app_ble.c 27 KB

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  1. #include "main.h"
  2. #include "app_common.h"
  3. #include "dbg_trace.h"
  4. #include "ble.h"
  5. #include "tl.h"
  6. #include "app_ble.h"
  7. #include "cmsis_os.h"
  8. #include "shci.h"
  9. #include "stm32_lpm.h"
  10. #include "otp.h"
  11. #include "dis_app.h"
  12. #include "hrs_app.h"
  13. typedef struct _tSecurityParams {
  14. uint8_t ioCapability;
  15. uint8_t mitm_mode;
  16. uint8_t bonding_mode;
  17. uint8_t Use_Fixed_Pin;
  18. uint8_t encryptionKeySizeMin;
  19. uint8_t encryptionKeySizeMax;
  20. uint32_t Fixed_Pin;
  21. uint8_t initiateSecurity;
  22. } tSecurityParams;
  23. typedef struct _tBLEProfileGlobalContext {
  24. tSecurityParams bleSecurityParam;
  25. uint16_t gapServiceHandle;
  26. uint16_t devNameCharHandle;
  27. uint16_t appearanceCharHandle;
  28. uint16_t connectionHandle;
  29. uint8_t advtServUUIDlen;
  30. uint8_t advtServUUID[100];
  31. } BleGlobalContext_t;
  32. typedef struct {
  33. BleGlobalContext_t BleApplicationContext_legacy;
  34. APP_BLE_ConnStatus_t Device_Connection_Status;
  35. uint8_t Advertising_mgr_timer_Id;
  36. } BleApplicationContext_t;
  37. #define APPBLE_GAP_DEVICE_NAME_LENGTH 7
  38. #define FAST_ADV_TIMEOUT (30*1000*1000/CFG_TS_TICK_VAL) /**< 30s */
  39. #define INITIAL_ADV_TIMEOUT (60*1000*1000/CFG_TS_TICK_VAL) /**< 60s */
  40. #define BD_ADDR_SIZE_LOCAL 6
  41. #define LED_ON_TIMEOUT (0.005*1000*1000/CFG_TS_TICK_VAL) /**< 5ms */
  42. PLACE_IN_SECTION("MB_MEM1") ALIGN(4) static TL_CmdPacket_t BleCmdBuffer;
  43. static const uint8_t M_bd_addr[BD_ADDR_SIZE_LOCAL] =
  44. {
  45. (uint8_t)((CFG_ADV_BD_ADDRESS & 0x0000000000FF)),
  46. (uint8_t)((CFG_ADV_BD_ADDRESS & 0x00000000FF00) >> 8),
  47. (uint8_t)((CFG_ADV_BD_ADDRESS & 0x000000FF0000) >> 16),
  48. (uint8_t)((CFG_ADV_BD_ADDRESS & 0x0000FF000000) >> 24),
  49. (uint8_t)((CFG_ADV_BD_ADDRESS & 0x00FF00000000) >> 32),
  50. (uint8_t)((CFG_ADV_BD_ADDRESS & 0xFF0000000000) >> 40)
  51. };
  52. static uint8_t bd_addr_udn[BD_ADDR_SIZE_LOCAL];
  53. static const uint8_t BLE_CFG_IR_VALUE[16] = CFG_BLE_IRK;
  54. static const uint8_t BLE_CFG_ER_VALUE[16] = CFG_BLE_ERK;
  55. PLACE_IN_SECTION("TAG_OTA_END") const uint32_t MagicKeywordValue = 0x94448A29 ;
  56. PLACE_IN_SECTION("TAG_OTA_START") const uint32_t MagicKeywordAddress = (uint32_t)&MagicKeywordValue;
  57. PLACE_IN_SECTION("BLE_APP_CONTEXT") static BleApplicationContext_t BleApplicationContext;
  58. PLACE_IN_SECTION("BLE_APP_CONTEXT") static uint16_t AdvIntervalMin, AdvIntervalMax;
  59. static const char local_name[] = { AD_TYPE_COMPLETE_LOCAL_NAME ,'F','L','I','P','P', 'E', 'R'};
  60. uint8_t manuf_data[14] = {
  61. sizeof(manuf_data)-1, AD_TYPE_MANUFACTURER_SPECIFIC_DATA,
  62. 0x01/*SKD version */,
  63. 0x00 /* Generic*/,
  64. 0x00 /* GROUP A Feature */,
  65. 0x00 /* GROUP A Feature */,
  66. 0x00 /* GROUP B Feature */,
  67. 0x00 /* GROUP B Feature */,
  68. 0x00, /* BLE MAC start -MSB */
  69. 0x00,
  70. 0x00,
  71. 0x00,
  72. 0x00,
  73. 0x00, /* BLE MAC stop */
  74. };
  75. osMutexId_t MtxHciId;
  76. osSemaphoreId_t SemHciId;
  77. osThreadId_t AdvUpdateProcessId;
  78. osThreadId_t HciUserEvtProcessId;
  79. const osThreadAttr_t AdvUpdateProcess_attr = {
  80. .name = CFG_ADV_UPDATE_PROCESS_NAME,
  81. .attr_bits = CFG_ADV_UPDATE_PROCESS_ATTR_BITS,
  82. .cb_mem = CFG_ADV_UPDATE_PROCESS_CB_MEM,
  83. .cb_size = CFG_ADV_UPDATE_PROCESS_CB_SIZE,
  84. .stack_mem = CFG_ADV_UPDATE_PROCESS_STACK_MEM,
  85. .priority = CFG_ADV_UPDATE_PROCESS_PRIORITY,
