test.c 115 KB

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  1. /* Copyright 2001-2004 Roger Dingledine.
  2. * Copyright 2004-2007 Roger Dingledine, Nick Mathewson. */
  3. /* See LICENSE for licensing information */
  4. /* $Id$ */
  5. const char test_c_id[] =
  6. "$Id$";
  7. const char tor_svn_revision[] = "";
  8. /**
  9. * \file test.c
  10. * \brief Unit tests for many pieces of the lower level Tor modules.
  11. **/
  12. #include "orconfig.h"
  13. #include <stdio.h>
  14. #ifdef HAVE_FCNTL_H
  15. #include <fcntl.h>
  16. #endif
  17. #ifdef MS_WINDOWS
  18. /* For mkdir() */
  19. #include <direct.h>
  20. #else
  21. #include <dirent.h>
  22. #endif
  23. /* These macros pull in declarations for some functions and structures that
  24. * are typically file-private. */
  25. #define CONFIG_PRIVATE
  26. #define CONTROL_PRIVATE
  27. #define CRYPTO_PRIVATE
  28. #define DIRSERV_PRIVATE
  29. #define DIRVOTE_PRIVATE
  30. #define MEMPOOL_PRIVATE
  31. #define ROUTER_PRIVATE
  32. #include "or.h"
  33. #include "test.h"
  34. #include "torgzip.h"
  35. #include "mempool.h"
  36. int have_failed = 0;
  37. static char temp_dir[256];
  38. static void
  39. setup_directory(void)
  40. {
  41. static int is_setup = 0;
  42. int r;
  43. if (is_setup) return;
  44. #ifdef MS_WINDOWS
  45. // XXXX
  46. tor_snprintf(temp_dir, sizeof(temp_dir),
  47. "c:\\windows\\temp\\tor_test_%d", (int)getpid());
  48. r = mkdir(temp_dir);
  49. #else
  50. tor_snprintf(temp_dir, sizeof(temp_dir), "/tmp/tor_test_%d", (int) getpid());
  51. r = mkdir(temp_dir, 0700);
  52. #endif
  53. if (r) {
  54. fprintf(stderr, "Can't create directory %s:", temp_dir);
  55. perror("");
  56. exit(1);
  57. }
  58. is_setup = 1;
  59. }
  60. static const char *
  61. get_fname(const char *name)
  62. {
  63. static char buf[1024];
  64. setup_directory();
  65. tor_snprintf(buf,sizeof(buf),"%s/%s",temp_dir,name);
  66. return buf;
  67. }
  68. static void
  69. remove_directory(void)
  70. {
  71. smartlist_t *elements = tor_listdir(temp_dir);
  72. if (elements) {
  73. SMARTLIST_FOREACH(elements, const char *, cp,
  74. {
  75. size_t len = strlen(cp)+strlen(temp_dir)+16;
  76. char *tmp = tor_malloc(len);
  77. tor_snprintf(tmp, len, "%s"PATH_SEPARATOR"%s", temp_dir, cp);
  78. unlink(tmp);
  79. tor_free(tmp);
  80. });
  81. SMARTLIST_FOREACH(elements, char *, cp, tor_free(cp));
  82. smartlist_free(elements);
  83. }
  84. rmdir(temp_dir);
  85. }
  86. static crypto_pk_env_t *
  87. pk_generate(int idx)
  88. {
  89. static crypto_pk_env_t *pregen[5] = {NULL, NULL, NULL, NULL, NULL};
  90. tor_assert(idx < (int)(sizeof(pregen)/sizeof(pregen[0])));
  91. if (! pregen[idx]) {
  92. pregen[idx] = crypto_new_pk_env();
  93. tor_assert(!crypto_pk_generate_key(pregen[idx]));
  94. }
  95. return crypto_pk_dup_key(pregen[idx]);
  96. }
  97. static void
  98. test_buffers(void)
  99. {
  100. char str[256];
  101. char str2[256];
  102. buf_t *buf, *buf2;
  103. int j;
  104. size_t r;
  105. /****
  106. * buf_new
  107. ****/
  108. if (!(buf = buf_new()))
  109. test_fail();
  110. test_eq(buf_capacity(buf), 4096);
  111. test_eq(buf_datalen(buf), 0);
  112. /****
  113. * General pointer frobbing
  114. */
  115. for (j=0;j<256;++j) {
  116. str[j] = (char)j;
  117. }
  118. write_to_buf(str, 256, buf);
  119. write_to_buf(str, 256, buf);
  120. test_eq(buf_datalen(buf), 512);
  121. fetch_from_buf(str2, 200, buf);
  122. test_memeq(str, str2, 200);
  123. test_eq(buf_datalen(buf), 312);
  124. memset(str2, 0, sizeof(str2));
  125. fetch_from_buf(str2, 256, buf);
  126. test_memeq(str+200, str2, 56);
  127. test_memeq(str, str2+56, 200);
  128. test_eq(buf_datalen(buf), 56);
  129. memset(str2, 0, sizeof(str2));
  130. /* Okay, now we should be 512 bytes into the 4096-byte buffer. If we add
  131. * another 3584 bytes, we hit the end. */
  132. for (j=0;j<15;++j) {
  133. write_to_buf(str, 256, buf);
  134. }
  135. assert_buf_ok(buf);
  136. test_eq(buf_datalen(buf), 3896);
  137. fetch_from_buf(str2, 56, buf);
  138. test_eq(buf_datalen(buf), 3840);
  139. test_memeq(str+200, str2, 56);
  140. for (j=0;j<15;++j) {
  141. memset(str2, 0, sizeof(str2));
  142. fetch_from_buf(str2, 256, buf);
  143. test_memeq(str, str2, 256);
  144. }
  145. test_eq(buf_datalen(buf), 0);
  146. buf_free(buf);
  147. /* Okay, now make sure growing can work. */
  148. buf = buf_new_with_capacity(16);
  149. test_eq(buf_capacity(buf), 16);
  150. write_to_buf(str+1, 255, buf);
  151. test_eq(buf_capacity(buf), 256);
  152. fetch_from_buf(str2, 254, buf);
  153. test_memeq(str+1, str2, 254);
  154. test_eq(buf_capacity(buf), 256);
  155. assert_buf_ok(buf);
  156. write_to_buf(str, 32, buf);
  157. test_eq(buf_capacity(buf), 256);
  158. assert_buf_ok(buf);
  159. write_to_buf(str, 256, buf);
  160. assert_buf_ok(buf);
  161. test_eq(buf_capacity(buf), 512);
  162. test_eq(buf_datalen(buf), 33+256);
  163. fetch_from_buf(str2, 33, buf);
  164. test_eq(*str2, str[255]);
  165. test_memeq(str2+1, str, 32);
  166. test_eq(buf_capacity(buf), 512);
  167. test_eq(buf_datalen(buf), 256);
  168. fetch_from_buf(str2, 256, buf);
  169. test_memeq(str, str2, 256);
  170. /* now try shrinking: case 1. */
  171. buf_free(buf);
  172. buf = buf_new_with_capacity(33668);
  173. for (j=0;j<67;++j) {
  174. write_to_buf(str,255, buf);
  175. }
  176. test_eq(buf_capacity(buf), 33668);
  177. test_eq(buf_datalen(buf), 17085);
  178. for (j=0; j < 40; ++j) {
  179. fetch_from_buf(str2, 255,buf);
  180. test_memeq(str2, str, 255);
  181. }
  182. /* now try shrinking: case 2. */
  183. buf_free(buf);
  184. buf = buf_new_with_capacity(33668);
  185. for (j=0;j<67;++j) {
  186. write_to_buf(str,255, buf);
  187. }
  188. for (j=0; j < 20; ++j) {
  189. fetch_from_buf(str2, 255,buf);
  190. test_memeq(str2, str, 255);
  191. }
  192. for (j=0;j<80;++j) {
  193. write_to_buf(str,255, buf);
  194. }
  195. test_eq(buf_capacity(buf),33668);
  196. for (j=0; j < 120; ++j) {
  197. fetch_from_buf(str2, 255,buf);
  198. test_memeq(str2, str, 255);
  199. }
  200. /* Move from buf to buf. */
  201. buf_free(buf);
  202. buf = buf_new_with_capacity(4096);
  203. buf2 = buf_new_with_capacity(4096);
  204. for (j=0;j<100;++j)
  205. write_to_buf(str, 255, buf);
  206. test_eq(buf_datalen(buf), 25500);
  207. for (j=0;j<100;++j) {
  208. r = 10;
  209. move_buf_to_buf(buf2, buf, &r);
  210. test_eq(r, 0);
  211. }
  212. test_eq(buf_datalen(buf), 24500);
  213. test_eq(buf_datalen(buf2), 1000);
  214. for (j=0;j<3;++j) {
  215. fetch_from_buf(str2, 255, buf2);
  216. test_memeq(str2, str, 255);
  217. }
  218. r = 8192; /*big move*/
  219. move_buf_to_buf(buf2, buf, &r);
  220. test_eq(r, 0);
  221. r = 30000; /* incomplete move */
  222. move_buf_to_buf(buf2, buf, &r);
  223. test_eq(r, 13692);
  224. for (j=0;j<97;++j) {
  225. fetch_from_buf(str2, 255, buf2);
  226. test_memeq(str2, str, 255);
  227. }
  228. buf_free(buf);
  229. buf_free(buf2);
  230. #if 0
  231. {
  232. int s;
  233. int eof;
  234. int i;
  235. buf_t *buf2;
  236. /****
  237. * read_to_buf
  238. ****/
  239. s = open(get_fname("data"), O_WRONLY|O_CREAT|O_TRUNC, 0600);
  240. write(s, str, 256);
  241. close(s);
  242. s = open(get_fname("data"), O_RDONLY, 0);
  243. eof = 0;
  244. errno = 0; /* XXXX */
  245. i = read_to_buf(s, 10, buf, &eof);
  246. printf("%s\n", strerror(errno));
  247. test_eq(i, 10);
  248. test_eq(eof, 0);
  249. test_eq(buf_capacity(buf), 4096);
  250. test_eq(buf_datalen(buf), 10);
  251. test_memeq(str, (char*)_buf_peek_raw_buffer(buf), 10);
  252. /* Test reading 0 bytes. */
  253. i = read_to_buf(s, 0, buf, &eof);
  254. test_eq(buf_capacity(buf), 512*1024);
  255. test_eq(buf_datalen(buf), 10);
  256. test_eq(eof, 0);
  257. test_eq(i, 0);
  258. /* Now test when buffer is filled exactly. */
  259. buf2 = buf_new_with_capacity(6);
  260. i = read_to_buf(s, 6, buf2, &eof);
  261. test_eq(buf_capacity(buf2), 6);
  262. test_eq(buf_datalen(buf2), 6);
  263. test_eq(eof, 0);
  264. test_eq(i, 6);
  265. test_memeq(str+10, (char*)_buf_peek_raw_buffer(buf2), 6);
  266. buf_free(buf2);
  267. /* Now test when buffer is filled with more data to read. */
  268. buf2 = buf_new_with_capacity(32);
  269. i = read_to_buf(s, 128, buf2, &eof);
  270. test_eq(buf_capacity(buf2), 128);
  271. test_eq(buf_datalen(buf2), 32);
  272. test_eq(eof, 0);
  273. test_eq(i, 32);
  274. buf_free(buf2);
  275. /* Now read to eof. */
  276. test_assert(buf_capacity(buf) > 256);
  277. i = read_to_buf(s, 1024, buf, &eof);
  278. test_eq(i, (256-32-10-6));
  279. test_eq(buf_capacity(buf), MAX_BUF_SIZE);
  280. test_eq(buf_datalen(buf), 256-6-32);
  281. test_memeq(str, (char*)_buf_peek_raw_buffer(buf), 10); /* XXX Check rest. */
  282. test_eq(eof, 0);
  283. i = read_to_buf(s, 1024, buf, &eof);
  284. test_eq(i, 0);
  285. test_eq(buf_capacity(buf), MAX_BUF_SIZE);
  286. test_eq(buf_datalen(buf), 256-6-32);
  287. test_eq(eof, 1);
  288. }
  289. #endif
  290. }
  291. static void
  292. test_crypto_dh(void)
  293. {
  294. crypto_dh_env_t *dh1, *dh2;
  295. char p1[DH_BYTES];
  296. char p2[DH_BYTES];
  297. char s1[DH_BYTES];
  298. char s2[DH_BYTES];
  299. int s1len, s2len;
  300. dh1 = crypto_dh_new();
  301. dh2 = crypto_dh_new();
  302. test_eq(crypto_dh_get_bytes(dh1), DH_BYTES);
  303. test_eq(crypto_dh_get_bytes(dh2), DH_BYTES);
  304. memset(p1, 0, DH_BYTES);
  305. memset(p2, 0, DH_BYTES);
  306. test_memeq(p1, p2, DH_BYTES);
  307. test_assert(! crypto_dh_get_public(dh1, p1, DH_BYTES));
  308. test_memneq(p1, p2, DH_BYTES);
  309. test_assert(! crypto_dh_get_public(dh2, p2, DH_BYTES));
  310. test_memneq(p1, p2, DH_BYTES);
  311. memset(s1, 0, DH_BYTES);
  312. memset(s2, 0xFF, DH_BYTES);
  313. s1len = crypto_dh_compute_secret(dh1, p2, DH_BYTES, s1, 50);
  314. s2len = crypto_dh_compute_secret(dh2, p1, DH_BYTES, s2, 50);
  315. test_assert(s1len > 0);
  316. test_eq(s1len, s2len);
  317. test_memeq(s1, s2, s1len);
  318. crypto_dh_free(dh1);
  319. crypto_dh_free(dh2);
  320. }
  321. static void
  322. test_crypto(void)
  323. {
  324. crypto_cipher_env_t *env1, *env2;
  325. crypto_pk_env_t *pk1, *pk2;
  326. char *data1, *data2, *data3, *cp;
  327. int i, j, p, len, idx;
  328. size_t size;
  329. data1 = tor_malloc(1024);
  330. data2 = tor_malloc(1024);
  331. data3 = tor_malloc(1024);
  332. test_assert(data1 && data2 && data3);
  333. /* Try out RNG. */
  334. test_assert(! crypto_seed_rng());
  335. crypto_rand(data1, 100);
  336. crypto_rand(data2, 100);
  337. test_memneq(data1,data2,100);
  338. /* Now, test encryption and decryption with stream cipher. */
  339. data1[0]='\0';
  340. for (i = 1023; i>0; i -= 35)
  341. strncat(data1, "Now is the time for all good onions", i);
  342. memset(data2, 0, 1024);
  343. memset(data3, 0, 1024);
  344. env1 = crypto_new_cipher_env();
  345. test_neq(env1, 0);
  346. env2 = crypto_new_cipher_env();
  347. test_neq(env2, 0);
  348. j = crypto_cipher_generate_key(env1);
  349. crypto_cipher_set_key(env2, crypto_cipher_get_key(env1));
  350. crypto_cipher_encrypt_init_cipher(env1);
  351. crypto_cipher_decrypt_init_cipher(env2);
  352. /* Try encrypting 512 chars. */
  353. crypto_cipher_encrypt(env1, data2, data1, 512);
  354. crypto_cipher_decrypt(env2, data3, data2, 512);
  355. test_memeq(data1, data3, 512);
  356. test_memneq(data1, data2, 512);
  357. /* Now encrypt 1 at a time, and get 1 at a time. */
  358. for (j = 512; j < 560; ++j) {
  359. crypto_cipher_encrypt(env1, data2+j, data1+j, 1);
  360. }
  361. for (j = 512; j < 560; ++j) {
  362. crypto_cipher_decrypt(env2, data3+j, data2+j, 1);
  363. }
  364. test_memeq(data1, data3, 560);
  365. /* Now encrypt 3 at a time, and get 5 at a time. */
  366. for (j = 560; j < 1024-5; j += 3) {
  367. crypto_cipher_encrypt(env1, data2+j, data1+j, 3);
  368. }
  369. for (j = 560; j < 1024-5; j += 5) {
  370. crypto_cipher_decrypt(env2, data3+j, data2+j, 5);
  371. }
  372. test_memeq(data1, data3, 1024-5);
  373. /* Now make sure that when we encrypt with different chunk sizes, we get
  374. the same results. */
  375. crypto_free_cipher_env(env2);
  376. memset(data3, 0, 1024);
  377. env2 = crypto_new_cipher_env();
  378. test_neq(env2, 0);
  379. crypto_cipher_set_key(env2, crypto_cipher_get_key(env1));
  380. crypto_cipher_encrypt_init_cipher(env2);
  381. for (j = 0; j < 1024-16; j += 17) {
  382. crypto_cipher_encrypt(env2, data3+j, data1+j, 17);
  383. }
  384. for (j= 0; j < 1024-16; ++j) {
  385. if (data2[j] != data3[j]) {
  386. printf("%d: %d\t%d\n", j, (int) data2[j], (int) data3[j]);
  387. }
  388. }
  389. test_memeq(data2, data3, 1024-16);
  390. crypto_free_cipher_env(env1);
  391. crypto_free_cipher_env(env2);
  392. /* Test vectors for stream ciphers. */
  393. /* XXXX Look up some test vectors for the ciphers and make sure we match. */
