startup.c 16 KB

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  1. /*
  2. * SPDX-FileCopyrightText: 2015-2022 Espressif Systems (Shanghai) CO LTD
  3. *
  4. * SPDX-License-Identifier: Apache-2.0
  5. */
  6. #include <stdint.h>
  7. #include <string.h>
  8. #include "esp_attr.h"
  9. #include "esp_err.h"
  10. #include "esp_system.h"
  11. #include "esp_log.h"
  12. #include "sdkconfig.h"
  13. #include "soc/soc_caps.h"
  14. #include "hal/wdt_hal.h"
  15. #include "hal/uart_types.h"
  16. #include "hal/uart_ll.h"
  17. #include "esp_heap_caps_init.h"
  18. #include "spi_flash_mmap.h"
  19. #include "esp_flash_internal.h"
  20. #include "esp_newlib.h"
  21. #include "esp_timer.h"
  22. #include "esp_efuse.h"
  23. #include "esp_flash_encrypt.h"
  24. #include "esp_secure_boot.h"
  25. #include "esp_xt_wdt.h"
  26. #include "esp_cpu.h"
  27. #include "esp_partition.h"
  28. /***********************************************/
  29. // Headers for other components init functions
  30. #if CONFIG_SW_COEXIST_ENABLE || CONFIG_EXTERNAL_COEX_ENABLE
  31. #include "esp_coexist_internal.h"
  32. #endif
  33. #if __has_include("esp_app_desc.h")
  34. #define WITH_APP_IMAGE_INFO
  35. #include "esp_app_desc.h"
  36. #endif
  37. #if CONFIG_ESP_COREDUMP_ENABLE
  38. #include "esp_core_dump.h"
  39. #endif
  40. #include "esp_private/dbg_stubs.h"
  41. #if CONFIG_PM_ENABLE
  42. #include "esp_pm.h"
  43. #include "esp_private/pm_impl.h"
  44. #endif
  45. #if CONFIG_VFS_SUPPORT_IO
  46. #include "esp_vfs_dev.h"
  47. #include "esp_vfs_console.h"
  48. #endif
  49. #include "esp_pthread.h"
  50. #include "esp_private/esp_clk.h"
  51. #include "esp_private/spi_flash_os.h"
  52. #include "esp_private/brownout.h"
  53. #include "esp_rom_caps.h"
  54. #include "esp_rom_sys.h"
  55. #if CONFIG_SPIRAM
  56. #include "esp_psram.h"
  57. #include "esp_private/esp_psram_extram.h"
  58. #endif
  59. /***********************************************/
  60. #include "esp_private/startup_internal.h"
  61. // Ensure that system configuration matches the underlying number of cores.
  62. // This should enable us to avoid checking for both everytime.
  63. #if !(SOC_CPU_CORES_NUM > 1) && !CONFIG_ESP_SYSTEM_SINGLE_CORE_MODE
  64. #error "System has been configured to run on multiple cores, but target SoC only has a single core."
