ble_glue.c 16 KB

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  1. #include "ble_glue.h"
  2. #include "app_common.h"
  3. #include "ble_app.h"
  4. #include <ble/ble.h>
  5. #include <interface/patterns/ble_thread/tl/tl.h>
  6. #include <interface/patterns/ble_thread/shci/shci.h>
  7. #include <interface/patterns/ble_thread/tl/shci_tl.h>
  8. #include "app_debug.h"
  9. #include <furi_hal.h>
  10. #define TAG "Core2"
  11. #define BLE_GLUE_FLAG_SHCI_EVENT (1UL << 0)
  12. #define BLE_GLUE_FLAG_KILL_THREAD (1UL << 1)
  13. #define BLE_GLUE_FLAG_ALL (BLE_GLUE_FLAG_SHCI_EVENT | BLE_GLUE_FLAG_KILL_THREAD)
  14. #define POOL_SIZE \
  15. (CFG_TLBLE_EVT_QUEUE_LENGTH * 4U * \
  16. DIVC((sizeof(TL_PacketHeader_t) + TL_BLE_EVENT_FRAME_SIZE), 4U))
  17. PLACE_IN_SECTION("MB_MEM2") ALIGN(4) static uint8_t ble_glue_event_pool[POOL_SIZE];
  18. PLACE_IN_SECTION("MB_MEM2") ALIGN(4) static TL_CmdPacket_t ble_glue_system_cmd_buff;
  19. PLACE_IN_SECTION("MB_MEM2")
  20. ALIGN(4)
  21. static uint8_t ble_glue_system_spare_event_buff[sizeof(TL_PacketHeader_t) + TL_EVT_HDR_SIZE + 255U];
  22. PLACE_IN_SECTION("MB_MEM2")
  23. ALIGN(4)
  24. static uint8_t ble_glue_ble_spare_event_buff[sizeof(TL_PacketHeader_t) + TL_EVT_HDR_SIZE + 255];
  25. typedef struct {
  26. FuriMutex* shci_mtx;
  27. FuriSemaphore* shci_sem;
  28. FuriThread* thread;
  29. BleGlueStatus status;
  30. BleGlueKeyStorageChangedCallback callback;
  31. BleGlueC2Info c2_info;
  32. void* context;
  33. } BleGlue;
  34. static BleGlue* ble_glue = NULL;
  35. static int32_t ble_glue_shci_thread(void* argument);
  36. static void ble_glue_sys_status_not_callback(SHCI_TL_CmdStatus_t status);
  37. static void ble_glue_sys_user_event_callback(void* pPayload);
  38. void ble_glue_set_key_storage_changed_callback(
  39. BleGlueKeyStorageChangedCallback callback,
  40. void* context) {
  41. furi_assert(ble_glue);
  42. furi_assert(callback);
  43. ble_glue->callback = callback;
  44. ble_glue->context = context;
  45. }
  46. void ble_glue_init() {
  47. ble_glue = malloc(sizeof(BleGlue));
  48. ble_glue->status = BleGlueStatusStartup;
  49. // Configure the system Power Mode
  50. // Select HSI as system clock source after Wake Up from Stop mode
  51. LL_RCC_SetClkAfterWakeFromStop(LL_RCC_STOP_WAKEUPCLOCK_HSI);
  52. /* Initialize the CPU2 reset value before starting CPU2 with C2BOOT */
  53. LL_C2_PWR_SetPowerMode(LL_PWR_MODE_SHUTDOWN);
  54. #ifdef BLE_GLUE_DEBUG
  55. APPD_Init();
  56. #endif
  57. // Initialize all transport layers
  58. TL_MM_Config_t tl_mm_config;
  59. SHCI_TL_HciInitConf_t SHci_Tl_Init_Conf;
  60. // Reference table initialization
  61. TL_Init();
  62. ble_glue->shci_mtx = furi_mutex_alloc(FuriMutexTypeNormal);
  63. ble_glue->shci_sem = furi_semaphore_alloc(1, 0);
  64. // FreeRTOS system task creation
  65. ble_glue->thread = furi_thread_alloc();
  66. furi_thread_set_name(ble_glue->thread, "BleShciDriver");
  67. furi_thread_set_stack_size(ble_glue->thread, 1024);
  68. furi_thread_set_context(ble_glue->thread, ble_glue);
  69. furi_thread_set_callback(ble_glue->thread, ble_glue_shci_thread);
  70. furi_thread_start(ble_glue->thread);
  71. // System channel initialization
  72. SHci_Tl_Init_Conf.p_cmdbuffer = (uint8_t*)&ble_glue_system_cmd_buff;
  73. SHci_Tl_Init_Conf.StatusNotCallBack = ble_glue_sys_status_not_callback;
  74. shci_init(ble_glue_sys_user_event_callback, (void*)&SHci_Tl_Init_Conf);
  75. /**< Memory Manager channel initialization */
  76. tl_mm_config.p_BleSpareEvtBuffer = ble_glue_ble_spare_event_buff;
  77. tl_mm_config.p_SystemSpareEvtBuffer = ble_glue_system_spare_event_buff;
