test_crypto.c 27 KB

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  1. /* Copyright (c) 2001-2004, Roger Dingledine.
  2. * Copyright (c) 2004-2006, Roger Dingledine, Nick Mathewson.
  3. * Copyright (c) 2007-2011, The Tor Project, Inc. */
  4. /* See LICENSE for licensing information */
  5. #include "orconfig.h"
  6. #define CRYPTO_PRIVATE
  7. #include "or.h"
  8. #include "test.h"
  9. /** Run unit tests for Diffie-Hellman functionality. */
  10. static void
  11. test_crypto_dh(void)
  12. {
  13. crypto_dh_env_t *dh1 = crypto_dh_new(DH_TYPE_CIRCUIT);
  14. crypto_dh_env_t *dh2 = crypto_dh_new(DH_TYPE_CIRCUIT);
  15. char p1[DH_BYTES];
  16. char p2[DH_BYTES];
  17. char s1[DH_BYTES];
  18. char s2[DH_BYTES];
  19. ssize_t s1len, s2len;
  20. test_eq(crypto_dh_get_bytes(dh1), DH_BYTES);
  21. test_eq(crypto_dh_get_bytes(dh2), DH_BYTES);
  22. memset(p1, 0, DH_BYTES);
  23. memset(p2, 0, DH_BYTES);
  24. test_memeq(p1, p2, DH_BYTES);
  25. test_assert(! crypto_dh_get_public(dh1, p1, DH_BYTES));
  26. test_memneq(p1, p2, DH_BYTES);
  27. test_assert(! crypto_dh_get_public(dh2, p2, DH_BYTES));
  28. test_memneq(p1, p2, DH_BYTES);
  29. memset(s1, 0, DH_BYTES);
  30. memset(s2, 0xFF, DH_BYTES);
  31. s1len = crypto_dh_compute_secret(LOG_WARN, dh1, p2, DH_BYTES, s1, 50);
  32. s2len = crypto_dh_compute_secret(LOG_WARN, dh2, p1, DH_BYTES, s2, 50);
  33. test_assert(s1len > 0);
  34. test_eq(s1len, s2len);
  35. test_memeq(s1, s2, s1len);
  36. {
  37. /* XXXX Now fabricate some bad values and make sure they get caught,
  38. * Check 0, 1, N-1, >= N, etc.
  39. */
  40. }
  41. done:
  42. crypto_dh_free(dh1);
  43. crypto_dh_free(dh2);
  44. }
  45. /** Run unit tests for our random number generation function and its wrappers.
  46. */
  47. static void
  48. test_crypto_rng(void)
  49. {
  50. int i, j, allok;
  51. char data1[100], data2[100];
  52. double d;
  53. /* Try out RNG. */
  54. test_assert(! crypto_seed_rng(0));
  55. crypto_rand(data1, 100);
  56. crypto_rand(data2, 100);
  57. test_memneq(data1,data2,100);
  58. allok = 1;
  59. for (i = 0; i < 100; ++i) {
  60. uint64_t big;
  61. char *host;
  62. j = crypto_rand_int(100);
  63. if (j < 0 || j >= 100)
  64. allok = 0;
  65. big = crypto_rand_uint64(U64_LITERAL(1)<<40);
  66. if (big >= (U64_LITERAL(1)<<40))
  67. allok = 0;
  68. big = crypto_rand_uint64(U64_LITERAL(5));
  69. if (big >= 5)
  70. allok = 0;
  71. d = crypto_rand_double();
  72. test_assert(d >= 0);
  73. test_assert(d < 1.0);
  74. host = crypto_random_hostname(3,8,"www.",".onion");
  75. if (strcmpstart(host,"www.") ||
  76. strcmpend(host,".onion") ||
  77. strlen(host) < 13 ||
  78. strlen(host) > 18)
  79. allok = 0;
  80. tor_free(host);
  81. }
  82. test_assert(allok);
  83. done:
  84. ;
  85. }
  86. /** Run unit tests for our AES functionality */
  87. static void
  88. test_crypto_aes(void)
  89. {
  90. char *data1 = NULL, *data2 = NULL, *data3 = NULL;
  91. crypto_cipher_env_t *env1 = NULL, *env2 = NULL;
  92. int i, j;
  93. char *mem_op_hex_tmp=NULL;
  94. data1 = tor_malloc(1024);
  95. data2 = tor_malloc(1024);
  96. data3 = tor_malloc(1024);
  97. /* Now, test encryption and decryption with stream cipher. */
  98. data1[0]='\0';
  99. for (i = 1023; i>0; i -= 35)
  100. strncat(data1, "Now is the time for all good onions", i);
  101. memset(data2, 0, 1024);
  102. memset(data3, 0, 1024);
  103. env1 = crypto_new_cipher_env();
  104. test_neq(env1, 0);
  105. env2 = crypto_new_cipher_env();
  106. test_neq(env2, 0);
  107. j = crypto_cipher_generate_key(env1);
