test_suite_ccm.function 29 KB

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  1. /* BEGIN_HEADER */
  2. #include "mbedtls/ccm.h"
  3. /* Use the multipart interface to process the encrypted data in two parts
  4. * and check that the output matches the expected output.
  5. * The context must have been set up with the key. */
  6. static int check_multipart(mbedtls_ccm_context *ctx,
  7. int mode,
  8. const data_t *iv,
  9. const data_t *add,
  10. const data_t *input,
  11. const data_t *expected_output,
  12. const data_t *tag,
  13. size_t n1,
  14. size_t n1_add)
  15. {
  16. int ok = 0;
  17. uint8_t *output = NULL;
  18. size_t n2 = input->len - n1;
  19. size_t n2_add = add->len - n1_add;
  20. size_t olen;
  21. /* Sanity checks on the test data */
  22. TEST_ASSERT(n1 <= input->len);
  23. TEST_ASSERT(n1_add <= add->len);
  24. TEST_EQUAL(input->len, expected_output->len);
  25. TEST_EQUAL(0, mbedtls_ccm_starts(ctx, mode, iv->x, iv->len));
  26. TEST_EQUAL(0, mbedtls_ccm_set_lengths(ctx, add->len, input->len, tag->len));
  27. TEST_EQUAL(0, mbedtls_ccm_update_ad(ctx, add->x, n1_add));
  28. TEST_EQUAL(0, mbedtls_ccm_update_ad(ctx, add->x + n1_add, n2_add));
  29. /* Allocate a tight buffer for each update call. This way, if the function
  30. * tries to write beyond the advertised required buffer size, this will
  31. * count as an overflow for memory sanitizers and static checkers. */
  32. ASSERT_ALLOC(output, n1);
  33. olen = 0xdeadbeef;
  34. TEST_EQUAL(0, mbedtls_ccm_update(ctx, input->x, n1, output, n1, &olen));
  35. TEST_EQUAL(n1, olen);
  36. ASSERT_COMPARE(output, olen, expected_output->x, n1);
  37. mbedtls_free(output);
  38. output = NULL;
  39. ASSERT_ALLOC(output, n2);
  40. olen = 0xdeadbeef;
  41. TEST_EQUAL(0, mbedtls_ccm_update(ctx, input->x + n1, n2, output, n2, &olen));
  42. TEST_EQUAL(n2, olen);
  43. ASSERT_COMPARE(output, olen, expected_output->x + n1, n2);
  44. mbedtls_free(output);
  45. output = NULL;
  46. ASSERT_ALLOC(output, tag->len);
  47. TEST_EQUAL(0, mbedtls_ccm_finish(ctx, output, tag->len));
  48. ASSERT_COMPARE(output, tag->len, tag->x, tag->len);
  49. mbedtls_free(output);
  50. output = NULL;
  51. ok = 1;
  52. exit:
  53. mbedtls_free(output);
  54. return ok;
  55. }
  56. /* END_HEADER */
  57. /* BEGIN_DEPENDENCIES
  58. * depends_on:MBEDTLS_CCM_C
  59. * END_DEPENDENCIES
  60. */
  61. /* BEGIN_CASE depends_on:MBEDTLS_SELF_TEST:MBEDTLS_AES_C */
  62. void mbedtls_ccm_self_test()
  63. {
  64. TEST_ASSERT(mbedtls_ccm_self_test(1) == 0);
  65. }
  66. /* END_CASE */
  67. /* BEGIN_CASE */
  68. void mbedtls_ccm_setkey(int cipher_id, int key_size, int result)
  69. {
  70. mbedtls_ccm_context ctx;
  71. unsigned char key[32];
  72. int ret;
  73. mbedtls_ccm_init(&ctx);
  74. memset(key, 0x2A, sizeof(key));
  75. TEST_ASSERT((unsigned) key_size <= 8 * sizeof(key));
  76. ret = mbedtls_ccm_setkey(&ctx, cipher_id, key, key_size);
  77. TEST_ASSERT(ret == result);
  78. exit:
  79. mbedtls_ccm_free(&ctx);
  80. }
  81. /* END_CASE */
  82. /* BEGIN_CASE depends_on:MBEDTLS_AES_C */
  83. void ccm_lengths(int msg_len, int iv_len, int add_len, int tag_len, int res)
  84. {
  85. mbedtls_ccm_context ctx;
  86. unsigned char key[16];
  87. unsigned char msg[10];
  88. unsigned char iv[14];
  89. unsigned char *add = NULL;
  90. unsigned char out[10];
  91. unsigned char tag[18];
  92. int decrypt_ret;
  93. mbedtls_ccm_init(&ctx);
  94. ASSERT_ALLOC_WEAK(add, add_len);
  95. memset(key, 0, sizeof(key));
  96. memset(msg, 0, sizeof(msg));
  97. memset(iv, 0, sizeof(iv));
  98. memset(out, 0, sizeof(out));
  99. memset(tag, 0, sizeof(tag));
