sam_api.c 25 KB

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  1. #include "sam_api.h"
  2. #define TAG "SAMAPI"
  3. #define APDU_HEADER_LEN 5
  4. #define ASN1_PREFIX 6
  5. #define ASN1_DEBUG true
  6. static char display[SEADER_UART_RX_BUF_SIZE * 2 + 1] = {0};
  7. char asn1_log[SEADER_UART_RX_BUF_SIZE] = {0};
  8. bool requestPacs = true;
  9. uint8_t read4Block6[] = {RFAL_PICOPASS_CMD_READ4, 0x06, 0x45, 0x56};
  10. uint8_t read4Block9[] = {RFAL_PICOPASS_CMD_READ4, 0x09, 0xB2, 0xAE};
  11. uint8_t read4Block10[] = {RFAL_PICOPASS_CMD_READ4, 0x0A, 0x29, 0x9C};
  12. uint8_t read4Block13[] = {RFAL_PICOPASS_CMD_READ4, 0x0D, 0x96, 0xE8};
  13. uint8_t updateBlock2[] = {RFAL_PICOPASS_CMD_UPDATE, 0x02};
  14. void* calloc(size_t count, size_t size) {
  15. return malloc(count * size);
  16. }
  17. // Forward declarations
  18. void seader_send_nfc_rx(SeaderUartBridge* seader_uart, uint8_t* buffer, size_t len);
  19. PicopassError seader_worker_fake_epurse_update(BitBuffer* tx_buffer, BitBuffer* rx_buffer);
  20. void seader_picopass_state_machine(Seader* seader, uint8_t* buffer, size_t len) {
  21. SeaderWorker* seader_worker = seader->worker;
  22. SeaderUartBridge* seader_uart = seader_worker->uart;
  23. memset(display, 0, sizeof(display));
  24. for(uint8_t i = 0; i < len; i++) {
  25. snprintf(display + (i * 2), sizeof(display), "%02x", buffer[i]);
  26. }
  27. FURI_LOG_D(TAG, "Picopass State Macine %d: %s", len, display);
  28. BitBuffer* tx_buffer = bit_buffer_alloc(len);
  29. bit_buffer_append_bytes(tx_buffer, buffer, len);
  30. BitBuffer* rx_buffer = bit_buffer_alloc(SEADER_POLLER_MAX_BUFFER_SIZE);
  31. // TODO: have this come from the actual saved card
  32. uint8_t csn[PICOPASS_BLOCK_LEN] = {0xf8, 0x7c, 0xd7, 0x12, 0xff, 0xff, 0x12, 0xe0};
  33. uint8_t sr_aia[PICOPASS_BLOCK_LEN] = {0xFF, 0xff, 0xff, 0xff, 0xFF, 0xFf, 0xff, 0xFF};
  34. uint8_t epurse[PICOPASS_BLOCK_LEN] = {0xff, 0xff, 0xff, 0xff, 0xe3, 0xff, 0xff, 0xff};
  35. uint8_t pacs_sr_cfg[PICOPASS_BLOCK_LEN] = {0xA3, 0x03, 0x03, 0x03, 0x00, 0x03, 0xe0, 0x14};
  36. /*
  37. 30 33 81 05 01 87 BC 0F
  38. 45 A5 02 05 00 A6 08 81
  39. 01 01 04 03 03 00 08 A7
  40. 18 85 16 E0 8C 96 D4 1E
  41. 26 55 12 79 6A 65 00 21
  42. C1 7D 19 27 CA 9F 80 35
  43. 98 A9 02 05 00 05 00 00
  44. */
  45. uint8_t sio_first[PICOPASS_BLOCK_LEN * 4] = {
  46. 0x30, 0x33, 0x81, 0x05, 0x01, 0x87, 0xbc, 0x0f,
  47. 0x45, 0xa5, 0x02, 0x05, 0x00, 0xa6, 0x08, 0x81,
  48. 0x01, 0x01, 0x04, 0x03, 0x03, 0x00, 0x08, 0xa7,
  49. 0x18, 0x85, 0x16, 0xe0, 0x8c, 0x96, 0xd4, 0x1e
  50. };
  51. // NOTE: 8 byte overlap
  52. uint8_t sio_second[PICOPASS_BLOCK_LEN * 4] = {
  53. 0x18, 0x85, 0x16, 0xe0, 0x8c, 0x96, 0xd4, 0x1e,
  54. 0x26, 0x55, 0x12, 0x79, 0x6a, 0x65, 0x00, 0x21,
  55. 0xc1, 0x7d, 0x19, 0x27, 0xca, 0x9f, 0x80, 0x35,
  56. 0x98, 0xa9, 0x02, 0x05, 0x00, 0x05, 0x00, 0x00
  57. };
  58. const uint8_t picopass_iclass_key[] = {0xaf, 0xa7, 0x85, 0xa7, 0xda, 0xb3, 0x33, 0x78};
  59. uint8_t tmac[4] = {};
  60. uint8_t div_key[PICOPASS_BLOCK_LEN] = {};
  61. do {
  62. switch(buffer[0]) {
  63. case RFAL_PICOPASS_CMD_READ_OR_IDENTIFY:
  64. // append_bytes(rx, seader->[picopass]->AA1[buffer[1]].data, PICOPASS_BLOCK_LEN);
  65. if(buffer[1] == AIA_INDEX) { // TODO: _INDEX