  65. #endif
  66. // Set efuse ROM_LOG_MODE on first boot
  67. //
  68. // For CONFIG_BOOT_ROM_LOG_ALWAYS_ON (default) or undefined (ESP32), leave
  69. // ROM_LOG_MODE undefined (no need to call this function during startup)
  70. #if CONFIG_BOOT_ROM_LOG_ALWAYS_OFF
  71. #define ROM_LOG_MODE ESP_EFUSE_ROM_LOG_ALWAYS_OFF
  72. #elif CONFIG_BOOT_ROM_LOG_ON_GPIO_LOW
  73. #define ROM_LOG_MODE ESP_EFUSE_ROM_LOG_ON_GPIO_LOW
  74. #elif CONFIG_BOOT_ROM_LOG_ON_GPIO_HIGH
  75. #define ROM_LOG_MODE ESP_EFUSE_ROM_LOG_ON_GPIO_HIGH
  76. #endif
  77. uint64_t g_startup_time = 0;
  78. #if SOC_APB_BACKUP_DMA
  79. // APB DMA lock initialising API
  80. extern void esp_apb_backup_dma_lock_init(void);
  81. #endif
  82. // App entry point for core 0
  83. extern void esp_startup_start_app(void);
  84. // Entry point for core 0 from hardware init (port layer)
  85. void start_cpu0(void) __attribute__((weak, alias("start_cpu0_default"))) __attribute__((noreturn));
  86. #if !CONFIG_ESP_SYSTEM_SINGLE_CORE_MODE
  87. // Entry point for core [1..X] from hardware init (port layer)
  88. void start_cpu_other_cores(void) __attribute__((weak, alias("start_cpu_other_cores_default"))) __attribute__((noreturn));
  89. // App entry point for core [1..X]
  90. void esp_startup_start_app_other_cores(void) __attribute__((weak, alias("esp_startup_start_app_other_cores_default"))) __attribute__((noreturn));
  91. static volatile bool s_system_inited[SOC_CPU_CORES_NUM] = { false };
  92. const sys_startup_fn_t g_startup_fn[SOC_CPU_CORES_NUM] = { [0] = start_cpu0,
  93. #if SOC_CPU_CORES_NUM > 1
  94. [1 ... SOC_CPU_CORES_NUM - 1] = start_cpu_other_cores
  95. #endif
  96. };
  97. static volatile bool s_system_full_inited = false;
  98. #else
  99. const sys_startup_fn_t g_startup_fn[1] = { start_cpu0 };
  100. #endif
  101. #ifdef CONFIG_COMPILER_CXX_EXCEPTIONS
  102. // workaround for C++ exception crashes
  103. void _Unwind_SetNoFunctionContextInstall(unsigned char enable) __attribute__((weak, alias("_Unwind_SetNoFunctionContextInstall_Default")));
  104. // workaround for C++ exception large memory allocation
  105. void _Unwind_SetEnableExceptionFdeSorting(unsigned char enable);
  106. static IRAM_ATTR void _Unwind_SetNoFunctionContextInstall_Default(unsigned char enable __attribute__((unused)))
  107. {
  108. (void)0;
  109. }
  110. #endif // CONFIG_COMPILER_CXX_EXCEPTIONS
  111. static const char* TAG = "cpu_start";
  112. /**
  113. * This function overwrites a the same function of libsupc++ (part of libstdc++).
  114. * Consequently, libsupc++ will then follow our configured exception emergency pool size.
  115. *
  116. * It will be called even with -fno-exception for user code since the stdlib still uses exceptions.
  117. */
  118. size_t __cxx_eh_arena_size_get(void)
  119. {
  120. #ifdef CONFIG_COMPILER_CXX_EXCEPTIONS
  121. return CONFIG_COMPILER_CXX_EXCEPTIONS_EMG_POOL_SIZE;
  122. #else
  123. return 0;
  124. #endif
  125. }
  126. /**
  127. * Xtensa gcc is configured to emit a .ctors section, RISC-V gcc is configured with --enable-initfini-array
  128. * so it emits an .init_array section instead.
  129. * But the init_priority sections will be sorted for iteration in ascending order during startup.
  130. * The rest of the init_array sections is sorted for iteration in descending order during startup, however.
  131. * Hence a different section is generated for the init_priority functions which is looped
  132. * over in ascending direction instead of descending direction.
  133. * The RISC-V-specific behavior is dependent on the linker script ld/esp32c3/sections.ld.in.