  100. TEST_ASSERT(mbedtls_ccm_setkey(&ctx, MBEDTLS_CIPHER_ID_AES,
  101. key, 8 * sizeof(key)) == 0);
  102. TEST_ASSERT(mbedtls_ccm_encrypt_and_tag(&ctx, msg_len, iv, iv_len, add, add_len,
  103. msg, out, tag, tag_len) == res);
  104. decrypt_ret = mbedtls_ccm_auth_decrypt(&ctx, msg_len, iv, iv_len, add, add_len,
  105. msg, out, tag, tag_len);
  106. if (res == 0) {
  107. TEST_ASSERT(decrypt_ret == MBEDTLS_ERR_CCM_AUTH_FAILED);
  108. } else {
  109. TEST_ASSERT(decrypt_ret == res);
  110. }
  111. exit:
  112. mbedtls_free(add);
  113. mbedtls_ccm_free(&ctx);
  114. }
  115. /* END_CASE */
  116. /* BEGIN_CASE depends_on:MBEDTLS_AES_C */
  117. void ccm_star_lengths(int msg_len, int iv_len, int add_len, int tag_len,
  118. int res)
  119. {
  120. mbedtls_ccm_context ctx;
  121. unsigned char key[16];
  122. unsigned char msg[10];
  123. unsigned char iv[14];
  124. unsigned char add[10];
  125. unsigned char out[10];
  126. unsigned char tag[18];
  127. int decrypt_ret;
  128. mbedtls_ccm_init(&ctx);
  129. memset(key, 0, sizeof(key));
  130. memset(msg, 0, sizeof(msg));
  131. memset(iv, 0, sizeof(iv));
  132. memset(add, 0, sizeof(add));
  133. memset(out, 0, sizeof(out));
  134. memset(tag, 0, sizeof(tag));
  135. TEST_ASSERT(mbedtls_ccm_setkey(&ctx, MBEDTLS_CIPHER_ID_AES,
  136. key, 8 * sizeof(key)) == 0);
  137. TEST_ASSERT(mbedtls_ccm_star_encrypt_and_tag(&ctx, msg_len, iv, iv_len,
  138. add, add_len, msg, out, tag, tag_len) == res);
  139. decrypt_ret = mbedtls_ccm_star_auth_decrypt(&ctx, msg_len, iv, iv_len, add,
  140. add_len, msg, out, tag, tag_len);
  141. if (res == 0 && tag_len != 0) {
  142. TEST_ASSERT(decrypt_ret == MBEDTLS_ERR_CCM_AUTH_FAILED);
  143. } else {
  144. TEST_ASSERT(decrypt_ret == res);
  145. }
  146. exit:
  147. mbedtls_ccm_free(&ctx);
  148. }
  149. /* END_CASE */
  150. /* BEGIN_CASE */
  151. void mbedtls_ccm_encrypt_and_tag(int cipher_id, data_t *key,
  152. data_t *msg, data_t *iv,
  153. data_t *add, data_t *result)
  154. {
  155. mbedtls_ccm_context ctx;
  156. size_t n1, n1_add;
  157. uint8_t *io_msg_buf = NULL;
  158. uint8_t *tag_buf = NULL;
  159. const size_t expected_tag_len = result->len - msg->len;
  160. const uint8_t *expected_tag = result->x + msg->len;
  161. /* Prepare input/output message buffer */
  162. ASSERT_ALLOC(io_msg_buf, msg->len);
  163. if (msg->len != 0) {
  164. memcpy(io_msg_buf, msg->x, msg->len);
  165. }
  166. /* Prepare tag buffer */
  167. ASSERT_ALLOC(tag_buf, expected_tag_len);
  168. mbedtls_ccm_init(&ctx);
  169. TEST_EQUAL(mbedtls_ccm_setkey(&ctx, cipher_id, key->x, key->len * 8), 0);
  170. /* Test with input == output */
  171. TEST_EQUAL(mbedtls_ccm_encrypt_and_tag(&ctx, msg->len, iv->x, iv->len, add->x, add->len,
  172. io_msg_buf, io_msg_buf, tag_buf, expected_tag_len), 0);
  173. ASSERT_COMPARE(io_msg_buf, msg->len, result->x, msg->len);
  174. ASSERT_COMPARE(tag_buf, expected_tag_len, expected_tag, expected_tag_len);
  175. /* Prepare data_t structures for multipart testing */
  176. const data_t encrypted_expected = { .x = result->x,
  177. .len = msg->len };
  178. const data_t tag_expected = { .x = (uint8_t *) expected_tag, /* cast to conform with data_t x type */
  179. .len = expected_tag_len };
  180. for (n1 = 0; n1 <= msg->len; n1 += 1) {
  181. for (n1_add = 0; n1_add <= add->len; n1_add += 1) {
  182. mbedtls_test_set_step(n1 * 10000 + n1_add);
  183. if (!check_multipart(&ctx, MBEDTLS_CCM_ENCRYPT,
  184. iv, add, msg,
  185. &encrypted_expected,
  186. &tag_expected,
  187. n1, n1_add)) {
  188. goto exit;
  189. }
  190. }
  191. }
  192. exit:
  193. mbedtls_ccm_free(&ctx);
  194. mbedtls_free(io_msg_buf);
