test.c 26 KB

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  1. /* Copyright 2001,2002,2003 Roger Dingledine. */
  2. /* See LICENSE for licensing information */
  3. /* $Id$ */
  4. #include <stdio.h>
  5. #ifdef HAVE_FCNTL_H
  6. #include <fcntl.h>
  7. #endif
  8. #ifdef MS_WINDOWS
  9. /* For mkdir() */
  10. #include <direct.h>
  11. #endif
  12. #include "or.h"
  13. #include "../common/test.h"
  14. extern or_options_t options;
  15. int have_failed = 0;
  16. /* These functions are file-local, but are exposed so we can test. */
  17. int router_get_routerlist_from_directory_impl(
  18. const char *s, routerlist_t **dest, crypto_pk_env_t *pkey);
  19. void add_fingerprint_to_dir(const char *nickname, const char *fp);
  20. void get_platform_str(char *platform, int len);
  21. void
  22. dump_hex(char *s, int len)
  23. {
  24. static const char TABLE[] = "0123456789ABCDEF";
  25. unsigned char *d = s;
  26. int i, j, nyb;
  27. for(i=0;i<len;++i) {
  28. for (j=1;j>=0;--j) {
  29. nyb = (((int) d[i]) >> (j*4)) & 0x0f;
  30. tor_assert(0<=nyb && nyb <=15);
  31. putchar(TABLE[nyb]);
  32. }
  33. }
  34. }
  35. void
  36. setup_directory() {
  37. char buf[256];
  38. int r;
  39. sprintf(buf, "/tmp/tor_test");
  40. #ifdef _MSC_VER
  41. r = mkdir(buf);
  42. #else
  43. r = mkdir(buf, 0700);
  44. #endif
  45. if (r && errno != EEXIST)
  46. fprintf(stderr, "Can't create directory %s", buf);
  47. }
  48. void
  49. test_buffers() {
  50. #define MAX_BUF_SIZE 1024*1024
  51. char str[256];
  52. char str2[256];
  53. buf_t *buf;
  54. buf_t *buf2;
  55. int s, i, j, eof;
  56. /****
  57. * buf_new
  58. ****/
  59. if (!(buf = buf_new()))
  60. test_fail();
  61. test_eq(buf_capacity(buf), 512*1024);
  62. test_eq(buf_datalen(buf), 0);
  63. /****
  64. * read_to_buf
  65. ****/
  66. s = open("/tmp/tor_test/data", O_WRONLY|O_CREAT|O_TRUNC, 0600);
  67. for (j=0;j<256;++j) {
  68. str[j] = (char)j;
  69. }
  70. write(s, str, 256);
  71. close(s);
  72. s = open("/tmp/tor_test/data", O_RDONLY, 0);
  73. eof = 0;
  74. i = read_to_buf(s, 10, buf, &eof);
  75. test_eq(buf_capacity(buf), 512*1024);
  76. test_eq(buf_datalen(buf), 10);
  77. test_eq(eof, 0);
  78. test_eq(i, 10);
  79. test_memeq(str, (char*)_buf_peek_raw_buffer(buf), 10);
  80. /* Test reading 0 bytes. */
  81. i = read_to_buf(s, 0, buf, &eof);
  82. test_eq(buf_capacity(buf), 512*1024);
  83. test_eq(buf_datalen(buf), 10);
  84. test_eq(eof, 0);
  85. test_eq(i, 0);
  86. /* Now test when buffer is filled exactly. */
  87. buf2 = buf_new_with_capacity(6);
  88. i = read_to_buf(s, 6, buf2, &eof);
  89. test_eq(buf_capacity(buf2), 6);
  90. test_eq(buf_datalen(buf2), 6);
  91. test_eq(eof, 0);
  92. test_eq(i, 6);
  93. test_memeq(str+10, (char*)_buf_peek_raw_buffer(buf2), 6);
  94. buf_free(buf2);
  95. /* Now test when buffer is filled with more data to read. */
  96. buf2 = buf_new_with_capacity(32);
  97. i = read_to_buf(s, 128, buf2, &eof);
  98. test_eq(buf_capacity(buf2), 128);
  99. test_eq(buf_datalen(buf2), 32);
  100. test_eq(eof, 0);
  101. test_eq(i, 32);
  102. buf_free(buf2);
  103. /* Now read to eof. */
  104. test_assert(buf_capacity(buf) > 256);
  105. i = read_to_buf(s, 1024, buf, &eof);
  106. test_eq(i, (256-32-10-6));
  107. test_eq(buf_capacity(buf), MAX_BUF_SIZE);
  108. test_eq(buf_datalen(buf), 256-6-32);
  109. test_memeq(str, (char*)_buf_peek_raw_buffer(buf), 10); /* XXX Check rest. */
  110. test_eq(eof, 0);
  111. i = read_to_buf(s, 1024, buf, &eof);
  112. test_eq(i, 0);
  113. test_eq(buf_capacity(buf), MAX_BUF_SIZE);
  114. test_eq(buf_datalen(buf), 256-6-32);
  115. test_eq(eof, 1);
  116. close(s);
  117. /****
  118. * find_on_inbuf
  119. ****/
  120. buf_free(buf);
  121. buf = buf_new();