  134. */
  135. static void do_global_ctors(void)
  136. {
  137. #if __riscv
  138. extern void (*__init_priority_array_start)(void);
  139. extern void (*__init_priority_array_end)(void);
  140. #endif
  141. extern void (*__init_array_start)(void);
  142. extern void (*__init_array_end)(void);
  143. #ifdef CONFIG_COMPILER_CXX_EXCEPTIONS
  144. struct object { long placeholder[ 10 ]; };
  145. void __register_frame_info (const void *begin, struct object *ob);
  146. extern char __eh_frame[];
  147. static struct object ob;
  148. __register_frame_info( __eh_frame, &ob );
  149. #endif // CONFIG_COMPILER_CXX_EXCEPTIONS
  150. void (**p)(void);
  151. #if __riscv
  152. for (p = &__init_priority_array_start; p < &__init_priority_array_end; ++p) {
  153. ESP_LOGD(TAG, "calling init function: %p", *p);
  154. (*p)();
  155. }
  156. #endif
  157. for (p = &__init_array_end - 1; p >= &__init_array_start; --p) {
  158. ESP_LOGD(TAG, "calling init function: %p", *p);
  159. (*p)();
  160. }
  161. }
  162. /**
  163. * @brief Call component init functions defined using ESP_SYSTEM_INIT_Fn macros.
  164. * The esp_system_init_fn_t structures describing these functions are collected into
  165. * an array [_esp_system_init_fn_array_start, _esp_system_init_fn_array_end) by the
  166. * linker. The functions are sorted by their priority value.
  167. * The sequence of the init function calls (sorted by priority) is documented in
  168. * system_init_fn.txt file.
  169. */
  170. static void do_system_init_fn(void)
  171. {
  172. extern esp_system_init_fn_t _esp_system_init_fn_array_start;
  173. extern esp_system_init_fn_t _esp_system_init_fn_array_end;
  174. esp_system_init_fn_t *p;
  175. int core_id = esp_cpu_get_core_id();
  176. for (p = &_esp_system_init_fn_array_start; p < &_esp_system_init_fn_array_end; ++p) {
  177. if (p->cores & BIT(core_id)) {
  178. ESP_LOGD(TAG, "calling init function: %p on core: %d", p->fn, core_id);
  179. esp_err_t err = (*(p->fn))();
  180. if (err != ESP_OK) {
  181. ESP_LOGE(TAG, "init function %p has failed (0x%x), aborting", p->fn, err);
  182. abort();
  183. }
  184. }
  185. }
  186. #if !CONFIG_ESP_SYSTEM_SINGLE_CORE_MODE
  187. s_system_inited[core_id] = true;
  188. #endif
  189. }
  190. #if !CONFIG_ESP_SYSTEM_SINGLE_CORE_MODE
  191. static void esp_startup_start_app_other_cores_default(void)
  192. {
  193. while (1) {
  194. esp_rom_delay_us(UINT32_MAX);
  195. }
  196. }
  197. /* This function has to be in IRAM, as while it is running on CPU1, CPU0 may do some flash operations
  198. * (e.g. initialize the core dump), which means that cache will be disabled.
  199. */
  200. static void IRAM_ATTR start_cpu_other_cores_default(void)
  201. {
  202. do_system_init_fn();
  203. while (!s_system_full_inited) {
  204. esp_rom_delay_us(100);
  205. }
  206. esp_startup_start_app_other_cores();
  207. }
  208. #endif
  209. static void do_core_init(void)
  210. {
  211. /* Initialize heap allocator. WARNING: This *needs* to happen *after* the app cpu has booted.
  212. If the heap allocator is initialized first, it will put free memory linked list items into
  213. memory also used by the ROM. Starting the app cpu will let its ROM initialize that memory,
  214. corrupting those linked lists. Initializing the allocator *after* the app cpu has booted
  215. works around this problem.
  216. With SPI RAM enabled, there's a second reason: half of the SPI RAM will be managed by the
  217. app CPU, and when that is not up yet, the memory will be inaccessible and heap_caps_init may
  218. fail initializing it properly. */
  219. heap_caps_init();
  220. // When apptrace module is enabled, there will be SEGGER_SYSVIEW calls in the newlib init.
  221. // SEGGER_SYSVIEW relies on apptrace module
  222. // apptrace module uses esp_timer_get_time to determine timeout conditions.
  223. // esp_timer early initialization is required for esp_timer_get_time to work.