  195. mbedtls_free(tag_buf);
  196. }
  197. /* END_CASE */
  198. /* BEGIN_CASE */
  199. void mbedtls_ccm_star_no_tag(int cipher_id, int mode, data_t *key,
  200. data_t *msg, data_t *iv, data_t *result)
  201. {
  202. mbedtls_ccm_context ctx;
  203. uint8_t *output = NULL;
  204. size_t olen;
  205. mbedtls_ccm_init(&ctx);
  206. TEST_EQUAL(mbedtls_ccm_setkey(&ctx, cipher_id, key->x, key->len * 8), 0);
  207. TEST_EQUAL(0, mbedtls_ccm_starts(&ctx, mode, iv->x, iv->len));
  208. TEST_EQUAL(0, mbedtls_ccm_set_lengths(&ctx, 0, msg->len, 0));
  209. ASSERT_ALLOC(output, msg->len);
  210. TEST_EQUAL(0, mbedtls_ccm_update(&ctx, msg->x, msg->len, output, msg->len, &olen));
  211. TEST_EQUAL(result->len, olen);
  212. ASSERT_COMPARE(output, olen, result->x, result->len);
  213. TEST_EQUAL(0, mbedtls_ccm_finish(&ctx, NULL, 0));
  214. exit:
  215. mbedtls_free(output);
  216. mbedtls_ccm_free(&ctx);
  217. }
  218. /* END_CASE */
  219. /* BEGIN_CASE */
  220. void mbedtls_ccm_auth_decrypt(int cipher_id, data_t *key,
  221. data_t *msg, data_t *iv,
  222. data_t *add, int expected_tag_len, int result,
  223. data_t *expected_msg)
  224. {
  225. mbedtls_ccm_context ctx;
  226. size_t n1, n1_add;
  227. const size_t expected_msg_len = msg->len - expected_tag_len;
  228. const uint8_t *expected_tag = msg->x + expected_msg_len;
  229. /* Prepare input/output message buffer */
  230. uint8_t *io_msg_buf = NULL;
  231. ASSERT_ALLOC(io_msg_buf, expected_msg_len);
  232. if (expected_msg_len) {
  233. memcpy(io_msg_buf, msg->x, expected_msg_len);
  234. }
  235. mbedtls_ccm_init(&ctx);
  236. TEST_EQUAL(mbedtls_ccm_setkey(&ctx, cipher_id, key->x, key->len * 8), 0);
  237. /* Test with input == output */
  238. TEST_EQUAL(mbedtls_ccm_auth_decrypt(&ctx, expected_msg_len, iv->x, iv->len, add->x, add->len,
  239. io_msg_buf, io_msg_buf, expected_tag, expected_tag_len),
  240. result);
  241. if (result == 0) {
  242. ASSERT_COMPARE(io_msg_buf, expected_msg_len, expected_msg->x, expected_msg_len);
  243. /* Prepare data_t structures for multipart testing */
  244. const data_t encrypted = { .x = msg->x,
  245. .len = expected_msg_len };
  246. const data_t tag_expected = { .x = (uint8_t *) expected_tag,
  247. .len = expected_tag_len };
  248. for (n1 = 0; n1 <= expected_msg_len; n1 += 1) {
  249. for (n1_add = 0; n1_add <= add->len; n1_add += 1) {
  250. mbedtls_test_set_step(n1 * 10000 + n1_add);
  251. if (!check_multipart(&ctx, MBEDTLS_CCM_DECRYPT,
  252. iv, add, &encrypted,
  253. expected_msg,
  254. &tag_expected,
  255. n1, n1_add)) {
  256. goto exit;
  257. }
  258. }
  259. }
  260. } else {
  261. size_t i;
  262. for (i = 0; i < expected_msg_len; i++) {
  263. TEST_EQUAL(io_msg_buf[i], 0);
  264. }
  265. }
  266. exit:
  267. mbedtls_free(io_msg_buf);
  268. mbedtls_ccm_free(&ctx);
  269. }
  270. /* END_CASE */
  271. /* BEGIN_CASE */
  272. void mbedtls_ccm_star_encrypt_and_tag(int cipher_id,
  273. data_t *key, data_t *msg,
  274. data_t *source_address, data_t *frame_counter,
  275. int sec_level, data_t *add,
  276. data_t *expected_result, int output_ret)
  277. {
  278. unsigned char iv[13];
  279. mbedtls_ccm_context ctx;
  280. size_t iv_len, expected_tag_len;
  281. size_t n1, n1_add;
  282. uint8_t *io_msg_buf = NULL;
  283. uint8_t *tag_buf = NULL;
  284. const uint8_t *expected_tag = expected_result->x + msg->len;
  285. /* Calculate tag length */
  286. if (sec_level % 4 == 0) {
  287. expected_tag_len = 0;
  288. } else {
  289. expected_tag_len = 1 << (sec_level % 4 + 1);
  290. }
  291. /* Prepare input/output message buffer */
  292. ASSERT_ALLOC(io_msg_buf, msg->len);
