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loader.c
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loader.c
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/*
* SPDX-License-Identifier: Apache-2.0
*
* Copyright (c) 2016-2020 Linaro LTD
* Copyright (c) 2016-2019 JUUL Labs
* Copyright (c) 2019-2020 Arm Limited
*
* Original license:
*
* Licensed to the Apache Software Foundation (ASF) under one
* or more contributor license agreements. See the NOTICE file
* distributed with this work for additional information
* regarding copyright ownership. The ASF licenses this file
* to you under the Apache License, Version 2.0 (the
* "License"); you may not use this file except in compliance
* with the License. You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing,
* software distributed under the License is distributed on an
* "AS IS" BASIS, WITHOUT WARRANTIES OR CONDITIONS OF ANY
* KIND, either express or implied. See the License for the
* specific language governing permissions and limitations
* under the License.
*/
/**
* This file provides an interface to the boot loader. Functions defined in
* this file should only be called while the boot loader is running.
*/
#include <assert.h>
#include <stddef.h>
#include <stdbool.h>
#include <inttypes.h>
#include <stdlib.h>
#include <string.h>
#include <os/os_malloc.h>
#include "bootutil/bootutil.h"
#include "bootutil/image.h"
#include "bootutil_priv.h"
#include "swap_priv.h"
#include "bootutil/bootutil_log.h"
#include "bootutil/security_cnt.h"
#include "bootutil/boot_record.h"
#ifdef MCUBOOT_ENC_IMAGES
#include "bootutil/enc_key.h"
#endif
#include "mcuboot_config/mcuboot_config.h"
MCUBOOT_LOG_MODULE_DECLARE(mcuboot);
static struct boot_loader_state boot_data;
#if (BOOT_IMAGE_NUMBER > 1)
#define IMAGES_ITER(x) for ((x) = 0; (x) < BOOT_IMAGE_NUMBER; ++(x))
#else
#define IMAGES_ITER(x)
#endif
/*
* This macro allows some control on the allocation of local variables.
* When running natively on a target, we don't want to allocated huge
* variables on the stack, so make them global instead. For the simulator
* we want to run as many threads as there are tests, and it's safer
* to just make those variables stack allocated.
*/
#if !defined(__BOOTSIM__)
#define TARGET_STATIC static
#else
#define TARGET_STATIC
#endif
/*
* Compute the total size of the given image. Includes the size of
* the TLVs.
*/
#if !defined(MCUBOOT_OVERWRITE_ONLY) || defined(MCUBOOT_OVERWRITE_ONLY_FAST)
static int
boot_read_image_size(struct boot_loader_state *state, int slot, uint32_t *size)
{
const struct flash_area *fap;
struct image_tlv_info info;
uint32_t off;
uint32_t protect_tlv_size;
int area_id;
int rc;
#if (BOOT_IMAGE_NUMBER == 1)
(void)state;
#endif
area_id = flash_area_id_from_multi_image_slot(BOOT_CURR_IMG(state), slot);
rc = flash_area_open(area_id, &fap);
if (rc != 0) {
rc = BOOT_EFLASH;
goto done;
}
off = BOOT_TLV_OFF(boot_img_hdr(state, slot));
if (flash_area_read(fap, off, &info, sizeof(info))) {
rc = BOOT_EFLASH;
goto done;
}
protect_tlv_size = boot_img_hdr(state, slot)->ih_protect_tlv_size;
if (info.it_magic == IMAGE_TLV_PROT_INFO_MAGIC) {
if (protect_tlv_size != info.it_tlv_tot) {
rc = BOOT_EBADIMAGE;
goto done;
}
if (flash_area_read(fap, off + info.it_tlv_tot, &info, sizeof(info))) {
rc = BOOT_EFLASH;
goto done;
}
} else if (protect_tlv_size != 0) {
rc = BOOT_EBADIMAGE;
goto done;
}
if (info.it_magic != IMAGE_TLV_INFO_MAGIC) {
rc = BOOT_EBADIMAGE;
goto done;
}
*size = off + protect_tlv_size + info.it_tlv_tot;
rc = 0;
done:
flash_area_close(fap);
return rc;
}
#endif /* !MCUBOOT_OVERWRITE_ONLY */
static int
boot_read_image_headers(struct boot_loader_state *state, bool require_all,
struct boot_status *bs)
{
int rc;
int i;
for (i = 0; i < BOOT_NUM_SLOTS; i++) {
rc = boot_read_image_header(state, i, boot_img_hdr(state, i), bs);
if (rc != 0) {
/* If `require_all` is set, fail on any single fail, otherwise
* if at least the first slot's header was read successfully,
* then the boot loader can attempt a boot.