  394. /* Test SHA-1 with a test vector from the specification. */
  395. i = crypto_digest(data1, "abc", 3);
  396. test_memeq(data1,
  397. "\xA9\x99\x3E\x36\x47\x06\x81\x6A\xBA\x3E\x25\x71\x78"
  398. "\x50\xC2\x6C\x9C\xD0\xD8\x9D", 20);
  399. /* Test HMAC-SHA-1 with test cases from RFC2202. */
  400. {
  401. char key[80];
  402. char digest[20];
  403. char data[50];
  404. /* Case 1. */
  405. memset(key, 0x0b, 20);
  406. crypto_hmac_sha1(digest, key, 20, "Hi There", 8);
  407. test_streq(hex_str(digest, 20),
  408. "B617318655057264E28BC0B6FB378C8EF146BE00");
  409. /* Case 2. */
  410. crypto_hmac_sha1(digest, "Jefe", 4, "what do ya want for nothing?", 28);
  411. test_streq(hex_str(digest, 20),
  412. "EFFCDF6AE5EB2FA2D27416D5F184DF9C259A7C79");
  413. /* Case 4. */
  414. base16_decode(key, 25,
  415. "0102030405060708090a0b0c0d0e0f10111213141516171819", 50);
  416. memset(data, 0xcd, 50);
  417. crypto_hmac_sha1(digest, key, 25, data, 50);
  418. test_streq(hex_str(digest, 20),
  419. "4C9007F4026250C6BC8414F9BF50C86C2D7235DA");
  420. /* Case . */
  421. memset(key, 0xaa, 80);
  422. crypto_hmac_sha1(digest, key, 80,
  423. "Test Using Larger Than Block-Size Key - Hash Key First",
  424. 54);
  425. test_streq(hex_str(digest, 20),
  426. "AA4AE5E15272D00E95705637CE8A3B55ED402112");
  427. }
  428. /* Public-key ciphers */
  429. pk1 = pk_generate(0);
  430. pk2 = crypto_new_pk_env();
  431. test_assert(pk1 && pk2);
  432. test_assert(! crypto_pk_write_public_key_to_string(pk1, &cp, &size));
  433. test_assert(! crypto_pk_read_public_key_from_string(pk2, cp, size));
  434. test_eq(0, crypto_pk_cmp_keys(pk1, pk2));
  435. tor_free(cp);
  436. test_eq(128, crypto_pk_keysize(pk1));
  437. test_eq(128, crypto_pk_keysize(pk2));
  438. test_eq(128, crypto_pk_public_encrypt(pk2, data1, "Hello whirled.", 15,
  439. PK_PKCS1_OAEP_PADDING));
  440. test_eq(128, crypto_pk_public_encrypt(pk1, data2, "Hello whirled.", 15,
  441. PK_PKCS1_OAEP_PADDING));
  442. /* oaep padding should make encryption not match */
  443. test_memneq(data1, data2, 128);
  444. test_eq(15, crypto_pk_private_decrypt(pk1, data3, data1, 128,
  445. PK_PKCS1_OAEP_PADDING,1));
  446. test_streq(data3, "Hello whirled.");
  447. memset(data3, 0, 1024);
  448. test_eq(15, crypto_pk_private_decrypt(pk1, data3, data2, 128,
  449. PK_PKCS1_OAEP_PADDING,1));
  450. test_streq(data3, "Hello whirled.");
  451. /* Can't decrypt with public key. */
  452. test_eq(-1, crypto_pk_private_decrypt(pk2, data3, data2, 128,
  453. PK_PKCS1_OAEP_PADDING,1));
  454. /* Try again with bad padding */
  455. memcpy(data2+1, "XYZZY", 5); /* This has fails ~ once-in-2^40 */
  456. test_eq(-1, crypto_pk_private_decrypt(pk1, data3, data2, 128,
  457. PK_PKCS1_OAEP_PADDING,1));
  458. /* File operations: save and load private key */
  459. test_assert(! crypto_pk_write_private_key_to_filename(pk1,
  460. get_fname("pkey1")));
  461. test_assert(! crypto_pk_read_private_key_from_filename(pk2,
  462. get_fname("pkey1")));
  463. test_eq(15, crypto_pk_private_decrypt(pk2, data3, data1, 128,
  464. PK_PKCS1_OAEP_PADDING,1));
  465. /* Now try signing. */
  466. strlcpy(data1, "Ossifrage", 1024);
  467. test_eq(128, crypto_pk_private_sign(pk1, data2, data1, 10));
  468. test_eq(10, crypto_pk_public_checksig(pk1, data3, data2, 128));
  469. test_streq(data3, "Ossifrage");
  470. /* Try signing digests. */
  471. test_eq(128, crypto_pk_private_sign_digest(pk1, data2, data1, 10));
  472. test_eq(20, crypto_pk_public_checksig(pk1, data3, data2, 128));
  473. test_eq(0, crypto_pk_public_checksig_digest(pk1, data1, 10, data2, 128));
  474. test_eq(-1, crypto_pk_public_checksig_digest(pk1, data1, 11, data2, 128));
  475. /*XXXX test failed signing*/
  476. /* Try encoding */
  477. crypto_free_pk_env(pk2);
  478. pk2 = NULL;
  479. i = crypto_pk_asn1_encode(pk1, data1, 1024);
  480. test_assert(i>0);
  481. pk2 = crypto_pk_asn1_decode(data1, i);
  482. test_assert(crypto_pk_cmp_keys(pk1,pk2) == 0);
  483. /* Try with hybrid encryption wrappers. */
  484. crypto_rand(data1, 1024);
  485. for (i = 0; i < 3; ++i) {
  486. for (j = 85; j < 140; ++j) {
  487. memset(data2,0,1024);
  488. memset(data3,0,1024);
  489. if (i == 0 && j < 129)
  490. continue;
  491. p = (i==0)?PK_NO_PADDING:
  492. (i==1)?PK_PKCS1_PADDING:PK_PKCS1_OAEP_PADDING;
  493. len = crypto_pk_public_hybrid_encrypt(pk1,data2,data1,j,p,0);
  494. test_assert(len>=0);
  495. len = crypto_pk_private_hybrid_decrypt(pk1,data3,data2,len,p,1);
  496. test_eq(len,j);
  497. test_memeq(data1,data3,j);
  498. }
  499. }
  500. crypto_free_pk_env(pk1);
  501. crypto_free_pk_env(pk2);
  502. /* Base64 tests */
  503. memset(data1, 6, 1024);
  504. for (idx = 0; idx < 10; ++idx) {
  505. i = base64_encode(data2, 1024, data1, idx);
  506. j = base64_decode(data3, 1024, data2, i);
  507. test_eq(j,idx);
  508. test_memeq(data3, data1, idx);
  509. }
  510. strlcpy(data1, "Test string that contains 35 chars.", 1024);
  511. strlcat(data1, " 2nd string that contains 35 chars.", 1024);
  512. i = base64_encode(data2, 1024, data1, 71);
  513. j = base64_decode(data3, 1024, data2, i);
  514. test_eq(j, 71);
  515. test_streq(data3, data1);
  516. test_assert(data2[i] == '\0');
  517. crypto_rand(data1, DIGEST_LEN);
  518. memset(data2, 100, 1024);
  519. digest_to_base64(data2, data1);
  520. test_eq(BASE64_DIGEST_LEN, strlen(data2));
  521. test_eq(100, data2[BASE64_DIGEST_LEN+2]);
  522. memset(data3, 99, 1024);
  523. test_eq(digest_from_base64(data3, data2), 0);
  524. test_memeq(data1, data3, DIGEST_LEN);
  525. test_eq(99, data3[DIGEST_LEN+1]);
  526. /* Base32 tests */
  527. strlcpy(data1, "5chrs", 1024);
  528. /* bit pattern is: [35 63 68 72 73] ->
  529. * [00110101 01100011 01101000 01110010 01110011]
  530. * By 5s: [00110 10101 10001 10110 10000 11100 10011 10011]
  531. */
  532. base32_encode(data2, 9, data1, 5);
  533. test_streq(data2, "gvrwq4tt");
  534. strlcpy(data1, "\xFF\xF5\x6D\x44\xAE\x0D\x5C\xC9\x62\xC4", 1024);
  535. base32_encode(data2, 30, data1, 10);
  536. test_streq(data2, "772w2rfobvomsywe");
  537. /* Base16 tests */
  538. strlcpy(data1, "6chrs\xff", 1024);
  539. base16_encode(data2, 13, data1, 6);
  540. test_streq(data2, "3663687273FF");
  541. strlcpy(data1, "f0d678affc000100", 1024);
  542. i = base16_decode(data2, 8, data1, 16);
  543. test_eq(i,0);
  544. test_memeq(data2, "\xf0\xd6\x78\xaf\xfc\x00\x01\x00",8);
  545. /* now try some failing base16 decodes */
  546. test_eq(-1, base16_decode(data2, 8, data1, 15)); /* odd input len */
  547. test_eq(-1, base16_decode(data2, 7, data1, 16)); /* dest too short */
  548. strlcpy(data1, "f0dz!8affc000100", 1024);
  549. test_eq(-1, base16_decode(data2, 8, data1, 16));
  550. tor_free(data1);
  551. tor_free(data2);
  552. tor_free(data3);
  553. }
  554. static void
  555. test_crypto_s2k(void)
  556. {
  557. char buf[29];
  558. char buf2[29];
  559. char *buf3;
  560. int i;
  561. memset(buf, 0, sizeof(buf));
  562. memset(buf2, 0, sizeof(buf2));
  563. buf3 = tor_malloc(65536);
  564. memset(buf3, 0, 65536);
  565. secret_to_key(buf+9, 20, "", 0, buf);
  566. crypto_digest(buf2+9, buf3, 1024);
  567. test_memeq(buf, buf2, 29);
  568. memcpy(buf,"vrbacrda",8);
  569. memcpy(buf2,"vrbacrda",8);
  570. buf[8] = 96;
  571. buf2[8] = 96;
  572. secret_to_key(buf+9, 20, "12345678", 8, buf);
  573. for (i = 0; i < 65536; i += 16) {
  574. memcpy(buf3+i, "vrbacrda12345678", 16);
  575. }
  576. crypto_digest(buf2+9, buf3, 65536);
  577. test_memeq(buf, buf2, 29);
  578. }
  579. static int
  580. _compare_strs(const void **a, const void **b)
  581. {
  582. const char *s1 = *a, *s2 = *b;
  583. return strcmp(s1, s2);
  584. }
  585. static int
  586. _compare_without_first_ch(const void *a, const void **b)
  587. {
  588. const char *s1 = a, *s2 = *b;
  589. return strcasecmp(s1+1, s2);
  590. }
  591. static void
  592. test_util(void)
  593. {
  594. struct timeval start, end;
  595. struct tm a_time;
  596. char timestr[RFC1123_TIME_LEN+1];
  597. char buf[1024];
  598. time_t t_res;
  599. int i;
  600. uint32_t u32;
  601. uint16_t u16;
  602. char *cp, *k, *v;
  603. start.tv_sec = 5;
  604. start.tv_usec = 5000;
  605. end.tv_sec = 5;
  606. end.tv_usec = 5000;
  607. test_eq(0L, tv_udiff(&start, &end));
  608. end.tv_usec = 7000;
  609. test_assert(tv_cmp(&start, &end)<0);
  610. test_assert(tv_cmp(&end, &start)>0);
  611. test_assert(tv_cmp(&end, &end)==0);
  612. test_eq(2000L, tv_udiff(&start, &end));
  613. end.tv_sec = 6;
  614. test_eq(1002000L, tv_udiff(&start, &end));
  615. end.tv_usec = 0;
  616. test_eq(995000L, tv_udiff(&start, &end));
  617. end.tv_sec = 4;
  618. test_eq(-1005000L, tv_udiff(&start, &end));
  619. tv_addms(&end, 5090);
  620. test_eq(end.tv_sec, 9);
  621. test_eq(end.tv_usec, 90000);
  622. end.tv_usec = 999990;
  623. start.tv_sec = 1;
  624. start.tv_usec = 500;
  625. tv_add(&start, &end);
  626. test_eq(start.tv_sec, 11);
  627. test_eq(start.tv_usec, 490);
  628. /* The test values here are confirmed to be correct on a platform
  629. * with a working timegm. */
  630. a_time.tm_year = 2003-1900;
  631. a_time.tm_mon = 7;
  632. a_time.tm_mday = 30;
  633. a_time.tm_hour = 6;
  634. a_time.tm_min = 14;
  635. a_time.tm_sec = 55;
  636. test_eq((time_t) 1062224095UL, tor_timegm(&a_time));
  637. a_time.tm_year = 2004-1900; /* Try a leap year, after feb. */
  638. test_eq((time_t) 1093846495UL, tor_timegm(&a_time));
  639. a_time.tm_mon = 1; /* Try a leap year, in feb. */
  640. a_time.tm_mday = 10;
  641. test_eq((time_t) 1076393695UL, tor_timegm(&a_time));
  642. format_rfc1123_time(timestr, 0);
  643. test_streq("Thu, 01 Jan 1970 00:00:00 GMT", timestr);
  644. format_rfc1123_time(timestr, (time_t)1091580502UL);
  645. test_streq("Wed, 04 Aug 2004 00:48:22 GMT", timestr);
  646. t_res = 0;
  647. i = parse_rfc1123_time(timestr, &t_res);
  648. test_eq(i,0);
  649. test_eq(t_res, (time_t)1091580502UL);
  650. test_eq(-1, parse_rfc1123_time("Wed, zz Aug 2004 99-99x99 GMT", &t_res));
  651. tor_gettimeofday(&start);
  652. /* Test tor_strstrip() */
  653. strlcpy(buf, "Testing 1 2 3", sizeof(buf));
  654. test_eq(0, tor_strstrip(buf, ",!"));
  655. test_streq(buf, "Testing 1 2 3");
  656. strlcpy(buf, "!Testing 1 2 3?", sizeof(buf));
  657. test_eq(5, tor_strstrip(buf, "!? "));
  658. test_streq(buf, "Testing123");
  659. /* Test tor_strpartition() */
  660. test_assert(! tor_strpartition(buf, sizeof(buf), "abcdefghi", "##", 3));
  661. test_streq(buf, "abc##def##ghi");
  662. /* Test parse_addr_port */
  663. cp = NULL; u32 = 3; u16 = 3;
  664. test_assert(!parse_addr_port(LOG_WARN, "1.2.3.4", &cp, &u32, &u16));
  665. test_streq(cp, "1.2.3.4");
  666. test_eq(u32, 0x01020304u);
  667. test_eq(u16, 0);
  668. tor_free(cp);
  669. test_assert(!parse_addr_port(LOG_WARN, "4.3.2.1:99", &cp, &u32, &u16));
  670. test_streq(cp, "4.3.2.1");
  671. test_eq(u32, 0x04030201u);
  672. test_eq(u16, 99);
  673. tor_free(cp);
  674. test_assert(!parse_addr_port(LOG_WARN, "nonexistent.address:4040",
  675. &cp, NULL, &u16));
  676. test_streq(cp, "nonexistent.address");
  677. test_eq(u16, 4040);
  678. tor_free(cp);
  679. test_assert(!parse_addr_port(LOG_WARN, "localhost:9999", &cp, &u32, &u16));
  680. test_streq(cp, "localhost");
  681. test_eq(u32, 0x7f000001u);
  682. test_eq(u16, 9999);
  683. tor_free(cp);
  684. u32 = 3;
  685. test_assert(!parse_addr_port(LOG_WARN, "localhost", NULL, &u32, &u16));
  686. test_eq(cp, NULL);
  687. test_eq(u32, 0x7f000001u);
  688. test_eq(u16, 0);
  689. tor_free(cp);
  690. test_eq(0, addr_mask_get_bits(0x0u));
  691. test_eq(32, addr_mask_get_bits(0xFFFFFFFFu));
  692. test_eq(16, addr_mask_get_bits(0xFFFF0000u));
  693. test_eq(31, addr_mask_get_bits(0xFFFFFFFEu));
  694. test_eq(1, addr_mask_get_bits(0x80000000u));
  695. /* Test tor_parse_long. */
  696. test_eq(10L, tor_parse_long("10",10,0,100,NULL,NULL));
  697. test_eq(0L, tor_parse_long("10",10,50,100,NULL,NULL));
  698. test_eq(-50L, tor_parse_long("-50",10,-100,100,NULL,NULL));
  699. /* Test tor_parse_ulong */
  700. test_eq(10UL, tor_parse_ulong("10",10,0,100,NULL,NULL));
  701. test_eq(0UL, tor_parse_ulong("10",10,50,100,NULL,NULL));
  702. /* Test tor_parse_uint64. */
  703. test_assert(U64_LITERAL(10) == tor_parse_uint64("10 x",10,0,100, &i, &cp));
  704. test_assert(i == 1);
  705. test_streq(cp, " x");
  706. test_assert(U64_LITERAL(12345678901) ==
  707. tor_parse_uint64("12345678901",10,0,UINT64_MAX, &i, &cp));
  708. test_assert(i == 1);
  709. test_streq(cp, "");
  710. test_assert(U64_LITERAL(0) ==
  711. tor_parse_uint64("12345678901",10,500,INT32_MAX, &i, &cp));
  712. test_assert(i == 0);
  713. /* Test printf with uint64 */
  714. tor_snprintf(buf, sizeof(buf), "x!"U64_FORMAT"!x",
  715. U64_PRINTF_ARG(U64_LITERAL(12345678901)));