  86. .stack_size = CFG_ADV_UPDATE_PROCESS_STACK_SIZE
  87. };
  88. const osThreadAttr_t HciUserEvtProcess_attr = {
  89. .name = CFG_HCI_USER_EVT_PROCESS_NAME,
  90. .attr_bits = CFG_HCI_USER_EVT_PROCESS_ATTR_BITS,
  91. .cb_mem = CFG_HCI_USER_EVT_PROCESS_CB_MEM,
  92. .cb_size = CFG_HCI_USER_EVT_PROCESS_CB_SIZE,
  93. .stack_mem = CFG_HCI_USER_EVT_PROCESS_STACK_MEM,
  94. .priority = CFG_HCI_USER_EVT_PROCESS_PRIORITY,
  95. .stack_size = CFG_HCI_USER_EVT_PROCESS_STACK_SIZE
  96. };
  97. /* Private function prototypes -----------------------------------------------*/
  98. static void HciUserEvtProcess(void *argument);
  99. static void BLE_UserEvtRx( void * pPayload );
  100. static void BLE_StatusNot( HCI_TL_CmdStatus_t status );
  101. static void Ble_Tl_Init( void );
  102. static void Ble_Hci_Gap_Gatt_Init();
  103. static const uint8_t* BleGetBdAddress( void );
  104. static void Adv_Request( APP_BLE_ConnStatus_t New_Status );
  105. static void Add_Advertisment_Service_UUID( uint16_t servUUID );
  106. static void Adv_Mgr( void );
  107. static void AdvUpdateProcess(void *argument);
  108. static void Adv_Update( void );
  109. bool APP_BLE_Init() {
  110. SHCI_C2_Ble_Init_Cmd_Packet_t ble_init_cmd_packet = {
  111. {{0,0,0}}, /**< Header unused */
  112. {0, /** pBleBufferAddress not used */
  113. 0, /** BleBufferSize not used */
  114. CFG_BLE_NUM_GATT_ATTRIBUTES,
  115. CFG_BLE_NUM_GATT_SERVICES,
  116. CFG_BLE_ATT_VALUE_ARRAY_SIZE,
  117. CFG_BLE_NUM_LINK,
  118. CFG_BLE_DATA_LENGTH_EXTENSION,
  119. CFG_BLE_PREPARE_WRITE_LIST_SIZE,
  120. CFG_BLE_MBLOCK_COUNT,
  121. CFG_BLE_MAX_ATT_MTU,
  122. CFG_BLE_SLAVE_SCA,
  123. CFG_BLE_MASTER_SCA,
  124. CFG_BLE_LSE_SOURCE,
  125. CFG_BLE_MAX_CONN_EVENT_LENGTH,
  126. CFG_BLE_HSE_STARTUP_TIME,
  127. CFG_BLE_VITERBI_MODE,
  128. CFG_BLE_LL_ONLY,
  129. 0}
  130. };
  131. // Initialize Ble Transport Layer
  132. Ble_Tl_Init( );
  133. // Register the hci transport layer to handle BLE User Asynchronous Events
  134. HciUserEvtProcessId = osThreadNew(HciUserEvtProcess, NULL, &HciUserEvtProcess_attr);
  135. // Starts the BLE Stack on CPU2
  136. if (SHCI_C2_BLE_Init( &ble_init_cmd_packet ) != SHCI_Success) {
  137. return false;
  138. }
  139. // Initialization of HCI & GATT & GAP layer
  140. Ble_Hci_Gap_Gatt_Init();
  141. // Initialization of the BLE Services
  142. SVCCTL_Init();
  143. // Initialization of the BLE App Context
  144. BleApplicationContext.Device_Connection_Status = APP_BLE_IDLE;
  145. BleApplicationContext.BleApplicationContext_legacy.connectionHandle = 0xFFFF;
  146. // From here, all initialization are BLE application specific
  147. AdvUpdateProcessId = osThreadNew(AdvUpdateProcess, NULL, &AdvUpdateProcess_attr);
  148. // Initialization of ADV - Ad Manufacturer Element - Support OTA Bit Masks
  149. #if(BLE_CFG_OTA_REBOOT_CHAR != 0)
  150. manuf_data[sizeof(manuf_data)-8] = CFG_FEATURE_OTA_REBOOT;
  151. #endif
  152. // Initialize DIS Application
  153. DISAPP_Init();
  154. // Initialize HRS Application
  155. HRSAPP_Init();
  156. // Create timer to handle the connection state machine
  157. HW_TS_Create(CFG_TIM_PROC_ID_ISR, &(BleApplicationContext.Advertising_mgr_timer_Id), hw_ts_SingleShot, Adv_Mgr);
  158. // Make device discoverable
  159. BleApplicationContext.BleApplicationContext_legacy.advtServUUID[0] = AD_TYPE_16_BIT_SERV_UUID;
  160. BleApplicationContext.BleApplicationContext_legacy.advtServUUIDlen = 1;
  161. Add_Advertisment_Service_UUID(HEART_RATE_SERVICE_UUID);
  162. /* Initialize intervals for reconnexion without intervals update */