  78. tl_mm_config.p_AsynchEvtPool = ble_glue_event_pool;
  79. tl_mm_config.AsynchEvtPoolSize = POOL_SIZE;
  80. TL_MM_Init(&tl_mm_config);
  81. TL_Enable();
  82. /*
  83. * From now, the application is waiting for the ready event ( VS_HCI_C2_Ready )
  84. * received on the system channel before starting the Stack
  85. * This system event is received with ble_glue_sys_user_event_callback()
  86. */
  87. }
  88. const BleGlueC2Info* ble_glue_get_c2_info() {
  89. return &ble_glue->c2_info;
  90. }
  91. BleGlueStatus ble_glue_get_c2_status() {
  92. return ble_glue->status;
  93. }
  94. static const char* ble_glue_get_reltype_str(const uint8_t reltype) {
  95. static char relcode[3] = {0};
  96. switch(reltype) {
  97. case INFO_STACK_TYPE_BLE_FULL:
  98. return "F";
  99. case INFO_STACK_TYPE_BLE_HCI:
  100. return "H";
  101. case INFO_STACK_TYPE_BLE_LIGHT:
  102. return "L";
  103. case INFO_STACK_TYPE_BLE_BEACON:
  104. return "Be";
  105. case INFO_STACK_TYPE_BLE_BASIC:
  106. return "Ba";
  107. case INFO_STACK_TYPE_BLE_FULL_EXT_ADV:
  108. return "F+";
  109. case INFO_STACK_TYPE_BLE_HCI_EXT_ADV:
  110. return "H+";
  111. default:
  112. snprintf(relcode, sizeof(relcode), "%X", reltype);
  113. return relcode;
  114. }
  115. }
  116. static void ble_glue_update_c2_fw_info() {
  117. WirelessFwInfo_t wireless_info;
  118. SHCI_GetWirelessFwInfo(&wireless_info);
  119. BleGlueC2Info* local_info = &ble_glue->c2_info;
  120. local_info->VersionMajor = wireless_info.VersionMajor;
  121. local_info->VersionMinor = wireless_info.VersionMinor;
  122. local_info->VersionSub = wireless_info.VersionSub;
  123. local_info->VersionBranch = wireless_info.VersionBranch;
  124. local_info->VersionReleaseType = wireless_info.VersionReleaseType;
  125. local_info->MemorySizeSram2B = wireless_info.MemorySizeSram2B;
  126. local_info->MemorySizeSram2A = wireless_info.MemorySizeSram2A;
  127. local_info->MemorySizeSram1 = wireless_info.MemorySizeSram1;
  128. local_info->MemorySizeFlash = wireless_info.MemorySizeFlash;
  129. local_info->StackType = wireless_info.StackType;
  130. snprintf(
  131. local_info->StackTypeString,
  132. BLE_GLUE_MAX_VERSION_STRING_LEN,
  133. "%d.%d.%d:%s",
  134. local_info->VersionMajor,
  135. local_info->VersionMinor,
  136. local_info->VersionSub,
  137. ble_glue_get_reltype_str(local_info->StackType));
  138. local_info->FusVersionMajor = wireless_info.FusVersionMajor;
  139. local_info->FusVersionMinor = wireless_info.FusVersionMinor;
  140. local_info->FusVersionSub = wireless_info.FusVersionSub;
  141. local_info->FusMemorySizeSram2B = wireless_info.FusMemorySizeSram2B;
  142. local_info->FusMemorySizeSram2A = wireless_info.FusMemorySizeSram2A;
  143. local_info->FusMemorySizeFlash = wireless_info.FusMemorySizeFlash;
  144. }
  145. static void ble_glue_dump_stack_info() {
  146. const BleGlueC2Info* c2_info = &ble_glue->c2_info;
  147. FURI_LOG_I(
  148. TAG,
  149. "Core2: FUS: %d.%d.%d, mem %d/%d, flash %d pages",
  150. c2_info->FusVersionMajor,
  151. c2_info->FusVersionMinor,
  152. c2_info->FusVersionSub,
  153. c2_info->FusMemorySizeSram2B,
  154. c2_info->FusMemorySizeSram2A,
  155. c2_info->FusMemorySizeFlash);
  156. FURI_LOG_I(
  157. TAG,
  158. "Core2: Stack: %d.%d.%d, branch %d, reltype %d, stacktype %d, flash %d pages",
  159. c2_info->VersionMajor,
  160. c2_info->VersionMinor,
  161. c2_info->VersionSub,
  162. c2_info->VersionBranch,
  163. c2_info->VersionReleaseType,
  164. c2_info->StackType,
  165. c2_info->MemorySizeFlash);
  166. }
  167. bool ble_glue_wait_for_c2_start(int32_t timeout) {
  168. bool started = false;
  169. do {
  170. // TODO: use mutex?
