mifare_classic.c 37 KB

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  1. #include "mifare_classic.h"
  2. #include "nfca.h"
  3. #include "nfc_util.h"
  4. #include <furi_hal_rtc.h>
  5. // Algorithm from https://github.com/RfidResearchGroup/proxmark3.git
  6. #define TAG "MfClassic"
  7. #define MF_CLASSIC_AUTH_KEY_A_CMD (0x60U)
  8. #define MF_CLASSIC_AUTH_KEY_B_CMD (0x61U)
  9. #define MF_CLASSIC_READ_BLOCK_CMD (0x30)
  10. #define MF_CLASSIC_WRITE_BLOCK_CMD (0xA0)
  11. const char* mf_classic_get_type_str(MfClassicType type) {
  12. if(type == MfClassicType1k) {
  13. return "MIFARE Classic 1K";
  14. } else if(type == MfClassicType4k) {
  15. return "MIFARE Classic 4K";
  16. } else {
  17. return "Unknown";
  18. }
  19. }
  20. static uint8_t mf_classic_get_first_block_num_of_sector(uint8_t sector) {
  21. furi_assert(sector < 40);
  22. if(sector < 32) {
  23. return sector * 4;
  24. } else {
  25. return 32 * 4 + (sector - 32) * 16;
  26. }
  27. }
  28. uint8_t mf_classic_get_sector_trailer_block_num_by_sector(uint8_t sector) {
  29. furi_assert(sector < 40);
  30. if(sector < 32) {
  31. return sector * 4 + 3;
  32. } else {
  33. return 32 * 4 + (sector - 32) * 16 + 15;
  34. }
  35. }
  36. uint8_t mf_classic_get_sector_by_block(uint8_t block) {
  37. if(block < 128) {
  38. return (block | 0x03) / 4;
  39. } else {
  40. return 32 + ((block | 0xf) - 32 * 4) / 16;
  41. }
  42. }
  43. static uint8_t mf_classic_get_blocks_num_in_sector(uint8_t sector) {
  44. furi_assert(sector < 40);
  45. return sector < 32 ? 4 : 16;
  46. }
  47. uint8_t mf_classic_get_sector_trailer_num_by_block(uint8_t block) {
  48. if(block < 128) {
  49. return block | 0x03;
  50. } else {
  51. return block | 0x0f;
  52. }
  53. }
  54. bool mf_classic_is_sector_trailer(uint8_t block) {
  55. return block == mf_classic_get_sector_trailer_num_by_block(block);
  56. }
  57. MfClassicSectorTrailer*
  58. mf_classic_get_sector_trailer_by_sector(MfClassicData* data, uint8_t sector) {
  59. furi_assert(data);
  60. uint8_t sec_tr_block_num = mf_classic_get_sector_trailer_block_num_by_sector(sector);
  61. return (MfClassicSectorTrailer*)data->block[sec_tr_block_num].value;
  62. }
  63. uint8_t mf_classic_get_total_sectors_num(MfClassicType type) {
  64. if(type == MfClassicType1k) {
  65. return MF_CLASSIC_1K_TOTAL_SECTORS_NUM;
  66. } else if(type == MfClassicType4k) {
  67. return MF_CLASSIC_4K_TOTAL_SECTORS_NUM;
  68. } else {
  69. return 0;
  70. }
  71. }
  72. uint16_t mf_classic_get_total_block_num(MfClassicType type) {
  73. if(type == MfClassicType1k) {
  74. return 64;
  75. } else if(type == MfClassicType4k) {
  76. return 256;
  77. } else {
  78. return 0;
  79. }
  80. }
  81. bool mf_classic_is_block_read(MfClassicData* data, uint8_t block_num) {
  82. furi_assert(data);
  83. return (FURI_BIT(data->block_read_mask[block_num / 32], block_num % 32) == 1);
  84. }
  85. void mf_classic_set_block_read(MfClassicData* data, uint8_t block_num, MfClassicBlock* block_data) {
  86. furi_assert(data);
  87. if(mf_classic_is_sector_trailer(block_num)) {
  88. memcpy(&data->block[block_num].value[6], &block_data->value[6], 4);
  89. } else {
  90. memcpy(data->block[block_num].value, block_data->value, MF_CLASSIC_BLOCK_SIZE);
  91. }
  92. FURI_BIT_SET(data->block_read_mask[block_num / 32], block_num % 32);
  93. }
  94. bool mf_classic_is_sector_data_read(MfClassicData* data, uint8_t sector_num) {
  95. furi_assert(data);
  96. uint8_t first_block = mf_classic_get_first_block_num_of_sector(sector_num);
  97. uint8_t total_blocks = mf_classic_get_blocks_num_in_sector(sector_num);
  98. bool data_read = true;
  99. for(size_t i = first_block; i < first_block + total_blocks; i++) {
  100. data_read &= mf_classic_is_block_read(data, i);
  101. }
  102. return data_read;
  103. }
  104. void mf_classic_set_sector_data_not_read(MfClassicData* data) {
  105. furi_assert(data);
  106. memset(data->block_read_mask, 0, sizeof(data->block_read_mask));
  107. }
  108. bool mf_classic_is_key_found(MfClassicData* data, uint8_t sector_num, MfClassicKey key_type) {
  109. furi_assert(data);
  110. bool key_found = false;
  111. if(key_type == MfClassicKeyA) {
  112. key_found = (FURI_BIT(data->key_a_mask, sector_num) == 1);
  113. } else if(key_type == MfClassicKeyB) {
  114. key_found = (FURI_BIT(data->key_b_mask, sector_num) == 1);
  115. }
  116. return key_found;
  117. }
  118. void mf_classic_set_key_found(
  119. MfClassicData* data,
  120. uint8_t sector_num,
  121. MfClassicKey key_type,
  122. uint64_t key) {