  122. s = open("/tmp/tor_test/data", O_RDONLY, 0);
  123. eof = 0;
  124. i = read_to_buf(s, 1024, buf, &eof);
  125. test_eq(256, i);
  126. close(s);
  127. test_eq(((int)'d') + 1, find_on_inbuf("abcd", 4, buf));
  128. test_eq(-1, find_on_inbuf("xyzzy", 5, buf));
  129. /* Make sure we don't look off the end of the buffef */
  130. ((char*)_buf_peek_raw_buffer(buf))[256] = 'A';
  131. ((char*)_buf_peek_raw_buffer(buf))[257] = 'X';
  132. test_eq(-1, find_on_inbuf("\xff" "A", 2, buf));
  133. test_eq(-1, find_on_inbuf("AX", 2, buf));
  134. /* Make sure we use the string length */
  135. test_eq(((int)'d')+1, find_on_inbuf("abcdX", 4, buf));
  136. /****
  137. * fetch_from_buf
  138. ****/
  139. memset(str2, 255, 256);
  140. test_eq(246, fetch_from_buf(str2, 10, buf));
  141. test_memeq(str2, str, 10);
  142. test_memeq(str+10,(char*)_buf_peek_raw_buffer(buf),246);
  143. test_eq(buf_datalen(buf),246);
  144. test_eq(0, fetch_from_buf(str2, 246, buf));
  145. test_memeq(str2, str+10, 246);
  146. test_eq(buf_capacity(buf),MAX_BUF_SIZE);
  147. test_eq(buf_datalen(buf),0);
  148. /****
  149. * write_to_buf
  150. ****/
  151. memset((char *)_buf_peek_raw_buffer(buf), (int)'-', 256);
  152. i = write_to_buf("Hello world", 11, buf);
  153. test_eq(i, 11);
  154. test_eq(buf_datalen(buf), 11);
  155. test_memeq((char*)_buf_peek_raw_buffer(buf), "Hello world", 11);
  156. i = write_to_buf("XYZZY", 5, buf);
  157. test_eq(i, 16);
  158. test_eq(buf_datalen(buf), 16);
  159. test_memeq((char*)_buf_peek_raw_buffer(buf), "Hello worldXYZZY", 16);
  160. /* Test when buffer is overfull. */
  161. #if 0
  162. buflen = 18;
  163. test_eq(-1, write_to_buf("This string will not fit.", 25,
  164. &buf, &buflen, &buf_datalen));
  165. test_eq(buf_datalen, 16);
  166. test_memeq(buf, "Hello worldXYZZY--", 18);
  167. buflen = MAX_BUF_SIZE;
  168. #endif
  169. /****
  170. * flush_buf
  171. ****/
  172. /* XXXX Needs tests. */
  173. buf_free(buf);
  174. }
  175. void
  176. test_crypto_dh()
  177. {
  178. crypto_dh_env_t *dh1, *dh2;
  179. char p1[CRYPTO_DH_SIZE];
  180. char p2[CRYPTO_DH_SIZE];
  181. char s1[CRYPTO_DH_SIZE];
  182. char s2[CRYPTO_DH_SIZE];
  183. int s1len, s2len;
  184. dh1 = crypto_dh_new();
  185. dh2 = crypto_dh_new();
  186. test_eq(crypto_dh_get_bytes(dh1), CRYPTO_DH_SIZE);
  187. test_eq(crypto_dh_get_bytes(dh2), CRYPTO_DH_SIZE);
  188. memset(p1, 0, CRYPTO_DH_SIZE);
  189. memset(p2, 0, CRYPTO_DH_SIZE);
  190. test_memeq(p1, p2, CRYPTO_DH_SIZE);
  191. test_assert(! crypto_dh_get_public(dh1, p1, CRYPTO_DH_SIZE));
  192. test_memneq(p1, p2, CRYPTO_DH_SIZE);
  193. test_assert(! crypto_dh_get_public(dh2, p2, CRYPTO_DH_SIZE));
  194. test_memneq(p1, p2, CRYPTO_DH_SIZE);
  195. memset(s1, 0, CRYPTO_DH_SIZE);
  196. memset(s2, 0xFF, CRYPTO_DH_SIZE);
  197. s1len = crypto_dh_compute_secret(dh1, p2, CRYPTO_DH_SIZE, s1, 50);
  198. s2len = crypto_dh_compute_secret(dh2, p1, CRYPTO_DH_SIZE, s2, 50);
  199. test_assert(s1len > 0);
  200. test_eq(s1len, s2len);
  201. test_memeq(s1, s2, s1len);
  202. crypto_dh_free(dh1);
  203. crypto_dh_free(dh2);
  204. }
  205. void
  206. test_crypto()
  207. {
  208. crypto_cipher_env_t *env1, *env2;
  209. crypto_pk_env_t *pk1, *pk2;
  210. char *data1, *data2, *data3, *cp;
  211. int i, j, p, len;
  212. data1 = tor_malloc(1024);
  213. data2 = tor_malloc(1024);
  214. data3 = tor_malloc(1024);
  215. test_assert(data1 && data2 && data3);
  216. /* Try out RNG. */
  217. test_assert(! crypto_seed_rng());
  218. crypto_rand(100, data1);
  219. crypto_rand(100, data2);
  220. test_memneq(data1,data2,100);
  221. #if 0
  222. /* Try out identity ciphers. */
  223. env1 = crypto_new_cipher_env(CRYPTO_CIPHER_IDENTITY);
  224. test_neq(env1, 0);
  225. test_eq(crypto_cipher_generate_key(env1), 0);