  171. started = ble_glue->status == BleGlueStatusC2Started;
  172. if(!started) {
  173. timeout--;
  174. furi_delay_tick(1);
  175. }
  176. } while(!started && (timeout > 0));
  177. if(started) {
  178. FURI_LOG_I(
  179. TAG,
  180. "C2 boot completed, mode: %s",
  181. ble_glue->c2_info.mode == BleGlueC2ModeFUS ? "FUS" : "Stack");
  182. ble_glue_update_c2_fw_info();
  183. ble_glue_dump_stack_info();
  184. } else {
  185. FURI_LOG_E(TAG, "C2 startup failed");
  186. ble_glue->status = BleGlueStatusBroken;
  187. }
  188. return started;
  189. }
  190. bool ble_glue_start() {
  191. furi_assert(ble_glue);
  192. if(ble_glue->status != BleGlueStatusC2Started) {
  193. return false;
  194. }
  195. bool ret = false;
  196. if(ble_app_init()) {
  197. FURI_LOG_I(TAG, "Radio stack started");
  198. ble_glue->status = BleGlueStatusRadioStackRunning;
  199. ret = true;
  200. if(SHCI_C2_SetFlashActivityControl(FLASH_ACTIVITY_CONTROL_SEM7) == SHCI_Success) {
  201. FURI_LOG_I(TAG, "Flash activity control switched to SEM7");
  202. } else {
  203. FURI_LOG_E(TAG, "Failed to switch flash activity control to SEM7");
  204. }
  205. } else {
  206. FURI_LOG_E(TAG, "Radio stack startup failed");
  207. ble_glue->status = BleGlueStatusRadioStackMissing;
  208. ble_app_thread_stop();
  209. }
  210. return ret;
  211. }
  212. bool ble_glue_is_alive() {
  213. if(!ble_glue) {
  214. return false;
  215. }
  216. return ble_glue->status >= BleGlueStatusC2Started;
  217. }
  218. bool ble_glue_is_radio_stack_ready() {
  219. if(!ble_glue) {
  220. return false;
  221. }
  222. return ble_glue->status == BleGlueStatusRadioStackRunning;
  223. }
  224. BleGlueCommandResult ble_glue_force_c2_mode(BleGlueC2Mode desired_mode) {
  225. furi_check(desired_mode > BleGlueC2ModeUnknown);
  226. if(desired_mode == ble_glue->c2_info.mode) {
  227. return BleGlueCommandResultOK;
  228. }
  229. if((ble_glue->c2_info.mode == BleGlueC2ModeFUS) && (desired_mode == BleGlueC2ModeStack)) {
  230. if((ble_glue->c2_info.VersionMajor == 0) && (ble_glue->c2_info.VersionMinor == 0)) {
  231. FURI_LOG_W(TAG, "Stack isn't installed!");
  232. return BleGlueCommandResultError;
  233. }
  234. SHCI_CmdStatus_t status = SHCI_C2_FUS_StartWs();
  235. if(status) {
  236. FURI_LOG_E(TAG, "Failed to start Radio Stack with status: %02X", status);
  237. return BleGlueCommandResultError;
  238. }
  239. return BleGlueCommandResultRestartPending;
  240. }
  241. if((ble_glue->c2_info.mode == BleGlueC2ModeStack) && (desired_mode == BleGlueC2ModeFUS)) {
  242. SHCI_FUS_GetState_ErrorCode_t error_code = 0;
  243. uint8_t fus_state = SHCI_C2_FUS_GetState(&error_code);
  244. FURI_LOG_D(TAG, "FUS state: %X, error = %x", fus_state, error_code);
  245. if(fus_state == SHCI_FUS_CMD_NOT_SUPPORTED) {
  246. // Second call to SHCI_C2_FUS_GetState() restarts whole MCU & boots FUS
  247. fus_state = SHCI_C2_FUS_GetState(&error_code);
  248. FURI_LOG_D(TAG, "FUS state#2: %X, error = %x", fus_state, error_code);
  249. return BleGlueCommandResultRestartPending;
  250. }
  251. return BleGlueCommandResultOK;
  252. }
  253. return BleGlueCommandResultError;