  108. crypto_cipher_set_key(env2, crypto_cipher_get_key(env1));
  109. crypto_cipher_encrypt_init_cipher(env1);
  110. crypto_cipher_decrypt_init_cipher(env2);
  111. /* Try encrypting 512 chars. */
  112. crypto_cipher_encrypt(env1, data2, data1, 512);
  113. crypto_cipher_decrypt(env2, data3, data2, 512);
  114. test_memeq(data1, data3, 512);
  115. test_memneq(data1, data2, 512);
  116. /* Now encrypt 1 at a time, and get 1 at a time. */
  117. for (j = 512; j < 560; ++j) {
  118. crypto_cipher_encrypt(env1, data2+j, data1+j, 1);
  119. }
  120. for (j = 512; j < 560; ++j) {
  121. crypto_cipher_decrypt(env2, data3+j, data2+j, 1);
  122. }
  123. test_memeq(data1, data3, 560);
  124. /* Now encrypt 3 at a time, and get 5 at a time. */
  125. for (j = 560; j < 1024-5; j += 3) {
  126. crypto_cipher_encrypt(env1, data2+j, data1+j, 3);
  127. }
  128. for (j = 560; j < 1024-5; j += 5) {
  129. crypto_cipher_decrypt(env2, data3+j, data2+j, 5);
  130. }
  131. test_memeq(data1, data3, 1024-5);
  132. /* Now make sure that when we encrypt with different chunk sizes, we get
  133. the same results. */
  134. crypto_free_cipher_env(env2);
  135. env2 = NULL;
  136. memset(data3, 0, 1024);
  137. env2 = crypto_new_cipher_env();
  138. test_neq(env2, 0);
  139. crypto_cipher_set_key(env2, crypto_cipher_get_key(env1));
  140. crypto_cipher_encrypt_init_cipher(env2);
  141. for (j = 0; j < 1024-16; j += 17) {
  142. crypto_cipher_encrypt(env2, data3+j, data1+j, 17);
  143. }
  144. for (j= 0; j < 1024-16; ++j) {
  145. if (data2[j] != data3[j]) {
  146. printf("%d: %d\t%d\n", j, (int) data2[j], (int) data3[j]);
  147. }
  148. }
  149. test_memeq(data2, data3, 1024-16);
  150. crypto_free_cipher_env(env1);
  151. env1 = NULL;
  152. crypto_free_cipher_env(env2);
  153. env2 = NULL;
  154. /* NIST test vector for aes. */
  155. env1 = crypto_new_cipher_env(); /* IV starts at 0 */
  156. crypto_cipher_set_key(env1, "\x80\x00\x00\x00\x00\x00\x00\x00"
  157. "\x00\x00\x00\x00\x00\x00\x00\x00");
  158. crypto_cipher_encrypt_init_cipher(env1);
  159. crypto_cipher_encrypt(env1, data1,
  160. "\x00\x00\x00\x00\x00\x00\x00\x00"
  161. "\x00\x00\x00\x00\x00\x00\x00\x00", 16);
  162. test_memeq_hex(data1, "0EDD33D3C621E546455BD8BA1418BEC8");
  163. /* Now test rollover. All these values are originally from a python
  164. * script. */
  165. crypto_cipher_set_iv(env1, "\x00\x00\x00\x00\x00\x00\x00\x00"
  166. "\xff\xff\xff\xff\xff\xff\xff\xff");
  167. memset(data2, 0, 1024);
  168. crypto_cipher_encrypt(env1, data1, data2, 32);
  169. test_memeq_hex(data1, "335fe6da56f843199066c14a00a40231"
  170. "cdd0b917dbc7186908a6bfb5ffd574d3");
  171. crypto_cipher_set_iv(env1, "\x00\x00\x00\x00\xff\xff\xff\xff"
  172. "\xff\xff\xff\xff\xff\xff\xff\xff");
  173. memset(data2, 0, 1024);
  174. crypto_cipher_encrypt(env1, data1, data2, 32);
  175. test_memeq_hex(data1, "e627c6423fa2d77832a02b2794094b73"
  176. "3e63c721df790d2c6469cc1953a3ffac");
  177. crypto_cipher_set_iv(env1, "\xff\xff\xff\xff\xff\xff\xff\xff"
  178. "\xff\xff\xff\xff\xff\xff\xff\xff");
  179. memset(data2, 0, 1024);
  180. crypto_cipher_encrypt(env1, data1, data2, 32);
  181. test_memeq_hex(data1, "2aed2bff0de54f9328efd070bf48f70a"
  182. "0EDD33D3C621E546455BD8BA1418BEC8");
  183. /* Now check rollover on inplace cipher. */
  184. crypto_cipher_set_iv(env1, "\xff\xff\xff\xff\xff\xff\xff\xff"
  185. "\xff\xff\xff\xff\xff\xff\xff\xff");
  186. crypto_cipher_crypt_inplace(env1, data2, 64);
  187. test_memeq_hex(data2, "2aed2bff0de54f9328efd070bf48f70a"
  188. "0EDD33D3C621E546455BD8BA1418BEC8"
  189. "93e2c5243d6839eac58503919192f7ae"