*
* Failure to read any headers is a fatal error.
*/
if (i > 0 && !require_all) {
return 0;
} else {
return rc;
}
}
}
return 0;
}
static uint32_t
boot_write_sz(struct boot_loader_state *state)
{
uint32_t elem_sz;
#if MCUBOOT_SWAP_USING_SCRATCH
uint32_t align;
#endif
/* Figure out what size to write update status update as. The size depends
* on what the minimum write size is for scratch area, active image slot.
* We need to use the bigger of those 2 values.
*/
elem_sz = flash_area_align(BOOT_IMG_AREA(state, BOOT_PRIMARY_SLOT));
#if MCUBOOT_SWAP_USING_SCRATCH
align = flash_area_align(BOOT_SCRATCH_AREA(state));
if (align > elem_sz) {
elem_sz = align;
}
#endif
return elem_sz;
}
#ifndef MCUBOOT_USE_FLASH_AREA_GET_SECTORS
static int
boot_initialize_area(struct boot_loader_state *state, int flash_area)
{
int num_sectors = BOOT_MAX_IMG_SECTORS;
int rc;
if (flash_area == FLASH_AREA_IMAGE_PRIMARY(BOOT_CURR_IMG(state))) {
rc = flash_area_to_sectors(flash_area, &num_sectors,
BOOT_IMG(state, BOOT_PRIMARY_SLOT).sectors);
BOOT_IMG(state, BOOT_PRIMARY_SLOT).num_sectors = (size_t)num_sectors;
} else if (flash_area == FLASH_AREA_IMAGE_SECONDARY(BOOT_CURR_IMG(state))) {
rc = flash_area_to_sectors(flash_area, &num_sectors,
BOOT_IMG(state, BOOT_SECONDARY_SLOT).sectors);
BOOT_IMG(state, BOOT_SECONDARY_SLOT).num_sectors = (size_t)num_sectors;
#if MCUBOOT_SWAP_USING_SCRATCH
} else if (flash_area == FLASH_AREA_IMAGE_SCRATCH) {
rc = flash_area_to_sectors(flash_area, &num_sectors,
state->scratch.sectors);
state->scratch.num_sectors = (size_t)num_sectors;
#endif
} else {
return BOOT_EFLASH;
}
return rc;
}
#else /* defined(MCUBOOT_USE_FLASH_AREA_GET_SECTORS) */
static int
boot_initialize_area(struct boot_loader_state *state, int flash_area)
{
uint32_t num_sectors;
struct flash_sector *out_sectors;
size_t *out_num_sectors;
int rc;
num_sectors = BOOT_MAX_IMG_SECTORS;
if (flash_area == FLASH_AREA_IMAGE_PRIMARY(BOOT_CURR_IMG(state))) {
out_sectors = BOOT_IMG(state, BOOT_PRIMARY_SLOT).sectors;
out_num_sectors = &BOOT_IMG(state, BOOT_PRIMARY_SLOT).num_sectors;
} else if (flash_area == FLASH_AREA_IMAGE_SECONDARY(BOOT_CURR_IMG(state))) {
out_sectors = BOOT_IMG(state, BOOT_SECONDARY_SLOT).sectors;
out_num_sectors = &BOOT_IMG(state, BOOT_SECONDARY_SLOT).num_sectors;
#if MCUBOOT_SWAP_USING_SCRATCH
} else if (flash_area == FLASH_AREA_IMAGE_SCRATCH) {
out_sectors = state->scratch.sectors;
out_num_sectors = &state->scratch.num_sectors;
#endif
} else {
return BOOT_EFLASH;
}
rc = flash_area_get_sectors(flash_area, &num_sectors, out_sectors);
if (rc != 0) {
return rc;
}
*out_num_sectors = num_sectors;
return 0;
}
#endif /* !defined(MCUBOOT_USE_FLASH_AREA_GET_SECTORS) */
/**
* Determines the sector layout of both image slots and the scratch area.