  293. if (msg->len) {
  294. memcpy(io_msg_buf, msg->x, msg->len);
  295. }
  296. /* Prepare tag buffer */
  297. if (expected_tag_len == 0) {
  298. ASSERT_ALLOC(tag_buf, 16);
  299. } else {
  300. ASSERT_ALLOC(tag_buf, expected_tag_len);
  301. }
  302. /* Calculate iv */
  303. TEST_ASSERT(source_address->len == 8);
  304. TEST_ASSERT(frame_counter->len == 4);
  305. memcpy(iv, source_address->x, source_address->len);
  306. memcpy(iv + source_address->len, frame_counter->x, frame_counter->len);
  307. iv[source_address->len + frame_counter->len] = sec_level;
  308. iv_len = sizeof(iv);
  309. mbedtls_ccm_init(&ctx);
  310. TEST_EQUAL(mbedtls_ccm_setkey(&ctx, cipher_id,
  311. key->x, key->len * 8), 0);
  312. /* Test with input == output */
  313. TEST_EQUAL(mbedtls_ccm_star_encrypt_and_tag(&ctx, msg->len, iv, iv_len,
  314. add->x, add->len, io_msg_buf,
  315. io_msg_buf, tag_buf, expected_tag_len), output_ret);
  316. ASSERT_COMPARE(io_msg_buf, msg->len, expected_result->x, msg->len);
  317. ASSERT_COMPARE(tag_buf, expected_tag_len, expected_tag, expected_tag_len);
  318. if (output_ret == 0) {
  319. const data_t iv_data = { .x = iv,
  320. .len = iv_len };
  321. const data_t encrypted_expected = { .x = expected_result->x,
  322. .len = msg->len };
  323. const data_t tag_expected = { .x = (uint8_t *) expected_tag,
  324. .len = expected_tag_len };
  325. for (n1 = 0; n1 <= msg->len; n1 += 1) {
  326. for (n1_add = 0; n1_add <= add->len; n1_add += 1) {
  327. mbedtls_test_set_step(n1 * 10000 + n1_add);
  328. if (!check_multipart(&ctx, MBEDTLS_CCM_STAR_ENCRYPT,
  329. &iv_data, add, msg,
  330. &encrypted_expected,
  331. &tag_expected,
  332. n1, n1_add)) {
  333. goto exit;
  334. }
  335. }
  336. }
  337. }
  338. exit:
  339. mbedtls_ccm_free(&ctx);
  340. mbedtls_free(io_msg_buf);
  341. mbedtls_free(tag_buf);
  342. }
  343. /* END_CASE */
  344. /* BEGIN_CASE */
  345. void mbedtls_ccm_star_auth_decrypt(int cipher_id,
  346. data_t *key, data_t *msg,
  347. data_t *source_address, data_t *frame_counter,
  348. int sec_level, data_t *add,
  349. data_t *expected_result, int output_ret)
  350. {
  351. unsigned char iv[13];
  352. mbedtls_ccm_context ctx;
  353. size_t iv_len, expected_tag_len;
  354. size_t n1, n1_add;
  355. /* Calculate tag length */
  356. if (sec_level % 4 == 0) {
  357. expected_tag_len = 0;
  358. } else {
  359. expected_tag_len = 1 << (sec_level % 4 + 1);
  360. }
  361. const size_t expected_msg_len = msg->len - expected_tag_len;
  362. const uint8_t *expected_tag = msg->x + expected_msg_len;
  363. /* Prepare input/output message buffer */
  364. uint8_t *io_msg_buf = NULL;
  365. ASSERT_ALLOC(io_msg_buf, expected_msg_len);
  366. if (expected_msg_len) {
  367. memcpy(io_msg_buf, msg->x, expected_msg_len);
  368. }
  369. /* Calculate iv */
  370. memset(iv, 0x00, sizeof(iv));
  371. TEST_ASSERT(source_address->len == 8);
  372. TEST_ASSERT(frame_counter->len == 4);
  373. memcpy(iv, source_address->x, source_address->len);
  374. memcpy(iv + source_address->len, frame_counter->x, frame_counter->len);
  375. iv[source_address->len + frame_counter->len] = sec_level;
  376. iv_len = sizeof(iv);
  377. mbedtls_ccm_init(&ctx);
  378. TEST_ASSERT(mbedtls_ccm_setkey(&ctx, cipher_id, key->x, key->len * 8) == 0);
  379. /* Test with input == output */
  380. TEST_EQUAL(mbedtls_ccm_star_auth_decrypt(&ctx, expected_msg_len, iv, iv_len,
  381. add->x, add->len, io_msg_buf, io_msg_buf,
  382. expected_tag, expected_tag_len), output_ret);
  383. ASSERT_COMPARE(io_msg_buf, expected_msg_len, expected_result->x, expected_msg_len);
  384. if (output_ret == 0) {
  385. const data_t iv_data = { .x = iv,