  716. test_streq(buf, "x!12345678901!x");
  717. /* Test parse_line_from_str */
  718. strlcpy(buf, "k v\n" " key value with spaces \n" "keykey val\n"
  719. "k2\n"
  720. "k3 \n" "\n" " \n" "#comment\n"
  721. "k4#a\n" "k5#abc\n" "k6 val #with comment\n", sizeof(buf));
  722. cp = buf;
  723. cp = parse_line_from_str(cp, &k, &v);
  724. test_streq(k, "k");
  725. test_streq(v, "v");
  726. test_assert(!strcmpstart(cp, " key value with"));
  727. cp = parse_line_from_str(cp, &k, &v);
  728. test_streq(k, "key");
  729. test_streq(v, "value with spaces");
  730. test_assert(!strcmpstart(cp, "keykey"));
  731. cp = parse_line_from_str(cp, &k, &v);
  732. test_streq(k, "keykey");
  733. test_streq(v, "val");
  734. test_assert(!strcmpstart(cp, "k2\n"));
  735. cp = parse_line_from_str(cp, &k, &v);
  736. test_streq(k, "k2");
  737. test_streq(v, "");
  738. test_assert(!strcmpstart(cp, "k3 \n"));
  739. cp = parse_line_from_str(cp, &k, &v);
  740. test_streq(k, "k3");
  741. test_streq(v, "");
  742. test_assert(!strcmpstart(cp, "\n \n"));
  743. cp = parse_line_from_str(cp, &k, &v);
  744. test_streq(k, "k4");
  745. test_streq(v, "");
  746. test_assert(!strcmpstart(cp, "k5#abc"));
  747. cp = parse_line_from_str(cp, &k, &v);
  748. test_streq(k, "k5");
  749. test_streq(v, "");
  750. test_assert(!strcmpstart(cp, "k6"));
  751. cp = parse_line_from_str(cp, &k, &v);
  752. test_streq(k, "k6");
  753. test_streq(v, "val");
  754. test_streq(cp, "");
  755. /* Test for strcmpstart and strcmpend. */
  756. test_assert(strcmpstart("abcdef", "abcdef")==0);
  757. test_assert(strcmpstart("abcdef", "abc")==0);
  758. test_assert(strcmpstart("abcdef", "abd")<0);
  759. test_assert(strcmpstart("abcdef", "abb")>0);
  760. test_assert(strcmpstart("ab", "abb")<0);
  761. test_assert(strcmpend("abcdef", "abcdef")==0);
  762. test_assert(strcmpend("abcdef", "def")==0);
  763. test_assert(strcmpend("abcdef", "deg")<0);
  764. test_assert(strcmpend("abcdef", "dee")>0);
  765. test_assert(strcmpend("ab", "abb")<0);
  766. test_assert(strcasecmpend("AbcDEF", "abcdef")==0);
  767. test_assert(strcasecmpend("abcdef", "dEF")==0);
  768. test_assert(strcasecmpend("abcDEf", "deg")<0);
  769. test_assert(strcasecmpend("abcdef", "DEE")>0);
  770. test_assert(strcasecmpend("ab", "abB")<0);
  771. /* Test mem_is_zero */
  772. memset(buf,0,128);
  773. buf[128] = 'x';
  774. test_assert(tor_digest_is_zero(buf));
  775. test_assert(tor_mem_is_zero(buf, 10));
  776. test_assert(tor_mem_is_zero(buf, 20));
  777. test_assert(tor_mem_is_zero(buf, 128));
  778. test_assert(!tor_mem_is_zero(buf, 129));
  779. buf[60] = (char)255;
  780. test_assert(!tor_mem_is_zero(buf, 128));
  781. buf[0] = (char)1;
  782. test_assert(!tor_mem_is_zero(buf, 10));
  783. /* Test inet_ntop */
  784. {
  785. char tmpbuf[TOR_ADDR_BUF_LEN];
  786. const char *ip = "176.192.208.224";
  787. struct in_addr in;
  788. tor_inet_pton(AF_INET, ip, &in);
  789. tor_inet_ntop(AF_INET, &in, tmpbuf, sizeof(tmpbuf));
  790. test_streq(tmpbuf, ip);
  791. }
  792. /* Test 'escaped' */
  793. test_streq("\"\"", escaped(""));
  794. test_streq("\"abcd\"", escaped("abcd"));
  795. test_streq("\"\\\\\\n\\r\\t\\\"\\'\"", escaped("\\\n\r\t\"\'"));
  796. test_streq("\"z\\001abc\\277d\"", escaped("z\001abc\277d"));
  797. test_assert(NULL == escaped(NULL));
  798. /* Test strndup and memdup */
  799. {
  800. const char *s = "abcdefghijklmnopqrstuvwxyz";
  801. cp = tor_strndup(s, 30);
  802. test_streq(cp, s); /* same string, */
  803. test_neq(cp, s); /* but different pointers. */
  804. tor_free(cp);
  805. cp = tor_strndup(s, 5);
  806. test_streq(cp, "abcde");
  807. tor_free(cp);
  808. s = "a\0b\0c\0d\0e\0";
  809. cp = tor_memdup(s,10);
  810. test_memeq(cp, s, 10); /* same ram, */
  811. test_neq(cp, s); /* but different pointers. */
  812. tor_free(cp);
  813. }
  814. /* Test str-foo functions */
  815. cp = tor_strdup("abcdef");
  816. test_assert(tor_strisnonupper(cp));
  817. cp[3] = 'D';
  818. test_assert(!tor_strisnonupper(cp));
  819. tor_strupper(cp);
  820. test_streq(cp, "ABCDEF");
  821. test_assert(tor_strisprint(cp));
  822. cp[3] = 3;
  823. test_assert(!tor_strisprint(cp));
  824. tor_free(cp);
  825. /* Test eat_whitespace. */
  826. {
  827. const char *s = " \n a";
  828. test_eq_ptr(eat_whitespace(s), s+4);
  829. s = "abcd";
  830. test_eq_ptr(eat_whitespace(s), s);
  831. s = "#xyz\nab";
  832. test_eq_ptr(eat_whitespace(s), s+5);
  833. }
  834. /* Test memmem */
  835. {
  836. const char *haystack = "abcde";
  837. tor_assert(!tor_memmem(haystack, 5, "ef", 2));
  838. test_eq_ptr(tor_memmem(haystack, 5, "cd", 2), haystack + 2);
  839. test_eq_ptr(tor_memmem(haystack, 5, "cde", 3), haystack + 2);
  840. haystack = "ababcad";
  841. test_eq_ptr(tor_memmem(haystack, 7, "abc", 3), haystack + 2);
  842. }
  843. /* Test wrap_string */
  844. {
  845. smartlist_t *sl = smartlist_create();
  846. wrap_string(sl, "This is a test of string wrapping functionality: woot.",
  847. 10, "", "");
  848. cp = smartlist_join_strings(sl, "", 0, NULL);
  849. test_streq(cp,
  850. "This is a\ntest of\nstring\nwrapping\nfunctional\nity: woot.\n");
  851. tor_free(cp);
  852. SMARTLIST_FOREACH(sl, char *, cp, tor_free(cp));
  853. smartlist_clear(sl);
  854. wrap_string(sl, "This is a test of string wrapping functionality: woot.",
  855. 16, "### ", "# ");
  856. cp = smartlist_join_strings(sl, "", 0, NULL);
  857. test_streq(cp,
  858. "### This is a\n# test of string\n# wrapping\n# functionality:\n"
  859. "# woot.\n");
  860. tor_free(cp);
  861. SMARTLIST_FOREACH(sl, char *, cp, tor_free(cp));
  862. smartlist_clear(sl);
  863. }
  864. /* now make sure time works. */
  865. tor_gettimeofday(&end);
  866. /* We might've timewarped a little. */
  867. test_assert(tv_udiff(&start, &end) >= -5000);
  868. /* Test tor_log2(). */
  869. test_eq(tor_log2(64), 6);
  870. test_eq(tor_log2(65), 6);
  871. test_eq(tor_log2(63), 5);
  872. test_eq(tor_log2(1), 0);
  873. test_eq(tor_log2(2), 1);
  874. test_eq(tor_log2(3), 1);
  875. test_eq(tor_log2(4), 2);
  876. test_eq(tor_log2(5), 2);
  877. test_eq(tor_log2(U64_LITERAL(40000000000000000)), 55);
  878. test_eq(tor_log2(UINT64_MAX), 63);
  879. /* Test round_to_power_of_2 */
  880. test_eq(round_to_power_of_2(120), 128);
  881. test_eq(round_to_power_of_2(128), 128);
  882. test_eq(round_to_power_of_2(130), 128);
  883. test_eq(round_to_power_of_2(U64_LITERAL(40000000000000000)),
  884. U64_LITERAL(1)<<55);
  885. test_eq(round_to_power_of_2(0), 2);
  886. }
  887. static void
  888. _test_eq_ip6(struct in6_addr *a, struct in6_addr *b, const char *e1,
  889. const char *e2, int line)
  890. {
  891. int i;
  892. int ok = 1;
  893. for (i = 0; i < 16; ++i) {
  894. if (a->s6_addr[i] != b->s6_addr[i]) {
  895. ok = 0;
  896. break;
  897. }
  898. }
  899. if (ok) {
  900. printf("."); fflush(stdout);
  901. } else {
  902. char buf1[128], *cp1;
  903. char buf2[128], *cp2;
  904. have_failed = 1;
  905. cp1 = buf1; cp2 = buf2;
  906. for (i=0; i<16; ++i) {
  907. tor_snprintf(cp1, sizeof(buf1)-(cp1-buf1), "%02x", a->s6_addr[i]);
  908. tor_snprintf(cp2, sizeof(buf2)-(cp2-buf2), "%02x", b->s6_addr[i]);
  909. cp1 += 2; cp2 += 2;
  910. if ((i%2)==1 && i != 15) {
  911. *cp1++ = ':';
  912. *cp2++ = ':';
  913. }
  914. }
  915. *cp1 = *cp2 = '\0';
  916. printf("Line %d: assertion failed: (%s == %s)\n"
  917. " %s != %s\n", line, e1, e2, buf1, buf2);
  918. fflush(stdout);
  919. }
  920. }
  921. #define test_eq_ip6(a,b) _test_eq_ip6((a),(b),#a,#b,__LINE__)
  922. #define test_pton6_same(a,b) STMT_BEGIN \
  923. r = tor_inet_pton(AF_INET6, a, &a1); \
  924. test_assert(r==1); \
  925. r = tor_inet_pton(AF_INET6, b, &a2); \
  926. test_assert(r==1); \
  927. test_eq_ip6(&a1,&a2); \
  928. STMT_END
  929. #define test_pton6_bad(a) \
  930. test_eq(0, tor_inet_pton(AF_INET6, a, &a1))
  931. #define test_ntop6_reduces(a,b) STMT_BEGIN \
  932. r = tor_inet_pton(AF_INET6, a, &a1); \
  933. test_assert(r==1); \
  934. test_streq(tor_inet_ntop(AF_INET6, &a1, buf, sizeof(buf)), b); \
  935. r = tor_inet_pton(AF_INET6, b, &a2); \
  936. test_assert(r==1); \
  937. test_eq_ip6(&a1, &a2); \
  938. STMT_END
  939. /*XXXX020 make this macro give useful output on failure, and follow the
  940. * conventions of the other test macros. */
  941. #define test_internal_ip(a,b) STMT_BEGIN \
  942. r = tor_inet_pton(AF_INET6, a, &t1.addr.in6_addr); \
  943. test_assert(r==1); \
  944. t1.family = AF_INET6; \
  945. r = tor_addr_is_internal(&t1, b); \
  946. test_assert(r==1); \
  947. STMT_END
  948. /*XXXX020 make this macro give useful output on failure, and follow the
  949. * conventions of the other test macros. */
  950. #define test_external_ip(a,b) STMT_BEGIN \
  951. r = tor_inet_pton(AF_INET6, a, &t1.addr.in6_addr); \
  952. test_assert(r==1); \
  953. t1.family = AF_INET6; \
  954. r = tor_addr_is_internal(&t1, b); \
  955. test_assert(r==0); \
  956. STMT_END
  957. /*XXXX020 make this macro give useful output on failure, and follow the
  958. * conventions of the other test macros. */
  959. #define test_addr_convert6(a,b) STMT_BEGIN \
  960. tor_inet_pton(AF_INET6, a, &t1.addr.in6_addr); \
  961. tor_inet_pton(AF_INET6, b, &t2.addr.in6_addr); \
  962. t1.family = AF_INET6; \
  963. t2.family = AF_INET6; \
  964. STMT_END
  965. /*XXXX020 make this macro give useful output on failure, and follow the
  966. * conventions of the other test macros. */
  967. #define test_addr_parse(xx) STMT_BEGIN \
  968. r=tor_addr_parse_mask_ports(xx, &t1, &mask, &port1, &port2); \
  969. t2.family = AF_INET6; \
  970. p1=tor_inet_ntop(AF_INET6, &t1.addr.in6_addr, bug, sizeof(bug)); \
  971. STMT_END
  972. /*XXXX020 make this macro give useful output on failure, and follow the
  973. * conventions of the other test macros. */
  974. #define test_addr_parse_check(ip1, ip2, ip3, ip4, mm, pt1, pt2) STMT_BEGIN \
  975. test_assert(r>=0); \
  976. test_eq(htonl(ip1), IN6_ADDRESS32(&t1)[0]); \
  977. test_eq(htonl(ip2), IN6_ADDRESS32(&t1)[1]); \
  978. test_eq(htonl(ip3), IN6_ADDRESS32(&t1)[2]); \
  979. test_eq(htonl(ip4), IN6_ADDRESS32(&t1)[3]); \
  980. test_eq(mask, mm); \
  981. test_eq(port1, pt1); \
  982. test_eq(port2, pt2); \
  983. STMT_END
  984. static void
  985. test_util_ip6_helpers(void)
  986. {
  987. char buf[TOR_ADDR_BUF_LEN], bug[TOR_ADDR_BUF_LEN];
  988. struct in6_addr a1, a2;
  989. tor_addr_t t1, t2;
  990. int r, i;
  991. uint16_t port1, port2;
  992. maskbits_t mask;
  993. const char *p1;
  994. // struct in_addr b1, b2;
  995. /* Test tor_inet_ntop and tor_inet_pton: IPv6 */
  996. /* === Test pton: valid af_inet6 */
  997. /* Simple, valid parsing. */
  998. r = tor_inet_pton(AF_INET6,
  999. "0102:0304:0506:0708:090A:0B0C:0D0E:0F10", &a1);
  1000. test_assert(r==1);
  1001. for (i=0;i<16;++i) { test_eq(i+1, (int)a1.s6_addr[i]); }
  1002. /* ipv4 ending. */
  1003. test_pton6_same("0102:0304:0506:0708:090A:0B0C:0D0E:0F10",
  1004. "0102:0304:0506:0708:090A:0B0C:13.14.15.16");
  1005. /* shortened words. */
  1006. test_pton6_same("0001:0099:BEEF:0000:0123:FFFF:0001:0001",
  1007. "1:99:BEEF:0:0123:FFFF:1:1");
  1008. /* zeros at the beginning */
  1009. test_pton6_same("0000:0000:0000:0000:0009:C0A8:0001:0001",
  1010. "::9:c0a8:1:1");
  1011. test_pton6_same("0000:0000:0000:0000:0009:C0A8:0001:0001",
  1012. "::9:c0a8:0.1.0.1");
  1013. /* zeros in the middle. */
  1014. test_pton6_same("fe80:0000:0000:0000:0202:1111:0001:0001",
  1015. "fe80::202:1111:1:1");
  1016. /* zeros at the end. */
  1017. test_pton6_same("1000:0001:0000:0007:0000:0000:0000:0000",
  1018. "1000:1:0:7::");
  1019. /* === Test ntop: af_inet6 */
  1020. test_ntop6_reduces("0:0:0:0:0:0:0:0", "::");
  1021. test_ntop6_reduces("0001:0099:BEEF:0006:0123:FFFF:0001:0001",
  1022. "1:99:beef:6:123:ffff:1:1");
  1023. //test_ntop6_reduces("0:0:0:0:0:0:c0a8:0101", "::192.168.1.1");
  1024. test_ntop6_reduces("0:0:0:0:0:ffff:c0a8:0101", "::ffff:192.168.1.1");
  1025. test_ntop6_reduces("002:0:0000:0:3::4", "2::3:0:0:4");
  1026. test_ntop6_reduces("0:0::1:0:3", "::1:0:3");
  1027. test_ntop6_reduces("008:0::0", "8::");
  1028. test_ntop6_reduces("0:0:0:0:0:ffff::1", "::ffff:0.0.0.1");
  1029. test_ntop6_reduces("abcd:0:0:0:0:0:7f00::", "abcd::7f00:0");
  1030. test_ntop6_reduces("0000:0000:0000:0000:0009:C0A8:0001:0001",
  1031. "::9:c0a8:1:1");
  1032. test_ntop6_reduces("fe80:0000:0000:0000:0202:1111:0001:0001",
  1033. "fe80::202:1111:1:1");
  1034. test_ntop6_reduces("1000:0001:0000:0007:0000:0000:0000:0000",
  1035. "1000:1:0:7::");
  1036. /* === Test pton: invalid in6. */
  1037. test_pton6_bad("foobar.");
  1038. test_pton6_bad("55555::");
  1039. test_pton6_bad("9:-60::");
  1040. test_pton6_bad("1:2:33333:4:0002:3::");
  1041. //test_pton6_bad("1:2:3333:4:00002:3::");// BAD, but glibc doesn't say so.
