furi_hal_nfc.c 24 KB

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  1. #include <limits.h>
  2. #include "furi_hal_nfc.h"
  3. #include <st25r3916.h>
  4. #include <st25r3916_irq.h>
  5. #include <rfal_rf.h>
  6. #include <furi.h>
  7. #include <m-string.h>
  8. #include <lib/digital_signal/digital_signal.h>
  9. #include <furi_hal_spi.h>
  10. #include <furi_hal_gpio.h>
  11. #include <furi_hal_cortex.h>
  12. #include <furi_hal_resources.h>
  13. #define TAG "FuriHalNfc"
  14. static const uint32_t clocks_in_ms = 64 * 1000;
  15. FuriEventFlag* event = NULL;
  16. #define EVENT_FLAG_INTERRUPT (1UL << 0)
  17. #define EVENT_FLAG_STATE_CHANGED (1UL << 1)
  18. #define EVENT_FLAG_STOP (1UL << 2)
  19. #define EVENT_FLAG_ALL (EVENT_FLAG_INTERRUPT | EVENT_FLAG_STATE_CHANGED | EVENT_FLAG_STOP)
  20. #define FURI_HAL_NFC_UID_INCOMPLETE (0x04)
  21. void furi_hal_nfc_init() {
  22. ReturnCode ret = rfalNfcInitialize();
  23. if(ret == ERR_NONE) {
  24. furi_hal_nfc_start_sleep();
  25. event = furi_event_flag_alloc();
  26. FURI_LOG_I(TAG, "Init OK");
  27. } else {
  28. FURI_LOG_W(TAG, "Initialization failed, RFAL returned: %d", ret);
  29. }
  30. }
  31. bool furi_hal_nfc_is_busy() {
  32. return rfalNfcGetState() != RFAL_NFC_STATE_IDLE;
  33. }
  34. void furi_hal_nfc_field_on() {
  35. furi_hal_nfc_exit_sleep();
  36. st25r3916TxRxOn();
  37. }
  38. void furi_hal_nfc_field_off() {
  39. st25r3916TxRxOff();
  40. furi_hal_nfc_start_sleep();
  41. }
  42. void furi_hal_nfc_start_sleep() {
  43. rfalLowPowerModeStart();
  44. }
  45. void furi_hal_nfc_exit_sleep() {
  46. rfalLowPowerModeStop();
  47. }
  48. bool furi_hal_nfc_detect(FuriHalNfcDevData* nfc_data, uint32_t timeout) {
  49. furi_assert(nfc_data);
  50. rfalNfcDevice* dev_list = NULL;
  51. uint8_t dev_cnt = 0;
  52. bool detected = false;
  53. rfalLowPowerModeStop();
  54. rfalNfcState state = rfalNfcGetState();
  55. rfalNfcState state_old = 0;
  56. if(state == RFAL_NFC_STATE_NOTINIT) {
  57. rfalNfcInitialize();
  58. }
  59. rfalNfcDiscoverParam params;
  60. params.compMode = RFAL_COMPLIANCE_MODE_EMV;
  61. params.techs2Find = RFAL_NFC_POLL_TECH_A | RFAL_NFC_POLL_TECH_B | RFAL_NFC_POLL_TECH_F |
  62. RFAL_NFC_POLL_TECH_V | RFAL_NFC_POLL_TECH_AP2P | RFAL_NFC_POLL_TECH_ST25TB;
  63. params.totalDuration = 1000;
  64. params.devLimit = 3;
  65. params.wakeupEnabled = false;
  66. params.wakeupConfigDefault = true;
  67. params.nfcfBR = RFAL_BR_212;
  68. params.ap2pBR = RFAL_BR_424;
  69. params.maxBR = RFAL_BR_KEEP;
  70. params.GBLen = RFAL_NFCDEP_GB_MAX_LEN;
  71. params.notifyCb = NULL;
  72. uint32_t start = DWT->CYCCNT;
  73. rfalNfcDiscover(&params);
  74. while(true) {
  75. rfalNfcWorker();
  76. state = rfalNfcGetState();
  77. if(state != state_old) {
  78. FURI_LOG_T(TAG, "State change %d -> %d", state_old, state);
  79. }
  80. state_old = state;
  81. if(state == RFAL_NFC_STATE_ACTIVATED) {
  82. detected = true;
  83. break;
  84. }