  163. AdvIntervalMin = CFG_FAST_CONN_ADV_INTERVAL_MIN;
  164. AdvIntervalMax = CFG_FAST_CONN_ADV_INTERVAL_MAX;
  165. Adv_Request(APP_BLE_FAST_ADV);
  166. return true;
  167. }
  168. SVCCTL_UserEvtFlowStatus_t SVCCTL_App_Notification( void *pckt )
  169. {
  170. hci_event_pckt *event_pckt;
  171. evt_le_meta_event *meta_evt;
  172. evt_blue_aci *blue_evt;
  173. hci_le_phy_update_complete_event_rp0 *evt_le_phy_update_complete;
  174. uint8_t TX_PHY, RX_PHY;
  175. tBleStatus ret = BLE_STATUS_INVALID_PARAMS;
  176. event_pckt = (hci_event_pckt*) ((hci_uart_pckt *) pckt)->data;
  177. switch (event_pckt->evt) {
  178. case EVT_DISCONN_COMPLETE:
  179. {
  180. hci_disconnection_complete_event_rp0 *disconnection_complete_event;
  181. disconnection_complete_event = (hci_disconnection_complete_event_rp0 *) event_pckt->data;
  182. if (disconnection_complete_event->Connection_Handle == BleApplicationContext.BleApplicationContext_legacy.connectionHandle) {
  183. BleApplicationContext.BleApplicationContext_legacy.connectionHandle = 0;
  184. BleApplicationContext.Device_Connection_Status = APP_BLE_IDLE;
  185. APP_DBG_MSG("\r\n\r** DISCONNECTION EVENT WITH CLIENT \n");
  186. }
  187. /* restart advertising */
  188. Adv_Request(APP_BLE_FAST_ADV);
  189. }
  190. break; /* EVT_DISCONN_COMPLETE */
  191. case EVT_LE_META_EVENT:
  192. {
  193. meta_evt = (evt_le_meta_event*) event_pckt->data;
  194. switch (meta_evt->subevent)
  195. {
  196. case EVT_LE_CONN_UPDATE_COMPLETE:
  197. APP_DBG_MSG("\r\n\r** CONNECTION UPDATE EVENT WITH CLIENT \n");
  198. /* USER CODE BEGIN EVT_LE_CONN_UPDATE_COMPLETE */
  199. /* USER CODE END EVT_LE_CONN_UPDATE_COMPLETE */
  200. break;
  201. case EVT_LE_PHY_UPDATE_COMPLETE:
  202. APP_DBG_MSG("EVT_UPDATE_PHY_COMPLETE \n");
  203. evt_le_phy_update_complete = (hci_le_phy_update_complete_event_rp0*)meta_evt->data;
  204. if (evt_le_phy_update_complete->Status == 0)
  205. {
  206. APP_DBG_MSG("EVT_UPDATE_PHY_COMPLETE, status ok \n");
  207. }
  208. else
  209. {
  210. APP_DBG_MSG("EVT_UPDATE_PHY_COMPLETE, status nok \n");
  211. }
  212. ret = hci_le_read_phy(BleApplicationContext.BleApplicationContext_legacy.connectionHandle,&TX_PHY,&RX_PHY);
  213. if (ret == BLE_STATUS_SUCCESS)
  214. {
  215. APP_DBG_MSG("Read_PHY success \n");
  216. if ((TX_PHY == TX_2M) && (RX_PHY == RX_2M))
  217. {
  218. APP_DBG_MSG("PHY Param TX= %d, RX= %d \n", TX_PHY, RX_PHY);
  219. }
  220. else
  221. {
  222. APP_DBG_MSG("PHY Param TX= %d, RX= %d \n", TX_PHY, RX_PHY);
  223. }
  224. }
  225. else
  226. {
  227. APP_DBG_MSG("Read conf not succeess \n");
  228. }
  229. break;
  230. case EVT_LE_CONN_COMPLETE:
  231. {
  232. hci_le_connection_complete_event_rp0 *connection_complete_event;
  233. /**
  234. * The connection is done, there is no need anymore to schedule the LP ADV
  235. */
  236. connection_complete_event = (hci_le_connection_complete_event_rp0 *) meta_evt->data;
  237. HW_TS_Stop(BleApplicationContext.Advertising_mgr_timer_Id);
  238. APP_DBG_MSG("EVT_LE_CONN_COMPLETE for connection handle 0x%x\n", connection_complete_event->Connection_Handle);
  239. if (BleApplicationContext.Device_Connection_Status == APP_BLE_LP_CONNECTING)
  240. {
  241. /* Connection as client */
  242. BleApplicationContext.Device_Connection_Status = APP_BLE_CONNECTED_CLIENT;
  243. }
  244. else
  245. {
  246. /* Connection as server */
  247. BleApplicationContext.Device_Connection_Status = APP_BLE_CONNECTED_SERVER;
  248. }
  249. BleApplicationContext.BleApplicationContext_legacy.connectionHandle = connection_complete_event->Connection_Handle;
