bootloader_utility.c 34 KB

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  1. // Copyright 2018 Espressif Systems (Shanghai) PTE LTD
  2. //
  3. // Licensed under the Apache License, Version 2.0 (the "License");
  4. // you may not use this file except in compliance with the License.
  5. // You may obtain a copy of the License at
  6. //
  7. // http://www.apache.org/licenses/LICENSE-2.0
  8. //
  9. // Unless required by applicable law or agreed to in writing, software
  10. // distributed under the License is distributed on an "AS IS" BASIS,
  11. // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  12. // See the License for the specific language governing permissions and
  13. // limitations under the License.
  14. #include <string.h>
  15. #include <stdint.h>
  16. #include <limits.h>
  17. #include <sys/param.h>
  18. #include "esp_attr.h"
  19. #include "esp_log.h"
  20. #include "esp_rom_sys.h"
  21. #include "esp_rom_uart.h"
  22. #if CONFIG_IDF_TARGET_ESP32
  23. #include "esp32/rom/cache.h"
  24. #include "esp32/rom/spi_flash.h"
  25. #include "esp32/rom/rtc.h"
  26. #include "esp32/rom/secure_boot.h"
  27. #elif CONFIG_IDF_TARGET_ESP32S2
  28. #include "esp32s2/rom/cache.h"
  29. #include "esp32s2/rom/spi_flash.h"
  30. #include "esp32s2/rom/rtc.h"
  31. #include "esp32s2/rom/secure_boot.h"
  32. #include "soc/extmem_reg.h"
  33. #include "soc/cache_memory.h"
  34. #elif CONFIG_IDF_TARGET_ESP32S3
  35. #include "esp32s3/rom/cache.h"
  36. #include "esp32s3/rom/spi_flash.h"
  37. #include "esp32s3/rom/rtc.h"
  38. #include "esp32s3/rom/secure_boot.h"
  39. #include "soc/extmem_reg.h"
  40. #include "soc/cache_memory.h"
  41. #else
  42. #error "Unsupported IDF_TARGET"
  43. #endif
  44. #include "soc/soc.h"
  45. #include "soc/cpu.h"
  46. #include "soc/rtc.h"
  47. #include "soc/dport_reg.h"
  48. #include "soc/gpio_periph.h"
  49. #include "soc/efuse_periph.h"
  50. #include "soc/rtc_periph.h"
  51. #include "soc/timer_periph.h"
  52. #include "sdkconfig.h"
  53. #include "esp_image_format.h"
  54. #include "esp_secure_boot.h"
  55. #include "esp_flash_encrypt.h"
  56. #include "esp_flash_partitions.h"
  57. #include "bootloader_flash_priv.h"
  58. #include "bootloader_random.h"
  59. #include "bootloader_config.h"
  60. #include "bootloader_common.h"
  61. #include "bootloader_utility.h"
  62. #include "bootloader_sha.h"
  63. #include "bootloader_console.h"
  64. #include "esp_efuse.h"
  65. static const char *TAG = "boot";
  66. /* Reduce literal size for some generic string literals */
  67. #define MAP_ERR_MSG "Image contains multiple %s segments. Only the last one will be mapped."
  68. static bool ota_has_initial_contents;
  69. static void load_image(const esp_image_metadata_t *image_data);
  70. static void unpack_load_app(const esp_image_metadata_t *data);
  71. static void set_cache_and_start_app(uint32_t drom_addr,
  72. uint32_t drom_load_addr,
  73. uint32_t drom_size,
  74. uint32_t irom_addr,
  75. uint32_t irom_load_addr,
  76. uint32_t irom_size,
  77. uint32_t entry_addr);
  78. // Read ota_info partition and fill array from two otadata structures.
  79. static esp_err_t read_otadata(const esp_partition_pos_t *ota_info, esp_ota_select_entry_t *two_otadata)
  80. {
  81. const esp_ota_select_entry_t *ota_select_map;
  82. if (ota_info->offset == 0) {
  83. return ESP_ERR_NOT_FOUND;
  84. }
  85. // partition table has OTA data partition
  86. if (ota_info->size < 2 * SPI_SEC_SIZE) {
  87. ESP_LOGE(TAG, "ota_info partition size %d is too small (minimum %d bytes)", ota_info->size, sizeof(esp_ota_select_entry_t));
  88. return ESP_FAIL; // can't proceed
  89. }
  90. ESP_LOGD(TAG, "OTA data offset 0x%x", ota_info->offset);
  91. ota_select_map = bootloader_mmap(ota_info->offset, ota_info->size);
  92. if (!ota_select_map) {
  93. ESP_LOGE(TAG, "bootloader_mmap(0x%x, 0x%x) failed", ota_info->offset, ota_info->size);
  94. return ESP_FAIL; // can't proceed
  95. }
  96. memcpy(&two_otadata[0], ota_select_map, sizeof(esp_ota_select_entry_t));
  97. memcpy(&two_otadata[1], (uint8_t *)ota_select_map + SPI_SEC_SIZE, sizeof(esp_ota_select_entry_t));
  98. bootloader_munmap(ota_select_map);
  99. return ESP_OK;
  100. }
  101. bool bootloader_utility_load_partition_table(bootloader_state_t *bs)
  102. {
  103. const esp_partition_info_t *partitions;
  104. const char *partition_usage;
  105. esp_err_t err;
  106. int num_partitions;
  107. partitions = bootloader_mmap(ESP_PARTITION_TABLE_OFFSET, ESP_PARTITION_TABLE_MAX_LEN);
  108. if (!partitions) {
