nfc_test.c 19 KB

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  1. #include <furi.h>
  2. #include <furi_hal.h>
  3. #include <storage/storage.h>
  4. #include <lib/flipper_format/flipper_format.h>
  5. #include <lib/nfc/protocols/nfca.h>
  6. #include <lib/nfc/helpers/mf_classic_dict.h>
  7. #include <lib/digital_signal/digital_signal.h>
  8. #include <lib/nfc/nfc_device.h>
  9. #include <lib/nfc/helpers/nfc_generators.h>
  10. #include <lib/flipper_format/flipper_format_i.h>
  11. #include <lib/toolbox/stream/file_stream.h>
  12. #include "../minunit.h"
  13. #define TAG "NfcTest"
  14. #define NFC_TEST_RESOURCES_DIR EXT_PATH("unit_tests/nfc/")
  15. #define NFC_TEST_SIGNAL_SHORT_FILE "nfc_nfca_signal_short.nfc"
  16. #define NFC_TEST_SIGNAL_LONG_FILE "nfc_nfca_signal_long.nfc"
  17. #define NFC_TEST_DICT_PATH EXT_PATH("unit_tests/mf_classic_dict.nfc")
  18. #define NFC_TEST_NFC_DEV_PATH EXT_PATH("unit_tests/nfc/nfc_dev_test.nfc")
  19. static const char* nfc_test_file_type = "Flipper NFC test";
  20. static const uint32_t nfc_test_file_version = 1;
  21. #define NFC_TEST_DATA_MAX_LEN 18
  22. #define NFC_TETS_TIMINGS_MAX_LEN 1350
  23. typedef struct {
  24. Storage* storage;
  25. NfcaSignal* signal;
  26. uint32_t test_data_len;
  27. uint8_t test_data[NFC_TEST_DATA_MAX_LEN];
  28. uint32_t test_timings_len;
  29. uint32_t test_timings[NFC_TETS_TIMINGS_MAX_LEN];
  30. } NfcTest;
  31. static NfcTest* nfc_test = NULL;
  32. static void nfc_test_alloc() {
  33. nfc_test = malloc(sizeof(NfcTest));
  34. nfc_test->signal = nfca_signal_alloc();
  35. nfc_test->storage = furi_record_open(RECORD_STORAGE);
  36. }
  37. static void nfc_test_free() {
  38. furi_assert(nfc_test);
  39. furi_record_close(RECORD_STORAGE);
  40. nfca_signal_free(nfc_test->signal);
  41. free(nfc_test);
  42. nfc_test = NULL;
  43. }
  44. static bool nfc_test_read_signal_from_file(const char* file_name) {
  45. bool success = false;
  46. FlipperFormat* file = flipper_format_file_alloc(nfc_test->storage);
  47. FuriString* file_type;
  48. file_type = furi_string_alloc();
  49. uint32_t file_version = 0;
  50. do {
  51. if(!flipper_format_file_open_existing(file, file_name)) break;
  52. if(!flipper_format_read_header(file, file_type, &file_version)) break;
  53. if(furi_string_cmp_str(file_type, nfc_test_file_type) ||
  54. file_version != nfc_test_file_version)
  55. break;
  56. if(!flipper_format_read_uint32(file, "Data length", &nfc_test->test_data_len, 1)) break;
  57. if(nfc_test->test_data_len > NFC_TEST_DATA_MAX_LEN) break;
  58. if(!flipper_format_read_hex(
  59. file, "Plain data", nfc_test->test_data, nfc_test->test_data_len))
  60. break;
  61. if(!flipper_format_read_uint32(file, "Timings length", &nfc_test->test_timings_len, 1))
  62. break;
  63. if(nfc_test->test_timings_len > NFC_TETS_TIMINGS_MAX_LEN) break;
  64. if(!flipper_format_read_uint32(
  65. file, "Timings", nfc_test->test_timings, nfc_test->test_timings_len))
  66. break;
  67. success = true;
  68. } while(false);
  69. furi_string_free(file_type);
  70. flipper_format_free(file);
  71. return success;
  72. }
  73. static bool nfc_test_digital_signal_test_encode(
  74. const char* file_name,
  75. uint32_t encode_max_time,
  76. uint32_t timing_tolerance,
  77. uint32_t timings_sum_tolerance) {
