sysmgr.c 19 KB

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  1. #include "sysmgr.h"
  2. #include <nrfx.h>
  3. #include <nrf_delay.h>
  4. #include <drv_rtc.h>
  5. #include <stdio.h>
  6. #include <stdlib.h>
  7. #include <string.h>
  8. #include <stdarg.h>
  9. #include "nrf_spi.h"
  10. #include "nrf_drv_spi.h"
  11. #include "nrf_pwr_mgmt.h"
  12. #include "main.h"
  13. stSystemTimer SystemTimer;
  14. stSystemManager SystemManager;
  15. extern const nrf_drv_spi_t spi; /**< SPI instance. */
  16. extern volatile bool spi_xfer_done; /**< Flag used to indicate that SPI instance completed the transfer. */
  17. uint8_t m_tx_buf[64]; /**< TX buffer. */
  18. uint8_t m_rx_buf[64]; /**< RX buffer. */
  19. uint8_t m_length; /**< Transfer length. */
  20. RegMacPool_t RegMacPool;
  21. const char *fds_err_str(ret_code_t ret)
  22. {
  23. /* Array to map FDS return values to strings. */
  24. static char const * err_str[] =
  25. {
  26. "FDS_ERR_OPERATION_TIMEOUT",
  27. "FDS_ERR_NOT_INITIALIZED",
  28. "FDS_ERR_UNALIGNED_ADDR",
  29. "FDS_ERR_INVALID_ARG",
  30. "FDS_ERR_NULL_ARG",
  31. "FDS_ERR_NO_OPEN_RECORDS",
  32. "FDS_ERR_NO_SPACE_IN_FLASH",
  33. "FDS_ERR_NO_SPACE_IN_QUEUES",
  34. "FDS_ERR_RECORD_TOO_LARGE",
  35. "FDS_ERR_NOT_FOUND",
  36. "FDS_ERR_NO_PAGES",
  37. "FDS_ERR_USER_LIMIT_REACHED",
  38. "FDS_ERR_CRC_CHECK_FAILED",
  39. "FDS_ERR_BUSY",
  40. "FDS_ERR_INTERNAL",
  41. };
  42. return err_str[ret - NRF_ERROR_FDS_ERR_BASE];
  43. }
  44. void ParkSysInit()
  45. {
  46. SystemTimer.TMR_SYS_OFF = 3;
  47. }
  48. void ParkPowerOff()
  49. {
  50. SystemTimer.TMR_SYS_OFF = 0;
  51. }
  52. /* Dummy configuration data. */
  53. static configuration_t m_dummy_cfg =
  54. {
  55. .config1_on = false,
  56. .config2_on = true,
  57. .boot_count = 0x0,
  58. .device_name = "dummy",
  59. };
  60. static void record_write(uint32_t fid,
  61. uint32_t key,
  62. void const * p_data,
  63. uint32_t len)
  64. {
  65. fds_record_t const rec =
  66. {
  67. .file_id = fid,
  68. .key = key,
  69. .data.p_data = p_data,
  70. .data.length_words = (len + 3) / sizeof(uint32_t)
  71. };
  72. NRF_LOG_INFO(
  73. "writing record to flash...\n"
  74. "file: 0x%x, key: 0x%x, \"%s\", len: %u bytes\n",
  75. fid, key, p_data, len);
  76. fds_record_desc_t desc = {0};
  77. desc.record_id = 1;
  78. //ret_code_t rc = fds_record_write(NULL, &rec);
  79. ret_code_t rc = fds_record_write(&desc, &rec);
  80. if (rc != NRF_SUCCESS)
  81. {
  82. NRF_LOG_INFO(
  83. "error: fds_record_write() returned %s.\n",
  84. fds_err_str(rc));
  85. }
  86. }
  87. static void record_update( configuration_t const * p_cfg)
  88. {
  89. fds_record_desc_t desc = {0};