  109. ESP_LOGE(TAG, "bootloader_mmap(0x%x, 0x%x) failed", ESP_PARTITION_TABLE_OFFSET, ESP_PARTITION_TABLE_MAX_LEN);
  110. return false;
  111. }
  112. ESP_LOGD(TAG, "mapped partition table 0x%x at 0x%x", ESP_PARTITION_TABLE_OFFSET, (intptr_t)partitions);
  113. err = esp_partition_table_verify(partitions, true, &num_partitions);
  114. if (err != ESP_OK) {
  115. ESP_LOGE(TAG, "Failed to verify partition table");
  116. return false;
  117. }
  118. ESP_LOGI(TAG, "Partition Table:");
  119. ESP_LOGI(TAG, "## Label Usage Type ST Offset Length");
  120. for (int i = 0; i < num_partitions; i++) {
  121. const esp_partition_info_t *partition = &partitions[i];
  122. ESP_LOGD(TAG, "load partition table entry 0x%x", (intptr_t)partition);
  123. ESP_LOGD(TAG, "type=%x subtype=%x", partition->type, partition->subtype);
  124. partition_usage = "unknown";
  125. /* valid partition table */
  126. switch (partition->type) {
  127. case PART_TYPE_APP: /* app partition */
  128. switch (partition->subtype) {
  129. case PART_SUBTYPE_FACTORY: /* factory binary */
  130. bs->factory = partition->pos;
  131. partition_usage = "factory app";
  132. break;
  133. case PART_SUBTYPE_TEST: /* test binary */
  134. bs->test = partition->pos;
  135. partition_usage = "test app";
  136. break;
  137. default:
  138. /* OTA binary */
  139. if ((partition->subtype & ~PART_SUBTYPE_OTA_MASK) == PART_SUBTYPE_OTA_FLAG) {
  140. bs->ota[partition->subtype & PART_SUBTYPE_OTA_MASK] = partition->pos;
  141. ++bs->app_count;
  142. partition_usage = "OTA app";
  143. } else {
  144. partition_usage = "Unknown app";
  145. }
  146. break;
  147. }
  148. break; /* PART_TYPE_APP */
  149. case PART_TYPE_DATA: /* data partition */
  150. switch (partition->subtype) {
  151. case PART_SUBTYPE_DATA_OTA: /* ota data */
  152. bs->ota_info = partition->pos;
  153. partition_usage = "OTA data";
  154. break;
  155. case PART_SUBTYPE_DATA_RF:
  156. partition_usage = "RF data";
  157. break;
  158. case PART_SUBTYPE_DATA_WIFI:
  159. partition_usage = "WiFi data";
  160. break;
  161. case PART_SUBTYPE_DATA_NVS_KEYS:
  162. partition_usage = "NVS keys";
  163. break;
  164. case PART_SUBTYPE_DATA_EFUSE_EM:
  165. partition_usage = "efuse";
  166. #ifdef CONFIG_BOOTLOADER_EFUSE_SECURE_VERSION_EMULATE
  167. esp_efuse_init(partition->pos.offset, partition->pos.size);
  168. #endif
  169. break;
  170. default:
  171. partition_usage = "Unknown data";
  172. break;
  173. }
  174. break; /* PARTITION_USAGE_DATA */
  175. default: /* other partition type */
  176. break;
  177. }
  178. /* print partition type info */
  179. ESP_LOGI(TAG, "%2d %-16s %-16s %02x %02x %08x %08x", i, partition->label, partition_usage,
  180. partition->type, partition->subtype,
  181. partition->pos.offset, partition->pos.size);
  182. }
  183. bootloader_munmap(partitions);
  184. ESP_LOGI(TAG, "End of partition table");
  185. return true;
  186. }
  187. /* Given a partition index, return the partition position data from the bootloader_state_t structure */
  188. static esp_partition_pos_t index_to_partition(const bootloader_state_t *bs, int index)
  189. {
  190. if (index == FACTORY_INDEX) {
  191. return bs->factory;
  192. }
  193. if (index == TEST_APP_INDEX) {
  194. return bs->test;
  195. }
  196. if (index >= 0 && index < MAX_OTA_SLOTS && index < bs->app_count) {
  197. return bs->ota[index];
  198. }
  199. esp_partition_pos_t invalid = { 0 };
  200. return invalid;
  201. }
  202. static void log_invalid_app_partition(int index)
  203. {
  204. const char *not_bootable = " is not bootable"; /* save a few string literal bytes */
  205. switch (index) {
  206. case FACTORY_INDEX:
  207. ESP_LOGE(TAG, "Factory app partition%s", not_bootable);
  208. break;
  209. case TEST_APP_INDEX:
  210. ESP_LOGE(TAG, "Factory test app partition%s", not_bootable);
  211. break;
  212. default:
  213. ESP_LOGE(TAG, "OTA app partition slot %d%s", index, not_bootable);
  214. break;
  215. }
  216. }
  217. static esp_err_t write_otadata(esp_ota_select_entry_t *otadata, uint32_t offset, bool write_encrypted)
  218. {
  219. esp_err_t err = bootloader_flash_erase_sector(offset / FLASH_SECTOR_SIZE);
  220. if (err == ESP_OK) {
  221. err = bootloader_flash_write(offset, otadata, sizeof(esp_ota_select_entry_t), write_encrypted);
  222. }
  223. if (err != ESP_OK) {
  224. ESP_LOGE(TAG, "Error in write_otadata operation. err = 0x%x", err);
  225. }
  226. return err;
  227. }
  228. static bool check_anti_rollback(const esp_partition_pos_t *partition)
  229. {
  230. #ifdef CONFIG_BOOTLOADER_APP_ANTI_ROLLBACK