  78. furi_assert(nfc_test);
  79. bool success = false;
  80. uint32_t time = 0;
  81. uint32_t dut_timings_sum = 0;
  82. uint32_t ref_timings_sum = 0;
  83. uint8_t parity[10] = {};
  84. do {
  85. // Read test data
  86. if(!nfc_test_read_signal_from_file(file_name)) {
  87. FURI_LOG_E(TAG, "Failed to read signal from file");
  88. break;
  89. }
  90. // Encode signal
  91. FURI_CRITICAL_ENTER();
  92. time = DWT->CYCCNT;
  93. nfca_signal_encode(
  94. nfc_test->signal, nfc_test->test_data, nfc_test->test_data_len * 8, parity);
  95. digital_signal_prepare_arr(nfc_test->signal->tx_signal);
  96. time = (DWT->CYCCNT - time) / furi_hal_cortex_instructions_per_microsecond();
  97. FURI_CRITICAL_EXIT();
  98. // Check timings
  99. if(time > encode_max_time) {
  100. FURI_LOG_E(
  101. TAG, "Encoding time: %ld us while accepted value: %ld us", time, encode_max_time);
  102. break;
  103. }
  104. // Check data
  105. if(nfc_test->signal->tx_signal->edge_cnt != nfc_test->test_timings_len) {
  106. FURI_LOG_E(TAG, "Not equal timings buffers length");
  107. break;
  108. }
  109. uint32_t timings_diff = 0;
  110. uint32_t* ref = nfc_test->test_timings;
  111. uint32_t* dut = nfc_test->signal->tx_signal->reload_reg_buff;
  112. bool timing_check_success = true;
  113. for(size_t i = 0; i < nfc_test->test_timings_len; i++) {
  114. timings_diff = dut[i] > ref[i] ? dut[i] - ref[i] : ref[i] - dut[i];
  115. dut_timings_sum += dut[i];
  116. ref_timings_sum += ref[i];
  117. if(timings_diff > timing_tolerance) {
  118. FURI_LOG_E(
  119. TAG, "Too big difference in %d timings. Ref: %ld, DUT: %ld", i, ref[i], dut[i]);
  120. timing_check_success = false;
  121. break;
  122. }
  123. }
  124. if(!timing_check_success) break;
  125. uint32_t sum_diff = dut_timings_sum > ref_timings_sum ? dut_timings_sum - ref_timings_sum :
  126. ref_timings_sum - dut_timings_sum;
  127. if(sum_diff > timings_sum_tolerance) {
  128. FURI_LOG_E(
  129. TAG,
  130. "Too big difference in timings sum. Ref: %ld, DUT: %ld",
  131. ref_timings_sum,
  132. dut_timings_sum);
  133. break;
  134. }
  135. FURI_LOG_I(TAG, "Encoding time: %ld us. Acceptable time: %ld us", time, encode_max_time);
  136. FURI_LOG_I(
  137. TAG,
  138. "Timings sum difference: %ld [1/64MHZ]. Acceptable difference: %ld [1/64MHz]",
  139. sum_diff,
  140. timings_sum_tolerance);
  141. success = true;
  142. } while(false);
  143. return success;
  144. }
  145. MU_TEST(nfc_digital_signal_test) {
  146. mu_assert(
  147. nfc_test_digital_signal_test_encode(
  148. NFC_TEST_RESOURCES_DIR NFC_TEST_SIGNAL_SHORT_FILE, 500, 1, 37),
  149. "NFC short digital signal test failed\r\n");
  150. mu_assert(
  151. nfc_test_digital_signal_test_encode(
  152. NFC_TEST_RESOURCES_DIR NFC_TEST_SIGNAL_LONG_FILE, 2000, 1, 37),
  153. "NFC long digital signal test failed\r\n");
  154. }
  155. MU_TEST(mf_classic_dict_test) {
  156. MfClassicDict* instance = NULL;
  157. uint64_t key = 0;
  158. FuriString* temp_str;
  159. temp_str = furi_string_alloc();
  160. instance = mf_classic_dict_alloc(MfClassicDictTypeUnitTest);
  161. mu_assert(instance != NULL, "mf_classic_dict_alloc\r\n");
  162. mu_assert(
  163. mf_classic_dict_get_total_keys(instance) == 0,
  164. "mf_classic_dict_get_total_keys == 0 assert failed\r\n");