  90. fds_find_token_t ftok = {0};
  91. if (fds_record_find(CONFIG_FILE, CONFIG_REC_KEY, &desc, &ftok) == NRF_SUCCESS)
  92. {
  93. fds_record_t const rec =
  94. {
  95. .file_id = CONFIG_FILE,
  96. .key = CONFIG_REC_KEY,
  97. .data.p_data = p_cfg,
  98. .data.length_words = (sizeof(configuration_t) + 3) / sizeof(uint32_t)
  99. };
  100. ret_code_t rc = fds_record_update(&desc, &rec);
  101. if (rc != NRF_SUCCESS)
  102. {
  103. NRF_LOG_INFO( "error: fds_record_update() returned %s.\n",
  104. fds_err_str(rc));
  105. }
  106. }
  107. else
  108. {
  109. NRF_LOG_INFO( "error: could not find config file.\n");
  110. }
  111. }
  112. static void record_delete( uint32_t fid, uint32_t key)
  113. {
  114. fds_find_token_t tok = {0};
  115. fds_record_desc_t desc = {0};
  116. NRF_LOG_INFO(
  117. "deleting record...\n"
  118. "file: 0x%x, key: 0x%x\n",
  119. fid,
  120. key);
  121. if (fds_record_find(fid, key, &desc, &tok) == NRF_SUCCESS)
  122. {
  123. ret_code_t rc = fds_record_delete(&desc);
  124. if (rc != NRF_SUCCESS)
  125. {
  126. NRF_LOG_INFO(
  127. "error: fds_record_delete() returned %s.\n", fds_err_str(rc));
  128. return;
  129. }
  130. NRF_LOG_INFO( "record id: 0x%x\n", desc.record_id);
  131. }
  132. else
  133. {
  134. NRF_LOG_INFO( "error: record not found!\n");
  135. }
  136. }
  137. bool record_delete_next(void)
  138. {
  139. fds_find_token_t tok = {0};
  140. fds_record_desc_t desc = {0};
  141. if (fds_record_iterate(&desc, &tok) == NRF_SUCCESS)
  142. {
  143. ret_code_t rc = fds_record_delete(&desc);
  144. if (rc != NRF_SUCCESS)
  145. {
  146. return false;
  147. }
  148. return true;
  149. }
  150. else
  151. {
  152. /* No records left to delete. */
  153. return false;
  154. }
  155. }
  156. static void print_cfg_cmd( size_t argc, char ** argv)
  157. {
  158. fds_record_desc_t desc = {0};
  159. fds_find_token_t tok = {0};
  160. while (fds_record_find(CONFIG_FILE, CONFIG_REC_KEY, &desc, &tok) == NRF_SUCCESS)
  161. {
  162. ret_code_t rc;
  163. fds_flash_record_t frec = {0};
  164. rc = fds_record_open(&desc, &frec);
  165. switch (rc)
  166. {
  167. case NRF_SUCCESS:
  168. break;
  169. case FDS_ERR_CRC_CHECK_FAILED:
  170. NRF_LOG_INFO( "error: CRC check failed!\n");
  171. continue;
  172. case FDS_ERR_NOT_FOUND:
  173. NRF_LOG_INFO( "error: record not found!\n");
  174. continue;
  175. default:
  176. {
  177. NRF_LOG_INFO(
  178. "error: unexpecte error %s.\n",
  179. fds_err_str(rc));
  180. continue;
  181. }
  182. }
  183. configuration_t * p_cfg = (configuration_t *)(frec.p_data);
  184. NRF_LOG_INFO(
  185. "config1:\t%s\n"
  186. "config2:\t%s\n"
  187. "boot count:\t%u\n"
