Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 1 | /* |
| 2 | * Licensed to the Apache Software Foundation (ASF) under one |
| 3 | * or more contributor license agreements. See the NOTICE file |
| 4 | * distributed with this work for additional information |
| 5 | * regarding copyright ownership. The ASF licenses this file |
| 6 | * to you under the Apache License, Version 2.0 (the |
| 7 | * "License"); you may not use this file except in compliance |
| 8 | * with the License. You may obtain a copy of the License at |
| 9 | * |
| 10 | * http://www.apache.org/licenses/LICENSE-2.0 |
| 11 | * |
| 12 | * Unless required by applicable law or agreed to in writing, |
| 13 | * software distributed under the License is distributed on an |
| 14 | * "AS IS" BASIS, WITHOUT WARRANTIES OR CONDITIONS OF ANY |
| 15 | * KIND, either express or implied. See the License for the |
| 16 | * specific language governing permissions and limitations |
| 17 | * under the License. |
| 18 | */ |
| 19 | |
Tamas Ban | 581034a | 2017-12-19 19:54:37 +0000 | [diff] [blame] | 20 | /* |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 21 | * Original code taken from mcuboot project at: |
| 22 | * https://github.com/runtimeco/mcuboot |
Tamas Ban | 5b64747 | 2019-01-05 08:59:30 +0000 | [diff] [blame^] | 23 | * Modifications are Copyright (c) 2018-2019 Arm Limited. |
Tamas Ban | 581034a | 2017-12-19 19:54:37 +0000 | [diff] [blame] | 24 | */ |
| 25 | |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 26 | /** |
| 27 | * This file provides an interface to the boot loader. Functions defined in |
| 28 | * this file should only be called while the boot loader is running. |
| 29 | */ |
| 30 | |
| 31 | #include <assert.h> |
| 32 | #include <stddef.h> |
| 33 | #include <stdbool.h> |
| 34 | #include <inttypes.h> |
| 35 | #include <stdlib.h> |
| 36 | #include <string.h> |
Tamas Ban | c382885 | 2018-02-01 12:24:16 +0000 | [diff] [blame] | 37 | #include "flash_map/flash_map.h" |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 38 | #include "bootutil/bootutil.h" |
| 39 | #include "bootutil/image.h" |
| 40 | #include "bootutil_priv.h" |
Tamas Ban | a9de4a6 | 2018-09-18 08:09:45 +0100 | [diff] [blame] | 41 | #include "bl2/include/tfm_boot_status.h" |
| 42 | #include "bl2/include/boot_record.h" |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 43 | |
| 44 | #define BOOT_LOG_LEVEL BOOT_LOG_LEVEL_INFO |
| 45 | #include "bootutil/bootutil_log.h" |
| 46 | |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 47 | static struct boot_loader_state boot_data; |
| 48 | |
Oliver Swede | f998244 | 2018-08-24 18:37:44 +0100 | [diff] [blame] | 49 | #if !defined(MCUBOOT_NO_SWAP) && !defined(MCUBOOT_RAM_LOADING) |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 50 | struct boot_status_table { |
| 51 | /** |
| 52 | * For each field, a value of 0 means "any". |
| 53 | */ |
| 54 | uint8_t bst_magic_slot0; |
| 55 | uint8_t bst_magic_scratch; |
| 56 | uint8_t bst_copy_done_slot0; |
| 57 | uint8_t bst_status_source; |
| 58 | }; |
| 59 | |
| 60 | /** |
| 61 | * This set of tables maps swap state contents to boot status location. |
| 62 | * When searching for a match, these tables must be iterated in order. |
| 63 | */ |
| 64 | static const struct boot_status_table boot_status_tables[] = { |
| 65 | { |
| 66 | /* | slot-0 | scratch | |
| 67 | * ----------+------------+------------| |
| 68 | * magic | Good | Any | |
| 69 | * copy-done | 0x01 | N/A | |
| 70 | * ----------+------------+------------' |
| 71 | * source: none | |
| 72 | * ------------------------------------' |
| 73 | */ |
| 74 | .bst_magic_slot0 = BOOT_MAGIC_GOOD, |
| 75 | .bst_magic_scratch = 0, |
| 76 | .bst_copy_done_slot0 = 0x01, |
| 77 | .bst_status_source = BOOT_STATUS_SOURCE_NONE, |
| 78 | }, |
| 79 | |
| 80 | { |
| 81 | /* | slot-0 | scratch | |
| 82 | * ----------+------------+------------| |
| 83 | * magic | Good | Any | |
| 84 | * copy-done | 0xff | N/A | |
| 85 | * ----------+------------+------------' |
| 86 | * source: slot 0 | |
| 87 | * ------------------------------------' |
| 88 | */ |
| 89 | .bst_magic_slot0 = BOOT_MAGIC_GOOD, |
| 90 | .bst_magic_scratch = 0, |
| 91 | .bst_copy_done_slot0 = 0xff, |
| 92 | .bst_status_source = BOOT_STATUS_SOURCE_SLOT0, |
| 93 | }, |
| 94 | |
| 95 | { |
| 96 | /* | slot-0 | scratch | |
| 97 | * ----------+------------+------------| |
| 98 | * magic | Any | Good | |
| 99 | * copy-done | Any | N/A | |
| 100 | * ----------+------------+------------' |
| 101 | * source: scratch | |
| 102 | * ------------------------------------' |
| 103 | */ |
| 104 | .bst_magic_slot0 = 0, |
| 105 | .bst_magic_scratch = BOOT_MAGIC_GOOD, |
| 106 | .bst_copy_done_slot0 = 0, |
| 107 | .bst_status_source = BOOT_STATUS_SOURCE_SCRATCH, |
| 108 | }, |
| 109 | |
| 110 | { |
| 111 | /* | slot-0 | scratch | |
| 112 | * ----------+------------+------------| |
| 113 | * magic | Unset | Any | |
| 114 | * copy-done | 0xff | N/A | |
| 115 | * ----------+------------+------------| |
| 116 | * source: varies | |
| 117 | * ------------------------------------+------------------------------+ |
| 118 | * This represents one of two cases: | |
| 119 | * o No swaps ever (no status to read, so no harm in checking). | |
| 120 | * o Mid-revert; status in slot 0. | |
| 121 | * -------------------------------------------------------------------' |
| 122 | */ |
| 123 | .bst_magic_slot0 = BOOT_MAGIC_UNSET, |
| 124 | .bst_magic_scratch = 0, |
| 125 | .bst_copy_done_slot0 = 0xff, |
| 126 | .bst_status_source = BOOT_STATUS_SOURCE_SLOT0, |
| 127 | }, |
| 128 | }; |
| 129 | |
| 130 | #define BOOT_STATUS_TABLES_COUNT \ |
Tamas Ban | 581034a | 2017-12-19 19:54:37 +0000 | [diff] [blame] | 131 | (sizeof(boot_status_tables) / sizeof(boot_status_tables[0])) |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 132 | |
| 133 | #define BOOT_LOG_SWAP_STATE(area, state) \ |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 134 | BOOT_LOG_INF("%s: magic=%5s, copy_done=0x%x, image_ok=0x%x", \ |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 135 | (area), \ |
| 136 | ((state)->magic == BOOT_MAGIC_GOOD ? "good" : \ |
| 137 | (state)->magic == BOOT_MAGIC_UNSET ? "unset" : \ |
| 138 | "bad"), \ |
| 139 | (state)->copy_done, \ |
| 140 | (state)->image_ok) |
Oliver Swede | f998244 | 2018-08-24 18:37:44 +0100 | [diff] [blame] | 141 | #endif /* !MCUBOOT_NO_SWAP && !MCUBOOT_RAM_LOADING */ |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 142 | |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 143 | |
| 144 | static int |
| 145 | boot_read_image_header(int slot, struct image_header *out_hdr) |
| 146 | { |
| 147 | const struct flash_area *fap = NULL; |
| 148 | int area_id; |
| 149 | int rc; |
| 150 | |
| 151 | area_id = flash_area_id_from_image_slot(slot); |
| 152 | rc = flash_area_open(area_id, &fap); |
| 153 | if (rc != 0) { |
| 154 | rc = BOOT_EFLASH; |
| 155 | goto done; |
| 156 | } |
| 157 | |
| 158 | rc = flash_area_read(fap, 0, out_hdr, sizeof(*out_hdr)); |
| 159 | if (rc != 0) { |
| 160 | rc = BOOT_EFLASH; |
| 161 | goto done; |
| 162 | } |
| 163 | |
| 164 | rc = 0; |
| 165 | |
| 166 | done: |
| 167 | flash_area_close(fap); |
| 168 | return rc; |
| 169 | } |
| 170 | |
| 171 | static int |
| 172 | boot_read_image_headers(void) |
| 173 | { |
| 174 | int rc; |
| 175 | int i; |
| 176 | |
| 177 | for (i = 0; i < BOOT_NUM_SLOTS; i++) { |
| 178 | rc = boot_read_image_header(i, boot_img_hdr(&boot_data, i)); |
| 179 | if (rc != 0) { |
| 180 | /* If at least the first slot's header was read successfully, then |
| 181 | * the boot loader can attempt a boot. Failure to read any headers |
| 182 | * is a fatal error. |
| 183 | */ |
| 184 | if (i > 0) { |
| 185 | return 0; |
| 186 | } else { |
| 187 | return rc; |