  66. bit_buffer_append_bytes(rx_buffer, sr_aia, sizeof(sr_aia));
  67. } else if (buffer[1] == PACS_CFG_INDEX) {
  68. bit_buffer_append_bytes(rx_buffer, pacs_sr_cfg, sizeof(pacs_sr_cfg));
  69. }
  70. iso13239_crc_append(Iso13239CrcTypePicopass, rx_buffer);
  71. break;
  72. case RFAL_PICOPASS_CMD_UPDATE:
  73. seader_worker_fake_epurse_update(tx_buffer, rx_buffer);
  74. break;
  75. case RFAL_PICOPASS_CMD_READCHECK_KD:
  76. if(buffer[1] == 2) { // TODO: _INDEX
  77. bit_buffer_append_bytes(rx_buffer, epurse, sizeof(epurse));
  78. }
  79. break;
  80. case RFAL_PICOPASS_CMD_CHECK:
  81. //memcpy(cc, data->AA1[PICOPASS_SECURE_EPURSE_BLOCK_INDEX].data, sizeof(PicopassBlock));
  82. loclass_iclass_calc_div_key(csn, picopass_iclass_key, div_key, false);
  83. LoclassState_t cipher_state = loclass_opt_doTagMAC_1(epurse, div_key);
  84. // loclass_opt_doBothMAC_2(cipher_state, rx_buffer+1, rmac, tmac, div_key);
  85. loclass_opt_doTagMAC_2(cipher_state, buffer + 1, tmac, div_key);
  86. bit_buffer_append_bytes(rx_buffer, tmac, sizeof(tmac));
  87. break;
  88. case RFAL_PICOPASS_CMD_READ4:
  89. if(buffer[1] == 10) {
  90. bit_buffer_append_bytes(rx_buffer, sio_first, sizeof(sio_first));
  91. }
  92. if(buffer[1] == 13) {
  93. bit_buffer_append_bytes(rx_buffer, sio_second, sizeof(sio_second));
  94. }
  95. iso13239_crc_append(Iso13239CrcTypePicopass, rx_buffer);
  96. break;
  97. }
  98. seader_send_nfc_rx(
  99. seader_uart,
  100. (uint8_t*)bit_buffer_get_data(rx_buffer),
  101. bit_buffer_get_size_bytes(rx_buffer));
  102. } while(false);
  103. bit_buffer_free(tx_buffer);
  104. bit_buffer_free(rx_buffer);
  105. }
  106. bool seader_send_apdu(
  107. SeaderUartBridge* seader_uart,
  108. uint8_t CLA,
  109. uint8_t INS,
  110. uint8_t P1,
  111. uint8_t P2,
  112. uint8_t* payload,
  113. uint8_t length) {
  114. if(APDU_HEADER_LEN + length > SEADER_UART_RX_BUF_SIZE) {
  115. FURI_LOG_E(TAG, "Cannot send message, too long: %d", APDU_HEADER_LEN + length);
  116. return false;
  117. }
  118. uint8_t apdu[SEADER_UART_RX_BUF_SIZE];
  119. apdu[0] = CLA;
  120. apdu[1] = INS;
  121. apdu[2] = P1;
  122. apdu[3] = P2;
  123. apdu[4] = length;
  124. memcpy(apdu + APDU_HEADER_LEN, payload, length);
  125. seader_ccid_XfrBlock(seader_uart, apdu, APDU_HEADER_LEN + length);
  126. return true;
  127. }
  128. static int seader_print_struct_callback(const void* buffer, size_t size, void* app_key) {
  129. if(app_key) {
  130. char* str = (char*)app_key;
  131. size_t next = strlen(str);
  132. strncpy(str + next, buffer, size);
  133. } else {
  134. uint8_t next = strlen(asn1_log);
  135. strncpy(asn1_log + next, buffer, size);
  136. }
  137. return 0;
  138. }
  139. void seader_send_payload(
  140. SeaderUartBridge* seader_uart,
  141. Payload_t* payload,
  142. uint8_t to,
  143. uint8_t from,
  144. uint8_t replyTo) {
  145. uint8_t rBuffer[SEADER_UART_RX_BUF_SIZE] = {0};
  146. asn_enc_rval_t er = der_encode_to_buffer(
  147. &asn_DEF_Payload, payload, rBuffer + ASN1_PREFIX, sizeof(rBuffer) - ASN1_PREFIX);
  148. #ifdef ASN1_DEBUG
  149. if(er.encoded > -1) {
  150. char payloadDebug[384] = {0};
  151. memset(payloadDebug, 0, sizeof(payloadDebug));
  152. (&asn_DEF_Payload)