  123. furi_assert(data);
  124. uint8_t key_arr[6] = {};
  125. MfClassicSectorTrailer* sec_trailer =
  126. mf_classic_get_sector_trailer_by_sector(data, sector_num);
  127. nfc_util_num2bytes(key, 6, key_arr);
  128. if(key_type == MfClassicKeyA) {
  129. memcpy(sec_trailer->key_a, key_arr, sizeof(sec_trailer->key_a));
  130. FURI_BIT_SET(data->key_a_mask, sector_num);
  131. } else if(key_type == MfClassicKeyB) {
  132. memcpy(sec_trailer->key_b, key_arr, sizeof(sec_trailer->key_b));
  133. FURI_BIT_SET(data->key_b_mask, sector_num);
  134. }
  135. }
  136. void mf_classic_set_key_not_found(MfClassicData* data, uint8_t sector_num, MfClassicKey key_type) {
  137. furi_assert(data);
  138. if(key_type == MfClassicKeyA) {
  139. FURI_BIT_CLEAR(data->key_a_mask, sector_num);
  140. } else if(key_type == MfClassicKeyB) {
  141. FURI_BIT_CLEAR(data->key_b_mask, sector_num);
  142. }
  143. }
  144. bool mf_classic_is_sector_read(MfClassicData* data, uint8_t sector_num) {
  145. furi_assert(data);
  146. bool sector_read = false;
  147. do {
  148. if(!mf_classic_is_key_found(data, sector_num, MfClassicKeyA)) break;
  149. if(!mf_classic_is_key_found(data, sector_num, MfClassicKeyB)) break;
  150. uint8_t start_block = mf_classic_get_first_block_num_of_sector(sector_num);
  151. uint8_t total_blocks = mf_classic_get_blocks_num_in_sector(sector_num);
  152. uint8_t block_read = true;
  153. for(size_t i = start_block; i < start_block + total_blocks; i++) {
  154. block_read = mf_classic_is_block_read(data, i);
  155. if(!block_read) break;
  156. }
  157. sector_read = block_read;
  158. } while(false);
  159. return sector_read;
  160. }
  161. void mf_classic_get_read_sectors_and_keys(
  162. MfClassicData* data,
  163. uint8_t* sectors_read,
  164. uint8_t* keys_found) {
  165. furi_assert(data);
  166. furi_assert(sectors_read);
  167. furi_assert(keys_found);
  168. *sectors_read = 0;
  169. *keys_found = 0;
  170. uint8_t sectors_total = mf_classic_get_total_sectors_num(data->type);
  171. for(size_t i = 0; i < sectors_total; i++) {
  172. if(mf_classic_is_key_found(data, i, MfClassicKeyA)) {
  173. *keys_found += 1;
  174. }
  175. if(mf_classic_is_key_found(data, i, MfClassicKeyB)) {
  176. *keys_found += 1;
  177. }
  178. uint8_t first_block = mf_classic_get_first_block_num_of_sector(i);
  179. uint8_t total_blocks_in_sec = mf_classic_get_blocks_num_in_sector(i);
  180. bool blocks_read = true;
  181. for(size_t i = first_block; i < first_block + total_blocks_in_sec; i++) {
  182. blocks_read = mf_classic_is_block_read(data, i);
  183. if(!blocks_read) break;
  184. }
  185. if(blocks_read) {
  186. *sectors_read += 1;
  187. }
  188. }
  189. }
  190. bool mf_classic_is_card_read(MfClassicData* data) {
  191. furi_assert(data);
  192. uint8_t sectors_total = mf_classic_get_total_sectors_num(data->type);
  193. uint8_t sectors_read = 0;
  194. uint8_t keys_found = 0;
  195. mf_classic_get_read_sectors_and_keys(data, &sectors_read, &keys_found);
  196. bool card_read = (sectors_read == sectors_total) && (keys_found == sectors_total * 2);
  197. return card_read;
  198. }
  199. bool mf_classic_is_allowed_access_sector_trailer(
  200. MfClassicData* data,
  201. uint8_t block_num,
  202. MfClassicKey key,
  203. MfClassicAction action) {
  204. uint8_t* sector_trailer = data->block[block_num].value;
  205. uint8_t AC = ((sector_trailer[7] >> 5) & 0x04) | ((sector_trailer[8] >> 2) & 0x02) |
  206. ((sector_trailer[8] >> 7) & 0x01);
  207. switch(action) {
  208. case MfClassicActionKeyARead: {
  209. return false;
  210. }
  211. case MfClassicActionKeyAWrite:
  212. case MfClassicActionKeyBWrite: {
  213. return (
  214. (key == MfClassicKeyA && (AC == 0x00 || AC == 0x01)) ||
  215. (key == MfClassicKeyB && (AC == 0x04 || AC == 0x03)));
  216. }
  217. case MfClassicActionKeyBRead: {
  218. return (key == MfClassicKeyA && (AC == 0x00 || AC == 0x02 || AC == 0x01));
  219. }
  220. case MfClassicActionACRead: {
  221. return (
  222. (key == MfClassicKeyA) ||
  223. (key == MfClassicKeyB && !(AC == 0x00 || AC == 0x02 || AC == 0x01)));
  224. }
  225. case MfClassicActionACWrite: {
  226. return (
  227. (key == MfClassicKeyA && (AC == 0x01)) ||
  228. (key == MfClassicKeyB && (AC == 0x03 || AC == 0x05)));
  229. }
  230. default:
  231. return false;
  232. }
  233. return true;
  234. }
  235. bool mf_classic_is_allowed_access_data_block(
  236. MfClassicData* data,
  237. uint8_t block_num,
  238. MfClassicKey key,
  239. MfClassicAction action) {
  240. uint8_t* sector_trailer =