  254. }
  255. static void ble_glue_sys_status_not_callback(SHCI_TL_CmdStatus_t status) {
  256. switch(status) {
  257. case SHCI_TL_CmdBusy:
  258. furi_mutex_acquire(ble_glue->shci_mtx, FuriWaitForever);
  259. break;
  260. case SHCI_TL_CmdAvailable:
  261. furi_mutex_release(ble_glue->shci_mtx);
  262. break;
  263. default:
  264. break;
  265. }
  266. }
  267. /*
  268. * The type of the payload for a system user event is tSHCI_UserEvtRxParam
  269. * When the system event is both :
  270. * - a ready event (subevtcode = SHCI_SUB_EVT_CODE_READY)
  271. * - reported by the FUS (sysevt_ready_rsp == FUS_FW_RUNNING)
  272. * The buffer shall not be released
  273. * ( eg ((tSHCI_UserEvtRxParam*)pPayload)->status shall be set to SHCI_TL_UserEventFlow_Disable )
  274. * When the status is not filled, the buffer is released by default
  275. */
  276. static void ble_glue_sys_user_event_callback(void* pPayload) {
  277. UNUSED(pPayload);
  278. #ifdef BLE_GLUE_DEBUG
  279. APPD_EnableCPU2();
  280. #endif
  281. TL_AsynchEvt_t* p_sys_event =
  282. (TL_AsynchEvt_t*)(((tSHCI_UserEvtRxParam*)pPayload)->pckt->evtserial.evt.payload);
  283. if(p_sys_event->subevtcode == SHCI_SUB_EVT_CODE_READY) {
  284. FURI_LOG_I(TAG, "Core2 started");
  285. SHCI_C2_Ready_Evt_t* p_c2_ready_evt = (SHCI_C2_Ready_Evt_t*)p_sys_event->payload;
  286. if(p_c2_ready_evt->sysevt_ready_rsp == WIRELESS_FW_RUNNING) {
  287. ble_glue->c2_info.mode = BleGlueC2ModeStack;
  288. } else if(p_c2_ready_evt->sysevt_ready_rsp == FUS_FW_RUNNING) {
  289. ble_glue->c2_info.mode = BleGlueC2ModeFUS;
  290. }
  291. ble_glue->status = BleGlueStatusC2Started;
  292. } else if(p_sys_event->subevtcode == SHCI_SUB_EVT_ERROR_NOTIF) {
  293. FURI_LOG_E(TAG, "Error during initialization");
  294. } else if(p_sys_event->subevtcode == SHCI_SUB_EVT_BLE_NVM_RAM_UPDATE) {
  295. SHCI_C2_BleNvmRamUpdate_Evt_t* p_sys_ble_nvm_ram_update_event =
  296. (SHCI_C2_BleNvmRamUpdate_Evt_t*)p_sys_event->payload;
  297. if(ble_glue->callback) {
  298. ble_glue->callback(
  299. (uint8_t*)p_sys_ble_nvm_ram_update_event->StartAddress,
  300. p_sys_ble_nvm_ram_update_event->Size,
  301. ble_glue->context);
  302. }
  303. }
  304. }
  305. static void ble_glue_clear_shared_memory() {
  306. memset(ble_glue_event_pool, 0, sizeof(ble_glue_event_pool));
  307. memset(&ble_glue_system_cmd_buff, 0, sizeof(ble_glue_system_cmd_buff));
  308. memset(ble_glue_system_spare_event_buff, 0, sizeof(ble_glue_system_spare_event_buff));
  309. memset(ble_glue_ble_spare_event_buff, 0, sizeof(ble_glue_ble_spare_event_buff));
  310. }
  311. void ble_glue_thread_stop() {
  312. if(ble_glue) {
  313. FuriThreadId thread_id = furi_thread_get_id(ble_glue->thread);
  314. furi_assert(thread_id);
  315. furi_thread_flags_set(thread_id, BLE_GLUE_FLAG_KILL_THREAD);
  316. furi_thread_join(ble_glue->thread);
  317. furi_thread_free(ble_glue->thread);
  318. // Free resources
  319. furi_mutex_free(ble_glue->shci_mtx);
  320. furi_semaphore_free(ble_glue->shci_sem);
  321. ble_glue_clear_shared_memory();
  322. free(ble_glue);
  323. ble_glue = NULL;
  324. }
  325. }
  326. // Wrap functions