* This information is necessary for calculating the number of bytes to erase
* and copy during an image swap. The information collected during this
* function is used to populate the state.
*/
static int
boot_read_sectors(struct boot_loader_state *state)
{
uint8_t image_index;
int rc;
image_index = BOOT_CURR_IMG(state);
rc = boot_initialize_area(state, FLASH_AREA_IMAGE_PRIMARY(image_index));
if (rc != 0) {
return BOOT_EFLASH;
}
rc = boot_initialize_area(state, FLASH_AREA_IMAGE_SECONDARY(image_index));
if (rc != 0) {
return BOOT_EFLASH;
}
#if MCUBOOT_SWAP_USING_SCRATCH
rc = boot_initialize_area(state, FLASH_AREA_IMAGE_SCRATCH);
if (rc != 0) {
return BOOT_EFLASH;
}
#endif
BOOT_WRITE_SZ(state) = boot_write_sz(state);
return 0;
}
void
boot_status_reset(struct boot_status *bs)
{
#ifdef MCUBOOT_ENC_IMAGES
memset(&bs->enckey, 0xff, BOOT_NUM_SLOTS * BOOT_ENC_KEY_SIZE);
#if MCUBOOT_SWAP_SAVE_ENCTLV
memset(&bs->enctlv, 0xff, BOOT_NUM_SLOTS * BOOT_ENC_TLV_ALIGN_SIZE);
#endif
#endif /* MCUBOOT_ENC_IMAGES */
bs->use_scratch = 0;
bs->swap_size = 0;
bs->source = 0;
bs->op = BOOT_STATUS_OP_MOVE;
bs->idx = BOOT_STATUS_IDX_0;
bs->state = BOOT_STATUS_STATE_0;
bs->swap_type = BOOT_SWAP_TYPE_NONE;
}
bool
boot_status_is_reset(const struct boot_status *bs)
{
return (bs->op == BOOT_STATUS_OP_MOVE &&
bs->idx == BOOT_STATUS_IDX_0 &&
bs->state == BOOT_STATUS_STATE_0);
}
/**
* Writes the supplied boot status to the flash file system. The boot status
* contains the current state of an in-progress image copy operation.
*
* @param bs The boot status to write.
*
* @return 0 on success; nonzero on failure.
*/
int
boot_write_status(const struct boot_loader_state *state, struct boot_status *bs)
{
const struct flash_area *fap;
uint32_t off;
int area_id;
int rc;
uint8_t buf[BOOT_MAX_ALIGN];
uint8_t align;
uint8_t erased_val;
/* NOTE: The first sector copied (that is the last sector on slot) contains
* the trailer. Since in the last step the primary slot is erased, the
* first two status writes go to the scratch which will be copied to
* the primary slot!
*/
#if MCUBOOT_SWAP_USING_SCRATCH
if (bs->use_scratch) {
/* Write to scratch. */
area_id = FLASH_AREA_IMAGE_SCRATCH;
} else {
#endif
/* Write to the primary slot. */
area_id = FLASH_AREA_IMAGE_PRIMARY(BOOT_CURR_IMG(state));
#if MCUBOOT_SWAP_USING_SCRATCH
}
#endif
rc = flash_area_open(area_id, &fap);
if (rc != 0) {
rc = BOOT_EFLASH;
goto done;
}
off = boot_status_off(fap) +
boot_status_internal_off(bs, BOOT_WRITE_SZ(state));
align = flash_area_align(fap);
erased_val = flash_area_erased_val(fap);
memset(buf, erased_val, BOOT_MAX_ALIGN);
buf[0] = bs->state;
rc = flash_area_write(fap, off, buf, align);
if (rc != 0) {
rc = BOOT_EFLASH;
goto done;
}
rc = 0;
done:
flash_area_close(fap);
return rc;
}
/*
* Validate image hash/signature and optionally the security counter in a slot.