  241. data->block[mf_classic_get_sector_trailer_num_by_block(block_num)].value;
  242. uint8_t sector_block;
  243. if(block_num <= 128) {
  244. sector_block = block_num & 0x03;
  245. } else {
  246. sector_block = (block_num & 0x0f) / 5;
  247. }
  248. uint8_t AC;
  249. switch(sector_block) {
  250. case 0x00: {
  251. AC = ((sector_trailer[7] >> 2) & 0x04) | ((sector_trailer[8] << 1) & 0x02) |
  252. ((sector_trailer[8] >> 4) & 0x01);
  253. break;
  254. }
  255. case 0x01: {
  256. AC = ((sector_trailer[7] >> 3) & 0x04) | ((sector_trailer[8] >> 0) & 0x02) |
  257. ((sector_trailer[8] >> 5) & 0x01);
  258. break;
  259. }
  260. case 0x02: {
  261. AC = ((sector_trailer[7] >> 4) & 0x04) | ((sector_trailer[8] >> 1) & 0x02) |
  262. ((sector_trailer[8] >> 6) & 0x01);
  263. break;
  264. }
  265. default:
  266. return false;
  267. }
  268. switch(action) {
  269. case MfClassicActionDataRead: {
  270. return (
  271. (key == MfClassicKeyA && !(AC == 0x03 || AC == 0x05 || AC == 0x07)) ||
  272. (key == MfClassicKeyB && !(AC == 0x07)));
  273. }
  274. case MfClassicActionDataWrite: {
  275. return (
  276. (key == MfClassicKeyA && (AC == 0x00)) ||
  277. (key == MfClassicKeyB && (AC == 0x00 || AC == 0x04 || AC == 0x06 || AC == 0x03)));
  278. }
  279. case MfClassicActionDataInc: {
  280. return (
  281. (key == MfClassicKeyA && (AC == 0x00)) ||
  282. (key == MfClassicKeyB && (AC == 0x00 || AC == 0x06)));
  283. }
  284. case MfClassicActionDataDec: {
  285. return (
  286. (key == MfClassicKeyA && (AC == 0x00 || AC == 0x06 || AC == 0x01)) ||
  287. (key == MfClassicKeyB && (AC == 0x00 || AC == 0x06 || AC == 0x01)));
  288. }
  289. default:
  290. return false;
  291. }
  292. return false;
  293. }
  294. static bool mf_classic_is_allowed_access(
  295. MfClassicEmulator* emulator,
  296. uint8_t block_num,
  297. MfClassicKey key,
  298. MfClassicAction action) {
  299. if(mf_classic_is_sector_trailer(block_num)) {
  300. return mf_classic_is_allowed_access_sector_trailer(
  301. &emulator->data, block_num, key, action);
  302. } else {
  303. return mf_classic_is_allowed_access_data_block(&emulator->data, block_num, key, action);
  304. }
  305. }
  306. bool mf_classic_check_card_type(uint8_t ATQA0, uint8_t ATQA1, uint8_t SAK) {
  307. UNUSED(ATQA1);
  308. if((ATQA0 == 0x44 || ATQA0 == 0x04) && (SAK == 0x08 || SAK == 0x88 || SAK == 0x09)) {
  309. return true;
  310. } else if((ATQA0 == 0x01) && (ATQA1 == 0x0F) && (SAK == 0x01)) {
  311. //skylanders support
  312. return true;
  313. } else if((ATQA0 == 0x42 || ATQA0 == 0x02) && (SAK == 0x18)) {
  314. return true;
  315. } else {
  316. return false;
  317. }
  318. }
  319. MfClassicType mf_classic_get_classic_type(int8_t ATQA0, uint8_t ATQA1, uint8_t SAK) {
  320. UNUSED(ATQA1);
  321. if((ATQA0 == 0x44 || ATQA0 == 0x04) && (SAK == 0x08 || SAK == 0x88 || SAK == 0x09)) {
  322. return MfClassicType1k;
  323. } else if((ATQA0 == 0x01) && (ATQA1 == 0x0F) && (SAK == 0x01)) {
  324. //skylanders support
  325. return MfClassicType1k;
  326. } else if((ATQA0 == 0x42 || ATQA0 == 0x02) && (SAK == 0x18)) {
  327. return MfClassicType4k;
  328. }
  329. return MfClassicType1k;
  330. }
  331. void mf_classic_reader_add_sector(
  332. MfClassicReader* reader,
  333. uint8_t sector,
  334. uint64_t key_a,
  335. uint64_t key_b) {
  336. furi_assert(reader);
  337. furi_assert(sector < MF_CLASSIC_SECTORS_MAX);
  338. furi_assert((key_a != MF_CLASSIC_NO_KEY) || (key_b != MF_CLASSIC_NO_KEY));
  339. if(reader->sectors_to_read < MF_CLASSIC_SECTORS_MAX) {
  340. reader->sector_reader[reader->sectors_to_read].key_a = key_a;
  341. reader->sector_reader[reader->sectors_to_read].key_b = key_b;
  342. reader->sector_reader[reader->sectors_to_read].sector_num = sector;
  343. reader->sectors_to_read++;
  344. }
  345. }
  346. void mf_classic_auth_init_context(MfClassicAuthContext* auth_ctx, uint8_t sector) {
  347. furi_assert(auth_ctx);
  348. auth_ctx->sector = sector;
  349. auth_ctx->key_a = MF_CLASSIC_NO_KEY;
  350. auth_ctx->key_b = MF_CLASSIC_NO_KEY;
  351. }
  352. static bool mf_classic_auth(
  353. FuriHalNfcTxRxContext* tx_rx,
  354. uint32_t block,
  355. uint64_t key,
  356. MfClassicKey key_type,
  357. Crypto1* crypto) {
  358. bool auth_success = false;
  359. uint32_t cuid = 0;
  360. memset(tx_rx->tx_data, 0, sizeof(tx_rx->tx_data));
  361. memset(tx_rx->tx_parity, 0, sizeof(tx_rx->tx_parity));
  362. tx_rx->tx_rx_type = FuriHalNfcTxRxTypeDefault;
  363. do {
  364. if(!furi_hal_nfc_activate_nfca(200, &cuid)) break;