| 188 | } |
| 189 | } |
| 190 | } |
| 191 | |
| 192 | return 0; |
| 193 | } |
| 194 | |
| 195 | static uint8_t |
| 196 | boot_write_sz(void) |
| 197 | { |
| 198 | const struct flash_area *fap; |
| 199 | uint8_t elem_sz; |
| 200 | uint8_t align; |
| 201 | int rc; |
| 202 | |
| 203 | /* Figure out what size to write update status update as. The size depends |
| 204 | * on what the minimum write size is for scratch area, active image slot. |
| 205 | * We need to use the bigger of those 2 values. |
| 206 | */ |
| 207 | rc = flash_area_open(FLASH_AREA_IMAGE_0, &fap); |
| 208 | assert(rc == 0); |
| 209 | elem_sz = flash_area_align(fap); |
| 210 | flash_area_close(fap); |
| 211 | |
| 212 | rc = flash_area_open(FLASH_AREA_IMAGE_SCRATCH, &fap); |
| 213 | assert(rc == 0); |
| 214 | align = flash_area_align(fap); |
| 215 | flash_area_close(fap); |
| 216 | |
| 217 | if (align > elem_sz) { |
| 218 | elem_sz = align; |
| 219 | } |
| 220 | |
| 221 | return elem_sz; |
| 222 | } |
| 223 | |
| 224 | /** |
| 225 | * Determines the sector layout of both image slots and the scratch area. |
| 226 | * This information is necessary for calculating the number of bytes to erase |
| 227 | * and copy during an image swap. The information collected during this |
| 228 | * function is used to populate the boot_data global. |
| 229 | */ |
| 230 | static int |
| 231 | boot_read_sectors(void) |
| 232 | { |
| 233 | int rc; |
| 234 | |
| 235 | rc = boot_initialize_area(&boot_data, FLASH_AREA_IMAGE_0); |
| 236 | if (rc != 0) { |
| 237 | return BOOT_EFLASH; |
| 238 | } |
| 239 | |
| 240 | rc = boot_initialize_area(&boot_data, FLASH_AREA_IMAGE_1); |
| 241 | if (rc != 0) { |
| 242 | return BOOT_EFLASH; |
| 243 | } |
| 244 | |
| 245 | BOOT_WRITE_SZ(&boot_data) = boot_write_sz(); |
| 246 | |
| 247 | return 0; |
| 248 | } |
| 249 | |
| 250 | /* |
| 251 | * Validate image hash/signature in a slot. |
| 252 | */ |
| 253 | static int |
Tamas Ban | a9de4a6 | 2018-09-18 08:09:45 +0100 | [diff] [blame] | 254 | boot_image_check(struct image_header *hdr, const struct flash_area *fap, uint8_t *out_hash) |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 255 | { |
| 256 | static uint8_t tmpbuf[BOOT_TMPBUF_SZ]; |
| 257 | |
| 258 | if (bootutil_img_validate(hdr, fap, tmpbuf, BOOT_TMPBUF_SZ, |
Tamas Ban | a9de4a6 | 2018-09-18 08:09:45 +0100 | [diff] [blame] | 259 | NULL, 0, out_hash)) { |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 260 | return BOOT_EBADIMAGE; |
| 261 | } |
| 262 | return 0; |
| 263 | } |
| 264 | |
| 265 | static int |
| 266 | boot_validate_slot(int slot) |
| 267 | { |
| 268 | const struct flash_area *fap; |
| 269 | struct image_header *hdr; |
Tamas Ban | a9de4a6 | 2018-09-18 08:09:45 +0100 | [diff] [blame] | 270 | uint8_t hash[32]; |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 271 | int rc; |
| 272 | |
| 273 | hdr = boot_img_hdr(&boot_data, slot); |
| 274 | if (hdr->ih_magic == 0xffffffff || hdr->ih_flags & IMAGE_F_NON_BOOTABLE) { |
| 275 | /* No bootable image in slot; continue booting from slot 0. */ |
| 276 | return -1; |
| 277 | } |
| 278 | |
| 279 | rc = flash_area_open(flash_area_id_from_image_slot(slot), &fap); |
| 280 | if (rc != 0) { |
| 281 | return BOOT_EFLASH; |
| 282 | } |
| 283 | |
Tamas Ban | a9de4a6 | 2018-09-18 08:09:45 +0100 | [diff] [blame] | 284 | if ((hdr->ih_magic != IMAGE_MAGIC || |
| 285 | boot_image_check(hdr, fap, hash) != 0)) { |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 286 | if (slot != 0) { |
David Vincze | 26e8c8a | 2018-08-28 16:59:41 +0200 | [diff] [blame] | 287 | rc = flash_area_erase(fap, 0, fap->fa_size); |
| 288 | if(rc != 0) { |
| 289 | flash_area_close(fap); |
| 290 | return BOOT_EFLASH; |
| 291 | } |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 292 | /* Image in slot 1 is invalid. Erase the image and |
| 293 | * continue booting from slot 0. |
| 294 | */ |
| 295 | } |
| 296 | BOOT_LOG_ERR("Authentication failed! Image in slot %d is not valid.", |
| 297 | slot); |
| 298 | return -1; |
Tamas Ban | a9de4a6 | 2018-09-18 08:09:45 +0100 | [diff] [blame] | 299 | } else { |
| 300 | if (0 != boot_add_data_to_shared_area(TLV_MAJOR_IAS, |
Tamas Ban | 5b64747 | 2019-01-05 08:59:30 +0000 | [diff] [blame^] | 301 | TLV_MINOR_IAS_S_NS_MEASURE_VALUE, |
Tamas Ban | a9de4a6 | 2018-09-18 08:09:45 +0100 | [diff] [blame] | 302 | sizeof(hash), |
| 303 | hash)) { |
| 304 | BOOT_LOG_ERR("Failed to add data to shared area"); |
| 305 | } |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 306 | } |
| 307 | |
| 308 | flash_area_close(fap); |
| 309 | |
| 310 | /* Image in slot 1 is valid. */ |
| 311 | return 0; |
| 312 | } |
| 313 | |
Oliver Swede | f998244 | 2018-08-24 18:37:44 +0100 | [diff] [blame] | 314 | #if !defined(MCUBOOT_NO_SWAP) && !defined(MCUBOOT_OVERWRITE_ONLY) |
| 315 | /* |
| 316 | * Compute the total size of the given image. Includes the size of |
| 317 | * the TLVs. |
| 318 | */ |
| 319 | static int |
| 320 | boot_read_image_size(int slot, struct image_header *hdr, uint32_t *size) |
| 321 | { |
| 322 | const struct flash_area *fap = NULL; |
| 323 | struct image_tlv_info info; |
| 324 | int area_id; |
| 325 | int rc; |
| 326 | |
| 327 | area_id = flash_area_id_from_image_slot(slot); |
| 328 | rc = flash_area_open(area_id, &fap); |
| 329 | if (rc != 0) { |
| 330 | rc = BOOT_EFLASH; |
| 331 | goto done; |
| 332 | } |
| 333 | |
| 334 | rc = flash_area_read(fap, hdr->ih_hdr_size + hdr->ih_img_size, |
| 335 | &info, sizeof(info)); |
| 336 | if (rc != 0) { |
| 337 | rc = BOOT_EFLASH; |
| 338 | goto done; |
| 339 | } |
| 340 | if (info.it_magic != IMAGE_TLV_INFO_MAGIC) { |
| 341 | rc = BOOT_EBADIMAGE; |
| 342 | goto done; |
| 343 | } |
| 344 | *size = hdr->ih_hdr_size + hdr->ih_img_size + info.it_tlv_tot; |
| 345 | rc = 0; |
| 346 | |
| 347 | done: |
| 348 | flash_area_close(fap); |
| 349 | return rc; |
| 350 | } |
| 351 | #endif /* !MCUBOOT_NO_SWAP && !MCUBOOT_OVERWRITE_ONLY */ |
| 352 | |
| 353 | #if !defined(MCUBOOT_NO_SWAP) && !defined(MCUBOOT_RAM_LOADING) |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 354 | /** |
Tamas Ban | 581034a | 2017-12-19 19:54:37 +0000 | [diff] [blame] | 355 | * Determines where in flash the most recent boot status is stored. The boot |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 356 | * status is necessary for completing a swap that was interrupted by a boot |
| 357 | * loader reset. |
| 358 | * |
Tamas Ban | 581034a | 2017-12-19 19:54:37 +0000 | [diff] [blame] | 359 | * @return BOOT_STATUS_SOURCE_[...] code indicating where |
| 360 | * status should be read from. |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 361 | */ |
| 362 | static int |
| 363 | boot_status_source(void) |
| 364 | { |
| 365 | const struct boot_status_table *table; |
| 366 | struct boot_swap_state state_scratch; |
| 367 | struct boot_swap_state state_slot0; |
| 368 | int rc; |
| 369 | int i; |
| 370 | uint8_t source; |
| 371 | |
| 372 | rc = boot_read_swap_state_by_id(FLASH_AREA_IMAGE_0, &state_slot0); |
| 373 | assert(rc == 0); |
| 374 | |
| 375 | rc = boot_read_swap_state_by_id(FLASH_AREA_IMAGE_SCRATCH, &state_scratch); |
| 376 | assert(rc == 0); |
| 377 | |
| 378 | BOOT_LOG_SWAP_STATE("Image 0", &state_slot0); |
| 379 | BOOT_LOG_SWAP_STATE("Scratch", &state_scratch); |
| 380 | |
| 381 | for (i = 0; i < BOOT_STATUS_TABLES_COUNT; i++) { |
| 382 | table = &boot_status_tables[i]; |
| 383 | |
| 384 | if ((table->bst_magic_slot0 == 0 || |
| 385 | table->bst_magic_slot0 == state_slot0.magic) && |
| 386 | (table->bst_magic_scratch == 0 || |
| 387 | table->bst_magic_scratch == state_scratch.magic) && |
| 388 | (table->bst_copy_done_slot0 == 0 || |
| 389 | table->bst_copy_done_slot0 == state_slot0.copy_done)) { |
| 390 | source = table->bst_status_source; |