  327. static int32_t ble_glue_shci_thread(void* context) {
  328. UNUSED(context);
  329. uint32_t flags = 0;
  330. while(true) {
  331. flags = furi_thread_flags_wait(BLE_GLUE_FLAG_ALL, FuriFlagWaitAny, FuriWaitForever);
  332. if(flags & BLE_GLUE_FLAG_SHCI_EVENT) {
  333. shci_user_evt_proc();
  334. }
  335. if(flags & BLE_GLUE_FLAG_KILL_THREAD) {
  336. break;
  337. }
  338. }
  339. return 0;
  340. }
  341. void shci_notify_asynch_evt(void* pdata) {
  342. UNUSED(pdata);
  343. if(ble_glue) {
  344. FuriThreadId thread_id = furi_thread_get_id(ble_glue->thread);
  345. furi_assert(thread_id);
  346. furi_thread_flags_set(thread_id, BLE_GLUE_FLAG_SHCI_EVENT);
  347. }
  348. }
  349. void shci_cmd_resp_release(uint32_t flag) {
  350. UNUSED(flag);
  351. if(ble_glue) {
  352. furi_semaphore_release(ble_glue->shci_sem);
  353. }
  354. }
  355. void shci_cmd_resp_wait(uint32_t timeout) {
  356. UNUSED(timeout);
  357. if(ble_glue) {
  358. furi_semaphore_acquire(ble_glue->shci_sem, FuriWaitForever);
  359. }
  360. }
  361. bool ble_glue_reinit_c2() {
  362. return SHCI_C2_Reinit() == SHCI_Success;
  363. }
  364. BleGlueCommandResult ble_glue_fus_stack_delete() {
  365. FURI_LOG_I(TAG, "Erasing stack");
  366. SHCI_CmdStatus_t erase_stat = SHCI_C2_FUS_FwDelete();
  367. FURI_LOG_I(TAG, "Cmd res = %x", erase_stat);
  368. if(erase_stat == SHCI_Success) {
  369. return BleGlueCommandResultOperationOngoing;
  370. }
  371. ble_glue_fus_get_status();
  372. return BleGlueCommandResultError;
  373. }
  374. BleGlueCommandResult ble_glue_fus_stack_install(uint32_t src_addr, uint32_t dst_addr) {
  375. FURI_LOG_I(TAG, "Installing stack");
  376. SHCI_CmdStatus_t write_stat = SHCI_C2_FUS_FwUpgrade(src_addr, dst_addr);
  377. FURI_LOG_I(TAG, "Cmd res = %x", write_stat);
  378. if(write_stat == SHCI_Success) {
  379. return BleGlueCommandResultOperationOngoing;
  380. }
  381. ble_glue_fus_get_status();
  382. return BleGlueCommandResultError;
  383. }
  384. BleGlueCommandResult ble_glue_fus_get_status() {
  385. furi_check(ble_glue->c2_info.mode == BleGlueC2ModeFUS);
  386. SHCI_FUS_GetState_ErrorCode_t error_code = 0;
  387. uint8_t fus_state = SHCI_C2_FUS_GetState(&error_code);
  388. FURI_LOG_I(TAG, "FUS state: %x, error: %x", fus_state, error_code);
  389. if((error_code != 0) || (fus_state == FUS_STATE_VALUE_ERROR)) {
  390. return BleGlueCommandResultError;
  391. } else if(
  392. (fus_state >= FUS_STATE_VALUE_FW_UPGRD_ONGOING) &&
  393. (fus_state <= FUS_STATE_VALUE_SERVICE_ONGOING_END)) {
  394. return BleGlueCommandResultOperationOngoing;
  395. }
  396. return BleGlueCommandResultOK;
  397. }
  398. BleGlueCommandResult ble_glue_fus_wait_operation() {
  399. furi_check(ble_glue->c2_info.mode == BleGlueC2ModeFUS);
  400. bool wip;
  401. do {
  402. BleGlueCommandResult fus_status = ble_glue_fus_get_status();
  403. if(fus_status == BleGlueCommandResultError) {
  404. return BleGlueCommandResultError;
  405. }
  406. wip = fus_status == BleGlueCommandResultOperationOngoing;
  407. if(wip) {
  408. furi_delay_ms(20);
  409. }
  410. } while(wip);
  411. return BleGlueCommandResultOK;
  412. }