  1042. test_pton6_bad("1:2:3333:4:fish:3::");
  1043. test_pton6_bad("1:2:3:4:5:6:7:8:9");
  1044. test_pton6_bad("1:2:3:4:5:6:7");
  1045. test_pton6_bad("1:2:3:4:5:6:1.2.3.4.5");
  1046. test_pton6_bad("1:2:3:4:5:6:1.2.3");
  1047. test_pton6_bad("::1.2.3");
  1048. test_pton6_bad("::1.2.3.4.5");
  1049. test_pton6_bad("99");
  1050. test_pton6_bad("");
  1051. test_pton6_bad("1::2::3:4");
  1052. test_pton6_bad("a:::b:c");
  1053. test_pton6_bad(":::a:b:c");
  1054. test_pton6_bad("a:b:c:::");
  1055. /* test internal checking */
  1056. test_external_ip("fbff:ffff::2:7", 0);
  1057. test_internal_ip("fc01::2:7", 0);
  1058. test_internal_ip("fdff:ffff::f:f", 0);
  1059. test_external_ip("fe00::3:f", 0);
  1060. test_external_ip("fe7f:ffff::2:7", 0);
  1061. test_internal_ip("fe80::2:7", 0);
  1062. test_internal_ip("febf:ffff::f:f", 0);
  1063. test_internal_ip("fec0::2:7:7", 0);
  1064. test_internal_ip("feff:ffff::e:7:7", 0);
  1065. test_external_ip("ff00::e:7:7", 0);
  1066. test_internal_ip("::", 0);
  1067. test_internal_ip("::1", 0);
  1068. test_internal_ip("::1", 1);
  1069. test_internal_ip("::", 0);
  1070. test_external_ip("::", 1);
  1071. test_external_ip("::2", 0);
  1072. test_external_ip("2001::", 0);
  1073. test_external_ip("ffff::", 0);
  1074. test_external_ip("::ffff:0.0.0.0", 1);
  1075. test_internal_ip("::ffff:0.0.0.0", 0);
  1076. test_internal_ip("::ffff:0.255.255.255", 0);
  1077. test_external_ip("::ffff:1.0.0.0", 0);
  1078. test_external_ip("::ffff:9.255.255.255", 0);
  1079. test_internal_ip("::ffff:10.0.0.0", 0);
  1080. test_internal_ip("::ffff:10.255.255.255", 0);
  1081. test_external_ip("::ffff:11.0.0.0", 0);
  1082. test_external_ip("::ffff:126.255.255.255", 0);
  1083. test_internal_ip("::ffff:127.0.0.0", 0);
  1084. test_internal_ip("::ffff:127.255.255.255", 0);
  1085. test_external_ip("::ffff:128.0.0.0", 0);
  1086. test_external_ip("::ffff:172.15.255.255", 0);
  1087. test_internal_ip("::ffff:172.16.0.0", 0);
  1088. test_internal_ip("::ffff:172.31.255.255", 0);
  1089. test_external_ip("::ffff:172.32.0.0", 0);
  1090. test_external_ip("::ffff:192.167.255.255", 0);
  1091. test_internal_ip("::ffff:192.168.0.0", 0);
  1092. test_internal_ip("::ffff:192.168.255.255", 0);
  1093. test_external_ip("::ffff:192.169.0.0", 0);
  1094. test_external_ip("::ffff:169.253.255.255", 0);
  1095. test_internal_ip("::ffff:169.254.0.0", 0);
  1096. test_internal_ip("::ffff:169.254.255.255", 0);
  1097. test_external_ip("::ffff:169.255.0.0", 0);
  1098. /* tor_addr_compare(tor_addr_t x2) */
  1099. test_addr_convert6("ffff::", "ffff::0");
  1100. test_assert(tor_addr_compare(&t1, &t2) == 0);
  1101. test_addr_convert6("0::3:2:1", "0::ffff:0.3.2.1");
  1102. test_assert(tor_addr_compare(&t1, &t2) > 0);
  1103. test_addr_convert6("0::2:2:1", "0::ffff:0.3.2.1");
  1104. test_assert(tor_addr_compare(&t1, &t2) > 0);
  1105. test_addr_convert6("0::ffff:0.3.2.1", "0::0:0:0");
  1106. test_assert(tor_addr_compare(&t1, &t2) < 0);
  1107. test_addr_convert6("0::ffff:5.2.2.1", "::ffff:6.0.0.0");
  1108. test_assert(tor_addr_compare(&t1, &t2) < 0); /* XXXX wrong. */
  1109. tor_addr_parse_mask_ports("[::ffff:2.3.4.5]", &t1, NULL, NULL, NULL);
  1110. tor_addr_parse_mask_ports("2.3.4.5", &t2, NULL, NULL, NULL);
  1111. test_assert(tor_addr_compare(&t1, &t2) == 0);
  1112. tor_addr_parse_mask_ports("[::ffff:2.3.4.4]", &t1, NULL, NULL, NULL);
  1113. tor_addr_parse_mask_ports("2.3.4.5", &t2, NULL, NULL, NULL);
  1114. test_assert(tor_addr_compare(&t1, &t2) < 0);
  1115. /* XXXX020 test compare_masked */
  1116. /* test tor_addr_parse_mask_ports */
  1117. test_addr_parse("[::f]/17:47-95");
  1118. test_addr_parse_check(0, 0, 0, 0x0000000f, 17, 47, 95);
  1119. //test_addr_parse("[::fefe:4.1.1.7/120]:999-1000");
  1120. //test_addr_parse_check("::fefe:401:107", 120, 999, 1000);
  1121. test_addr_parse("[::ffff:4.1.1.7]/120:443");
  1122. test_addr_parse_check(0, 0, 0x0000ffff, 0x04010107, 120, 443, 443);
  1123. test_addr_parse("[abcd:2::44a:0]:2-65000");
  1124. test_addr_parse_check(0xabcd0002, 0, 0, 0x044a0000, 128, 2, 65000);
  1125. r=tor_addr_parse_mask_ports("[fefef::]/112", &t1, NULL, NULL, NULL);
  1126. test_assert(r == -1);
  1127. r=tor_addr_parse_mask_ports("efef::/112", &t1, NULL, NULL, NULL);
  1128. test_assert(r == -1);
  1129. r=tor_addr_parse_mask_ports("[f:f:f:f:f:f:f:f::]", &t1, NULL, NULL, NULL);
  1130. test_assert(r == -1);
  1131. r=tor_addr_parse_mask_ports("[::f:f:f:f:f:f:f:f]", &t1, NULL, NULL, NULL);
  1132. test_assert(r == -1);
  1133. r=tor_addr_parse_mask_ports("[f:f:f:f:f:f:f:f:f]", &t1, NULL, NULL, NULL);
  1134. test_assert(r == -1);
  1135. /* Test for V4-mapped address with mask < 96. (arguably not valid) */
  1136. r=tor_addr_parse_mask_ports("[::ffff:1.1.2.2/33]", &t1, &mask, NULL, NULL);
  1137. test_assert(r == -1);
  1138. r=tor_addr_parse_mask_ports("1.1.2.2/33", &t1, &mask, NULL, NULL);
  1139. test_assert(r == -1);
  1140. r=tor_addr_parse_mask_ports("1.1.2.2/31", &t1, &mask, NULL, NULL);
  1141. test_assert(r == AF_INET);
  1142. r=tor_addr_parse_mask_ports("[efef::]/112", &t1, &mask, &port1, &port2);
  1143. test_assert(r == AF_INET6);
  1144. test_assert(port1 == 1);
  1145. test_assert(port2 == 65535);
  1146. /* make sure inet address lengths >= max */
  1147. test_assert(INET_NTOA_BUF_LEN >= sizeof("255.255.255.255"));
  1148. test_assert(TOR_ADDR_BUF_LEN >=
  1149. sizeof("ffff:ffff:ffff:ffff:ffff:ffff:255.255.255.255"));
  1150. test_assert(sizeof(tor_addr_t) >= sizeof(struct in6_addr));
  1151. /* get interface addresses */
  1152. r = get_interface_address6(0, AF_INET, &t1);
  1153. i = get_interface_address6(0, AF_INET6, &t2);
  1154. #if 0
  1155. tor_inet_ntop(AF_INET, &t1.sa.sin_addr, buf, sizeof(buf));
  1156. printf("\nv4 address: %s (family=%i)", buf, IN_FAMILY(&t1));
  1157. tor_inet_ntop(AF_INET6, &t2.sa6.sin6_addr, buf, sizeof(buf));
  1158. printf("\nv6 address: %s (family=%i)", buf, IN_FAMILY(&t2));
  1159. #endif
  1160. }
  1161. static void
  1162. test_util_smartlist(void)
  1163. {
  1164. smartlist_t *sl;
  1165. char *cp;
  1166. /* XXXX test sort_digests, uniq_strings, uniq_digests */
  1167. /* Test smartlist add, del_keeporder, insert, get. */
  1168. sl = smartlist_create();
  1169. smartlist_add(sl, (void*)1);
  1170. smartlist_add(sl, (void*)2);
  1171. smartlist_add(sl, (void*)3);
  1172. smartlist_add(sl, (void*)4);
  1173. smartlist_del_keeporder(sl, 1);
  1174. smartlist_insert(sl, 1, (void*)22);
  1175. smartlist_insert(sl, 0, (void*)0);
  1176. smartlist_insert(sl, 5, (void*)555);
  1177. test_eq_ptr((void*)0, smartlist_get(sl,0));
  1178. test_eq_ptr((void*)1, smartlist_get(sl,1));
  1179. test_eq_ptr((void*)22, smartlist_get(sl,2));
  1180. test_eq_ptr((void*)3, smartlist_get(sl,3));
  1181. test_eq_ptr((void*)4, smartlist_get(sl,4));
  1182. test_eq_ptr((void*)555, smartlist_get(sl,5));
  1183. /* Try deleting in the middle. */
  1184. smartlist_del(sl, 1);
  1185. test_eq_ptr((void*)555, smartlist_get(sl, 1));
  1186. /* Try deleting at the end. */
  1187. smartlist_del(sl, 4);
  1188. test_eq(4, smartlist_len(sl));
  1189. /* test isin. */
  1190. test_assert(smartlist_isin(sl, (void*)3));
  1191. test_assert(!smartlist_isin(sl, (void*)99));
  1192. /* Test split and join */
  1193. smartlist_clear(sl);
  1194. test_eq(0, smartlist_len(sl));
  1195. smartlist_split_string(sl, "abc", ":", 0, 0);
  1196. test_eq(1, smartlist_len(sl));
  1197. test_streq("abc", smartlist_get(sl, 0));
  1198. smartlist_split_string(sl, "a::bc::", "::", 0, 0);
  1199. test_eq(4, smartlist_len(sl));
  1200. test_streq("a", smartlist_get(sl, 1));
  1201. test_streq("bc", smartlist_get(sl, 2));
  1202. test_streq("", smartlist_get(sl, 3));
  1203. cp = smartlist_join_strings(sl, "", 0, NULL);
  1204. test_streq(cp, "abcabc");
  1205. tor_free(cp);
  1206. cp = smartlist_join_strings(sl, "!", 0, NULL);
  1207. test_streq(cp, "abc!a!bc!");
  1208. tor_free(cp);
  1209. cp = smartlist_join_strings(sl, "XY", 0, NULL);
  1210. test_streq(cp, "abcXYaXYbcXY");
  1211. tor_free(cp);
  1212. cp = smartlist_join_strings(sl, "XY", 1, NULL);
  1213. test_streq(cp, "abcXYaXYbcXYXY");
  1214. tor_free(cp);
  1215. cp = smartlist_join_strings(sl, "", 1, NULL);
  1216. test_streq(cp, "abcabc");
  1217. tor_free(cp);
  1218. smartlist_split_string(sl, "/def/ /ghijk", "/", 0, 0);
  1219. test_eq(8, smartlist_len(sl));
  1220. test_streq("", smartlist_get(sl, 4));
  1221. test_streq("def", smartlist_get(sl, 5));
  1222. test_streq(" ", smartlist_get(sl, 6));
  1223. test_streq("ghijk", smartlist_get(sl, 7));
  1224. SMARTLIST_FOREACH(sl, char *, cp, tor_free(cp));
  1225. smartlist_clear(sl);
  1226. smartlist_split_string(sl, "a,bbd,cdef", ",", SPLIT_SKIP_SPACE, 0);
  1227. test_eq(3, smartlist_len(sl));
  1228. test_streq("a", smartlist_get(sl,0));
  1229. test_streq("bbd", smartlist_get(sl,1));
  1230. test_streq("cdef", smartlist_get(sl,2));
  1231. smartlist_split_string(sl, " z <> zhasd <> <> bnud<> ", "<>",
  1232. SPLIT_SKIP_SPACE, 0);
  1233. test_eq(8, smartlist_len(sl));
  1234. test_streq("z", smartlist_get(sl,3));
  1235. test_streq("zhasd", smartlist_get(sl,4));
  1236. test_streq("", smartlist_get(sl,5));
  1237. test_streq("bnud", smartlist_get(sl,6));
  1238. test_streq("", smartlist_get(sl,7));
  1239. SMARTLIST_FOREACH(sl, char *, cp, tor_free(cp));
  1240. smartlist_clear(sl);
  1241. smartlist_split_string(sl, " ab\tc \td ef ", NULL,
  1242. SPLIT_SKIP_SPACE|SPLIT_IGNORE_BLANK, 0);
  1243. test_eq(4, smartlist_len(sl));
  1244. test_streq("ab", smartlist_get(sl,0));
  1245. test_streq("c", smartlist_get(sl,1));
  1246. test_streq("d", smartlist_get(sl,2));
  1247. test_streq("ef", smartlist_get(sl,3));
  1248. smartlist_split_string(sl, "ghi\tj", NULL,
  1249. SPLIT_SKIP_SPACE|SPLIT_IGNORE_BLANK, 0);
  1250. test_eq(6, smartlist_len(sl));
  1251. test_streq("ghi", smartlist_get(sl,4));
  1252. test_streq("j", smartlist_get(sl,5));
  1253. SMARTLIST_FOREACH(sl, char *, cp, tor_free(cp));
  1254. smartlist_clear(sl);
  1255. cp = smartlist_join_strings(sl, "XY", 0, NULL);
  1256. test_streq(cp, "");
  1257. tor_free(cp);
  1258. cp = smartlist_join_strings(sl, "XY", 1, NULL);
  1259. test_streq(cp, "XY");
  1260. tor_free(cp);
  1261. smartlist_split_string(sl, " z <> zhasd <> <> bnud<> ", "<>",
  1262. SPLIT_SKIP_SPACE|SPLIT_IGNORE_BLANK, 0);
  1263. test_eq(3, smartlist_len(sl));
  1264. test_streq("z", smartlist_get(sl, 0));
  1265. test_streq("zhasd", smartlist_get(sl, 1));
  1266. test_streq("bnud", smartlist_get(sl, 2));
  1267. smartlist_split_string(sl, " z <> zhasd <> <> bnud<> ", "<>",
  1268. SPLIT_SKIP_SPACE|SPLIT_IGNORE_BLANK, 2);
  1269. test_eq(5, smartlist_len(sl));
  1270. test_streq("z", smartlist_get(sl, 3));
  1271. test_streq("zhasd <> <> bnud<>", smartlist_get(sl, 4));
  1272. SMARTLIST_FOREACH(sl, char *, cp, tor_free(cp));
  1273. smartlist_clear(sl);
  1274. smartlist_split_string(sl, "abcd\n", "\n",
  1275. SPLIT_SKIP_SPACE|SPLIT_IGNORE_BLANK, 0);
  1276. test_eq(1, smartlist_len(sl));
  1277. test_streq("abcd", smartlist_get(sl, 0));
  1278. smartlist_split_string(sl, "efgh", "\n",
  1279. SPLIT_SKIP_SPACE|SPLIT_IGNORE_BLANK, 0);
  1280. test_eq(2, smartlist_len(sl));
  1281. test_streq("efgh", smartlist_get(sl, 1));
  1282. SMARTLIST_FOREACH(sl, char *, cp, tor_free(cp));
  1283. smartlist_clear(sl);
  1284. /* Test swapping, shuffling, and sorting. */
  1285. smartlist_split_string(sl, "the,onion,router,by,arma,and,nickm", ",", 0, 0);
  1286. test_eq(7, smartlist_len(sl));
  1287. smartlist_sort(sl, _compare_strs);
  1288. cp = smartlist_join_strings(sl, ",", 0, NULL);
  1289. test_streq(cp,"and,arma,by,nickm,onion,router,the");
  1290. tor_free(cp);
  1291. smartlist_swap(sl, 1, 5);
  1292. cp = smartlist_join_strings(sl, ",", 0, NULL);
  1293. test_streq(cp,"and,router,by,nickm,onion,arma,the");
  1294. tor_free(cp);
  1295. smartlist_shuffle(sl);
  1296. test_eq(7, smartlist_len(sl));
  1297. test_assert(smartlist_string_isin(sl, "and"));
  1298. test_assert(smartlist_string_isin(sl, "router"));
  1299. test_assert(smartlist_string_isin(sl, "by"));
  1300. test_assert(smartlist_string_isin(sl, "nickm"));
  1301. test_assert(smartlist_string_isin(sl, "onion"));
  1302. test_assert(smartlist_string_isin(sl, "arma"));
  1303. test_assert(smartlist_string_isin(sl, "the"));
  1304. /* Test bsearch. */
  1305. smartlist_sort(sl, _compare_strs);
  1306. test_streq("nickm", smartlist_bsearch(sl, "zNicKM",
  1307. _compare_without_first_ch));
  1308. test_streq("and", smartlist_bsearch(sl, " AND", _compare_without_first_ch));
  1309. test_eq_ptr(NULL, smartlist_bsearch(sl, " ANz", _compare_without_first_ch));
  1310. /* Test bsearch_idx */
  1311. {
  1312. int f;
  1313. test_eq(0, smartlist_bsearch_idx(sl," aaa",_compare_without_first_ch,&f));
  1314. test_eq(f, 0);
  1315. test_eq(0, smartlist_bsearch_idx(sl," and",_compare_without_first_ch,&f));
  1316. test_eq(f, 1);
  1317. test_eq(1, smartlist_bsearch_idx(sl," arm",_compare_without_first_ch,&f));
  1318. test_eq(f, 0);
  1319. test_eq(1, smartlist_bsearch_idx(sl," arma",_compare_without_first_ch,&f));
  1320. test_eq(f, 1);
  1321. test_eq(2, smartlist_bsearch_idx(sl," armb",_compare_without_first_ch,&f));
  1322. test_eq(f, 0);
  1323. test_eq(7, smartlist_bsearch_idx(sl," zzzz",_compare_without_first_ch,&f));
  1324. test_eq(f, 0);
  1325. }
  1326. /* Test reverse() and pop_last() */
  1327. smartlist_reverse(sl);
  1328. cp = smartlist_join_strings(sl, ",", 0, NULL);
  1329. test_streq(cp,"the,router,onion,nickm,by,arma,and");
  1330. tor_free(cp);
  1331. cp = smartlist_pop_last(sl);
  1332. test_streq(cp, "and");
  1333. tor_free(cp);
  1334. test_eq(smartlist_len(sl), 6);
  1335. SMARTLIST_FOREACH(sl, char *, cp, tor_free(cp));
  1336. smartlist_clear(sl);
  1337. /* Test uniq() */
  1338. smartlist_split_string(sl,
  1339. "50,noon,radar,a,man,a,plan,a,canal,panama,radar,noon,50",
  1340. ",", 0, 0);
  1341. smartlist_sort(sl, _compare_strs);
  1342. smartlist_uniq(sl, _compare_strs, _tor_free);
  1343. cp = smartlist_join_strings(sl, ",", 0, NULL);
  1344. test_streq(cp, "50,a,canal,man,noon,panama,plan,radar");
  1345. tor_free(cp);
  1346. /* Test string_isin and isin_case and num_isin */
  1347. test_assert(smartlist_string_isin(sl, "noon"));
  1348. test_assert(!smartlist_string_isin(sl, "noonoon"));
  1349. test_assert(smartlist_string_isin_case(sl, "nOOn"));
  1350. test_assert(!smartlist_string_isin_case(sl, "nooNooN"));
  1351. test_assert(smartlist_string_num_isin(sl, 50));
  1352. test_assert(!smartlist_string_num_isin(sl, 60));
  1353. SMARTLIST_FOREACH(sl, char *, cp, tor_free(cp));
  1354. smartlist_clear(sl);
  1355. /* Test string_remove and remove and join_strings2 */
  1356. smartlist_split_string(sl,
  1357. "Some say the Earth will end in ice and some in fire",
  1358. " ", 0, 0);
  1359. cp = smartlist_get(sl, 4);
  1360. test_streq(cp, "will");
  1361. smartlist_add(sl, cp);
  1362. smartlist_remove(sl, cp);
  1363. cp = smartlist_join_strings(sl, ",", 0, NULL);
  1364. test_streq(cp, "Some,say,the,Earth,fire,end,in,ice,and,some,in");
  1365. tor_free(cp);
  1366. smartlist_string_remove(sl, "in");
  1367. cp = smartlist_join_strings2(sl, "+XX", 1, 0, NULL);
  1368. test_streq(cp, "Some+say+the+Earth+fire+end+some+ice+and");
  1369. tor_free(cp);
  1370. SMARTLIST_FOREACH(sl, char *, cp, tor_free(cp));
  1371. smartlist_clear(sl);
  1372. {
  1373. smartlist_t *ints = smartlist_create();