| 391 | BOOT_LOG_INF("Boot source: %s", |
| 392 | source == BOOT_STATUS_SOURCE_NONE ? "none" : |
| 393 | source == BOOT_STATUS_SOURCE_SCRATCH ? "scratch" : |
| 394 | source == BOOT_STATUS_SOURCE_SLOT0 ? "slot 0" : |
| 395 | "BUG; can't happen"); |
| 396 | return source; |
| 397 | } |
| 398 | } |
| 399 | |
| 400 | BOOT_LOG_INF("Boot source: none"); |
| 401 | return BOOT_STATUS_SOURCE_NONE; |
| 402 | } |
| 403 | |
| 404 | /** |
| 405 | * Calculates the type of swap that just completed. |
| 406 | * |
| 407 | * This is used when a swap is interrupted by an external event. After |
| 408 | * finishing the swap operation determines what the initial request was. |
| 409 | */ |
| 410 | static int |
| 411 | boot_previous_swap_type(void) |
| 412 | { |
| 413 | int post_swap_type; |
| 414 | |
| 415 | post_swap_type = boot_swap_type(); |
| 416 | |
| 417 | switch (post_swap_type) { |
Tamas Ban | 581034a | 2017-12-19 19:54:37 +0000 | [diff] [blame] | 418 | case BOOT_SWAP_TYPE_NONE: return BOOT_SWAP_TYPE_PERM; |
| 419 | case BOOT_SWAP_TYPE_REVERT: return BOOT_SWAP_TYPE_TEST; |
| 420 | case BOOT_SWAP_TYPE_PANIC: return BOOT_SWAP_TYPE_PANIC; |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 421 | } |
| 422 | |
| 423 | return BOOT_SWAP_TYPE_FAIL; |
| 424 | } |
| 425 | |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 426 | static int |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 427 | boot_slots_compatible(void) |
| 428 | { |
| 429 | size_t num_sectors_0 = boot_img_num_sectors(&boot_data, 0); |
| 430 | size_t num_sectors_1 = boot_img_num_sectors(&boot_data, 1); |
| 431 | size_t size_0, size_1; |
| 432 | size_t i; |
| 433 | |
| 434 | /* Ensure both image slots have identical sector layouts. */ |
| 435 | if (num_sectors_0 != num_sectors_1) { |
| 436 | return 0; |
| 437 | } |
| 438 | for (i = 0; i < num_sectors_0; i++) { |
| 439 | size_0 = boot_img_sector_size(&boot_data, 0, i); |
| 440 | size_1 = boot_img_sector_size(&boot_data, 1, i); |
| 441 | if (size_0 != size_1) { |
| 442 | return 0; |
| 443 | } |
| 444 | } |
| 445 | |
| 446 | return 1; |
| 447 | } |
| 448 | |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 449 | |
| 450 | static uint32_t |
| 451 | boot_status_internal_off(int idx, int state, int elem_sz) |
| 452 | { |
| 453 | int idx_sz; |
| 454 | |
| 455 | idx_sz = elem_sz * BOOT_STATUS_STATE_COUNT; |
| 456 | |
| 457 | return idx * idx_sz + state * elem_sz; |
| 458 | } |
| 459 | |
| 460 | /** |
| 461 | * Reads the status of a partially-completed swap, if any. This is necessary |
| 462 | * to recover in case the boot lodaer was reset in the middle of a swap |
| 463 | * operation. |
| 464 | */ |
| 465 | static int |
| 466 | boot_read_status_bytes(const struct flash_area *fap, struct boot_status *bs) |
| 467 | { |
| 468 | uint32_t off; |
| 469 | uint8_t status; |
| 470 | int max_entries; |
| 471 | int found; |
| 472 | int rc; |
| 473 | int i; |
| 474 | |
| 475 | off = boot_status_off(fap); |
| 476 | max_entries = boot_status_entries(fap); |
| 477 | |
| 478 | found = 0; |
| 479 | for (i = 0; i < max_entries; i++) { |
| 480 | rc = flash_area_read(fap, off + i * BOOT_WRITE_SZ(&boot_data), |
| 481 | &status, 1); |
| 482 | if (rc != 0) { |
| 483 | return BOOT_EFLASH; |
| 484 | } |
| 485 | |
| 486 | if (status == 0xff) { |
| 487 | if (found) { |
| 488 | break; |
| 489 | } |
| 490 | } else if (!found) { |
| 491 | found = 1; |
| 492 | } |
| 493 | } |
| 494 | |
| 495 | if (found) { |
| 496 | i--; |
| 497 | bs->idx = i / BOOT_STATUS_STATE_COUNT; |
| 498 | bs->state = i % BOOT_STATUS_STATE_COUNT; |
| 499 | } |
| 500 | |
| 501 | return 0; |
| 502 | } |
| 503 | |
| 504 | /** |
| 505 | * Reads the boot status from the flash. The boot status contains |
| 506 | * the current state of an interrupted image copy operation. If the boot |
| 507 | * status is not present, or it indicates that previous copy finished, |
| 508 | * there is no operation in progress. |
| 509 | */ |
| 510 | static int |
| 511 | boot_read_status(struct boot_status *bs) |
| 512 | { |
| 513 | const struct flash_area *fap; |
| 514 | int status_loc; |
| 515 | int area_id; |
| 516 | int rc; |
| 517 | |
Tamas Ban | 581034a | 2017-12-19 19:54:37 +0000 | [diff] [blame] | 518 | memset(bs, 0, sizeof(*bs)); |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 519 | |
| 520 | status_loc = boot_status_source(); |
| 521 | switch (status_loc) { |
| 522 | case BOOT_STATUS_SOURCE_NONE: |
| 523 | return 0; |
| 524 | |
| 525 | case BOOT_STATUS_SOURCE_SCRATCH: |
| 526 | area_id = FLASH_AREA_IMAGE_SCRATCH; |
| 527 | break; |
| 528 | |
| 529 | case BOOT_STATUS_SOURCE_SLOT0: |
| 530 | area_id = FLASH_AREA_IMAGE_0; |
| 531 | break; |
| 532 | |
| 533 | default: |
| 534 | assert(0); |
| 535 | return BOOT_EBADARGS; |
| 536 | } |
| 537 | |
| 538 | rc = flash_area_open(area_id, &fap); |
| 539 | if (rc != 0) { |
| 540 | return BOOT_EFLASH; |
| 541 | } |
| 542 | |
| 543 | rc = boot_read_status_bytes(fap, bs); |
| 544 | |
| 545 | flash_area_close(fap); |
| 546 | return rc; |
| 547 | } |
| 548 | |
| 549 | /** |
| 550 | * Writes the supplied boot status to the flash file system. The boot status |
| 551 | * contains the current state of an in-progress image copy operation. |
| 552 | * |
| 553 | * @param bs The boot status to write. |
| 554 | * |
| 555 | * @return 0 on success; nonzero on failure. |
| 556 | */ |
| 557 | int |
| 558 | boot_write_status(struct boot_status *bs) |
| 559 | { |
Tamas Ban | 581034a | 2017-12-19 19:54:37 +0000 | [diff] [blame] | 560 | const struct flash_area *fap = NULL; |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 561 | uint32_t off; |
| 562 | int area_id; |
| 563 | int rc; |
| 564 | uint8_t buf[BOOT_MAX_ALIGN]; |
| 565 | uint8_t align; |
| 566 | |
| 567 | /* NOTE: The first sector copied (that is the last sector on slot) contains |
| 568 | * the trailer. Since in the last step SLOT 0 is erased, the first |
| 569 | * two status writes go to the scratch which will be copied to SLOT 0! |
| 570 | */ |
| 571 | |
| 572 | if (bs->use_scratch) { |
| 573 | /* Write to scratch. */ |
| 574 | area_id = FLASH_AREA_IMAGE_SCRATCH; |
| 575 | } else { |
| 576 | /* Write to slot 0. */ |
| 577 | area_id = FLASH_AREA_IMAGE_0; |
| 578 | } |
| 579 | |
| 580 | rc = flash_area_open(area_id, &fap); |
| 581 | if (rc != 0) { |
| 582 | rc = BOOT_EFLASH; |
| 583 | goto done; |
| 584 | } |
| 585 | |
| 586 | off = boot_status_off(fap) + |
| 587 | boot_status_internal_off(bs->idx, bs->state, |
| 588 | BOOT_WRITE_SZ(&boot_data)); |
| 589 | |
Tamas Ban | c382885 | 2018-02-01 12:24:16 +0000 | [diff] [blame] | 590 | align = flash_area_align(fap); |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 591 | memset(buf, 0xFF, BOOT_MAX_ALIGN); |
| 592 | buf[0] = bs->state; |
| 593 | |
| 594 | rc = flash_area_write(fap, off, buf, align); |
| 595 | if (rc != 0) { |
| 596 | rc = BOOT_EFLASH; |
| 597 | goto done; |
| 598 | } |
| 599 | |
| 600 | rc = 0; |
| 601 | |
| 602 | done: |
| 603 | flash_area_close(fap); |
| 604 | return rc; |
| 605 | } |
| 606 | |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 607 | /** |
| 608 | * Determines which swap operation to perform, if any. If it is determined |
| 609 | * that a swap operation is required, the image in the second slot is checked |
| 610 | * for validity. If the image in the second slot is invalid, it is erased, and |
| 611 | * a swap type of "none" is indicated. |
| 612 | * |
| 613 | * @return The type of swap to perform (BOOT_SWAP_TYPE...) |
| 614 | */ |
| 615 | static int |
| 616 | boot_validated_swap_type(void) |
| 617 | { |
| 618 | int swap_type; |
| 619 | |
| 620 | swap_type = boot_swap_type(); |
| 621 | switch (swap_type) { |
| 622 | case BOOT_SWAP_TYPE_TEST: |
| 623 | case BOOT_SWAP_TYPE_PERM: |
| 624 | case BOOT_SWAP_TYPE_REVERT: |
