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* Honor vboot's RW slot size. The expected size is pulled out of
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* the preamble and obtained through vb2api_init_hash() above. By
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* creating sub region the RW slot portion of the boot media is
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* limited.
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*/
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if (rdev_chain(fw_main, fw_main, 0, expected_size)) {
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printk(BIOS_ERR, "Unable to restrict CBFS size.\n");
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return VB2_ERROR_UNKNOWN;
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}
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/* Extend over the body */
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while (expected_size) {
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uint64_t temp_ts;
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if (block_size > expected_size)
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block_size = expected_size;
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temp_ts = timestamp_get();
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if (rdev_readat(fw_main, block, offset, block_size) < 0)
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return VB2_ERROR_UNKNOWN;
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load_ts += timestamp_get() - temp_ts;
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rv = vb2api_extend_hash(ctx, block, block_size);
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if (rv)
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return rv;
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expected_size -= block_size;
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offset += block_size;
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}
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timestamp_add(TS_DONE_LOADING, load_ts);
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timestamp_add_now(TS_DONE_HASHING);
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/* Check the result (with RSA signature verification) */
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rv = vb2api_check_hash_get_digest(ctx, hash_digest, hash_digest_sz);
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if (rv)
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return rv;
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timestamp_add_now(TS_END_HASH_BODY);
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if (handle_digest_result(hash_digest, hash_digest_sz))
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return VB2_ERROR_UNKNOWN;
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return VB2_SUCCESS;
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}
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static int locate_firmware(struct vb2_context *ctx,
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struct region_device *fw_main)
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{
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const char *name;
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if (is_slot_a(ctx))
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name = "FW_MAIN_A";
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else
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name = "FW_MAIN_B";
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return vboot_named_region_device(name, fw_main);
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}
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/**
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* Save non-volatile and/or secure data if needed.
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*/
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static void save_if_needed(struct vb2_context *ctx)
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{
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if (ctx->flags & VB2_CONTEXT_NVDATA_CHANGED) {
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printk(BIOS_INFO, "Saving nvdata\n");
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save_vbnv(ctx->nvdata);
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ctx->flags &= ~VB2_CONTEXT_NVDATA_CHANGED;
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}
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if (ctx->flags & VB2_CONTEXT_SECDATA_CHANGED) {
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printk(BIOS_INFO, "Saving secdata\n");
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antirollback_write_space_firmware(ctx);
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ctx->flags &= ~VB2_CONTEXT_SECDATA_CHANGED;
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}
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}
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static uint32_t extend_pcrs(struct vb2_context *ctx)
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{
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return tpm_extend_pcr(ctx, 0, BOOT_MODE_PCR) ||
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tpm_extend_pcr(ctx, 1, HWID_DIGEST_PCR);
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}
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/**
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* Verify and select the firmware in the RW image
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*
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* TODO: Avoid loading a stage twice (once in hash_body & again in load_stage).
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* when per-stage verification is ready.