  365. if(key_type == MfClassicKeyA) {
  366. tx_rx->tx_data[0] = MF_CLASSIC_AUTH_KEY_A_CMD;
  367. } else {
  368. tx_rx->tx_data[0] = MF_CLASSIC_AUTH_KEY_B_CMD;
  369. }
  370. tx_rx->tx_data[1] = block;
  371. tx_rx->tx_rx_type = FuriHalNfcTxRxTypeRxNoCrc;
  372. tx_rx->tx_bits = 2 * 8;
  373. if(!furi_hal_nfc_tx_rx(tx_rx, 6)) break;
  374. uint32_t nt = (uint32_t)nfc_util_bytes2num(tx_rx->rx_data, 4);
  375. crypto1_init(crypto, key);
  376. crypto1_word(crypto, nt ^ cuid, 0);
  377. uint8_t nr[4] = {};
  378. nfc_util_num2bytes(prng_successor(DWT->CYCCNT, 32), 4, nr);
  379. for(uint8_t i = 0; i < 4; i++) {
  380. tx_rx->tx_data[i] = crypto1_byte(crypto, nr[i], 0) ^ nr[i];
  381. tx_rx->tx_parity[0] |=
  382. (((crypto1_filter(crypto->odd) ^ nfc_util_odd_parity8(nr[i])) & 0x01) << (7 - i));
  383. }
  384. nt = prng_successor(nt, 32);
  385. for(uint8_t i = 4; i < 8; i++) {
  386. nt = prng_successor(nt, 8);
  387. tx_rx->tx_data[i] = crypto1_byte(crypto, 0x00, 0) ^ (nt & 0xff);
  388. tx_rx->tx_parity[0] |=
  389. (((crypto1_filter(crypto->odd) ^ nfc_util_odd_parity8(nt & 0xff)) & 0x01)
  390. << (7 - i));
  391. }
  392. tx_rx->tx_rx_type = FuriHalNfcTxRxTypeRaw;
  393. tx_rx->tx_bits = 8 * 8;
  394. if(!furi_hal_nfc_tx_rx(tx_rx, 6)) break;
  395. if(tx_rx->rx_bits == 32) {
  396. crypto1_word(crypto, 0, 0);
  397. auth_success = true;
  398. }
  399. } while(false);
  400. return auth_success;
  401. }
  402. bool mf_classic_authenticate(
  403. FuriHalNfcTxRxContext* tx_rx,
  404. uint8_t block_num,
  405. uint64_t key,
  406. MfClassicKey key_type) {
  407. furi_assert(tx_rx);
  408. Crypto1 crypto = {};
  409. bool key_found = mf_classic_auth(tx_rx, block_num, key, key_type, &crypto);
  410. furi_hal_nfc_sleep();
  411. return key_found;
  412. }
  413. bool mf_classic_auth_attempt(
  414. FuriHalNfcTxRxContext* tx_rx,
  415. MfClassicAuthContext* auth_ctx,
  416. uint64_t key) {
  417. furi_assert(tx_rx);
  418. furi_assert(auth_ctx);
  419. bool found_key = false;
  420. bool need_halt = (auth_ctx->key_a == MF_CLASSIC_NO_KEY) &&
  421. (auth_ctx->key_b == MF_CLASSIC_NO_KEY);
  422. Crypto1 crypto;
  423. if(auth_ctx->key_a == MF_CLASSIC_NO_KEY) {
  424. // Try AUTH with key A
  425. if(mf_classic_auth(
  426. tx_rx,
  427. mf_classic_get_first_block_num_of_sector(auth_ctx->sector),
  428. key,
  429. MfClassicKeyA,
  430. &crypto)) {
  431. auth_ctx->key_a = key;
  432. found_key = true;
  433. }
  434. }
  435. if(need_halt) {
  436. furi_hal_nfc_sleep();
  437. }
  438. if(auth_ctx->key_b == MF_CLASSIC_NO_KEY) {
  439. // Try AUTH with key B
  440. if(mf_classic_auth(
  441. tx_rx,
  442. mf_classic_get_first_block_num_of_sector(auth_ctx->sector),
  443. key,
  444. MfClassicKeyB,
  445. &crypto)) {
  446. auth_ctx->key_b = key;
  447. found_key = true;
  448. }
  449. }
  450. return found_key;
  451. }
  452. bool mf_classic_read_block(
  453. FuriHalNfcTxRxContext* tx_rx,
  454. Crypto1* crypto,
  455. uint8_t block_num,
  456. MfClassicBlock* block) {
  457. furi_assert(tx_rx);
  458. furi_assert(crypto);
  459. furi_assert(block);
  460. bool read_block_success = false;
  461. uint8_t plain_cmd[4] = {MF_CLASSIC_READ_BLOCK_CMD, block_num, 0x00, 0x00};
  462. nfca_append_crc16(plain_cmd, 2);
  463. crypto1_encrypt(crypto, NULL, plain_cmd, 4 * 8, tx_rx->tx_data, tx_rx->tx_parity);
  464. tx_rx->tx_bits = 4 * 9;
  465. tx_rx->tx_rx_type = FuriHalNfcTxRxTypeRaw;
  466. if(furi_hal_nfc_tx_rx(tx_rx, 50)) {
  467. if(tx_rx->rx_bits == 8 * (MF_CLASSIC_BLOCK_SIZE + 2)) {
  468. uint8_t block_received[MF_CLASSIC_BLOCK_SIZE + 2];
  469. crypto1_decrypt(crypto, tx_rx->rx_data, tx_rx->rx_bits, block_received);
  470. uint16_t crc_calc = nfca_get_crc16(block_received, MF_CLASSIC_BLOCK_SIZE);
  471. uint16_t crc_received = (block_received[MF_CLASSIC_BLOCK_SIZE + 1] << 8) |
  472. block_received[MF_CLASSIC_BLOCK_SIZE];
  473. if(crc_received != crc_calc) {
  474. FURI_LOG_E(
  475. TAG,
  476. "Incorrect CRC while reading block %d. Expected %04X, Received %04X",
  477. block_num,
  478. crc_received,
  479. crc_calc);
  480. } else {
  481. memcpy(block->value, block_received, MF_CLASSIC_BLOCK_SIZE);
  482. read_block_success = true;
  483. }
  484. }
  485. }
  486. return read_block_success;
  487. }
  488. void mf_classic_read_sector(FuriHalNfcTxRxContext* tx_rx, MfClassicData* data, uint8_t sec_num) {
  489. furi_assert(tx_rx);
  490. furi_assert(data);
  491. furi_hal_nfc_sleep();
  492. bool key_a_found = mf_classic_is_key_found(data, sec_num, MfClassicKeyA);