  153. ->op->print_struct(
  154. &asn_DEF_Payload, payload, 1, seader_print_struct_callback, payloadDebug);
  155. if(strlen(payloadDebug) > 0) {
  156. FURI_LOG_D(TAG, "Sending payload[%d %d %d]: %s", to, from, replyTo, payloadDebug);
  157. }
  158. }
  159. #endif
  160. //0xa0, 0xda, 0x02, 0x63, 0x00, 0x00, 0x0a,
  161. //0x44, 0x0a, 0x44, 0x00, 0x00, 0x00, 0xa0, 0x02, 0x96, 0x00
  162. rBuffer[0] = to;
  163. rBuffer[1] = from;
  164. rBuffer[2] = replyTo;
  165. seader_send_apdu(seader_uart, 0xA0, 0xDA, 0x02, 0x63, rBuffer, 6 + er.encoded);
  166. }
  167. void seader_send_response(
  168. SeaderUartBridge* seader_uart,
  169. Response_t* response,
  170. uint8_t to,
  171. uint8_t from,
  172. uint8_t replyTo) {
  173. Payload_t* payload = 0;
  174. payload = calloc(1, sizeof *payload);
  175. assert(payload);
  176. payload->present = Payload_PR_response;
  177. payload->choice.response = *response;
  178. seader_send_payload(seader_uart, payload, to, from, replyTo);
  179. ASN_STRUCT_FREE(asn_DEF_Payload, payload);
  180. }
  181. void sendRequestPacs(SeaderUartBridge* seader_uart) {
  182. RequestPacs_t* requestPacs = 0;
  183. requestPacs = calloc(1, sizeof *requestPacs);
  184. assert(requestPacs);
  185. requestPacs->contentElementTag = ContentElementTag_implicitFormatPhysicalAccessBits;
  186. SamCommand_t* samCommand = 0;
  187. samCommand = calloc(1, sizeof *samCommand);
  188. assert(samCommand);
  189. samCommand->present = SamCommand_PR_requestPacs;
  190. samCommand->choice.requestPacs = *requestPacs;
  191. Payload_t* payload = 0;
  192. payload = calloc(1, sizeof *payload);
  193. assert(payload);
  194. payload->present = Payload_PR_samCommand;
  195. payload->choice.samCommand = *samCommand;
  196. seader_send_payload(seader_uart, payload, 0x44, 0x0a, 0x44);
  197. ASN_STRUCT_FREE(asn_DEF_RequestPacs, requestPacs);
  198. ASN_STRUCT_FREE(asn_DEF_SamCommand, samCommand);
  199. ASN_STRUCT_FREE(asn_DEF_Payload, payload);
  200. }
  201. void seader_worker_send_version(SeaderWorker* seader_worker) {
  202. SeaderUartBridge* seader_uart = seader_worker->uart;
  203. SamCommand_t* samCommand = 0;
  204. samCommand = calloc(1, sizeof *samCommand);
  205. assert(samCommand);
  206. samCommand->present = SamCommand_PR_version;
  207. Payload_t* payload = 0;
  208. payload = calloc(1, sizeof *payload);
  209. assert(payload);
  210. payload->present = Payload_PR_samCommand;
  211. payload->choice.samCommand = *samCommand;
  212. seader_send_payload(seader_uart, payload, 0x44, 0x0a, 0x44);
  213. ASN_STRUCT_FREE(asn_DEF_SamCommand, samCommand);
  214. ASN_STRUCT_FREE(asn_DEF_Payload, payload);
  215. }
  216. void seader_send_card_detected(SeaderUartBridge* seader_uart, CardDetails_t* cardDetails) {
  217. CardDetected_t* cardDetected = 0;
  218. cardDetected = calloc(1, sizeof *cardDetected);
  219. assert(cardDetected);
  220. cardDetected->detectedCardDetails = *cardDetails;
  221. SamCommand_t* samCommand = 0;
  222. samCommand = calloc(1, sizeof *samCommand);
  223. assert(samCommand);
  224. samCommand->present = SamCommand_PR_cardDetected;
  225. samCommand->choice.cardDetected = *cardDetected;
  226. Payload_t* payload = 0;
  227. payload = calloc(1, sizeof *payload);
  228. assert(payload);