*/
static int
boot_image_check(struct boot_loader_state *state, struct image_header *hdr,
const struct flash_area *fap, struct boot_status *bs)
{
TARGET_STATIC uint8_t tmpbuf[BOOT_TMPBUF_SZ];
uint8_t image_index;
int rc;
#if (BOOT_IMAGE_NUMBER == 1)
(void)state;
#endif
(void)bs;
(void)rc;
image_index = BOOT_CURR_IMG(state);
#ifdef MCUBOOT_ENC_IMAGES
if (MUST_DECRYPT(fap, image_index, hdr)) {
rc = boot_enc_load(BOOT_CURR_ENC(state), image_index, hdr, fap, bs);
if (rc < 0) {
return BOOT_EBADIMAGE;
}
if (rc == 0 && boot_enc_set_key(BOOT_CURR_ENC(state), 1, bs)) {
return BOOT_EBADIMAGE;
}
}
#endif
if (bootutil_img_validate(BOOT_CURR_ENC(state), image_index, hdr, fap, tmpbuf,
BOOT_TMPBUF_SZ, NULL, 0, NULL)) {
return BOOT_EBADIMAGE;
}
return 0;
}
static int
split_image_check(struct image_header *app_hdr,
const struct flash_area *app_fap,
struct image_header *loader_hdr,
const struct flash_area *loader_fap)
{
static void *tmpbuf;
uint8_t loader_hash[32];
if (!tmpbuf) {
tmpbuf = malloc(BOOT_TMPBUF_SZ);
if (!tmpbuf) {
return BOOT_ENOMEM;
}
}
if (bootutil_img_validate(NULL, 0, loader_hdr, loader_fap, tmpbuf,
BOOT_TMPBUF_SZ, NULL, 0, loader_hash)) {
return BOOT_EBADIMAGE;
}
if (bootutil_img_validate(NULL, 0, app_hdr, app_fap, tmpbuf,
BOOT_TMPBUF_SZ, loader_hash, 32, NULL)) {
return BOOT_EBADIMAGE;
}
return 0;
}
/*
* Check that this is a valid header. Valid means that the magic is
* correct, and that the sizes/offsets are "sane". Sane means that
* there is no overflow on the arithmetic, and that the result fits
* within the flash area we are in.
*/
static bool
boot_is_header_valid(const struct image_header *hdr, const struct flash_area *fap)
{
uint32_t size;
if (hdr->ih_magic != IMAGE_MAGIC) {
return false;
}
if (!boot_u32_safe_add(&size, hdr->ih_img_size, hdr->ih_hdr_size)) {
return false;
}
if (size >= fap->fa_size) {
return false;
}
return true;
}
/*
* Check that a memory area consists of a given value.
*/
static inline bool
boot_data_is_set_to(uint8_t val, void *data, size_t len)
{
uint8_t i;
uint8_t *p = (uint8_t *)data;
for (i = 0; i < len; i++) {
if (val != p[i]) {
return false;
}
}
return true;
}
static int
boot_check_header_erased(struct boot_loader_state *state, int slot)
{
const struct flash_area *fap;
struct image_header *hdr;
uint8_t erased_val;
int area_id;
int rc;
area_id = flash_area_id_from_multi_image_slot(BOOT_CURR_IMG(state), slot);
rc = flash_area_open(area_id, &fap);
if (rc != 0) {
return -1;
}
erased_val = flash_area_erased_val(fap);
flash_area_close(fap);
hdr = boot_img_hdr(state, slot);
if (!boot_data_is_set_to(erased_val, &hdr->ih_magic, sizeof(hdr->ih_magic))) {
return -1;
}
return 0;
}
#if (BOOT_IMAGE_NUMBER > 1) || \
(defined(MCUBOOT_OVERWRITE_ONLY) && defined(MCUBOOT_DOWNGRADE_PREVENTION))
/**
* Check if the version of the image is not older than required.