  224. esp_timer_early_init();
  225. esp_newlib_init();
  226. #if CONFIG_SPIRAM_BOOT_INIT && (CONFIG_SPIRAM_USE_CAPS_ALLOC || CONFIG_SPIRAM_USE_MALLOC)
  227. if (esp_psram_is_initialized()) {
  228. esp_err_t r=esp_psram_extram_add_to_heap_allocator();
  229. if (r != ESP_OK) {
  230. ESP_EARLY_LOGE(TAG, "External RAM could not be added to heap!");
  231. abort();
  232. }
  233. #if CONFIG_SPIRAM_USE_MALLOC
  234. heap_caps_malloc_extmem_enable(CONFIG_SPIRAM_MALLOC_ALWAYSINTERNAL);
  235. #endif
  236. }
  237. #endif
  238. #if CONFIG_ESP_BROWNOUT_DET
  239. // [refactor-todo] leads to call chain rtc_is_register (driver) -> esp_intr_alloc (esp32/esp32s2) ->
  240. // malloc (newlib) -> heap_caps_malloc (heap), so heap must be at least initialized
  241. esp_brownout_init();
  242. #endif
  243. esp_newlib_time_init();
  244. #if CONFIG_VFS_SUPPORT_IO
  245. // VFS console register.
  246. esp_err_t vfs_err = esp_vfs_console_register();
  247. assert(vfs_err == ESP_OK && "Failed to register vfs console");
  248. #endif
  249. #if defined(CONFIG_VFS_SUPPORT_IO) && !defined(CONFIG_ESP_CONSOLE_NONE)
  250. const static char *default_stdio_dev = "/dev/console/";
  251. esp_reent_init(_GLOBAL_REENT);
  252. _GLOBAL_REENT->_stdin = fopen(default_stdio_dev, "r");
  253. _GLOBAL_REENT->_stdout = fopen(default_stdio_dev, "w");
  254. _GLOBAL_REENT->_stderr = fopen(default_stdio_dev, "w");
  255. #if ESP_ROM_NEEDS_SWSETUP_WORKAROUND
  256. /*
  257. - This workaround for printf functions using 32-bit time_t after the 64-bit time_t upgrade
  258. - The 32-bit time_t usage is triggered through ROM Newlib functions printf related functions calling __swsetup_r() on
  259. the first call to a particular file pointer (i.e., stdin, stdout, stderr)
  260. - Thus, we call the toolchain version of __swsetup_r() now (before any printf calls are made) to setup all of the
  261. file pointers. Thus, the ROM newlib code will never call the ROM version of __swsetup_r().
  262. - See IDFGH-7728 for more details
  263. */
  264. extern int __swsetup_r(struct _reent *, FILE *);
  265. __swsetup_r(_GLOBAL_REENT, _GLOBAL_REENT->_stdout);
  266. __swsetup_r(_GLOBAL_REENT, _GLOBAL_REENT->_stderr);
  267. __swsetup_r(_GLOBAL_REENT, _GLOBAL_REENT->_stdin);
  268. #endif // ESP_ROM_NEEDS_SWSETUP_WORKAROUND
  269. #else // defined(CONFIG_VFS_SUPPORT_IO) && !defined(CONFIG_ESP_CONSOLE_NONE)
  270. _REENT_SMALL_CHECK_INIT(_GLOBAL_REENT);
  271. #endif // defined(CONFIG_VFS_SUPPORT_IO) && !defined(CONFIG_ESP_CONSOLE_NONE)
  272. esp_err_t err __attribute__((unused));
  273. err = esp_pthread_init();
  274. assert(err == ESP_OK && "Failed to init pthread module!");
  275. #if CONFIG_SPI_FLASH_ROM_IMPL
  276. spi_flash_rom_impl_init();
  277. #endif
  278. esp_flash_app_init();
  279. esp_err_t flash_ret = esp_flash_init_default_chip();
  280. assert(flash_ret == ESP_OK);
  281. (void)flash_ret;
  282. #if CONFIG_SPI_FLASH_BROWNOUT_RESET
  283. spi_flash_needs_reset_check();
  284. #endif // CONFIG_SPI_FLASH_BROWNOUT_RESET