  229. payload->present = Payload_PR_samCommand;
  230. payload->choice.samCommand = *samCommand;
  231. seader_send_payload(seader_uart, payload, 0x44, 0x0a, 0x44);
  232. ASN_STRUCT_FREE(asn_DEF_Payload, payload);
  233. ASN_STRUCT_FREE(asn_DEF_SamCommand, samCommand);
  234. ASN_STRUCT_FREE(asn_DEF_CardDetected, cardDetected);
  235. }
  236. bool seader_unpack_pacs(Seader* seader, uint8_t* buf, size_t size) {
  237. SeaderCredential* seader_credential = seader->credential;
  238. PAC_t* pac = 0;
  239. pac = calloc(1, sizeof *pac);
  240. assert(pac);
  241. bool rtn = false;
  242. asn_dec_rval_t rval = asn_decode(0, ATS_DER, &asn_DEF_PAC, (void**)&pac, buf, size);
  243. if(rval.code == RC_OK) {
  244. char pacDebug[384] = {0};
  245. (&asn_DEF_PAC)
  246. ->op->print_struct(&asn_DEF_PAC, pac, 1, seader_print_struct_callback, pacDebug);
  247. if(strlen(pacDebug) > 0) {
  248. FURI_LOG_D(TAG, "Received pac: %s", pacDebug);
  249. memset(display, 0, sizeof(display));
  250. if(seader_credential->sio[0] == 0x30) {
  251. for(uint8_t i = 0; i < sizeof(seader_credential->sio); i++) {
  252. snprintf(
  253. display + (i * 2), sizeof(display), "%02x", seader_credential->sio[i]);
  254. }
  255. FURI_LOG_D(TAG, "SIO %s", display);
  256. }
  257. }
  258. if(pac->size <= sizeof(seader_credential->credential)) {
  259. // TODO: make credential into a 12 byte array
  260. seader_credential->bit_length = pac->size * 8 - pac->bits_unused;
  261. memcpy(&seader_credential->credential, pac->buf, pac->size);
  262. seader_credential->credential = __builtin_bswap64(seader_credential->credential);
  263. seader_credential->credential = seader_credential->credential >>
  264. (64 - seader_credential->bit_length);
  265. rtn = true;
  266. } else {
  267. // PACS too big (probably bad data)
  268. view_dispatcher_send_custom_event(
  269. seader->view_dispatcher, SeaderCustomEventWorkerExit);
  270. }
  271. }
  272. ASN_STRUCT_FREE(asn_DEF_PAC, pac);
  273. return rtn;
  274. }
  275. // 800201298106683d052026b6820101
  276. //300F800201298106683D052026B6820101
  277. bool seader_parse_version(SeaderWorker* seader_worker, uint8_t* buf, size_t size) {
  278. SamVersion_t* version = 0;
  279. version = calloc(1, sizeof *version);
  280. assert(version);
  281. bool rtn = false;
  282. if(size > 30) {
  283. // Too large to handle now
  284. FURI_LOG_W(TAG, "Version of %d is to long to parse", size);
  285. return false;
  286. }
  287. // Add sequence prefix
  288. uint8_t seq[32] = {0x30};
  289. seq[1] = (uint8_t)size;
  290. memcpy(seq + 2, buf, size);
  291. asn_dec_rval_t rval =
  292. asn_decode(0, ATS_DER, &asn_DEF_SamVersion, (void**)&version, seq, size + 2);
  293. if(rval.code == RC_OK) {
  294. char versionDebug[128] = {0};
  295. (&asn_DEF_SamVersion)
  296. ->op->print_struct(
  297. &asn_DEF_SamVersion, version, 1, seader_print_struct_callback, versionDebug);
  298. if(strlen(versionDebug) > 0) {
  299. // FURI_LOG_D(TAG, "Received version: %s", versionDebug);
  300. }
  301. if(version->version.size == 2) {
  302. memcpy(seader_worker->sam_version, version->version.buf, version->version.size);
  303. }
  304. rtn = true;
  305. }
  306. ASN_STRUCT_FREE(asn_DEF_SamVersion, version);
  307. return rtn;