  1374. smartlist_t *odds = smartlist_create();
  1375. smartlist_t *evens = smartlist_create();
  1376. smartlist_t *primes = smartlist_create();
  1377. int i;
  1378. for (i=1; i < 10; i += 2)
  1379. smartlist_add(odds, (void*)(uintptr_t)i);
  1380. for (i=0; i < 10; i += 2)
  1381. smartlist_add(evens, (void*)(uintptr_t)i);
  1382. /* add_all */
  1383. smartlist_add_all(ints, odds);
  1384. smartlist_add_all(ints, evens);
  1385. test_eq(smartlist_len(ints), 10);
  1386. smartlist_add(primes, (void*)2);
  1387. smartlist_add(primes, (void*)3);
  1388. smartlist_add(primes, (void*)5);
  1389. smartlist_add(primes, (void*)7);
  1390. /* overlap */
  1391. test_assert(smartlist_overlap(ints, odds));
  1392. test_assert(smartlist_overlap(odds, primes));
  1393. test_assert(smartlist_overlap(evens, primes));
  1394. test_assert(!smartlist_overlap(odds, evens));
  1395. /* intersect */
  1396. smartlist_add_all(sl, odds);
  1397. smartlist_intersect(sl, primes);
  1398. test_eq(smartlist_len(sl), 3);
  1399. test_assert(smartlist_isin(sl, (void*)3));
  1400. test_assert(smartlist_isin(sl, (void*)5));
  1401. test_assert(smartlist_isin(sl, (void*)7));
  1402. /* subtract */
  1403. smartlist_add_all(sl, primes);
  1404. smartlist_subtract(sl, odds);
  1405. test_eq(smartlist_len(sl), 1);
  1406. test_assert(smartlist_isin(sl, (void*)2));
  1407. smartlist_free(odds);
  1408. smartlist_free(evens);
  1409. smartlist_free(ints);
  1410. smartlist_free(primes);
  1411. smartlist_clear(sl);
  1412. }
  1413. smartlist_free(sl);
  1414. }
  1415. static void
  1416. test_util_bitarray(void)
  1417. {
  1418. bitarray_t *ba;
  1419. int i, j, ok=1;
  1420. ba = bitarray_init_zero(1);
  1421. test_assert(! bitarray_is_set(ba, 0));
  1422. bitarray_set(ba, 0);
  1423. test_assert(bitarray_is_set(ba, 0));
  1424. bitarray_clear(ba, 0);
  1425. test_assert(! bitarray_is_set(ba, 0));
  1426. bitarray_free(ba);
  1427. ba = bitarray_init_zero(1023);
  1428. for (i = 1; i < 64; ) {
  1429. for (j = 0; j < 1023; ++j) {
  1430. if (j % i)
  1431. bitarray_set(ba, j);
  1432. else
  1433. bitarray_clear(ba, j);
  1434. }
  1435. for (j = 0; j < 1023; ++j) {
  1436. if (!bool_eq(bitarray_is_set(ba, j), j%i))
  1437. ok = 0;
  1438. }
  1439. test_assert(ok);
  1440. if (i < 7)
  1441. ++i;
  1442. else if (i == 28)
  1443. i = 32;
  1444. else
  1445. i += 7;
  1446. }
  1447. bitarray_free(ba);
  1448. }
  1449. /* stop threads running at once. */
  1450. static tor_mutex_t *_thread_test_mutex = NULL;
  1451. /* make sure that threads have to run at the same time. */
  1452. static tor_mutex_t *_thread_test_start1 = NULL;
  1453. static tor_mutex_t *_thread_test_start2 = NULL;
  1454. static strmap_t *_thread_test_strmap = NULL;
  1455. static void _thread_test_func(void* _s) ATTR_NORETURN;
  1456. static int t1_count = 0;
  1457. static int t2_count = 0;
  1458. static void
  1459. _thread_test_func(void* _s)
  1460. {
  1461. char *s = _s;
  1462. int i, *count;
  1463. tor_mutex_t *m;
  1464. char buf[64];
  1465. char *cp;
  1466. if (!strcmp(s, "thread 1")) {
  1467. m = _thread_test_start1;
  1468. count = &t1_count;
  1469. } else {
  1470. m = _thread_test_start2;
  1471. count = &t2_count;
  1472. }
  1473. tor_mutex_acquire(m);
  1474. tor_snprintf(buf, sizeof(buf), "%lu", tor_get_thread_id());
  1475. cp = tor_strdup(buf);
  1476. for (i=0; i<10000; ++i) {
  1477. tor_mutex_acquire(_thread_test_mutex);
  1478. strmap_set(_thread_test_strmap, "last to run", cp);
  1479. ++*count;
  1480. tor_mutex_release(_thread_test_mutex);
  1481. }
  1482. tor_mutex_acquire(_thread_test_mutex);
  1483. strmap_set(_thread_test_strmap, s, tor_strdup(buf));
  1484. tor_mutex_release(_thread_test_mutex);
  1485. tor_mutex_release(m);
  1486. spawn_exit();
  1487. }
  1488. static void
  1489. test_util_threads(void)
  1490. {
  1491. char *s1, *s2;
  1492. int done = 0, timedout = 0;
  1493. time_t started;
  1494. #ifndef TOR_IS_MULTITHREADED
  1495. /* Skip this test if we aren't threading. We should be threading most
  1496. * everywhere by now. */
  1497. if (1)
  1498. return;
  1499. #endif
  1500. _thread_test_mutex = tor_mutex_new();
  1501. _thread_test_start1 = tor_mutex_new();
  1502. _thread_test_start2 = tor_mutex_new();
  1503. _thread_test_strmap = strmap_new();
  1504. s1 = tor_strdup("thread 1");
  1505. s2 = tor_strdup("thread 2");
  1506. tor_mutex_acquire(_thread_test_start1);
  1507. tor_mutex_acquire(_thread_test_start2);
  1508. spawn_func(_thread_test_func, s1);
  1509. spawn_func(_thread_test_func, s2);
  1510. tor_mutex_release(_thread_test_start2);
  1511. tor_mutex_release(_thread_test_start1);
  1512. started = time(NULL);
  1513. while (!done) {
  1514. tor_mutex_acquire(_thread_test_mutex);
  1515. strmap_assert_ok(_thread_test_strmap);
  1516. if (strmap_get(_thread_test_strmap, "thread 1") &&
  1517. strmap_get(_thread_test_strmap, "thread 2")) {
  1518. done = 1;
  1519. } else if (time(NULL) > started + 25) {
  1520. timedout = done = 1;
  1521. }
  1522. tor_mutex_release(_thread_test_mutex);
  1523. }
  1524. tor_mutex_free(_thread_test_mutex);
  1525. if (timedout) {
  1526. printf("\nTimed out: %d %d", t1_count, t2_count);
  1527. test_assert(strmap_get(_thread_test_strmap, "thread 1"));
  1528. test_assert(strmap_get(_thread_test_strmap, "thread 2"));
  1529. test_assert(!timedout);
  1530. }
  1531. /* different thread IDs. */
  1532. test_assert(strcmp(strmap_get(_thread_test_strmap, "thread 1"),
  1533. strmap_get(_thread_test_strmap, "thread 2")));
  1534. test_assert(!strcmp(strmap_get(_thread_test_strmap, "thread 1"),
  1535. strmap_get(_thread_test_strmap, "last to run")) ||
  1536. !strcmp(strmap_get(_thread_test_strmap, "thread 2"),
  1537. strmap_get(_thread_test_strmap, "last to run")));
  1538. strmap_free(_thread_test_strmap, _tor_free);
  1539. tor_free(s1);
  1540. tor_free(s2);
  1541. }
  1542. static int
  1543. _compare_strings_for_pqueue(const void *s1, const void *s2)
  1544. {
  1545. return strcmp((const char*)s1, (const char*)s2);
  1546. }
  1547. static void
  1548. test_util_pqueue(void)
  1549. {
  1550. smartlist_t *sl;
  1551. int (*cmp)(const void *, const void*);
  1552. #define OK() smartlist_pqueue_assert_ok(sl, cmp)
  1553. cmp = _compare_strings_for_pqueue;
  1554. sl = smartlist_create();
  1555. smartlist_pqueue_add(sl, cmp, (char*)"cows");
  1556. smartlist_pqueue_add(sl, cmp, (char*)"zebras");
  1557. smartlist_pqueue_add(sl, cmp, (char*)"fish");
  1558. smartlist_pqueue_add(sl, cmp, (char*)"frogs");
  1559. smartlist_pqueue_add(sl, cmp, (char*)"apples");
  1560. smartlist_pqueue_add(sl, cmp, (char*)"squid");
  1561. smartlist_pqueue_add(sl, cmp, (char*)"daschunds");
  1562. smartlist_pqueue_add(sl, cmp, (char*)"eggplants");
  1563. smartlist_pqueue_add(sl, cmp, (char*)"weissbier");
  1564. smartlist_pqueue_add(sl, cmp, (char*)"lobsters");
  1565. smartlist_pqueue_add(sl, cmp, (char*)"roquefort");
  1566. OK();
  1567. test_eq(smartlist_len(sl), 11);
  1568. test_streq(smartlist_get(sl, 0), "apples");
  1569. test_streq(smartlist_pqueue_pop(sl, cmp), "apples");
  1570. test_eq(smartlist_len(sl), 10);
  1571. OK();
  1572. test_streq(smartlist_pqueue_pop(sl, cmp), "cows");
  1573. test_streq(smartlist_pqueue_pop(sl, cmp), "daschunds");
  1574. smartlist_pqueue_add(sl, cmp, (char*)"chinchillas");
  1575. OK();
  1576. smartlist_pqueue_add(sl, cmp, (char*)"fireflies");
  1577. OK();
  1578. test_streq(smartlist_pqueue_pop(sl, cmp), "chinchillas");
  1579. test_streq(smartlist_pqueue_pop(sl, cmp), "eggplants");
  1580. test_streq(smartlist_pqueue_pop(sl, cmp), "fireflies");
  1581. OK();
  1582. test_streq(smartlist_pqueue_pop(sl, cmp), "fish");
  1583. test_streq(smartlist_pqueue_pop(sl, cmp), "frogs");
  1584. test_streq(smartlist_pqueue_pop(sl, cmp), "lobsters");
  1585. test_streq(smartlist_pqueue_pop(sl, cmp), "roquefort");
  1586. OK();
  1587. test_eq(smartlist_len(sl), 3);
  1588. test_streq(smartlist_pqueue_pop(sl, cmp), "squid");
  1589. test_streq(smartlist_pqueue_pop(sl, cmp), "weissbier");
  1590. test_streq(smartlist_pqueue_pop(sl, cmp), "zebras");
  1591. test_eq(smartlist_len(sl), 0);
  1592. OK();
  1593. #undef OK
  1594. smartlist_free(sl);
  1595. }
  1596. static void
  1597. test_util_gzip(void)
  1598. {
  1599. char *buf1, *buf2=NULL, *buf3=NULL, *cp1, *cp2;
  1600. const char *ccp2;
  1601. size_t len1, len2;
  1602. tor_zlib_state_t *state;
  1603. buf1 = tor_strdup("AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAZAAAAAAAAAAAAAAAAAAAZ");
  1604. test_assert(detect_compression_method(buf1, strlen(buf1)) == UNKNOWN_METHOD);
  1605. if (is_gzip_supported()) {
  1606. test_assert(!tor_gzip_compress(&buf2, &len1, buf1, strlen(buf1)+1,
  1607. GZIP_METHOD));
  1608. test_assert(buf2);
  1609. test_assert(!memcmp(buf2, "\037\213", 2)); /* Gzip magic. */
  1610. test_assert(detect_compression_method(buf2, len1) == GZIP_METHOD);
  1611. test_assert(!tor_gzip_uncompress(&buf3, &len2, buf2, len1,
  1612. GZIP_METHOD, 1, LOG_INFO));
  1613. test_assert(buf3);
  1614. test_streq(buf1,buf3);
  1615. tor_free(buf2);
  1616. tor_free(buf3);
  1617. }
  1618. test_assert(!tor_gzip_compress(&buf2, &len1, buf1, strlen(buf1)+1,
  1619. ZLIB_METHOD));
  1620. test_assert(buf2);
  1621. test_assert(!memcmp(buf2, "\x78\xDA", 2)); /* deflate magic. */
  1622. test_assert(detect_compression_method(buf2, len1) == ZLIB_METHOD);
  1623. test_assert(!tor_gzip_uncompress(&buf3, &len2, buf2, len1,
  1624. ZLIB_METHOD, 1, LOG_INFO));
  1625. test_assert(buf3);
  1626. test_streq(buf1,buf3);
  1627. /* Check whether we can uncompress concatenated, compresed strings. */
  1628. tor_free(buf3);
  1629. buf2 = tor_realloc(buf2, len1*2);
  1630. memcpy(buf2+len1, buf2, len1);
  1631. test_assert(!tor_gzip_uncompress(&buf3, &len2, buf2, len1*2,
  1632. ZLIB_METHOD, 1, LOG_INFO));
  1633. test_eq(len2, (strlen(buf1)+1)*2);
  1634. test_memeq(buf3,
  1635. "AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAZAAAAAAAAAAAAAAAAAAAZ\0"
  1636. "AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAZAAAAAAAAAAAAAAAAAAAZ\0",
  1637. (strlen(buf1)+1)*2);
  1638. tor_free(buf1);
  1639. tor_free(buf2);
  1640. tor_free(buf3);
  1641. /* Check whether we can uncompress partial strings. */
  1642. buf1 =
  1643. tor_strdup("String with low redundancy that won't be compressed much.");
  1644. test_assert(!tor_gzip_compress(&buf2, &len1, buf1, strlen(buf1)+1,
  1645. ZLIB_METHOD));
  1646. tor_assert(len1>16);
  1647. /* when we allow an uncomplete string, we should succeed.*/
  1648. tor_assert(!tor_gzip_uncompress(&buf3, &len2, buf2, len1-16,
  1649. ZLIB_METHOD, 0, LOG_INFO));
  1650. buf3[len2]='\0';
  1651. tor_assert(len2 > 5);
  1652. tor_assert(!strcmpstart(buf1, buf3));
  1653. /* when we demand a complete string, this must fail. */
  1654. tor_free(buf3);
  1655. tor_assert(tor_gzip_uncompress(&buf3, &len2, buf2, len1-16,
  1656. ZLIB_METHOD, 1, LOG_INFO));
  1657. tor_assert(!buf3);
  1658. /* Now, try streaming compression. */
  1659. tor_free(buf1);
  1660. tor_free(buf2);
  1661. tor_free(buf3);
  1662. state = tor_zlib_new(1, ZLIB_METHOD);
  1663. tor_assert(state);
  1664. cp1 = buf1 = tor_malloc(1024);
  1665. len1 = 1024;
  1666. ccp2 = "ABCDEFGHIJABCDEFGHIJ";
  1667. len2 = 21;
  1668. test_assert(tor_zlib_process(state, &cp1, &len1, &ccp2, &len2, 0)
  1669. == TOR_ZLIB_OK);
  1670. test_eq(len2, 0); /* Make sure we compressed it all. */
  1671. test_assert(cp1 > buf1);
  1672. len2 = 0;
  1673. cp2 = cp1;
  1674. test_assert(tor_zlib_process(state, &cp1, &len1, &ccp2, &len2, 1)
  1675. == TOR_ZLIB_DONE);
  1676. test_eq(len2, 0);
  1677. test_assert(cp1 > cp2); /* Make sure we really added something. */
  1678. tor_assert(!tor_gzip_uncompress(&buf3, &len2, buf1, 1024-len1,
  1679. ZLIB_METHOD, 1, LOG_WARN));
  1680. test_streq(buf3, "ABCDEFGHIJABCDEFGHIJ"); /*Make sure it compressed right.*/
  1681. tor_free(buf3);
  1682. tor_zlib_free(state);
  1683. tor_free(buf2);
  1684. tor_free(buf3);
  1685. tor_free(buf1);
  1686. }
  1687. static void
  1688. test_util_strmap(void)
  1689. {
  1690. strmap_t *map;
  1691. strmap_iter_t *iter;
  1692. const char *k;
  1693. void *v;
  1694. char *visited;
  1695. smartlist_t *found_keys;
  1696. map = strmap_new();
  1697. v = strmap_set(map, "K1", (void*)99);
  1698. test_eq(v, NULL);
  1699. v = strmap_set(map, "K2", (void*)101);
  1700. test_eq(v, NULL);
  1701. v = strmap_set(map, "K1", (void*)100);
  1702. test_eq(v, (void*)99);
  1703. test_eq_ptr(strmap_get(map,"K1"), (void*)100);
  1704. test_eq_ptr(strmap_get(map,"K2"), (void*)101);
  1705. test_eq_ptr(strmap_get(map,"K-not-there"), NULL);
  1706. strmap_assert_ok(map);
  1707. v = strmap_remove(map,"K2");
  1708. strmap_assert_ok(map);
  1709. test_eq_ptr(v, (void*)101);
  1710. test_eq_ptr(strmap_get(map,"K2"), NULL);
  1711. test_eq_ptr(strmap_remove(map,"K2"), NULL);
  1712. strmap_set(map, "K2", (void*)101);
  1713. strmap_set(map, "K3", (void*)102);
  1714. strmap_set(map, "K4", (void*)103);
  1715. strmap_assert_ok(map);
  1716. strmap_set(map, "K5", (void*)104);
  1717. strmap_set(map, "K6", (void*)105);
  1718. strmap_assert_ok(map);
  1719. /* Test iterator. */
  1720. iter = strmap_iter_init(map);
  1721. found_keys = smartlist_create();
  1722. while (!strmap_iter_done(iter)) {
  1723. strmap_iter_get(iter,&k,&v);
  1724. smartlist_add(found_keys, tor_strdup(k));
  1725. test_eq_ptr(v, strmap_get(map, k));
  1726. if (!strcmp(k, "K2")) {
  1727. iter = strmap_iter_next_rmv(map,iter);
  1728. } else {
  1729. iter = strmap_iter_next(map,iter);
  1730. }
  1731. }
  1732. /* Make sure we removed K2, but not the others. */
  1733. test_eq_ptr(strmap_get(map, "K2"), NULL);
  1734. test_eq_ptr(strmap_get(map, "K5"), (void*)104);
  1735. /* Make sure we visited everyone once */
  1736. smartlist_sort_strings(found_keys);
  1737. visited = smartlist_join_strings(found_keys, ":", 0, NULL);
  1738. test_streq(visited, "K1:K2:K3:K4:K5:K6");
  1739. tor_free(visited);
  1740. SMARTLIST_FOREACH(found_keys, char *, cp, tor_free(cp));
  1741. smartlist_free(found_keys);
  1742. strmap_assert_ok(map);
  1743. /* Clean up after ourselves. */
  1744. strmap_free(map, NULL);
  1745. /* Now try some lc functions. */
  1746. map = strmap_new();
  1747. strmap_set_lc(map,"Ab.C", (void*)1);
  1748. test_eq_ptr(strmap_get(map,"ab.c"), (void*)1);
  1749. strmap_assert_ok(map);
  1750. test_eq_ptr(strmap_get_lc(map,"AB.C"), (void*)1);
  1751. test_eq_ptr(strmap_get(map,"AB.C"), NULL);
  1752. test_eq_ptr(strmap_remove_lc(map,"aB.C"), (void*)1);
  1753. strmap_assert_ok(map);
  1754. test_eq_ptr(strmap_get_lc(map,"AB.C"), NULL);
  1755. strmap_free(map,NULL);
  1756. }
  1757. static void
  1758. test_util_mmap(void)
  1759. {
  1760. char *fname1 = tor_strdup(get_fname("mapped_1"));
  1761. char *fname2 = tor_strdup(get_fname("mapped_2"));
  1762. char *fname3 = tor_strdup(get_fname("mapped_3"));
  1763. const size_t buflen = 17000;
  1764. char *buf = tor_malloc(17000);
  1765. tor_mmap_t *mapping;
  1766. crypto_rand(buf, buflen);
  1767. write_str_to_file(fname1, "Short file.", 1);
  1768. write_bytes_to_file(fname2, buf, buflen, 1);
  1769. write_bytes_to_file(fname3, buf, 16384, 1);
  1770. mapping = tor_mmap_file(fname1);
  1771. test_assert(mapping);
  1772. test_eq(mapping->size, strlen("Short file."));
  1773. test_streq(mapping->data, "Short file.");
  1774. #ifdef MS_WINDOWS
  1775. tor_munmap_file(mapping);