  226. test_eq(crypto_cipher_encrypt_init_cipher(env1), 0);
  227. for(i = 0; i < 1024; ++i) {
  228. data1[i] = (char) i*73;
  229. }
  230. crypto_cipher_encrypt(env1, data1, 1024, data2);
  231. test_memeq(data1, data2, 1024);
  232. crypto_free_cipher_env(env1);
  233. #endif
  234. /* Now, test encryption and decryption with stream cipher. */
  235. data1[0]='\0';
  236. for(i = 1023; i>0; i -= 35)
  237. strncat(data1, "Now is the time for all good onions", i);
  238. memset(data2, 0, 1024);
  239. memset(data3, 0, 1024);
  240. env1 = crypto_new_cipher_env();
  241. test_neq(env1, 0);
  242. env2 = crypto_new_cipher_env();
  243. test_neq(env2, 0);
  244. j = crypto_cipher_generate_key(env1);
  245. crypto_cipher_set_key(env2, crypto_cipher_get_key(env1));
  246. crypto_cipher_encrypt_init_cipher(env1);
  247. crypto_cipher_decrypt_init_cipher(env2);
  248. /* Try encrypting 512 chars. */
  249. crypto_cipher_encrypt(env1, data1, 512, data2);
  250. crypto_cipher_decrypt(env2, data2, 512, data3);
  251. test_memeq(data1, data3, 512);
  252. test_memneq(data1, data2, 512);
  253. /* Now encrypt 1 at a time, and get 1 at a time. */
  254. for (j = 512; j < 560; ++j) {
  255. crypto_cipher_encrypt(env1, data1+j, 1, data2+j);
  256. }
  257. for (j = 512; j < 560; ++j) {
  258. crypto_cipher_decrypt(env2, data2+j, 1, data3+j);
  259. }
  260. test_memeq(data1, data3, 560);
  261. /* Now encrypt 3 at a time, and get 5 at a time. */
  262. for (j = 560; j < 1024-5; j += 3) {
  263. crypto_cipher_encrypt(env1, data1+j, 3, data2+j);
  264. }
  265. for (j = 560; j < 1024-5; j += 5) {
  266. crypto_cipher_decrypt(env2, data2+j, 5, data3+j);
  267. }
  268. test_memeq(data1, data3, 1024-5);
  269. /* Now make sure that when we encrypt with different chunk sizes, we get
  270. the same results. */
  271. crypto_free_cipher_env(env2);
  272. memset(data3, 0, 1024);
  273. env2 = crypto_new_cipher_env();
  274. test_neq(env2, 0);
  275. crypto_cipher_set_key(env2, crypto_cipher_get_key(env1));
  276. crypto_cipher_encrypt_init_cipher(env2);
  277. for (j = 0; j < 1024-16; j += 17) {
  278. crypto_cipher_encrypt(env2, data1+j, 17, data3+j);
  279. }
  280. for (j= 0; j < 1024-16; ++j) {
  281. if (data2[j] != data3[j]) {
  282. printf("%d: %d\t%d\n", j, (int) data2[j], (int) data3[j]);
  283. }
  284. }
  285. test_memeq(data2, data3, 1024-16);
  286. crypto_free_cipher_env(env1);
  287. crypto_free_cipher_env(env2);
  288. /* Test vectors for stream ciphers. */
  289. /* XXXX Look up some test vectors for the ciphers and make sure we match. */
  290. /* Test SHA-1 with a test vector from the specification. */
  291. i = crypto_digest("abc", 3, data1);
  292. test_memeq(data1,
  293. "\xA9\x99\x3E\x36\x47\x06\x81\x6A\xBA\x3E\x25\x71\x78"
  294. "\x50\xC2\x6C\x9C\xD0\xD8\x9D", 20);
  295. /* Public-key ciphers */
  296. pk1 = crypto_new_pk_env();
  297. pk2 = crypto_new_pk_env();
  298. test_assert(pk1 && pk2);
  299. test_assert(! crypto_pk_generate_key(pk1));
  300. test_assert(! crypto_pk_write_public_key_to_string(pk1, &cp, &i));
  301. test_assert(! crypto_pk_read_public_key_from_string(pk2, cp, i));
  302. test_eq(0, crypto_pk_cmp_keys(pk1, pk2));
  303. test_eq(128, crypto_pk_keysize(pk1));
  304. test_eq(128, crypto_pk_keysize(pk2));
  305. test_eq(128, crypto_pk_public_encrypt(pk2, "Hello whirled.", 15, data1,
  306. PK_PKCS1_OAEP_PADDING));
  307. test_eq(128, crypto_pk_public_encrypt(pk1, "Hello whirled.", 15, data2,
  308. PK_PKCS1_OAEP_PADDING));
  309. /* oaep padding should make encryption not match */
  310. test_memneq(data1, data2, 128);
  311. test_eq(15, crypto_pk_private_decrypt(pk1, data1, 128, data3,
  312. PK_PKCS1_OAEP_PADDING));
  313. test_streq(data3, "Hello whirled.");
  314. memset(data3, 0, 1024);