  308. }
  309. bool seader_parse_sam_response(Seader* seader, SamResponse_t* samResponse) {
  310. SeaderWorker* seader_worker = seader->worker;
  311. SeaderUartBridge* seader_uart = seader_worker->uart;
  312. if(samResponse->size == 0) {
  313. if(requestPacs) {
  314. FURI_LOG_D(TAG, "samResponse %d => requesting PACS", samResponse->size);
  315. sendRequestPacs(seader_uart);
  316. requestPacs = false;
  317. } else {
  318. FURI_LOG_D(
  319. TAG, "samResponse %d, PACS already requested, pushing view", samResponse->size);
  320. view_dispatcher_send_custom_event(
  321. seader->view_dispatcher, SeaderCustomEventWorkerExit);
  322. }
  323. } else if(seader_parse_version(seader_worker, samResponse->buf, samResponse->size)) {
  324. // no-op
  325. } else if(seader_unpack_pacs(seader, samResponse->buf, samResponse->size)) {
  326. view_dispatcher_send_custom_event(seader->view_dispatcher, SeaderCustomEventPollerSuccess);
  327. } else {
  328. memset(display, 0, sizeof(display));
  329. for(uint8_t i = 0; i < samResponse->size; i++) {
  330. snprintf(display + (i * 2), sizeof(display), "%02x", samResponse->buf[i]);
  331. }
  332. FURI_LOG_D(TAG, "Unknown samResponse %d: %s", samResponse->size, display);
  333. }
  334. return false;
  335. }
  336. bool seader_parse_response(Seader* seader, Response_t* response) {
  337. switch(response->present) {
  338. case Response_PR_samResponse:
  339. seader_parse_sam_response(seader, &response->choice.samResponse);
  340. break;
  341. default:
  342. FURI_LOG_D(TAG, "non-sam response");
  343. break;
  344. };
  345. return false;
  346. }
  347. void seader_send_nfc_rx(SeaderUartBridge* seader_uart, uint8_t* buffer, size_t len) {
  348. OCTET_STRING_t rxData = {.buf = buffer, .size = len};
  349. uint8_t status[] = {0x00, 0x00};
  350. RfStatus_t rfStatus = {.buf = status, .size = 2};
  351. NFCRx_t* nfcRx = 0;
  352. nfcRx = calloc(1, sizeof *nfcRx);
  353. assert(nfcRx);
  354. nfcRx->rfStatus = rfStatus;
  355. nfcRx->data = &rxData;
  356. NFCResponse_t* nfcResponse = 0;
  357. nfcResponse = calloc(1, sizeof *nfcResponse);
  358. assert(nfcResponse);
  359. nfcResponse->present = NFCResponse_PR_nfcRx;
  360. nfcResponse->choice.nfcRx = *nfcRx;
  361. Response_t* response = 0;
  362. response = calloc(1, sizeof *response);
  363. assert(response);
  364. response->present = Response_PR_nfcResponse;
  365. response->choice.nfcResponse = *nfcResponse;
  366. seader_send_response(seader_uart, response, 0x14, 0x0a, 0x0);
  367. ASN_STRUCT_FREE(asn_DEF_NFCRx, nfcRx);
  368. ASN_STRUCT_FREE(asn_DEF_NFCResponse, nfcResponse);
  369. ASN_STRUCT_FREE(asn_DEF_Response, response);
  370. }
  371. void seader_capture_sio(BitBuffer* tx_buffer, BitBuffer* rx_buffer, SeaderCredential* credential) {
  372. const uint8_t* buffer = bit_buffer_get_data(tx_buffer);
  373. size_t len = bit_buffer_get_size_bytes(tx_buffer);
  374. const uint8_t* rxBuffer = bit_buffer_get_data(rx_buffer);
  375. if(memcmp(buffer, read4Block6, len) == 0 && rxBuffer[0] == 0x30) {
  376. memcpy(credential->sio, rxBuffer, 32);
  377. } else if(memcmp(buffer, read4Block10, len) == 0 && rxBuffer[0] == 0x30) {
  378. memcpy(credential->sio, rxBuffer, 32);
  379. } else if(memcmp(buffer, read4Block9, len) == 0) {