  190. "1908e67cafa08d508816659c2e693191");
  191. crypto_cipher_set_iv(env1, "\xff\xff\xff\xff\xff\xff\xff\xff"
  192. "\xff\xff\xff\xff\xff\xff\xff\xff");
  193. crypto_cipher_crypt_inplace(env1, data2, 64);
  194. test_assert(tor_mem_is_zero(data2, 64));
  195. done:
  196. tor_free(mem_op_hex_tmp);
  197. if (env1)
  198. crypto_free_cipher_env(env1);
  199. if (env2)
  200. crypto_free_cipher_env(env2);
  201. tor_free(data1);
  202. tor_free(data2);
  203. tor_free(data3);
  204. }
  205. /** Run unit tests for our SHA-1 functionality */
  206. static void
  207. test_crypto_sha(void)
  208. {
  209. crypto_digest_env_t *d1 = NULL, *d2 = NULL;
  210. int i;
  211. char key[80];
  212. char digest[32];
  213. char data[50];
  214. char d_out1[DIGEST_LEN], d_out2[DIGEST256_LEN];
  215. char *mem_op_hex_tmp=NULL;
  216. /* Test SHA-1 with a test vector from the specification. */
  217. i = crypto_digest(data, "abc", 3);
  218. test_memeq_hex(data, "A9993E364706816ABA3E25717850C26C9CD0D89D");
  219. tt_int_op(i, ==, 0);
  220. /* Test SHA-256 with a test vector from the specification. */
  221. i = crypto_digest256(data, "abc", 3, DIGEST_SHA256);
  222. test_memeq_hex(data, "BA7816BF8F01CFEA414140DE5DAE2223B00361A3"
  223. "96177A9CB410FF61F20015AD");
  224. tt_int_op(i, ==, 0);
  225. /* Test HMAC-SHA-1 with test cases from RFC2202. */
  226. /* Case 1. */
  227. memset(key, 0x0b, 20);
  228. crypto_hmac_sha1(digest, key, 20, "Hi There", 8);
  229. test_streq(hex_str(digest, 20),
  230. "B617318655057264E28BC0B6FB378C8EF146BE00");
  231. /* Case 2. */
  232. crypto_hmac_sha1(digest, "Jefe", 4, "what do ya want for nothing?", 28);
  233. test_streq(hex_str(digest, 20),
  234. "EFFCDF6AE5EB2FA2D27416D5F184DF9C259A7C79");
  235. /* Case 4. */
  236. base16_decode(key, 25,
  237. "0102030405060708090a0b0c0d0e0f10111213141516171819", 50);
  238. memset(data, 0xcd, 50);
  239. crypto_hmac_sha1(digest, key, 25, data, 50);
  240. test_streq(hex_str(digest, 20),
  241. "4C9007F4026250C6BC8414F9BF50C86C2D7235DA");
  242. /* Case 5. */
  243. memset(key, 0xaa, 80);
  244. crypto_hmac_sha1(digest, key, 80,
  245. "Test Using Larger Than Block-Size Key - Hash Key First",
  246. 54);
  247. test_streq(hex_str(digest, 20),
  248. "AA4AE5E15272D00E95705637CE8A3B55ED402112");
  249. /* Incremental digest code. */
  250. d1 = crypto_new_digest_env();
  251. test_assert(d1);
  252. crypto_digest_add_bytes(d1, "abcdef", 6);
  253. d2 = crypto_digest_dup(d1);
  254. test_assert(d2);
  255. crypto_digest_add_bytes(d2, "ghijkl", 6);
  256. crypto_digest_get_digest(d2, d_out1, sizeof(d_out1));
  257. crypto_digest(d_out2, "abcdefghijkl", 12);
  258. test_memeq(d_out1, d_out2, DIGEST_LEN);
  259. crypto_digest_assign(d2, d1);
  260. crypto_digest_add_bytes(d2, "mno", 3);
  261. crypto_digest_get_digest(d2, d_out1, sizeof(d_out1));
  262. crypto_digest(d_out2, "abcdefmno", 9);
  263. test_memeq(d_out1, d_out2, DIGEST_LEN);
  264. crypto_digest_get_digest(d1, d_out1, sizeof(d_out1));
  265. crypto_digest(d_out2, "abcdef", 6);
  266. test_memeq(d_out1, d_out2, DIGEST_LEN);
  267. crypto_free_digest_env(d1);
  268. crypto_free_digest_env(d2);
  269. /* Incremental digest code with sha256 */
  270. d1 = crypto_new_digest256_env(DIGEST_SHA256);
  271. test_assert(d1);
  272. crypto_digest_add_bytes(d1, "abcdef", 6);
  273. d2 = crypto_digest_dup(d1);
  274. test_assert(d2);
  275. crypto_digest_add_bytes(d2, "ghijkl", 6);
  276. crypto_digest_get_digest(d2, d_out1, sizeof(d_out1));
  277. crypto_digest256(d_out2, "abcdefghijkl", 12, DIGEST_SHA256);