  315. test_eq(15, crypto_pk_private_decrypt(pk1, data2, 128, data3,
  316. PK_PKCS1_OAEP_PADDING));
  317. test_streq(data3, "Hello whirled.");
  318. /* Can't decrypt with public key. */
  319. test_eq(-1, crypto_pk_private_decrypt(pk2, data2, 128, data3,
  320. PK_PKCS1_OAEP_PADDING));
  321. /* Try again with bad padding */
  322. memcpy(data2+1, "XYZZY", 5); /* This has fails ~ once-in-2^40 */
  323. test_eq(-1, crypto_pk_private_decrypt(pk1, data2, 128, data3,
  324. PK_PKCS1_OAEP_PADDING));
  325. /* File operations: save and load private key */
  326. test_assert(! crypto_pk_write_private_key_to_filename(pk1,
  327. "/tmp/tor_test/pke1y"));
  328. test_assert(! crypto_pk_read_private_key_from_filename(pk2,
  329. "/tmp/tor_test/pke1y"));
  330. test_eq(15, crypto_pk_private_decrypt(pk2, data1, 128, data3,
  331. PK_PKCS1_OAEP_PADDING));
  332. /* Now try signing. */
  333. strcpy(data1, "Ossifrage");
  334. test_eq(128, crypto_pk_private_sign(pk1, data1, 10, data2));
  335. test_eq(10, crypto_pk_public_checksig(pk1, data2, 128, data3));
  336. test_streq(data3, "Ossifrage");
  337. /* Try signing digests. */
  338. test_eq(128, crypto_pk_private_sign_digest(pk1, data1, 10, data2));
  339. test_eq(20, crypto_pk_public_checksig(pk1, data2, 128, data3));
  340. test_eq(0, crypto_pk_public_checksig_digest(pk1, data1, 10, data2, 128));
  341. test_eq(-1, crypto_pk_public_checksig_digest(pk1, data1, 11, data2, 128));
  342. /*XXXX test failed signing*/
  343. /* Try encoding */
  344. crypto_free_pk_env(pk2);
  345. pk2 = NULL;
  346. i = crypto_pk_asn1_encode(pk1, data1, 1024);
  347. test_assert(i>0);
  348. pk2 = crypto_pk_asn1_decode(data1, i);
  349. test_assert(crypto_pk_cmp_keys(pk1,pk2) == 0);
  350. /* Try with hybrid encryption wrappers. */
  351. crypto_rand(1024, data1);
  352. for (i = 0; i < 3; ++i) {
  353. for (j = 85; j < 140; ++j) {
  354. memset(data2,0,1024);
  355. memset(data3,0,1024);
  356. if (i == 0 && j < 129)
  357. continue;
  358. p = (i==0)?PK_NO_PADDING:
  359. (i==1)?PK_PKCS1_PADDING:PK_PKCS1_OAEP_PADDING;
  360. len = crypto_pk_public_hybrid_encrypt(pk1,data1,j,data2,p,0);
  361. test_assert(len>=0);
  362. len = crypto_pk_private_hybrid_decrypt(pk1,data2,len,data3,p);
  363. test_eq(len,j);
  364. test_memeq(data1,data3,j);
  365. }
  366. }
  367. crypto_free_pk_env(pk1);
  368. crypto_free_pk_env(pk2);
  369. /* Base64 tests */
  370. strcpy(data1, "Test string that contains 35 chars.");
  371. strcat(data1, " 2nd string that contains 35 chars.");
  372. i = base64_encode(data2, 1024, data1, 71);
  373. j = base64_decode(data3, 1024, data2, i);
  374. test_streq(data3, data1);
  375. test_eq(j, 71);
  376. test_assert(data2[i] == '\0');
  377. /* Base32 tests */
  378. strcpy(data1, "5chrs");
  379. /* bit pattern is: [35 63 68 72 73] ->
  380. * [00110101 01100011 01101000 01110010 01110011]
  381. * By 5s: [00110 10101 10001 10110 10000 11100 10011 10011]
  382. */
  383. i = base32_encode(data2, 9, data1, 5);
  384. test_streq(data2, "gvrwq4tt");
  385. strcpy(data1, "\xFF\xF5\x6D\x44\xAE\x0D\x5C\xC9\x62\xC4");
  386. i = base32_encode(data2, 30, data1, 10);
  387. test_eq(i,0);
  388. test_streq(data2, "772w2rfobvomsywe");
  389. free(data1);
  390. free(data2);
  391. free(data3);
  392. }
  393. void
  394. test_util() {
  395. struct timeval start, end;
  396. struct tm a_time;
  397. smartlist_t *sl;
  398. start.tv_sec = 5;
  399. start.tv_usec = 5000;
  400. end.tv_sec = 5;
  401. end.tv_usec = 5000;
  402. test_eq(0L, tv_udiff(&start, &end));
  403. end.tv_usec = 7000;
  404. test_eq(2000L, tv_udiff(&start, &end));
  405. end.tv_sec = 6;
  406. test_eq(1002000L, tv_udiff(&start, &end));
  407. end.tv_usec = 0;
  408. test_eq(995000L, tv_udiff(&start, &end));
  409. end.tv_sec = 4;