  386. .len = iv_len };
  387. const data_t encrypted = { .x = msg->x,
  388. .len = expected_msg_len };
  389. const data_t tag_expected = { .x = (uint8_t *) expected_tag,
  390. .len = expected_tag_len };
  391. for (n1 = 0; n1 <= expected_msg_len; n1 += 1) {
  392. for (n1_add = 0; n1_add <= add->len; n1_add += 1) {
  393. mbedtls_test_set_step(n1 * 10000 + n1_add);
  394. if (!check_multipart(&ctx, MBEDTLS_CCM_STAR_DECRYPT,
  395. &iv_data, add, &encrypted,
  396. expected_result,
  397. &tag_expected,
  398. n1, n1_add)) {
  399. goto exit;
  400. }
  401. }
  402. }
  403. }
  404. exit:
  405. mbedtls_ccm_free(&ctx);
  406. mbedtls_free(io_msg_buf);
  407. }
  408. /* END_CASE */
  409. /* Skip auth data, provide full text */
  410. /* BEGIN_CASE */
  411. void mbedtls_ccm_skip_ad(int cipher_id, int mode,
  412. data_t *key, data_t *msg, data_t *iv,
  413. data_t *result, data_t *tag)
  414. {
  415. mbedtls_ccm_context ctx;
  416. uint8_t *output = NULL;
  417. size_t olen;
  418. /* Sanity checks on the test data */
  419. TEST_EQUAL(msg->len, result->len);
  420. mbedtls_ccm_init(&ctx);
  421. TEST_EQUAL(mbedtls_ccm_setkey(&ctx, cipher_id, key->x, key->len * 8), 0);
  422. TEST_EQUAL(0, mbedtls_ccm_starts(&ctx, mode, iv->x, iv->len));
  423. TEST_EQUAL(0, mbedtls_ccm_set_lengths(&ctx, 0, msg->len, tag->len));
  424. ASSERT_ALLOC(output, result->len);
  425. olen = 0xdeadbeef;
  426. TEST_EQUAL(0, mbedtls_ccm_update(&ctx, msg->x, msg->len, output, result->len, &olen));
  427. TEST_EQUAL(result->len, olen);
  428. ASSERT_COMPARE(output, olen, result->x, result->len);
  429. mbedtls_free(output);
  430. output = NULL;
  431. ASSERT_ALLOC(output, tag->len);
  432. TEST_EQUAL(0, mbedtls_ccm_finish(&ctx, output, tag->len));
  433. ASSERT_COMPARE(output, tag->len, tag->x, tag->len);
  434. mbedtls_free(output);
  435. output = NULL;
  436. exit:
  437. mbedtls_free(output);
  438. mbedtls_ccm_free(&ctx);
  439. }
  440. /* END_CASE */
  441. /* Provide auth data, skip full text */
  442. /* BEGIN_CASE */
  443. void mbedtls_ccm_skip_update(int cipher_id, int mode,
  444. data_t *key, data_t *iv, data_t *add,
  445. data_t *tag)
  446. {
  447. mbedtls_ccm_context ctx;
  448. uint8_t *output = NULL;
  449. mbedtls_ccm_init(&ctx);
  450. TEST_EQUAL(mbedtls_ccm_setkey(&ctx, cipher_id, key->x, key->len * 8), 0);
  451. TEST_EQUAL(0, mbedtls_ccm_starts(&ctx, mode, iv->x, iv->len));
  452. TEST_EQUAL(0, mbedtls_ccm_set_lengths(&ctx, add->len, 0, tag->len));
  453. TEST_EQUAL(0, mbedtls_ccm_update_ad(&ctx, add->x, add->len));
  454. ASSERT_ALLOC(output, tag->len);
  455. TEST_EQUAL(0, mbedtls_ccm_finish(&ctx, output, tag->len));
  456. ASSERT_COMPARE(output, tag->len, tag->x, tag->len);
  457. mbedtls_free(output);
  458. output = NULL;
  459. exit:
  460. mbedtls_free(output);
  461. mbedtls_ccm_free(&ctx);
  462. }
  463. /* END_CASE */
  464. /* Provide too much auth data */
  465. /* BEGIN_CASE */
  466. void mbedtls_ccm_overflow_ad(int cipher_id, int mode,
  467. data_t *key, data_t *iv,
  468. data_t *add)
  469. {
  470. mbedtls_ccm_context ctx;
  471. mbedtls_ccm_init(&ctx);
  472. TEST_EQUAL(mbedtls_ccm_setkey(&ctx, cipher_id, key->x, key->len * 8), 0);
  473. TEST_EQUAL(0, mbedtls_ccm_starts(&ctx, mode, iv->x, iv->len));
  474. // use hardcoded values for msg length and tag length. They are not a part of this test
  475. // subtract 1 from configured auth data length to provoke an overflow
  476. TEST_EQUAL(0, mbedtls_ccm_set_lengths(&ctx, add->len - 1, 16, 16));
  477. TEST_EQUAL(MBEDTLS_ERR_CCM_BAD_INPUT, mbedtls_ccm_update_ad(&ctx, add->x, add->len));
  478. exit:
  479. mbedtls_ccm_free(&ctx);
  480. }
  481. /* END_CASE */
  482. /* Provide unexpected auth data */
  483. /* BEGIN_CASE */
  484. void mbedtls_ccm_unexpected_ad(int cipher_id, int mode,
  485. data_t *key, data_t *iv,
  486. data_t *add)
  487. {
  488. mbedtls_ccm_context ctx;
  489. mbedtls_ccm_init(&ctx);
  490. TEST_EQUAL(mbedtls_ccm_setkey(&ctx, cipher_id, key->x, key->len * 8), 0);
  491. TEST_EQUAL(0, mbedtls_ccm_starts(&ctx, mode, iv->x, iv->len));
  492. // use hardcoded values for msg length and tag length. They are not a part of this test
  493. TEST_EQUAL(0, mbedtls_ccm_set_lengths(&ctx, 0, 16, 16));
  494. TEST_EQUAL(MBEDTLS_ERR_CCM_BAD_INPUT, mbedtls_ccm_update_ad(&ctx, add->x, add->len));
  495. exit:
  496. mbedtls_ccm_free(&ctx);
  497. }
  498. /* END_CASE */
  499. /* Provide unexpected plaintext/ciphertext data */
  500. /* BEGIN_CASE */
  501. void mbedtls_ccm_unexpected_text(int cipher_id, int mode,
  502. data_t *key, data_t *msg, data_t *iv,
  503. data_t *add)
  504. {
  505. mbedtls_ccm_context ctx;
  506. uint8_t *output = NULL;
  507. size_t olen;
  508. mbedtls_ccm_init(&ctx);
  509. TEST_EQUAL(mbedtls_ccm_setkey(&ctx, cipher_id, key->x, key->len * 8), 0);
  510. TEST_EQUAL(0, mbedtls_ccm_starts(&ctx, mode, iv->x, iv->len));
  511. // use hardcoded value for tag length. It is not a part of this test
  512. TEST_EQUAL(0, mbedtls_ccm_set_lengths(&ctx, add->len, 0, 16));
  513. TEST_EQUAL(0, mbedtls_ccm_update_ad(&ctx, add->x, add->len));
  514. ASSERT_ALLOC(output, msg->len);
  515. olen = 0xdeadbeef;
  516. TEST_EQUAL(MBEDTLS_ERR_CCM_BAD_INPUT,
  517. mbedtls_ccm_update(&ctx, msg->x, msg->len, output, msg->len, &olen));
  518. exit:
  519. mbedtls_free(output);
  520. mbedtls_ccm_free(&ctx);
  521. }
  522. /* END_CASE */
  523. /* Provide incomplete auth data and finish */
  524. /* BEGIN_CASE */
  525. void mbedtls_ccm_incomplete_ad(int cipher_id, int mode,
  526. data_t *key, data_t *iv, data_t *add)
  527. {
  528. mbedtls_ccm_context ctx;
  529. uint8_t *output = NULL;
  530. mbedtls_ccm_init(&ctx);
  531. TEST_EQUAL(mbedtls_ccm_setkey(&ctx, cipher_id, key->x, key->len * 8), 0);
  532. TEST_EQUAL(0, mbedtls_ccm_starts(&ctx, mode, iv->x, iv->len));
  533. // use hardcoded values for msg length and tag length. They are not a part of this test
  534. TEST_EQUAL(0, mbedtls_ccm_set_lengths(&ctx, add->len, 0, 16));
  535. TEST_EQUAL(0, mbedtls_ccm_update_ad(&ctx, add->x, add->len - 1));
  536. ASSERT_ALLOC(output, 16);
  537. TEST_EQUAL(MBEDTLS_ERR_CCM_BAD_INPUT, mbedtls_ccm_finish(&ctx, output, 16));
  538. exit:
  539. mbedtls_free(output);
  540. mbedtls_ccm_free(&ctx);
  541. }
  542. /* END_CASE */
  543. /* Provide complete auth data on first update_ad.
  544. * Provide unexpected auth data on second update_ad */
  545. /* BEGIN_CASE */
  546. void mbedtls_ccm_full_ad_and_overflow(int cipher_id, int mode,
  547. data_t *key, data_t *iv,
  548. data_t *add)
  549. {
  550. mbedtls_ccm_context ctx;
  551. mbedtls_ccm_init(&ctx);
  552. TEST_EQUAL(mbedtls_ccm_setkey(&ctx, cipher_id, key->x, key->len * 8), 0);
  553. TEST_EQUAL(0, mbedtls_ccm_starts(&ctx, mode, iv->x, iv->len));
  554. // use hardcoded values for msg length and tag length. They are not a part of this test
  555. TEST_EQUAL(0, mbedtls_ccm_set_lengths(&ctx, add->len, 16, 16));
  556. // pass full auth data
  557. TEST_EQUAL(0, mbedtls_ccm_update_ad(&ctx, add->x, add->len));
  558. // pass 1 extra byte
  559. TEST_EQUAL(MBEDTLS_ERR_CCM_BAD_INPUT, mbedtls_ccm_update_ad(&ctx, add->x, 1));
  560. exit:
  561. mbedtls_ccm_free(&ctx);
  562. }
  563. /* END_CASE */
  564. /* Provide incomplete auth data on first update_ad.