  231. esp_app_desc_t app_desc;
  232. esp_err_t err = bootloader_common_get_partition_description(partition, &app_desc);
  233. return err == ESP_OK && esp_efuse_check_secure_version(app_desc.secure_version) == true;
  234. #else
  235. return true;
  236. #endif
  237. }
  238. #ifdef CONFIG_BOOTLOADER_APP_ANTI_ROLLBACK
  239. static void update_anti_rollback(const esp_partition_pos_t *partition)
  240. {
  241. esp_app_desc_t app_desc;
  242. esp_err_t err = bootloader_common_get_partition_description(partition, &app_desc);
  243. if (err == ESP_OK) {
  244. esp_efuse_update_secure_version(app_desc.secure_version);
  245. }
  246. }
  247. static int get_active_otadata_with_check_anti_rollback(const bootloader_state_t *bs, esp_ota_select_entry_t *two_otadata)
  248. {
  249. uint32_t ota_seq;
  250. uint32_t ota_slot;
  251. bool valid_otadata[2];
  252. valid_otadata[0] = bootloader_common_ota_select_valid(&two_otadata[0]);
  253. valid_otadata[1] = bootloader_common_ota_select_valid(&two_otadata[1]);
  254. bool sec_ver_valid_otadata[2] = { 0 };
  255. for (int i = 0; i < 2; ++i) {
  256. if (valid_otadata[i] == true) {
  257. ota_seq = two_otadata[i].ota_seq - 1; // Raw OTA sequence number. May be more than # of OTA slots
  258. ota_slot = ota_seq % bs->app_count; // Actual OTA partition selection
  259. if (check_anti_rollback(&bs->ota[ota_slot]) == false) {
  260. // invalid. This otadata[i] will not be selected as active.
  261. ESP_LOGD(TAG, "OTA slot %d has an app with secure_version, this version is smaller than in the device. This OTA slot will not be selected.", ota_slot);
  262. } else {
  263. sec_ver_valid_otadata[i] = true;
  264. }
  265. }
  266. }
  267. return bootloader_common_select_otadata(two_otadata, sec_ver_valid_otadata, true);
  268. }
  269. #endif
  270. int bootloader_utility_get_selected_boot_partition(const bootloader_state_t *bs)
  271. {
  272. esp_ota_select_entry_t otadata[2];
  273. int boot_index = FACTORY_INDEX;
  274. if (bs->ota_info.offset == 0) {
  275. return FACTORY_INDEX;
  276. }
  277. if (read_otadata(&bs->ota_info, otadata) != ESP_OK) {
  278. return INVALID_INDEX;
  279. }
  280. ota_has_initial_contents = false;
  281. ESP_LOGD(TAG, "otadata[0]: sequence values 0x%08x", otadata[0].ota_seq);
  282. ESP_LOGD(TAG, "otadata[1]: sequence values 0x%08x", otadata[1].ota_seq);
  283. #ifdef CONFIG_BOOTLOADER_APP_ROLLBACK_ENABLE
  284. bool write_encrypted = esp_flash_encryption_enabled();
  285. for (int i = 0; i < 2; ++i) {
  286. if (otadata[i].ota_state == ESP_OTA_IMG_PENDING_VERIFY) {
  287. ESP_LOGD(TAG, "otadata[%d] is marking as ABORTED", i);
  288. otadata[i].ota_state = ESP_OTA_IMG_ABORTED;
  289. write_otadata(&otadata[i], bs->ota_info.offset + FLASH_SECTOR_SIZE * i, write_encrypted);
  290. }
  291. }
  292. #endif
  293. #ifndef CONFIG_BOOTLOADER_APP_ANTI_ROLLBACK
  294. if ((bootloader_common_ota_select_invalid(&otadata[0]) &&
  295. bootloader_common_ota_select_invalid(&otadata[1])) ||
  296. bs->app_count == 0) {
  297. ESP_LOGD(TAG, "OTA sequence numbers both empty (all-0xFF) or partition table does not have bootable ota_apps (app_count=%d)", bs->app_count);
  298. if (bs->factory.offset != 0) {
  299. ESP_LOGI(TAG, "Defaulting to factory image");
  300. boot_index = FACTORY_INDEX;
  301. } else {
  302. ESP_LOGI(TAG, "No factory image, trying OTA 0");
  303. boot_index = 0;
  304. // Try to boot from ota_0.
  305. if ((otadata[0].ota_seq == UINT32_MAX || otadata[0].crc != bootloader_common_ota_select_crc(&otadata[0])) &&
  306. (otadata[1].ota_seq == UINT32_MAX || otadata[1].crc != bootloader_common_ota_select_crc(&otadata[1]))) {
  307. // Factory is not found and both otadata are initial(0xFFFFFFFF) or incorrect crc.
  308. // will set correct ota_seq.
  309. ota_has_initial_contents = true;
  310. }
  311. }
  312. } else {
  313. int active_otadata = bootloader_common_get_active_otadata(otadata);
  314. #else
  315. ESP_LOGI(TAG, "Enabled a check secure version of app for anti rollback");
  316. ESP_LOGI(TAG, "Secure version (from eFuse) = %d", esp_efuse_read_secure_version());
  317. // When CONFIG_BOOTLOADER_APP_ANTI_ROLLBACK is enabled factory partition should not be in partition table, only two ota_app are there.
  318. if ((otadata[0].ota_seq == UINT32_MAX || otadata[0].crc != bootloader_common_ota_select_crc(&otadata[0])) &&
  319. (otadata[1].ota_seq == UINT32_MAX || otadata[1].crc != bootloader_common_ota_select_crc(&otadata[1]))) {
  320. ESP_LOGI(TAG, "otadata[0..1] in initial state");
  321. // both otadata are initial(0xFFFFFFFF) or incorrect crc.
