test_crypto.c 51 KB

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  1. /* Copyright (c) 2001-2004, Roger Dingledine.
  2. * Copyright (c) 2004-2006, Roger Dingledine, Nick Mathewson.
  3. * Copyright (c) 2007-2013, The Tor Project, Inc. */
  4. /* See LICENSE for licensing information */
  5. #include "orconfig.h"
  6. #define CRYPTO_CURVE25519_PRIVATE
  7. #include "or.h"
  8. #include "test.h"
  9. #include "aes.h"
  10. #include "util.h"
  11. #include "siphash.h"
  12. #ifdef CURVE25519_ENABLED
  13. #include "crypto_curve25519.h"
  14. #include "crypto_ed25519.h"
  15. #endif
  16. extern const char AUTHORITY_SIGNKEY_3[];
  17. extern const char AUTHORITY_SIGNKEY_A_DIGEST[];
  18. extern const char AUTHORITY_SIGNKEY_A_DIGEST256[];
  19. /** Run unit tests for Diffie-Hellman functionality. */
  20. static void
  21. test_crypto_dh(void)
  22. {
  23. crypto_dh_t *dh1 = crypto_dh_new(DH_TYPE_CIRCUIT);
  24. crypto_dh_t *dh2 = crypto_dh_new(DH_TYPE_CIRCUIT);
  25. char p1[DH_BYTES];
  26. char p2[DH_BYTES];
  27. char s1[DH_BYTES];
  28. char s2[DH_BYTES];
  29. ssize_t s1len, s2len;
  30. test_eq(crypto_dh_get_bytes(dh1), DH_BYTES);
  31. test_eq(crypto_dh_get_bytes(dh2), DH_BYTES);
  32. memset(p1, 0, DH_BYTES);
  33. memset(p2, 0, DH_BYTES);
  34. test_memeq(p1, p2, DH_BYTES);
  35. test_assert(! crypto_dh_get_public(dh1, p1, DH_BYTES));
  36. test_memneq(p1, p2, DH_BYTES);
  37. test_assert(! crypto_dh_get_public(dh2, p2, DH_BYTES));
  38. test_memneq(p1, p2, DH_BYTES);
  39. memset(s1, 0, DH_BYTES);
  40. memset(s2, 0xFF, DH_BYTES);
  41. s1len = crypto_dh_compute_secret(LOG_WARN, dh1, p2, DH_BYTES, s1, 50);
  42. s2len = crypto_dh_compute_secret(LOG_WARN, dh2, p1, DH_BYTES, s2, 50);
  43. test_assert(s1len > 0);
  44. test_eq(s1len, s2len);
  45. test_memeq(s1, s2, s1len);
  46. {
  47. /* XXXX Now fabricate some bad values and make sure they get caught,
  48. * Check 0, 1, N-1, >= N, etc.
  49. */
  50. }
  51. done:
  52. crypto_dh_free(dh1);
  53. crypto_dh_free(dh2);
  54. }
  55. /** Run unit tests for our random number generation function and its wrappers.
  56. */
  57. static void
  58. test_crypto_rng(void)
  59. {
  60. int i, j, allok;
  61. char data1[100], data2[100];
  62. double d;
  63. /* Try out RNG. */
  64. test_assert(! crypto_seed_rng(0));
  65. crypto_rand(data1, 100);
  66. crypto_rand(data2, 100);
  67. test_memneq(data1,data2,100);
  68. allok = 1;
  69. for (i = 0; i < 100; ++i) {
  70. uint64_t big;
  71. char *host;
  72. j = crypto_rand_int(100);
  73. if (j < 0 || j >= 100)
  74. allok = 0;
  75. big = crypto_rand_uint64(U64_LITERAL(1)<<40);
  76. if (big >= (U64_LITERAL(1)<<40))
  77. allok = 0;
  78. big = crypto_rand_uint64(U64_LITERAL(5));
  79. if (big >= 5)
  80. allok = 0;
  81. d = crypto_rand_double();
  82. test_assert(d >= 0);
  83. test_assert(d < 1.0);
  84. host = crypto_random_hostname(3,8,"www.",".onion");
  85. if (strcmpstart(host,"www.") ||
  86. strcmpend(host,".onion") ||
  87. strlen(host) < 13 ||
  88. strlen(host) > 18)
  89. allok = 0;
  90. tor_free(host);
  91. }
  92. test_assert(allok);
  93. done:
  94. ;
  95. }
  96. /** Run unit tests for our AES functionality */
  97. static void
  98. test_crypto_aes(void *arg)
  99. {
  100. char *data1 = NULL, *data2 = NULL, *data3 = NULL;
  101. crypto_cipher_t *env1 = NULL, *env2 = NULL;
  102. int i, j;
  103. char *mem_op_hex_tmp=NULL;
  104. int use_evp = !strcmp(arg,"evp");
  105. evaluate_evp_for_aes(use_evp);
  106. evaluate_ctr_for_aes();
  107. data1 = tor_malloc(1024);
  108. data2 = tor_malloc(1024);
  109. data3 = tor_malloc(1024);
  110. /* Now, test encryption and decryption with stream cipher. */
  111. data1[0]='\0';
  112. for (i = 1023; i>0; i -= 35)
  113. strncat(data1, "Now is the time for all good onions", i);
  114. memset(data2, 0, 1024);
  115. memset(data3, 0, 1024);
  116. env1 = crypto_cipher_new(NULL);
  117. test_neq_ptr(env1, 0);
  118. env2 = crypto_cipher_new(crypto_cipher_get_key(env1));
  119. test_neq_ptr(env2, 0);
  120. /* Try encrypting 512 chars. */
  121. crypto_cipher_encrypt(env1, data2, data1, 512);
  122. crypto_cipher_decrypt(env2, data3, data2, 512);
  123. test_memeq(data1, data3, 512);
  124. test_memneq(data1, data2, 512);
  125. /* Now encrypt 1 at a time, and get 1 at a time. */
  126. for (j = 512; j < 560; ++j) {
  127. crypto_cipher_encrypt(env1, data2+j, data1+j, 1);
  128. }
  129. for (j = 512; j < 560; ++j) {
  130. crypto_cipher_decrypt(env2, data3+j, data2+j, 1);
  131. }
  132. test_memeq(data1, data3, 560);
  133. /* Now encrypt 3 at a time, and get 5 at a time. */
  134. for (j = 560; j < 1024-5; j += 3) {
  135. crypto_cipher_encrypt(env1, data2+j, data1+j, 3);
  136. }
  137. for (j = 560; j < 1024-5; j += 5) {
  138. crypto_cipher_decrypt(env2, data3+j, data2+j, 5);
  139. }
  140. test_memeq(data1, data3, 1024-5);
  141. /* Now make sure that when we encrypt with different chunk sizes, we get
  142. the same results. */
  143. crypto_cipher_free(env2);
  144. env2 = NULL;
  145. memset(data3, 0, 1024);
  146. env2 = crypto_cipher_new(crypto_cipher_get_key(env1));
  147. test_neq_ptr(env2, NULL);
  148. for (j = 0; j < 1024-16; j += 17) {
  149. crypto_cipher_encrypt(env2, data3+j, data1+j, 17);
  150. }
  151. for (j= 0; j < 1024-16; ++j) {
  152. if (data2[j] != data3[j]) {
  153. printf("%d: %d\t%d\n", j, (int) data2[j], (int) data3[j]);
  154. }
  155. }
  156. test_memeq(data2, data3, 1024-16);
  157. crypto_cipher_free(env1);
  158. env1 = NULL;
  159. crypto_cipher_free(env2);
  160. env2 = NULL;
  161. /* NIST test vector for aes. */
  162. /* IV starts at 0 */
  163. env1 = crypto_cipher_new("\x80\x00\x00\x00\x00\x00\x00\x00"
  164. "\x00\x00\x00\x00\x00\x00\x00\x00");
  165. crypto_cipher_encrypt(env1, data1,
  166. "\x00\x00\x00\x00\x00\x00\x00\x00"
  167. "\x00\x00\x00\x00\x00\x00\x00\x00", 16);
  168. test_memeq_hex(data1, "0EDD33D3C621E546455BD8BA1418BEC8");
  169. /* Now test rollover. All these values are originally from a python
  170. * script. */
  171. crypto_cipher_free(env1);
  172. env1 = crypto_cipher_new_with_iv(
  173. "\x80\x00\x00\x00\x00\x00\x00\x00"
  174. "\x00\x00\x00\x00\x00\x00\x00\x00",
  175. "\x00\x00\x00\x00\x00\x00\x00\x00"
  176. "\xff\xff\xff\xff\xff\xff\xff\xff");
  177. memset(data2, 0, 1024);
  178. crypto_cipher_encrypt(env1, data1, data2, 32);
  179. test_memeq_hex(data1, "335fe6da56f843199066c14a00a40231"
  180. "cdd0b917dbc7186908a6bfb5ffd574d3");
  181. crypto_cipher_free(env1);
  182. env1 = crypto_cipher_new_with_iv(
  183. "\x80\x00\x00\x00\x00\x00\x00\x00"
  184. "\x00\x00\x00\x00\x00\x00\x00\x00",
  185. "\x00\x00\x00\x00\xff\xff\xff\xff"
  186. "\xff\xff\xff\xff\xff\xff\xff\xff");
  187. memset(data2, 0, 1024);
  188. crypto_cipher_encrypt(env1, data1, data2, 32);
  189. test_memeq_hex(data1, "e627c6423fa2d77832a02b2794094b73"
  190. "3e63c721df790d2c6469cc1953a3ffac");
  191. crypto_cipher_free(env1);