  410. test_eq(0L, tv_udiff(&start, &end));
  411. /* The test values here are confirmed to be correct on a platform
  412. * with a working timegm. */
  413. a_time.tm_year = 2003-1900;
  414. a_time.tm_mon = 7;
  415. a_time.tm_mday = 30;
  416. a_time.tm_hour = 6;
  417. a_time.tm_min = 14;
  418. a_time.tm_sec = 55;
  419. test_eq((time_t) 1062224095UL, tor_timegm(&a_time));
  420. a_time.tm_year = 2004-1900; /* Try a leap year, after feb. */
  421. test_eq((time_t) 1093846495UL, tor_timegm(&a_time));
  422. a_time.tm_mon = 1; /* Try a leap year, in feb. */
  423. a_time.tm_mday = 10;
  424. test_eq((time_t) 1076393695UL, tor_timegm(&a_time));
  425. /* Test smartlist */
  426. sl = smartlist_create();
  427. smartlist_add(sl, (void*)1);
  428. smartlist_add(sl, (void*)2);
  429. smartlist_add(sl, (void*)3);
  430. smartlist_add(sl, (void*)4);
  431. test_eq(2, (int)smartlist_del_keeporder(sl, 1));
  432. smartlist_insert(sl, 1, (void*)22);
  433. smartlist_insert(sl, 0, (void*)0);
  434. smartlist_insert(sl, 5, (void*)555);
  435. test_eq(0, (int)smartlist_get(sl,0));
  436. test_eq(1, (int)smartlist_get(sl,1));
  437. test_eq(22, (int)smartlist_get(sl,2));
  438. test_eq(3, (int)smartlist_get(sl,3));
  439. test_eq(4, (int)smartlist_get(sl,4));
  440. test_eq(555, (int)smartlist_get(sl,5));
  441. /* XXXX test older functions. */
  442. smartlist_free(sl);
  443. }
  444. static void* _squareAndRemoveK4(const char *key, void*val, void *data)
  445. {
  446. int *ip = (int*)data;
  447. int v;
  448. if (strcmp(key,"K4") == 0) {
  449. ++(*ip);
  450. return NULL;
  451. }
  452. v = (int)val;
  453. return (void*)(v*v);
  454. }
  455. void test_strmap() {
  456. strmap_t *map;
  457. strmap_iter_t *iter;
  458. const char *k;
  459. void *v;
  460. int count;
  461. map = strmap_new();
  462. v = strmap_set(map, "K1", (void*)99);
  463. test_eq(v, NULL);
  464. v = strmap_set(map, "K2", (void*)101);
  465. test_eq(v, NULL);
  466. v = strmap_set(map, "K1", (void*)100);
  467. test_eq(v, (void*)99);
  468. test_eq(strmap_get(map,"K1"), (void*)100);
  469. test_eq(strmap_get(map,"K2"), (void*)101);
  470. test_eq(strmap_get(map,"K-not-there"), NULL);
  471. v = strmap_remove(map,"K2");
  472. test_eq(v, (void*)101);
  473. test_eq(strmap_get(map,"K2"), NULL);
  474. test_eq(strmap_remove(map,"K2"), NULL);
  475. strmap_set(map, "K2", (void*)101);
  476. strmap_set(map, "K3", (void*)102);
  477. strmap_set(map, "K4", (void*)103);
  478. strmap_set(map, "K5", (void*)104);
  479. strmap_set(map, "K6", (void*)105);
  480. count = 0;
  481. strmap_foreach(map, _squareAndRemoveK4, &count);
  482. test_eq(count, 1);
  483. test_eq(strmap_get(map, "K4"), NULL);
  484. test_eq(strmap_get(map, "K1"), (void*)10000);
  485. test_eq(strmap_get(map, "K6"), (void*)11025);
  486. iter = strmap_iter_init(map);
  487. strmap_iter_get(iter,&k,&v);
  488. test_streq(k, "K1");
  489. test_eq(v, (void*)10000);
  490. iter = strmap_iter_next(map,iter);
  491. strmap_iter_get(iter,&k,&v);
  492. test_streq(k, "K2");
  493. test_eq(v, (void*)10201);
  494. iter = strmap_iter_next_rmv(map,iter);
  495. strmap_iter_get(iter,&k,&v);
  496. test_streq(k, "K3");
  497. test_eq(v, (void*)10404);
  498. iter = strmap_iter_next(map,iter); /* K5 */
  499. test_assert(!strmap_iter_done(iter));
  500. iter = strmap_iter_next(map,iter); /* K6 */
  501. test_assert(!strmap_iter_done(iter));
  502. iter = strmap_iter_next(map,iter); /* done */
  503. test_assert(strmap_iter_done(iter));
  504. /* Make sure we removed K2, but not the others. */
  505. test_eq(strmap_get(map, "K2"), NULL);
  506. test_eq(strmap_get(map, "K5"), (void*)10816);
  507. /* Clean up after ourselves. */
  508. strmap_free(map, NULL);
  509. /* Now try some lc functions. */