  250. }
  251. break; /* HCI_EVT_LE_CONN_COMPLETE */
  252. default:
  253. break;
  254. }
  255. }
  256. break; /* HCI_EVT_LE_META_EVENT */
  257. case EVT_VENDOR:
  258. blue_evt = (evt_blue_aci*) event_pckt->data;
  259. switch (blue_evt->ecode) {
  260. aci_gap_pairing_complete_event_rp0 *pairing_complete;
  261. case EVT_BLUE_GAP_LIMITED_DISCOVERABLE:
  262. APP_DBG_MSG("\r\n\r** EVT_BLUE_GAP_LIMITED_DISCOVERABLE \n");
  263. break; /* EVT_BLUE_GAP_LIMITED_DISCOVERABLE */
  264. case EVT_BLUE_GAP_PASS_KEY_REQUEST:
  265. APP_DBG_MSG("\r\n\r** EVT_BLUE_GAP_PASS_KEY_REQUEST \n");
  266. aci_gap_pass_key_resp(BleApplicationContext.BleApplicationContext_legacy.connectionHandle,123456);
  267. APP_DBG_MSG("\r\n\r** aci_gap_pass_key_resp \n");
  268. break; /* EVT_BLUE_GAP_PASS_KEY_REQUEST */
  269. case EVT_BLUE_GAP_AUTHORIZATION_REQUEST:
  270. APP_DBG_MSG("\r\n\r** EVT_BLUE_GAP_AUTHORIZATION_REQUEST \n");
  271. break; /* EVT_BLUE_GAP_AUTHORIZATION_REQUEST */
  272. case EVT_BLUE_GAP_SLAVE_SECURITY_INITIATED:
  273. APP_DBG_MSG("\r\n\r** EVT_BLUE_GAP_SLAVE_SECURITY_INITIATED \n");
  274. break; /* EVT_BLUE_GAP_SLAVE_SECURITY_INITIATED */
  275. case EVT_BLUE_GAP_BOND_LOST:
  276. APP_DBG_MSG("\r\n\r** EVT_BLUE_GAP_BOND_LOST \n");
  277. aci_gap_allow_rebond(BleApplicationContext.BleApplicationContext_legacy.connectionHandle);
  278. APP_DBG_MSG("\r\n\r** Send allow rebond \n");
  279. break; /* EVT_BLUE_GAP_BOND_LOST */
  280. case EVT_BLUE_GAP_DEVICE_FOUND:
  281. APP_DBG_MSG("\r\n\r** EVT_BLUE_GAP_DEVICE_FOUND \n");
  282. break; /* EVT_BLUE_GAP_DEVICE_FOUND */
  283. case EVT_BLUE_GAP_ADDR_NOT_RESOLVED:
  284. APP_DBG_MSG("\r\n\r** EVT_BLUE_GAP_DEVICE_FOUND \n");
  285. break; /* EVT_BLUE_GAP_DEVICE_FOUND */
  286. case (EVT_BLUE_GAP_KEYPRESS_NOTIFICATION):
  287. APP_DBG_MSG("\r\n\r** EVT_BLUE_GAP_KEYPRESS_NOTIFICATION \n");
  288. break; /* EVT_BLUE_GAP_KEY_PRESS_NOTIFICATION */
  289. case (EVT_BLUE_GAP_NUMERIC_COMPARISON_VALUE):
  290. APP_DBG_MSG("numeric_value = %ld\n",
  291. ((aci_gap_numeric_comparison_value_event_rp0 *)(blue_evt->data))->Numeric_Value);
  292. APP_DBG_MSG("Hex_value = %lx\n",
  293. ((aci_gap_numeric_comparison_value_event_rp0 *)(blue_evt->data))->Numeric_Value);
  294. aci_gap_numeric_comparison_value_confirm_yesno(BleApplicationContext.BleApplicationContext_legacy.connectionHandle, 1); /* CONFIRM_YES = 1 */
  295. APP_DBG_MSG("\r\n\r** aci_gap_numeric_comparison_value_confirm_yesno-->YES \n");
  296. break;
  297. case (EVT_BLUE_GAP_PAIRING_CMPLT):
  298. {
  299. pairing_complete = (aci_gap_pairing_complete_event_rp0*)blue_evt->data;
  300. APP_DBG_MSG("BLE_CTRL_App_Notification: EVT_BLUE_GAP_PAIRING_CMPLT, pairing_complete->Status = %d\n",pairing_complete->Status);
  301. if (pairing_complete->Status == 0) {
  302. APP_DBG_MSG("\r\n\r** Pairing OK \n");
  303. } else {
  304. APP_DBG_MSG("\r\n\r** Pairing KO \n");
  305. }
  306. }
  307. break;
  308. /* USER CODE END ecode */
  309. case EVT_BLUE_GAP_PROCEDURE_COMPLETE:
  310. APP_DBG_MSG("\r\n\r** EVT_BLUE_GAP_PROCEDURE_COMPLETE \n");
  311. break;
  312. }
  313. break; /* EVT_VENDOR */
  314. default:
  315. break;
  316. }
  317. return (SVCCTL_UserEvtFlowEnable);
  318. }
  319. APP_BLE_ConnStatus_t APP_BLE_Get_Server_Connection_Status() {
  320. return BleApplicationContext.Device_Connection_Status;
  321. }
  322. /* USER CODE BEGIN FD*/
  323. void APP_BLE_Key_Button1_Action() {
  324. tBleStatus ret = BLE_STATUS_INVALID_PARAMS;
  325. ret = aci_gap_clear_security_db();