  192. env1 = crypto_cipher_new_with_iv(
  193. "\x80\x00\x00\x00\x00\x00\x00\x00"
  194. "\x00\x00\x00\x00\x00\x00\x00\x00",
  195. "\xff\xff\xff\xff\xff\xff\xff\xff"
  196. "\xff\xff\xff\xff\xff\xff\xff\xff");
  197. memset(data2, 0, 1024);
  198. crypto_cipher_encrypt(env1, data1, data2, 32);
  199. test_memeq_hex(data1, "2aed2bff0de54f9328efd070bf48f70a"
  200. "0EDD33D3C621E546455BD8BA1418BEC8");
  201. /* Now check rollover on inplace cipher. */
  202. crypto_cipher_free(env1);
  203. env1 = crypto_cipher_new_with_iv(
  204. "\x80\x00\x00\x00\x00\x00\x00\x00"
  205. "\x00\x00\x00\x00\x00\x00\x00\x00",
  206. "\xff\xff\xff\xff\xff\xff\xff\xff"
  207. "\xff\xff\xff\xff\xff\xff\xff\xff");
  208. crypto_cipher_crypt_inplace(env1, data2, 64);
  209. test_memeq_hex(data2, "2aed2bff0de54f9328efd070bf48f70a"
  210. "0EDD33D3C621E546455BD8BA1418BEC8"
  211. "93e2c5243d6839eac58503919192f7ae"
  212. "1908e67cafa08d508816659c2e693191");
  213. crypto_cipher_free(env1);
  214. env1 = crypto_cipher_new_with_iv(
  215. "\x80\x00\x00\x00\x00\x00\x00\x00"
  216. "\x00\x00\x00\x00\x00\x00\x00\x00",
  217. "\xff\xff\xff\xff\xff\xff\xff\xff"
  218. "\xff\xff\xff\xff\xff\xff\xff\xff");
  219. crypto_cipher_crypt_inplace(env1, data2, 64);
  220. test_assert(tor_mem_is_zero(data2, 64));
  221. done:
  222. tor_free(mem_op_hex_tmp);
  223. if (env1)
  224. crypto_cipher_free(env1);
  225. if (env2)
  226. crypto_cipher_free(env2);
  227. tor_free(data1);
  228. tor_free(data2);
  229. tor_free(data3);
  230. }
  231. /** Run unit tests for our SHA-1 functionality */
  232. static void
  233. test_crypto_sha(void)
  234. {
  235. crypto_digest_t *d1 = NULL, *d2 = NULL;
  236. int i;
  237. char key[160];
  238. char digest[32];
  239. char data[50];
  240. char d_out1[DIGEST_LEN], d_out2[DIGEST256_LEN];
  241. char *mem_op_hex_tmp=NULL;
  242. /* Test SHA-1 with a test vector from the specification. */
  243. i = crypto_digest(data, "abc", 3);
  244. test_memeq_hex(data, "A9993E364706816ABA3E25717850C26C9CD0D89D");
  245. tt_int_op(i, ==, 0);
  246. /* Test SHA-256 with a test vector from the specification. */
  247. i = crypto_digest256(data, "abc", 3, DIGEST_SHA256);
  248. test_memeq_hex(data, "BA7816BF8F01CFEA414140DE5DAE2223B00361A3"
  249. "96177A9CB410FF61F20015AD");
  250. tt_int_op(i, ==, 0);
  251. /* Test HMAC-SHA256 with test cases from wikipedia and RFC 4231 */
  252. /* Case empty (wikipedia) */
  253. crypto_hmac_sha256(digest, "", 0, "", 0);
  254. test_streq(hex_str(digest, 32),
  255. "B613679A0814D9EC772F95D778C35FC5FF1697C493715653C6C712144292C5AD");
  256. /* Case quick-brown (wikipedia) */
  257. crypto_hmac_sha256(digest, "key", 3,
  258. "The quick brown fox jumps over the lazy dog", 43);
  259. test_streq(hex_str(digest, 32),
  260. "F7BC83F430538424B13298E6AA6FB143EF4D59A14946175997479DBC2D1A3CD8");
  261. /* "Test Case 1" from RFC 4231 */
  262. memset(key, 0x0b, 20);
  263. crypto_hmac_sha256(digest, key, 20, "Hi There", 8);
  264. test_memeq_hex(digest,
  265. "b0344c61d8db38535ca8afceaf0bf12b"
  266. "881dc200c9833da726e9376c2e32cff7");
  267. /* "Test Case 2" from RFC 4231 */
  268. memset(key, 0x0b, 20);
  269. crypto_hmac_sha256(digest, "Jefe", 4, "what do ya want for nothing?", 28);
  270. test_memeq_hex(digest,
  271. "5bdcc146bf60754e6a042426089575c7"
  272. "5a003f089d2739839dec58b964ec3843");
  273. /* "Test case 3" from RFC 4231 */
  274. memset(key, 0xaa, 20);
  275. memset(data, 0xdd, 50);
  276. crypto_hmac_sha256(digest, key, 20, data, 50);
  277. test_memeq_hex(digest,
  278. "773ea91e36800e46854db8ebd09181a7"
  279. "2959098b3ef8c122d9635514ced565fe");
  280. /* "Test case 4" from RFC 4231 */
  281. base16_decode(key, 25,
  282. "0102030405060708090a0b0c0d0e0f10111213141516171819", 50);
  283. memset(data, 0xcd, 50);
  284. crypto_hmac_sha256(digest, key, 25, data, 50);
  285. test_memeq_hex(digest,
  286. "82558a389a443c0ea4cc819899f2083a"
  287. "85f0faa3e578f8077a2e3ff46729665b");
  288. /* "Test case 5" from RFC 4231 */
  289. memset(key, 0x0c, 20);
  290. crypto_hmac_sha256(digest, key, 20, "Test With Truncation", 20);
  291. test_memeq_hex(digest,
  292. "a3b6167473100ee06e0c796c2955552b");
  293. /* "Test case 6" from RFC 4231 */
  294. memset(key, 0xaa, 131);
  295. crypto_hmac_sha256(digest, key, 131,
  296. "Test Using Larger Than Block-Size Key - Hash Key First",
  297. 54);
  298. test_memeq_hex(digest,
  299. "60e431591ee0b67f0d8a26aacbf5b77f"
  300. "8e0bc6213728c5140546040f0ee37f54");
  301. /* "Test case 7" from RFC 4231 */
  302. memset(key, 0xaa, 131);
  303. crypto_hmac_sha256(digest, key, 131,
  304. "This is a test using a larger than block-size key and a "
  305. "larger than block-size data. The key needs to be hashed "
  306. "before being used by the HMAC algorithm.", 152);
  307. test_memeq_hex(digest,
  308. "9b09ffa71b942fcb27635fbcd5b0e944"
  309. "bfdc63644f0713938a7f51535c3a35e2");
  310. /* Incremental digest code. */
  311. d1 = crypto_digest_new();
  312. test_assert(d1);
  313. crypto_digest_add_bytes(d1, "abcdef", 6);
  314. d2 = crypto_digest_dup(d1);
  315. test_assert(d2);
  316. crypto_digest_add_bytes(d2, "ghijkl", 6);
  317. crypto_digest_get_digest(d2, d_out1, sizeof(d_out1));
  318. crypto_digest(d_out2, "abcdefghijkl", 12);
  319. test_memeq(d_out1, d_out2, DIGEST_LEN);
  320. crypto_digest_assign(d2, d1);
  321. crypto_digest_add_bytes(d2, "mno", 3);
  322. crypto_digest_get_digest(d2, d_out1, sizeof(d_out1));
  323. crypto_digest(d_out2, "abcdefmno", 9);
  324. test_memeq(d_out1, d_out2, DIGEST_LEN);
  325. crypto_digest_get_digest(d1, d_out1, sizeof(d_out1));
  326. crypto_digest(d_out2, "abcdef", 6);
  327. test_memeq(d_out1, d_out2, DIGEST_LEN);
  328. crypto_digest_free(d1);
  329. crypto_digest_free(d2);
  330. /* Incremental digest code with sha256 */
  331. d1 = crypto_digest256_new(DIGEST_SHA256);
  332. test_assert(d1);
  333. crypto_digest_add_bytes(d1, "abcdef", 6);
  334. d2 = crypto_digest_dup(d1);
  335. test_assert(d2);
  336. crypto_digest_add_bytes(d2, "ghijkl", 6);
  337. crypto_digest_get_digest(d2, d_out1, sizeof(d_out1));
  338. crypto_digest256(d_out2, "abcdefghijkl", 12, DIGEST_SHA256);
  339. test_memeq(d_out1, d_out2, DIGEST_LEN);
  340. crypto_digest_assign(d2, d1);
  341. crypto_digest_add_bytes(d2, "mno", 3);
  342. crypto_digest_get_digest(d2, d_out1, sizeof(d_out1));
  343. crypto_digest256(d_out2, "abcdefmno", 9, DIGEST_SHA256);
  344. test_memeq(d_out1, d_out2, DIGEST_LEN);
  345. crypto_digest_get_digest(d1, d_out1, sizeof(d_out1));
  346. crypto_digest256(d_out2, "abcdef", 6, DIGEST_SHA256);
  347. test_memeq(d_out1, d_out2, DIGEST_LEN);
  348. done:
  349. if (d1)
  350. crypto_digest_free(d1);
  351. if (d2)
  352. crypto_digest_free(d2);
  353. tor_free(mem_op_hex_tmp);
  354. }
  355. /** Run unit tests for our public key crypto functions */
  356. static void
  357. test_crypto_pk(void)
  358. {
  359. crypto_pk_t *pk1 = NULL, *pk2 = NULL;