  1776. test_assert(unlink(fname1) == 0);
  1777. #else
  1778. /* make sure we can unlink. */
  1779. test_assert(unlink(fname1) == 0);
  1780. test_streq(mapping->data, "Short file.");
  1781. tor_munmap_file(mapping);
  1782. #endif
  1783. /* Make sure that we fail to map a no-longer-existent file. */
  1784. mapping = tor_mmap_file(fname1);
  1785. test_assert(mapping == NULL);
  1786. /* Now try a big file that stretches across a few pages and isn't aligned */
  1787. mapping = tor_mmap_file(fname2);
  1788. test_assert(mapping);
  1789. test_eq(mapping->size, buflen);
  1790. test_memeq(mapping->data, buf, buflen);
  1791. tor_munmap_file(mapping);
  1792. /* Now try a big aligned file. */
  1793. mapping = tor_mmap_file(fname3);
  1794. test_assert(mapping);
  1795. test_eq(mapping->size, 16384);
  1796. test_memeq(mapping->data, buf, 16384);
  1797. tor_munmap_file(mapping);
  1798. /* fname1 got unlinked above */
  1799. unlink(fname2);
  1800. unlink(fname3);
  1801. tor_free(fname1);
  1802. tor_free(fname2);
  1803. tor_free(fname3);
  1804. tor_free(buf);
  1805. }
  1806. static void
  1807. test_util_control_formats(void)
  1808. {
  1809. char *out;
  1810. const char *inp =
  1811. "..This is a test\r\nof the emergency \nbroadcast\r\n..system.\r\nZ.\r\n";
  1812. size_t sz;
  1813. sz = read_escaped_data(inp, strlen(inp), &out);
  1814. test_streq(out,
  1815. ".This is a test\nof the emergency \nbroadcast\n.system.\nZ.\n");
  1816. test_eq(sz, strlen(out));
  1817. tor_free(out);
  1818. }
  1819. static void
  1820. test_onion_handshake(void)
  1821. {
  1822. /* client-side */
  1823. crypto_dh_env_t *c_dh = NULL;
  1824. char c_buf[ONIONSKIN_CHALLENGE_LEN];
  1825. char c_keys[40];
  1826. /* server-side */
  1827. char s_buf[ONIONSKIN_REPLY_LEN];
  1828. char s_keys[40];
  1829. /* shared */
  1830. crypto_pk_env_t *pk = NULL;
  1831. pk = pk_generate(0);
  1832. /* client handshake 1. */
  1833. memset(c_buf, 0, ONIONSKIN_CHALLENGE_LEN);
  1834. test_assert(! onion_skin_create(pk, &c_dh, c_buf));
  1835. /* server handshake */
  1836. memset(s_buf, 0, ONIONSKIN_REPLY_LEN);
  1837. memset(s_keys, 0, 40);
  1838. test_assert(! onion_skin_server_handshake(c_buf, pk, NULL,
  1839. s_buf, s_keys, 40));
  1840. /* client handshake 2 */
  1841. memset(c_keys, 0, 40);
  1842. test_assert(! onion_skin_client_handshake(c_dh, s_buf, c_keys, 40));
  1843. crypto_dh_free(c_dh);
  1844. if (memcmp(c_keys, s_keys, 40)) {
  1845. puts("Aiiiie");
  1846. exit(1);
  1847. }
  1848. test_memeq(c_keys, s_keys, 40);
  1849. memset(s_buf, 0, 40);
  1850. test_memneq(c_keys, s_buf, 40);
  1851. crypto_free_pk_env(pk);
  1852. }
  1853. extern smartlist_t *fingerprint_list;
  1854. static void
  1855. test_dir_format(void)
  1856. {
  1857. char buf[8192], buf2[8192];
  1858. char platform[256];
  1859. char fingerprint[FINGERPRINT_LEN+1];
  1860. char *pk1_str = NULL, *pk2_str = NULL, *pk3_str = NULL, *cp;
  1861. size_t pk1_str_len, pk2_str_len, pk3_str_len;
  1862. routerinfo_t r1, r2;
  1863. crypto_pk_env_t *pk1 = NULL, *pk2 = NULL, *pk3 = NULL;
  1864. routerinfo_t *rp1 = NULL, *rp2 = NULL;
  1865. addr_policy_t ex1, ex2;
  1866. routerlist_t *dir1 = NULL, *dir2 = NULL;
  1867. tor_version_t ver1;
  1868. pk1 = pk_generate(0);
  1869. pk2 = pk_generate(1);
  1870. pk3 = pk_generate(2);
  1871. test_assert( is_legal_nickname("a"));
  1872. test_assert(!is_legal_nickname(""));
  1873. test_assert(!is_legal_nickname("abcdefghijklmnopqrst")); /* 20 chars */
  1874. test_assert(!is_legal_nickname("hyphen-")); /* bad char */
  1875. test_assert( is_legal_nickname("abcdefghijklmnopqrs")); /* 19 chars */
  1876. test_assert(!is_legal_nickname("$AAAAAAAA01234AAAAAAAAAAAAAAAAAAAAAAAAAAA"));
  1877. /* valid */
  1878. test_assert( is_legal_nickname_or_hexdigest(
  1879. "$AAAAAAAA01234AAAAAAAAAAAAAAAAAAAAAAAAAAA"));
  1880. test_assert( is_legal_nickname_or_hexdigest(
  1881. "$AAAAAAAA01234AAAAAAAAAAAAAAAAAAAAAAAAAAA=fred"));
  1882. test_assert( is_legal_nickname_or_hexdigest(
  1883. "$AAAAAAAA01234AAAAAAAAAAAAAAAAAAAAAAAAAAA~fred"));
  1884. /* too short */
  1885. test_assert(!is_legal_nickname_or_hexdigest(
  1886. "$AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA"));
  1887. /* illegal char */
  1888. test_assert(!is_legal_nickname_or_hexdigest(
  1889. "$AAAAAAzAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA"));
  1890. /* hex part too long */
  1891. test_assert(!is_legal_nickname_or_hexdigest(
  1892. "$AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA"));
  1893. test_assert(!is_legal_nickname_or_hexdigest(
  1894. "$AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA=fred"));
  1895. /* Bad nickname */
  1896. test_assert(!is_legal_nickname_or_hexdigest(
  1897. "$AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA="));
  1898. test_assert(!is_legal_nickname_or_hexdigest(
  1899. "$AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA~"));
  1900. test_assert(!is_legal_nickname_or_hexdigest(
  1901. "$AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA~hyphen-"));
  1902. test_assert(!is_legal_nickname_or_hexdigest(
  1903. "$AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA~"
  1904. "abcdefghijklmnoppqrst"));
  1905. /* Bad extra char. */
  1906. test_assert(!is_legal_nickname_or_hexdigest(
  1907. "$AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA!"));
  1908. test_assert(is_legal_nickname_or_hexdigest("xyzzy"));
  1909. test_assert(is_legal_nickname_or_hexdigest("abcdefghijklmnopqrs"));
  1910. test_assert(!is_legal_nickname_or_hexdigest("abcdefghijklmnopqrst"));
  1911. get_platform_str(platform, sizeof(platform));
  1912. memset(&r1,0,sizeof(r1));
  1913. memset(&r2,0,sizeof(r2));
  1914. r1.address = tor_strdup("18.244.0.1");
  1915. r1.addr = 0xc0a80001u; /* 192.168.0.1 */
  1916. r1.cache_info.published_on = 0;
  1917. r1.or_port = 9000;
  1918. r1.dir_port = 9003;
  1919. r1.onion_pkey = pk1;
  1920. r1.identity_pkey = pk2;
  1921. r1.bandwidthrate = 1000;
  1922. r1.bandwidthburst = 5000;
  1923. r1.bandwidthcapacity = 10000;
  1924. r1.exit_policy = NULL;
  1925. r1.nickname = tor_strdup("Magri");
  1926. r1.platform = tor_strdup(platform);
  1927. ex1.policy_type = ADDR_POLICY_ACCEPT;
  1928. ex1.addr = 0;
  1929. ex1.maskbits = 0;
  1930. ex1.prt_min = ex1.prt_max = 80;
  1931. ex1.next = &ex2;
  1932. ex2.policy_type = ADDR_POLICY_REJECT;
  1933. ex2.addr = 18 << 24;
  1934. ex2.maskbits = 8;
  1935. ex2.prt_min = ex2.prt_max = 24;
  1936. ex2.next = NULL;
  1937. r2.address = tor_strdup("1.1.1.1");
  1938. r2.addr = 0x0a030201u; /* 10.3.2.1 */
  1939. r2.platform = tor_strdup(platform);
  1940. r2.cache_info.published_on = 5;
  1941. r2.or_port = 9005;
  1942. r2.dir_port = 0;
  1943. r2.onion_pkey = pk2;
  1944. r2.identity_pkey = pk1;
  1945. r2.bandwidthrate = r2.bandwidthburst = r2.bandwidthcapacity = 3000;
  1946. r2.exit_policy = &ex1;
  1947. r2.nickname = tor_strdup("Fred");
  1948. test_assert(!crypto_pk_write_public_key_to_string(pk1, &pk1_str,
  1949. &pk1_str_len));
  1950. test_assert(!crypto_pk_write_public_key_to_string(pk2 , &pk2_str,
  1951. &pk2_str_len));
  1952. test_assert(!crypto_pk_write_public_key_to_string(pk3 , &pk3_str,
  1953. &pk3_str_len));
  1954. memset(buf, 0, 2048);
  1955. test_assert(router_dump_router_to_string(buf, 2048, &r1, pk2)>0);
  1956. strlcpy(buf2, "router Magri 18.244.0.1 9000 0 9003\n"
  1957. "platform Tor "VERSION" on ", sizeof(buf2));
  1958. strlcat(buf2, get_uname(), sizeof(buf2));
  1959. strlcat(buf2, "\n"
  1960. "opt protocols Link 1 Circuit 1\n"
  1961. "published 1970-01-01 00:00:00\n"
  1962. "opt fingerprint ", sizeof(buf2));
  1963. test_assert(!crypto_pk_get_fingerprint(pk2, fingerprint, 1));
  1964. strlcat(buf2, fingerprint, sizeof(buf2));
  1965. strlcat(buf2, "\nuptime 0\n"
  1966. /* XXX the "0" above is hardcoded, but even if we made it reflect
  1967. * uptime, that still wouldn't make it right, because the two
  1968. * descriptors might be made on different seconds... hm. */
  1969. "bandwidth 1000 5000 10000\n"
  1970. "opt extra-info-digest 0000000000000000000000000000000000000000\n"
  1971. "onion-key\n", sizeof(buf2));
  1972. strlcat(buf2, pk1_str, sizeof(buf2));
  1973. strlcat(buf2, "signing-key\n", sizeof(buf2));
  1974. strlcat(buf2, pk2_str, sizeof(buf2));
  1975. strlcat(buf2, "router-signature\n", sizeof(buf2));
  1976. buf[strlen(buf2)] = '\0'; /* Don't compare the sig; it's never the same
  1977. * twice */
  1978. test_streq(buf, buf2);
  1979. test_assert(router_dump_router_to_string(buf, 2048, &r1, pk2)>0);
  1980. cp = buf;
  1981. rp1 = router_parse_entry_from_string((const char*)cp,NULL,1,0,NULL);
  1982. test_assert(rp1);
  1983. test_streq(rp1->address, r1.address);
  1984. test_eq(rp1->or_port, r1.or_port);
  1985. //test_eq(rp1->dir_port, r1.dir_port);
  1986. test_eq(rp1->bandwidthrate, r1.bandwidthrate);
  1987. test_eq(rp1->bandwidthburst, r1.bandwidthburst);
  1988. test_eq(rp1->bandwidthcapacity, r1.bandwidthcapacity);
  1989. test_assert(crypto_pk_cmp_keys(rp1->onion_pkey, pk1) == 0);
  1990. test_assert(crypto_pk_cmp_keys(rp1->identity_pkey, pk2) == 0);
  1991. test_assert(rp1->exit_policy == NULL);
  1992. #if 0
  1993. /* XXX Once we have exit policies, test this again. XXX */
  1994. strlcpy(buf2, "router tor.tor.tor 9005 0 0 3000\n", sizeof(buf2));
  1995. strlcat(buf2, pk2_str, sizeof(buf2));
  1996. strlcat(buf2, "signing-key\n", sizeof(buf2));
  1997. strlcat(buf2, pk1_str, sizeof(buf2));
  1998. strlcat(buf2, "accept *:80\nreject 18.*:24\n\n", sizeof(buf2));
  1999. test_assert(router_dump_router_to_string(buf, 2048, &r2, pk2)>0);
  2000. test_streq(buf, buf2);
  2001. cp = buf;
  2002. rp2 = router_parse_entry_from_string(&cp,1);
  2003. test_assert(rp2);
  2004. test_streq(rp2->address, r2.address);
  2005. test_eq(rp2->or_port, r2.or_port);
  2006. test_eq(rp2->dir_port, r2.dir_port);
  2007. test_eq(rp2->bandwidth, r2.bandwidth);
  2008. test_assert(crypto_pk_cmp_keys(rp2->onion_pkey, pk2) == 0);
  2009. test_assert(crypto_pk_cmp_keys(rp2->identity_pkey, pk1) == 0);
  2010. test_eq(rp2->exit_policy->policy_type, EXIT_POLICY_ACCEPT);
  2011. test_streq(rp2->exit_policy->string, "accept *:80");
  2012. test_streq(rp2->exit_policy->address, "*");
  2013. test_streq(rp2->exit_policy->port, "80");
  2014. test_eq(rp2->exit_policy->next->policy_type, EXIT_POLICY_REJECT);
  2015. test_streq(rp2->exit_policy->next->string, "reject 18.*:24");
  2016. test_streq(rp2->exit_policy->next->address, "18.*");
  2017. test_streq(rp2->exit_policy->next->port, "24");
  2018. test_assert(rp2->exit_policy->next->next == NULL);
  2019. /* Okay, now for the directories. */
  2020. {
  2021. fingerprint_list = smartlist_create();
  2022. crypto_pk_get_fingerprint(pk2, buf, 1);
  2023. add_fingerprint_to_dir("Magri", buf, fingerprint_list);
  2024. crypto_pk_get_fingerprint(pk1, buf, 1);
  2025. add_fingerprint_to_dir("Fred", buf, fingerprint_list);
  2026. }
  2027. {
  2028. char d[DIGEST_LEN];
  2029. const char *m;
  2030. /* XXXX NM re-enable. */
  2031. /* Make sure routers aren't too far in the past any more. */
  2032. r1.cache_info.published_on = time(NULL);
  2033. r2.cache_info.published_on = time(NULL)-3*60*60;
  2034. test_assert(router_dump_router_to_string(buf, 2048, &r1, pk2)>0);
  2035. test_eq(dirserv_add_descriptor(buf,&m), 2);
  2036. test_assert(router_dump_router_to_string(buf, 2048, &r2, pk1)>0);
  2037. test_eq(dirserv_add_descriptor(buf,&m), 2);
  2038. get_options()->Nickname = tor_strdup("DirServer");
  2039. test_assert(!dirserv_dump_directory_to_string(&cp,pk3, 0));
  2040. crypto_pk_get_digest(pk3, d);
  2041. test_assert(!router_parse_directory(cp));
  2042. test_eq(2, smartlist_len(dir1->routers));
  2043. tor_free(cp);
  2044. }
  2045. #endif
  2046. dirserv_free_fingerprint_list();
  2047. tor_free(pk1_str);
  2048. tor_free(pk2_str);
  2049. if (pk1) crypto_free_pk_env(pk1);
  2050. if (pk2) crypto_free_pk_env(pk2);
  2051. if (rp1) routerinfo_free(rp1);
  2052. if (rp2) routerinfo_free(rp2);
  2053. tor_free(dir1); /* XXXX And more !*/
  2054. tor_free(dir2); /* And more !*/
  2055. /* Try out version parsing functionality */
  2056. test_eq(0, tor_version_parse("0.3.4pre2-cvs", &ver1));
  2057. test_eq(0, ver1.major);
  2058. test_eq(3, ver1.minor);
  2059. test_eq(4, ver1.micro);
  2060. test_eq(VER_PRE, ver1.status);
  2061. test_eq(2, ver1.patchlevel);
  2062. test_eq(0, tor_version_parse("0.3.4rc1", &ver1));
  2063. test_eq(0, ver1.major);
  2064. test_eq(3, ver1.minor);
  2065. test_eq(4, ver1.micro);
  2066. test_eq(VER_RC, ver1.status);
  2067. test_eq(1, ver1.patchlevel);
  2068. test_eq(0, tor_version_parse("1.3.4", &ver1));
  2069. test_eq(1, ver1.major);
  2070. test_eq(3, ver1.minor);
  2071. test_eq(4, ver1.micro);
  2072. test_eq(VER_RELEASE, ver1.status);
  2073. test_eq(0, ver1.patchlevel);
  2074. test_eq(0, tor_version_parse("1.3.4.999", &ver1));
  2075. test_eq(1, ver1.major);
  2076. test_eq(3, ver1.minor);
  2077. test_eq(4, ver1.micro);
  2078. test_eq(VER_RELEASE, ver1.status);
  2079. test_eq(999, ver1.patchlevel);
  2080. test_eq(0, tor_version_parse("0.1.2.4-alpha", &ver1));
  2081. test_eq(0, ver1.major);
  2082. test_eq(1, ver1.minor);
  2083. test_eq(2, ver1.micro);
  2084. test_eq(4, ver1.patchlevel);
  2085. test_eq(VER_RELEASE, ver1.status);
  2086. test_streq("alpha", ver1.status_tag);
  2087. test_eq(0, tor_version_parse("0.1.2.4", &ver1));
  2088. test_eq(0, ver1.major);
  2089. test_eq(1, ver1.minor);
  2090. test_eq(2, ver1.micro);
  2091. test_eq(4, ver1.patchlevel);
  2092. test_eq(VER_RELEASE, ver1.status);
  2093. test_streq("", ver1.status_tag);
  2094. #define test_eq_vs(vs1, vs2) test_eq_type(version_status_t, "%d", (vs1), (vs2))
  2095. #define test_v_i_o(val, ver, lst) \
  2096. test_eq_vs(val, tor_version_is_obsolete(ver, lst))
  2097. /* make sure tor_version_is_obsolete() works */
  2098. test_v_i_o(VS_OLD, "0.0.1", "Tor 0.0.2");
  2099. test_v_i_o(VS_OLD, "0.0.1", "0.0.2, Tor 0.0.3");
  2100. test_v_i_o(VS_OLD, "0.0.1", "0.0.2,Tor 0.0.3");
  2101. test_v_i_o(VS_OLD, "0.0.1","0.0.3,BetterTor 0.0.1");
  2102. test_v_i_o(VS_RECOMMENDED, "0.0.2", "Tor 0.0.2,Tor 0.0.3");
  2103. test_v_i_o(VS_NEW_IN_SERIES, "0.0.2", "Tor 0.0.2pre1,Tor 0.0.3");
  2104. test_v_i_o(VS_OLD, "0.0.2", "Tor 0.0.2.1,Tor 0.0.3");
  2105. test_v_i_o(VS_NEW, "0.1.0", "Tor 0.0.2,Tor 0.0.3");
  2106. test_v_i_o(VS_RECOMMENDED, "0.0.7rc2", "0.0.7,Tor 0.0.7rc2,Tor 0.0.8");
  2107. test_v_i_o(VS_OLD, "0.0.5.0", "0.0.5.1-cvs");
  2108. test_v_i_o(VS_NEW_IN_SERIES, "0.0.5.1-cvs", "0.0.5, 0.0.6");
  2109. /* Not on list, but newer than any in same series. */
  2110. test_v_i_o(VS_NEW_IN_SERIES, "0.1.0.3",
  2111. "Tor 0.1.0.2,Tor 0.0.9.5,Tor 0.1.1.0");
  2112. /* Series newer than any on list. */
  2113. test_v_i_o(VS_NEW, "0.1.2.3", "Tor 0.1.0.2,Tor 0.0.9.5,Tor 0.1.1.0");
  2114. /* Series older than any on list. */
  2115. test_v_i_o(VS_OLD, "0.0.1.3", "Tor 0.1.0.2,Tor 0.0.9.5,Tor 0.1.1.0");
  2116. /* Not on list, not newer than any on same series. */
  2117. test_v_i_o(VS_UNRECOMMENDED, "0.1.0.1",
  2118. "Tor 0.1.0.2,Tor 0.0.9.5,Tor 0.1.1.0");
  2119. /* On list, not newer than any on same series. */
  2120. test_v_i_o(VS_UNRECOMMENDED,
  2121. "0.1.0.1", "Tor 0.1.0.2,Tor 0.0.9.5,Tor 0.1.1.0");
  2122. test_eq(0, tor_version_as_new_as("Tor 0.0.5", "0.0.9pre1-cvs"));
  2123. test_eq(1, tor_version_as_new_as(
  2124. "Tor 0.0.8 on Darwin 64-121-192-100.c3-0."