  285. #ifdef CONFIG_EFUSE_VIRTUAL
  286. ESP_LOGW(TAG, "eFuse virtual mode is enabled. If Secure boot or Flash encryption is enabled then it does not provide any security. FOR TESTING ONLY!");
  287. #ifdef CONFIG_EFUSE_VIRTUAL_KEEP_IN_FLASH
  288. const esp_partition_t *efuse_partition = esp_partition_find_first(ESP_PARTITION_TYPE_DATA, ESP_PARTITION_SUBTYPE_DATA_EFUSE_EM, NULL);
  289. if (efuse_partition) {
  290. esp_efuse_init_virtual_mode_in_flash(efuse_partition->address, efuse_partition->size);
  291. }
  292. #endif
  293. #endif
  294. #if CONFIG_SECURE_DISABLE_ROM_DL_MODE
  295. err = esp_efuse_disable_rom_download_mode();
  296. assert(err == ESP_OK && "Failed to disable ROM download mode");
  297. #endif
  298. #if CONFIG_SECURE_ENABLE_SECURE_ROM_DL_MODE
  299. err = esp_efuse_enable_rom_secure_download_mode();
  300. assert(err == ESP_OK && "Failed to enable Secure Download mode");
  301. #endif
  302. #if CONFIG_ESP32_DISABLE_BASIC_ROM_CONSOLE
  303. esp_efuse_disable_basic_rom_console();
  304. #endif
  305. #ifdef CONFIG_SECURE_FLASH_ENC_ENABLED
  306. esp_flash_encryption_init_checks();
  307. #endif
  308. #if defined(CONFIG_SECURE_BOOT) || defined(CONFIG_SECURE_SIGNED_ON_UPDATE_NO_SECURE_BOOT)
  309. // Note: in some configs this may read flash, so placed after flash init
  310. esp_secure_boot_init_checks();
  311. #endif
  312. #ifdef ROM_LOG_MODE
  313. esp_efuse_set_rom_log_scheme(ROM_LOG_MODE);
  314. #endif
  315. #if CONFIG_ESP_XT_WDT
  316. esp_xt_wdt_config_t cfg = {
  317. .timeout = CONFIG_ESP_XT_WDT_TIMEOUT,
  318. .auto_backup_clk_enable = CONFIG_ESP_XT_WDT_BACKUP_CLK_ENABLE,
  319. };
  320. err = esp_xt_wdt_init(&cfg);
  321. assert(err == ESP_OK && "Failed to init xtwdt");
  322. #endif
  323. }
  324. static void do_secondary_init(void)
  325. {
  326. #if !CONFIG_ESP_SYSTEM_SINGLE_CORE_MODE
  327. // The port layer transferred control to this function with other cores 'paused',
  328. // resume execution so that cores might execute component initialization functions.
  329. startup_resume_other_cores();
  330. #endif
  331. // Execute initialization functions esp_system_init_fn_t assigned to the main core. While
  332. // this is happening, all other cores are executing the initialization functions
  333. // assigned to them since they have been resumed already.
  334. do_system_init_fn();
  335. #if !CONFIG_ESP_SYSTEM_SINGLE_CORE_MODE
  336. // Wait for all cores to finish secondary init.
  337. volatile bool system_inited = false;
  338. while (!system_inited) {
  339. system_inited = true;
  340. for (int i = 0; i < SOC_CPU_CORES_NUM; i++) {
  341. system_inited &= s_system_inited[i];
  342. }
  343. esp_rom_delay_us(100);
  344. }
  345. #endif
  346. }
  347. static void start_cpu0_default(void)
  348. {
  349. ESP_EARLY_LOGI(TAG, "Pro cpu start user code");
  350. int cpu_freq = esp_clk_cpu_freq();
  351. ESP_EARLY_LOGI(TAG, "cpu freq: %d Hz", cpu_freq);
  352. #ifdef WITH_APP_IMAGE_INFO
  353. // Display information about the current running image.