  322. // will set correct ota_seq.
  323. ota_has_initial_contents = true;
  324. } else {
  325. int active_otadata = get_active_otadata_with_check_anti_rollback(bs, otadata);
  326. #endif
  327. if (active_otadata != -1) {
  328. ESP_LOGD(TAG, "Active otadata[%d]", active_otadata);
  329. uint32_t ota_seq = otadata[active_otadata].ota_seq - 1; // Raw OTA sequence number. May be more than # of OTA slots
  330. boot_index = ota_seq % bs->app_count; // Actual OTA partition selection
  331. ESP_LOGD(TAG, "Mapping seq %d -> OTA slot %d", ota_seq, boot_index);
  332. #ifdef CONFIG_BOOTLOADER_APP_ROLLBACK_ENABLE
  333. if (otadata[active_otadata].ota_state == ESP_OTA_IMG_NEW) {
  334. ESP_LOGD(TAG, "otadata[%d] is selected as new and marked PENDING_VERIFY state", active_otadata);
  335. otadata[active_otadata].ota_state = ESP_OTA_IMG_PENDING_VERIFY;
  336. write_otadata(&otadata[active_otadata], bs->ota_info.offset + FLASH_SECTOR_SIZE * active_otadata, write_encrypted);
  337. }
  338. #endif // CONFIG_BOOTLOADER_APP_ROLLBACK_ENABLE
  339. #ifdef CONFIG_BOOTLOADER_APP_ANTI_ROLLBACK
  340. if (otadata[active_otadata].ota_state == ESP_OTA_IMG_VALID) {
  341. update_anti_rollback(&bs->ota[boot_index]);
  342. }
  343. #endif // CONFIG_BOOTLOADER_APP_ANTI_ROLLBACK
  344. } else if (bs->factory.offset != 0) {
  345. ESP_LOGE(TAG, "ota data partition invalid, falling back to factory");
  346. boot_index = FACTORY_INDEX;
  347. } else {
  348. ESP_LOGE(TAG, "ota data partition invalid and no factory, will try all partitions");
  349. boot_index = FACTORY_INDEX;
  350. }
  351. }
  352. return boot_index;
  353. }
  354. /* Return true if a partition has a valid app image that was successfully loaded */
  355. static bool try_load_partition(const esp_partition_pos_t *partition, esp_image_metadata_t *data)
  356. {
  357. if (partition->size == 0) {
  358. ESP_LOGD(TAG, "Can't boot from zero-length partition");
  359. return false;
  360. }
  361. #ifdef BOOTLOADER_BUILD
  362. if (bootloader_load_image(partition, data) == ESP_OK) {
  363. ESP_LOGI(TAG, "Loaded app from partition at offset 0x%x",
  364. partition->offset);
  365. return true;
  366. }
  367. #endif
  368. return false;
  369. }
  370. // ota_has_initial_contents flag is set if factory does not present in partition table and
  371. // otadata has initial content(0xFFFFFFFF), then set actual ota_seq.
  372. static void set_actual_ota_seq(const bootloader_state_t *bs, int index)
  373. {
  374. if (index > FACTORY_INDEX && ota_has_initial_contents == true) {
  375. esp_ota_select_entry_t otadata;
  376. memset(&otadata, 0xFF, sizeof(otadata));
  377. otadata.ota_seq = index + 1;
  378. otadata.ota_state = ESP_OTA_IMG_VALID;
  379. otadata.crc = bootloader_common_ota_select_crc(&otadata);
  380. bool write_encrypted = esp_flash_encryption_enabled();
  381. write_otadata(&otadata, bs->ota_info.offset + FLASH_SECTOR_SIZE * 0, write_encrypted);
  382. ESP_LOGI(TAG, "Set actual ota_seq=%d in otadata[0]", otadata.ota_seq);
  383. #ifdef CONFIG_BOOTLOADER_APP_ANTI_ROLLBACK
  384. update_anti_rollback(&bs->ota[index]);
  385. #endif
  386. }
  387. #if defined( CONFIG_BOOTLOADER_SKIP_VALIDATE_IN_DEEP_SLEEP ) || defined( CONFIG_BOOTLOADER_CUSTOM_RESERVE_RTC )
  388. esp_partition_pos_t partition = index_to_partition(bs, index);
  389. bootloader_common_update_rtc_retain_mem(&partition, true);
  390. #endif
  391. }
  392. #ifdef CONFIG_BOOTLOADER_SKIP_VALIDATE_IN_DEEP_SLEEP
  393. void bootloader_utility_load_boot_image_from_deep_sleep(void)
  394. {
  395. if (rtc_get_reset_reason(0) == DEEPSLEEP_RESET) {
  396. esp_partition_pos_t *partition = bootloader_common_get_rtc_retain_mem_partition();
  397. if (partition != NULL) {
  398. esp_image_metadata_t image_data;
  399. if (bootloader_load_image_no_verify(partition, &image_data) == ESP_OK) {
  400. ESP_LOGI(TAG, "Fast booting app from partition at offset 0x%x", partition->offset);
  401. bootloader_common_update_rtc_retain_mem(NULL, true);
  402. load_image(&image_data);
  403. }
  404. }
  405. ESP_LOGE(TAG, "Fast booting is not successful");
  406. ESP_LOGI(TAG, "Try to load an app as usual with all validations");
  407. }
  408. }
  409. #endif
  410. #define TRY_LOG_FORMAT "Trying partition index %d offs 0x%x size 0x%x"
  411. void bootloader_utility_load_boot_image(const bootloader_state_t *bs, int start_index)
  412. {
  413. int index = start_index;
  414. esp_partition_pos_t part;
  415. esp_image_metadata_t image_data;
  416. if (start_index == TEST_APP_INDEX) {
  417. if (try_load_partition(&bs->test, &image_data)) {
  418. load_image(&image_data);
  419. } else {