  278. test_memeq(d_out1, d_out2, DIGEST_LEN);
  279. crypto_digest_assign(d2, d1);
  280. crypto_digest_add_bytes(d2, "mno", 3);
  281. crypto_digest_get_digest(d2, d_out1, sizeof(d_out1));
  282. crypto_digest256(d_out2, "abcdefmno", 9, DIGEST_SHA256);
  283. test_memeq(d_out1, d_out2, DIGEST_LEN);
  284. crypto_digest_get_digest(d1, d_out1, sizeof(d_out1));
  285. crypto_digest256(d_out2, "abcdef", 6, DIGEST_SHA256);
  286. test_memeq(d_out1, d_out2, DIGEST_LEN);
  287. done:
  288. if (d1)
  289. crypto_free_digest_env(d1);
  290. if (d2)
  291. crypto_free_digest_env(d2);
  292. tor_free(mem_op_hex_tmp);
  293. }
  294. /** Run unit tests for our public key crypto functions */
  295. static void
  296. test_crypto_pk(void)
  297. {
  298. crypto_pk_env_t *pk1 = NULL, *pk2 = NULL;
  299. char *encoded = NULL;
  300. char data1[1024], data2[1024], data3[1024];
  301. size_t size;
  302. int i, j, p, len;
  303. /* Public-key ciphers */
  304. pk1 = pk_generate(0);
  305. pk2 = crypto_new_pk_env();
  306. test_assert(pk1 && pk2);
  307. test_assert(! crypto_pk_write_public_key_to_string(pk1, &encoded, &size));
  308. test_assert(! crypto_pk_read_public_key_from_string(pk2, encoded, size));
  309. test_eq(0, crypto_pk_cmp_keys(pk1, pk2));
  310. test_eq(128, crypto_pk_keysize(pk1));
  311. test_eq(128, crypto_pk_keysize(pk2));
  312. test_eq(128, crypto_pk_public_encrypt(pk2, data1, sizeof(data1),
  313. "Hello whirled.", 15,
  314. PK_PKCS1_OAEP_PADDING));
  315. test_eq(128, crypto_pk_public_encrypt(pk1, data2, sizeof(data1),
  316. "Hello whirled.", 15,
  317. PK_PKCS1_OAEP_PADDING));
  318. /* oaep padding should make encryption not match */
  319. test_memneq(data1, data2, 128);
  320. test_eq(15, crypto_pk_private_decrypt(pk1, data3, sizeof(data3), data1, 128,
  321. PK_PKCS1_OAEP_PADDING,1));
  322. test_streq(data3, "Hello whirled.");
  323. memset(data3, 0, 1024);
  324. test_eq(15, crypto_pk_private_decrypt(pk1, data3, sizeof(data3), data2, 128,
  325. PK_PKCS1_OAEP_PADDING,1));
  326. test_streq(data3, "Hello whirled.");
  327. /* Can't decrypt with public key. */
  328. test_eq(-1, crypto_pk_private_decrypt(pk2, data3, sizeof(data3), data2, 128,
  329. PK_PKCS1_OAEP_PADDING,1));
  330. /* Try again with bad padding */
  331. memcpy(data2+1, "XYZZY", 5); /* This has fails ~ once-in-2^40 */
  332. test_eq(-1, crypto_pk_private_decrypt(pk1, data3, sizeof(data3), data2, 128,
  333. PK_PKCS1_OAEP_PADDING,1));
  334. /* File operations: save and load private key */
  335. test_assert(! crypto_pk_write_private_key_to_filename(pk1,
  336. get_fname("pkey1")));
  337. /* failing case for read: can't read. */
  338. test_assert(crypto_pk_read_private_key_from_filename(pk2,
  339. get_fname("xyzzy")) < 0);
  340. write_str_to_file(get_fname("xyzzy"), "foobar", 6);
  341. /* Failing case for read: no key. */
  342. test_assert(crypto_pk_read_private_key_from_filename(pk2,
  343. get_fname("xyzzy")) < 0);
  344. test_assert(! crypto_pk_read_private_key_from_filename(pk2,
  345. get_fname("pkey1")));
  346. test_eq(15, crypto_pk_private_decrypt(pk2, data3, sizeof(data3), data1, 128,
  347. PK_PKCS1_OAEP_PADDING,1));
  348. /* Now try signing. */
  349. strlcpy(data1, "Ossifrage", 1024);
  350. test_eq(128, crypto_pk_private_sign(pk1, data2, sizeof(data2), data1, 10));
  351. test_eq(10,
  352. crypto_pk_public_checksig(pk1, data3, sizeof(data3), data2, 128));
  353. test_streq(data3, "Ossifrage");
  354. /* Try signing digests. */
  355. test_eq(128, crypto_pk_private_sign_digest(pk1, data2, sizeof(data2),
  356. data1, 10));
  357. test_eq(20,