  360. char *encoded = NULL;
  361. char data1[1024], data2[1024], data3[1024];
  362. size_t size;
  363. int i, len;
  364. /* Public-key ciphers */
  365. pk1 = pk_generate(0);
  366. pk2 = crypto_pk_new();
  367. test_assert(pk1 && pk2);
  368. test_assert(! crypto_pk_write_public_key_to_string(pk1, &encoded, &size));
  369. test_assert(! crypto_pk_read_public_key_from_string(pk2, encoded, size));
  370. test_eq(0, crypto_pk_cmp_keys(pk1, pk2));
  371. /* comparison between keys and NULL */
  372. tt_int_op(crypto_pk_cmp_keys(NULL, pk1), <, 0);
  373. tt_int_op(crypto_pk_cmp_keys(NULL, NULL), ==, 0);
  374. tt_int_op(crypto_pk_cmp_keys(pk1, NULL), >, 0);
  375. test_eq(128, crypto_pk_keysize(pk1));
  376. test_eq(1024, crypto_pk_num_bits(pk1));
  377. test_eq(128, crypto_pk_keysize(pk2));
  378. test_eq(1024, crypto_pk_num_bits(pk2));
  379. test_eq(128, crypto_pk_public_encrypt(pk2, data1, sizeof(data1),
  380. "Hello whirled.", 15,
  381. PK_PKCS1_OAEP_PADDING));
  382. test_eq(128, crypto_pk_public_encrypt(pk1, data2, sizeof(data1),
  383. "Hello whirled.", 15,
  384. PK_PKCS1_OAEP_PADDING));
  385. /* oaep padding should make encryption not match */
  386. test_memneq(data1, data2, 128);
  387. test_eq(15, crypto_pk_private_decrypt(pk1, data3, sizeof(data3), data1, 128,
  388. PK_PKCS1_OAEP_PADDING,1));
  389. test_streq(data3, "Hello whirled.");
  390. memset(data3, 0, 1024);
  391. test_eq(15, crypto_pk_private_decrypt(pk1, data3, sizeof(data3), data2, 128,
  392. PK_PKCS1_OAEP_PADDING,1));
  393. test_streq(data3, "Hello whirled.");
  394. /* Can't decrypt with public key. */
  395. test_eq(-1, crypto_pk_private_decrypt(pk2, data3, sizeof(data3), data2, 128,
  396. PK_PKCS1_OAEP_PADDING,1));
  397. /* Try again with bad padding */
  398. memcpy(data2+1, "XYZZY", 5); /* This has fails ~ once-in-2^40 */
  399. test_eq(-1, crypto_pk_private_decrypt(pk1, data3, sizeof(data3), data2, 128,
  400. PK_PKCS1_OAEP_PADDING,1));
  401. /* File operations: save and load private key */
  402. test_assert(! crypto_pk_write_private_key_to_filename(pk1,
  403. get_fname("pkey1")));
  404. /* failing case for read: can't read. */
  405. test_assert(crypto_pk_read_private_key_from_filename(pk2,
  406. get_fname("xyzzy")) < 0);
  407. write_str_to_file(get_fname("xyzzy"), "foobar", 6);
  408. /* Failing case for read: no key. */
  409. test_assert(crypto_pk_read_private_key_from_filename(pk2,
  410. get_fname("xyzzy")) < 0);
  411. test_assert(! crypto_pk_read_private_key_from_filename(pk2,
  412. get_fname("pkey1")));
  413. test_eq(15, crypto_pk_private_decrypt(pk2, data3, sizeof(data3), data1, 128,
  414. PK_PKCS1_OAEP_PADDING,1));
  415. /* Now try signing. */
  416. strlcpy(data1, "Ossifrage", 1024);
  417. test_eq(128, crypto_pk_private_sign(pk1, data2, sizeof(data2), data1, 10));
  418. test_eq(10,
  419. crypto_pk_public_checksig(pk1, data3, sizeof(data3), data2, 128));
  420. test_streq(data3, "Ossifrage");
  421. /* Try signing digests. */
  422. test_eq(128, crypto_pk_private_sign_digest(pk1, data2, sizeof(data2),
  423. data1, 10));
  424. test_eq(20,
  425. crypto_pk_public_checksig(pk1, data3, sizeof(data3), data2, 128));
  426. test_eq(0, crypto_pk_public_checksig_digest(pk1, data1, 10, data2, 128));
  427. test_eq(-1, crypto_pk_public_checksig_digest(pk1, data1, 11, data2, 128));
  428. /*XXXX test failed signing*/
  429. /* Try encoding */
  430. crypto_pk_free(pk2);
  431. pk2 = NULL;
  432. i = crypto_pk_asn1_encode(pk1, data1, 1024);
  433. test_assert(i>0);
  434. pk2 = crypto_pk_asn1_decode(data1, i);
  435. test_assert(crypto_pk_cmp_keys(pk1,pk2) == 0);
  436. /* Try with hybrid encryption wrappers. */
  437. crypto_rand(data1, 1024);
  438. for (i = 85; i < 140; ++i) {
  439. memset(data2,0,1024);
  440. memset(data3,0,1024);
  441. len = crypto_pk_public_hybrid_encrypt(pk1,data2,sizeof(data2),
  442. data1,i,PK_PKCS1_OAEP_PADDING,0);
  443. test_assert(len>=0);
  444. len = crypto_pk_private_hybrid_decrypt(pk1,data3,sizeof(data3),
  445. data2,len,PK_PKCS1_OAEP_PADDING,1);
  446. test_eq(len,i);
  447. test_memeq(data1,data3,i);
  448. }
  449. /* Try copy_full */
  450. crypto_pk_free(pk2);
  451. pk2 = crypto_pk_copy_full(pk1);
  452. test_assert(pk2 != NULL);
  453. test_neq_ptr(pk1, pk2);
  454. test_assert(crypto_pk_cmp_keys(pk1,pk2) == 0);
  455. done:
  456. if (pk1)
  457. crypto_pk_free(pk1);
  458. if (pk2)
  459. crypto_pk_free(pk2);
  460. tor_free(encoded);
  461. }
  462. static void
  463. test_crypto_pk_fingerprints(void *arg)
  464. {
  465. crypto_pk_t *pk = NULL;
  466. char encoded[512];
  467. char d[DIGEST_LEN], d2[DIGEST_LEN];
  468. char fingerprint[FINGERPRINT_LEN+1];
  469. int n;
  470. unsigned i;
  471. char *mem_op_hex_tmp=NULL;
  472. (void)arg;
  473. pk = pk_generate(1);
  474. tt_assert(pk);
  475. n = crypto_pk_asn1_encode(pk, encoded, sizeof(encoded));
  476. tt_int_op(n, >, 0);
  477. tt_int_op(n, >, 128);
  478. tt_int_op(n, <, 256);
  479. /* Is digest as expected? */
  480. crypto_digest(d, encoded, n);
  481. tt_int_op(0, ==, crypto_pk_get_digest(pk, d2));
  482. test_memeq(d, d2, DIGEST_LEN);
  483. /* Is fingerprint right? */
  484. tt_int_op(0, ==, crypto_pk_get_fingerprint(pk, fingerprint, 0));
  485. tt_int_op(strlen(fingerprint), ==, DIGEST_LEN * 2);
  486. test_memeq_hex(d, fingerprint);
  487. /* Are spaces right? */
  488. tt_int_op(0, ==, crypto_pk_get_fingerprint(pk, fingerprint, 1));
  489. for (i = 4; i < strlen(fingerprint); i += 5) {
  490. tt_int_op(fingerprint[i], ==, ' ');
  491. }
  492. tor_strstrip(fingerprint, " ");
  493. tt_int_op(strlen(fingerprint), ==, DIGEST_LEN * 2);
  494. test_memeq_hex(d, fingerprint);
  495. /* Now hash again and check crypto_pk_get_hashed_fingerprint. */
  496. crypto_digest(d2, d, sizeof(d));
  497. tt_int_op(0, ==, crypto_pk_get_hashed_fingerprint(pk, fingerprint));
  498. tt_int_op(strlen(fingerprint), ==, DIGEST_LEN * 2);
  499. test_memeq_hex(d2, fingerprint);
  500. done:
  501. crypto_pk_free(pk);
  502. tor_free(mem_op_hex_tmp);
  503. }
  504. /** Sanity check for crypto pk digests */
  505. static void
  506. test_crypto_digests(void)
  507. {
  508. crypto_pk_t *k = NULL;
  509. ssize_t r;
  510. digests_t pkey_digests;
  511. char digest[DIGEST_LEN];
  512. k = crypto_pk_new();
  513. test_assert(k);
  514. r = crypto_pk_read_private_key_from_string(k, AUTHORITY_SIGNKEY_3, -1);
  515. test_assert(!r);
  516. r = crypto_pk_get_digest(k, digest);
  517. test_assert(r == 0);
  518. test_memeq(hex_str(digest, DIGEST_LEN),
  519. AUTHORITY_SIGNKEY_A_DIGEST, HEX_DIGEST_LEN);
  520. r = crypto_pk_get_all_digests(k, &pkey_digests);
  521. test_memeq(hex_str(pkey_digests.d[DIGEST_SHA1], DIGEST_LEN),
  522. AUTHORITY_SIGNKEY_A_DIGEST, HEX_DIGEST_LEN);
  523. test_memeq(hex_str(pkey_digests.d[DIGEST_SHA256], DIGEST256_LEN),
  524. AUTHORITY_SIGNKEY_A_DIGEST256, HEX_DIGEST256_LEN);
  525. done:
  526. crypto_pk_free(k);