*
* @param req Required minimal image version.
* @param ver Version of the image to be checked.
*
* @return 0 if the version is sufficient, nonzero otherwise.
*/
static int
boot_is_version_sufficient(struct image_version *req,
struct image_version *ver)
{
if (ver->iv_major > req->iv_major) {
return 0;
}
if (ver->iv_major < req->iv_major) {
return BOOT_EBADVERSION;
}
/* The major version numbers are equal. */
if (ver->iv_minor > req->iv_minor) {
return 0;
}
if (ver->iv_minor < req->iv_minor) {
return BOOT_EBADVERSION;
}
/* The minor version numbers are equal. */
if (ver->iv_revision < req->iv_revision) {
return BOOT_EBADVERSION;
}
return 0;
}
#endif
/*
* Check that there is a valid image in a slot
*
* @returns
* 0 if image was successfully validated
* 1 if no bootloable image was found
* -1 on any errors
*/
static int
boot_validate_slot(struct boot_loader_state *state, int slot,
struct boot_status *bs)
{
const struct flash_area *fap;
struct image_header *hdr;
int area_id;
int rc;
area_id = flash_area_id_from_multi_image_slot(BOOT_CURR_IMG(state), slot);
rc = flash_area_open(area_id, &fap);
if (rc != 0) {
return -1;
}
hdr = boot_img_hdr(state, slot);
if (boot_check_header_erased(state, slot) == 0 ||
(hdr->ih_flags & IMAGE_F_NON_BOOTABLE)) {
/* No bootable image in slot; continue booting from the primary slot. */
rc = 1;
goto out;
}
#if defined(MCUBOOT_OVERWRITE_ONLY) && defined(MCUBOOT_DOWNGRADE_PREVENTION)
if (slot != BOOT_PRIMARY_SLOT) {
/* Check if version of secondary slot is sufficient */
rc = boot_is_version_sufficient(
&boot_img_hdr(state, BOOT_PRIMARY_SLOT)->ih_ver,
&boot_img_hdr(state, BOOT_SECONDARY_SLOT)->ih_ver);
if (rc != 0 && boot_check_header_erased(state, BOOT_PRIMARY_SLOT)) {
BOOT_LOG_ERR("insufficient version in secondary slot");
flash_area_erase(fap, 0, fap->fa_size);
/* Image in the secondary slot does not satisfy version requirement.
* Erase the image and continue booting from the primary slot.
*/
rc = 1;
goto out;
}
}
#endif
if (!boot_is_header_valid(hdr, fap) || boot_image_check(state, hdr, fap, bs)) {
if (slot != BOOT_PRIMARY_SLOT) {
flash_area_erase(fap, 0, fap->fa_size);
/* Image in the secondary slot is invalid. Erase the image and
* continue booting from the primary slot.
*/
}
#if !defined(__BOOTSIM__)
BOOT_LOG_ERR("Image in the %s slot is not valid!",
(slot == BOOT_PRIMARY_SLOT) ? "primary" : "secondary");
#endif
rc = 1;
goto out;
}
/* Image in the secondary slot is valid. */
rc = 0;
out:
flash_area_close(fap);
return rc;
}
/**
* Determines which swap operation to perform, if any. If it is determined
* that a swap operation is required, the image in the secondary slot is checked
* for validity. If the image in the secondary slot is invalid, it is erased,
* and a swap type of "none" is indicated.
*
* @return The type of swap to perform (BOOT_SWAP_TYPE...)
*/
static int
boot_validated_swap_type(struct boot_loader_state *state,
struct boot_status *bs)
{
int swap_type;
int rc;
swap_type = boot_swap_type_multi(BOOT_CURR_IMG(state));
if (BOOT_IS_UPGRADE(swap_type)) {
/* Boot loader wants to switch to the secondary slot.