  188. "device name:\t%s\n",
  189. p_cfg->config1_on ? "on" : "off",
  190. p_cfg->config2_on ? "on" : "off",
  191. p_cfg->boot_count,
  192. p_cfg->device_name);
  193. rc = fds_record_close(&desc);
  194. APP_ERROR_CHECK(rc);
  195. }
  196. }
  197. static void print_all_cmd( )
  198. {
  199. fds_find_token_t tok = {0};
  200. fds_record_desc_t desc = {0};
  201. uint8_t *data;
  202. NRF_LOG_INFO("rec. id \t file id \t rec. key \t length");
  203. while (fds_record_iterate(&desc, &tok) != FDS_ERR_NOT_FOUND)
  204. {
  205. ret_code_t rc;
  206. fds_flash_record_t frec = {0};
  207. rc = fds_record_open(&desc, &frec);
  208. switch (rc)
  209. {
  210. case NRF_SUCCESS:
  211. break;
  212. case FDS_ERR_CRC_CHECK_FAILED:
  213. NRF_LOG_INFO( "error: CRC check failed!\n");
  214. continue;
  215. case FDS_ERR_NOT_FOUND:
  216. NRF_LOG_INFO( "error: record not found!\n");
  217. continue;
  218. default:
  219. {
  220. NRF_LOG_INFO("error: unexpecte error %s.\n", fds_err_str(rc));
  221. continue;
  222. }
  223. }
  224. uint32_t const len = frec.p_header->length_words * sizeof(uint32_t);
  225. NRF_LOG_INFO( " 0x%04x"
  226. "\t 0x%04x"
  227. "\t 0x%04x"
  228. "\t %4u bytes\t",
  229. frec.p_header->record_id,
  230. frec.p_header->file_id,
  231. frec.p_header->record_key,
  232. len);
  233. data = (uint8_t *) frec.p_data;
  234. for (uint8_t i=0;i<len;i++)
  235. {
  236. NRF_LOG_RAW_INFO( "%c",data[i]);
  237. }
  238. NRF_LOG_INFO("\n");
  239. rc = fds_record_close(&desc);
  240. APP_ERROR_CHECK(rc);
  241. }
  242. }
  243. void RegMac(char* str)
  244. {
  245. print_all_cmd();
  246. NRF_LOG_RAW_INFO("Registration MAC : %s\n", str);
  247. RegMacPool.Count++;
  248. record_write(1, RegMacPool.Count, str, 12);
  249. print_all_cmd();
  250. }
  251. void RegMacDelteAll()
  252. {
  253. bool next;
  254. while(1)
  255. {
  256. next = record_delete_next();
  257. if (!next)
  258. {
  259. NRF_LOG_INFO("No records left to delete.");
  260. break;
  261. }
  262. nrf_delay_ms(20);
  263. }
  264. memset( &RegMacPool, 0, sizeof(RegMacPool));
  265. }
  266. uint8_t Load_Flash()
  267. {
  268. fds_find_token_t tok = {0};
  269. fds_record_desc_t desc = {0};
  270. uint8_t *data;
  271. char tmpBuf[15];
  272. uint8_t flag;
  273. NRF_LOG_RAW_INFO("=====================================\n");
  274. NRF_LOG_INFO(
  275. "\nrec. id\t"
  276. "\tfile id\t"
  277. "\trec. key"
  278. "\tlength\tmac\n");
  279. while (fds_record_iterate(&desc, &tok) != FDS_ERR_NOT_FOUND)
  280. {
  281. ret_code_t rc;
  282. fds_flash_record_t frec = {0};
  283. rc = fds_record_open(&desc, &frec);
  284. switch (rc)
  285. {
  286. case NRF_SUCCESS:
  287. break;