  527. }
  528. /** Run unit tests for misc crypto formatting functionality (base64, base32,
  529. * fingerprints, etc) */
  530. static void
  531. test_crypto_formats(void)
  532. {
  533. char *data1 = NULL, *data2 = NULL, *data3 = NULL;
  534. int i, j, idx;
  535. data1 = tor_malloc(1024);
  536. data2 = tor_malloc(1024);
  537. data3 = tor_malloc(1024);
  538. test_assert(data1 && data2 && data3);
  539. /* Base64 tests */
  540. memset(data1, 6, 1024);
  541. for (idx = 0; idx < 10; ++idx) {
  542. i = base64_encode(data2, 1024, data1, idx);
  543. test_assert(i >= 0);
  544. j = base64_decode(data3, 1024, data2, i);
  545. test_eq(j,idx);
  546. test_memeq(data3, data1, idx);
  547. }
  548. strlcpy(data1, "Test string that contains 35 chars.", 1024);
  549. strlcat(data1, " 2nd string that contains 35 chars.", 1024);
  550. i = base64_encode(data2, 1024, data1, 71);
  551. test_assert(i >= 0);
  552. j = base64_decode(data3, 1024, data2, i);
  553. test_eq(j, 71);
  554. test_streq(data3, data1);
  555. test_assert(data2[i] == '\0');
  556. crypto_rand(data1, DIGEST_LEN);
  557. memset(data2, 100, 1024);
  558. digest_to_base64(data2, data1);
  559. test_eq(BASE64_DIGEST_LEN, strlen(data2));
  560. test_eq(100, data2[BASE64_DIGEST_LEN+2]);
  561. memset(data3, 99, 1024);
  562. test_eq(digest_from_base64(data3, data2), 0);
  563. test_memeq(data1, data3, DIGEST_LEN);
  564. test_eq(99, data3[DIGEST_LEN+1]);
  565. test_assert(digest_from_base64(data3, "###") < 0);
  566. /* Encoding SHA256 */
  567. crypto_rand(data2, DIGEST256_LEN);
  568. memset(data2, 100, 1024);
  569. digest256_to_base64(data2, data1);
  570. test_eq(BASE64_DIGEST256_LEN, strlen(data2));
  571. test_eq(100, data2[BASE64_DIGEST256_LEN+2]);
  572. memset(data3, 99, 1024);
  573. test_eq(digest256_from_base64(data3, data2), 0);
  574. test_memeq(data1, data3, DIGEST256_LEN);
  575. test_eq(99, data3[DIGEST256_LEN+1]);
  576. /* Base32 tests */
  577. strlcpy(data1, "5chrs", 1024);
  578. /* bit pattern is: [35 63 68 72 73] ->
  579. * [00110101 01100011 01101000 01110010 01110011]
  580. * By 5s: [00110 10101 10001 10110 10000 11100 10011 10011]
  581. */
  582. base32_encode(data2, 9, data1, 5);
  583. test_streq(data2, "gvrwq4tt");
  584. strlcpy(data1, "\xFF\xF5\x6D\x44\xAE\x0D\x5C\xC9\x62\xC4", 1024);
  585. base32_encode(data2, 30, data1, 10);
  586. test_streq(data2, "772w2rfobvomsywe");
  587. /* Base16 tests */
  588. strlcpy(data1, "6chrs\xff", 1024);
  589. base16_encode(data2, 13, data1, 6);
  590. test_streq(data2, "3663687273FF");
  591. strlcpy(data1, "f0d678affc000100", 1024);
  592. i = base16_decode(data2, 8, data1, 16);
  593. test_eq(i,0);
  594. test_memeq(data2, "\xf0\xd6\x78\xaf\xfc\x00\x01\x00",8);
  595. /* now try some failing base16 decodes */
  596. test_eq(-1, base16_decode(data2, 8, data1, 15)); /* odd input len */
  597. test_eq(-1, base16_decode(data2, 7, data1, 16)); /* dest too short */
  598. strlcpy(data1, "f0dz!8affc000100", 1024);
  599. test_eq(-1, base16_decode(data2, 8, data1, 16));
  600. tor_free(data1);
  601. tor_free(data2);
  602. tor_free(data3);
  603. /* Add spaces to fingerprint */
  604. {
  605. data1 = tor_strdup("ABCD1234ABCD56780000ABCD1234ABCD56780000");
  606. test_eq(strlen(data1), 40);
  607. data2 = tor_malloc(FINGERPRINT_LEN+1);
  608. crypto_add_spaces_to_fp(data2, FINGERPRINT_LEN+1, data1);
  609. test_streq(data2, "ABCD 1234 ABCD 5678 0000 ABCD 1234 ABCD 5678 0000");
  610. tor_free(data1);
  611. tor_free(data2);
  612. }
  613. done:
  614. tor_free(data1);
  615. tor_free(data2);
  616. tor_free(data3);
  617. }
  618. /** Run unit tests for our secret-to-key passphrase hashing functionality. */
  619. static void
  620. test_crypto_s2k(void)
  621. {
  622. char buf[29];
  623. char buf2[29];
  624. char *buf3 = NULL;
  625. int i;
  626. memset(buf, 0, sizeof(buf));
  627. memset(buf2, 0, sizeof(buf2));
  628. buf3 = tor_malloc(65536);
  629. memset(buf3, 0, 65536);
  630. secret_to_key(buf+9, 20, "", 0, buf);
  631. crypto_digest(buf2+9, buf3, 1024);
  632. test_memeq(buf, buf2, 29);
  633. memcpy(buf,"vrbacrda",8);
  634. memcpy(buf2,"vrbacrda",8);
  635. buf[8] = 96;
  636. buf2[8] = 96;
  637. secret_to_key(buf+9, 20, "12345678", 8, buf);
  638. for (i = 0; i < 65536; i += 16) {
  639. memcpy(buf3+i, "vrbacrda12345678", 16);
  640. }
  641. crypto_digest(buf2+9, buf3, 65536);
  642. test_memeq(buf, buf2, 29);
  643. done:
  644. tor_free(buf3);
  645. }
  646. /** Test AES-CTR encryption and decryption with IV. */
  647. static void
  648. test_crypto_aes_iv(void *arg)
  649. {
  650. char *plain, *encrypted1, *encrypted2, *decrypted1, *decrypted2;
  651. char plain_1[1], plain_15[15], plain_16[16], plain_17[17];
  652. char key1[16], key2[16];
  653. ssize_t encrypted_size, decrypted_size;
  654. int use_evp = !strcmp(arg,"evp");
  655. evaluate_evp_for_aes(use_evp);
  656. plain = tor_malloc(4095);
  657. encrypted1 = tor_malloc(4095 + 1 + 16);
  658. encrypted2 = tor_malloc(4095 + 1 + 16);
  659. decrypted1 = tor_malloc(4095 + 1);
  660. decrypted2 = tor_malloc(4095 + 1);
  661. crypto_rand(plain, 4095);
  662. crypto_rand(key1, 16);
  663. crypto_rand(key2, 16);
  664. crypto_rand(plain_1, 1);
  665. crypto_rand(plain_15, 15);
  666. crypto_rand(plain_16, 16);
  667. crypto_rand(plain_17, 17);
  668. key1[0] = key2[0] + 128; /* Make sure that contents are different. */
  669. /* Encrypt and decrypt with the same key. */
  670. encrypted_size = crypto_cipher_encrypt_with_iv(key1, encrypted1, 16 + 4095,
  671. plain, 4095);
  672. test_eq(encrypted_size, 16 + 4095);
  673. tt_assert(encrypted_size > 0); /* This is obviously true, since 4111 is
  674. * greater than 0, but its truth is not
  675. * obvious to all analysis tools. */
  676. decrypted_size = crypto_cipher_decrypt_with_iv(key1, decrypted1, 4095,
  677. encrypted1, encrypted_size);
  678. test_eq(decrypted_size, 4095);
  679. tt_assert(decrypted_size > 0);
  680. test_memeq(plain, decrypted1, 4095);
  681. /* Encrypt a second time (with a new random initialization vector). */
  682. encrypted_size = crypto_cipher_encrypt_with_iv(key1, encrypted2, 16 + 4095,
  683. plain, 4095);
  684. test_eq(encrypted_size, 16 + 4095);
  685. tt_assert(encrypted_size > 0);
  686. decrypted_size = crypto_cipher_decrypt_with_iv(key1, decrypted2, 4095,
  687. encrypted2, encrypted_size);
  688. test_eq(decrypted_size, 4095);
  689. tt_assert(decrypted_size > 0);
  690. test_memeq(plain, decrypted2, 4095);
  691. test_memneq(encrypted1, encrypted2, encrypted_size);
  692. /* Decrypt with the wrong key. */
  693. decrypted_size = crypto_cipher_decrypt_with_iv(key2, decrypted2, 4095,
  694. encrypted1, encrypted_size);
  695. test_eq(decrypted_size, 4095);
  696. test_memneq(plain, decrypted2, decrypted_size);
  697. /* Alter the initialization vector. */
  698. encrypted1[0] += 42;
  699. decrypted_size = crypto_cipher_decrypt_with_iv(key1, decrypted1, 4095,