* Ensure image is valid.
*/
rc = boot_validate_slot(state, BOOT_SECONDARY_SLOT, bs);
if (rc == 1) {
swap_type = BOOT_SWAP_TYPE_NONE;
} else if (rc != 0) {
swap_type = BOOT_SWAP_TYPE_FAIL;
}
}
return swap_type;
}
#ifdef MCUBOOT_HW_ROLLBACK_PROT
/**
* Updates the stored security counter value with the image's security counter
* value which resides in the given slot, only if it's greater than the stored
* value.
*
* @param image_index Index of the image to determine which security
* counter to update.
* @param slot Slot number of the image.
* @param hdr Pointer to the image header structure of the image
* that is currently stored in the given slot.
*
* @return 0 on success; nonzero on failure.
*/
static int
boot_update_security_counter(uint8_t image_index, int slot,
struct image_header *hdr)
{
const struct flash_area *fap = NULL;
uint32_t img_security_cnt;
int rc;
rc = flash_area_open(flash_area_id_from_multi_image_slot(image_index, slot),
&fap);
if (rc != 0) {
rc = BOOT_EFLASH;
goto done;
}
rc = bootutil_get_img_security_cnt(hdr, fap, &img_security_cnt);
if (rc != 0) {
goto done;
}
rc = boot_nv_security_counter_update(image_index, img_security_cnt);
if (rc != 0) {
goto done;
}
done:
flash_area_close(fap);
return rc;
}
#endif /* MCUBOOT_HW_ROLLBACK_PROT */
/**
* Erases a region of flash.
*
* @param flash_area The flash_area containing the region to erase.
* @param off The offset within the flash area to start the
* erase.
* @param sz The number of bytes to erase.
*
* @return 0 on success; nonzero on failure.
*/
int
boot_erase_region(const struct flash_area *fap, uint32_t off, uint32_t sz)
{
return flash_area_erase(fap, off, sz);
}
/**
* Copies the contents of one flash region to another. You must erase the
* destination region prior to calling this function.
*
* @param flash_area_id_src The ID of the source flash area.
* @param flash_area_id_dst The ID of the destination flash area.
* @param off_src The offset within the source flash area to
* copy from.
* @param off_dst The offset within the destination flash area to
* copy to.
* @param sz The number of bytes to copy.
*
* @return 0 on success; nonzero on failure.
*/
int
boot_copy_region(struct boot_loader_state *state,
const struct flash_area *fap_src,
const struct flash_area *fap_dst,
uint32_t off_src, uint32_t off_dst, uint32_t sz)
{
uint32_t bytes_copied;
int chunk_sz;
int rc;
#ifdef MCUBOOT_ENC_IMAGES
uint32_t off;
uint32_t tlv_off;
size_t blk_off;
struct image_header *hdr;
uint16_t idx;
uint32_t blk_sz;
uint8_t image_index;
#endif
TARGET_STATIC uint8_t buf[1024];
#if !defined(MCUBOOT_ENC_IMAGES)
(void)state;
#endif
bytes_copied = 0;
while (bytes_copied < sz) {
if (sz - bytes_copied > sizeof buf) {
chunk_sz = sizeof buf;
} else {
chunk_sz = sz - bytes_copied;
}
rc = flash_area_read(fap_src, off_src + bytes_copied, buf, chunk_sz);
if (rc != 0) {
return BOOT_EFLASH;
}
#ifdef MCUBOOT_ENC_IMAGES
image_index = BOOT_CURR_IMG(state);
if ((fap_src->fa_id == FLASH_AREA_IMAGE_SECONDARY(image_index) ||
fap_dst->fa_id == FLASH_AREA_IMAGE_SECONDARY(image_index)) &&
!(fap_src->fa_id == FLASH_AREA_IMAGE_SECONDARY(image_index) &&
fap_dst->fa_id == FLASH_AREA_IMAGE_SECONDARY(image_index))) {
/* assume the secondary slot as src, needs decryption */
hdr = boot_img_hdr(state, BOOT_SECONDARY_SLOT);
#if !defined(MCUBOOT_SWAP_USING_MOVE)
off = off_src;
if (fap_dst->fa_id == FLASH_AREA_IMAGE_SECONDARY(image_index)) {
/* might need encryption (metadata from the primary slot) */