  565. * Provide too much auth data on second update_ad */
  566. /* BEGIN_CASE */
  567. void mbedtls_ccm_incomplete_ad_and_overflow(int cipher_id, int mode,
  568. data_t *key, data_t *iv,
  569. data_t *add)
  570. {
  571. mbedtls_ccm_context ctx;
  572. uint8_t add_second_buffer[2];
  573. add_second_buffer[0] = add->x[add->len - 1];
  574. add_second_buffer[1] = 0xAB; // some magic value
  575. mbedtls_ccm_init(&ctx);
  576. TEST_EQUAL(mbedtls_ccm_setkey(&ctx, cipher_id, key->x, key->len * 8), 0);
  577. TEST_EQUAL(0, mbedtls_ccm_starts(&ctx, mode, iv->x, iv->len));
  578. // use hardcoded values for msg length and tag length. They are not a part of this test
  579. TEST_EQUAL(0, mbedtls_ccm_set_lengths(&ctx, add->len, 16, 16));
  580. // pass incomplete auth data
  581. TEST_EQUAL(0, mbedtls_ccm_update_ad(&ctx, add->x, add->len - 1));
  582. // pass 2 extra bytes (1 missing byte from previous incomplete pass, and 1 unexpected byte)
  583. TEST_EQUAL(MBEDTLS_ERR_CCM_BAD_INPUT, mbedtls_ccm_update_ad(&ctx, add_second_buffer, 2));
  584. exit:
  585. mbedtls_ccm_free(&ctx);
  586. }
  587. /* END_CASE */
  588. /* Provide too much plaintext/ciphertext */
  589. /* BEGIN_CASE */
  590. void mbedtls_ccm_overflow_update(int cipher_id, int mode,
  591. data_t *key, data_t *msg, data_t *iv,
  592. data_t *add)
  593. {
  594. mbedtls_ccm_context ctx;
  595. uint8_t *output = NULL;
  596. size_t olen;
  597. mbedtls_ccm_init(&ctx);
  598. TEST_EQUAL(mbedtls_ccm_setkey(&ctx, cipher_id, key->x, key->len * 8), 0);
  599. TEST_EQUAL(0, mbedtls_ccm_starts(&ctx, mode, iv->x, iv->len));
  600. // use hardcoded value for tag length. It is a not a part of this test
  601. // subtract 1 from configured msg length to provoke an overflow
  602. TEST_EQUAL(0, mbedtls_ccm_set_lengths(&ctx, add->len, msg->len - 1, 16));
  603. TEST_EQUAL(0, mbedtls_ccm_update_ad(&ctx, add->x, add->len));
  604. ASSERT_ALLOC(output, msg->len);
  605. TEST_EQUAL(MBEDTLS_ERR_CCM_BAD_INPUT, \
  606. mbedtls_ccm_update(&ctx, msg->x, msg->len, output, msg->len, &olen));
  607. exit:
  608. mbedtls_free(output);
  609. mbedtls_ccm_free(&ctx);
  610. }
  611. /* END_CASE */
  612. /* Provide incomplete plaintext/ciphertext and finish */
  613. /* BEGIN_CASE */
  614. void mbedtls_ccm_incomplete_update(int cipher_id, int mode,
  615. data_t *key, data_t *msg, data_t *iv,
  616. data_t *add)
  617. {
  618. mbedtls_ccm_context ctx;
  619. uint8_t *output = NULL;
  620. size_t olen;
  621. mbedtls_ccm_init(&ctx);
  622. TEST_EQUAL(mbedtls_ccm_setkey(&ctx, cipher_id, key->x, key->len * 8), 0);
  623. TEST_EQUAL(0, mbedtls_ccm_starts(&ctx, mode, iv->x, iv->len));
  624. // use hardcoded value for tag length. It is not a part of this test
  625. TEST_EQUAL(0, mbedtls_ccm_set_lengths(&ctx, add->len, msg->len, 16));
  626. TEST_EQUAL(0, mbedtls_ccm_update_ad(&ctx, add->x, add->len));
  627. ASSERT_ALLOC(output, msg->len);
  628. olen = 0xdeadbeef;
  629. TEST_EQUAL(0, mbedtls_ccm_update(&ctx, msg->x, msg->len - 1, output, msg->len, &olen));
  630. mbedtls_free(output);
  631. output = NULL;
  632. ASSERT_ALLOC(output, 16);
  633. TEST_EQUAL(MBEDTLS_ERR_CCM_BAD_INPUT, mbedtls_ccm_finish(&ctx, output, 16));
  634. exit:
  635. mbedtls_free(output);
  636. mbedtls_ccm_free(&ctx);
  637. }
  638. /* END_CASE */
  639. /* Provide full plaintext/ciphertext of first update