  165. furi_string_set(temp_str, "2196FAD8115B");
  166. mu_assert(
  167. mf_classic_dict_add_key_str(instance, temp_str),
  168. "mf_classic_dict_add_key == true assert failed\r\n");
  169. mu_assert(
  170. mf_classic_dict_get_total_keys(instance) == 1,
  171. "mf_classic_dict_get_total_keys == 1 assert failed\r\n");
  172. mu_assert(mf_classic_dict_rewind(instance), "mf_classic_dict_rewind == 1 assert failed\r\n");
  173. mu_assert(
  174. mf_classic_dict_get_key_at_index_str(instance, temp_str, 0),
  175. "mf_classic_dict_get_key_at_index_str == true assert failed\r\n");
  176. mu_assert(
  177. furi_string_cmp(temp_str, "2196FAD8115B") == 0,
  178. "string_cmp(temp_str, \"2196FAD8115B\") == 0 assert failed\r\n");
  179. mu_assert(mf_classic_dict_rewind(instance), "mf_classic_dict_rewind == 1 assert failed\r\n");
  180. mu_assert(
  181. mf_classic_dict_get_key_at_index(instance, &key, 0),
  182. "mf_classic_dict_get_key_at_index == true assert failed\r\n");
  183. mu_assert(key == 0x2196FAD8115B, "key == 0x2196FAD8115B assert failed\r\n");
  184. mu_assert(mf_classic_dict_rewind(instance), "mf_classic_dict_rewind == 1 assert failed\r\n");
  185. mu_assert(
  186. mf_classic_dict_delete_index(instance, 0),
  187. "mf_classic_dict_delete_index == true assert failed\r\n");
  188. mf_classic_dict_free(instance);
  189. furi_string_free(temp_str);
  190. }
  191. MU_TEST(mf_classic_dict_load_test) {
  192. Storage* storage = furi_record_open(RECORD_STORAGE);
  193. mu_assert(storage != NULL, "storage != NULL assert failed\r\n");
  194. // Delete unit test dict file if exists
  195. if(storage_file_exists(storage, NFC_TEST_DICT_PATH)) {
  196. mu_assert(
  197. storage_simply_remove(storage, NFC_TEST_DICT_PATH),
  198. "remove == true assert failed\r\n");
  199. }
  200. // Create unit test dict file
  201. Stream* file_stream = file_stream_alloc(storage);
  202. mu_assert(file_stream != NULL, "file_stream != NULL assert failed\r\n");
  203. mu_assert(
  204. file_stream_open(file_stream, NFC_TEST_DICT_PATH, FSAM_WRITE, FSOM_OPEN_ALWAYS),
  205. "file_stream_open == true assert failed\r\n");
  206. // Write unit test dict file
  207. char key_str[] = "a0a1a2a3a4a5";
  208. mu_assert(
  209. stream_write_cstring(file_stream, key_str) == strlen(key_str),
  210. "write == true assert failed\r\n");
  211. // Close unit test dict file
  212. mu_assert(file_stream_close(file_stream), "file_stream_close == true assert failed\r\n");
  213. // Load unit test dict file
  214. MfClassicDict* instance = NULL;
  215. instance = mf_classic_dict_alloc(MfClassicDictTypeUnitTest);
  216. mu_assert(instance != NULL, "mf_classic_dict_alloc\r\n");
  217. uint32_t total_keys = mf_classic_dict_get_total_keys(instance);
  218. mu_assert(total_keys == 1, "total_keys == 1 assert failed\r\n");
  219. // Read key
  220. uint64_t key_ref = 0xa0a1a2a3a4a5;
  221. uint64_t key_dut = 0;
  222. FuriString* temp_str = furi_string_alloc();
  223. mu_assert(
  224. mf_classic_dict_get_next_key_str(instance, temp_str),
  225. "get_next_key_str == true assert failed\r\n");
  226. mu_assert(furi_string_cmp_str(temp_str, key_str) == 0, "invalid key loaded\r\n");
  227. mu_assert(mf_classic_dict_rewind(instance), "mf_classic_dict_rewind == 1 assert failed\r\n");
  228. mu_assert(