  354. if (LOG_LOCAL_LEVEL >= ESP_LOG_INFO) {
  355. const esp_app_desc_t *app_desc = esp_app_get_description();
  356. ESP_EARLY_LOGI(TAG, "Application information:");
  357. #ifndef CONFIG_APP_EXCLUDE_PROJECT_NAME_VAR
  358. ESP_EARLY_LOGI(TAG, "Project name: %s", app_desc->project_name);
  359. #endif
  360. #ifndef CONFIG_APP_EXCLUDE_PROJECT_VER_VAR
  361. ESP_EARLY_LOGI(TAG, "App version: %s", app_desc->version);
  362. #endif
  363. #ifdef CONFIG_BOOTLOADER_APP_SECURE_VERSION
  364. ESP_EARLY_LOGI(TAG, "Secure version: %d", app_desc->secure_version);
  365. #endif
  366. #ifdef CONFIG_APP_COMPILE_TIME_DATE
  367. ESP_EARLY_LOGI(TAG, "Compile time: %s %s", app_desc->date, app_desc->time);
  368. #endif
  369. char buf[17];
  370. esp_app_get_elf_sha256(buf, sizeof(buf));
  371. ESP_EARLY_LOGI(TAG, "ELF file SHA256: %s...", buf);
  372. ESP_EARLY_LOGI(TAG, "ESP-IDF: %s", app_desc->idf_ver);
  373. }
  374. #endif
  375. // Initialize core components and services.
  376. do_core_init();
  377. // Execute constructors.
  378. do_global_ctors();
  379. // Execute init functions of other components; blocks
  380. // until all cores finish (when !CONFIG_ESP_SYSTEM_SINGLE_CORE_MODE).
  381. do_secondary_init();
  382. // Now that the application is about to start, disable boot watchdog
  383. #ifndef CONFIG_BOOTLOADER_WDT_DISABLE_IN_USER_CODE
  384. wdt_hal_context_t rtc_wdt_ctx = {.inst = WDT_RWDT, .rwdt_dev = &RTCCNTL};
  385. wdt_hal_write_protect_disable(&rtc_wdt_ctx);
  386. wdt_hal_disable(&rtc_wdt_ctx);
  387. wdt_hal_write_protect_enable(&rtc_wdt_ctx);
  388. #endif
  389. #if SOC_CPU_CORES_NUM > 1 && !CONFIG_ESP_SYSTEM_SINGLE_CORE_MODE
  390. s_system_full_inited = true;
  391. #endif
  392. esp_startup_start_app();
  393. while (1);
  394. }
  395. ESP_SYSTEM_INIT_FN(init_components0, BIT(0), 200)
  396. {
  397. #if CONFIG_ESP_DEBUG_STUBS_ENABLE
  398. esp_dbg_stubs_init();
  399. #endif
  400. #if defined(CONFIG_PM_ENABLE)
  401. esp_pm_impl_init();
  402. #endif
  403. #if CONFIG_ESP_COREDUMP_ENABLE
  404. esp_core_dump_init();
  405. #endif
  406. #if SOC_APB_BACKUP_DMA
  407. esp_apb_backup_dma_lock_init();
  408. #endif
  409. #if CONFIG_SW_COEXIST_ENABLE || CONFIG_EXTERNAL_COEX_ENABLE
  410. esp_coex_adapter_register(&g_coex_adapter_funcs);
  411. coex_pre_init();
  412. #endif
  413. #ifdef CONFIG_COMPILER_CXX_EXCEPTIONS
  414. ESP_EARLY_LOGD(TAG, "Setting C++ exception workarounds.");
  415. _Unwind_SetNoFunctionContextInstall(1);
  416. _Unwind_SetEnableExceptionFdeSorting(0);
  417. #endif // CONFIG_COMPILER_CXX_EXCEPTIONS
  418. return ESP_OK;
  419. }