  493. bool key_b_found = mf_classic_is_key_found(data, sec_num, MfClassicKeyB);
  494. uint8_t start_block = mf_classic_get_first_block_num_of_sector(sec_num);
  495. uint8_t total_blocks = mf_classic_get_blocks_num_in_sector(sec_num);
  496. MfClassicBlock block_tmp = {};
  497. uint64_t key = 0;
  498. MfClassicSectorTrailer* sec_tr = mf_classic_get_sector_trailer_by_sector(data, sec_num);
  499. Crypto1 crypto = {};
  500. uint8_t blocks_read = 0;
  501. do {
  502. if(!key_a_found) break;
  503. FURI_LOG_D(TAG, "Try to read blocks with key A");
  504. key = nfc_util_bytes2num(sec_tr->key_a, sizeof(sec_tr->key_a));
  505. if(!mf_classic_auth(tx_rx, start_block, key, MfClassicKeyA, &crypto)) break;
  506. for(size_t i = start_block; i < start_block + total_blocks; i++) {
  507. if(!mf_classic_is_block_read(data, i)) {
  508. if(mf_classic_read_block(tx_rx, &crypto, i, &block_tmp)) {
  509. mf_classic_set_block_read(data, i, &block_tmp);
  510. blocks_read++;
  511. }
  512. } else {
  513. blocks_read++;
  514. }
  515. }
  516. FURI_LOG_D(TAG, "Read %d blocks out of %d", blocks_read, total_blocks);
  517. } while(false);
  518. do {
  519. if(blocks_read == total_blocks) break;
  520. if(!key_b_found) break;
  521. FURI_LOG_D(TAG, "Try to read blocks with key B");
  522. key = nfc_util_bytes2num(sec_tr->key_b, sizeof(sec_tr->key_b));
  523. furi_hal_nfc_sleep();
  524. if(!mf_classic_auth(tx_rx, start_block, key, MfClassicKeyB, &crypto)) break;
  525. for(size_t i = start_block; i < start_block + total_blocks; i++) {
  526. if(!mf_classic_is_block_read(data, i)) {
  527. if(mf_classic_read_block(tx_rx, &crypto, i, &block_tmp)) {
  528. mf_classic_set_block_read(data, i, &block_tmp);
  529. blocks_read++;
  530. }
  531. } else {
  532. blocks_read++;
  533. }
  534. }
  535. FURI_LOG_D(TAG, "Read %d blocks out of %d", blocks_read, total_blocks);
  536. } while(false);
  537. }
  538. static bool mf_classic_read_sector_with_reader(
  539. FuriHalNfcTxRxContext* tx_rx,
  540. Crypto1* crypto,
  541. MfClassicSectorReader* sector_reader,
  542. MfClassicSector* sector) {
  543. furi_assert(tx_rx);
  544. furi_assert(sector_reader);
  545. furi_assert(sector);
  546. uint64_t key;
  547. MfClassicKey key_type;
  548. uint8_t first_block;
  549. bool sector_read = false;
  550. furi_hal_nfc_sleep();
  551. do {
  552. // Activate card
  553. first_block = mf_classic_get_first_block_num_of_sector(sector_reader->sector_num);
  554. if(sector_reader->key_a != MF_CLASSIC_NO_KEY) {
  555. key = sector_reader->key_a;
  556. key_type = MfClassicKeyA;
  557. } else if(sector_reader->key_b != MF_CLASSIC_NO_KEY) {
  558. key = sector_reader->key_b;
  559. key_type = MfClassicKeyB;
  560. } else {
  561. break;
  562. }
  563. // Auth to first block in sector
  564. if(!mf_classic_auth(tx_rx, first_block, key, key_type, crypto)) {
  565. // Set key to MF_CLASSIC_NO_KEY to prevent further attempts
  566. if(key_type == MfClassicKeyA) {
  567. sector_reader->key_a = MF_CLASSIC_NO_KEY;
  568. } else {
  569. sector_reader->key_b = MF_CLASSIC_NO_KEY;
  570. }
  571. break;
  572. }
  573. sector->total_blocks = mf_classic_get_blocks_num_in_sector(sector_reader->sector_num);
  574. // Read blocks
  575. for(uint8_t i = 0; i < sector->total_blocks; i++) {
  576. mf_classic_read_block(tx_rx, crypto, first_block + i, &sector->block[i]);
  577. }
  578. // Save sector keys in last block
  579. if(sector_reader->key_a != MF_CLASSIC_NO_KEY) {
  580. nfc_util_num2bytes(
  581. sector_reader->key_a, 6, &sector->block[sector->total_blocks - 1].value[0]);
  582. }
  583. if(sector_reader->key_b != MF_CLASSIC_NO_KEY) {
  584. nfc_util_num2bytes(
  585. sector_reader->key_b, 6, &sector->block[sector->total_blocks - 1].value[10]);
  586. }
  587. sector_read = true;
  588. } while(false);
  589. return sector_read;
  590. }
  591. uint8_t mf_classic_read_card(
  592. FuriHalNfcTxRxContext* tx_rx,
  593. MfClassicReader* reader,
  594. MfClassicData* data) {
  595. furi_assert(tx_rx);
  596. furi_assert(reader);
  597. furi_assert(data);
  598. uint8_t sectors_read = 0;
  599. data->type = reader->type;
  600. data->key_a_mask = 0;
  601. data->key_b_mask = 0;
  602. MfClassicSector temp_sector = {};
  603. for(uint8_t i = 0; i < reader->sectors_to_read; i++) {
  604. if(mf_classic_read_sector_with_reader(
  605. tx_rx, &reader->crypto, &reader->sector_reader[i], &temp_sector)) {
  606. uint8_t first_block =
  607. mf_classic_get_first_block_num_of_sector(reader->sector_reader[i].sector_num);
  608. for(uint8_t j = 0; j < temp_sector.total_blocks; j++) {