  326. if (ret == BLE_STATUS_SUCCESS) {
  327. APP_DBG_MSG("Successfully aci_gap_clear_security_db()\n");
  328. } else {
  329. APP_DBG_MSG("aci_gap_clear_security_db() Failed , result: %d \n", ret);
  330. }
  331. }
  332. void APP_BLE_Key_Button2_Action() {
  333. tBleStatus ret = BLE_STATUS_INVALID_PARAMS;
  334. ret = aci_gap_slave_security_req(BleApplicationContext.BleApplicationContext_legacy.connectionHandle);
  335. if (ret == BLE_STATUS_SUCCESS) {
  336. APP_DBG_MSG("Successfully aci_gap_slave_security_req()");
  337. } else {
  338. APP_DBG_MSG("aci_gap_slave_security_req() Failed , result: %d \n", ret);
  339. }
  340. }
  341. void APP_BLE_Key_Button3_Action() {
  342. uint8_t TX_PHY, RX_PHY;
  343. tBleStatus ret = BLE_STATUS_INVALID_PARAMS;
  344. ret = hci_le_read_phy(BleApplicationContext.BleApplicationContext_legacy.connectionHandle,&TX_PHY,&RX_PHY);
  345. if (ret == BLE_STATUS_SUCCESS) {
  346. APP_DBG_MSG("Read_PHY success \n");
  347. APP_DBG_MSG("PHY Param TX= %d, RX= %d \n", TX_PHY, RX_PHY);
  348. if ((TX_PHY == TX_2M) && (RX_PHY == RX_2M)) {
  349. APP_DBG_MSG("hci_le_set_phy PHY Param TX= %d, RX= %d \n", TX_1M, RX_1M);
  350. ret = hci_le_set_phy(BleApplicationContext.BleApplicationContext_legacy.connectionHandle,ALL_PHYS_PREFERENCE,TX_1M,RX_1M,0);
  351. } else {
  352. APP_DBG_MSG("hci_le_set_phy PHY Param TX= %d, RX= %d \n", TX_2M_PREFERRED, RX_2M_PREFERRED);
  353. ret = hci_le_set_phy(BleApplicationContext.BleApplicationContext_legacy.connectionHandle,ALL_PHYS_PREFERENCE,TX_2M_PREFERRED,RX_2M_PREFERRED,0);
  354. }
  355. } else {
  356. APP_DBG_MSG("Read conf not succeess \n");
  357. }
  358. if (ret == BLE_STATUS_SUCCESS) {
  359. APP_DBG_MSG("set PHY cmd ok\n");
  360. } else {
  361. APP_DBG_MSG("set PHY cmd NOK\n");
  362. }
  363. }
  364. static void Ble_Tl_Init( void ) {
  365. HCI_TL_HciInitConf_t Hci_Tl_Init_Conf;
  366. MtxHciId = osMutexNew( NULL );
  367. SemHciId = osSemaphoreNew( 1, 0, NULL ); /*< Create the semaphore and make it busy at initialization */
  368. Hci_Tl_Init_Conf.p_cmdbuffer = (uint8_t*)&BleCmdBuffer;
  369. Hci_Tl_Init_Conf.StatusNotCallBack = BLE_StatusNot;
  370. hci_init(BLE_UserEvtRx, (void*) &Hci_Tl_Init_Conf);
  371. }
  372. static void Ble_Hci_Gap_Gatt_Init() {
  373. uint8_t role;
  374. uint16_t gap_service_handle, gap_dev_name_char_handle, gap_appearance_char_handle;
  375. const uint8_t *bd_addr;
  376. uint32_t srd_bd_addr[2];
  377. uint16_t appearance[1] = { BLE_CFG_GAP_APPEARANCE };
  378. /*HCI Reset to synchronise BLE Stack*/
  379. hci_reset();
  380. /**
  381. * Write the BD Address
  382. */
  383. bd_addr = BleGetBdAddress();
  384. aci_hal_write_config_data(CONFIG_DATA_PUBADDR_OFFSET,
  385. CONFIG_DATA_PUBADDR_LEN,
  386. (uint8_t*) bd_addr);
  387. /* BLE MAC in ADV Packet */
  388. manuf_data[ sizeof(manuf_data)-6] = bd_addr[5];
  389. manuf_data[ sizeof(manuf_data)-5] = bd_addr[4];
  390. manuf_data[ sizeof(manuf_data)-4] = bd_addr[3];
  391. manuf_data[ sizeof(manuf_data)-3] = bd_addr[2];
  392. manuf_data[ sizeof(manuf_data)-2] = bd_addr[1];
  393. manuf_data[ sizeof(manuf_data)-1] = bd_addr[0];
  394. /**
  395. * Write Identity root key used to derive LTK and CSRK
  396. */
  397. aci_hal_write_config_data(CONFIG_DATA_IR_OFFSET,
  398. CONFIG_DATA_IR_LEN,
  399. (uint8_t*) BLE_CFG_IR_VALUE);
  400. /**
  401. * Write Encryption root key used to derive LTK and CSRK
  402. */
  403. aci_hal_write_config_data(CONFIG_DATA_ER_OFFSET,
  404. CONFIG_DATA_ER_LEN,
  405. (uint8_t*) BLE_CFG_ER_VALUE);
  406. /**