| 625 | /* Boot loader wants to switch to slot 1. Ensure image is valid. */ |
| 626 | if (boot_validate_slot(1) != 0) { |
| 627 | swap_type = BOOT_SWAP_TYPE_FAIL; |
| 628 | } |
| 629 | } |
| 630 | |
| 631 | return swap_type; |
| 632 | } |
| 633 | |
| 634 | /** |
| 635 | * Calculates the number of sectors the scratch area can contain. A "last" |
| 636 | * source sector is specified because images are copied backwards in flash |
| 637 | * (final index to index number 0). |
| 638 | * |
| 639 | * @param last_sector_idx The index of the last source sector |
| 640 | * (inclusive). |
| 641 | * @param out_first_sector_idx The index of the first source sector |
| 642 | * (inclusive) gets written here. |
| 643 | * |
| 644 | * @return The number of bytes comprised by the |
| 645 | * [first-sector, last-sector] range. |
| 646 | */ |
| 647 | #ifndef MCUBOOT_OVERWRITE_ONLY |
| 648 | static uint32_t |
| 649 | boot_copy_sz(int last_sector_idx, int *out_first_sector_idx) |
| 650 | { |
| 651 | size_t scratch_sz; |
| 652 | uint32_t new_sz; |
| 653 | uint32_t sz; |
| 654 | int i; |
| 655 | |
| 656 | sz = 0; |
| 657 | |
| 658 | scratch_sz = boot_scratch_area_size(&boot_data); |
| 659 | for (i = last_sector_idx; i >= 0; i--) { |
| 660 | new_sz = sz + boot_img_sector_size(&boot_data, 0, i); |
| 661 | if (new_sz > scratch_sz) { |
| 662 | break; |
| 663 | } |
| 664 | sz = new_sz; |
| 665 | } |
| 666 | |
| 667 | /* i currently refers to a sector that doesn't fit or it is -1 because all |
| 668 | * sectors have been processed. In both cases, exclude sector i. |
| 669 | */ |
| 670 | *out_first_sector_idx = i + 1; |
| 671 | return sz; |
| 672 | } |
| 673 | #endif /* !MCUBOOT_OVERWRITE_ONLY */ |
| 674 | |
| 675 | /** |
David Vincze | f7641fa | 2018-09-04 18:29:46 +0200 | [diff] [blame] | 676 | * Erases a region of flash. |
| 677 | * |
| 678 | * @param flash_area_idx The ID of the flash area containing the region |
| 679 | * to erase. |
| 680 | * @param off The offset within the flash area to start the |
| 681 | * erase. |
| 682 | * @param sz The number of bytes to erase. |
| 683 | * |
| 684 | * @return 0 on success; nonzero on failure. |
| 685 | */ |
| 686 | static int |
| 687 | boot_erase_sector(int flash_area_id, uint32_t off, uint32_t sz) |
| 688 | { |
| 689 | const struct flash_area *fap = NULL; |
| 690 | int rc; |
| 691 | |
| 692 | rc = flash_area_open(flash_area_id, &fap); |
| 693 | if (rc != 0) { |
| 694 | rc = BOOT_EFLASH; |
| 695 | goto done; |
| 696 | } |
| 697 | |
| 698 | rc = flash_area_erase(fap, off, sz); |
| 699 | if (rc != 0) { |
| 700 | rc = BOOT_EFLASH; |
| 701 | goto done; |
| 702 | } |
| 703 | |
| 704 | rc = 0; |
| 705 | |
| 706 | done: |
| 707 | flash_area_close(fap); |
| 708 | return rc; |
| 709 | } |
| 710 | |
| 711 | /** |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 712 | * Copies the contents of one flash region to another. You must erase the |
| 713 | * destination region prior to calling this function. |
| 714 | * |
| 715 | * @param flash_area_id_src The ID of the source flash area. |
| 716 | * @param flash_area_id_dst The ID of the destination flash area. |
| 717 | * @param off_src The offset within the source flash area to |
| 718 | * copy from. |
| 719 | * @param off_dst The offset within the destination flash area to |
| 720 | * copy to. |
| 721 | * @param sz The number of bytes to copy. |
| 722 | * |
| 723 | * @return 0 on success; nonzero on failure. |
| 724 | */ |
| 725 | static int |
| 726 | boot_copy_sector(int flash_area_id_src, int flash_area_id_dst, |
| 727 | uint32_t off_src, uint32_t off_dst, uint32_t sz) |
| 728 | { |
| 729 | const struct flash_area *fap_src; |
| 730 | const struct flash_area *fap_dst; |
| 731 | uint32_t bytes_copied; |
| 732 | int chunk_sz; |
| 733 | int rc; |
| 734 | |
| 735 | static uint8_t buf[1024]; |
| 736 | |
| 737 | fap_src = NULL; |
| 738 | fap_dst = NULL; |
| 739 | |
| 740 | rc = flash_area_open(flash_area_id_src, &fap_src); |
| 741 | if (rc != 0) { |
| 742 | rc = BOOT_EFLASH; |
| 743 | goto done; |
| 744 | } |
| 745 | |
| 746 | rc = flash_area_open(flash_area_id_dst, &fap_dst); |
| 747 | if (rc != 0) { |
| 748 | rc = BOOT_EFLASH; |
| 749 | goto done; |
| 750 | } |
| 751 | |
| 752 | bytes_copied = 0; |
| 753 | while (bytes_copied < sz) { |
Tamas Ban | 581034a | 2017-12-19 19:54:37 +0000 | [diff] [blame] | 754 | if (sz - bytes_copied > sizeof(buf)) { |
| 755 | chunk_sz = sizeof(buf); |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 756 | } else { |
| 757 | chunk_sz = sz - bytes_copied; |
| 758 | } |
| 759 | |
| 760 | rc = flash_area_read(fap_src, off_src + bytes_copied, buf, chunk_sz); |
| 761 | if (rc != 0) { |
| 762 | rc = BOOT_EFLASH; |
| 763 | goto done; |
| 764 | } |
| 765 | |
| 766 | rc = flash_area_write(fap_dst, off_dst + bytes_copied, buf, chunk_sz); |
| 767 | if (rc != 0) { |
| 768 | rc = BOOT_EFLASH; |
| 769 | goto done; |
| 770 | } |
| 771 | |
| 772 | bytes_copied += chunk_sz; |
| 773 | } |
| 774 | |
| 775 | rc = 0; |
| 776 | |
| 777 | done: |
| 778 | if (fap_src) { |
| 779 | flash_area_close(fap_src); |
| 780 | } |
| 781 | if (fap_dst) { |
| 782 | flash_area_close(fap_dst); |
| 783 | } |
| 784 | return rc; |
| 785 | } |
| 786 | |
| 787 | #ifndef MCUBOOT_OVERWRITE_ONLY |
| 788 | static inline int |
| 789 | boot_status_init_by_id(int flash_area_id, const struct boot_status *bs) |
| 790 | { |
| 791 | const struct flash_area *fap; |
| 792 | struct boot_swap_state swap_state; |
| 793 | int rc; |
| 794 | |
| 795 | rc = flash_area_open(flash_area_id, &fap); |
| 796 | assert(rc == 0); |
| 797 | |
| 798 | rc = boot_read_swap_state_by_id(FLASH_AREA_IMAGE_1, &swap_state); |
| 799 | assert(rc == 0); |
| 800 | |
| 801 | if (swap_state.image_ok == BOOT_FLAG_SET) { |
| 802 | rc = boot_write_image_ok(fap); |
| 803 | assert(rc == 0); |
| 804 | } |
| 805 | |
| 806 | rc = boot_write_swap_size(fap, bs->swap_size); |
| 807 | assert(rc == 0); |
| 808 | |
| 809 | rc = boot_write_magic(fap); |
| 810 | assert(rc == 0); |
| 811 | |
| 812 | flash_area_close(fap); |
| 813 | |
| 814 | return 0; |
| 815 | } |
David Vincze | f7641fa | 2018-09-04 18:29:46 +0200 | [diff] [blame] | 816 | |
| 817 | static int |
| 818 | boot_erase_last_sector_by_id(int flash_area_id) |
| 819 | { |
| 820 | uint8_t slot; |
| 821 | uint32_t last_sector; |
| 822 | int rc; |
| 823 | |
| 824 | switch (flash_area_id) { |
| 825 | case FLASH_AREA_IMAGE_0: |
| 826 | slot = 0; |
| 827 | break; |
| 828 | case FLASH_AREA_IMAGE_1: |
| 829 | slot = 1; |
| 830 | break; |
| 831 | default: |
| 832 | return BOOT_EFLASH; |
| 833 | } |
| 834 | |
| 835 | last_sector = boot_img_num_sectors(&boot_data, slot) - 1; |
| 836 | rc = boot_erase_sector(flash_area_id, |
| 837 | boot_img_sector_off(&boot_data, slot, last_sector), |
| 838 | boot_img_sector_size(&boot_data, slot, last_sector)); |
| 839 | assert(rc == 0); |
| 840 | |
| 841 | return rc; |
| 842 | } |
| 843 | #endif /* !MCUBOOT_OVERWRITE_ONLY */ |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 844 | |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 845 | /** |
| 846 | * Swaps the contents of two flash regions within the two image slots. |
| 847 | * |
| 848 | * @param idx The index of the first sector in the range of |
| 849 | * sectors being swapped. |
| 850 | * @param sz The number of bytes to swap. |
| 851 | * @param bs The current boot status. This struct gets |
| 852 | * updated according to the outcome. |
| 853 | * |
| 854 | * @return 0 on success; nonzero on failure. |
| 855 | */ |
| 856 | #ifndef MCUBOOT_OVERWRITE_ONLY |
| 857 | static void |
| 858 | boot_swap_sectors(int idx, uint32_t sz, struct boot_status *bs) |
| 859 | { |
| 860 | const struct flash_area *fap; |
| 861 | uint32_t copy_sz; |
| 862 | uint32_t trailer_sz; |
| 863 | uint32_t img_off; |