  609. mf_classic_set_block_read(data, first_block + j, &temp_sector.block[j]);
  610. }
  611. if(reader->sector_reader[i].key_a != MF_CLASSIC_NO_KEY) {
  612. mf_classic_set_key_found(
  613. data,
  614. reader->sector_reader[i].sector_num,
  615. MfClassicKeyA,
  616. reader->sector_reader[i].key_a);
  617. }
  618. if(reader->sector_reader[i].key_b != MF_CLASSIC_NO_KEY) {
  619. mf_classic_set_key_found(
  620. data,
  621. reader->sector_reader[i].sector_num,
  622. MfClassicKeyB,
  623. reader->sector_reader[i].key_b);
  624. }
  625. sectors_read++;
  626. }
  627. }
  628. return sectors_read;
  629. }
  630. uint8_t mf_classic_update_card(FuriHalNfcTxRxContext* tx_rx, MfClassicData* data) {
  631. furi_assert(tx_rx);
  632. furi_assert(data);
  633. uint8_t total_sectors = mf_classic_get_total_sectors_num(data->type);
  634. for(size_t i = 0; i < total_sectors; i++) {
  635. mf_classic_read_sector(tx_rx, data, i);
  636. }
  637. uint8_t sectors_read = 0;
  638. uint8_t keys_found = 0;
  639. mf_classic_get_read_sectors_and_keys(data, &sectors_read, &keys_found);
  640. FURI_LOG_D(TAG, "Read %d sectors and %d keys", sectors_read, keys_found);
  641. return sectors_read;
  642. }
  643. bool mf_classic_emulator(MfClassicEmulator* emulator, FuriHalNfcTxRxContext* tx_rx) {
  644. furi_assert(emulator);
  645. furi_assert(tx_rx);
  646. bool command_processed = false;
  647. bool is_encrypted = false;
  648. uint8_t plain_data[MF_CLASSIC_MAX_DATA_SIZE];
  649. MfClassicKey access_key = MfClassicKeyA;
  650. // Read command
  651. while(!command_processed) { //-V654
  652. if(!is_encrypted) {
  653. crypto1_reset(&emulator->crypto);
  654. memcpy(plain_data, tx_rx->rx_data, tx_rx->rx_bits / 8);
  655. } else {
  656. if(!furi_hal_nfc_tx_rx(tx_rx, 300)) {
  657. FURI_LOG_D(
  658. TAG,
  659. "Error in tx rx. Tx :%d bits, Rx: %d bits",
  660. tx_rx->tx_bits,
  661. tx_rx->rx_bits);
  662. break;
  663. }
  664. crypto1_decrypt(&emulator->crypto, tx_rx->rx_data, tx_rx->rx_bits, plain_data);
  665. }
  666. if(plain_data[0] == 0x50 && plain_data[1] == 0x00) {
  667. FURI_LOG_T(TAG, "Halt received");
  668. furi_hal_nfc_listen_sleep();
  669. command_processed = true;
  670. break;
  671. } else if(plain_data[0] == 0x60 || plain_data[0] == 0x61) {
  672. uint8_t block = plain_data[1];
  673. uint64_t key = 0;
  674. uint8_t sector_trailer_block = mf_classic_get_sector_trailer_num_by_block(block);
  675. MfClassicSectorTrailer* sector_trailer =
  676. (MfClassicSectorTrailer*)emulator->data.block[sector_trailer_block].value;
  677. if(plain_data[0] == 0x60) {
  678. key = nfc_util_bytes2num(sector_trailer->key_a, 6);
  679. access_key = MfClassicKeyA;
  680. } else {
  681. key = nfc_util_bytes2num(sector_trailer->key_b, 6);
  682. access_key = MfClassicKeyB;
  683. }
  684. uint32_t nonce = prng_successor(DWT->CYCCNT, 32) ^ 0xAA;
  685. uint8_t nt[4];
  686. uint8_t nt_keystream[4];
  687. nfc_util_num2bytes(nonce, 4, nt);
  688. nfc_util_num2bytes(nonce ^ emulator->cuid, 4, nt_keystream);
  689. crypto1_init(&emulator->crypto, key);
  690. if(!is_encrypted) {
  691. crypto1_word(&emulator->crypto, emulator->cuid ^ nonce, 0);
  692. memcpy(tx_rx->tx_data, nt, sizeof(nt));
  693. tx_rx->tx_parity[0] = 0;
  694. for(size_t i = 0; i < sizeof(nt); i++) {
  695. tx_rx->tx_parity[0] |= nfc_util_odd_parity8(nt[i]) << (7 - i);
  696. }
  697. tx_rx->tx_bits = sizeof(nt) * 8;
  698. tx_rx->tx_rx_type = FuriHalNfcTxRxTransparent;
  699. } else {
  700. crypto1_encrypt(
  701. &emulator->crypto,
  702. nt_keystream,
  703. nt,
  704. sizeof(nt) * 8,
  705. tx_rx->tx_data,
  706. tx_rx->tx_parity);
  707. tx_rx->tx_bits = sizeof(nt) * 8;
  708. tx_rx->tx_rx_type = FuriHalNfcTxRxTransparent;
  709. }
  710. if(!furi_hal_nfc_tx_rx(tx_rx, 500)) {
  711. FURI_LOG_E(TAG, "Error in NT exchange");
  712. command_processed = true;
  713. break;
  714. }
  715. if(tx_rx->rx_bits != 64) {
  716. FURI_LOG_W(TAG, "Incorrect nr + ar");
  717. command_processed = true;
  718. break;
  719. }
  720. uint32_t nr = nfc_util_bytes2num(tx_rx->rx_data, 4);
  721. uint32_t ar = nfc_util_bytes2num(&tx_rx->rx_data[4], 4);
  722. FURI_LOG_D(
  723. TAG,
  724. "%08lx key%c block %d nt/nr/ar: %08lx %08lx %08lx",
  725. emulator->cuid,
  726. access_key == MfClassicKeyA ? 'A' : 'B',
  727. sector_trailer_block,
  728. nonce,
  729. nr,
  730. ar);
  731. crypto1_word(&emulator->crypto, nr, 1);
  732. uint32_t cardRr = ar ^ crypto1_word(&emulator->crypto, 0, 0);
  733. if(cardRr != prng_successor(nonce, 64)) {