  380. memcpy(credential->sio + 32, rxBuffer + 8, 24);
  381. } else if(memcmp(buffer, read4Block13, len) == 0) {
  382. memcpy(credential->sio + 32, rxBuffer + 8, 24);
  383. }
  384. }
  385. PicopassError seader_worker_fake_epurse_update(BitBuffer* tx_buffer, BitBuffer* rx_buffer) {
  386. const uint8_t* buffer = bit_buffer_get_data(tx_buffer);
  387. uint8_t fake_response[8];
  388. memset(fake_response, 0, sizeof(fake_response));
  389. memcpy(fake_response + 0, buffer + 6, 4);
  390. memcpy(fake_response + 4, buffer + 2, 4);
  391. bit_buffer_append_bytes(rx_buffer, fake_response, sizeof(fake_response));
  392. iso13239_crc_append(Iso13239CrcTypePicopass, rx_buffer);
  393. memset(display, 0, sizeof(display));
  394. for(uint8_t i = 0; i < bit_buffer_get_size_bytes(rx_buffer); i++) {
  395. snprintf(display + (i * 2), sizeof(display), "%02x", bit_buffer_get_data(rx_buffer)[i]);
  396. }
  397. FURI_LOG_I(TAG, "Fake update E-Purse response: %s", display);
  398. return PicopassErrorNone;
  399. }
  400. void seader_iso15693_transmit(
  401. Seader* seader,
  402. PicopassPoller* picopass_poller,
  403. uint8_t* buffer,
  404. size_t len) {
  405. UNUSED(seader);
  406. UNUSED(buffer);
  407. UNUSED(len);
  408. SeaderWorker* seader_worker = seader->worker;
  409. SeaderUartBridge* seader_uart = seader_worker->uart;
  410. BitBuffer* tx_buffer = bit_buffer_alloc(len);
  411. BitBuffer* rx_buffer = bit_buffer_alloc(SEADER_POLLER_MAX_BUFFER_SIZE);
  412. PicopassError error = PicopassErrorNone;
  413. do {
  414. bit_buffer_append_bytes(tx_buffer, buffer, len);
  415. if(memcmp(buffer, updateBlock2, sizeof(updateBlock2)) == 0) {
  416. error = seader_worker_fake_epurse_update(tx_buffer, rx_buffer);
  417. } else {
  418. error = picopass_poller_send_frame(
  419. picopass_poller, tx_buffer, rx_buffer, SEADER_POLLER_MAX_FWT);
  420. }
  421. if(error == PicopassErrorIncorrectCrc) {
  422. error = PicopassErrorNone;
  423. }
  424. if(error != PicopassErrorNone) {
  425. seader_worker->stage = SeaderPollerEventTypeFail;
  426. break;
  427. }
  428. seader_capture_sio(tx_buffer, rx_buffer, seader->credential);
  429. seader_send_nfc_rx(
  430. seader_uart,
  431. (uint8_t*)bit_buffer_get_data(rx_buffer),
  432. bit_buffer_get_size_bytes(rx_buffer));
  433. } while(false);
  434. bit_buffer_free(tx_buffer);
  435. bit_buffer_free(rx_buffer);
  436. }
  437. /* Assumes this is called in the context of the NFC API callback */
  438. void seader_iso14443a_transmit(
  439. Seader* seader,
  440. Iso14443_4aPoller* iso14443_4a_poller,
  441. uint8_t* buffer,
  442. size_t len,
  443. uint16_t timeout,
  444. uint8_t format[3]) {
  445. UNUSED(timeout);
  446. UNUSED(format);
  447. furi_assert(seader);
  448. furi_assert(buffer);
  449. furi_assert(iso14443_4a_poller);
  450. SeaderWorker* seader_worker = seader->worker;
  451. SeaderUartBridge* seader_uart = seader_worker->uart;
  452. BitBuffer* tx_buffer = bit_buffer_alloc(len);
  453. BitBuffer* rx_buffer = bit_buffer_alloc(SEADER_POLLER_MAX_BUFFER_SIZE);
  454. do {
  455. bit_buffer_append_bytes(tx_buffer, buffer, len);
  456. Iso14443_4aError error =
  457. iso14443_4a_poller_send_block(iso14443_4a_poller, tx_buffer, rx_buffer);