  420. ESP_LOGE(TAG, "No bootable test partition in the partition table");
  421. bootloader_reset();
  422. }
  423. }
  424. /* work backwards from start_index, down to the factory app */
  425. for (index = start_index; index >= FACTORY_INDEX; index--) {
  426. part = index_to_partition(bs, index);
  427. if (part.size == 0) {
  428. continue;
  429. }
  430. ESP_LOGD(TAG, TRY_LOG_FORMAT, index, part.offset, part.size);
  431. if (check_anti_rollback(&part) && try_load_partition(&part, &image_data)) {
  432. set_actual_ota_seq(bs, index);
  433. load_image(&image_data);
  434. }
  435. log_invalid_app_partition(index);
  436. }
  437. /* failing that work forwards from start_index, try valid OTA slots */
  438. for (index = start_index + 1; index < bs->app_count; index++) {
  439. part = index_to_partition(bs, index);
  440. if (part.size == 0) {
  441. continue;
  442. }
  443. ESP_LOGD(TAG, TRY_LOG_FORMAT, index, part.offset, part.size);
  444. if (check_anti_rollback(&part) && try_load_partition(&part, &image_data)) {
  445. set_actual_ota_seq(bs, index);
  446. load_image(&image_data);
  447. }
  448. log_invalid_app_partition(index);
  449. }
  450. if (try_load_partition(&bs->test, &image_data)) {
  451. ESP_LOGW(TAG, "Falling back to test app as only bootable partition");
  452. load_image(&image_data);
  453. }
  454. ESP_LOGE(TAG, "No bootable app partitions in the partition table");
  455. bzero(&image_data, sizeof(esp_image_metadata_t));
  456. bootloader_reset();
  457. }
  458. // Copy loaded segments to RAM, set up caches for mapped segments, and start application.
  459. static void load_image(const esp_image_metadata_t *image_data)
  460. {
  461. /**
  462. * Rough steps for a first boot, when encryption and secure boot are both disabled:
  463. * 1) Generate secure boot key and write to EFUSE.
  464. * 2) Write plaintext digest based on plaintext bootloader
  465. * 3) Generate flash encryption key and write to EFUSE.
  466. * 4) Encrypt flash in-place including bootloader, then digest,
  467. * then app partitions and other encrypted partitions
  468. * 5) Burn EFUSE to enable flash encryption (FLASH_CRYPT_CNT)
  469. * 6) Burn EFUSE to enable secure boot (ABS_DONE_0)
  470. *
  471. * If power failure happens during Step 1, probably the next boot will continue from Step 2.
  472. * There is some small chance that EFUSEs will be part-way through being written so will be
  473. * somehow corrupted here. Thankfully this window of time is very small, but if that's the
  474. * case, one has to use the espefuse tool to manually set the remaining bits and enable R/W
  475. * protection. Once the relevant EFUSE bits are set and R/W protected, Step 1 will be skipped
  476. * successfully on further reboots.
  477. *
  478. * If power failure happens during Step 2, Step 1 will be skipped and Step 2 repeated:
  479. * the digest will get re-written on the next boot.
  480. *
  481. * If power failure happens during Step 3, it's possible that EFUSE was partially written
  482. * with the generated flash encryption key, though the time window for that would again
  483. * be very small. On reboot, Step 1 will be skipped and Step 2 repeated, though, Step 3
  484. * may fail due to the above mentioned reason, in which case, one has to use the espefuse
  485. * tool to manually set the remaining bits and enable R/W protection. Once the relevant EFUSE
  486. * bits are set and R/W protected, Step 3 will be skipped successfully on further reboots.
  487. *
  488. * If power failure happens after start of 4 and before end of 5, the next boot will fail
  489. * (bootloader header is encrypted and flash encryption isn't enabled yet, so it looks like
  490. * noise to the ROM bootloader). The check in the ROM is pretty basic so if the first byte of
  491. * ciphertext happens to be the magic byte E9 then it may try to boot, but it will definitely
  492. * crash (no chance that the remaining ciphertext will look like a valid bootloader image).
  493. * Only solution is to reflash with all plaintext and the whole process starts again: skips
  494. * Step 1, repeats Step 2, skips Step 3, etc.
  495. *
  496. * If power failure happens after 5 but before 6, the device will reboot with flash
  497. * encryption on and will regenerate an encrypted digest in Step 2. This should still
  498. * be valid as the input data for the digest is read via flash cache (so will be decrypted)
  499. * and the code in secure_boot_generate() tells bootloader_flash_write() to encrypt the data
  500. * on write if flash encryption is enabled. Steps 3 - 5 are skipped (encryption already on),
  501. * then Step 6 enables secure boot.