  85. if(state == RFAL_NFC_STATE_POLL_ACTIVATION) {
  86. start = DWT->CYCCNT;
  87. continue;
  88. }
  89. if(state == RFAL_NFC_STATE_POLL_SELECT) {
  90. rfalNfcSelect(0);
  91. }
  92. if(DWT->CYCCNT - start > timeout * clocks_in_ms) {
  93. rfalNfcDeactivate(true);
  94. FURI_LOG_T(TAG, "Timeout");
  95. break;
  96. }
  97. furi_delay_tick(1);
  98. }
  99. rfalNfcGetDevicesFound(&dev_list, &dev_cnt);
  100. if(detected) {
  101. if(dev_list[0].type == RFAL_NFC_LISTEN_TYPE_NFCA) {
  102. nfc_data->type = FuriHalNfcTypeA;
  103. nfc_data->atqa[0] = dev_list[0].dev.nfca.sensRes.anticollisionInfo;
  104. nfc_data->atqa[1] = dev_list[0].dev.nfca.sensRes.platformInfo;
  105. nfc_data->sak = dev_list[0].dev.nfca.selRes.sak;
  106. uint8_t* cuid_start = dev_list[0].nfcid;
  107. if(dev_list[0].nfcidLen == 7) {
  108. cuid_start = &dev_list[0].nfcid[3];
  109. }
  110. nfc_data->cuid = (cuid_start[0] << 24) | (cuid_start[1] << 16) | (cuid_start[2] << 8) |
  111. (cuid_start[3]);
  112. } else if(dev_list[0].type == RFAL_NFC_LISTEN_TYPE_NFCB ||
  113. dev_list[0].type == RFAL_NFC_LISTEN_TYPE_ST25TB)
  114. {
  115. nfc_data->type = FuriHalNfcTypeB;
  116. } else if(dev_list[0].type == RFAL_NFC_LISTEN_TYPE_NFCF) {
  117. nfc_data->type = FuriHalNfcTypeF;
  118. } else if(dev_list[0].type == RFAL_NFC_LISTEN_TYPE_NFCV) {
  119. nfc_data->type = FuriHalNfcTypeV;
  120. }
  121. if(dev_list[0].rfInterface == RFAL_NFC_INTERFACE_RF) {
  122. nfc_data->interface = FuriHalNfcInterfaceRf;
  123. } else if(dev_list[0].rfInterface == RFAL_NFC_INTERFACE_ISODEP) {
  124. nfc_data->interface = FuriHalNfcInterfaceIsoDep;
  125. } else if(dev_list[0].rfInterface == RFAL_NFC_INTERFACE_NFCDEP) {
  126. nfc_data->interface = FuriHalNfcInterfaceNfcDep;
  127. }
  128. nfc_data->uid_len = dev_list[0].nfcidLen;
  129. memcpy(nfc_data->uid, dev_list[0].nfcid, nfc_data->uid_len);
  130. }
  131. return detected;
  132. }
  133. bool furi_hal_nfc_activate_nfca(uint32_t timeout, uint32_t* cuid) {
  134. rfalNfcDevice* dev_list;
  135. uint8_t dev_cnt = 0;
  136. rfalLowPowerModeStop();
  137. rfalNfcState state = rfalNfcGetState();
  138. if(state == RFAL_NFC_STATE_NOTINIT) {
  139. rfalNfcInitialize();
  140. }
  141. rfalNfcDiscoverParam params = {
  142. .compMode = RFAL_COMPLIANCE_MODE_NFC,
  143. .techs2Find = RFAL_NFC_POLL_TECH_A,
  144. .totalDuration = 1000,
  145. .devLimit = 3,
  146. .wakeupEnabled = false,
  147. .wakeupConfigDefault = true,
  148. .nfcfBR = RFAL_BR_212,
  149. .ap2pBR = RFAL_BR_424,
  150. .maxBR = RFAL_BR_KEEP,
  151. .GBLen = RFAL_NFCDEP_GB_MAX_LEN,
  152. .notifyCb = NULL,
  153. };
  154. uint32_t start = DWT->CYCCNT;
  155. rfalNfcDiscover(&params);
  156. while(state != RFAL_NFC_STATE_ACTIVATED) {
  157. rfalNfcWorker();
  158. state = rfalNfcGetState();
  159. FURI_LOG_T(TAG, "Current state %d", state);
  160. if(state == RFAL_NFC_STATE_POLL_ACTIVATION) {
  161. start = DWT->CYCCNT;
  162. continue;
  163. }
  164. if(state == RFAL_NFC_STATE_POLL_SELECT) {