  458. if(error != Iso14443_4aErrorNone) {
  459. FURI_LOG_W(TAG, "iso14443_4a_poller_send_block error %d", error);
  460. seader_worker->stage = SeaderPollerEventTypeFail;
  461. break;
  462. }
  463. seader_send_nfc_rx(
  464. seader_uart,
  465. (uint8_t*)bit_buffer_get_data(rx_buffer),
  466. bit_buffer_get_size_bytes(rx_buffer));
  467. } while(false);
  468. bit_buffer_free(tx_buffer);
  469. bit_buffer_free(rx_buffer);
  470. }
  471. void seader_parse_nfc_command_transmit(
  472. Seader* seader,
  473. NFCSend_t* nfcSend,
  474. SeaderPollerContainer* spc) {
  475. long timeOut = nfcSend->timeOut;
  476. Protocol_t protocol = nfcSend->protocol;
  477. FrameProtocol_t frameProtocol = protocol.buf[1];
  478. #ifdef ASN1_DEBUG
  479. memset(display, 0, sizeof(display));
  480. for(uint8_t i = 0; i < nfcSend->data.size; i++) {
  481. snprintf(display + (i * 2), sizeof(display), "%02x", nfcSend->data.buf[i]);
  482. }
  483. FURI_LOG_D(
  484. TAG,
  485. "Transmit (%ld timeout) %d bytes [%s] via %lx",
  486. timeOut,
  487. nfcSend->data.size,
  488. display,
  489. frameProtocol);
  490. #endif
  491. if(seader->credential->type == SeaderCredentialTypeVirtual) {
  492. seader_picopass_state_machine(seader, nfcSend->data.buf, nfcSend->data.size);
  493. } else if(frameProtocol == FrameProtocol_iclass) {
  494. seader_iso15693_transmit(
  495. seader, spc->picopass_poller, nfcSend->data.buf, nfcSend->data.size);
  496. } else if(frameProtocol == FrameProtocol_nfc) {
  497. seader_iso14443a_transmit(
  498. seader,
  499. spc->iso14443_4a_poller,
  500. nfcSend->data.buf,
  501. nfcSend->data.size,
  502. (uint16_t)timeOut,
  503. nfcSend->format->buf);
  504. } else {
  505. FURI_LOG_W(TAG, "unknown frame protocol %lx", frameProtocol);
  506. }
  507. }
  508. void seader_parse_nfc_off(SeaderUartBridge* seader_uart) {
  509. FURI_LOG_D(TAG, "Set Field Off");
  510. NFCResponse_t* nfcResponse = 0;
  511. nfcResponse = calloc(1, sizeof *nfcResponse);
  512. assert(nfcResponse);
  513. nfcResponse->present = NFCResponse_PR_nfcAck;
  514. Response_t* response = 0;
  515. response = calloc(1, sizeof *response);
  516. assert(response);
  517. response->present = Response_PR_nfcResponse;
  518. response->choice.nfcResponse = *nfcResponse;
  519. seader_send_response(seader_uart, response, 0x44, 0x0a, 0);
  520. ASN_STRUCT_FREE(asn_DEF_Response, response);
  521. ASN_STRUCT_FREE(asn_DEF_NFCResponse, nfcResponse);
  522. }
  523. void seader_parse_nfc_command(Seader* seader, NFCCommand_t* nfcCommand, SeaderPollerContainer* spc) {
  524. SeaderWorker* seader_worker = seader->worker;
  525. SeaderUartBridge* seader_uart = seader_worker->uart;
  526. switch(nfcCommand->present) {
  527. case NFCCommand_PR_nfcSend:
  528. seader_parse_nfc_command_transmit(seader, &nfcCommand->choice.nfcSend, spc);
  529. break;
  530. case NFCCommand_PR_nfcOff:
  531. seader_parse_nfc_off(seader_uart);
  532. seader->worker->stage = SeaderPollerEventTypeComplete;
  533. break;
  534. default:
  535. FURI_LOG_W(TAG, "unparsed NFCCommand");
  536. break;
  537. };
  538. }
  539. bool seader_worker_state_machine(
  540. Seader* seader,
  541. Payload_t* payload,
  542. bool online,
  543. SeaderPollerContainer* spc) {