  510. map = strmap_new();
  511. strmap_set_lc(map,"Ab.C", (void*)1);
  512. test_eq(strmap_get(map,"ab.c"), (void*)1);
  513. test_eq(strmap_get_lc(map,"AB.C"), (void*)1);
  514. test_eq(strmap_get(map,"AB.C"), NULL);
  515. test_eq(strmap_remove_lc(map,"aB.C"), (void*)1);
  516. test_eq(strmap_get_lc(map,"AB.C"), NULL);
  517. strmap_free(map,NULL);
  518. }
  519. void test_onion() {
  520. #if 0
  521. char **names;
  522. int i,num;
  523. names = parse_nickname_list(" foo bar\t baz quux ", &num);
  524. test_eq(num,4);
  525. test_streq(names[0],"foo");
  526. test_streq(names[1],"bar");
  527. test_streq(names[2],"baz");
  528. test_streq(names[3],"quux");
  529. for(i=0;i<num;i++)
  530. tor_free(names[i]);
  531. tor_free(names);
  532. #endif
  533. }
  534. void
  535. test_onion_handshake() {
  536. /* client-side */
  537. crypto_dh_env_t *c_dh = NULL;
  538. char c_buf[ONIONSKIN_CHALLENGE_LEN];
  539. char c_keys[40];
  540. /* server-side */
  541. char s_buf[ONIONSKIN_REPLY_LEN];
  542. char s_keys[40];
  543. /* shared */
  544. crypto_pk_env_t *pk = NULL;
  545. pk = crypto_new_pk_env();
  546. test_assert(! crypto_pk_generate_key(pk));
  547. /* client handshake 1. */
  548. memset(c_buf, 0, ONIONSKIN_CHALLENGE_LEN);
  549. test_assert(! onion_skin_create(pk, &c_dh, c_buf));
  550. /* server handshake */
  551. memset(s_buf, 0, ONIONSKIN_REPLY_LEN);
  552. memset(s_keys, 0, 40);
  553. test_assert(! onion_skin_server_handshake(c_buf, pk, NULL, s_buf, s_keys, 40));
  554. /* client handshake 2 */
  555. memset(c_keys, 0, 40);
  556. test_assert(! onion_skin_client_handshake(c_dh, s_buf, c_keys, 40));
  557. crypto_dh_free(c_dh);
  558. if (memcmp(c_keys, s_keys, 40)) {
  559. puts("Aiiiie");
  560. exit(1);
  561. }
  562. test_memeq(c_keys, s_keys, 40);
  563. memset(s_buf, 0, 40);
  564. test_memneq(c_keys, s_buf, 40);
  565. crypto_free_pk_env(pk);
  566. }
  567. /* from routers.c */
  568. int is_recommended_version(char *myversion, char *start);
  569. void
  570. test_dir_format()
  571. {
  572. char buf[8192], buf2[8192];
  573. char platform[256];
  574. char *pk1_str = NULL, *pk2_str = NULL, *pk3_str = NULL, *cp;
  575. int pk1_str_len, pk2_str_len, pk3_str_len;
  576. routerinfo_t r1, r2;
  577. crypto_pk_env_t *pk1 = NULL, *pk2 = NULL, *pk3 = NULL;
  578. routerinfo_t *rp1 = NULL, *rp2 = NULL;
  579. struct exit_policy_t ex1, ex2;
  580. routerlist_t *dir1 = NULL, *dir2 = NULL;
  581. test_assert( (pk1 = crypto_new_pk_env()) );
  582. test_assert( (pk2 = crypto_new_pk_env()) );
  583. test_assert( (pk3 = crypto_new_pk_env()) );
  584. test_assert(! crypto_pk_generate_key(pk1));
  585. test_assert(! crypto_pk_generate_key(pk2));
  586. test_assert(! crypto_pk_generate_key(pk3));
  587. get_platform_str(platform, sizeof(platform));
  588. r1.address = "testaddr1.foo.bar";
  589. r1.addr = 0xc0a80001u; /* 192.168.0.1 */
  590. r1.published_on = 0;
  591. r1.or_port = 9000;
  592. r1.socks_port = 9002;
  593. r1.dir_port = 9003;
  594. r1.onion_pkey = pk1;
  595. r1.identity_pkey = pk2;
  596. r1.bandwidthrate = 1000;
  597. r1.bandwidthburst = 5000;
  598. r1.exit_policy = NULL;
  599. r1.nickname = "Magri";
  600. r1.platform = tor_strdup(platform);
  601. ex1.policy_type = EXIT_POLICY_ACCEPT;
  602. ex1.string = NULL;
  603. ex1.addr = 0;
  604. ex1.msk = 0;
  605. ex1.prt_min = ex1.prt_max = 80;
  606. ex1.next = &ex2;
  607. ex2.policy_type = EXIT_POLICY_REJECT;
  608. ex2.addr = 18 << 24;
  609. ex2.msk = 0xFF000000u;
  610. ex2.prt_min = ex1.prt_max = 24;
  611. ex2.next = NULL;
  612. r2.address = "tor.tor.tor";
  613. r2.addr = 0x0a030201u; /* 10.3.2.1 */
  614. r2.platform = tor_strdup(platform);
  615. r2.published_on = 5;
  616. r2.or_port = 9005;
  617. r2.socks_port = 0;
  618. r2.dir_port = 0;