  165. rfalNfcSelect(0);
  166. }
  167. if(DWT->CYCCNT - start > timeout * clocks_in_ms) {
  168. rfalNfcDeactivate(true);
  169. FURI_LOG_T(TAG, "Timeout");
  170. return false;
  171. }
  172. furi_thread_yield();
  173. }
  174. rfalNfcGetDevicesFound(&dev_list, &dev_cnt);
  175. // Take first device and set cuid
  176. if(cuid) {
  177. uint8_t* cuid_start = dev_list[0].nfcid;
  178. if(dev_list[0].nfcidLen == 7) {
  179. cuid_start = &dev_list[0].nfcid[3];
  180. }
  181. *cuid = (cuid_start[0] << 24) | (cuid_start[1] << 16) | (cuid_start[2] << 8) |
  182. (cuid_start[3]);
  183. FURI_LOG_T(TAG, "Activated tag with cuid: %lX", *cuid);
  184. }
  185. return true;
  186. }
  187. bool furi_hal_nfc_listen(
  188. uint8_t* uid,
  189. uint8_t uid_len,
  190. uint8_t* atqa,
  191. uint8_t sak,
  192. bool activate_after_sak,
  193. uint32_t timeout) {
  194. rfalNfcState state = rfalNfcGetState();
  195. if(state == RFAL_NFC_STATE_NOTINIT) {
  196. rfalNfcInitialize();
  197. } else if(state >= RFAL_NFC_STATE_ACTIVATED) {
  198. rfalNfcDeactivate(false);
  199. }
  200. rfalLowPowerModeStop();
  201. rfalNfcDiscoverParam params = {
  202. .compMode = RFAL_COMPLIANCE_MODE_NFC,
  203. .techs2Find = RFAL_NFC_LISTEN_TECH_A,
  204. .totalDuration = 1000,
  205. .devLimit = 1,
  206. .wakeupEnabled = false,
  207. .wakeupConfigDefault = true,
  208. .nfcfBR = RFAL_BR_212,
  209. .ap2pBR = RFAL_BR_424,
  210. .maxBR = RFAL_BR_KEEP,
  211. .GBLen = RFAL_NFCDEP_GB_MAX_LEN,
  212. .notifyCb = NULL,
  213. .activate_after_sak = activate_after_sak,
  214. };
  215. params.lmConfigPA.nfcidLen = uid_len;
  216. memcpy(params.lmConfigPA.nfcid, uid, uid_len);
  217. params.lmConfigPA.SENS_RES[0] = atqa[0];
  218. params.lmConfigPA.SENS_RES[1] = atqa[1];
  219. params.lmConfigPA.SEL_RES = sak;
  220. rfalNfcDiscover(&params);
  221. uint32_t start = DWT->CYCCNT;
  222. while(state != RFAL_NFC_STATE_ACTIVATED) {
  223. rfalNfcWorker();
  224. state = rfalNfcGetState();
  225. if(DWT->CYCCNT - start > timeout * clocks_in_ms) {
  226. rfalNfcDeactivate(true);
  227. return false;
  228. }
  229. furi_delay_tick(1);
  230. }
  231. return true;
  232. }
  233. static void furi_hal_nfc_read_fifo(uint8_t* data, uint16_t* bits) {
  234. uint8_t fifo_status[2];
  235. uint8_t rx_buff[64];
  236. st25r3916ReadMultipleRegisters(
  237. ST25R3916_REG_FIFO_STATUS1, fifo_status, ST25R3916_FIFO_STATUS_LEN);
  238. uint16_t rx_bytes =
  239. ((((uint16_t)fifo_status[1] & ST25R3916_REG_FIFO_STATUS2_fifo_b_mask) >>
  240. ST25R3916_REG_FIFO_STATUS2_fifo_b_shift)
  241. << 8);
  242. rx_bytes |= (((uint16_t)fifo_status[0]) & 0x00FFU);
  243. st25r3916ReadFifo(rx_buff, rx_bytes);
  244. memcpy(data, rx_buff, rx_bytes);
  245. *bits = rx_bytes * 8;
  246. }
  247. void furi_hal_nfc_listen_sleep() {
  248. st25r3916ExecuteCommand(ST25R3916_CMD_GOTO_SLEEP);
  249. }
  250. bool furi_hal_nfc_listen_rx(FuriHalNfcTxRxContext* tx_rx, uint32_t timeout_ms) {