  358. crypto_pk_public_checksig(pk1, data3, sizeof(data3), data2, 128));
  359. test_eq(0, crypto_pk_public_checksig_digest(pk1, data1, 10, data2, 128));
  360. test_eq(-1, crypto_pk_public_checksig_digest(pk1, data1, 11, data2, 128));
  361. /*XXXX test failed signing*/
  362. /* Try encoding */
  363. crypto_free_pk_env(pk2);
  364. pk2 = NULL;
  365. i = crypto_pk_asn1_encode(pk1, data1, 1024);
  366. test_assert(i>0);
  367. pk2 = crypto_pk_asn1_decode(data1, i);
  368. test_assert(crypto_pk_cmp_keys(pk1,pk2) == 0);
  369. /* Try with hybrid encryption wrappers. */
  370. crypto_rand(data1, 1024);
  371. for (i = 0; i < 3; ++i) {
  372. for (j = 85; j < 140; ++j) {
  373. memset(data2,0,1024);
  374. memset(data3,0,1024);
  375. if (i == 0 && j < 129)
  376. continue;
  377. p = (i==0)?PK_NO_PADDING:
  378. (i==1)?PK_PKCS1_PADDING:PK_PKCS1_OAEP_PADDING;
  379. len = crypto_pk_public_hybrid_encrypt(pk1,data2,sizeof(data2),
  380. data1,j,p,0);
  381. test_assert(len>=0);
  382. len = crypto_pk_private_hybrid_decrypt(pk1,data3,sizeof(data3),
  383. data2,len,p,1);
  384. test_eq(len,j);
  385. test_memeq(data1,data3,j);
  386. }
  387. }
  388. /* Try copy_full */
  389. crypto_free_pk_env(pk2);
  390. pk2 = crypto_pk_copy_full(pk1);
  391. test_assert(pk2 != NULL);
  392. test_neq_ptr(pk1, pk2);
  393. test_assert(crypto_pk_cmp_keys(pk1,pk2) == 0);
  394. done:
  395. if (pk1)
  396. crypto_free_pk_env(pk1);
  397. if (pk2)
  398. crypto_free_pk_env(pk2);
  399. tor_free(encoded);
  400. }
  401. /** Run unit tests for misc crypto formatting functionality (base64, base32,
  402. * fingerprints, etc) */
  403. static void
  404. test_crypto_formats(void)
  405. {
  406. char *data1 = NULL, *data2 = NULL, *data3 = NULL;
  407. int i, j, idx;
  408. data1 = tor_malloc(1024);
  409. data2 = tor_malloc(1024);
  410. data3 = tor_malloc(1024);
  411. test_assert(data1 && data2 && data3);
  412. /* Base64 tests */
  413. memset(data1, 6, 1024);
  414. for (idx = 0; idx < 10; ++idx) {
  415. i = base64_encode(data2, 1024, data1, idx);
  416. test_assert(i >= 0);
  417. j = base64_decode(data3, 1024, data2, i);
  418. test_eq(j,idx);
  419. test_memeq(data3, data1, idx);
  420. }
  421. strlcpy(data1, "Test string that contains 35 chars.", 1024);
  422. strlcat(data1, " 2nd string that contains 35 chars.", 1024);
  423. i = base64_encode(data2, 1024, data1, 71);
  424. test_assert(i >= 0);
  425. j = base64_decode(data3, 1024, data2, i);
  426. test_eq(j, 71);
  427. test_streq(data3, data1);
  428. test_assert(data2[i] == '\0');
  429. crypto_rand(data1, DIGEST_LEN);
  430. memset(data2, 100, 1024);
  431. digest_to_base64(data2, data1);
  432. test_eq(BASE64_DIGEST_LEN, strlen(data2));
  433. test_eq(100, data2[BASE64_DIGEST_LEN+2]);
  434. memset(data3, 99, 1024);
  435. test_eq(digest_from_base64(data3, data2), 0);
  436. test_memeq(data1, data3, DIGEST_LEN);
  437. test_eq(99, data3[DIGEST_LEN+1]);
  438. test_assert(digest_from_base64(data3, "###") < 0);
  439. /* Encoding SHA256 */
  440. crypto_rand(data2, DIGEST256_LEN);
  441. memset(data2, 100, 1024);
  442. digest256_to_base64(data2, data1);
  443. test_eq(BASE64_DIGEST256_LEN, strlen(data2));
  444. test_eq(100, data2[BASE64_DIGEST256_LEN+2]);
  445. memset(data3, 99, 1024);
  446. test_eq(digest256_from_base64(data3, data2), 0);
  447. test_memeq(data1, data3, DIGEST256_LEN);
  448. test_eq(99, data3[DIGEST256_LEN+1]);
  449. /* Base32 tests */
  450. strlcpy(data1, "5chrs", 1024);
  451. /* bit pattern is: [35 63 68 72 73] ->
  452. * [00110101 01100011 01101000 01110010 01110011]