  229. mf_classic_dict_get_next_key(instance, &key_dut),
  230. "get_next_key == true assert failed\r\n");
  231. mu_assert(key_dut == key_ref, "invalid key loaded\r\n");
  232. furi_string_free(temp_str);
  233. mf_classic_dict_free(instance);
  234. // Check that MfClassicDict added new line to the end of the file
  235. mu_assert(
  236. file_stream_open(file_stream, NFC_TEST_DICT_PATH, FSAM_READ, FSOM_OPEN_EXISTING),
  237. "file_stream_open == true assert failed\r\n");
  238. mu_assert(stream_seek(file_stream, -1, StreamOffsetFromEnd), "seek == true assert failed\r\n");
  239. uint8_t last_char = 0;
  240. mu_assert(stream_read(file_stream, &last_char, 1) == 1, "read == true assert failed\r\n");
  241. mu_assert(last_char == '\n', "last_char == '\\n' assert failed\r\n");
  242. mu_assert(file_stream_close(file_stream), "file_stream_close == true assert failed\r\n");
  243. // Delete unit test dict file
  244. mu_assert(
  245. storage_simply_remove(storage, NFC_TEST_DICT_PATH), "remove == true assert failed\r\n");
  246. stream_free(file_stream);
  247. furi_record_close(RECORD_STORAGE);
  248. }
  249. MU_TEST(nfca_file_test) {
  250. NfcDevice* nfc = nfc_device_alloc();
  251. mu_assert(nfc != NULL, "nfc_device_data != NULL assert failed\r\n");
  252. nfc->format = NfcDeviceSaveFormatUid;
  253. // Fill the UID, sak, ATQA and type
  254. uint8_t uid[7] = {0x04, 0x01, 0x23, 0x45, 0x67, 0x89, 0x00};
  255. memcpy(nfc->dev_data.nfc_data.uid, uid, 7);
  256. nfc->dev_data.nfc_data.uid_len = 7;
  257. nfc->dev_data.nfc_data.sak = 0x08;
  258. nfc->dev_data.nfc_data.atqa[0] = 0x00;
  259. nfc->dev_data.nfc_data.atqa[1] = 0x04;
  260. nfc->dev_data.nfc_data.type = FuriHalNfcTypeA;
  261. // Save the NFC device data to the file
  262. mu_assert(
  263. nfc_device_save(nfc, NFC_TEST_NFC_DEV_PATH), "nfc_device_save == true assert failed\r\n");
  264. nfc_device_free(nfc);
  265. // Load the NFC device data from the file
  266. NfcDevice* nfc_validate = nfc_device_alloc();
  267. mu_assert(
  268. nfc_device_load(nfc_validate, NFC_TEST_NFC_DEV_PATH, true),
  269. "nfc_device_load == true assert failed\r\n");
  270. // Check the UID, sak, ATQA and type
  271. mu_assert(memcmp(nfc_validate->dev_data.nfc_data.uid, uid, 7) == 0, "uid assert failed\r\n");
  272. mu_assert(nfc_validate->dev_data.nfc_data.sak == 0x08, "sak == 0x08 assert failed\r\n");
  273. mu_assert(
  274. nfc_validate->dev_data.nfc_data.atqa[0] == 0x00, "atqa[0] == 0x00 assert failed\r\n");
  275. mu_assert(
  276. nfc_validate->dev_data.nfc_data.atqa[1] == 0x04, "atqa[1] == 0x04 assert failed\r\n");
  277. mu_assert(
  278. nfc_validate->dev_data.nfc_data.type == FuriHalNfcTypeA,
  279. "type == FuriHalNfcTypeA assert failed\r\n");
  280. nfc_device_free(nfc_validate);
  281. }
  282. static void mf_classic_generator_test(uint8_t uid_len, MfClassicType type) {
  283. NfcDevice* nfc_dev = nfc_device_alloc();
  284. mu_assert(nfc_dev != NULL, "nfc_device_data != NULL assert failed\r\n");
  285. nfc_dev->format = NfcDeviceSaveFormatMifareClassic;
  286. // Create a test file
  287. nfc_generate_mf_classic(&nfc_dev->dev_data, uid_len, type);
  288. // Get the uid from generated MFC
  289. uint8_t uid[7] = {0};
  290. memcpy(uid, nfc_dev->dev_data.nfc_data.uid, uid_len);
  291. uint8_t sak = nfc_dev->dev_data.nfc_data.sak;