  251. furi_assert(tx_rx);
  252. // Wait for interrupts
  253. uint32_t start = furi_get_tick();
  254. bool data_received = false;
  255. while(true) {
  256. if(furi_hal_gpio_read(&gpio_nfc_irq_rfid_pull) == true) {
  257. st25r3916CheckForReceivedInterrupts();
  258. if(st25r3916GetInterrupt(ST25R3916_IRQ_MASK_RXE)) {
  259. furi_hal_nfc_read_fifo(tx_rx->rx_data, &tx_rx->rx_bits);
  260. data_received = true;
  261. break;
  262. }
  263. continue;
  264. }
  265. if(furi_get_tick() - start > timeout_ms) {
  266. FURI_LOG_T(TAG, "Interrupt waiting timeout");
  267. furi_delay_tick(1);
  268. break;
  269. }
  270. }
  271. return data_received;
  272. }
  273. void furi_hal_nfc_listen_start(FuriHalNfcDevData* nfc_data) {
  274. furi_assert(nfc_data);
  275. furi_hal_gpio_init(&gpio_nfc_irq_rfid_pull, GpioModeInput, GpioPullDown, GpioSpeedVeryHigh);
  276. // Clear interrupts
  277. st25r3916ClearInterrupts();
  278. // Mask all interrupts
  279. st25r3916DisableInterrupts(ST25R3916_IRQ_MASK_ALL);
  280. // RESET
  281. st25r3916ExecuteCommand(ST25R3916_CMD_STOP);
  282. // Setup registers
  283. st25r3916WriteRegister(
  284. ST25R3916_REG_OP_CONTROL,
  285. ST25R3916_REG_OP_CONTROL_en | ST25R3916_REG_OP_CONTROL_rx_en |
  286. ST25R3916_REG_OP_CONTROL_en_fd_auto_efd);
  287. st25r3916WriteRegister(
  288. ST25R3916_REG_MODE,
  289. ST25R3916_REG_MODE_targ_targ | ST25R3916_REG_MODE_om3 | ST25R3916_REG_MODE_om0);
  290. st25r3916WriteRegister(
  291. ST25R3916_REG_PASSIVE_TARGET,
  292. ST25R3916_REG_PASSIVE_TARGET_fdel_2 | ST25R3916_REG_PASSIVE_TARGET_fdel_0 |
  293. ST25R3916_REG_PASSIVE_TARGET_d_ac_ap2p | ST25R3916_REG_PASSIVE_TARGET_d_212_424_1r);
  294. st25r3916WriteRegister(ST25R3916_REG_MASK_RX_TIMER, 0x02);
  295. // Mask interrupts
  296. uint32_t clear_irq_mask =
  297. (ST25R3916_IRQ_MASK_RXE | ST25R3916_IRQ_MASK_RXE_PTA | ST25R3916_IRQ_MASK_WU_A_X |
  298. ST25R3916_IRQ_MASK_WU_A);
  299. st25r3916EnableInterrupts(clear_irq_mask);
  300. // Set 4 or 7 bytes UID
  301. if(nfc_data->uid_len == 4) {
  302. st25r3916ChangeRegisterBits(
  303. ST25R3916_REG_AUX, ST25R3916_REG_AUX_nfc_id_mask, ST25R3916_REG_AUX_nfc_id_4bytes);
  304. } else {
  305. st25r3916ChangeRegisterBits(
  306. ST25R3916_REG_AUX, ST25R3916_REG_AUX_nfc_id_mask, ST25R3916_REG_AUX_nfc_id_7bytes);
  307. }
  308. // Write PT Memory
  309. uint8_t pt_memory[15] = {};
  310. memcpy(pt_memory, nfc_data->uid, nfc_data->uid_len);
  311. pt_memory[10] = nfc_data->atqa[0];
  312. pt_memory[11] = nfc_data->atqa[1];
  313. if(nfc_data->uid_len == 4) {
  314. pt_memory[12] = nfc_data->sak & ~FURI_HAL_NFC_UID_INCOMPLETE;
  315. } else {
  316. pt_memory[12] = FURI_HAL_NFC_UID_INCOMPLETE;
  317. }
  318. pt_memory[13] = nfc_data->sak & ~FURI_HAL_NFC_UID_INCOMPLETE;
  319. pt_memory[14] = nfc_data->sak & ~FURI_HAL_NFC_UID_INCOMPLETE;
  320. st25r3916WritePTMem(pt_memory, sizeof(pt_memory));
  321. // Go to sense
  322. st25r3916ExecuteCommand(ST25R3916_CMD_GOTO_SENSE);
  323. }