| 864 | uint32_t scratch_trailer_off; |
| 865 | struct boot_swap_state swap_state; |
| 866 | size_t last_sector; |
| 867 | int rc; |
| 868 | |
| 869 | /* Calculate offset from start of image area. */ |
| 870 | img_off = boot_img_sector_off(&boot_data, 0, idx); |
| 871 | |
| 872 | copy_sz = sz; |
| 873 | trailer_sz = boot_slots_trailer_sz(BOOT_WRITE_SZ(&boot_data)); |
| 874 | |
| 875 | /* sz in this function is always is always sized on a multiple of the |
| 876 | * sector size. The check against the start offset of the last sector |
| 877 | * is to determine if we're swapping the last sector. The last sector |
| 878 | * needs special handling because it's where the trailer lives. If we're |
| 879 | * copying it, we need to use scratch to write the trailer temporarily. |
| 880 | * |
| 881 | * NOTE: `use_scratch` is a temporary flag (never written to flash) which |
| 882 | * controls if special handling is needed (swapping last sector). |
| 883 | */ |
| 884 | last_sector = boot_img_num_sectors(&boot_data, 0) - 1; |
| 885 | if (img_off + sz > boot_img_sector_off(&boot_data, 0, last_sector)) { |
| 886 | copy_sz -= trailer_sz; |
| 887 | } |
| 888 | |
| 889 | bs->use_scratch = (bs->idx == 0 && copy_sz != sz); |
| 890 | |
| 891 | if (bs->state == 0) { |
| 892 | rc = boot_erase_sector(FLASH_AREA_IMAGE_SCRATCH, 0, sz); |
| 893 | assert(rc == 0); |
| 894 | |
| 895 | rc = boot_copy_sector(FLASH_AREA_IMAGE_1, FLASH_AREA_IMAGE_SCRATCH, |
| 896 | img_off, 0, copy_sz); |
| 897 | assert(rc == 0); |
| 898 | |
| 899 | if (bs->idx == 0) { |
| 900 | if (bs->use_scratch) { |
| 901 | boot_status_init_by_id(FLASH_AREA_IMAGE_SCRATCH, bs); |
| 902 | } else { |
| 903 | /* Prepare the status area... here it is known that the |
| 904 | * last sector is not being used by the image data so it's |
| 905 | * safe to erase. |
| 906 | */ |
| 907 | rc = boot_erase_last_sector_by_id(FLASH_AREA_IMAGE_0); |
| 908 | assert(rc == 0); |
| 909 | |
| 910 | boot_status_init_by_id(FLASH_AREA_IMAGE_0, bs); |
| 911 | } |
| 912 | } |
| 913 | |
| 914 | bs->state = 1; |
| 915 | rc = boot_write_status(bs); |
| 916 | assert(rc == 0); |
| 917 | } |
| 918 | |
| 919 | if (bs->state == 1) { |
| 920 | rc = boot_erase_sector(FLASH_AREA_IMAGE_1, img_off, sz); |
| 921 | assert(rc == 0); |
| 922 | |
| 923 | rc = boot_copy_sector(FLASH_AREA_IMAGE_0, FLASH_AREA_IMAGE_1, |
| 924 | img_off, img_off, copy_sz); |
| 925 | assert(rc == 0); |
| 926 | |
| 927 | if (bs->idx == 0 && !bs->use_scratch) { |
| 928 | /* If not all sectors of the slot are being swapped, |
| 929 | * guarantee here that only slot0 will have the state. |
| 930 | */ |
| 931 | rc = boot_erase_last_sector_by_id(FLASH_AREA_IMAGE_1); |
| 932 | assert(rc == 0); |
| 933 | } |
| 934 | |
| 935 | bs->state = 2; |
| 936 | rc = boot_write_status(bs); |
| 937 | assert(rc == 0); |
| 938 | } |
| 939 | |
| 940 | if (bs->state == 2) { |
| 941 | rc = boot_erase_sector(FLASH_AREA_IMAGE_0, img_off, sz); |
| 942 | assert(rc == 0); |
| 943 | |
| 944 | /* NOTE: also copy trailer from scratch (has status info) */ |
| 945 | rc = boot_copy_sector(FLASH_AREA_IMAGE_SCRATCH, FLASH_AREA_IMAGE_0, |
| 946 | 0, img_off, copy_sz); |
| 947 | assert(rc == 0); |
| 948 | |
| 949 | if (bs->use_scratch) { |
| 950 | rc = flash_area_open(FLASH_AREA_IMAGE_SCRATCH, &fap); |
| 951 | assert(rc == 0); |
| 952 | |
| 953 | scratch_trailer_off = boot_status_off(fap); |
| 954 | |
| 955 | flash_area_close(fap); |
| 956 | |
| 957 | rc = flash_area_open(FLASH_AREA_IMAGE_0, &fap); |
| 958 | assert(rc == 0); |
| 959 | |
| 960 | /* copy current status that is being maintained in scratch */ |
| 961 | rc = boot_copy_sector(FLASH_AREA_IMAGE_SCRATCH, FLASH_AREA_IMAGE_0, |
| 962 | scratch_trailer_off, |
| 963 | img_off + copy_sz, |
| 964 | BOOT_STATUS_STATE_COUNT * BOOT_WRITE_SZ(&boot_data)); |
| 965 | assert(rc == 0); |
| 966 | |
| 967 | rc = boot_read_swap_state_by_id(FLASH_AREA_IMAGE_SCRATCH, |
| 968 | &swap_state); |
| 969 | assert(rc == 0); |
| 970 | |
| 971 | if (swap_state.image_ok == BOOT_FLAG_SET) { |
| 972 | rc = boot_write_image_ok(fap); |
| 973 | assert(rc == 0); |
| 974 | } |
| 975 | |
| 976 | rc = boot_write_swap_size(fap, bs->swap_size); |
| 977 | assert(rc == 0); |
| 978 | |
| 979 | rc = boot_write_magic(fap); |
| 980 | assert(rc == 0); |
| 981 | |
| 982 | flash_area_close(fap); |
| 983 | } |
| 984 | |
| 985 | bs->idx++; |
| 986 | bs->state = 0; |
| 987 | bs->use_scratch = 0; |
| 988 | rc = boot_write_status(bs); |
| 989 | assert(rc == 0); |
| 990 | } |
| 991 | } |
| 992 | #endif /* !MCUBOOT_OVERWRITE_ONLY */ |
| 993 | |
| 994 | /** |
| 995 | * Swaps the two images in flash. If a prior copy operation was interrupted |
| 996 | * by a system reset, this function completes that operation. |
| 997 | * |
| 998 | * @param bs The current boot status. This function reads |
| 999 | * this struct to determine if it is resuming |
| 1000 | * an interrupted swap operation. This |
| 1001 | * function writes the updated status to this |
| 1002 | * function on return. |
| 1003 | * |
| 1004 | * @return 0 on success; nonzero on failure. |
| 1005 | */ |
| 1006 | #ifdef MCUBOOT_OVERWRITE_ONLY |
| 1007 | static int |
| 1008 | boot_copy_image(struct boot_status *bs) |
| 1009 | { |
| 1010 | size_t sect_count; |
| 1011 | size_t sect; |
| 1012 | int rc; |
| 1013 | size_t size = 0; |
| 1014 | size_t this_size; |
| 1015 | |
| 1016 | BOOT_LOG_INF("Image upgrade slot1 -> slot0"); |
| 1017 | BOOT_LOG_INF("Erasing slot0"); |
| 1018 | |
| 1019 | sect_count = boot_img_num_sectors(&boot_data, 0); |
| 1020 | for (sect = 0; sect < sect_count; sect++) { |
| 1021 | this_size = boot_img_sector_size(&boot_data, 0, sect); |
| 1022 | rc = boot_erase_sector(FLASH_AREA_IMAGE_0, |
| 1023 | size, |
| 1024 | this_size); |
| 1025 | assert(rc == 0); |
| 1026 | |
| 1027 | size += this_size; |
| 1028 | } |
| 1029 | |
| 1030 | BOOT_LOG_INF("Copying slot 1 to slot 0: 0x%lx bytes", size); |
| 1031 | rc = boot_copy_sector(FLASH_AREA_IMAGE_1, FLASH_AREA_IMAGE_0, |
| 1032 | 0, 0, size); |
| 1033 | |
| 1034 | /* Erase slot 1 so that we don't do the upgrade on every boot. |
| 1035 | * TODO: Perhaps verify slot 0's signature again? */ |
| 1036 | rc = boot_erase_sector(FLASH_AREA_IMAGE_1, |
| 1037 | 0, boot_img_sector_size(&boot_data, 1, 0)); |
| 1038 | assert(rc == 0); |
| 1039 | |
| 1040 | return 0; |
| 1041 | } |
| 1042 | #else |
| 1043 | static int |
| 1044 | boot_copy_image(struct boot_status *bs) |
| 1045 | { |
| 1046 | uint32_t sz; |
| 1047 | int first_sector_idx; |
| 1048 | int last_sector_idx; |
| 1049 | int swap_idx; |
| 1050 | struct image_header *hdr; |
| 1051 | uint32_t size; |
| 1052 | uint32_t copy_size; |
| 1053 | int rc; |
| 1054 | |
| 1055 | /* FIXME: just do this if asked by user? */ |
| 1056 | |
| 1057 | size = copy_size = 0; |
| 1058 | |
| 1059 | if (bs->idx == 0 && bs->state == 0) { |
| 1060 | /* |
| 1061 | * No swap ever happened, so need to find the largest image which |
| 1062 | * will be used to determine the amount of sectors to swap. |
| 1063 | */ |
| 1064 | hdr = boot_img_hdr(&boot_data, 0); |
| 1065 | if (hdr->ih_magic == IMAGE_MAGIC) { |
| 1066 | rc = boot_read_image_size(0, hdr, ©_size); |
| 1067 | assert(rc == 0); |
| 1068 | } |
| 1069 | |
| 1070 | hdr = boot_img_hdr(&boot_data, 1); |
| 1071 | if (hdr->ih_magic == IMAGE_MAGIC) { |
| 1072 | rc = boot_read_image_size(1, hdr, &size); |
| 1073 | assert(rc == 0); |
| 1074 | } |
| 1075 | |
| 1076 | if (size > copy_size) { |
| 1077 | copy_size = size; |
| 1078 | } |
| 1079 | |
| 1080 | bs->swap_size = copy_size; |
| 1081 | } else { |
| 1082 | /* |
| 1083 | * If a swap was under way, the swap_size should already be present |
| 1084 | * in the trailer... |
| 1085 | */ |
| 1086 | rc = boot_read_swap_size(&bs->swap_size); |