  407. * Write random bd_address
  408. */
  409. /* random_bd_address = R_bd_address;
  410. aci_hal_write_config_data(CONFIG_DATA_RANDOM_ADDRESS_WR,
  411. CONFIG_DATA_RANDOM_ADDRESS_LEN,
  412. (uint8_t*) random_bd_address);
  413. */
  414. /**
  415. * Static random Address
  416. * The two upper bits shall be set to 1
  417. * The lowest 32bits is read from the UDN to differentiate between devices
  418. * The RNG may be used to provide a random number on each power on
  419. */
  420. srd_bd_addr[1] = 0x0000ED6E;
  421. srd_bd_addr[0] = LL_FLASH_GetUDN( );
  422. aci_hal_write_config_data( CONFIG_DATA_RANDOM_ADDRESS_OFFSET, CONFIG_DATA_RANDOM_ADDRESS_LEN, (uint8_t*)srd_bd_addr );
  423. /**
  424. * Write Identity root key used to derive LTK and CSRK
  425. */
  426. aci_hal_write_config_data( CONFIG_DATA_IR_OFFSET, CONFIG_DATA_IR_LEN, (uint8_t*)BLE_CFG_IR_VALUE );
  427. /**
  428. * Write Encryption root key used to derive LTK and CSRK
  429. */
  430. aci_hal_write_config_data( CONFIG_DATA_ER_OFFSET, CONFIG_DATA_ER_LEN, (uint8_t*)BLE_CFG_ER_VALUE );
  431. /**
  432. * Set TX Power to 0dBm.
  433. */
  434. aci_hal_set_tx_power_level(1, CFG_TX_POWER);
  435. /**
  436. * Initialize GATT interface
  437. */
  438. aci_gatt_init();
  439. /**
  440. * Initialize GAP interface
  441. */
  442. role = 0;
  443. #if (BLE_CFG_PERIPHERAL == 1)
  444. role |= GAP_PERIPHERAL_ROLE;
  445. #endif
  446. #if (BLE_CFG_CENTRAL == 1)
  447. role |= GAP_CENTRAL_ROLE;
  448. #endif
  449. if (role > 0)
  450. {
  451. const char *name = "Flipper";
  452. aci_gap_init(role, 0,
  453. APPBLE_GAP_DEVICE_NAME_LENGTH,
  454. &gap_service_handle, &gap_dev_name_char_handle, &gap_appearance_char_handle);
  455. if (aci_gatt_update_char_value(gap_service_handle, gap_dev_name_char_handle, 0, strlen(name), (uint8_t *) name))
  456. {
  457. BLE_DBG_SVCCTL_MSG("Device Name aci_gatt_update_char_value failed.\n");
  458. }
  459. }
  460. if(aci_gatt_update_char_value(gap_service_handle,
  461. gap_appearance_char_handle,
  462. 0,
  463. 2,
  464. (uint8_t *)&appearance))
  465. {
  466. BLE_DBG_SVCCTL_MSG("Appearance aci_gatt_update_char_value failed.\n");
  467. }
  468. /**
  469. * Initialize Default PHY
  470. */
  471. hci_le_set_default_phy(ALL_PHYS_PREFERENCE,TX_2M_PREFERRED,RX_2M_PREFERRED);
  472. /**
  473. * Initialize IO capability
  474. */
  475. BleApplicationContext.BleApplicationContext_legacy.bleSecurityParam.ioCapability = CFG_IO_CAPABILITY;
  476. aci_gap_set_io_capability(BleApplicationContext.BleApplicationContext_legacy.bleSecurityParam.ioCapability);
  477. /**
  478. * Initialize authentication
  479. */
  480. BleApplicationContext.BleApplicationContext_legacy.bleSecurityParam.mitm_mode = CFG_MITM_PROTECTION;
  481. BleApplicationContext.BleApplicationContext_legacy.bleSecurityParam.encryptionKeySizeMin = CFG_ENCRYPTION_KEY_SIZE_MIN;
  482. BleApplicationContext.BleApplicationContext_legacy.bleSecurityParam.encryptionKeySizeMax = CFG_ENCRYPTION_KEY_SIZE_MAX;
  483. BleApplicationContext.BleApplicationContext_legacy.bleSecurityParam.Use_Fixed_Pin = CFG_USED_FIXED_PIN;
  484. BleApplicationContext.BleApplicationContext_legacy.bleSecurityParam.Fixed_Pin = CFG_FIXED_PIN;
  485. BleApplicationContext.BleApplicationContext_legacy.bleSecurityParam.bonding_mode = CFG_BONDING_MODE;
  486. aci_gap_set_authentication_requirement(BleApplicationContext.BleApplicationContext_legacy.bleSecurityParam.bonding_mode,
  487. BleApplicationContext.BleApplicationContext_legacy.bleSecurityParam.mitm_mode,
  488. CFG_SC_SUPPORT,
  489. CFG_KEYPRESS_NOTIFICATION_SUPPORT,