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*/
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void verstage_main(void)
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{
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struct vb2_context ctx;
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struct region_device fw_main;
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int rv;
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timestamp_add_now(TS_START_VBOOT);
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/* Set up context and work buffer */
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vb2_init_work_context(&ctx);
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/* Read nvdata from a non-volatile storage. */
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read_vbnv(ctx.nvdata);
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/* Set S3 resume flag if vboot should behave differently when selecting
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* which slot to boot. This is only relevant to vboot if the platform
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* does verification of memory init and thus must ensure it resumes with
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* the same slot that it booted from. */
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if (IS_ENABLED(CONFIG_RESUME_PATH_SAME_AS_BOOT) &&
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IS_ENABLED(CONFIG_VBOOT_STARTS_IN_BOOTBLOCK) &&
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vboot_platform_is_resuming())
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ctx.flags |= VB2_CONTEXT_S3_RESUME;
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/* Read secdata from TPM. Initialize TPM if secdata not found. We don't
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* check the return value here because vb2api_fw_phase1 will catch
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* invalid secdata and tell us what to do (=reboot). */
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timestamp_add_now(TS_START_TPMINIT);
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antirollback_read_space_firmware(&ctx);
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timestamp_add_now(TS_END_TPMINIT);
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if (!IS_ENABLED(CONFIG_VIRTUAL_DEV_SWITCH) &&
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get_developer_mode_switch())
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ctx.flags |= VB2_CONTEXT_FORCE_DEVELOPER_MODE;
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if (get_recovery_mode_switch()) {
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ctx.flags |= VB2_CONTEXT_FORCE_RECOVERY_MODE;
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if (IS_ENABLED(CONFIG_VBOOT_DISABLE_DEV_ON_RECOVERY))
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ctx.flags |= VB2_DISABLE_DEVELOPER_MODE;
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}
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if (IS_ENABLED(CONFIG_WIPEOUT_SUPPORTED) && get_wipeout_mode_switch())
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ctx.flags |= VB2_CONTEXT_FORCE_WIPEOUT_MODE;
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if (IS_ENABLED(CONFIG_LID_SWITCH) && !get_lid_switch())
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ctx.flags |= VB2_CONTEXT_NOFAIL_BOOT;
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/* Do early init (set up secdata and NVRAM, load GBB) */
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printk(BIOS_INFO, "Phase 1\n");
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rv = vb2api_fw_phase1(&ctx);
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if (rv) {
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/*
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* If vb2api_fw_phase1 fails, check for return value.
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* If it is set to VB2_ERROR_API_PHASE1_RECOVERY, then continue
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* into recovery mode.
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* For any other error code, save context if needed and reboot.
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*/
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if (rv == VB2_ERROR_API_PHASE1_RECOVERY) {
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printk(BIOS_INFO, "Recovery requested (%x)\n", rv);
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save_if_needed(&ctx);
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extend_pcrs(&ctx); /* ignore failures */
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timestamp_add_now(TS_END_VBOOT);
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return;
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}
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printk(BIOS_INFO, "Reboot reqested (%x)\n", rv);
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save_if_needed(&ctx);
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vboot_reboot();
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}
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/* Determine which firmware slot to boot (based on NVRAM) */
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printk(BIOS_INFO, "Phase 2\n");
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rv = vb2api_fw_phase2(&ctx);
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if (rv) {
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printk(BIOS_INFO, "Reboot requested (%x)\n", rv);
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save_if_needed(&ctx);
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vboot_reboot();
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}
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/* Try that slot (verify its keyblock and preamble) */
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printk(BIOS_INFO, "Phase 3\n");
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timestamp_add_now(TS_START_VERIFY_SLOT);
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rv = vb2api_fw_phase3(&ctx);
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timestamp_add_now(TS_END_VERIFY_SLOT);
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if (rv) {
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printk(BIOS_INFO, "Reboot requested (%x)\n", rv);
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save_if_needed(&ctx);
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vboot_reboot();
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}
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printk(BIOS_INFO, "Phase 4\n");
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rv = locate_firmware(&ctx, &fw_main);
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if (rv)
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die("Failed to read FMAP to locate firmware");
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rv = hash_body(&ctx, &fw_main);
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save_if_needed(&ctx);
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if (rv) {
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printk(BIOS_INFO, "Reboot requested (%x)\n", rv);
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vboot_reboot();
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}
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rv = extend_pcrs(&ctx);
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if (rv) {
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printk(BIOS_WARNING, "Failed to extend TPM PCRs (%#x)\n", rv);
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vb2api_fail(&ctx, VB2_RECOVERY_RO_TPM_U_ERROR, rv);
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save_if_needed(&ctx);
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vboot_reboot();
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}
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/* Lock TPM */
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rv = antirollback_lock_space_firmware();
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if (rv) {
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printk(BIOS_INFO, "Failed to lock TPM (%x)\n", rv);
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vb2api_fail(&ctx, VB2_RECOVERY_RO_TPM_L_ERROR, 0);
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save_if_needed(&ctx);
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vboot_reboot();
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}
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printk(BIOS_INFO, "Slot %c is selected\n", is_slot_a(&ctx) ? 'A' : 'B');
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vb2_set_selected_region(region_device_region(&fw_main));
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timestamp_add_now(TS_END_VBOOT);
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}
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