| 1087 | assert(rc == 0); |
| 1088 | |
| 1089 | copy_size = bs->swap_size; |
| 1090 | } |
| 1091 | |
| 1092 | size = 0; |
| 1093 | last_sector_idx = 0; |
| 1094 | while (1) { |
| 1095 | size += boot_img_sector_size(&boot_data, 0, last_sector_idx); |
| 1096 | if (size >= copy_size) { |
| 1097 | break; |
| 1098 | } |
| 1099 | last_sector_idx++; |
| 1100 | } |
| 1101 | |
| 1102 | swap_idx = 0; |
| 1103 | while (last_sector_idx >= 0) { |
| 1104 | sz = boot_copy_sz(last_sector_idx, &first_sector_idx); |
| 1105 | if (swap_idx >= bs->idx) { |
| 1106 | boot_swap_sectors(first_sector_idx, sz, bs); |
| 1107 | } |
| 1108 | |
| 1109 | last_sector_idx = first_sector_idx - 1; |
| 1110 | swap_idx++; |
| 1111 | } |
| 1112 | |
| 1113 | return 0; |
| 1114 | } |
| 1115 | #endif |
| 1116 | |
| 1117 | /** |
| 1118 | * Marks the image in slot 0 as fully copied. |
| 1119 | */ |
| 1120 | #ifndef MCUBOOT_OVERWRITE_ONLY |
| 1121 | static int |
| 1122 | boot_set_copy_done(void) |
| 1123 | { |
| 1124 | const struct flash_area *fap; |
| 1125 | int rc; |
| 1126 | |
| 1127 | rc = flash_area_open(FLASH_AREA_IMAGE_0, &fap); |
| 1128 | if (rc != 0) { |
| 1129 | return BOOT_EFLASH; |
| 1130 | } |
| 1131 | |
| 1132 | rc = boot_write_copy_done(fap); |
| 1133 | flash_area_close(fap); |
| 1134 | return rc; |
| 1135 | } |
| 1136 | #endif /* !MCUBOOT_OVERWRITE_ONLY */ |
| 1137 | |
| 1138 | /** |
| 1139 | * Marks a reverted image in slot 0 as confirmed. This is necessary to ensure |
| 1140 | * the status bytes from the image revert operation don't get processed on a |
| 1141 | * subsequent boot. |
| 1142 | * |
| 1143 | * NOTE: image_ok is tested before writing because if there's a valid permanent |
| 1144 | * image installed on slot0 and the new image to be upgrade to has a bad sig, |
| 1145 | * image_ok would be overwritten. |
| 1146 | */ |
| 1147 | #ifndef MCUBOOT_OVERWRITE_ONLY |
| 1148 | static int |
| 1149 | boot_set_image_ok(void) |
| 1150 | { |
| 1151 | const struct flash_area *fap; |
| 1152 | struct boot_swap_state state; |
| 1153 | int rc; |
| 1154 | |
| 1155 | rc = flash_area_open(FLASH_AREA_IMAGE_0, &fap); |
| 1156 | if (rc != 0) { |
| 1157 | return BOOT_EFLASH; |
| 1158 | } |
| 1159 | |
| 1160 | rc = boot_read_swap_state(fap, &state); |
| 1161 | if (rc != 0) { |
| 1162 | rc = BOOT_EFLASH; |
| 1163 | goto out; |
| 1164 | } |
| 1165 | |
| 1166 | if (state.image_ok == BOOT_FLAG_UNSET) { |
| 1167 | rc = boot_write_image_ok(fap); |
| 1168 | } |
| 1169 | |
| 1170 | out: |
| 1171 | flash_area_close(fap); |
| 1172 | return rc; |
| 1173 | } |
| 1174 | #endif /* !MCUBOOT_OVERWRITE_ONLY */ |
| 1175 | |
| 1176 | /** |
| 1177 | * Performs an image swap if one is required. |
| 1178 | * |
| 1179 | * @param out_swap_type On success, the type of swap performed gets |
| 1180 | * written here. |
| 1181 | * |
| 1182 | * @return 0 on success; nonzero on failure. |
| 1183 | */ |
| 1184 | static int |
| 1185 | boot_swap_if_needed(int *out_swap_type) |
| 1186 | { |
| 1187 | struct boot_status bs; |
| 1188 | int swap_type; |
| 1189 | int rc; |
| 1190 | |
| 1191 | /* Determine if we rebooted in the middle of an image swap |
| 1192 | * operation. |
| 1193 | */ |
| 1194 | rc = boot_read_status(&bs); |
| 1195 | assert(rc == 0); |
| 1196 | if (rc != 0) { |
| 1197 | return rc; |
| 1198 | } |
| 1199 | |
| 1200 | /* If a partial swap was detected, complete it. */ |
| 1201 | if (bs.idx != 0 || bs.state != 0) { |
| 1202 | rc = boot_copy_image(&bs); |
| 1203 | assert(rc == 0); |
| 1204 | |
| 1205 | /* NOTE: here we have finished a swap resume. The initial request |
| 1206 | * was either a TEST or PERM swap, which now after the completed |
| 1207 | * swap will be determined to be respectively REVERT (was TEST) |
| 1208 | * or NONE (was PERM). |
| 1209 | */ |
| 1210 | |
| 1211 | /* Extrapolate the type of the partial swap. We need this |
| 1212 | * information to know how to mark the swap complete in flash. |
| 1213 | */ |
| 1214 | swap_type = boot_previous_swap_type(); |
| 1215 | } else { |
| 1216 | swap_type = boot_validated_swap_type(); |
| 1217 | switch (swap_type) { |
| 1218 | case BOOT_SWAP_TYPE_TEST: |
| 1219 | case BOOT_SWAP_TYPE_PERM: |
| 1220 | case BOOT_SWAP_TYPE_REVERT: |
| 1221 | rc = boot_copy_image(&bs); |
| 1222 | assert(rc == 0); |
| 1223 | break; |
| 1224 | } |
| 1225 | } |
| 1226 | |
| 1227 | *out_swap_type = swap_type; |
| 1228 | return 0; |
| 1229 | } |
| 1230 | |
| 1231 | /** |
| 1232 | * Prepares the booting process. This function moves images around in flash as |
| 1233 | * appropriate, and tells you what address to boot from. |
| 1234 | * |
| 1235 | * @param rsp On success, indicates how booting should occur. |
| 1236 | * |
| 1237 | * @return 0 on success; nonzero on failure. |
| 1238 | */ |
| 1239 | int |
| 1240 | boot_go(struct boot_rsp *rsp) |
| 1241 | { |
| 1242 | int swap_type; |
| 1243 | size_t slot; |
| 1244 | int rc; |
| 1245 | int fa_id; |
| 1246 | bool reload_headers = false; |
| 1247 | |
| 1248 | /* The array of slot sectors are defined here (as opposed to file scope) so |
| 1249 | * that they don't get allocated for non-boot-loader apps. This is |
| 1250 | * necessary because the gcc option "-fdata-sections" doesn't seem to have |
| 1251 | * any effect in older gcc versions (e.g., 4.8.4). |
| 1252 | */ |
| 1253 | static boot_sector_t slot0_sectors[BOOT_MAX_IMG_SECTORS]; |
| 1254 | static boot_sector_t slot1_sectors[BOOT_MAX_IMG_SECTORS]; |
Tamas Ban | 581034a | 2017-12-19 19:54:37 +0000 | [diff] [blame] | 1255 | |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 1256 | boot_data.imgs[0].sectors = slot0_sectors; |
| 1257 | boot_data.imgs[1].sectors = slot1_sectors; |
| 1258 | |
| 1259 | /* Open boot_data image areas for the duration of this call. */ |
| 1260 | for (slot = 0; slot < BOOT_NUM_SLOTS; slot++) { |
| 1261 | fa_id = flash_area_id_from_image_slot(slot); |
| 1262 | rc = flash_area_open(fa_id, &BOOT_IMG_AREA(&boot_data, slot)); |
| 1263 | assert(rc == 0); |
| 1264 | } |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 1265 | |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 1266 | rc = flash_area_open(FLASH_AREA_IMAGE_SCRATCH, |
| 1267 | &BOOT_SCRATCH_AREA(&boot_data)); |
| 1268 | assert(rc == 0); |
| 1269 | |
| 1270 | /* Determine the sector layout of the image slots and scratch area. */ |
| 1271 | rc = boot_read_sectors(); |
| 1272 | if (rc != 0) { |
| 1273 | goto out; |
| 1274 | } |
| 1275 | |
| 1276 | /* Attempt to read an image header from each slot. */ |
| 1277 | rc = boot_read_image_headers(); |
| 1278 | if (rc != 0) { |
| 1279 | goto out; |
| 1280 | } |
| 1281 | |
| 1282 | /* If the image slots aren't compatible, no swap is possible. Just boot |
| 1283 | * into slot 0. |
| 1284 | */ |
| 1285 | if (boot_slots_compatible()) { |
| 1286 | rc = boot_swap_if_needed(&swap_type); |
| 1287 | assert(rc == 0); |
| 1288 | if (rc != 0) { |
| 1289 | goto out; |
| 1290 | } |
| 1291 | |
| 1292 | /* |
| 1293 | * The following states need image_ok be explicitly set after the |
| 1294 | * swap was finished to avoid a new revert. |
| 1295 | */ |
Tamas Ban | 581034a | 2017-12-19 19:54:37 +0000 | [diff] [blame] | 1296 | if (swap_type == BOOT_SWAP_TYPE_REVERT || |
| 1297 | swap_type == BOOT_SWAP_TYPE_FAIL) { |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 1298 | #ifndef MCUBOOT_OVERWRITE_ONLY |
| 1299 | rc = boot_set_image_ok(); |
| 1300 | if (rc != 0) { |
| 1301 | swap_type = BOOT_SWAP_TYPE_PANIC; |
| 1302 | } |
| 1303 | #endif /* !MCUBOOT_OVERWRITE_ONLY */ |
| 1304 | } |
| 1305 | } else { |
| 1306 | swap_type = BOOT_SWAP_TYPE_NONE; |
| 1307 | } |
| 1308 | |
| 1309 | switch (swap_type) { |
| 1310 | case BOOT_SWAP_TYPE_NONE: |
| 1311 | slot = 0; |
| 1312 | break; |
| 1313 | |
| 1314 | case BOOT_SWAP_TYPE_TEST: /* fallthrough */ |