  700. encrypted1, encrypted_size);
  701. test_eq(decrypted_size, 4095);
  702. test_memneq(plain, decrypted2, 4095);
  703. /* Special length case: 1. */
  704. encrypted_size = crypto_cipher_encrypt_with_iv(key1, encrypted1, 16 + 1,
  705. plain_1, 1);
  706. test_eq(encrypted_size, 16 + 1);
  707. tt_assert(encrypted_size > 0);
  708. decrypted_size = crypto_cipher_decrypt_with_iv(key1, decrypted1, 1,
  709. encrypted1, encrypted_size);
  710. test_eq(decrypted_size, 1);
  711. tt_assert(decrypted_size > 0);
  712. test_memeq(plain_1, decrypted1, 1);
  713. /* Special length case: 15. */
  714. encrypted_size = crypto_cipher_encrypt_with_iv(key1, encrypted1, 16 + 15,
  715. plain_15, 15);
  716. test_eq(encrypted_size, 16 + 15);
  717. tt_assert(encrypted_size > 0);
  718. decrypted_size = crypto_cipher_decrypt_with_iv(key1, decrypted1, 15,
  719. encrypted1, encrypted_size);
  720. test_eq(decrypted_size, 15);
  721. tt_assert(decrypted_size > 0);
  722. test_memeq(plain_15, decrypted1, 15);
  723. /* Special length case: 16. */
  724. encrypted_size = crypto_cipher_encrypt_with_iv(key1, encrypted1, 16 + 16,
  725. plain_16, 16);
  726. test_eq(encrypted_size, 16 + 16);
  727. tt_assert(encrypted_size > 0);
  728. decrypted_size = crypto_cipher_decrypt_with_iv(key1, decrypted1, 16,
  729. encrypted1, encrypted_size);
  730. test_eq(decrypted_size, 16);
  731. tt_assert(decrypted_size > 0);
  732. test_memeq(plain_16, decrypted1, 16);
  733. /* Special length case: 17. */
  734. encrypted_size = crypto_cipher_encrypt_with_iv(key1, encrypted1, 16 + 17,
  735. plain_17, 17);
  736. test_eq(encrypted_size, 16 + 17);
  737. tt_assert(encrypted_size > 0);
  738. decrypted_size = crypto_cipher_decrypt_with_iv(key1, decrypted1, 17,
  739. encrypted1, encrypted_size);
  740. test_eq(decrypted_size, 17);
  741. tt_assert(decrypted_size > 0);
  742. test_memeq(plain_17, decrypted1, 17);
  743. done:
  744. /* Free memory. */
  745. tor_free(plain);
  746. tor_free(encrypted1);
  747. tor_free(encrypted2);
  748. tor_free(decrypted1);
  749. tor_free(decrypted2);
  750. }
  751. /** Test base32 decoding. */
  752. static void
  753. test_crypto_base32_decode(void)
  754. {
  755. char plain[60], encoded[96 + 1], decoded[60];
  756. int res;
  757. crypto_rand(plain, 60);
  758. /* Encode and decode a random string. */
  759. base32_encode(encoded, 96 + 1, plain, 60);
  760. res = base32_decode(decoded, 60, encoded, 96);
  761. test_eq(res, 0);
  762. test_memeq(plain, decoded, 60);
  763. /* Encode, uppercase, and decode a random string. */
  764. base32_encode(encoded, 96 + 1, plain, 60);
  765. tor_strupper(encoded);
  766. res = base32_decode(decoded, 60, encoded, 96);
  767. test_eq(res, 0);
  768. test_memeq(plain, decoded, 60);
  769. /* Change encoded string and decode. */
  770. if (encoded[0] == 'A' || encoded[0] == 'a')
  771. encoded[0] = 'B';
  772. else
  773. encoded[0] = 'A';
  774. res = base32_decode(decoded, 60, encoded, 96);
  775. test_eq(res, 0);
  776. test_memneq(plain, decoded, 60);
  777. /* Bad encodings. */
  778. encoded[0] = '!';
  779. res = base32_decode(decoded, 60, encoded, 96);
  780. test_assert(res < 0);
  781. done:
  782. ;
  783. }
  784. static void
  785. test_crypto_kdf_TAP(void *arg)
  786. {
  787. uint8_t key_material[100];
  788. int r;
  789. char *mem_op_hex_tmp = NULL;
  790. (void)arg;
  791. #define EXPAND(s) \
  792. r = crypto_expand_key_material_TAP( \
  793. (const uint8_t*)(s), strlen(s), \
  794. key_material, 100)
  795. /* Test vectors generated with a little python script; feel free to write
  796. * your own. */
  797. memset(key_material, 0, sizeof(key_material));
  798. EXPAND("");
  799. tt_int_op(r, ==, 0);
  800. test_memeq_hex(key_material,
  801. "5ba93c9db0cff93f52b521d7420e43f6eda2784fbf8b4530d8"
  802. "d246dd74ac53a13471bba17941dff7c4ea21bb365bbeeaf5f2"
  803. "c654883e56d11e43c44e9842926af7ca0a8cca12604f945414"
  804. "f07b01e13da42c6cf1de3abfdea9b95f34687cbbe92b9a7383");
  805. EXPAND("Tor");
  806. tt_int_op(r, ==, 0);
  807. test_memeq_hex(key_material,
  808. "776c6214fc647aaa5f683c737ee66ec44f03d0372e1cce6922"
  809. "7950f236ddf1e329a7ce7c227903303f525a8c6662426e8034"
  810. "870642a6dabbd41b5d97ec9bf2312ea729992f48f8ea2d0ba8"
  811. "3f45dfda1a80bdc8b80de01b23e3e0ffae099b3e4ccf28dc28");
  812. EXPAND("AN ALARMING ITEM TO FIND ON A MONTHLY AUTO-DEBIT NOTICE");
  813. tt_int_op(r, ==, 0);
  814. test_memeq_hex(key_material,
  815. "a340b5d126086c3ab29c2af4179196dbf95e1c72431419d331"
  816. "4844bf8f6afb6098db952b95581fb6c33625709d6f4400b8e7"
  817. "ace18a70579fad83c0982ef73f89395bcc39493ad53a685854"
  818. "daf2ba9b78733b805d9a6824c907ee1dba5ac27a1e466d4d10");
  819. done:
  820. tor_free(mem_op_hex_tmp);
  821. #undef EXPAND
  822. }
  823. static void
  824. test_crypto_hkdf_sha256(void *arg)
  825. {
  826. uint8_t key_material[100];
  827. const uint8_t salt[] = "ntor-curve25519-sha256-1:key_extract";
  828. const size_t salt_len = strlen((char*)salt);
  829. const uint8_t m_expand[] = "ntor-curve25519-sha256-1:key_expand";
  830. const size_t m_expand_len = strlen((char*)m_expand);
  831. int r;
  832. char *mem_op_hex_tmp = NULL;
  833. (void)arg;
  834. #define EXPAND(s) \
  835. r = crypto_expand_key_material_rfc5869_sha256( \
  836. (const uint8_t*)(s), strlen(s), \
  837. salt, salt_len, \
  838. m_expand, m_expand_len, \
  839. key_material, 100)
  840. /* Test vectors generated with ntor_ref.py */
  841. memset(key_material, 0, sizeof(key_material));
  842. EXPAND("");
  843. tt_int_op(r, ==, 0);
  844. test_memeq_hex(key_material,
  845. "d3490ed48b12a48f9547861583573fe3f19aafe3f81dc7fc75"
  846. "eeed96d741b3290f941576c1f9f0b2d463d1ec7ab2c6bf71cd"
  847. "d7f826c6298c00dbfe6711635d7005f0269493edf6046cc7e7"
  848. "dcf6abe0d20c77cf363e8ffe358927817a3d3e73712cee28d8");
  849. EXPAND("Tor");
  850. tt_int_op(r, ==, 0);
  851. test_memeq_hex(key_material,
  852. "5521492a85139a8d9107a2d5c0d9c91610d0f95989975ebee6"
  853. "c02a4f8d622a6cfdf9b7c7edd3832e2760ded1eac309b76f8d"
  854. "66c4a3c4d6225429b3a016e3c3d45911152fc87bc2de9630c3"
  855. "961be9fdb9f93197ea8e5977180801926d3321fa21513e59ac");
  856. EXPAND("AN ALARMING ITEM TO FIND ON YOUR CREDIT-RATING STATEMENT");
  857. tt_int_op(r, ==, 0);
  858. test_memeq_hex(key_material,
  859. "a2aa9b50da7e481d30463adb8f233ff06e9571a0ca6ab6df0f"
  860. "b206fa34e5bc78d063fc291501beec53b36e5a0e434561200c"
  861. "5f8bd13e0f88b3459600b4dc21d69363e2895321c06184879d"
  862. "94b18f078411be70b767c7fc40679a9440a0c95ea83a23efbf");
  863. done:
  864. tor_free(mem_op_hex_tmp);
  865. #undef EXPAND
  866. }
  867. #ifdef CURVE25519_ENABLED
  868. static void
  869. test_crypto_curve25519_impl(void *arg)
  870. {
  871. /* adapted from curve25519_donna, which adapted it from test-curve25519
  872. version 20050915, by D. J. Bernstein, Public domain. */
  873. const int randomize_high_bit = (arg != NULL);