  292. uint8_t atqa[2] = {};
  293. memcpy(atqa, nfc_dev->dev_data.nfc_data.atqa, 2);
  294. MfClassicData* mf_data = &nfc_dev->dev_data.mf_classic_data;
  295. // Check the manufacturer block (should be uid[uid_len] + BCC (for 4byte only) + SAK + ATQA0 + ATQA1 + 0xFF[rest])
  296. uint8_t manufacturer_block[16] = {0};
  297. memcpy(manufacturer_block, nfc_dev->dev_data.mf_classic_data.block[0].value, 16);
  298. mu_assert(
  299. memcmp(manufacturer_block, uid, uid_len) == 0,
  300. "manufacturer_block uid doesn't match the file\r\n");
  301. uint8_t position = 0;
  302. if(uid_len == 4) {
  303. position = uid_len;
  304. uint8_t bcc = 0;
  305. for(int i = 0; i < uid_len; i++) {
  306. bcc ^= uid[i];
  307. }
  308. mu_assert(manufacturer_block[position] == bcc, "manufacturer_block bcc assert failed\r\n");
  309. } else {
  310. position = uid_len - 1;
  311. }
  312. mu_assert(manufacturer_block[position + 1] == sak, "manufacturer_block sak assert failed\r\n");
  313. mu_assert(
  314. manufacturer_block[position + 2] == atqa[0], "manufacturer_block atqa0 assert failed\r\n");
  315. mu_assert(
  316. manufacturer_block[position + 3] == atqa[1], "manufacturer_block atqa1 assert failed\r\n");
  317. for(uint8_t i = position + 4; i < 16; i++) {
  318. mu_assert(
  319. manufacturer_block[i] == 0xFF, "manufacturer_block[i] == 0xFF assert failed\r\n");
  320. }
  321. // Reference sector trailers (should be 0xFF[6] + 0xFF + 0x07 + 0x80 + 0x69 + 0xFF[6])
  322. uint8_t sector_trailer[16] = {
  323. 0xFF,
  324. 0xFF,
  325. 0xFF,
  326. 0xFF,
  327. 0xFF,
  328. 0xFF,
  329. 0xFF,
  330. 0x07,
  331. 0x80,
  332. 0x69,
  333. 0xFF,
  334. 0xFF,
  335. 0xFF,
  336. 0xFF,
  337. 0xFF,
  338. 0xFF};
  339. // Reference block data
  340. uint8_t block_data[16] = {};
  341. memset(block_data, 0xff, sizeof(block_data));
  342. uint16_t total_blocks = mf_classic_get_total_block_num(type);
  343. for(size_t i = 1; i < total_blocks; i++) {
  344. if(mf_classic_is_sector_trailer(i)) {
  345. mu_assert(
  346. memcmp(mf_data->block[i].value, sector_trailer, 16) == 0,
  347. "Failed sector trailer compare");
  348. } else {
  349. mu_assert(memcmp(mf_data->block[i].value, block_data, 16) == 0, "Failed data compare");
  350. }
  351. }
  352. // Save the NFC device data to the file
  353. mu_assert(
  354. nfc_device_save(nfc_dev, NFC_TEST_NFC_DEV_PATH),
  355. "nfc_device_save == true assert failed\r\n");
  356. // Verify that key cache is saved
  357. FuriString* key_cache_name = furi_string_alloc();
  358. furi_string_set_str(key_cache_name, "/ext/nfc/.cache/");
  359. for(size_t i = 0; i < uid_len; i++) {
  360. furi_string_cat_printf(key_cache_name, "%02X", uid[i]);
  361. }
  362. furi_string_cat_printf(key_cache_name, ".keys");
  363. mu_assert(
  364. storage_common_stat(nfc_dev->storage, furi_string_get_cstr(key_cache_name), NULL) ==
  365. FSE_OK,
  366. "Key cache file save failed");
  367. nfc_device_free(nfc_dev);
  368. // Load the NFC device data from the file
  369. NfcDevice* nfc_validate = nfc_device_alloc();
  370. mu_assert(nfc_validate, "Nfc device alloc assert");
  371. mu_assert(
  372. nfc_device_load(nfc_validate, NFC_TEST_NFC_DEV_PATH, false),
  373. "nfc_device_load == true assert failed\r\n");
  374. // Check the UID, sak, ATQA and type
  375. mu_assert(