  453. * By 5s: [00110 10101 10001 10110 10000 11100 10011 10011]
  454. */
  455. base32_encode(data2, 9, data1, 5);
  456. test_streq(data2, "gvrwq4tt");
  457. strlcpy(data1, "\xFF\xF5\x6D\x44\xAE\x0D\x5C\xC9\x62\xC4", 1024);
  458. base32_encode(data2, 30, data1, 10);
  459. test_streq(data2, "772w2rfobvomsywe");
  460. /* Base16 tests */
  461. strlcpy(data1, "6chrs\xff", 1024);
  462. base16_encode(data2, 13, data1, 6);
  463. test_streq(data2, "3663687273FF");
  464. strlcpy(data1, "f0d678affc000100", 1024);
  465. i = base16_decode(data2, 8, data1, 16);
  466. test_eq(i,0);
  467. test_memeq(data2, "\xf0\xd6\x78\xaf\xfc\x00\x01\x00",8);
  468. /* now try some failing base16 decodes */
  469. test_eq(-1, base16_decode(data2, 8, data1, 15)); /* odd input len */
  470. test_eq(-1, base16_decode(data2, 7, data1, 16)); /* dest too short */
  471. strlcpy(data1, "f0dz!8affc000100", 1024);
  472. test_eq(-1, base16_decode(data2, 8, data1, 16));
  473. tor_free(data1);
  474. tor_free(data2);
  475. tor_free(data3);
  476. /* Add spaces to fingerprint */
  477. {
  478. data1 = tor_strdup("ABCD1234ABCD56780000ABCD1234ABCD56780000");
  479. test_eq(strlen(data1), 40);
  480. data2 = tor_malloc(FINGERPRINT_LEN+1);
  481. add_spaces_to_fp(data2, FINGERPRINT_LEN+1, data1);
  482. test_streq(data2, "ABCD 1234 ABCD 5678 0000 ABCD 1234 ABCD 5678 0000");
  483. tor_free(data1);
  484. tor_free(data2);
  485. }
  486. /* Check fingerprint */
  487. {
  488. test_assert(crypto_pk_check_fingerprint_syntax(
  489. "ABCD 1234 ABCD 5678 0000 ABCD 1234 ABCD 5678 0000"));
  490. test_assert(!crypto_pk_check_fingerprint_syntax(
  491. "ABCD 1234 ABCD 5678 0000 ABCD 1234 ABCD 5678 000"));
  492. test_assert(!crypto_pk_check_fingerprint_syntax(
  493. "ABCD 1234 ABCD 5678 0000 ABCD 1234 ABCD 5678 00000"));
  494. test_assert(!crypto_pk_check_fingerprint_syntax(
  495. "ABCD 1234 ABCD 5678 0000 ABCD1234 ABCD 5678 0000"));
  496. test_assert(!crypto_pk_check_fingerprint_syntax(
  497. "ABCD 1234 ABCD 5678 0000 ABCD1234 ABCD 5678 00000"));
  498. test_assert(!crypto_pk_check_fingerprint_syntax(
  499. "ACD 1234 ABCD 5678 0000 ABCD 1234 ABCD 5678 00000"));
  500. }
  501. done:
  502. tor_free(data1);
  503. tor_free(data2);
  504. tor_free(data3);
  505. }
  506. /** Run unit tests for our secret-to-key passphrase hashing functionality. */
  507. static void
  508. test_crypto_s2k(void)
  509. {
  510. char buf[29];
  511. char buf2[29];
  512. char *buf3 = NULL;
  513. int i;
  514. memset(buf, 0, sizeof(buf));
  515. memset(buf2, 0, sizeof(buf2));
  516. buf3 = tor_malloc(65536);
  517. memset(buf3, 0, 65536);
  518. secret_to_key(buf+9, 20, "", 0, buf);
  519. crypto_digest(buf2+9, buf3, 1024);
  520. test_memeq(buf, buf2, 29);
  521. memcpy(buf,"vrbacrda",8);
  522. memcpy(buf2,"vrbacrda",8);
  523. buf[8] = 96;
  524. buf2[8] = 96;
  525. secret_to_key(buf+9, 20, "12345678", 8, buf);
  526. for (i = 0; i < 65536; i += 16) {
  527. memcpy(buf3+i, "vrbacrda12345678", 16);
  528. }
  529. crypto_digest(buf2+9, buf3, 65536);
  530. test_memeq(buf, buf2, 29);
  531. done:
  532. tor_free(buf3);
  533. }
  534. /** Test AES-CTR encryption and decryption with IV. */
  535. static void
  536. test_crypto_aes_iv(void)
  537. {
  538. crypto_cipher_env_t *cipher;
  539. char *plain, *encrypted1, *encrypted2, *decrypted1, *decrypted2;
  540. char plain_1[1], plain_15[15], plain_16[16], plain_17[17];
  541. char key1[16], key2[16];
  542. ssize_t encrypted_size, decrypted_size;
  543. plain = tor_malloc(4095);
  544. encrypted1 = tor_malloc(4095 + 1 + 16);