  502. */
  503. #if defined(CONFIG_SECURE_BOOT) || defined(CONFIG_SECURE_FLASH_ENC_ENABLED)
  504. esp_err_t err;
  505. #endif
  506. #ifdef CONFIG_SECURE_BOOT_V2_ENABLED
  507. err = esp_secure_boot_v2_permanently_enable(image_data);
  508. if (err != ESP_OK) {
  509. ESP_LOGE(TAG, "Secure Boot v2 failed (%d)", err);
  510. return;
  511. }
  512. #endif
  513. #ifdef CONFIG_SECURE_BOOT_V1_ENABLED
  514. /* Steps 1 & 2 (see above for full description):
  515. * 1) Generate secure boot EFUSE key
  516. * 2) Compute digest of plaintext bootloader
  517. */
  518. err = esp_secure_boot_generate_digest();
  519. if (err != ESP_OK) {
  520. ESP_LOGE(TAG, "Bootloader digest generation for secure boot failed (%d).", err);
  521. return;
  522. }
  523. #endif
  524. #ifdef CONFIG_SECURE_FLASH_ENC_ENABLED
  525. /* Steps 3, 4 & 5 (see above for full description):
  526. * 3) Generate flash encryption EFUSE key
  527. * 4) Encrypt flash contents
  528. * 5) Burn EFUSE to enable flash encryption
  529. */
  530. ESP_LOGI(TAG, "Checking flash encryption...");
  531. bool flash_encryption_enabled = esp_flash_encryption_enabled();
  532. err = esp_flash_encrypt_check_and_update();
  533. if (err != ESP_OK) {
  534. ESP_LOGE(TAG, "Flash encryption check failed (%d).", err);
  535. return;
  536. }
  537. #endif
  538. #ifdef CONFIG_SECURE_BOOT_V1_ENABLED
  539. /* Step 6 (see above for full description):
  540. * 6) Burn EFUSE to enable secure boot
  541. */
  542. ESP_LOGI(TAG, "Checking secure boot...");
  543. err = esp_secure_boot_permanently_enable();
  544. if (err != ESP_OK) {
  545. ESP_LOGE(TAG, "FAILED TO ENABLE SECURE BOOT (%d).", err);
  546. /* Panic here as secure boot is not properly enabled
  547. due to one of the reasons in above function
  548. */
  549. abort();
  550. }
  551. #endif
  552. #ifdef CONFIG_SECURE_FLASH_ENC_ENABLED
  553. if (!flash_encryption_enabled && esp_flash_encryption_enabled()) {
  554. /* Flash encryption was just enabled for the first time,
  555. so issue a system reset to ensure flash encryption
  556. cache resets properly */
  557. ESP_LOGI(TAG, "Resetting with flash encryption enabled...");
  558. esp_rom_uart_tx_wait_idle(0);
  559. bootloader_reset();
  560. }
  561. #endif
  562. ESP_LOGI(TAG, "Disabling RNG early entropy source...");
  563. bootloader_random_disable();
  564. // copy loaded segments to RAM, set up caches for mapped segments, and start application
  565. unpack_load_app(image_data);
  566. }
  567. static void unpack_load_app(const esp_image_metadata_t *data)
  568. {
  569. uint32_t drom_addr = 0;
  570. uint32_t drom_load_addr = 0;
  571. uint32_t drom_size = 0;
  572. uint32_t irom_addr = 0;
  573. uint32_t irom_load_addr = 0;
  574. uint32_t irom_size = 0;
  575. // Find DROM & IROM addresses, to configure cache mappings
  576. for (int i = 0; i < data->image.segment_count; i++) {
  577. const esp_image_segment_header_t *header = &data->segments[i];
  578. if (header->load_addr >= SOC_DROM_LOW && header->load_addr < SOC_DROM_HIGH) {
  579. if (drom_addr != 0) {
  580. ESP_LOGE(TAG, MAP_ERR_MSG, "DROM");
  581. } else {
  582. ESP_LOGD(TAG, "Mapping segment %d as %s", i, "DROM");
  583. }
  584. drom_addr = data->segment_data[i];
  585. drom_load_addr = header->load_addr;
  586. drom_size = header->data_len;
  587. }
  588. if (header->load_addr >= SOC_IROM_LOW && header->load_addr < SOC_IROM_HIGH) {
  589. if (irom_addr != 0) {
  590. ESP_LOGE(TAG, MAP_ERR_MSG, "IROM");
  591. } else {
  592. ESP_LOGD(TAG, "Mapping segment %d as %s", i, "IROM");
  593. }
  594. irom_addr = data->segment_data[i];
  595. irom_load_addr = header->load_addr;
  596. irom_size = header->data_len;
  597. }
  598. }
  599. ESP_LOGD(TAG, "calling set_cache_and_start_app");
  600. set_cache_and_start_app(drom_addr,
  601. drom_load_addr,
  602. drom_size,
  603. irom_addr,
  604. irom_load_addr,
  605. irom_size,
  606. data->image.entry_addr);
  607. }
  608. static void set_cache_and_start_app(
  609. uint32_t drom_addr,
  610. uint32_t drom_load_addr,
  611. uint32_t drom_size,
  612. uint32_t irom_addr,
  613. uint32_t irom_load_addr,
  614. uint32_t irom_size,
  615. uint32_t entry_addr)
  616. {
  617. int rc;
  618. ESP_LOGD(TAG, "configure drom and irom and start");
  619. #if CONFIG_IDF_TARGET_ESP32
  620. Cache_Read_Disable(0);
  621. Cache_Flush(0);
  622. #elif CONFIG_IDF_TARGET_ESP32S2
  623. uint32_t autoload = Cache_Suspend_ICache();
  624. Cache_Invalidate_ICache_All();
  625. #elif CONFIG_IDF_TARGET_ESP32S3
  626. uint32_t autoload = Cache_Suspend_DCache();
  627. Cache_Invalidate_DCache_All();
  628. #endif
  629. /* Clear the MMU entries that are already set up,
  630. so the new app only has the mappings it creates.