  2125. "sfpo-ubr1.sfrn-sfpo.ca.cable.rcn.com Power Macintosh",
  2126. "0.0.8rc2"));
  2127. test_eq(0, tor_version_as_new_as(
  2128. "Tor 0.0.8 on Darwin 64-121-192-100.c3-0."
  2129. "sfpo-ubr1.sfrn-sfpo.ca.cable.rcn.com Power Macintosh", "0.0.8.2"));
  2130. /* Now try svn revisions. */
  2131. test_eq(1, tor_version_as_new_as("Tor 0.2.1.0-dev (r100)",
  2132. "Tor 0.2.1.0-dev (r99)"));
  2133. test_eq(1, tor_version_as_new_as("Tor 0.2.1.0-dev (r100) on Banana Jr",
  2134. "Tor 0.2.1.0-dev (r99) on Hal 9000"));
  2135. test_eq(1, tor_version_as_new_as("Tor 0.2.1.0-dev (r100)",
  2136. "Tor 0.2.1.0-dev on Colossus"));
  2137. test_eq(0, tor_version_as_new_as("Tor 0.2.1.0-dev (r99)",
  2138. "Tor 0.2.1.0-dev (r100)"));
  2139. test_eq(0, tor_version_as_new_as("Tor 0.2.1.0-dev (r99) on MCP",
  2140. "Tor 0.2.1.0-dev (r100) on AM"));
  2141. test_eq(0, tor_version_as_new_as("Tor 0.2.1.0-dev",
  2142. "Tor 0.2.1.0-dev (r99)"));
  2143. test_eq(1, tor_version_as_new_as("Tor 0.2.1.1",
  2144. "Tor 0.2.1.0-dev (r99)"));
  2145. }
  2146. extern const char AUTHORITY_CERT_1[];
  2147. extern const char AUTHORITY_SIGNKEY_1[];
  2148. extern const char AUTHORITY_CERT_2[];
  2149. extern const char AUTHORITY_SIGNKEY_2[];
  2150. extern const char AUTHORITY_CERT_3[];
  2151. extern const char AUTHORITY_SIGNKEY_3[];
  2152. static void
  2153. test_same_voter(networkstatus_voter_info_t *v1,
  2154. networkstatus_voter_info_t *v2)
  2155. {
  2156. test_streq(v1->nickname, v2->nickname);
  2157. test_memeq(v1->identity_digest, v2->identity_digest, DIGEST_LEN);
  2158. test_streq(v1->address, v2->address);
  2159. test_eq(v1->addr, v2->addr);
  2160. test_eq(v1->dir_port, v2->dir_port);
  2161. test_eq(v1->or_port, v2->or_port);
  2162. test_streq(v1->contact, v2->contact);
  2163. test_memeq(v1->vote_digest, v2->vote_digest, DIGEST_LEN);
  2164. }
  2165. static void
  2166. test_util_order_functions(void)
  2167. {
  2168. int lst[25], n = 0;
  2169. // int a=12,b=24,c=25,d=60,e=77;
  2170. #define median() median_int(lst, n)
  2171. lst[n++] = 12;
  2172. test_eq(12, median()); /* 12 */
  2173. lst[n++] = 77;
  2174. //smartlist_shuffle(sl);
  2175. test_eq(12, median()); /* 12, 77 */
  2176. lst[n++] = 77;
  2177. //smartlist_shuffle(sl);
  2178. test_eq(77, median()); /* 12, 77, 77 */
  2179. lst[n++] = 24;
  2180. test_eq(24, median()); /* 12,24,77,77 */
  2181. lst[n++] = 60;
  2182. lst[n++] = 12;
  2183. lst[n++] = 25;
  2184. //smartlist_shuffle(sl);
  2185. test_eq(25, median()); /* 12,12,24,25,60,77,77 */
  2186. #undef median
  2187. }
  2188. static void
  2189. test_v3_networkstatus(void)
  2190. {
  2191. authority_cert_t *cert1, *cert2, *cert3;
  2192. crypto_pk_env_t *sign_skey_1, *sign_skey_2, *sign_skey_3;
  2193. time_t now = time(NULL);
  2194. networkstatus_voter_info_t *voter;
  2195. networkstatus_vote_t *vote, *v1, *v2, *v3, *con;
  2196. vote_routerstatus_t *vrs;
  2197. routerstatus_t *rs;
  2198. char *v1_text, *v2_text, *v3_text, *consensus_text, *cp;
  2199. smartlist_t *votes = smartlist_create();
  2200. /* Parse certificates and keys. */
  2201. cert1 = authority_cert_parse_from_string(AUTHORITY_CERT_1, NULL);
  2202. test_assert(cert1);
  2203. cert2 = authority_cert_parse_from_string(AUTHORITY_CERT_2, NULL);
  2204. test_assert(cert2);
  2205. cert3 = authority_cert_parse_from_string(AUTHORITY_CERT_3, NULL);
  2206. test_assert(cert3);
  2207. sign_skey_1 = crypto_new_pk_env();
  2208. sign_skey_2 = crypto_new_pk_env();
  2209. sign_skey_3 = crypto_new_pk_env();
  2210. test_assert(!crypto_pk_read_private_key_from_string(sign_skey_1,
  2211. AUTHORITY_SIGNKEY_1));
  2212. test_assert(!crypto_pk_read_private_key_from_string(sign_skey_2,
  2213. AUTHORITY_SIGNKEY_2));
  2214. test_assert(!crypto_pk_read_private_key_from_string(sign_skey_3,
  2215. AUTHORITY_SIGNKEY_3));
  2216. test_assert(!crypto_pk_cmp_keys(sign_skey_1, cert1->signing_key));
  2217. test_assert(!crypto_pk_cmp_keys(sign_skey_2, cert2->signing_key));
  2218. /*
  2219. * Set up a vote; generate it; try to parse it.
  2220. */
  2221. vote = tor_malloc_zero(sizeof(networkstatus_vote_t));
  2222. vote->is_vote = 1;
  2223. vote->published = now;
  2224. vote->valid_after = now+1000;
  2225. vote->fresh_until = now+2000;
  2226. vote->valid_until = now+3000;
  2227. vote->vote_seconds = 100;
  2228. vote->dist_seconds = 200;
  2229. vote->client_versions = tor_strdup("0.1.2.14,0.1.2.15");
  2230. vote->server_versions = tor_strdup("0.1.2.14,0.1.2.15,0.1.2.16");
  2231. vote->known_flags = smartlist_create();
  2232. smartlist_split_string(vote->known_flags,
  2233. "Authority Exit Fast Guard Running Stable V2Dir Valid",
  2234. 0, SPLIT_SKIP_SPACE|SPLIT_IGNORE_BLANK, 0);
  2235. vote->voters = smartlist_create();
  2236. voter = tor_malloc_zero(sizeof(networkstatus_voter_info_t));
  2237. voter->nickname = tor_strdup("Voter1");
  2238. voter->address = tor_strdup("1.2.3.4");
  2239. voter->addr = 0x01020304;
  2240. voter->dir_port = 80;
  2241. voter->or_port = 9000;
  2242. voter->contact = tor_strdup("voter@example.com");
  2243. crypto_pk_get_digest(cert1->identity_key, voter->identity_digest);
  2244. smartlist_add(vote->voters, voter);
  2245. vote->cert = authority_cert_dup(cert1);
  2246. vote->routerstatus_list = smartlist_create();
  2247. /* add the first routerstatus. */
  2248. vrs = tor_malloc_zero(sizeof(vote_routerstatus_t));
  2249. rs = &vrs->status;
  2250. vrs->version = tor_strdup("0.1.2.14");
  2251. rs->published_on = now-1500;
  2252. strlcpy(rs->nickname, "router2", sizeof(rs->nickname));
  2253. memset(rs->identity_digest, 3, DIGEST_LEN);
  2254. memset(rs->descriptor_digest, 78, DIGEST_LEN);
  2255. rs->addr = 0x99008801;
  2256. rs->or_port = 443;
  2257. rs->dir_port = 8000;
  2258. /* all flags cleared */
  2259. smartlist_add(vote->routerstatus_list, vrs);
  2260. /* add the second routerstatus. */
  2261. vrs = tor_malloc_zero(sizeof(vote_routerstatus_t));
  2262. rs = &vrs->status;
  2263. vrs->version = tor_strdup("0.2.0.5");
  2264. rs->published_on = now-1000;
  2265. strlcpy(rs->nickname, "router1", sizeof(rs->nickname));
  2266. memset(rs->identity_digest, 5, DIGEST_LEN);
  2267. memset(rs->descriptor_digest, 77, DIGEST_LEN);
  2268. rs->addr = 0x99009901;
  2269. rs->or_port = 443;
  2270. rs->dir_port = 0;
  2271. rs->is_exit = rs->is_stable = rs->is_fast = rs->is_running =
  2272. rs->is_valid = rs->is_v2_dir = rs->is_possible_guard = 1;
  2273. smartlist_add(vote->routerstatus_list, vrs);
  2274. /* add the third routerstatus. */
  2275. vrs = tor_malloc_zero(sizeof(vote_routerstatus_t));
  2276. rs = &vrs->status;
  2277. vrs->version = tor_strdup("0.1.0.3");
  2278. rs->published_on = now-1000;
  2279. strlcpy(rs->nickname, "router3", sizeof(rs->nickname));
  2280. memset(rs->identity_digest, 33, DIGEST_LEN);
  2281. memset(rs->descriptor_digest, 78, DIGEST_LEN);
  2282. rs->addr = 0xAA009901;
  2283. rs->or_port = 400;
  2284. rs->dir_port = 9999;
  2285. rs->is_authority = rs->is_exit = rs->is_stable = rs->is_fast =
  2286. rs->is_running = rs->is_valid = rs->is_v2_dir = rs->is_possible_guard = 1;
  2287. smartlist_add(vote->routerstatus_list, vrs);
  2288. /* dump the vote and try to parse it. */
  2289. v1_text = format_networkstatus_vote(sign_skey_1, vote);
  2290. test_assert(v1_text);
  2291. v1 = networkstatus_parse_vote_from_string(v1_text, NULL, 1);
  2292. test_assert(v1);
  2293. /* Make sure the parsed thing was right. */
  2294. test_eq(v1->is_vote, 1);
  2295. test_eq(v1->published, vote->published);
  2296. test_eq(v1->valid_after, vote->valid_after);
  2297. test_eq(v1->fresh_until, vote->fresh_until);
  2298. test_eq(v1->valid_until, vote->valid_until);
  2299. test_eq(v1->vote_seconds, vote->vote_seconds);
  2300. test_eq(v1->dist_seconds, vote->dist_seconds);
  2301. test_streq(v1->client_versions, vote->client_versions);
  2302. test_streq(v1->server_versions, vote->server_versions);
  2303. test_assert(v1->voters && smartlist_len(v1->voters));
  2304. voter = smartlist_get(v1->voters, 0);
  2305. test_streq(voter->nickname, "Voter1");
  2306. test_streq(voter->address, "1.2.3.4");
  2307. test_eq(voter->addr, 0x01020304);
  2308. test_eq(voter->dir_port, 80);
  2309. test_eq(voter->or_port, 9000);
  2310. test_streq(voter->contact, "voter@example.com");
  2311. test_assert(v1->cert);
  2312. test_assert(!crypto_pk_cmp_keys(sign_skey_1, v1->cert->signing_key));
  2313. cp = smartlist_join_strings(v1->known_flags, ":", 0, NULL);
  2314. test_streq(cp, "Authority:Exit:Fast:Guard:Running:Stable:V2Dir:Valid");
  2315. tor_free(cp);
  2316. test_eq(smartlist_len(v1->routerstatus_list), 3);
  2317. /* Check the first routerstatus. */
  2318. vrs = smartlist_get(v1->routerstatus_list, 0);
  2319. rs = &vrs->status;
  2320. test_streq(vrs->version, "0.1.2.14");
  2321. test_eq(rs->published_on, now-1500);
  2322. test_streq(rs->nickname, "router2");
  2323. test_memeq(rs->identity_digest,
  2324. "\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3",
  2325. DIGEST_LEN);
  2326. test_memeq(rs->descriptor_digest, "NNNNNNNNNNNNNNNNNNNN", DIGEST_LEN);
  2327. test_eq(rs->addr, 0x99008801);
  2328. test_eq(rs->or_port, 443);
  2329. test_eq(rs->dir_port, 8000);
  2330. test_eq(vrs->flags, U64_LITERAL(0));
  2331. /* Check the second routerstatus. */
  2332. vrs = smartlist_get(v1->routerstatus_list, 1);
  2333. rs = &vrs->status;
  2334. test_streq(vrs->version, "0.2.0.5");
  2335. test_eq(rs->published_on, now-1000);
  2336. test_streq(rs->nickname, "router1");
  2337. test_memeq(rs->identity_digest,
  2338. "\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5",
  2339. DIGEST_LEN);
  2340. test_memeq(rs->descriptor_digest, "MMMMMMMMMMMMMMMMMMMM", DIGEST_LEN);
  2341. test_eq(rs->addr, 0x99009901);
  2342. test_eq(rs->or_port, 443);
  2343. test_eq(rs->dir_port, 0);
  2344. test_eq(vrs->flags, U64_LITERAL(254)); // all flags except "authority."