  324. void rfal_interrupt_callback_handler() {
  325. furi_event_flag_set(event, EVENT_FLAG_INTERRUPT);
  326. }
  327. void rfal_state_changed_callback(void* context) {
  328. UNUSED(context);
  329. furi_event_flag_set(event, EVENT_FLAG_STATE_CHANGED);
  330. }
  331. void furi_hal_nfc_stop() {
  332. if(event) {
  333. furi_event_flag_set(event, EVENT_FLAG_STOP);
  334. }
  335. }
  336. bool furi_hal_nfc_emulate_nfca(
  337. uint8_t* uid,
  338. uint8_t uid_len,
  339. uint8_t* atqa,
  340. uint8_t sak,
  341. FuriHalNfcEmulateCallback callback,
  342. void* context,
  343. uint32_t timeout) {
  344. rfalSetUpperLayerCallback(rfal_interrupt_callback_handler);
  345. rfal_set_state_changed_callback(rfal_state_changed_callback);
  346. rfalLmConfPA config;
  347. config.nfcidLen = uid_len;
  348. memcpy(config.nfcid, uid, uid_len);
  349. memcpy(config.SENS_RES, atqa, RFAL_LM_SENS_RES_LEN);
  350. config.SEL_RES = sak;
  351. uint8_t buff_rx[256];
  352. uint16_t buff_rx_size = 256;
  353. uint16_t buff_rx_len = 0;
  354. uint8_t buff_tx[1040];
  355. uint16_t buff_tx_len = 0;
  356. uint32_t data_type = FURI_HAL_NFC_TXRX_DEFAULT;
  357. rfalLowPowerModeStop();
  358. if(rfalListenStart(
  359. RFAL_LM_MASK_NFCA,
  360. &config,
  361. NULL,
  362. NULL,
  363. buff_rx,
  364. rfalConvBytesToBits(buff_rx_size),
  365. &buff_rx_len)) {
  366. rfalListenStop();
  367. FURI_LOG_E(TAG, "Failed to start listen mode");
  368. return false;
  369. }
  370. while(true) {
  371. buff_rx_len = 0;
  372. buff_tx_len = 0;
  373. uint32_t flag = furi_event_flag_wait(event, EVENT_FLAG_ALL, FuriFlagWaitAny, timeout);
  374. if(flag == FuriFlagErrorTimeout || flag == EVENT_FLAG_STOP) {
  375. break;
  376. }
  377. bool data_received = false;
  378. buff_rx_len = 0;
  379. rfalWorker();
  380. rfalLmState state = rfalListenGetState(&data_received, NULL);
  381. if(data_received) {
  382. rfalTransceiveBlockingRx();
  383. if(nfca_emulation_handler(buff_rx, buff_rx_len, buff_tx, &buff_tx_len)) {
  384. if(rfalListenSleepStart(
  385. RFAL_LM_STATE_SLEEP_A,
  386. buff_rx,
  387. rfalConvBytesToBits(buff_rx_size),
  388. &buff_rx_len)) {
  389. FURI_LOG_E(TAG, "Failed to enter sleep mode");
  390. break;
  391. } else {
  392. continue;
  393. }
  394. }
  395. if(buff_tx_len) {
  396. ReturnCode ret = rfalTransceiveBitsBlockingTx(
  397. buff_tx,
  398. buff_tx_len,
  399. buff_rx,
  400. sizeof(buff_rx),
  401. &buff_rx_len,
  402. data_type,
  403. RFAL_FWT_NONE);
  404. if(ret) {
  405. FURI_LOG_E(TAG, "Tranceive failed with status %d", ret);
  406. break;
  407. }
  408. continue;
  409. }
  410. if((state == RFAL_LM_STATE_ACTIVE_A || state == RFAL_LM_STATE_ACTIVE_Ax)) {
  411. if(callback) {
  412. callback(buff_rx, buff_rx_len, buff_tx, &buff_tx_len, &data_type, context);
  413. }
  414. if(!rfalIsExtFieldOn()) {
  415. break;
  416. }
  417. if(buff_tx_len) {
  418. if(buff_tx_len == UINT16_MAX) buff_tx_len = 0;
  419. ReturnCode ret = rfalTransceiveBitsBlockingTx(