  631. */
  632. #if CONFIG_IDF_TARGET_ESP32
  633. for (int i = 0; i < DPORT_FLASH_MMU_TABLE_SIZE; i++) {
  634. DPORT_PRO_FLASH_MMU_TABLE[i] = DPORT_FLASH_MMU_TABLE_INVALID_VAL;
  635. }
  636. #elif defined(CONFIG_IDF_TARGET_ESP32S2) || defined(CONFIG_IDF_TARGET_ESP32S3)
  637. for (int i = 0; i < FLASH_MMU_TABLE_SIZE; i++) {
  638. FLASH_MMU_TABLE[i] = MMU_TABLE_INVALID_VAL;
  639. }
  640. #endif
  641. uint32_t drom_load_addr_aligned = drom_load_addr & MMU_FLASH_MASK;
  642. uint32_t drom_page_count = bootloader_cache_pages_to_map(drom_size, drom_load_addr);
  643. ESP_LOGV(TAG, "d mmu set paddr=%08x vaddr=%08x size=%d n=%d",
  644. drom_addr & MMU_FLASH_MASK, drom_load_addr_aligned, drom_size, drom_page_count);
  645. #if CONFIG_IDF_TARGET_ESP32
  646. rc = cache_flash_mmu_set(0, 0, drom_load_addr_aligned, drom_addr & MMU_FLASH_MASK, 64, drom_page_count);
  647. #elif CONFIG_IDF_TARGET_ESP32S2
  648. rc = Cache_Ibus_MMU_Set(MMU_ACCESS_FLASH, drom_load_addr & 0xffff0000, drom_addr & 0xffff0000, 64, drom_page_count, 0);
  649. #elif CONFIG_IDF_TARGET_ESP32S3
  650. rc = Cache_Dbus_MMU_Set(MMU_ACCESS_FLASH, drom_load_addr & 0xffff0000, drom_addr & 0xffff0000, 64, drom_page_count, 0);
  651. #endif
  652. ESP_LOGV(TAG, "rc=%d", rc);
  653. #if CONFIG_IDF_TARGET_ESP32
  654. rc = cache_flash_mmu_set(1, 0, drom_load_addr_aligned, drom_addr & MMU_FLASH_MASK, 64, drom_page_count);
  655. ESP_LOGV(TAG, "rc=%d", rc);
  656. #endif
  657. uint32_t irom_load_addr_aligned = irom_load_addr & MMU_FLASH_MASK;
  658. uint32_t irom_page_count = bootloader_cache_pages_to_map(irom_size, irom_load_addr);
  659. ESP_LOGV(TAG, "i mmu set paddr=%08x vaddr=%08x size=%d n=%d",
  660. irom_addr & MMU_FLASH_MASK, irom_load_addr_aligned, irom_size, irom_page_count);
  661. #if CONFIG_IDF_TARGET_ESP32
  662. rc = cache_flash_mmu_set(0, 0, irom_load_addr_aligned, irom_addr & MMU_FLASH_MASK, 64, irom_page_count);
  663. #elif CONFIG_IDF_TARGET_ESP32S2
  664. uint32_t iram1_used = 0;
  665. if (irom_load_addr + irom_size > IRAM1_ADDRESS_LOW) {
  666. iram1_used = 1;
  667. }
  668. if (iram1_used) {
  669. rc = Cache_Ibus_MMU_Set(MMU_ACCESS_FLASH, IRAM0_ADDRESS_LOW, 0, 64, 64, 1);
  670. rc = Cache_Ibus_MMU_Set(MMU_ACCESS_FLASH, IRAM1_ADDRESS_LOW, 0, 64, 64, 1);
  671. REG_CLR_BIT(EXTMEM_PRO_ICACHE_CTRL1_REG, EXTMEM_PRO_ICACHE_MASK_IRAM1);
  672. }
  673. rc = Cache_Ibus_MMU_Set(MMU_ACCESS_FLASH, irom_load_addr & 0xffff0000, irom_addr & 0xffff0000, 64, irom_page_count, 0);
  674. #elif CONFIG_IDF_TARGET_ESP32S3
  675. rc = Cache_Ibus_MMU_Set(MMU_ACCESS_FLASH, irom_load_addr & 0xffff0000, irom_addr & 0xffff0000, 64, irom_page_count, 0);
  676. #endif
  677. ESP_LOGV(TAG, "rc=%d", rc);
  678. #if CONFIG_IDF_TARGET_ESP32
  679. rc = cache_flash_mmu_set(1, 0, irom_load_addr_aligned, irom_addr & MMU_FLASH_MASK, 64, irom_page_count);
  680. ESP_LOGV(TAG, "rc=%d", rc);
  681. DPORT_REG_CLR_BIT( DPORT_PRO_CACHE_CTRL1_REG,
  682. (DPORT_PRO_CACHE_MASK_IRAM0) | (DPORT_PRO_CACHE_MASK_IRAM1 & 0) |
  683. (DPORT_PRO_CACHE_MASK_IROM0 & 0) | DPORT_PRO_CACHE_MASK_DROM0 |
  684. DPORT_PRO_CACHE_MASK_DRAM1 );
  685. DPORT_REG_CLR_BIT( DPORT_APP_CACHE_CTRL1_REG,
  686. (DPORT_APP_CACHE_MASK_IRAM0) | (DPORT_APP_CACHE_MASK_IRAM1 & 0) |
  687. (DPORT_APP_CACHE_MASK_IROM0 & 0) | DPORT_APP_CACHE_MASK_DROM0 |
  688. DPORT_APP_CACHE_MASK_DRAM1 );
  689. #elif CONFIG_IDF_TARGET_ESP32S2
  690. REG_CLR_BIT( EXTMEM_PRO_ICACHE_CTRL1_REG, (EXTMEM_PRO_ICACHE_MASK_IRAM0) | (EXTMEM_PRO_ICACHE_MASK_IRAM1 & 0) | EXTMEM_PRO_ICACHE_MASK_DROM0 );
  691. #elif CONFIG_IDF_TARGET_ESP32S3
  692. REG_CLR_BIT(EXTMEM_DCACHE_CTRL1_REG, EXTMEM_DCACHE_SHUT_CORE0_BUS);
  693. #if !CONFIG_FREERTOS_UNICORE
  694. REG_CLR_BIT(EXTMEM_DCACHE_CTRL1_REG, EXTMEM_DCACHE_SHUT_CORE1_BUS);
  695. #endif
  696. #endif
  697. #if CONFIG_IDF_TARGET_ESP32
  698. Cache_Read_Enable(0);
  699. #elif CONFIG_IDF_TARGET_ESP32S2
  700. Cache_Resume_ICache(autoload);
  701. #elif CONFIG_IDF_TARGET_ESP32S3
  702. Cache_Resume_DCache(autoload);
  703. #endif
  704. // Application will need to do Cache_Flush(1) and Cache_Read_Enable(1)
  705. ESP_LOGD(TAG, "start: 0x%08x", entry_addr);
  706. bootloader_atexit();
  707. typedef void (*entry_t)(void) __attribute__((noreturn));
  708. entry_t entry = ((entry_t) entry_addr);
  709. // TODO: we have used quite a bit of stack at this point.