  734. FURI_LOG_T(TAG, "Wrong AUTH! %08lX != %08lX", cardRr, prng_successor(nonce, 64));
  735. // Don't send NACK, as the tag doesn't send it
  736. command_processed = true;
  737. break;
  738. }
  739. uint32_t ans = prng_successor(nonce, 96);
  740. uint8_t responce[4] = {};
  741. nfc_util_num2bytes(ans, 4, responce);
  742. crypto1_encrypt(
  743. &emulator->crypto,
  744. NULL,
  745. responce,
  746. sizeof(responce) * 8,
  747. tx_rx->tx_data,
  748. tx_rx->tx_parity);
  749. tx_rx->tx_bits = sizeof(responce) * 8;
  750. tx_rx->tx_rx_type = FuriHalNfcTxRxTransparent;
  751. is_encrypted = true;
  752. } else if(is_encrypted && plain_data[0] == 0x30) {
  753. uint8_t block = plain_data[1];
  754. uint8_t block_data[18] = {};
  755. memcpy(block_data, emulator->data.block[block].value, MF_CLASSIC_BLOCK_SIZE);
  756. if(mf_classic_is_sector_trailer(block)) {
  757. if(!mf_classic_is_allowed_access(
  758. emulator, block, access_key, MfClassicActionKeyARead)) {
  759. memset(block_data, 0, 6); //-V1086
  760. }
  761. if(!mf_classic_is_allowed_access(
  762. emulator, block, access_key, MfClassicActionKeyBRead)) {
  763. memset(&block_data[10], 0, 6);
  764. }
  765. if(!mf_classic_is_allowed_access(
  766. emulator, block, access_key, MfClassicActionACRead)) {
  767. memset(&block_data[6], 0, 4);
  768. }
  769. } else if(!mf_classic_is_allowed_access(
  770. emulator, block, access_key, MfClassicActionDataRead)) {
  771. // Send NACK
  772. uint8_t nack = 0x04;
  773. crypto1_encrypt(
  774. &emulator->crypto, NULL, &nack, 4, tx_rx->tx_data, tx_rx->tx_parity);
  775. tx_rx->tx_rx_type = FuriHalNfcTxRxTransparent;
  776. tx_rx->tx_bits = 4;
  777. furi_hal_nfc_tx_rx(tx_rx, 300);
  778. break;
  779. }
  780. nfca_append_crc16(block_data, 16);
  781. crypto1_encrypt(
  782. &emulator->crypto,
  783. NULL,
  784. block_data,
  785. sizeof(block_data) * 8,
  786. tx_rx->tx_data,
  787. tx_rx->tx_parity);
  788. tx_rx->tx_bits = 18 * 8;
  789. tx_rx->tx_rx_type = FuriHalNfcTxRxTransparent;
  790. } else if(is_encrypted && plain_data[0] == 0xA0) {
  791. uint8_t block = plain_data[1];
  792. if(block > mf_classic_get_total_block_num(emulator->data.type)) {
  793. break;
  794. }
  795. // Send ACK
  796. uint8_t ack = 0x0A;
  797. crypto1_encrypt(&emulator->crypto, NULL, &ack, 4, tx_rx->tx_data, tx_rx->tx_parity);
  798. tx_rx->tx_rx_type = FuriHalNfcTxRxTransparent;
  799. tx_rx->tx_bits = 4;
  800. if(!furi_hal_nfc_tx_rx(tx_rx, 300)) break;
  801. if(tx_rx->rx_bits != 18 * 8) break;
  802. crypto1_decrypt(&emulator->crypto, tx_rx->rx_data, tx_rx->rx_bits, plain_data);
  803. uint8_t block_data[16] = {};
  804. memcpy(block_data, emulator->data.block[block].value, MF_CLASSIC_BLOCK_SIZE);
  805. if(mf_classic_is_sector_trailer(block)) {
  806. if(mf_classic_is_allowed_access(
  807. emulator, block, access_key, MfClassicActionKeyAWrite)) {
  808. memcpy(block_data, plain_data, 6); //-V1086
  809. }
  810. if(mf_classic_is_allowed_access(
  811. emulator, block, access_key, MfClassicActionKeyBWrite)) {
  812. memcpy(&block_data[10], &plain_data[10], 6);
  813. }
  814. if(mf_classic_is_allowed_access(
  815. emulator, block, access_key, MfClassicActionACWrite)) {
  816. memcpy(&block_data[6], &plain_data[6], 4);
  817. }
  818. } else {
  819. if(mf_classic_is_allowed_access(
  820. emulator, block, access_key, MfClassicActionDataWrite)) {
  821. memcpy(block_data, plain_data, MF_CLASSIC_BLOCK_SIZE);
  822. }
  823. }
  824. if(memcmp(block_data, emulator->data.block[block].value, MF_CLASSIC_BLOCK_SIZE) != 0) {
  825. memcpy(emulator->data.block[block].value, block_data, MF_CLASSIC_BLOCK_SIZE);
  826. emulator->data_changed = true;
  827. }
  828. // Send ACK
  829. ack = 0x0A;
  830. crypto1_encrypt(&emulator->crypto, NULL, &ack, 4, tx_rx->tx_data, tx_rx->tx_parity);
  831. tx_rx->tx_rx_type = FuriHalNfcTxRxTransparent;
  832. tx_rx->tx_bits = 4;
  833. } else {
  834. // Unknown command
  835. break;
  836. }
  837. }
  838. if(!command_processed) {
  839. // Send NACK
  840. uint8_t nack = 0x04;
  841. if(is_encrypted) {
  842. crypto1_encrypt(&emulator->crypto, NULL, &nack, 4, tx_rx->tx_data, tx_rx->tx_parity);
  843. } else {
  844. tx_rx->tx_data[0] = nack;
  845. }
  846. tx_rx->tx_rx_type = FuriHalNfcTxRxTransparent;
  847. tx_rx->tx_bits = 4;
  848. furi_hal_nfc_tx_rx(tx_rx, 300);
  849. }
  850. return true;
  851. }
  852. bool mf_classic_write_block(
  853. FuriHalNfcTxRxContext* tx_rx,
  854. MfClassicBlock* src_block,
  855. uint8_t block_num,
  856. MfClassicKey key_type,
  857. uint64_t key) {