  420. buff_tx,
  421. buff_tx_len,
  422. buff_rx,
  423. sizeof(buff_rx),
  424. &buff_rx_len,
  425. data_type,
  426. RFAL_FWT_NONE);
  427. if(ret) {
  428. FURI_LOG_E(TAG, "Tranceive failed with status %d", ret);
  429. continue;
  430. }
  431. } else {
  432. break;
  433. }
  434. }
  435. }
  436. }
  437. rfalListenStop();
  438. return true;
  439. }
  440. static bool furi_hal_nfc_transparent_tx_rx(FuriHalNfcTxRxContext* tx_rx, uint16_t timeout_ms) {
  441. furi_assert(tx_rx->nfca_signal);
  442. bool ret = false;
  443. // Start transparent mode
  444. st25r3916ExecuteCommand(ST25R3916_CMD_TRANSPARENT_MODE);
  445. // Reconfigure gpio for Transparent mode
  446. furi_hal_spi_bus_handle_deinit(&furi_hal_spi_bus_handle_nfc);
  447. // Send signal
  448. FURI_CRITICAL_ENTER();
  449. nfca_signal_encode(tx_rx->nfca_signal, tx_rx->tx_data, tx_rx->tx_bits, tx_rx->tx_parity);
  450. digital_signal_send(tx_rx->nfca_signal->tx_signal, &gpio_spi_r_mosi);
  451. FURI_CRITICAL_EXIT();
  452. furi_hal_gpio_write(&gpio_spi_r_mosi, false);
  453. // Configure gpio back to SPI and exit transparent
  454. furi_hal_spi_bus_handle_init(&furi_hal_spi_bus_handle_nfc);
  455. st25r3916ExecuteCommand(ST25R3916_CMD_UNMASK_RECEIVE_DATA);
  456. if(tx_rx->sniff_tx) {
  457. tx_rx->sniff_tx(tx_rx->tx_data, tx_rx->tx_bits, false, tx_rx->sniff_context);
  458. }
  459. // Manually wait for interrupt
  460. furi_hal_gpio_init(&gpio_nfc_irq_rfid_pull, GpioModeInput, GpioPullDown, GpioSpeedVeryHigh);
  461. st25r3916ClearAndEnableInterrupts(ST25R3916_IRQ_MASK_RXE);
  462. uint32_t irq = 0;
  463. uint8_t rxe = 0;
  464. uint32_t start = DWT->CYCCNT;
  465. while(true) {
  466. if(!rfalIsExtFieldOn()) {
  467. return false;
  468. }
  469. if(furi_hal_gpio_read(&gpio_nfc_irq_rfid_pull) == true) {
  470. st25r3916ReadRegister(ST25R3916_REG_IRQ_MAIN, &rxe);
  471. if(rxe & (1 << 4)) {
  472. irq = 1;
  473. break;
  474. }
  475. }
  476. uint32_t timeout = DWT->CYCCNT - start;
  477. if(timeout / furi_hal_cortex_instructions_per_microsecond() > timeout_ms * 1000) {
  478. FURI_LOG_D(TAG, "Interrupt waiting timeout");
  479. break;
  480. }
  481. }
  482. if(irq) {
  483. uint8_t fifo_stat[2];
  484. st25r3916ReadMultipleRegisters(
  485. ST25R3916_REG_FIFO_STATUS1, fifo_stat, ST25R3916_FIFO_STATUS_LEN);
  486. uint16_t len =
  487. ((((uint16_t)fifo_stat[1] & ST25R3916_REG_FIFO_STATUS2_fifo_b_mask) >>
  488. ST25R3916_REG_FIFO_STATUS2_fifo_b_shift)
  489. << RFAL_BITS_IN_BYTE);
  490. len |= (((uint16_t)fifo_stat[0]) & 0x00FFU);
  491. uint8_t rx[100];
  492. st25r3916ReadFifo(rx, len);
  493. tx_rx->rx_bits = len * 8;
  494. memcpy(tx_rx->rx_data, rx, len);
  495. if(tx_rx->sniff_rx) {
  496. tx_rx->sniff_rx(tx_rx->rx_data, tx_rx->rx_bits, false, tx_rx->sniff_context);
  497. }
  498. ret = true;
  499. } else {
  500. FURI_LOG_E(TAG, "Timeout error");
  501. ret = false;
  502. }
  503. st25r3916ClearInterrupts();
  504. return ret;
  505. }