  288. case FDS_ERR_CRC_CHECK_FAILED:
  289. NRF_LOG_INFO("error: CRC check failed!\n");
  290. continue;
  291. case FDS_ERR_NOT_FOUND:
  292. NRF_LOG_INFO("error: record not found!\n");
  293. continue;
  294. default:
  295. {
  296. NRF_LOG_INFO("error: unexpecte error %s.\n", fds_err_str(rc));
  297. continue;
  298. }
  299. }
  300. uint32_t const len = frec.p_header->length_words * sizeof(uint32_t);
  301. NRF_LOG_RAW_INFO(
  302. " 0x%04x\t"
  303. "\t 0x%04x\t"
  304. "\t 0x%04x\t"
  305. "\t %4u bytes\t",
  306. frec.p_header->record_id,
  307. frec.p_header->file_id,
  308. frec.p_header->record_key,
  309. len);
  310. data = (uint8_t *) frec.p_data;
  311. strncpy( tmpBuf, data, 1);
  312. rc = fds_record_close(&desc);
  313. APP_ERROR_CHECK(rc);
  314. }
  315. return tmpBuf[0];
  316. }
  317. void Save_Flash(uint8_t data)
  318. {
  319. static uint8_t m_data[256];
  320. m_data[0] = data;
  321. NRF_LOG_RAW_INFO( "===> SaveReceiverMac : %02x\n", data);
  322. record_write(1,1, m_data, 1);
  323. print_all_cmd();
  324. }
  325. void LoadRegMac()
  326. {
  327. fds_find_token_t tok = {0};
  328. fds_record_desc_t desc = {0};
  329. uint8_t *data;
  330. char tmpBuf[15];
  331. NRF_LOG_INFO(
  332. "\nrec. id\t"
  333. "\tfile id\t"
  334. "\trec. key"
  335. "\tlength\tmac\n");
  336. while (fds_record_iterate(&desc, &tok) != FDS_ERR_NOT_FOUND)
  337. {
  338. ret_code_t rc;
  339. fds_flash_record_t frec = {0};
  340. rc = fds_record_open(&desc, &frec);
  341. switch (rc)
  342. {
  343. case NRF_SUCCESS:
  344. break;
  345. case FDS_ERR_CRC_CHECK_FAILED:
  346. NRF_LOG_INFO("error: CRC check failed!\n");
  347. continue;
  348. case FDS_ERR_NOT_FOUND:
  349. NRF_LOG_INFO("error: record not found!\n");
  350. continue;
  351. default:
  352. {
  353. NRF_LOG_INFO("error: unexpecte error %s.\n", fds_err_str(rc));
  354. continue;
  355. }
  356. }
  357. uint32_t const len = frec.p_header->length_words * sizeof(uint32_t);
  358. NRF_LOG_RAW_INFO(
  359. " 0x%04x\t"
  360. "\t 0x%04x\t"
  361. "\t 0x%04x\t"
  362. "\t %4u bytes\t",
  363. frec.p_header->record_id,
  364. frec.p_header->file_id,
  365. frec.p_header->record_key,
  366. len);
  367. data = (uint8_t *) frec.p_data;
  368. if( RegMacPool.Count >= 5 )
  369. {
  370. NRF_LOG_RAW_INFO( "Mac Pool Over\n");
  371. return;
  372. }
  373. RegMacPool.Mac[RegMacPool.Count][12] = 0;
  374. strncpy( RegMacPool.Mac[RegMacPool.Count++], data, 12);
  375. //for (uint8_t i=0;i<len;i++)
  376. {
  377. // NRF_LOG_RAW_INFO( "%c",data[i]);
  378. }
  379. //NRF_LOG_RAW_INFO( "\n");
  380. NRF_LOG_RAW_INFO( "%s\n",RegMacPool.Mac[RegMacPool.Count-1]);
  381. rc = fds_record_close(&desc);
  382. APP_ERROR_CHECK(rc);