  858. furi_assert(tx_rx);
  859. furi_assert(src_block);
  860. Crypto1 crypto = {};
  861. uint8_t plain_data[18] = {};
  862. uint8_t resp = 0;
  863. bool write_success = false;
  864. do {
  865. furi_hal_nfc_sleep();
  866. if(!mf_classic_auth(tx_rx, block_num, key, key_type, &crypto)) {
  867. FURI_LOG_D(TAG, "Auth fail");
  868. break;
  869. }
  870. // Send write command
  871. plain_data[0] = MF_CLASSIC_WRITE_BLOCK_CMD;
  872. plain_data[1] = block_num;
  873. nfca_append_crc16(plain_data, 2);
  874. crypto1_encrypt(&crypto, NULL, plain_data, 4 * 8, tx_rx->tx_data, tx_rx->tx_parity);
  875. tx_rx->tx_bits = 4 * 8;
  876. tx_rx->tx_rx_type = FuriHalNfcTxRxTypeRaw;
  877. if(furi_hal_nfc_tx_rx(tx_rx, 50)) {
  878. if(tx_rx->rx_bits == 4) {
  879. crypto1_decrypt(&crypto, tx_rx->rx_data, 4, &resp);
  880. if(resp != 0x0A) {
  881. FURI_LOG_D(TAG, "NACK received on write cmd: %02X", resp);
  882. break;
  883. }
  884. } else {
  885. FURI_LOG_D(TAG, "Not ACK received");
  886. break;
  887. }
  888. } else {
  889. FURI_LOG_D(TAG, "Failed to send write cmd");
  890. break;
  891. }
  892. // Send data
  893. memcpy(plain_data, src_block->value, MF_CLASSIC_BLOCK_SIZE);
  894. nfca_append_crc16(plain_data, MF_CLASSIC_BLOCK_SIZE);
  895. crypto1_encrypt(
  896. &crypto,
  897. NULL,
  898. plain_data,
  899. (MF_CLASSIC_BLOCK_SIZE + 2) * 8,
  900. tx_rx->tx_data,
  901. tx_rx->tx_parity);
  902. tx_rx->tx_bits = (MF_CLASSIC_BLOCK_SIZE + 2) * 8;
  903. tx_rx->tx_rx_type = FuriHalNfcTxRxTypeRaw;
  904. if(furi_hal_nfc_tx_rx(tx_rx, 50)) {
  905. if(tx_rx->rx_bits == 4) {
  906. crypto1_decrypt(&crypto, tx_rx->rx_data, 4, &resp);
  907. if(resp != 0x0A) {
  908. FURI_LOG_D(TAG, "NACK received on sending data");
  909. break;
  910. }
  911. } else {
  912. FURI_LOG_D(TAG, "Not ACK received");
  913. break;
  914. }
  915. } else {
  916. FURI_LOG_D(TAG, "Failed to send data");
  917. break;
  918. }
  919. write_success = true;
  920. // Send Halt
  921. plain_data[0] = 0x50;
  922. plain_data[1] = 0x00;
  923. nfca_append_crc16(plain_data, 2);
  924. crypto1_encrypt(&crypto, NULL, plain_data, 2 * 8, tx_rx->tx_data, tx_rx->tx_parity);
  925. tx_rx->tx_bits = 2 * 8;
  926. tx_rx->tx_rx_type = FuriHalNfcTxRxTypeRaw;
  927. // No response is expected
  928. furi_hal_nfc_tx_rx(tx_rx, 50);
  929. } while(false);
  930. return write_success;
  931. }
  932. bool mf_classic_write_sector(
  933. FuriHalNfcTxRxContext* tx_rx,
  934. MfClassicData* dest_data,
  935. MfClassicData* src_data,
  936. uint8_t sec_num) {
  937. furi_assert(tx_rx);
  938. furi_assert(dest_data);
  939. furi_assert(src_data);
  940. uint8_t first_block = mf_classic_get_first_block_num_of_sector(sec_num);
  941. uint8_t total_blocks = mf_classic_get_blocks_num_in_sector(sec_num);
  942. MfClassicSectorTrailer* sec_tr = mf_classic_get_sector_trailer_by_sector(dest_data, sec_num);
  943. bool key_a_found = mf_classic_is_key_found(dest_data, sec_num, MfClassicKeyA);
  944. bool key_b_found = mf_classic_is_key_found(dest_data, sec_num, MfClassicKeyB);
  945. bool write_success = true;
  946. for(size_t i = first_block; i < first_block + total_blocks; i++) {
  947. // Compare blocks
  948. if(memcmp(dest_data->block[i].value, src_data->block[i].value, MF_CLASSIC_BLOCK_SIZE) !=
  949. 0) {
  950. bool key_a_write_allowed = mf_classic_is_allowed_access_data_block(
  951. dest_data, i, MfClassicKeyA, MfClassicActionDataWrite);
  952. bool key_b_write_allowed = mf_classic_is_allowed_access_data_block(
  953. dest_data, i, MfClassicKeyB, MfClassicActionDataWrite);
  954. if(key_a_found && key_a_write_allowed) {
  955. FURI_LOG_I(TAG, "Writing block %d with key A", i);
  956. uint64_t key = nfc_util_bytes2num(sec_tr->key_a, 6);
  957. if(!mf_classic_write_block(tx_rx, &src_data->block[i], i, MfClassicKeyA, key)) {
  958. FURI_LOG_E(TAG, "Failed to write block %d", i);
  959. write_success = false;
  960. break;
  961. }
  962. } else if(key_b_found && key_b_write_allowed) {
  963. FURI_LOG_I(TAG, "Writing block %d with key A", i);
  964. uint64_t key = nfc_util_bytes2num(sec_tr->key_b, 6);
  965. if(!mf_classic_write_block(tx_rx, &src_data->block[i], i, MfClassicKeyB, key)) {
  966. FURI_LOG_E(TAG, "Failed to write block %d", i);
  967. write_success = false;
  968. break;
  969. }
  970. } else {
  971. FURI_LOG_E(TAG, "Failed to find key with write access");
  972. write_success = false;
  973. break;
  974. }
  975. } else {
  976. FURI_LOG_D(TAG, "Blocks %d are equal", i);
  977. }
  978. }
  979. return write_success;
  980. }