  506. static uint32_t furi_hal_nfc_tx_rx_get_flag(FuriHalNfcTxRxType type) {
  507. uint32_t flags = 0;
  508. if(type == FuriHalNfcTxRxTypeRxNoCrc) {
  509. flags = RFAL_TXRX_FLAGS_CRC_RX_KEEP;
  510. } else if(type == FuriHalNfcTxRxTypeRxKeepPar) {
  511. flags = RFAL_TXRX_FLAGS_CRC_TX_MANUAL | RFAL_TXRX_FLAGS_CRC_RX_KEEP |
  512. RFAL_TXRX_FLAGS_PAR_RX_KEEP;
  513. } else if(type == FuriHalNfcTxRxTypeRaw) {
  514. flags = RFAL_TXRX_FLAGS_CRC_TX_MANUAL | RFAL_TXRX_FLAGS_CRC_RX_KEEP |
  515. RFAL_TXRX_FLAGS_PAR_RX_KEEP | RFAL_TXRX_FLAGS_PAR_TX_NONE;
  516. } else if(type == FuriHalNfcTxRxTypeRxRaw) {
  517. flags = RFAL_TXRX_FLAGS_CRC_TX_MANUAL | RFAL_TXRX_FLAGS_CRC_RX_KEEP |
  518. RFAL_TXRX_FLAGS_PAR_RX_KEEP | RFAL_TXRX_FLAGS_PAR_TX_NONE;
  519. }
  520. return flags;
  521. }
  522. static uint16_t furi_hal_nfc_data_and_parity_to_bitstream(
  523. uint8_t* data,
  524. uint16_t len,
  525. uint8_t* parity,
  526. uint8_t* out) {
  527. furi_assert(data);
  528. furi_assert(out);
  529. uint8_t next_par_bit = 0;
  530. uint16_t curr_bit_pos = 0;
  531. for(uint16_t i = 0; i < len; i++) {
  532. next_par_bit = FURI_BIT(parity[i / 8], 7 - (i % 8));
  533. if(curr_bit_pos % 8 == 0) {
  534. out[curr_bit_pos / 8] = data[i];
  535. curr_bit_pos += 8;
  536. out[curr_bit_pos / 8] = next_par_bit;
  537. curr_bit_pos++;
  538. } else {
  539. out[curr_bit_pos / 8] |= data[i] << curr_bit_pos % 8;
  540. out[curr_bit_pos / 8 + 1] = data[i] >> (8 - curr_bit_pos % 8);
  541. out[curr_bit_pos / 8 + 1] |= next_par_bit << curr_bit_pos % 8;
  542. curr_bit_pos += 9;
  543. }
  544. }
  545. return curr_bit_pos;
  546. }
  547. uint16_t furi_hal_nfc_bitstream_to_data_and_parity(
  548. uint8_t* in_buff,
  549. uint16_t in_buff_bits,
  550. uint8_t* out_data,
  551. uint8_t* out_parity) {
  552. if(in_buff_bits % 9 != 0) {
  553. return 0;
  554. }
  555. uint8_t curr_byte = 0;
  556. uint16_t bit_processed = 0;
  557. memset(out_parity, 0, in_buff_bits / 9);
  558. while(bit_processed < in_buff_bits) {
  559. out_data[curr_byte] = in_buff[bit_processed / 8] >> bit_processed % 8;
  560. out_data[curr_byte] |= in_buff[bit_processed / 8 + 1] << (8 - bit_processed % 8);
  561. out_parity[curr_byte / 8] |= FURI_BIT(in_buff[bit_processed / 8 + 1], bit_processed % 8)
  562. << (7 - curr_byte % 8);
  563. bit_processed += 9;
  564. curr_byte++;
  565. }
  566. return curr_byte;
  567. }
  568. bool furi_hal_nfc_tx_rx(FuriHalNfcTxRxContext* tx_rx, uint16_t timeout_ms) {
  569. furi_assert(tx_rx);
  570. ReturnCode ret;
  571. rfalNfcState state = RFAL_NFC_STATE_ACTIVATED;
  572. uint8_t temp_tx_buff[FURI_HAL_NFC_DATA_BUFF_SIZE] = {};
  573. uint16_t temp_tx_bits = 0;
  574. uint8_t* temp_rx_buff = NULL;
  575. uint16_t* temp_rx_bits = NULL;
  576. if(tx_rx->tx_rx_type == FuriHalNfcTxRxTransparent) {
  577. return furi_hal_nfc_transparent_tx_rx(tx_rx, timeout_ms);
  578. }
  579. // Prepare data for FIFO if necessary
  580. uint32_t flags = furi_hal_nfc_tx_rx_get_flag(tx_rx->tx_rx_type);