  383. }
  384. }
  385. void LoadReceiverMac()
  386. {
  387. fds_find_token_t tok = {0};
  388. fds_record_desc_t desc = {0};
  389. uint8_t *data;
  390. char tmpBuf[15];
  391. NRF_LOG_INFO(
  392. "\nrec. id\t"
  393. "\tfile id\t"
  394. "\trec. key"
  395. "\tlength\tmac\n");
  396. while (fds_record_iterate(&desc, &tok) != FDS_ERR_NOT_FOUND)
  397. {
  398. ret_code_t rc;
  399. fds_flash_record_t frec = {0};
  400. rc = fds_record_open(&desc, &frec);
  401. switch (rc)
  402. {
  403. case NRF_SUCCESS:
  404. break;
  405. case FDS_ERR_CRC_CHECK_FAILED:
  406. NRF_LOG_INFO("error: CRC check failed!\n");
  407. continue;
  408. case FDS_ERR_NOT_FOUND:
  409. NRF_LOG_INFO("error: record not found!\n");
  410. continue;
  411. default:
  412. {
  413. NRF_LOG_INFO("error: unexpecte error %s.\n", fds_err_str(rc));
  414. continue;
  415. }
  416. }
  417. uint32_t const len = frec.p_header->length_words * sizeof(uint32_t);
  418. NRF_LOG_RAW_INFO(
  419. " 0x%04x\t"
  420. "\t 0x%04x\t"
  421. "\t 0x%04x\t"
  422. "\t %4u bytes\t",
  423. frec.p_header->record_id,
  424. frec.p_header->file_id,
  425. frec.p_header->record_key,
  426. len);
  427. data = (uint8_t *) frec.p_data;
  428. strncpy( SystemManager.StrRegPeerAddr, data, 12);
  429. strncpy( tmpBuf, SystemManager.StrRegPeerAddr, 12);
  430. SystemManager.StrRegPeerAddr[12] = 0;
  431. tmpBuf[12] = 0;
  432. NRF_LOG_RAW_INFO( "%s\n", SystemManager.StrRegPeerAddr);
  433. SystemManager.RegPeerAddr[5] = (uint8_t)strtol(&tmpBuf[10], NULL, 16); tmpBuf[10] = 0;
  434. SystemManager.RegPeerAddr[4] = (uint8_t)strtol(&tmpBuf[8], NULL, 16); tmpBuf[8] = 0;
  435. SystemManager.RegPeerAddr[3] = (uint8_t)strtol(&tmpBuf[6], NULL, 16); tmpBuf[6] = 0;
  436. SystemManager.RegPeerAddr[2] = (uint8_t)strtol(&tmpBuf[4], NULL, 16); tmpBuf[4] = 0;
  437. SystemManager.RegPeerAddr[1] = (uint8_t)strtol(&tmpBuf[2], NULL, 16); tmpBuf[2] = 0;
  438. SystemManager.RegPeerAddr[0] = (uint8_t)strtol(&tmpBuf[0], NULL, 16);
  439. rc = fds_record_close(&desc);
  440. APP_ERROR_CHECK(rc);
  441. }
  442. NRF_LOG_RAW_INFO("READ MAC : [%x][%x][%x][%x][%x][%x]\n", SystemManager.RegPeerAddr[5], SystemManager.RegPeerAddr[4], SystemManager.RegPeerAddr[3], SystemManager.RegPeerAddr[2], SystemManager.RegPeerAddr[1], SystemManager.RegPeerAddr[0]);
  443. }
  444. void SaveRegMac(char* mac)
  445. {
  446. int i;
  447. if( RegMacPool.Count>= 5 )
  448. return;
  449. for( i=0; i<RegMacPool.Count; i++)
  450. {
  451. if( strncmp( RegMacPool.Mac[i], mac, 12) == 0 )
  452. {
  453. NRF_LOG_RAW_INFO( "Allready Registrated\n");
  454. return;
  455. }
  456. }
  457. RegMacPool.Mac[RegMacPool.Count][12] = 0;