  874. #ifdef SLOW_CURVE25519_TEST
  875. const int loop_max=10000;
  876. const char e1_expected[] = "4faf81190869fd742a33691b0e0824d5"
  877. "7e0329f4dd2819f5f32d130f1296b500";
  878. const char e2k_expected[] = "05aec13f92286f3a781ccae98995a3b9"
  879. "e0544770bc7de853b38f9100489e3e79";
  880. const char e1e2k_expected[] = "cd6e8269104eb5aaee886bd2071fba88"
  881. "bd13861475516bc2cd2b6e005e805064";
  882. #else
  883. const int loop_max=200;
  884. const char e1_expected[] = "bc7112cde03f97ef7008cad1bdc56be3"
  885. "c6a1037d74cceb3712e9206871dcf654";
  886. const char e2k_expected[] = "dd8fa254fb60bdb5142fe05b1f5de44d"
  887. "8e3ee1a63c7d14274ea5d4c67f065467";
  888. const char e1e2k_expected[] = "7ddb98bd89025d2347776b33901b3e7e"
  889. "c0ee98cb2257a4545c0cfb2ca3e1812b";
  890. #endif
  891. unsigned char e1k[32];
  892. unsigned char e2k[32];
  893. unsigned char e1e2k[32];
  894. unsigned char e2e1k[32];
  895. unsigned char e1[32] = {3};
  896. unsigned char e2[32] = {5};
  897. unsigned char k[32] = {9};
  898. int loop, i;
  899. char *mem_op_hex_tmp = NULL;
  900. for (loop = 0; loop < loop_max; ++loop) {
  901. curve25519_impl(e1k,e1,k);
  902. curve25519_impl(e2e1k,e2,e1k);
  903. curve25519_impl(e2k,e2,k);
  904. if (randomize_high_bit) {
  905. /* We require that the high bit of the public key be ignored. So if
  906. * we're doing this variant test, we randomize the high bit of e2k, and
  907. * make sure that the handshake still works out the same as it would
  908. * otherwise. */
  909. uint8_t byte;
  910. crypto_rand((char*)&byte, 1);
  911. e2k[31] |= (byte & 0x80);
  912. }
  913. curve25519_impl(e1e2k,e1,e2k);
  914. test_memeq(e1e2k, e2e1k, 32);
  915. if (loop == loop_max-1) {
  916. break;
  917. }
  918. for (i = 0;i < 32;++i) e1[i] ^= e2k[i];
  919. for (i = 0;i < 32;++i) e2[i] ^= e1k[i];
  920. for (i = 0;i < 32;++i) k[i] ^= e1e2k[i];
  921. }
  922. test_memeq_hex(e1, e1_expected);
  923. test_memeq_hex(e2k, e2k_expected);
  924. test_memeq_hex(e1e2k, e1e2k_expected);
  925. done:
  926. tor_free(mem_op_hex_tmp);
  927. }
  928. static void
  929. test_crypto_curve25519_wrappers(void *arg)
  930. {
  931. curve25519_public_key_t pubkey1, pubkey2;
  932. curve25519_secret_key_t seckey1, seckey2;
  933. uint8_t output1[CURVE25519_OUTPUT_LEN];
  934. uint8_t output2[CURVE25519_OUTPUT_LEN];
  935. (void)arg;
  936. /* Test a simple handshake, serializing and deserializing some stuff. */
  937. curve25519_secret_key_generate(&seckey1, 0);
  938. curve25519_secret_key_generate(&seckey2, 1);
  939. curve25519_public_key_generate(&pubkey1, &seckey1);
  940. curve25519_public_key_generate(&pubkey2, &seckey2);
  941. test_assert(curve25519_public_key_is_ok(&pubkey1));
  942. test_assert(curve25519_public_key_is_ok(&pubkey2));
  943. curve25519_handshake(output1, &seckey1, &pubkey2);
  944. curve25519_handshake(output2, &seckey2, &pubkey1);
  945. test_memeq(output1, output2, sizeof(output1));
  946. done:
  947. ;
  948. }
  949. static void
  950. test_crypto_curve25519_encode(void *arg)
  951. {
  952. curve25519_secret_key_t seckey;
  953. curve25519_public_key_t key1, key2, key3;
  954. char buf[64];
  955. (void)arg;
  956. curve25519_secret_key_generate(&seckey, 0);
  957. curve25519_public_key_generate(&key1, &seckey);
  958. tt_int_op(0, ==, curve25519_public_to_base64(buf, &key1));
  959. tt_int_op(CURVE25519_BASE64_PADDED_LEN, ==, strlen(buf));
  960. tt_int_op(0, ==, curve25519_public_from_base64(&key2, buf));
  961. test_memeq(key1.public_key, key2.public_key, CURVE25519_PUBKEY_LEN);
  962. buf[CURVE25519_BASE64_PADDED_LEN - 1] = '\0';
  963. tt_int_op(CURVE25519_BASE64_PADDED_LEN-1, ==, strlen(buf));
  964. tt_int_op(0, ==, curve25519_public_from_base64(&key3, buf));
  965. test_memeq(key1.public_key, key3.public_key, CURVE25519_PUBKEY_LEN);
  966. /* Now try bogus parses. */
  967. strlcpy(buf, "$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$=", sizeof(buf));
  968. tt_int_op(-1, ==, curve25519_public_from_base64(&key3, buf));
  969. strlcpy(buf, "$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$", sizeof(buf));
  970. tt_int_op(-1, ==, curve25519_public_from_base64(&key3, buf));
  971. strlcpy(buf, "xxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxx", sizeof(buf));
  972. tt_int_op(-1, ==, curve25519_public_from_base64(&key3, buf));
  973. done:
  974. ;
  975. }
  976. static void
  977. test_crypto_curve25519_persist(void *arg)
  978. {
  979. curve25519_keypair_t keypair, keypair2;
  980. char *fname = tor_strdup(get_fname("curve25519_keypair"));
  981. char *tag = NULL;
  982. char *content = NULL;
  983. const char *cp;
  984. struct stat st;
  985. size_t taglen;
  986. (void)arg;
  987. tt_int_op(0,==,curve25519_keypair_generate(&keypair, 0));
  988. tt_int_op(0,==,curve25519_keypair_write_to_file(&keypair, fname, "testing"));
  989. tt_int_op(0,==,curve25519_keypair_read_from_file(&keypair2, &tag, fname));
  990. tt_str_op(tag,==,"testing");
  991. tor_free(tag);
  992. test_memeq(keypair.pubkey.public_key,
  993. keypair2.pubkey.public_key,
  994. CURVE25519_PUBKEY_LEN);
  995. test_memeq(keypair.seckey.secret_key,
  996. keypair2.seckey.secret_key,
  997. CURVE25519_SECKEY_LEN);
  998. content = read_file_to_str(fname, RFTS_BIN, &st);
  999. tt_assert(content);
  1000. taglen = strlen("== c25519v1: testing ==");
  1001. tt_u64_op((uint64_t)st.st_size, ==,
  1002. 32+CURVE25519_PUBKEY_LEN+CURVE25519_SECKEY_LEN);
  1003. tt_assert(fast_memeq(content, "== c25519v1: testing ==", taglen));
  1004. tt_assert(tor_mem_is_zero(content+taglen, 32-taglen));
  1005. cp = content + 32;
  1006. test_memeq(keypair.seckey.secret_key,
  1007. cp,
  1008. CURVE25519_SECKEY_LEN);
  1009. cp += CURVE25519_SECKEY_LEN;
  1010. test_memeq(keypair.pubkey.public_key,
  1011. cp,
  1012. CURVE25519_SECKEY_LEN);
  1013. tor_free(fname);
  1014. fname = tor_strdup(get_fname("bogus_keypair"));
  1015. tt_int_op(-1, ==, curve25519_keypair_read_from_file(&keypair2, &tag, fname));
  1016. tor_free(tag);
  1017. content[69] ^= 0xff;
  1018. tt_int_op(0, ==, write_bytes_to_file(fname, content, (size_t)st.st_size, 1));
  1019. tt_int_op(-1, ==, curve25519_keypair_read_from_file(&keypair2, &tag, fname));
  1020. done:
  1021. tor_free(fname);
  1022. tor_free(content);
  1023. tor_free(tag);
  1024. }
  1025. static void
  1026. test_crypto_ed25519_simple(void *arg)
  1027. {
  1028. ed25519_keypair_t kp1, kp2;
  1029. ed25519_public_key_t pub1, pub2;
  1030. ed25519_secret_key_t sec1, sec2;
  1031. ed25519_signature_t sig1, sig2;
  1032. const uint8_t msg[] =
  1033. "GNU will be able to run Unix programs, "
  1034. "but will not be identical to Unix.";
  1035. const uint8_t msg2[] =
  1036. "Microsoft Windows extends the features of the DOS operating system, "
  1037. "yet is compatible with most existing applications that run under DOS.";
  1038. size_t msg_len = strlen((const char*)msg);