  581. if(tx_rx->tx_rx_type == FuriHalNfcTxRxTypeRaw) {
  582. temp_tx_bits = furi_hal_nfc_data_and_parity_to_bitstream(
  583. tx_rx->tx_data, tx_rx->tx_bits / 8, tx_rx->tx_parity, temp_tx_buff);
  584. ret = rfalNfcDataExchangeCustomStart(
  585. temp_tx_buff, temp_tx_bits, &temp_rx_buff, &temp_rx_bits, RFAL_FWT_NONE, flags);
  586. } else {
  587. ret = rfalNfcDataExchangeCustomStart(
  588. tx_rx->tx_data, tx_rx->tx_bits, &temp_rx_buff, &temp_rx_bits, RFAL_FWT_NONE, flags);
  589. }
  590. if(ret != ERR_NONE) {
  591. FURI_LOG_E(TAG, "Failed to start data exchange");
  592. return false;
  593. }
  594. if(tx_rx->sniff_tx) {
  595. bool crc_dropped = !(flags & RFAL_TXRX_FLAGS_CRC_TX_MANUAL);
  596. tx_rx->sniff_tx(tx_rx->tx_data, tx_rx->tx_bits, crc_dropped, tx_rx->sniff_context);
  597. }
  598. uint32_t start = DWT->CYCCNT;
  599. while(state != RFAL_NFC_STATE_DATAEXCHANGE_DONE) {
  600. rfalNfcWorker();
  601. state = rfalNfcGetState();
  602. ret = rfalNfcDataExchangeGetStatus();
  603. if(ret == ERR_BUSY) {
  604. if(DWT->CYCCNT - start > timeout_ms * clocks_in_ms) {
  605. FURI_LOG_D(TAG, "Timeout during data exchange");
  606. return false;
  607. }
  608. continue;
  609. } else {
  610. start = DWT->CYCCNT;
  611. }
  612. furi_delay_tick(1);
  613. }
  614. if(tx_rx->tx_rx_type == FuriHalNfcTxRxTypeRaw ||
  615. tx_rx->tx_rx_type == FuriHalNfcTxRxTypeRxRaw) {
  616. tx_rx->rx_bits = 8 * furi_hal_nfc_bitstream_to_data_and_parity(
  617. temp_rx_buff, *temp_rx_bits, tx_rx->rx_data, tx_rx->rx_parity);
  618. } else {
  619. memcpy(tx_rx->rx_data, temp_rx_buff, MIN(*temp_rx_bits / 8, FURI_HAL_NFC_DATA_BUFF_SIZE));
  620. tx_rx->rx_bits = *temp_rx_bits;
  621. }
  622. if(tx_rx->sniff_rx) {
  623. bool crc_dropped = !(flags & RFAL_TXRX_FLAGS_CRC_RX_KEEP);
  624. tx_rx->sniff_rx(tx_rx->rx_data, tx_rx->rx_bits, crc_dropped, tx_rx->sniff_context);
  625. }
  626. return true;
  627. }
  628. bool furi_hal_nfc_tx_rx_full(FuriHalNfcTxRxContext* tx_rx) {
  629. uint16_t part_len_bytes;
  630. if(!furi_hal_nfc_tx_rx(tx_rx, 1000)) {
  631. return false;
  632. }
  633. while(tx_rx->rx_bits && tx_rx->rx_data[0] == 0xAF) {
  634. FuriHalNfcTxRxContext tmp = *tx_rx;
  635. tmp.tx_data[0] = 0xAF;
  636. tmp.tx_bits = 8;
  637. if(!furi_hal_nfc_tx_rx(&tmp, 1000)) {
  638. return false;
  639. }
  640. part_len_bytes = tmp.rx_bits / 8;
  641. if(part_len_bytes > FURI_HAL_NFC_DATA_BUFF_SIZE - tx_rx->rx_bits / 8) {
  642. FURI_LOG_W(TAG, "Overrun rx buf");
  643. return false;
  644. }
  645. if(part_len_bytes == 0) {
  646. FURI_LOG_W(TAG, "Empty 0xAF response");
  647. return false;
  648. }
  649. memcpy(tx_rx->rx_data + tx_rx->rx_bits / 8, tmp.rx_data + 1, part_len_bytes - 1);
  650. tx_rx->rx_data[0] = tmp.rx_data[0];
  651. tx_rx->rx_bits += 8 * (part_len_bytes - 1);
  652. }
  653. return true;
  654. }
  655. void furi_hal_nfc_sleep() {
  656. rfalNfcDeactivate(false);
  657. rfalLowPowerModeStart();
  658. }