  458. strncpy( RegMacPool.Mac[RegMacPool.Count], mac, 12);
  459. record_write(1, RegMacPool.Count+1, mac, 12);
  460. RegMacPool.Count++;
  461. }
  462. void FlashTest()
  463. {
  464. static uint8_t m_data[256];
  465. int len;
  466. sprintf(m_data, "hello-%d", 1);
  467. len = strlen(m_data);
  468. record_write( 1, 1, m_data, len);
  469. sprintf(m_data, "hello-%d", 2);
  470. record_write( 1, 2, m_data, len);
  471. print_all_cmd();
  472. }
  473. void SaveReceiverMac(char* mac)
  474. {
  475. static uint8_t m_data[256];
  476. mac[12] = 0;
  477. sprintf(m_data, "%s", mac);
  478. NRF_LOG_RAW_INFO( "===> SaveReceiverMac : %s\n", m_data);
  479. record_write(1,1, m_data, 12);
  480. print_all_cmd();
  481. //FlashTest();
  482. }
  483. int FindRegMac(char* mac)
  484. {
  485. int i;
  486. for( i=0; i<RegMacPool.Count; i++)
  487. {
  488. if( strncmp( RegMacPool.Mac[i], mac, 12) == 0 )
  489. {
  490. NRF_LOG_RAW_INFO( "Valid Mac\n");
  491. return 1;
  492. }
  493. }
  494. return 0;
  495. }
  496. void DisplayRegMac()
  497. {
  498. print_all_cmd( );
  499. }
  500. void SetMacAddress(uint8_t* addr)
  501. {
  502. sd_ble_gap_addr_get(&old_ble_addr);
  503. ble_gap_addr_t dd;
  504. dd.addr_id_peer = 0;
  505. dd.addr_type = BLE_GAP_ADDR_TYPE_PUBLIC;
  506. dd.addr[0] = addr[0];
  507. dd.addr[1] = addr[1];
  508. //dd.addr[2] = addr[2];
  509. dd.addr[2] = 0x57;
  510. dd.addr[3] = addr[3];
  511. dd.addr[4] = addr[4];
  512. dd.addr[5] = addr[5];
  513. sd_ble_gap_addr_set(&dd);
  514. sd_ble_gap_addr_get(&new_ble_addr);
  515. }
  516. HSKey Key[4];
  517. void KeyInit(void)
  518. {
  519. Key[KEY_SELECT].longPressTimeOne = 2;
  520. Key[KEY_UP].longPressTimeOne = 2;
  521. //Key[KEY_COUNTER].longPressTimeKeep = 4;
  522. }
  523. //50ms key polling
  524. void ReadKEY(void)
  525. {
  526. static int key_poll_count = 0;
  527. if( SystemTimer.TIM_KEY < 100 )
  528. return;
  529. SystemTimer.TIM_KEY = 0;
  530. if( Key[KEY_SELECT].softRelease == 1 )
  531. return;
  532. if( key_poll_count == 2 )
  533. {
  534. if( nrf_gpio_pin_read(BSP_BUTTON_1) == true )
  535. {
  536. if( SystemManager.EmgSendButton == 10 )
  537. {
  538. SystemManager.EmgSendButton = BUTTON_TEST;
  539. Key[KEY_SELECT].softRelease = 1;
  540. }
  541. }
  542. }
  543. key_poll_count++;
  544. if( nrf_gpio_pin_read(BSP_BUTTON_1) == false )
  545. {
  546. Key[KEY_SELECT].pressTime++;
  547. nrf_pwr_mgmt_feed();
  548. if( Key[KEY_SELECT].pressTime>20)
  549. {
  550. Key[KEY_SELECT].softRelease = 1;
  551. KeySelectLongPressedOne();
  552. }
  553. }
  554. }
  555. void KeySelectLongPressedOne(void)
  556. {
  557. NRF_LOG_INFO("KeySelectLongPressedOne\r\n" );