  376. memcmp(nfc_validate->dev_data.nfc_data.uid, uid, uid_len) == 0,
  377. "uid compare assert failed\r\n");
  378. mu_assert(nfc_validate->dev_data.nfc_data.sak == sak, "sak compare assert failed\r\n");
  379. mu_assert(
  380. memcmp(nfc_validate->dev_data.nfc_data.atqa, atqa, 2) == 0,
  381. "atqa compare assert failed\r\n");
  382. mu_assert(
  383. nfc_validate->dev_data.nfc_data.type == FuriHalNfcTypeA,
  384. "type == FuriHalNfcTypeA assert failed\r\n");
  385. // Check the manufacturer block
  386. mu_assert(
  387. memcmp(nfc_validate->dev_data.mf_classic_data.block[0].value, manufacturer_block, 16) == 0,
  388. "manufacturer_block assert failed\r\n");
  389. // Check other blocks
  390. for(size_t i = 1; i < total_blocks; i++) {
  391. if(mf_classic_is_sector_trailer(i)) {
  392. mu_assert(
  393. memcmp(mf_data->block[i].value, sector_trailer, 16) == 0,
  394. "Failed sector trailer compare");
  395. } else {
  396. mu_assert(memcmp(mf_data->block[i].value, block_data, 16) == 0, "Failed data compare");
  397. }
  398. }
  399. nfc_device_free(nfc_validate);
  400. // Check saved key cache
  401. NfcDevice* nfc_keys = nfc_device_alloc();
  402. mu_assert(nfc_validate, "Nfc device alloc assert");
  403. nfc_keys->dev_data.nfc_data.uid_len = uid_len;
  404. memcpy(nfc_keys->dev_data.nfc_data.uid, uid, uid_len);
  405. mu_assert(nfc_device_load_key_cache(nfc_keys), "Failed to load key cache");
  406. uint8_t total_sec = mf_classic_get_total_sectors_num(type);
  407. uint8_t default_key[6] = {};
  408. memset(default_key, 0xff, 6);
  409. for(size_t i = 0; i < total_sec; i++) {
  410. MfClassicSectorTrailer* sec_tr =
  411. mf_classic_get_sector_trailer_by_sector(&nfc_keys->dev_data.mf_classic_data, i);
  412. mu_assert(memcmp(sec_tr->key_a, default_key, 6) == 0, "Failed key compare");
  413. mu_assert(memcmp(sec_tr->key_b, default_key, 6) == 0, "Failed key compare");
  414. }
  415. // Delete key cache file
  416. mu_assert(
  417. storage_common_remove(nfc_keys->storage, furi_string_get_cstr(key_cache_name)) == FSE_OK,
  418. "Failed to remove key cache file");
  419. furi_string_free(key_cache_name);
  420. nfc_device_free(nfc_keys);
  421. }
  422. MU_TEST(mf_mini_file_test) {
  423. mf_classic_generator_test(4, MfClassicTypeMini);
  424. }
  425. MU_TEST(mf_classic_1k_4b_file_test) {
  426. mf_classic_generator_test(4, MfClassicType1k);
  427. }
  428. MU_TEST(mf_classic_4k_4b_file_test) {
  429. mf_classic_generator_test(4, MfClassicType4k);
  430. }
  431. MU_TEST(mf_classic_1k_7b_file_test) {
  432. mf_classic_generator_test(7, MfClassicType1k);
  433. }
  434. MU_TEST(mf_classic_4k_7b_file_test) {
  435. mf_classic_generator_test(7, MfClassicType4k);
  436. }
  437. MU_TEST_SUITE(nfc) {
  438. nfc_test_alloc();
  439. MU_RUN_TEST(nfca_file_test);
  440. MU_RUN_TEST(mf_mini_file_test);
  441. MU_RUN_TEST(mf_classic_1k_4b_file_test);
  442. MU_RUN_TEST(mf_classic_4k_4b_file_test);
  443. MU_RUN_TEST(mf_classic_1k_7b_file_test);
  444. MU_RUN_TEST(mf_classic_4k_7b_file_test);
  445. MU_RUN_TEST(nfc_digital_signal_test);
  446. MU_RUN_TEST(mf_classic_dict_test);
  447. MU_RUN_TEST(mf_classic_dict_load_test);
  448. nfc_test_free();
  449. }
  450. int run_minunit_test_nfc() {
  451. MU_RUN_SUITE(nfc);
  452. return MU_EXIT_CODE;
  453. }