hdr = boot_img_hdr(state, BOOT_PRIMARY_SLOT);
off = off_dst;
}
#else
off = off_dst;
if (fap_dst->fa_id == FLASH_AREA_IMAGE_SECONDARY(image_index)) {
hdr = boot_img_hdr(state, BOOT_PRIMARY_SLOT);
}
#endif
if (IS_ENCRYPTED(hdr)) {
blk_sz = chunk_sz;
idx = 0;
if (off + bytes_copied < hdr->ih_hdr_size) {
/* do not decrypt header */
blk_off = 0;
blk_sz = chunk_sz - hdr->ih_hdr_size;
idx = hdr->ih_hdr_size;
} else {
blk_off = ((off + bytes_copied) - hdr->ih_hdr_size) & 0xf;
}
tlv_off = BOOT_TLV_OFF(hdr);
if (off + bytes_copied + chunk_sz > tlv_off) {
/* do not decrypt TLVs */
if (off + bytes_copied >= tlv_off) {
blk_sz = 0;
} else {
blk_sz = tlv_off - (off + bytes_copied);
}
}
boot_encrypt(BOOT_CURR_ENC(state), image_index, fap_src,
(off + bytes_copied + idx) - hdr->ih_hdr_size, blk_sz,
blk_off, &buf[idx]);
}
}
#endif
rc = flash_area_write(fap_dst, off_dst + bytes_copied, buf, chunk_sz);
if (rc != 0) {
return BOOT_EFLASH;
}
bytes_copied += chunk_sz;
MCUBOOT_WATCHDOG_FEED();
}
return 0;
}
/**
* Overwrite primary slot with the image contained in the secondary slot.
* If a prior copy operation was interrupted by a system reset, this function
* redos the copy.
*
* @param bs The current boot status. This function reads
* this struct to determine if it is resuming
* an interrupted swap operation. This
* function writes the updated status to this
* function on return.
*
* @return 0 on success; nonzero on failure.
*/
#if defined(MCUBOOT_OVERWRITE_ONLY) || defined(MCUBOOT_BOOTSTRAP)
static int
boot_copy_image(struct boot_loader_state *state, struct boot_status *bs)
{
size_t sect_count;
size_t sect;
int rc;
size_t size;
size_t this_size;
size_t last_sector;
const struct flash_area *fap_primary_slot;
const struct flash_area *fap_secondary_slot;
uint8_t image_index;
(void)bs;
#if defined(MCUBOOT_OVERWRITE_ONLY_FAST)
uint32_t src_size = 0;
rc = boot_read_image_size(state, BOOT_SECONDARY_SLOT, &src_size);
assert(rc == 0);
#endif
BOOT_LOG_INF("Image upgrade secondary slot -> primary slot");
BOOT_LOG_INF("Erasing the primary slot");
image_index = BOOT_CURR_IMG(state);
rc = flash_area_open(FLASH_AREA_IMAGE_PRIMARY(image_index),
&fap_primary_slot);
assert (rc == 0);
rc = flash_area_open(FLASH_AREA_IMAGE_SECONDARY(image_index),
&fap_secondary_slot);
assert (rc == 0);
sect_count = boot_img_num_sectors(state, BOOT_PRIMARY_SLOT);
for (sect = 0, size = 0; sect < sect_count; sect++) {
this_size = boot_img_sector_size(state, BOOT_PRIMARY_SLOT, sect);
rc = boot_erase_region(fap_primary_slot, size, this_size);
assert(rc == 0);
size += this_size;
#if defined(MCUBOOT_OVERWRITE_ONLY_FAST)
if (size >= src_size) {
break;
}
#endif
}
#ifdef MCUBOOT_ENC_IMAGES
if (IS_ENCRYPTED(boot_img_hdr(state, BOOT_SECONDARY_SLOT))) {
rc = boot_enc_load(BOOT_CURR_ENC(state), image_index,
boot_img_hdr(state, BOOT_SECONDARY_SLOT),
fap_secondary_slot, bs);
if (rc < 0) {
return BOOT_EBADIMAGE;
}
if (rc == 0 && boot_enc_set_key(BOOT_CURR_ENC(state), 1, bs)) {
return BOOT_EBADIMAGE;
}
}
#endif
BOOT_LOG_INF("Copying the secondary slot to the primary slot: 0x%zx bytes",
size);
rc = boot_copy_region(state, fap_secondary_slot, fap_primary_slot, 0, 0, size);
#ifdef MCUBOOT_HW_ROLLBACK_PROT
/* Update the stored security counter with the new image's security counter
* value. Both slots hold the new image at this point, but the secondary
* slot's image header must be passed since the image headers in the
* boot_data structure have not been updated yet.