  545. encrypted2 = tor_malloc(4095 + 1 + 16);
  546. decrypted1 = tor_malloc(4095 + 1);
  547. decrypted2 = tor_malloc(4095 + 1);
  548. crypto_rand(plain, 4095);
  549. crypto_rand(key1, 16);
  550. crypto_rand(key2, 16);
  551. crypto_rand(plain_1, 1);
  552. crypto_rand(plain_15, 15);
  553. crypto_rand(plain_16, 16);
  554. crypto_rand(plain_17, 17);
  555. key1[0] = key2[0] + 128; /* Make sure that contents are different. */
  556. /* Encrypt and decrypt with the same key. */
  557. cipher = crypto_create_init_cipher(key1, 1);
  558. encrypted_size = crypto_cipher_encrypt_with_iv(cipher, encrypted1, 16 + 4095,
  559. plain, 4095);
  560. crypto_free_cipher_env(cipher);
  561. cipher = NULL;
  562. test_eq(encrypted_size, 16 + 4095);
  563. tor_assert(encrypted_size > 0); /* This is obviously true, since 4111 is
  564. * greater than 0, but its truth is not
  565. * obvious to all analysis tools. */
  566. cipher = crypto_create_init_cipher(key1, 0);
  567. decrypted_size = crypto_cipher_decrypt_with_iv(cipher, decrypted1, 4095,
  568. encrypted1, encrypted_size);
  569. crypto_free_cipher_env(cipher);
  570. cipher = NULL;
  571. test_eq(decrypted_size, 4095);
  572. tor_assert(decrypted_size > 0);
  573. test_memeq(plain, decrypted1, 4095);
  574. /* Encrypt a second time (with a new random initialization vector). */
  575. cipher = crypto_create_init_cipher(key1, 1);
  576. encrypted_size = crypto_cipher_encrypt_with_iv(cipher, encrypted2, 16 + 4095,
  577. plain, 4095);
  578. crypto_free_cipher_env(cipher);
  579. cipher = NULL;
  580. test_eq(encrypted_size, 16 + 4095);
  581. tor_assert(encrypted_size > 0);
  582. cipher = crypto_create_init_cipher(key1, 0);
  583. decrypted_size = crypto_cipher_decrypt_with_iv(cipher, decrypted2, 4095,
  584. encrypted2, encrypted_size);
  585. crypto_free_cipher_env(cipher);
  586. cipher = NULL;
  587. test_eq(decrypted_size, 4095);
  588. tor_assert(decrypted_size > 0);
  589. test_memeq(plain, decrypted2, 4095);
  590. test_memneq(encrypted1, encrypted2, encrypted_size);
  591. /* Decrypt with the wrong key. */
  592. cipher = crypto_create_init_cipher(key2, 0);
  593. decrypted_size = crypto_cipher_decrypt_with_iv(cipher, decrypted2, 4095,
  594. encrypted1, encrypted_size);
  595. crypto_free_cipher_env(cipher);
  596. cipher = NULL;
  597. test_memneq(plain, decrypted2, encrypted_size);
  598. /* Alter the initialization vector. */
  599. encrypted1[0] += 42;
  600. cipher = crypto_create_init_cipher(key1, 0);
  601. decrypted_size = crypto_cipher_decrypt_with_iv(cipher, decrypted1, 4095,
  602. encrypted1, encrypted_size);
  603. crypto_free_cipher_env(cipher);
  604. cipher = NULL;
  605. test_memneq(plain, decrypted2, 4095);
  606. /* Special length case: 1. */
  607. cipher = crypto_create_init_cipher(key1, 1);
  608. encrypted_size = crypto_cipher_encrypt_with_iv(cipher, encrypted1, 16 + 1,
  609. plain_1, 1);
  610. crypto_free_cipher_env(cipher);
  611. cipher = NULL;
  612. test_eq(encrypted_size, 16 + 1);
  613. tor_assert(encrypted_size > 0);
  614. cipher = crypto_create_init_cipher(key1, 0);
  615. decrypted_size = crypto_cipher_decrypt_with_iv(cipher, decrypted1, 1,
  616. encrypted1, encrypted_size);
  617. crypto_free_cipher_env(cipher);
  618. cipher = NULL;
  619. test_eq(decrypted_size, 1);
  620. tor_assert(decrypted_size > 0);
  621. test_memeq(plain_1, decrypted1, 1);
  622. /* Special length case: 15. */
  623. cipher = crypto_create_init_cipher(key1, 1);
  624. encrypted_size = crypto_cipher_encrypt_with_iv(cipher, encrypted1, 16 + 15,
  625. plain_15, 15);