  1039. size_t msg2_len = strlen((const char*)msg2);
  1040. (void)arg;
  1041. tt_int_op(0, ==, ed25519_secret_key_generate(&sec1, 0));
  1042. tt_int_op(0, ==, ed25519_secret_key_generate(&sec2, 1));
  1043. tt_int_op(0, ==, ed25519_public_key_generate(&pub1, &sec1));
  1044. tt_int_op(0, ==, ed25519_public_key_generate(&pub2, &sec1));
  1045. test_memeq(pub1.pubkey, pub2.pubkey, sizeof(pub1.pubkey));
  1046. memcpy(&kp1.pubkey, &pub1, sizeof(pub1));
  1047. memcpy(&kp1.seckey, &sec1, sizeof(sec1));
  1048. tt_int_op(0, ==, ed25519_sign(&sig1, msg, msg_len, &kp1));
  1049. tt_int_op(0, ==, ed25519_sign(&sig2, msg, msg_len, &kp1));
  1050. /* Ed25519 signatures are deterministic */
  1051. test_memeq(sig1.sig, sig2.sig, sizeof(sig1.sig));
  1052. /* Basic signature is valid. */
  1053. tt_int_op(0, ==, ed25519_checksig(&sig1, msg, msg_len, &pub1));
  1054. /* Altered signature doesn't work. */
  1055. sig1.sig[0] ^= 3;
  1056. tt_int_op(-1, ==, ed25519_checksig(&sig1, msg, msg_len, &pub1));
  1057. /* Wrong public key doesn't work. */
  1058. tt_int_op(0, ==, ed25519_public_key_generate(&pub2, &sec2));
  1059. tt_int_op(-1, ==, ed25519_checksig(&sig2, msg, msg_len, &pub2));
  1060. /* Wrong message doesn't work. */
  1061. tt_int_op(0, ==, ed25519_checksig(&sig2, msg, msg_len, &pub1));
  1062. tt_int_op(-1, ==, ed25519_checksig(&sig2, msg, msg_len-1, &pub1));
  1063. tt_int_op(-1, ==, ed25519_checksig(&sig2, msg2, msg2_len, &pub1));
  1064. /* Batch signature checking works with some bad. */
  1065. tt_int_op(0, ==, ed25519_keypair_generate(&kp2, 0));
  1066. tt_int_op(0, ==, ed25519_sign(&sig1, msg, msg_len, &kp2));
  1067. {
  1068. ed25519_checkable_t ch[] = {
  1069. { &pub1, sig2, msg, msg_len }, /*ok*/
  1070. { &pub1, sig2, msg, msg_len-1 }, /*bad*/
  1071. { &kp2.pubkey, sig2, msg2, msg2_len }, /*bad*/
  1072. { &kp2.pubkey, sig1, msg, msg_len }, /*ok*/
  1073. };
  1074. int okay[4];
  1075. tt_int_op(-2, ==, ed25519_checksig_batch(okay, ch, 4));
  1076. tt_int_op(okay[0], ==, 1);
  1077. tt_int_op(okay[1], ==, 0);
  1078. tt_int_op(okay[2], ==, 0);
  1079. tt_int_op(okay[3], ==, 1);
  1080. tt_int_op(-2, ==, ed25519_checksig_batch(NULL, ch, 4));
  1081. }
  1082. /* Batch signature checking works with all good. */
  1083. {
  1084. ed25519_checkable_t ch[] = {
  1085. { &pub1, sig2, msg, msg_len }, /*ok*/
  1086. { &kp2.pubkey, sig1, msg, msg_len }, /*ok*/
  1087. };
  1088. int okay[2];
  1089. tt_int_op(0, ==, ed25519_checksig_batch(okay, ch, 2));
  1090. tt_int_op(okay[0], ==, 1);
  1091. tt_int_op(okay[1], ==, 1);
  1092. tt_int_op(0, ==, ed25519_checksig_batch(NULL, ch, 2));
  1093. }
  1094. done:
  1095. ;
  1096. }
  1097. static void
  1098. test_crypto_ed25519_test_vectors(void *arg)
  1099. {
  1100. char *mem_op_hex_tmp=NULL;
  1101. int i;
  1102. struct {
  1103. const char *sk;
  1104. const char *pk;
  1105. const char *sig;
  1106. const char *msg;
  1107. } items[] = {
  1108. /* These test vectors were generated with the "ref" implementation of
  1109. * ed25519 from SUPERCOP-20130419 */
  1110. { "4c6574277320686f706520746865726520617265206e6f206275677320696e20",
  1111. "f3e0e493b30f56e501aeb868fc912fe0c8b76621efca47a78f6d75875193dd87",
  1112. "b5d7fd6fd3adf643647ce1fe87a2931dedd1a4e38e6c662bedd35cdd80bfac51"
  1113. "1b2c7d1ee6bd929ac213014e1a8dc5373854c7b25dbe15ec96bf6c94196fae06",
  1114. "506c6561736520657863757365206d7920667269656e642e2048652069736e2774"
  1115. "204e554c2d7465726d696e617465642e"
  1116. },
  1117. { "74686520696d706c656d656e746174696f6e20776869636820617265206e6f74",
  1118. "407f0025a1e1351a4cb68e92f5c0ebaf66e7aaf93a4006a4d1a66e3ede1cfeac",
  1119. "02884fde1c3c5944d0ecf2d133726fc820c303aae695adceabf3a1e01e95bf28"
  1120. "da88c0966f5265e9c6f8edc77b3b96b5c91baec3ca993ccd21a3f64203600601",
  1121. "506c6561736520657863757365206d7920667269656e642e2048652069736e2774"
  1122. "204e554c2d7465726d696e617465642e"
  1123. },
  1124. { "6578706f73656420627920456e676c697368207465787420617320696e707574",
  1125. "61681cb5fbd69f9bc5a462a21a7ab319011237b940bc781cdc47fcbe327e7706",
  1126. "6a127d0414de7510125d4bc214994ffb9b8857a46330832d05d1355e882344ad"
  1127. "f4137e3ca1f13eb9cc75c887ef2309b98c57528b4acd9f6376c6898889603209",
  1128. "506c6561736520657863757365206d7920667269656e642e2048652069736e2774"
  1129. "204e554c2d7465726d696e617465642e"
  1130. },
  1131. /* These come from "sign.input" in ed25519's page */
  1132. { "5b5a619f8ce1c66d7ce26e5a2ae7b0c04febcd346d286c929e19d0d5973bfef9",
  1133. "6fe83693d011d111131c4f3fbaaa40a9d3d76b30012ff73bb0e39ec27ab18257",
  1134. "0f9ad9793033a2fa06614b277d37381e6d94f65ac2a5a94558d09ed6ce922258"
  1135. "c1a567952e863ac94297aec3c0d0c8ddf71084e504860bb6ba27449b55adc40e",
  1136. "5a8d9d0a22357e6655f9c785"
  1137. },
  1138. { "940c89fe40a81dafbdb2416d14ae469119869744410c3303bfaa0241dac57800",
  1139. "a2eb8c0501e30bae0cf842d2bde8dec7386f6b7fc3981b8c57c9792bb94cf2dd",
  1140. "d8bb64aad8c9955a115a793addd24f7f2b077648714f49c4694ec995b330d09d"
  1141. "640df310f447fd7b6cb5c14f9fe9f490bcf8cfadbfd2169c8ac20d3b8af49a0c",
  1142. "b87d3813e03f58cf19fd0b6395"
  1143. },
  1144. { "9acad959d216212d789a119252ebfe0c96512a23c73bd9f3b202292d6916a738",
  1145. "cf3af898467a5b7a52d33d53bc037e2642a8da996903fc252217e9c033e2f291",
  1146. "6ee3fe81e23c60eb2312b2006b3b25e6838e02106623f844c44edb8dafd66ab0"
  1147. "671087fd195df5b8f58a1d6e52af42908053d55c7321010092748795ef94cf06",
  1148. "55c7fa434f5ed8cdec2b7aeac173",
  1149. },
  1150. { "d5aeee41eeb0e9d1bf8337f939587ebe296161e6bf5209f591ec939e1440c300",
  1151. "fd2a565723163e29f53c9de3d5e8fbe36a7ab66e1439ec4eae9c0a604af291a5",
  1152. "f68d04847e5b249737899c014d31c805c5007a62c0a10d50bb1538c5f3550395"
  1153. "1fbc1e08682f2cc0c92efe8f4985dec61dcbd54d4b94a22547d24451271c8b00",
  1154. "0a688e79be24f866286d4646b5d81c"
  1155. },
  1156. { NULL, NULL, NULL, NULL}
  1157. };
  1158. (void)arg;
  1159. for (i = 0; items[i].pk; ++i) {
  1160. ed25519_keypair_t kp;
  1161. ed25519_signature_t sig;
  1162. uint8_t *msg;
  1163. size_t msg_len;
  1164. base16_decode((char*)kp.seckey.seckey, sizeof(kp.seckey.seckey),
  1165. items[i].sk, 64);
  1166. tt_int_op(0, ==, ed25519_public_key_generate(&kp.pubkey, &kp.seckey));
  1167. test_memeq_hex(kp.pubkey.pubkey, items[i].pk);
  1168. msg_len = strlen(items[i].msg) / 2;
  1169. msg = tor_malloc(msg_len);
  1170. base16_decode((char*)msg, msg_len, items[i].msg, strlen(items[i].msg));
  1171. tt_int_op(0, ==, ed25519_sign(&sig, msg, msg_len, &kp));
  1172. test_memeq_hex(sig.sig, items[i].sig);
  1173. tor_free(msg);
  1174. }
  1175. done:
  1176. tor_free(mem_op_hex_tmp);
  1177. }
  1178. /* XXX
  1179. Check known values for secret->public, for public,msg->signature.
  1180. */
  1181. #endif
  1182. static void
  1183. test_crypto_siphash(void *arg)
  1184. {
  1185. /* From the reference implementation, taking
  1186. k = 00 01 02 ... 0f
  1187. and in = 00; 00 01; 00 01 02; ...