  490. BleApplicationContext.BleApplicationContext_legacy.bleSecurityParam.encryptionKeySizeMin,
  491. BleApplicationContext.BleApplicationContext_legacy.bleSecurityParam.encryptionKeySizeMax,
  492. BleApplicationContext.BleApplicationContext_legacy.bleSecurityParam.Use_Fixed_Pin,
  493. BleApplicationContext.BleApplicationContext_legacy.bleSecurityParam.Fixed_Pin,
  494. PUBLIC_ADDR
  495. );
  496. /**
  497. * Initialize whitelist
  498. */
  499. if (BleApplicationContext.BleApplicationContext_legacy.bleSecurityParam.bonding_mode)
  500. {
  501. aci_gap_configure_whitelist();
  502. }
  503. }
  504. static void Adv_Request(APP_BLE_ConnStatus_t New_Status)
  505. {
  506. tBleStatus ret = BLE_STATUS_INVALID_PARAMS;
  507. uint16_t Min_Inter, Max_Inter;
  508. if (New_Status == APP_BLE_FAST_ADV)
  509. {
  510. Min_Inter = AdvIntervalMin;
  511. Max_Inter = AdvIntervalMax;
  512. }
  513. else
  514. {
  515. Min_Inter = CFG_LP_CONN_ADV_INTERVAL_MIN;
  516. Max_Inter = CFG_LP_CONN_ADV_INTERVAL_MAX;
  517. }
  518. /**
  519. * Stop the timer, it will be restarted for a new shot
  520. * It does not hurt if the timer was not running
  521. */
  522. HW_TS_Stop(BleApplicationContext.Advertising_mgr_timer_Id);
  523. APP_DBG_MSG("First index in %d state \n", BleApplicationContext.Device_Connection_Status);
  524. if ((New_Status == APP_BLE_LP_ADV)
  525. && ((BleApplicationContext.Device_Connection_Status == APP_BLE_FAST_ADV)
  526. || (BleApplicationContext.Device_Connection_Status == APP_BLE_LP_ADV)))
  527. {
  528. /* Connection in ADVERTISE mode have to stop the current advertising */
  529. ret = aci_gap_set_non_discoverable();
  530. if (ret == BLE_STATUS_SUCCESS)
  531. {
  532. APP_DBG_MSG("Successfully Stopped Advertising \n");
  533. }
  534. else
  535. {
  536. APP_DBG_MSG("Stop Advertising Failed , result: %d \n", ret);
  537. }
  538. }
  539. BleApplicationContext.Device_Connection_Status = New_Status;
  540. /* Start Fast or Low Power Advertising */
  541. ret = aci_gap_set_discoverable(
  542. ADV_IND,
  543. Min_Inter,
  544. Max_Inter,
  545. PUBLIC_ADDR,
  546. NO_WHITE_LIST_USE, /* use white list */
  547. sizeof(local_name),
  548. (uint8_t*) &local_name,
  549. BleApplicationContext.BleApplicationContext_legacy.advtServUUIDlen,
  550. BleApplicationContext.BleApplicationContext_legacy.advtServUUID,
  551. 0,
  552. 0);
  553. /* Update Advertising data */
  554. ret = aci_gap_update_adv_data(sizeof(manuf_data), (uint8_t*) manuf_data);
  555. if (ret == BLE_STATUS_SUCCESS) {
  556. if (New_Status == APP_BLE_FAST_ADV) {
  557. APP_DBG_MSG("Successfully Start Fast Advertising \n" );
  558. /* Start Timer to STOP ADV - TIMEOUT */
  559. HW_TS_Start(BleApplicationContext.Advertising_mgr_timer_Id, INITIAL_ADV_TIMEOUT);
  560. } else {
  561. APP_DBG_MSG("Successfully Start Low Power Advertising \n");
  562. }
  563. } else {
  564. if (New_Status == APP_BLE_FAST_ADV) {
  565. APP_DBG_MSG("Start Fast Advertising Failed , result: %d \n", ret);
  566. } else {
  567. APP_DBG_MSG("Start Low Power Advertising Failed , result: %d \n", ret);
  568. }
  569. }
  570. }
  571. const uint8_t* BleGetBdAddress( void ) {
  572. uint8_t *otp_addr;
  573. const uint8_t *bd_addr;
  574. uint32_t udn;
  575. uint32_t company_id;
  576. uint32_t device_id;
  577. udn = LL_FLASH_GetUDN();
  578. if(udn != 0xFFFFFFFF) {
  579. company_id = LL_FLASH_GetSTCompanyID();
  580. device_id = LL_FLASH_GetDeviceID();
  581. bd_addr_udn[0] = (uint8_t)(udn & 0x000000FF);
  582. bd_addr_udn[1] = (uint8_t)( (udn & 0x0000FF00) >> 8 );