  558. SystemManager.EmgSendButton = BUTTON_REG;
  559. }
  560. void PortInputCfg(void)
  561. {
  562. #if 1
  563. uint32_t i;
  564. for (i = 17; i <= 20; ++i)
  565. {
  566. nrf_gpio_cfg_input(i, NRF_GPIO_PIN_PULLDOWN);
  567. //nrf_gpio_cfg_input(i, NRF_GPIO_PIN_PULLUP);
  568. }
  569. for (i = 12; i <= 15; ++i)
  570. {
  571. //nrf_gpio_cfg_input(i, NRF_GPIO_PIN_PULLDOWN);
  572. //nrf_gpio_cfg_input(i, NRF_GPIO_PIN_PULLUP);
  573. }
  574. nrf_gpio_cfg_input(7, NRF_GPIO_PIN_PULLDOWN);
  575. #endif
  576. }
  577. #if 0
  578. //uint8_t AesBuffer[16];
  579. void CarEncryptEcb(int mode)
  580. {
  581. uint8_t key[] = {0x53, 0x6D, 0x61, 0x72, 0x74, 0x42, 0x61, 0x6E, 0x64, 0x50, 0x41, 0x52, 0x54, 0x52, 0x4F, 0x4E}; // SmartBandPARTRON
  582. uint8_t in[] = {'C', 'A', 'R', 1,2,3,4,5,6,7,8,9,10,11,12,13 };
  583. uint16_t tempVal;
  584. if( mode == AES_ENC_CAR )
  585. {
  586. in[0] = 'C';
  587. in[1] = 'A';
  588. in[2] = 'R';
  589. }else if( mode == AES_ENC_EMG )
  590. {
  591. in[0] = 'E';
  592. in[1] = 'M';
  593. in[2] = 'G';
  594. }else if( mode == AES_ENC_WES_EMG )
  595. {
  596. in[0] = 'E';
  597. in[1] = 'M';
  598. in[2] = 'G';
  599. }
  600. tempVal = rand();
  601. in[3] = tempVal&0xff;
  602. in[4] = (tempVal>>8)&0xff;
  603. AES128_ECB_encrypt(in, key, SystemManager.AesEncData);
  604. NRF_LOG_RAW_INFO("ECB encrypt: %x\n", tempVal);
  605. }
  606. #endif
  607. void WesDecryptEcb(char* in, char* out)
  608. {
  609. uint8_t key[] = {0x53, 0x6D, 0x61, 0x72, 0x74, 0x42, 0x61, 0x6E, 0x64, 0x50, 0x41, 0x52, 0x54, 0x52, 0x4F, 0x4E}; // IES-200B PARTRON
  610. NRF_LOG_INFO("WesDecryptEcb AES128");
  611. AES128_ECB_decrypt(in, key, out);
  612. }
  613. void WesEncryptEcb(uint8_t* in)
  614. {
  615. int i;
  616. uint8_t* inOrg = in;
  617. uint8_t key[] = {0x53, 0x6D, 0x61, 0x72, 0x74, 0x42, 0x61, 0x6E, 0x64, 0x50, 0x41, 0x52, 0x54, 0x52, 0x4F, 0x4E}; // IES-200B PARTRON
  618. AES128_ECB_encrypt(in, key, SystemManager.AesEncData);
  619. memcpy( inOrg, SystemManager.AesEncData, 16 );
  620. }
  621. #if 0 // Not Used
  622. void CarEncryptEcbACK(char type)
  623. {
  624. uint8_t key[] = {0x53, 0x6D, 0x61, 0x72, 0x74, 0x42, 0x61, 0x6E, 0x64, 0x50, 0x41, 0x52, 0x54, 0x52, 0x4F, 0x4E}; // SmartBandPARTRON
  625. uint8_t in[] = {'C', 'A', 'R', 'A','C','K',1,2,3,4,5,6,7,8,9,0x0A };
  626. switch(type){
  627. // BAND EMG
  628. case 0x72:
  629. in[3] = 'E';
  630. in[4] = 'M';
  631. in[5] = 'G';
  632. break;
  633. // NEW iOS APP
  634. case 0x75:
  635. in[3] = 'P';
  636. in[4] = 'C';
  637. in[5] = 'A';
  638. break;
  639. }
  640. AES128_ECB_encrypt(in, key, SystemManager.AesEncData);
  641. NRF_LOG_RAW_INFO("ECB ACK\n");
  642. }
  643. #endif