  640. * Provide unexpected plaintext/ciphertext on second update */
  641. /* BEGIN_CASE */
  642. void mbedtls_ccm_full_update_and_overflow(int cipher_id, int mode,
  643. data_t *key, data_t *msg, data_t *iv,
  644. data_t *add)
  645. {
  646. mbedtls_ccm_context ctx;
  647. uint8_t *output = NULL;
  648. size_t olen;
  649. mbedtls_ccm_init(&ctx);
  650. TEST_EQUAL(mbedtls_ccm_setkey(&ctx, cipher_id, key->x, key->len * 8), 0);
  651. TEST_EQUAL(0, mbedtls_ccm_starts(&ctx, mode, iv->x, iv->len));
  652. // use hardcoded value for tag length. It is a not a part of this test
  653. TEST_EQUAL(0, mbedtls_ccm_set_lengths(&ctx, add->len, msg->len, 16));
  654. TEST_EQUAL(0, mbedtls_ccm_update_ad(&ctx, add->x, add->len));
  655. ASSERT_ALLOC(output, msg->len);
  656. // pass full text
  657. TEST_EQUAL(0, mbedtls_ccm_update(&ctx, msg->x, msg->len, output, msg->len, &olen));
  658. // pass 1 extra byte
  659. TEST_EQUAL(MBEDTLS_ERR_CCM_BAD_INPUT, \
  660. mbedtls_ccm_update(&ctx, msg->x, 1, output, 1, &olen));
  661. exit:
  662. mbedtls_free(output);
  663. mbedtls_ccm_free(&ctx);
  664. }
  665. /* END_CASE */
  666. /* Provide incomplete plaintext/ciphertext of first update
  667. * Provide too much plaintext/ciphertext on second update */
  668. /* BEGIN_CASE */
  669. void mbedtls_ccm_incomplete_update_overflow(int cipher_id, int mode,
  670. data_t *key, data_t *msg, data_t *iv,
  671. data_t *add)
  672. {
  673. mbedtls_ccm_context ctx;
  674. uint8_t *output = NULL;
  675. size_t olen;
  676. uint8_t msg_second_buffer[2];
  677. msg_second_buffer[0] = msg->x[msg->len - 1];
  678. msg_second_buffer[1] = 0xAB; // some magic value
  679. mbedtls_ccm_init(&ctx);
  680. TEST_EQUAL(mbedtls_ccm_setkey(&ctx, cipher_id, key->x, key->len * 8), 0);
  681. TEST_EQUAL(0, mbedtls_ccm_starts(&ctx, mode, iv->x, iv->len));
  682. // use hardcoded value for tag length. It is a not a part of this test
  683. TEST_EQUAL(0, mbedtls_ccm_set_lengths(&ctx, add->len, msg->len, 16));
  684. TEST_EQUAL(0, mbedtls_ccm_update_ad(&ctx, add->x, add->len));
  685. ASSERT_ALLOC(output, msg->len + 1);
  686. // pass incomplete text
  687. TEST_EQUAL(0, mbedtls_ccm_update(&ctx, msg->x, msg->len - 1, output, msg->len + 1, &olen));
  688. // pass 2 extra bytes (1 missing byte from previous incomplete pass, and 1 unexpected byte)
  689. TEST_EQUAL(MBEDTLS_ERR_CCM_BAD_INPUT, \
  690. mbedtls_ccm_update(&ctx, msg_second_buffer, 2, output + msg->len - 1, 2, &olen));
  691. exit:
  692. mbedtls_free(output);
  693. mbedtls_ccm_free(&ctx);
  694. }
  695. /* END_CASE */
  696. /* Finish without passing any auth data or plaintext/ciphertext input */
  697. /* BEGIN_CASE */
  698. void mbedtls_ccm_instant_finish(int cipher_id, int mode,
  699. data_t *key, data_t *iv)
  700. {
  701. mbedtls_ccm_context ctx;
  702. uint8_t *output = NULL;
  703. mbedtls_ccm_init(&ctx);
  704. TEST_EQUAL(mbedtls_ccm_setkey(&ctx, cipher_id, key->x, key->len * 8), 0);
  705. TEST_EQUAL(0, mbedtls_ccm_starts(&ctx, mode, iv->x, iv->len));
  706. // use hardcoded values for add length, msg length and tag length.
  707. // They are not a part of this test
  708. TEST_EQUAL(0, mbedtls_ccm_set_lengths(&ctx, 16, 16, 16));
  709. ASSERT_ALLOC(output, 16);
  710. TEST_EQUAL(MBEDTLS_ERR_CCM_BAD_INPUT, mbedtls_ccm_finish(&ctx, output, 16));
  711. exit:
  712. mbedtls_free(output);
  713. mbedtls_ccm_free(&ctx);
  714. }
  715. /* END_CASE */