  619. r2.onion_pkey = pk2;
  620. r2.identity_pkey = pk1;
  621. r2.bandwidthrate = r2.bandwidthburst = 3000;
  622. r2.exit_policy = &ex1;
  623. r2.nickname = "Fred";
  624. test_assert(!crypto_pk_write_public_key_to_string(pk1, &pk1_str,
  625. &pk1_str_len));
  626. test_assert(!crypto_pk_write_public_key_to_string(pk2 , &pk2_str,
  627. &pk2_str_len));
  628. test_assert(!crypto_pk_write_public_key_to_string(pk3 , &pk3_str,
  629. &pk3_str_len));
  630. memset(buf, 0, 2048);
  631. test_assert(router_dump_router_to_string(buf, 2048, &r1, pk2)>0);
  632. strcpy(buf2, "router Magri testaddr1.foo.bar 9000 9002 9003\n"
  633. "platform Tor "VERSION" on ");
  634. strcat(buf2, get_uname());
  635. strcat(buf2, "\n"
  636. "published 1970-01-01 00:00:00\n"
  637. "bandwidth 1000 5000\n"
  638. "onion-key\n");
  639. strcat(buf2, pk1_str);
  640. strcat(buf2, "signing-key\n");
  641. strcat(buf2, pk2_str);
  642. strcat(buf2, "router-signature\n");
  643. buf[strlen(buf2)] = '\0'; /* Don't compare the sig; it's never the same twice*/
  644. test_streq(buf, buf2);
  645. test_assert(router_dump_router_to_string(buf, 2048, &r1, pk2)>0);
  646. cp = buf;
  647. rp1 = router_get_entry_from_string((const char*)cp,NULL);
  648. test_assert(rp1);
  649. test_streq(rp1->address, r1.address);
  650. test_eq(rp1->or_port, r1.or_port);
  651. test_eq(rp1->socks_port, r1.socks_port);
  652. test_eq(rp1->dir_port, r1.dir_port);
  653. test_eq(rp1->bandwidthrate, r1.bandwidthrate);
  654. test_eq(rp1->bandwidthburst, r1.bandwidthburst);
  655. test_assert(crypto_pk_cmp_keys(rp1->onion_pkey, pk1) == 0);
  656. test_assert(crypto_pk_cmp_keys(rp1->identity_pkey, pk2) == 0);
  657. test_assert(rp1->exit_policy == NULL);
  658. #if 0
  659. /* XXX Once we have exit policies, test this again. XXX */
  660. strcpy(buf2, "router tor.tor.tor 9005 0 0 3000\n");
  661. strcat(buf2, pk2_str);
  662. strcat(buf2, "signing-key\n");
  663. strcat(buf2, pk1_str);
  664. strcat(buf2, "accept *:80\nreject 18.*:24\n\n");
  665. test_assert(router_dump_router_to_string(buf, 2048, &r2, pk2)>0);
  666. test_streq(buf, buf2);
  667. cp = buf;
  668. rp2 = router_get_entry_from_string(&cp);
  669. test_assert(rp2);
  670. test_streq(rp2->address, r2.address);
  671. test_eq(rp2->or_port, r2.or_port);
  672. test_eq(rp2->socks_port, r2.socks_port);
  673. test_eq(rp2->dir_port, r2.dir_port);
  674. test_eq(rp2->bandwidth, r2.bandwidth);
  675. test_assert(crypto_pk_cmp_keys(rp2->onion_pkey, pk2) == 0);
  676. test_assert(crypto_pk_cmp_keys(rp2->identity_pkey, pk1) == 0);
  677. test_eq(rp2->exit_policy->policy_type, EXIT_POLICY_ACCEPT);
  678. test_streq(rp2->exit_policy->string, "accept *:80");
  679. test_streq(rp2->exit_policy->address, "*");
  680. test_streq(rp2->exit_policy->port, "80");
  681. test_eq(rp2->exit_policy->next->policy_type, EXIT_POLICY_REJECT);
  682. test_streq(rp2->exit_policy->next->string, "reject 18.*:24");
  683. test_streq(rp2->exit_policy->next->address, "18.*");
  684. test_streq(rp2->exit_policy->next->port, "24");
  685. test_assert(rp2->exit_policy->next->next == NULL);
  686. #endif
  687. /* Okay, now for the directories. */
  688. crypto_pk_get_fingerprint(pk2, buf);
  689. add_fingerprint_to_dir("Magri", buf);
  690. crypto_pk_get_fingerprint(pk1, buf);
  691. add_fingerprint_to_dir("Fred", buf);
  692. /* Make sure routers aren't too far in the past any more. */
  693. r1.published_on = time(NULL);
  694. r2.published_on = time(NULL)-3*60*60;
  695. test_assert(router_dump_router_to_string(buf, 2048, &r1, pk2)>0);
  696. cp = buf;
  697. test_eq(dirserv_add_descriptor((const char**)&cp), 1);
  698. test_assert(router_dump_router_to_string(buf, 2048, &r2, pk1)>0);
  699. cp = buf;
  700. test_eq(dirserv_add_descriptor((const char**)&cp), 1);