  626. crypto_free_cipher_env(cipher);
  627. cipher = NULL;
  628. test_eq(encrypted_size, 16 + 15);
  629. tor_assert(encrypted_size > 0);
  630. cipher = crypto_create_init_cipher(key1, 0);
  631. decrypted_size = crypto_cipher_decrypt_with_iv(cipher, decrypted1, 15,
  632. encrypted1, encrypted_size);
  633. crypto_free_cipher_env(cipher);
  634. cipher = NULL;
  635. test_eq(decrypted_size, 15);
  636. tor_assert(decrypted_size > 0);
  637. test_memeq(plain_15, decrypted1, 15);
  638. /* Special length case: 16. */
  639. cipher = crypto_create_init_cipher(key1, 1);
  640. encrypted_size = crypto_cipher_encrypt_with_iv(cipher, encrypted1, 16 + 16,
  641. plain_16, 16);
  642. crypto_free_cipher_env(cipher);
  643. cipher = NULL;
  644. test_eq(encrypted_size, 16 + 16);
  645. tor_assert(encrypted_size > 0);
  646. cipher = crypto_create_init_cipher(key1, 0);
  647. decrypted_size = crypto_cipher_decrypt_with_iv(cipher, decrypted1, 16,
  648. encrypted1, encrypted_size);
  649. crypto_free_cipher_env(cipher);
  650. cipher = NULL;
  651. test_eq(decrypted_size, 16);
  652. tor_assert(decrypted_size > 0);
  653. test_memeq(plain_16, decrypted1, 16);
  654. /* Special length case: 17. */
  655. cipher = crypto_create_init_cipher(key1, 1);
  656. encrypted_size = crypto_cipher_encrypt_with_iv(cipher, encrypted1, 16 + 17,
  657. plain_17, 17);
  658. crypto_free_cipher_env(cipher);
  659. cipher = NULL;
  660. test_eq(encrypted_size, 16 + 17);
  661. tor_assert(encrypted_size > 0);
  662. cipher = crypto_create_init_cipher(key1, 0);
  663. decrypted_size = crypto_cipher_decrypt_with_iv(cipher, decrypted1, 17,
  664. encrypted1, encrypted_size);
  665. test_eq(decrypted_size, 17);
  666. tor_assert(decrypted_size > 0);
  667. test_memeq(plain_17, decrypted1, 17);
  668. done:
  669. /* Free memory. */
  670. tor_free(plain);
  671. tor_free(encrypted1);
  672. tor_free(encrypted2);
  673. tor_free(decrypted1);
  674. tor_free(decrypted2);
  675. if (cipher)
  676. crypto_free_cipher_env(cipher);
  677. }
  678. /** Test base32 decoding. */
  679. static void
  680. test_crypto_base32_decode(void)
  681. {
  682. char plain[60], encoded[96 + 1], decoded[60];
  683. int res;
  684. crypto_rand(plain, 60);
  685. /* Encode and decode a random string. */
  686. base32_encode(encoded, 96 + 1, plain, 60);
  687. res = base32_decode(decoded, 60, encoded, 96);
  688. test_eq(res, 0);
  689. test_memeq(plain, decoded, 60);
  690. /* Encode, uppercase, and decode a random string. */
  691. base32_encode(encoded, 96 + 1, plain, 60);
  692. tor_strupper(encoded);
  693. res = base32_decode(decoded, 60, encoded, 96);
  694. test_eq(res, 0);
  695. test_memeq(plain, decoded, 60);
  696. /* Change encoded string and decode. */
  697. if (encoded[0] == 'A' || encoded[0] == 'a')
  698. encoded[0] = 'B';
  699. else
  700. encoded[0] = 'A';
  701. res = base32_decode(decoded, 60, encoded, 96);
  702. test_eq(res, 0);
  703. test_memneq(plain, decoded, 60);
  704. /* Bad encodings. */
  705. encoded[0] = '!';
  706. res = base32_decode(decoded, 60, encoded, 96);
  707. test_assert(res < 0);
  708. done:
  709. ;
  710. }
  711. #define CRYPTO_LEGACY(name) \
  712. { #name, legacy_test_helper, 0, &legacy_setup, test_crypto_ ## name }
  713. struct testcase_t crypto_tests[] = {
  714. CRYPTO_LEGACY(formats),
  715. CRYPTO_LEGACY(rng),
  716. CRYPTO_LEGACY(aes),
  717. CRYPTO_LEGACY(sha),
  718. CRYPTO_LEGACY(pk),
  719. CRYPTO_LEGACY(dh),
  720. CRYPTO_LEGACY(s2k),
  721. CRYPTO_LEGACY(aes_iv),
  722. CRYPTO_LEGACY(base32_decode),
  723. END_OF_TESTCASES
  724. };