| 1315 | case BOOT_SWAP_TYPE_PERM: /* fallthrough */ |
| 1316 | case BOOT_SWAP_TYPE_REVERT: |
| 1317 | slot = 1; |
| 1318 | reload_headers = true; |
| 1319 | #ifndef MCUBOOT_OVERWRITE_ONLY |
| 1320 | rc = boot_set_copy_done(); |
| 1321 | if (rc != 0) { |
| 1322 | swap_type = BOOT_SWAP_TYPE_PANIC; |
| 1323 | } |
| 1324 | #endif /* !MCUBOOT_OVERWRITE_ONLY */ |
| 1325 | break; |
| 1326 | |
| 1327 | case BOOT_SWAP_TYPE_FAIL: |
| 1328 | /* The image in slot 1 was invalid and is now erased. Ensure we don't |
| 1329 | * try to boot into it again on the next reboot. Do this by pretending |
| 1330 | * we just reverted back to slot 0. |
| 1331 | */ |
| 1332 | slot = 0; |
| 1333 | reload_headers = true; |
| 1334 | break; |
| 1335 | |
| 1336 | default: |
| 1337 | swap_type = BOOT_SWAP_TYPE_PANIC; |
| 1338 | } |
| 1339 | |
| 1340 | if (swap_type == BOOT_SWAP_TYPE_PANIC) { |
| 1341 | BOOT_LOG_ERR("panic!"); |
| 1342 | assert(0); |
| 1343 | |
| 1344 | /* Loop forever... */ |
Tamas Ban | 581034a | 2017-12-19 19:54:37 +0000 | [diff] [blame] | 1345 | while (1) |
| 1346 | ; |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 1347 | } |
| 1348 | |
| 1349 | #ifdef MCUBOOT_VALIDATE_SLOT0 |
| 1350 | if (reload_headers) { |
| 1351 | rc = boot_read_image_headers(); |
| 1352 | if (rc != 0) { |
| 1353 | goto out; |
| 1354 | } |
| 1355 | /* Since headers were reloaded, it can be assumed we just performed a |
| 1356 | * swap or overwrite. Now the header info that should be used to |
| 1357 | * provide the data for the bootstrap, which previously was at Slot 1, |
| 1358 | * was updated to Slot 0. |
| 1359 | */ |
| 1360 | slot = 0; |
| 1361 | } |
| 1362 | |
| 1363 | rc = boot_validate_slot(0); |
| 1364 | assert(rc == 0); |
| 1365 | if (rc != 0) { |
| 1366 | rc = BOOT_EBADIMAGE; |
| 1367 | goto out; |
| 1368 | } |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 1369 | #else /* MCUBOOT_VALIDATE_SLOT0 */ |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 1370 | (void)reload_headers; |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 1371 | #endif /* MCUBOOT_VALIDATE_SLOT0 */ |
Tamas Ban | f70ef8c | 2017-12-19 15:35:09 +0000 | [diff] [blame] | 1372 | |
| 1373 | /* Always boot from the primary slot. */ |
| 1374 | rsp->br_flash_dev_id = boot_img_fa_device_id(&boot_data, 0); |
| 1375 | rsp->br_image_off = boot_img_slot_off(&boot_data, 0); |
| 1376 | rsp->br_hdr = boot_img_hdr(&boot_data, slot); |
| 1377 | |
| 1378 | out: |
| 1379 | flash_area_close(BOOT_SCRATCH_AREA(&boot_data)); |
| 1380 | for (slot = 0; slot < BOOT_NUM_SLOTS; slot++) { |
| 1381 | flash_area_close(BOOT_IMG_AREA(&boot_data, BOOT_NUM_SLOTS - 1 - slot)); |
| 1382 | } |
| 1383 | return rc; |
| 1384 | } |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 1385 | |
Oliver Swede | f998244 | 2018-08-24 18:37:44 +0100 | [diff] [blame] | 1386 | #else /* MCUBOOT_NO_SWAP || MCUBOOT_RAM_LOADING */ |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 1387 | |
| 1388 | #define BOOT_LOG_IMAGE_INFO(area, hdr, state) \ |
| 1389 | BOOT_LOG_INF("Image %"PRIu32": version=%"PRIu8".%"PRIu8".%"PRIu16"" \ |
| 1390 | ".%"PRIu32", magic=%5s, image_ok=0x%x", \ |
| 1391 | (area), \ |
| 1392 | (hdr)->ih_ver.iv_major, \ |
| 1393 | (hdr)->ih_ver.iv_minor, \ |
| 1394 | (hdr)->ih_ver.iv_revision, \ |
| 1395 | (hdr)->ih_ver.iv_build_num, \ |
| 1396 | ((state)->magic == BOOT_MAGIC_GOOD ? "good" : \ |
| 1397 | (state)->magic == BOOT_MAGIC_UNSET ? "unset" : \ |
| 1398 | "bad"), \ |
| 1399 | (state)->image_ok) |
| 1400 | |
| 1401 | struct image_slot_version { |
| 1402 | uint64_t version; |
| 1403 | uint32_t slot_number; |
| 1404 | }; |
| 1405 | |
| 1406 | /** |
| 1407 | * Extract the version number from the image header. This function must be |
| 1408 | * ported if version number format has changed in the image header. |
| 1409 | * |
| 1410 | * @param hdr Pointer to an image header structure |
| 1411 | * |
Oliver Swede | f998244 | 2018-08-24 18:37:44 +0100 | [diff] [blame] | 1412 | * @return Version number casted to uint64_t |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 1413 | */ |
| 1414 | static uint64_t |
| 1415 | boot_get_version_number(struct image_header *hdr) |
| 1416 | { |
Oliver Swede | f998244 | 2018-08-24 18:37:44 +0100 | [diff] [blame] | 1417 | uint64_t version = 0; |
| 1418 | version |= (uint64_t)hdr->ih_ver.iv_major << (IMAGE_VER_MINOR_LENGTH |
| 1419 | + IMAGE_VER_REVISION_LENGTH |
| 1420 | + IMAGE_VER_BUILD_NUM_LENGTH); |
| 1421 | version |= (uint64_t)hdr->ih_ver.iv_minor << (IMAGE_VER_REVISION_LENGTH |
| 1422 | + IMAGE_VER_BUILD_NUM_LENGTH); |
| 1423 | version |= (uint64_t)hdr->ih_ver.iv_revision << IMAGE_VER_BUILD_NUM_LENGTH; |
| 1424 | version |= hdr->ih_ver.iv_build_num; |
| 1425 | return version; |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 1426 | } |
| 1427 | |
| 1428 | /** |
| 1429 | * Comparator function for `qsort` to compare version numbers. This function |
| 1430 | * must be ported if version number format has changed in the image header. |
| 1431 | * |
| 1432 | * @param ver1 Pointer to an array element which holds the version number |
| 1433 | * @param ver2 Pointer to another array element which holds the version |
| 1434 | * number |
| 1435 | * |
| 1436 | * @return if version1 > version2 -1 |
| 1437 | * if version1 == version2 0 |
| 1438 | * if version1 < version2 1 |
| 1439 | */ |
| 1440 | static int |
| 1441 | boot_compare_version_numbers(const void *ver1, const void *ver2) |
| 1442 | { |
| 1443 | if (((struct image_slot_version *)ver1)->version < |
| 1444 | ((struct image_slot_version *)ver2)->version) { |
| 1445 | return 1; |
| 1446 | } |
| 1447 | |
| 1448 | if (((struct image_slot_version *)ver1)->version == |
| 1449 | ((struct image_slot_version *)ver2)->version) { |
| 1450 | return 0; |
| 1451 | } |
| 1452 | |
| 1453 | return -1; |
| 1454 | } |
| 1455 | |
| 1456 | /** |
| 1457 | * Sort the available images based on the version number and puts them in |
| 1458 | * a list. |
| 1459 | * |
| 1460 | * @param boot_sequence A pointer to an array, whose aim is to carry |
| 1461 | * the boot order of candidate images. |
| 1462 | * @param slot_cnt The number of flash areas, which can contains firmware |
| 1463 | * images. |
| 1464 | * |
| 1465 | * @return The number of valid images. |
| 1466 | */ |
| 1467 | uint32_t |
| 1468 | boot_get_boot_sequence(uint32_t *boot_sequence, uint32_t slot_cnt) |
| 1469 | { |
| 1470 | struct boot_swap_state slot_state; |
| 1471 | struct image_header *hdr; |
| 1472 | struct image_slot_version image_versions[BOOT_NUM_SLOTS] = {{0}}; |
| 1473 | uint32_t image_cnt = 0; |
| 1474 | uint32_t slot; |
| 1475 | int32_t rc; |
| 1476 | int32_t fa_id; |
| 1477 | |
| 1478 | for (slot = 0; slot < slot_cnt; slot++) { |
| 1479 | hdr = boot_img_hdr(&boot_data, slot); |
| 1480 | fa_id = flash_area_id_from_image_slot(slot); |
| 1481 | rc = boot_read_swap_state_by_id(fa_id, &slot_state); |
| 1482 | if (rc != 0) { |
| 1483 | BOOT_LOG_ERR("Error during reading image trailer from slot:" |
| 1484 | " %"PRIu32"", slot); |
| 1485 | continue; |
| 1486 | } |
| 1487 | |
| 1488 | if (hdr->ih_magic == IMAGE_MAGIC) { |
| 1489 | if (slot_state.magic == BOOT_MAGIC_GOOD || |
| 1490 | slot_state.image_ok == 0x01) { |
| 1491 | /* Valid cases: |
| 1492 | * - Test mode: magic is OK in image trailer |
| 1493 | * - Permanent mode: image_ok flag has previously set |
| 1494 | */ |
| 1495 | image_versions[slot].slot_number = slot; |
| 1496 | image_versions[slot].version = boot_get_version_number(hdr); |
| 1497 | image_cnt++; |
| 1498 | } |
| 1499 | |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 1500 | BOOT_LOG_IMAGE_INFO(slot, hdr, &slot_state); |
| 1501 | } else { |