  583. bd_addr_udn[2] = (uint8_t)( (udn & 0x00FF0000) >> 16 );
  584. bd_addr_udn[3] = (uint8_t)device_id;
  585. bd_addr_udn[4] = (uint8_t)(company_id & 0x000000FF);;
  586. bd_addr_udn[5] = (uint8_t)( (company_id & 0x0000FF00) >> 8 );
  587. bd_addr = (const uint8_t *)bd_addr_udn;
  588. } else {
  589. otp_addr = OTP_Read(0);
  590. if(otp_addr) {
  591. bd_addr = ((OTP_ID0_t*)otp_addr)->bd_address;
  592. } else {
  593. bd_addr = M_bd_addr;
  594. }
  595. }
  596. return bd_addr;
  597. }
  598. /*************************************************************
  599. *
  600. *SPECIFIC FUNCTIONS
  601. *
  602. *************************************************************/
  603. static void Add_Advertisment_Service_UUID( uint16_t servUUID ) {
  604. BleApplicationContext.BleApplicationContext_legacy.advtServUUID[BleApplicationContext.BleApplicationContext_legacy.advtServUUIDlen] =
  605. (uint8_t) (servUUID & 0xFF);
  606. BleApplicationContext.BleApplicationContext_legacy.advtServUUIDlen++;
  607. BleApplicationContext.BleApplicationContext_legacy.advtServUUID[BleApplicationContext.BleApplicationContext_legacy.advtServUUIDlen] =
  608. (uint8_t) (servUUID >> 8) & 0xFF;
  609. BleApplicationContext.BleApplicationContext_legacy.advtServUUIDlen++;
  610. }
  611. static void Adv_Mgr( void ) {
  612. /**
  613. * The code shall be executed in the background as an aci command may be sent
  614. * The background is the only place where the application can make sure a new aci command
  615. * is not sent if there is a pending one
  616. */
  617. osThreadFlagsSet( AdvUpdateProcessId, 1 );
  618. }
  619. static void AdvUpdateProcess(void *argument) {
  620. UNUSED(argument);
  621. for(;;) {
  622. osThreadFlagsWait( 1, osFlagsWaitAny, osWaitForever);
  623. Adv_Update( );
  624. }
  625. }
  626. static void Adv_Update( void ) {
  627. Adv_Request(APP_BLE_LP_ADV);
  628. }
  629. static void HciUserEvtProcess(void *argument) {
  630. UNUSED(argument);
  631. for(;;)
  632. {
  633. osThreadFlagsWait( 1, osFlagsWaitAny, osWaitForever);
  634. hci_user_evt_proc( );
  635. }
  636. }
  637. /*************************************************************
  638. *
  639. * WRAP FUNCTIONS
  640. *
  641. *************************************************************/
  642. void hci_notify_asynch_evt(void* pdata) {
  643. UNUSED(pdata);
  644. osThreadFlagsSet( HciUserEvtProcessId, 1 );
  645. }
  646. void hci_cmd_resp_release(uint32_t flag) {
  647. UNUSED(flag);
  648. osSemaphoreRelease( SemHciId );
  649. }
  650. void hci_cmd_resp_wait(uint32_t timeout) {
  651. UNUSED(timeout);
  652. osSemaphoreAcquire( SemHciId, osWaitForever );
  653. }
  654. static void BLE_UserEvtRx( void * pPayload ) {
  655. SVCCTL_UserEvtFlowStatus_t svctl_return_status;
  656. tHCI_UserEvtRxParam *pParam;
  657. pParam = (tHCI_UserEvtRxParam *)pPayload;
  658. svctl_return_status = SVCCTL_UserEvtRx((void *)&(pParam->pckt->evtserial));
  659. if (svctl_return_status != SVCCTL_UserEvtFlowDisable) {
  660. pParam->status = HCI_TL_UserEventFlow_Enable;
  661. } else {
  662. pParam->status = HCI_TL_UserEventFlow_Disable;
  663. }
  664. }
  665. static void BLE_StatusNot( HCI_TL_CmdStatus_t status ) {
  666. switch (status) {
  667. case HCI_TL_CmdBusy:
  668. osMutexAcquire( MtxHciId, osWaitForever );
  669. break;
  670. case HCI_TL_CmdAvailable:
  671. osMutexRelease( MtxHciId );
  672. break;
  673. default:
  674. break;
  675. }
  676. }
  677. void SVCCTL_ResumeUserEventFlow( void ) {
  678. hci_resume_flow();
  679. }