  701. options.Nickname = "DirServer";
  702. test_assert(!dirserv_dump_directory_to_string(buf,8192,pk3));
  703. cp = buf;
  704. test_assert(!router_get_routerlist_from_directory_impl(buf, &dir1, pk3));
  705. test_eq(2, smartlist_len(dir1->routers));
  706. dirserv_free_fingerprint_list();
  707. tor_free(pk1_str);
  708. tor_free(pk2_str);
  709. if (pk1) crypto_free_pk_env(pk1);
  710. if (pk2) crypto_free_pk_env(pk2);
  711. if (rp1) routerinfo_free(rp1);
  712. if (rp2) routerinfo_free(rp2);
  713. tor_free(dir1); /* XXXX And more !*/
  714. tor_free(dir2); /* And more !*/
  715. /* make sure is_recommended_version() works */
  716. test_eq(1, is_recommended_version("abc", "abc"));
  717. test_eq(1, is_recommended_version("abc", "ab,abd,abde,abc,abcde"));
  718. test_eq(1, is_recommended_version("abc", "ab,abd,abde,abcde,abc"));
  719. test_eq(1, is_recommended_version("abc", "abc,abd,abde,abc,abcde"));
  720. test_eq(1, is_recommended_version("a", "a,ab,abd,abde,abc,abcde"));
  721. test_eq(0, is_recommended_version("a", "ab,abd,abde,abc,abcde"));
  722. test_eq(0, is_recommended_version("abb", "ab,abd,abde,abc,abcde"));
  723. test_eq(0, is_recommended_version("a", ""));
  724. }
  725. void test_rend_fns()
  726. {
  727. char address1[] = "fooaddress.onion";
  728. char address2[] = "aaaaaaaaaaaaaaaa.onion";
  729. rend_service_descriptor_t *d1, *d2;
  730. char *encoded;
  731. int len;
  732. crypto_pk_env_t *pk1;
  733. time_t now;
  734. pk1 = crypto_new_pk_env();
  735. test_assert(!crypto_pk_generate_key(pk1));
  736. d1 = tor_malloc_zero(sizeof(rend_service_descriptor_t));
  737. d1->pk = pk1;
  738. now = time(NULL);
  739. d1->timestamp = now;
  740. d1->n_intro_points = 3;
  741. d1->intro_points = tor_malloc(sizeof(char*)*3);
  742. d1->intro_points[0] = tor_strdup("tom");
  743. d1->intro_points[1] = tor_strdup("crow");
  744. d1->intro_points[2] = tor_strdup("joel");
  745. test_assert(! rend_encode_service_descriptor(d1, pk1, &encoded, &len));
  746. d2 = rend_parse_service_descriptor(encoded, len);
  747. test_assert(d2);
  748. test_assert(!crypto_pk_cmp_keys(d1->pk, d2->pk));
  749. test_eq(d2->timestamp, now);
  750. test_eq(d2->n_intro_points, 3);
  751. test_streq(d2->intro_points[0], "tom");
  752. test_streq(d2->intro_points[1], "crow");
  753. test_streq(d2->intro_points[2], "joel");
  754. test_eq(-1, rend_parse_rendezvous_address(address1));
  755. test_eq( 0, rend_parse_rendezvous_address(address2));
  756. rend_service_descriptor_free(d1);
  757. rend_service_descriptor_free(d2);
  758. }
  759. int
  760. main(int c, char**v){
  761. #if 0
  762. or_options_t options; /* command-line and config-file options */
  763. if(getconfig(c,v,&options))
  764. exit(1);
  765. #endif
  766. crypto_seed_rng();
  767. setup_directory();
  768. // puts("========================== Buffers =========================");
  769. // test_buffers();
  770. puts("\n========================== Crypto ==========================");
  771. test_crypto();
  772. test_crypto_dh();
  773. puts("\n========================= Util ============================");
  774. test_util();
  775. test_strmap();
  776. puts("\n========================= Onion Skins =====================");
  777. test_onion();
  778. test_onion_handshake();
  779. puts("\n========================= Directory Formats ===============");
  780. /* add_stream_log(LOG_DEBUG, NULL, stdout); */
  781. test_dir_format();
  782. puts("\n========================= Rendezvous functionality ========");
  783. test_rend_fns();
  784. puts("");
  785. if (have_failed)
  786. return 1;
  787. else
  788. return 0;
  789. }
  790. /*
  791. Local Variables:
  792. mode:c
  793. indent-tabs-mode:nil
  794. c-basic-offset:2
  795. End:
  796. */