  710. // use "movsp" instruction to reset stack back to where ROM stack starts.
  711. (*entry)();
  712. }
  713. void bootloader_reset(void)
  714. {
  715. #ifdef BOOTLOADER_BUILD
  716. bootloader_atexit();
  717. esp_rom_delay_us(1000); /* Allow last byte to leave FIFO */
  718. REG_WRITE(RTC_CNTL_OPTIONS0_REG, RTC_CNTL_SW_SYS_RST);
  719. while (1) { } /* This line will never be reached, used to keep gcc happy */
  720. #else
  721. abort(); /* This function should really not be called from application code */
  722. #endif
  723. }
  724. void bootloader_atexit(void)
  725. {
  726. bootloader_console_deinit();
  727. }
  728. esp_err_t bootloader_sha256_hex_to_str(char *out_str, const uint8_t *in_array_hex, size_t len)
  729. {
  730. if (out_str == NULL || in_array_hex == NULL || len == 0) {
  731. return ESP_ERR_INVALID_ARG;
  732. }
  733. for (int i = 0; i < len; i++) {
  734. for (int shift = 0; shift < 2; shift++) {
  735. uint8_t nibble = (in_array_hex[i] >> (shift ? 0 : 4)) & 0x0F;
  736. if (nibble < 10) {
  737. out_str[i * 2 + shift] = '0' + nibble;
  738. } else {
  739. out_str[i * 2 + shift] = 'a' + nibble - 10;
  740. }
  741. }
  742. }
  743. return ESP_OK;
  744. }
  745. void bootloader_debug_buffer(const void *buffer, size_t length, const char *label)
  746. {
  747. #if BOOT_LOG_LEVEL >= LOG_LEVEL_DEBUG
  748. assert(length <= 128); // Avoid unbounded VLA size
  749. const uint8_t *bytes = (const uint8_t *)buffer;
  750. char hexbuf[length * 2 + 1];
  751. hexbuf[length * 2] = 0;
  752. for (int i = 0; i < length; i++) {
  753. for (int shift = 0; shift < 2; shift++) {
  754. uint8_t nibble = (bytes[i] >> (shift ? 0 : 4)) & 0x0F;
  755. if (nibble < 10) {
  756. hexbuf[i * 2 + shift] = '0' + nibble;
  757. } else {
  758. hexbuf[i * 2 + shift] = 'a' + nibble - 10;
  759. }
  760. }
  761. }
  762. ESP_LOGD(TAG, "%s: %s", label, hexbuf);
  763. #endif
  764. }
  765. esp_err_t bootloader_sha256_flash_contents(uint32_t flash_offset, uint32_t len, uint8_t *digest)
  766. {
  767. if (digest == NULL) {
  768. return ESP_ERR_INVALID_ARG;
  769. }
  770. /* Handling firmware images larger than MMU capacity */
  771. uint32_t mmu_free_pages_count = bootloader_mmap_get_free_pages();
  772. bootloader_sha256_handle_t sha_handle = NULL;
  773. sha_handle = bootloader_sha256_start();
  774. if (sha_handle == NULL) {
  775. return ESP_ERR_NO_MEM;
  776. }
  777. while (len > 0) {
  778. uint32_t mmu_page_offset = ((flash_offset & MMAP_ALIGNED_MASK) != 0) ? 1 : 0; /* Skip 1st MMU Page if it is already populated */
  779. uint32_t partial_image_len = MIN(len, ((mmu_free_pages_count - mmu_page_offset) * SPI_FLASH_MMU_PAGE_SIZE)); /* Read the image that fits in the free MMU pages */
  780. const void * image = bootloader_mmap(flash_offset, partial_image_len);
  781. if (image == NULL) {
  782. bootloader_sha256_finish(sha_handle, NULL);
  783. return ESP_FAIL;
  784. }
  785. bootloader_sha256_data(sha_handle, image, partial_image_len);
  786. bootloader_munmap(image);
  787. flash_offset += partial_image_len;
  788. len -= partial_image_len;
  789. }
  790. bootloader_sha256_finish(sha_handle, digest);
  791. return ESP_OK;
  792. }