  1188. */
  1189. const uint8_t VECTORS[64][8] =
  1190. {
  1191. { 0x31, 0x0e, 0x0e, 0xdd, 0x47, 0xdb, 0x6f, 0x72, },
  1192. { 0xfd, 0x67, 0xdc, 0x93, 0xc5, 0x39, 0xf8, 0x74, },
  1193. { 0x5a, 0x4f, 0xa9, 0xd9, 0x09, 0x80, 0x6c, 0x0d, },
  1194. { 0x2d, 0x7e, 0xfb, 0xd7, 0x96, 0x66, 0x67, 0x85, },
  1195. { 0xb7, 0x87, 0x71, 0x27, 0xe0, 0x94, 0x27, 0xcf, },
  1196. { 0x8d, 0xa6, 0x99, 0xcd, 0x64, 0x55, 0x76, 0x18, },
  1197. { 0xce, 0xe3, 0xfe, 0x58, 0x6e, 0x46, 0xc9, 0xcb, },
  1198. { 0x37, 0xd1, 0x01, 0x8b, 0xf5, 0x00, 0x02, 0xab, },
  1199. { 0x62, 0x24, 0x93, 0x9a, 0x79, 0xf5, 0xf5, 0x93, },
  1200. { 0xb0, 0xe4, 0xa9, 0x0b, 0xdf, 0x82, 0x00, 0x9e, },
  1201. { 0xf3, 0xb9, 0xdd, 0x94, 0xc5, 0xbb, 0x5d, 0x7a, },
  1202. { 0xa7, 0xad, 0x6b, 0x22, 0x46, 0x2f, 0xb3, 0xf4, },
  1203. { 0xfb, 0xe5, 0x0e, 0x86, 0xbc, 0x8f, 0x1e, 0x75, },
  1204. { 0x90, 0x3d, 0x84, 0xc0, 0x27, 0x56, 0xea, 0x14, },
  1205. { 0xee, 0xf2, 0x7a, 0x8e, 0x90, 0xca, 0x23, 0xf7, },
  1206. { 0xe5, 0x45, 0xbe, 0x49, 0x61, 0xca, 0x29, 0xa1, },
  1207. { 0xdb, 0x9b, 0xc2, 0x57, 0x7f, 0xcc, 0x2a, 0x3f, },
  1208. { 0x94, 0x47, 0xbe, 0x2c, 0xf5, 0xe9, 0x9a, 0x69, },
  1209. { 0x9c, 0xd3, 0x8d, 0x96, 0xf0, 0xb3, 0xc1, 0x4b, },
  1210. { 0xbd, 0x61, 0x79, 0xa7, 0x1d, 0xc9, 0x6d, 0xbb, },
  1211. { 0x98, 0xee, 0xa2, 0x1a, 0xf2, 0x5c, 0xd6, 0xbe, },
  1212. { 0xc7, 0x67, 0x3b, 0x2e, 0xb0, 0xcb, 0xf2, 0xd0, },
  1213. { 0x88, 0x3e, 0xa3, 0xe3, 0x95, 0x67, 0x53, 0x93, },
  1214. { 0xc8, 0xce, 0x5c, 0xcd, 0x8c, 0x03, 0x0c, 0xa8, },
  1215. { 0x94, 0xaf, 0x49, 0xf6, 0xc6, 0x50, 0xad, 0xb8, },
  1216. { 0xea, 0xb8, 0x85, 0x8a, 0xde, 0x92, 0xe1, 0xbc, },
  1217. { 0xf3, 0x15, 0xbb, 0x5b, 0xb8, 0x35, 0xd8, 0x17, },
  1218. { 0xad, 0xcf, 0x6b, 0x07, 0x63, 0x61, 0x2e, 0x2f, },
  1219. { 0xa5, 0xc9, 0x1d, 0xa7, 0xac, 0xaa, 0x4d, 0xde, },
  1220. { 0x71, 0x65, 0x95, 0x87, 0x66, 0x50, 0xa2, 0xa6, },
  1221. { 0x28, 0xef, 0x49, 0x5c, 0x53, 0xa3, 0x87, 0xad, },
  1222. { 0x42, 0xc3, 0x41, 0xd8, 0xfa, 0x92, 0xd8, 0x32, },
  1223. { 0xce, 0x7c, 0xf2, 0x72, 0x2f, 0x51, 0x27, 0x71, },
  1224. { 0xe3, 0x78, 0x59, 0xf9, 0x46, 0x23, 0xf3, 0xa7, },
  1225. { 0x38, 0x12, 0x05, 0xbb, 0x1a, 0xb0, 0xe0, 0x12, },
  1226. { 0xae, 0x97, 0xa1, 0x0f, 0xd4, 0x34, 0xe0, 0x15, },
  1227. { 0xb4, 0xa3, 0x15, 0x08, 0xbe, 0xff, 0x4d, 0x31, },
  1228. { 0x81, 0x39, 0x62, 0x29, 0xf0, 0x90, 0x79, 0x02, },
  1229. { 0x4d, 0x0c, 0xf4, 0x9e, 0xe5, 0xd4, 0xdc, 0xca, },
  1230. { 0x5c, 0x73, 0x33, 0x6a, 0x76, 0xd8, 0xbf, 0x9a, },
  1231. { 0xd0, 0xa7, 0x04, 0x53, 0x6b, 0xa9, 0x3e, 0x0e, },
  1232. { 0x92, 0x59, 0x58, 0xfc, 0xd6, 0x42, 0x0c, 0xad, },
  1233. { 0xa9, 0x15, 0xc2, 0x9b, 0xc8, 0x06, 0x73, 0x18, },
  1234. { 0x95, 0x2b, 0x79, 0xf3, 0xbc, 0x0a, 0xa6, 0xd4, },
  1235. { 0xf2, 0x1d, 0xf2, 0xe4, 0x1d, 0x45, 0x35, 0xf9, },
  1236. { 0x87, 0x57, 0x75, 0x19, 0x04, 0x8f, 0x53, 0xa9, },
  1237. { 0x10, 0xa5, 0x6c, 0xf5, 0xdf, 0xcd, 0x9a, 0xdb, },
  1238. { 0xeb, 0x75, 0x09, 0x5c, 0xcd, 0x98, 0x6c, 0xd0, },
  1239. { 0x51, 0xa9, 0xcb, 0x9e, 0xcb, 0xa3, 0x12, 0xe6, },
  1240. { 0x96, 0xaf, 0xad, 0xfc, 0x2c, 0xe6, 0x66, 0xc7, },
  1241. { 0x72, 0xfe, 0x52, 0x97, 0x5a, 0x43, 0x64, 0xee, },
  1242. { 0x5a, 0x16, 0x45, 0xb2, 0x76, 0xd5, 0x92, 0xa1, },
  1243. { 0xb2, 0x74, 0xcb, 0x8e, 0xbf, 0x87, 0x87, 0x0a, },
  1244. { 0x6f, 0x9b, 0xb4, 0x20, 0x3d, 0xe7, 0xb3, 0x81, },
  1245. { 0xea, 0xec, 0xb2, 0xa3, 0x0b, 0x22, 0xa8, 0x7f, },
  1246. { 0x99, 0x24, 0xa4, 0x3c, 0xc1, 0x31, 0x57, 0x24, },
  1247. { 0xbd, 0x83, 0x8d, 0x3a, 0xaf, 0xbf, 0x8d, 0xb7, },
  1248. { 0x0b, 0x1a, 0x2a, 0x32, 0x65, 0xd5, 0x1a, 0xea, },
  1249. { 0x13, 0x50, 0x79, 0xa3, 0x23, 0x1c, 0xe6, 0x60, },
  1250. { 0x93, 0x2b, 0x28, 0x46, 0xe4, 0xd7, 0x06, 0x66, },
  1251. { 0xe1, 0x91, 0x5f, 0x5c, 0xb1, 0xec, 0xa4, 0x6c, },
  1252. { 0xf3, 0x25, 0x96, 0x5c, 0xa1, 0x6d, 0x62, 0x9f, },
  1253. { 0x57, 0x5f, 0xf2, 0x8e, 0x60, 0x38, 0x1b, 0xe5, },
  1254. { 0x72, 0x45, 0x06, 0xeb, 0x4c, 0x32, 0x8a, 0x95, }
  1255. };
  1256. const struct sipkey K = { U64_LITERAL(0x0706050403020100),
  1257. U64_LITERAL(0x0f0e0d0c0b0a0908) };
  1258. uint8_t input[64];
  1259. int i, j;
  1260. (void)arg;
  1261. for (i = 0; i < 64; ++i)
  1262. input[i] = i;
  1263. for (i = 0; i < 64; ++i) {
  1264. uint64_t r = siphash24(input, i, &K);
  1265. for (j = 0; j < 8; ++j) {
  1266. tt_int_op( (r >> (j*8)) & 0xff, ==, VECTORS[i][j]);
  1267. }
  1268. }
  1269. done:
  1270. ;
  1271. }
  1272. static void *
  1273. pass_data_setup_fn(const struct testcase_t *testcase)
  1274. {
  1275. return testcase->setup_data;
  1276. }
  1277. static int
  1278. pass_data_cleanup_fn(const struct testcase_t *testcase, void *ptr)
  1279. {
  1280. (void)ptr;
  1281. (void)testcase;
  1282. return 1;
  1283. }
  1284. static const struct testcase_setup_t pass_data = {
  1285. pass_data_setup_fn, pass_data_cleanup_fn
  1286. };
  1287. #define CRYPTO_LEGACY(name) \
  1288. { #name, legacy_test_helper, 0, &legacy_setup, test_crypto_ ## name }
  1289. struct testcase_t crypto_tests[] = {
  1290. CRYPTO_LEGACY(formats),
  1291. CRYPTO_LEGACY(rng),
  1292. { "aes_AES", test_crypto_aes, TT_FORK, &pass_data, (void*)"aes" },
  1293. { "aes_EVP", test_crypto_aes, TT_FORK, &pass_data, (void*)"evp" },
  1294. CRYPTO_LEGACY(sha),
  1295. CRYPTO_LEGACY(pk),
  1296. { "pk_fingerprints", test_crypto_pk_fingerprints, TT_FORK, NULL, NULL },
  1297. CRYPTO_LEGACY(digests),
  1298. CRYPTO_LEGACY(dh),
  1299. CRYPTO_LEGACY(s2k),
  1300. { "aes_iv_AES", test_crypto_aes_iv, TT_FORK, &pass_data, (void*)"aes" },
  1301. { "aes_iv_EVP", test_crypto_aes_iv, TT_FORK, &pass_data, (void*)"evp" },
  1302. CRYPTO_LEGACY(base32_decode),
  1303. { "kdf_TAP", test_crypto_kdf_TAP, 0, NULL, NULL },
  1304. { "hkdf_sha256", test_crypto_hkdf_sha256, 0, NULL, NULL },
  1305. #ifdef CURVE25519_ENABLED
  1306. { "curve25519_impl", test_crypto_curve25519_impl, 0, NULL, NULL },
  1307. { "curve25519_impl_hibit", test_crypto_curve25519_impl, 0, NULL, (void*)"y"},
  1308. { "curve25519_wrappers", test_crypto_curve25519_wrappers, 0, NULL, NULL },
  1309. { "curve25519_encode", test_crypto_curve25519_encode, 0, NULL, NULL },
  1310. { "curve25519_persist", test_crypto_curve25519_persist, 0, NULL, NULL },
  1311. { "ed25519_simple", test_crypto_ed25519_simple, 0, NULL, NULL },
  1312. { "ed25519_test_vectors", test_crypto_ed25519_test_vectors, 0, NULL, NULL },
  1313. #endif
  1314. { "siphash", test_crypto_siphash, 0, NULL, NULL },
  1315. END_OF_TESTCASES
  1316. };