  544. bool processed = false;
  545. switch(payload->present) {
  546. case Payload_PR_response:
  547. seader_parse_response(seader, &payload->choice.response);
  548. processed = true;
  549. break;
  550. case Payload_PR_nfcCommand:
  551. if(online) {
  552. seader_parse_nfc_command(seader, &payload->choice.nfcCommand, spc);
  553. processed = true;
  554. }
  555. break;
  556. case Payload_PR_errorResponse:
  557. FURI_LOG_W(TAG, "Error Response");
  558. processed = true;
  559. view_dispatcher_send_custom_event(seader->view_dispatcher, SeaderCustomEventWorkerExit);
  560. break;
  561. default:
  562. FURI_LOG_W(TAG, "unhandled payload");
  563. break;
  564. };
  565. return processed;
  566. }
  567. bool seader_process_success_response_i(
  568. Seader* seader,
  569. uint8_t* apdu,
  570. size_t len,
  571. bool online,
  572. SeaderPollerContainer* spc) {
  573. Payload_t* payload = 0;
  574. payload = calloc(1, sizeof *payload);
  575. assert(payload);
  576. bool processed = false;
  577. asn_dec_rval_t rval =
  578. asn_decode(0, ATS_DER, &asn_DEF_Payload, (void**)&payload, apdu + 6, len - 6);
  579. if(rval.code == RC_OK) {
  580. #ifdef ASN1_DEBUG
  581. if(online == false) {
  582. char payloadDebug[384] = {0};
  583. memset(payloadDebug, 0, sizeof(payloadDebug));
  584. (&asn_DEF_Payload)
  585. ->op->print_struct(
  586. &asn_DEF_Payload, payload, 1, seader_print_struct_callback, payloadDebug);
  587. if(strlen(payloadDebug) > 0) {
  588. FURI_LOG_D(TAG, "Payload: %s", payloadDebug);
  589. }
  590. }
  591. #endif
  592. processed = seader_worker_state_machine(seader, payload, online, spc);
  593. } else {
  594. FURI_LOG_D(TAG, "Failed to decode APDU payload");
  595. }
  596. ASN_STRUCT_FREE(asn_DEF_Payload, payload);
  597. return processed;
  598. }
  599. NfcCommand seader_worker_card_detect(
  600. Seader* seader,
  601. uint8_t sak,
  602. uint8_t* atqa,
  603. const uint8_t* uid,
  604. uint8_t uid_len,
  605. uint8_t* ats,
  606. uint8_t ats_len) {
  607. UNUSED(ats);
  608. UNUSED(ats_len);
  609. // We're telling the SAM we've seen a new card, so reset out requestPacs check
  610. requestPacs = true;
  611. SeaderWorker* seader_worker = seader->worker;
  612. SeaderUartBridge* seader_uart = seader_worker->uart;
  613. CardDetails_t* cardDetails = 0;
  614. cardDetails = calloc(1, sizeof *cardDetails);
  615. assert(cardDetails);
  616. OCTET_STRING_fromBuf(&cardDetails->csn, (const char*)uid, uid_len);
  617. OCTET_STRING_t sak_string = {.buf = &sak, .size = 1};
  618. OCTET_STRING_t atqa_string = {.buf = atqa, .size = 2};
  619. uint8_t protocol_bytes[] = {0x00, 0x00};
  620. if(sak == 0 && atqa == NULL) {
  621. protocol_bytes[1] = FrameProtocol_iclass;
  622. OCTET_STRING_fromBuf(
  623. &cardDetails->protocol, (const char*)protocol_bytes, sizeof(protocol_bytes));
  624. } else {
  625. protocol_bytes[1] = FrameProtocol_nfc;
  626. OCTET_STRING_fromBuf(
  627. &cardDetails->protocol, (const char*)protocol_bytes, sizeof(protocol_bytes));
  628. cardDetails->sak = &sak_string;
  629. cardDetails->atqa = &atqa_string;
  630. }
  631. seader_send_card_detected(seader_uart, cardDetails);
  632. ASN_STRUCT_FREE(asn_DEF_CardDetails, cardDetails);
  633. return NfcCommandContinue;
  634. }