*/
rc = boot_update_security_counter(BOOT_CURR_IMG(state), BOOT_PRIMARY_SLOT,
boot_img_hdr(state, BOOT_SECONDARY_SLOT));
if (rc != 0) {
BOOT_LOG_ERR("Security counter update failed after image upgrade.");
return rc;
}
#endif /* MCUBOOT_HW_ROLLBACK_PROT */
/*
* Erases header and trailer. The trailer is erased because when a new
* image is written without a trailer as is the case when using newt, the
* trailer that was left might trigger a new upgrade.
*/
BOOT_LOG_DBG("erasing secondary header");
rc = boot_erase_region(fap_secondary_slot,
boot_img_sector_off(state, BOOT_SECONDARY_SLOT, 0),
boot_img_sector_size(state, BOOT_SECONDARY_SLOT, 0));
assert(rc == 0);
last_sector = boot_img_num_sectors(state, BOOT_SECONDARY_SLOT) - 1;
BOOT_LOG_DBG("erasing secondary trailer");
rc = boot_erase_region(fap_secondary_slot,
boot_img_sector_off(state, BOOT_SECONDARY_SLOT,
last_sector),
boot_img_sector_size(state, BOOT_SECONDARY_SLOT,
last_sector));
assert(rc == 0);
flash_area_close(fap_primary_slot);
flash_area_close(fap_secondary_slot);
/* TODO: Perhaps verify the primary slot's signature again? */
return 0;
}
#endif
#if !defined(MCUBOOT_OVERWRITE_ONLY)
/**
* Swaps the two images in flash. If a prior copy operation was interrupted
* by a system reset, this function completes that operation.
*
* @param bs The current boot status. This function reads
* this struct to determine if it is resuming
* an interrupted swap operation. This
* function writes the updated status to this
* function on return.
*
* @return 0 on success; nonzero on failure.
*/
static int
boot_swap_image(struct boot_loader_state *state, struct boot_status *bs)
{
struct image_header *hdr;
#ifdef MCUBOOT_ENC_IMAGES
const struct flash_area *fap;
uint8_t slot;
uint8_t i;
#endif
uint32_t size;
uint32_t copy_size;
uint8_t image_index;
int rc;
/* FIXME: just do this if asked by user? */
size = copy_size = 0;
image_index = BOOT_CURR_IMG(state);
if (boot_status_is_reset(bs)) {
/*
* No swap ever happened, so need to find the largest image which
* will be used to determine the amount of sectors to swap.
*/
hdr = boot_img_hdr(state, BOOT_PRIMARY_SLOT);
if (hdr->ih_magic == IMAGE_MAGIC) {
rc = boot_read_image_size(state, BOOT_PRIMARY_SLOT, ©_size);
assert(rc == 0);
}
#ifdef MCUBOOT_ENC_IMAGES
if (IS_ENCRYPTED(hdr)) {