Oliver Swede | f998244 | 2018-08-24 18:37:44 +0100 | [diff] [blame] | 1502 | BOOT_LOG_INF("Image %"PRIu32": No valid image", slot); |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 1503 | } |
| 1504 | } |
| 1505 | |
| 1506 | /* Sort the images based on version number */ |
| 1507 | qsort(&image_versions[0], |
| 1508 | slot_cnt, |
| 1509 | sizeof(struct image_slot_version), |
| 1510 | boot_compare_version_numbers); |
| 1511 | |
| 1512 | /* Copy the calculated boot sequence to boot_sequence array */ |
| 1513 | for (slot = 0; slot < slot_cnt; slot++) { |
| 1514 | boot_sequence[slot] = image_versions[slot].slot_number; |
| 1515 | } |
| 1516 | |
| 1517 | return image_cnt; |
| 1518 | } |
| 1519 | |
Oliver Swede | f998244 | 2018-08-24 18:37:44 +0100 | [diff] [blame] | 1520 | #ifdef MCUBOOT_RAM_LOADING |
| 1521 | /** |
| 1522 | * Copies an image from a slot in the flash to an SRAM address, where the load |
| 1523 | * address has already been inserted into the image header by this point and is |
| 1524 | * extracted from it within this method. The copying is done sector-by-sector. |
| 1525 | * |
| 1526 | * @param slot The flash slot of the image to be copied to SRAM. |
| 1527 | * |
| 1528 | * @param hdr Pointer to the image header structure of the image |
| 1529 | * that needs to be copid to SRAM |
| 1530 | * |
| 1531 | * @return 0 on success; nonzero on failure. |
| 1532 | */ |
| 1533 | static int |
| 1534 | boot_copy_image_to_sram(int slot, struct image_header *hdr) |
| 1535 | { |
| 1536 | int rc; |
| 1537 | uint32_t sect_sz; |
| 1538 | uint32_t sect = 0; |
| 1539 | uint32_t bytes_copied = 0; |
| 1540 | const struct flash_area *fap_src = NULL; |
| 1541 | uint32_t dst = (uint32_t) hdr->ih_load_addr; |
| 1542 | uint32_t img_sz; |
| 1543 | |
| 1544 | if (dst % 4 != 0) { |
| 1545 | BOOT_LOG_INF("Cannot copy the image to the SRAM address 0x%"PRIx32" " |
| 1546 | "- the load address must be aligned with 4 bytes due to SRAM " |
| 1547 | "restrictions", dst); |
| 1548 | return BOOT_EBADARGS; |
| 1549 | } |
| 1550 | |
| 1551 | rc = flash_area_open(flash_area_id_from_image_slot(slot), &fap_src); |
| 1552 | if (rc != 0) { |
| 1553 | return BOOT_EFLASH; |
| 1554 | } |
| 1555 | |
| 1556 | rc = boot_read_image_size(slot, hdr, &img_sz); |
| 1557 | if (rc != 0) { |
| 1558 | return BOOT_EFLASH; |
| 1559 | } |
| 1560 | |
| 1561 | while (bytes_copied < img_sz) { |
| 1562 | sect_sz = boot_img_sector_size(&boot_data, slot, sect); |
| 1563 | /* |
| 1564 | * Direct copy from where the image sector resides in flash to its new |
| 1565 | * location in SRAM |
| 1566 | */ |
| 1567 | rc = flash_area_read(fap_src, |
| 1568 | bytes_copied, |
| 1569 | (void *)(dst + bytes_copied), |
| 1570 | sect_sz); |
| 1571 | if (rc != 0) { |
| 1572 | BOOT_LOG_INF("Error whilst copying image from Flash to SRAM"); |
| 1573 | break; |
| 1574 | } else { |
| 1575 | bytes_copied += sect_sz; |
| 1576 | } |
| 1577 | sect++; |
| 1578 | } |
| 1579 | |
| 1580 | if (fap_src) { |
| 1581 | flash_area_close(fap_src); |
| 1582 | } |
| 1583 | return rc; |
| 1584 | } |
| 1585 | #endif /* MCUBOOT_RAM_LOADING */ |
| 1586 | |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 1587 | /** |
| 1588 | * Prepares the booting process. This function choose the newer image in flash |
| 1589 | * as appropriate, and returns the address to boot from. |
| 1590 | * |
| 1591 | * @param rsp On success, indicates how booting should occur. |
| 1592 | * |
| 1593 | * @return 0 on success; nonzero on failure. |
| 1594 | */ |
| 1595 | int |
| 1596 | boot_go(struct boot_rsp *rsp) |
| 1597 | { |
| 1598 | size_t slot = 0; |
| 1599 | int32_t i; |
| 1600 | int rc; |
| 1601 | int fa_id; |
| 1602 | uint32_t boot_sequence[BOOT_NUM_SLOTS]; |
| 1603 | uint32_t img_cnt; |
Oliver Swede | f998244 | 2018-08-24 18:37:44 +0100 | [diff] [blame] | 1604 | struct image_header *newest_image_header; |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 1605 | |
| 1606 | static boot_sector_t slot0_sectors[BOOT_MAX_IMG_SECTORS]; |
| 1607 | static boot_sector_t slot1_sectors[BOOT_MAX_IMG_SECTORS]; |
| 1608 | |
| 1609 | boot_data.imgs[0].sectors = &slot0_sectors[0]; |
| 1610 | boot_data.imgs[1].sectors = &slot1_sectors[0]; |
| 1611 | |
| 1612 | /* Open boot_data image areas for the duration of this call. */ |
| 1613 | for (i = 0; i < BOOT_NUM_SLOTS; i++) { |
| 1614 | fa_id = flash_area_id_from_image_slot(i); |
| 1615 | rc = flash_area_open(fa_id, &BOOT_IMG_AREA(&boot_data, i)); |
| 1616 | assert(rc == 0); |
| 1617 | } |
| 1618 | |
| 1619 | /* Determine the sector layout of the image slots. */ |
| 1620 | rc = boot_read_sectors(); |
| 1621 | if (rc != 0) { |
| 1622 | goto out; |
| 1623 | } |
| 1624 | |
| 1625 | /* Attempt to read an image header from each slot. */ |
| 1626 | rc = boot_read_image_headers(); |
| 1627 | if (rc != 0) { |
| 1628 | goto out; |
| 1629 | } |
| 1630 | |
| 1631 | img_cnt = boot_get_boot_sequence(boot_sequence, BOOT_NUM_SLOTS); |
| 1632 | if (img_cnt) { |
| 1633 | /* Authenticate images */ |
| 1634 | for (i = 0; i < img_cnt; i++) { |
| 1635 | rc = boot_validate_slot(boot_sequence[i]); |
| 1636 | if (rc == 0) { |
| 1637 | slot = boot_sequence[i]; |
| 1638 | break; |
| 1639 | } |
| 1640 | } |
| 1641 | if (rc) { |
| 1642 | /* If there was no valid image at all */ |
| 1643 | rc = BOOT_EBADIMAGE; |
| 1644 | goto out; |
| 1645 | } |
| 1646 | |
Oliver Swede | f998244 | 2018-08-24 18:37:44 +0100 | [diff] [blame] | 1647 | /* The slot variable now refers to the newest image's slot in flash */ |
| 1648 | newest_image_header = boot_img_hdr(&boot_data, slot); |
| 1649 | |
| 1650 | #ifdef MCUBOOT_RAM_LOADING |
| 1651 | if (newest_image_header->ih_flags & IMAGE_F_RAM_LOAD) { |
| 1652 | /* Copy image to the load address from where it |
| 1653 | * currently resides in flash */ |
| 1654 | rc = boot_copy_image_to_sram(slot, newest_image_header); |
| 1655 | if (rc != 0) { |
| 1656 | rc = BOOT_EBADIMAGE; |
| 1657 | BOOT_LOG_INF("Could not copy image from slot 0x%"PRIx32" in " |
| 1658 | "the Flash to load address 0x%"PRIx32" in SRAM, " |
| 1659 | "aborting..", |
| 1660 | slot, |
| 1661 | newest_image_header->ih_load_addr); |
| 1662 | goto out; |
| 1663 | } else { |
| 1664 | BOOT_LOG_INF("Image has been copied from slot %d in flash to " |
| 1665 | "SRAM address 0x%"PRIx32"", |
| 1666 | slot, |
| 1667 | newest_image_header->ih_load_addr); |
| 1668 | } |
| 1669 | |
| 1670 | /* Validate the image hash in SRAM after the copy was successful */ |
| 1671 | rc = bootutil_check_hash_after_loading(newest_image_header); |
| 1672 | if (rc != 0) { |
| 1673 | rc = BOOT_EBADIMAGE; |
| 1674 | BOOT_LOG_INF("Cannot validate the hash of the image that was " |
| 1675 | "copied to SRAM, aborting.."); |
| 1676 | goto out; |
| 1677 | } |
| 1678 | |
| 1679 | BOOT_LOG_INF("Booting image from SRAM at address 0x%"PRIx32"", |
| 1680 | newest_image_header->ih_load_addr); |
| 1681 | } else { |
| 1682 | BOOT_LOG_INF("Booting image from slot %d", slot); |
| 1683 | } |
| 1684 | #endif /* MCUBOOT_RAM_LOADING */ |
| 1685 | |
| 1686 | rsp->br_hdr = newest_image_header; |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 1687 | rsp->br_image_off = boot_img_slot_off(&boot_data, slot); |
Oliver Swede | f998244 | 2018-08-24 18:37:44 +0100 | [diff] [blame] | 1688 | rsp->br_flash_dev_id = boot_img_fa_device_id(&boot_data, slot); |
Tamas Ban | 4fb8e9d | 2018-02-23 14:22:03 +0000 | [diff] [blame] | 1689 | } else { |
| 1690 | /* No candidate image available */ |
| 1691 | rc = BOOT_EBADIMAGE; |
| 1692 | } |
| 1693 | |
| 1694 | out: |
| 1695 | for (slot = 0; slot < BOOT_NUM_SLOTS; slot++) { |
| 1696 | flash_area_close(BOOT_IMG_AREA(&boot_data, BOOT_NUM_SLOTS - 1 - slot)); |
| 1697 | } |
| 1698 | return rc; |
| 1699 | } |
Oliver Swede | f998244 | 2018-08-24 18:37:44 +0100 | [diff] [blame] | 1700 | #endif /* MCUBOOT_NO_SWAP || MCUBOOT_RAM_LOADING */ |