  2345. /* Generate second vote. It disagrees on some of the times,
  2346. * and doesn't list versions, and knows some crazy flags */
  2347. vote->published = now+1;
  2348. vote->fresh_until = now+3005;
  2349. vote->dist_seconds = 300;
  2350. authority_cert_free(vote->cert);
  2351. vote->cert = authority_cert_dup(cert2);
  2352. tor_free(vote->client_versions);
  2353. tor_free(vote->server_versions);
  2354. voter = smartlist_get(vote->voters, 0);
  2355. tor_free(voter->nickname);
  2356. tor_free(voter->address);
  2357. voter->nickname = tor_strdup("Voter2");
  2358. voter->address = tor_strdup("2.3.4.5");
  2359. voter->addr = 0x02030405;
  2360. crypto_pk_get_digest(cert2->identity_key, voter->identity_digest);
  2361. smartlist_add(vote->known_flags, tor_strdup("MadeOfCheese"));
  2362. smartlist_add(vote->known_flags, tor_strdup("MadeOfTin"));
  2363. smartlist_sort_strings(vote->known_flags);
  2364. vrs = smartlist_get(vote->routerstatus_list, 2);
  2365. smartlist_del_keeporder(vote->routerstatus_list, 2);
  2366. tor_free(vrs->version);
  2367. tor_free(vrs);
  2368. vrs = smartlist_get(vote->routerstatus_list, 0);
  2369. vrs->status.is_fast = 1;
  2370. /* generate and parse. */
  2371. v2_text = format_networkstatus_vote(sign_skey_2, vote);
  2372. test_assert(v2_text);
  2373. v2 = networkstatus_parse_vote_from_string(v2_text, NULL, 1);
  2374. test_assert(v2);
  2375. /* Check that flags come out right.*/
  2376. cp = smartlist_join_strings(v2->known_flags, ":", 0, NULL);
  2377. test_streq(cp, "Authority:Exit:Fast:Guard:MadeOfCheese:MadeOfTin:"
  2378. "Running:Stable:V2Dir:Valid");
  2379. tor_free(cp);
  2380. vrs = smartlist_get(v2->routerstatus_list, 1);
  2381. /* 1023 - authority(1) - madeofcheese(16) - madeoftin(32) */
  2382. test_eq(vrs->flags, U64_LITERAL(974));
  2383. /* Generate the third vote. */
  2384. vote->published = now;
  2385. vote->fresh_until = now+2003;
  2386. vote->dist_seconds = 250;
  2387. authority_cert_free(vote->cert);
  2388. vote->cert = authority_cert_dup(cert3);
  2389. vote->client_versions = tor_strdup("0.1.2.14,0.1.2.17");
  2390. vote->server_versions = tor_strdup("0.1.2.10,0.1.2.15,0.1.2.16");
  2391. voter = smartlist_get(vote->voters, 0);
  2392. tor_free(voter->nickname);
  2393. tor_free(voter->address);
  2394. voter->nickname = tor_strdup("Voter3");
  2395. voter->address = tor_strdup("3.4.5.6");
  2396. voter->addr = 0x03040506;
  2397. crypto_pk_get_digest(cert3->identity_key, voter->identity_digest);
  2398. vrs = smartlist_get(vote->routerstatus_list, 0);
  2399. smartlist_del_keeporder(vote->routerstatus_list, 0);
  2400. tor_free(vrs->version);
  2401. tor_free(vrs);
  2402. vrs = smartlist_get(vote->routerstatus_list, 0);
  2403. memset(vrs->status.descriptor_digest, (int)'Z', DIGEST_LEN);
  2404. v3_text = format_networkstatus_vote(sign_skey_3, vote);
  2405. test_assert(v3_text);
  2406. v3 = networkstatus_parse_vote_from_string(v3_text, NULL, 1);
  2407. test_assert(v3);
  2408. /* Compute a consensus as voter 3. */
  2409. smartlist_add(votes, v3);
  2410. smartlist_add(votes, v1);
  2411. smartlist_add(votes, v2);
  2412. consensus_text = networkstatus_compute_consensus(votes, 3,
  2413. cert3->identity_key,
  2414. sign_skey_3);
  2415. test_assert(consensus_text);
  2416. con = networkstatus_parse_vote_from_string(consensus_text, NULL, 0);
  2417. test_assert(con);
  2418. //log_notice(LD_GENERAL, "<<%s>>\n<<%s>>\n<<%s>>\n",
  2419. // v1_text, v2_text, v3_text);
  2420. /* Check consensus contents. */
  2421. test_assert(!con->is_vote);
  2422. test_eq(con->published, 0); /* this field only appears in votes. */
  2423. test_eq(con->valid_after, now+1000);
  2424. test_eq(con->fresh_until, now+2003); /* median */
  2425. test_eq(con->valid_until, now+3000);
  2426. test_eq(con->vote_seconds, 100);
  2427. test_eq(con->dist_seconds, 250); /* median */
  2428. test_streq(con->client_versions, "0.1.2.14");
  2429. test_streq(con->server_versions, "0.1.2.15,0.1.2.16");
  2430. cp = smartlist_join_strings(v2->known_flags, ":", 0, NULL);
  2431. test_streq(cp, "Authority:Exit:Fast:Guard:MadeOfCheese:MadeOfTin:"
  2432. "Running:Stable:V2Dir:Valid");
  2433. tor_free(cp);
  2434. test_eq(3, smartlist_len(con->voters));
  2435. /* The voter id digests should be in this order. */
  2436. test_assert(memcmp(cert2->cache_info.identity_digest,
  2437. cert3->cache_info.identity_digest,DIGEST_LEN)<0);
  2438. test_assert(memcmp(cert3->cache_info.identity_digest,
  2439. cert1->cache_info.identity_digest,DIGEST_LEN)<0);
  2440. test_same_voter(smartlist_get(con->voters, 0),
  2441. smartlist_get(v2->voters, 0));
  2442. test_same_voter(smartlist_get(con->voters, 1),
  2443. smartlist_get(v3->voters, 0));
  2444. test_same_voter(smartlist_get(con->voters, 2),
  2445. smartlist_get(v1->voters, 0));
  2446. test_assert(!con->cert);
  2447. test_eq(2, smartlist_len(con->routerstatus_list));
  2448. /* There should be two listed routers: one with identity 3, one with
  2449. * identity 5. */
  2450. /* This one showed up in 2 digests. */
  2451. rs = smartlist_get(con->routerstatus_list, 0);
  2452. test_memeq(rs->identity_digest,
  2453. "\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3\x3",
  2454. DIGEST_LEN);
  2455. test_memeq(rs->descriptor_digest, "NNNNNNNNNNNNNNNNNNNN", DIGEST_LEN);
  2456. test_assert(!rs->is_authority);
  2457. test_assert(!rs->is_exit);
  2458. test_assert(!rs->is_fast);
  2459. test_assert(!rs->is_possible_guard);
  2460. test_assert(!rs->is_stable);
  2461. test_assert(!rs->is_running);
  2462. test_assert(!rs->is_v2_dir);
  2463. test_assert(!rs->is_valid);
  2464. test_assert(!rs->is_named);
  2465. /* XXXX020 check version */
  2466. rs = smartlist_get(con->routerstatus_list, 1);
  2467. /* This one showed up in 3 digests. Twice with ID 'M', once with 'Z'. */
  2468. test_memeq(rs->identity_digest,
  2469. "\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5\x5",
  2470. DIGEST_LEN);
  2471. test_streq(rs->nickname, "router1");
  2472. test_memeq(rs->descriptor_digest, "MMMMMMMMMMMMMMMMMMMM", DIGEST_LEN);
  2473. test_eq(rs->published_on, now-1000);
  2474. test_eq(rs->addr, 0x99009901);
  2475. test_eq(rs->or_port, 443);
  2476. test_eq(rs->dir_port, 0);
  2477. test_assert(!rs->is_authority);
  2478. test_assert(rs->is_exit);
  2479. test_assert(rs->is_fast);
  2480. test_assert(rs->is_possible_guard);
  2481. test_assert(rs->is_stable);
  2482. test_assert(rs->is_running);
  2483. test_assert(rs->is_v2_dir);
  2484. test_assert(rs->is_valid);
  2485. test_assert(!rs->is_named);
  2486. /* XXXX020 check version */
  2487. /* Check signatures. the first voter hasn't got one. The second one
  2488. * does: validate it. */
  2489. voter = smartlist_get(con->voters, 0);
  2490. test_assert(!voter->signature);
  2491. test_assert(!voter->good_signature);
  2492. test_assert(!voter->bad_signature);
  2493. voter = smartlist_get(con->voters, 1);
  2494. test_assert(voter->signature);
  2495. test_assert(!voter->good_signature);
  2496. test_assert(!voter->bad_signature);
  2497. test_assert(!networkstatus_check_voter_signature(con,
  2498. smartlist_get(con->voters, 1),
  2499. cert3));
  2500. test_assert(voter->signature);
  2501. test_assert(voter->good_signature);
  2502. test_assert(!voter->bad_signature);
  2503. {
  2504. char *consensus_text2, *consensus_text3;
  2505. networkstatus_vote_t *con2, *con3;
  2506. char *detached_text1, *detached_text2;
  2507. ns_detached_signatures_t *dsig1, *dsig2;
  2508. const char *msg=NULL;
  2509. /* Compute the other two signed consensuses. */
  2510. smartlist_shuffle(votes);
  2511. consensus_text2 = networkstatus_compute_consensus(votes, 3,
  2512. cert2->identity_key,
  2513. sign_skey_2);
  2514. smartlist_shuffle(votes);
  2515. consensus_text3 = networkstatus_compute_consensus(votes, 3,
  2516. cert1->identity_key,
  2517. sign_skey_1);
  2518. test_assert(consensus_text2);
  2519. test_assert(consensus_text3);
  2520. con2 = networkstatus_parse_vote_from_string(consensus_text2, NULL, 0);
  2521. con3 = networkstatus_parse_vote_from_string(consensus_text3, NULL, 0);
  2522. test_assert(con2);
  2523. test_assert(con3);
  2524. /* All three should have the same digest. */
  2525. test_memeq(con->networkstatus_digest, con2->networkstatus_digest,
  2526. DIGEST_LEN);
  2527. test_memeq(con->networkstatus_digest, con3->networkstatus_digest,
  2528. DIGEST_LEN);
  2529. /* Extract a detached signature from con3. */
  2530. detached_text1 = networkstatus_get_detached_signatures(con3);
  2531. tor_assert(detached_text1);
  2532. /* Try to parse it. */
  2533. dsig1 = networkstatus_parse_detached_signatures(detached_text1, NULL);
  2534. tor_assert(dsig1);
  2535. /* Are parsed values as expected? */
  2536. test_eq(dsig1->valid_after, con3->valid_after);
  2537. test_eq(dsig1->fresh_until, con3->fresh_until);
  2538. test_eq(dsig1->valid_until, con3->valid_until);
  2539. test_memeq(dsig1->networkstatus_digest, con3->networkstatus_digest,
  2540. DIGEST_LEN);
  2541. test_eq(1, smartlist_len(dsig1->signatures));
  2542. voter = smartlist_get(dsig1->signatures, 0);
  2543. test_memeq(voter->identity_digest, cert1->cache_info.identity_digest,
  2544. DIGEST_LEN);
  2545. /* Try adding it to con2. */
  2546. detached_text2 = networkstatus_get_detached_signatures(con2);
  2547. test_eq(1, networkstatus_add_detached_signatures(con2, dsig1, &msg));
  2548. tor_free(detached_text2);
  2549. detached_text2 = networkstatus_get_detached_signatures(con2);
  2550. //printf("\n<%s>\n", detached_text2);
  2551. dsig2 = networkstatus_parse_detached_signatures(detached_text2, NULL);
  2552. test_assert(dsig2);
  2553. /*
  2554. printf("\n");
  2555. SMARTLIST_FOREACH(dsig2->signatures, networkstatus_voter_info_t *, vi, {
  2556. char hd[64];
  2557. base16_encode(hd, sizeof(hd), vi->identity_digest, DIGEST_LEN);
  2558. printf("%s\n", hd);
  2559. });
  2560. */
  2561. test_eq(2, smartlist_len(dsig2->signatures));
  2562. /* Try adding to con2 twice; verify that nothing changes. */
  2563. test_eq(0, networkstatus_add_detached_signatures(con2, dsig1, &msg));
  2564. /* Add to con. */
  2565. test_eq(2, networkstatus_add_detached_signatures(con, dsig2, &msg));
  2566. /* Check signatures */
  2567. test_assert(!networkstatus_check_voter_signature(con,
  2568. smartlist_get(con->voters, 0),
  2569. cert2));
  2570. test_assert(!networkstatus_check_voter_signature(con,
  2571. smartlist_get(con->voters, 2),
  2572. cert1));
  2573. networkstatus_vote_free(con2);
  2574. networkstatus_vote_free(con3);
  2575. tor_free(consensus_text2);
  2576. tor_free(consensus_text3);
  2577. tor_free(detached_text1);
  2578. tor_free(detached_text2);
  2579. ns_detached_signatures_free(dsig1);
  2580. ns_detached_signatures_free(dsig2);
  2581. }
  2582. smartlist_free(votes);
  2583. tor_free(v1_text);
  2584. tor_free(v2_text);
  2585. tor_free(v3_text);
  2586. tor_free(consensus_text);
  2587. networkstatus_vote_free(vote);
  2588. networkstatus_vote_free(v1);
  2589. networkstatus_vote_free(v2);
  2590. networkstatus_vote_free(v3);
  2591. networkstatus_vote_free(con);
  2592. crypto_free_pk_env(sign_skey_1);
  2593. crypto_free_pk_env(sign_skey_2);
  2594. crypto_free_pk_env(sign_skey_3);
  2595. authority_cert_free(cert1);
  2596. authority_cert_free(cert2);
  2597. authority_cert_free(cert3);
  2598. }
  2599. static void
  2600. test_policies(void)
  2601. {
  2602. addr_policy_t *policy, *policy2;
  2603. tor_addr_t tar;
  2604. config_line_t line;
  2605. policy = router_parse_addr_policy_from_string("reject 192.168.0.0/16:*",-1);
  2606. test_eq(NULL, policy->next);
  2607. test_eq(ADDR_POLICY_REJECT, policy->policy_type);
  2608. tor_addr_from_ipv4(&tar, 0xc0a80000u);
  2609. test_assert(policy->addr == 0xc0a80000u);
  2610. test_eq(16, policy->maskbits);
  2611. test_eq(1, policy->prt_min);
  2612. test_eq(65535, policy->prt_max);
  2613. test_assert(ADDR_POLICY_ACCEPTED ==
  2614. compare_addr_to_addr_policy(0x01020304u, 2, policy));
  2615. test_assert(ADDR_POLICY_PROBABLY_ACCEPTED ==
  2616. compare_addr_to_addr_policy(0, 2, policy));
  2617. test_assert(ADDR_POLICY_REJECTED ==
  2618. compare_addr_to_addr_policy(0xc0a80102, 2, policy));
  2619. policy2 = NULL;
  2620. test_assert(0 == policies_parse_exit_policy(NULL, &policy2, 1, NULL));
  2621. test_assert(policy2);
  2622. test_assert(!exit_policy_is_general_exit(policy));
  2623. test_assert(exit_policy_is_general_exit(policy2));
  2624. test_assert(cmp_addr_policies(policy, policy2));
  2625. test_assert(!cmp_addr_policies(policy2, policy2));
  2626. test_assert(!policy_is_reject_star(policy2));
  2627. test_assert(policy_is_reject_star(policy));
  2628. addr_policy_free(policy);
  2629. addr_policy_free(policy2);
  2630. /* make sure compacting logic works. */
  2631. policy = NULL;
  2632. line.key = (char*)"foo";
  2633. line.value = (char*)"accept *:80,reject private:*,reject *:*";
  2634. line.next = NULL;
  2635. test_assert(0 == policies_parse_exit_policy(&line, &policy, 0, NULL));
  2636. test_assert(policy);
  2637. //test_streq(policy->string, "accept *:80");
  2638. //test_streq(policy->next->string, "reject *:*");
  2639. test_eq_ptr(policy->next->next, NULL);
  2640. addr_policy_free(policy);
  2641. }
  2642. static void
  2643. test_rend_fns(void)
  2644. {
  2645. char address1[] = "fooaddress.onion";
  2646. char address2[] = "aaaaaaaaaaaaaaaa.onion";
  2647. char address3[] = "fooaddress.exit";
  2648. char address4[] = "www.torproject.org";
  2649. rend_service_descriptor_t *d1, *d2;
  2650. char *encoded;
  2651. size_t len;
  2652. crypto_pk_env_t *pk1, *pk2;
  2653. time_t now;
  2654. pk1 = pk_generate(0);
  2655. pk2 = pk_generate(1);
  2656. /* Test unversioned (v0) descriptor */
  2657. d1 = tor_malloc_zero(sizeof(rend_service_descriptor_t));
  2658. d1->pk = crypto_pk_dup_key(pk1);
  2659. now = time(NULL);
  2660. d1->timestamp = now;
  2661. d1->n_intro_points = 3;
  2662. d1->version = 0;
  2663. d1->intro_points = tor_malloc(sizeof(char*)*3);
  2664. d1->intro_points[0] = tor_strdup("tom");
  2665. d1->intro_points[1] = tor_strdup("crow");
  2666. d1->intro_points[2] = tor_strdup("joel");
  2667. test_assert(! rend_encode_service_descriptor(d1, pk1, &encoded, &len));
  2668. d2 = rend_parse_service_descriptor(encoded, len);
  2669. test_assert(d2);
  2670. test_assert(!crypto_pk_cmp_keys(d1->pk, d2->pk));
  2671. test_eq(d2->timestamp, now);
  2672. test_eq(d2->version, 0);
  2673. test_eq(d2->protocols, 1<<2);
  2674. test_eq(d2->n_intro_points, 3);
  2675. test_streq(d2->intro_points[0], "tom");
  2676. test_streq(d2->intro_points[1], "crow");
  2677. test_streq(d2->intro_points[2], "joel");
  2678. test_eq(NULL, d2->intro_point_extend_info);
  2679. rend_service_descriptor_free(d1);
  2680. rend_service_descriptor_free(d2);
  2681. tor_free(encoded);
  2682. test_assert(BAD_HOSTNAME == parse_extended_hostname(address1));
  2683. test_assert(ONION_HOSTNAME == parse_extended_hostname(address2));
  2684. test_assert(EXIT_HOSTNAME == parse_extended_hostname(address3));
  2685. test_assert(NORMAL_HOSTNAME == parse_extended_hostname(address4));
  2686. crypto_free_pk_env(pk1);
  2687. crypto_free_pk_env(pk2);
  2688. }
  2689. static void
  2690. bench_aes(void)
  2691. {
  2692. int len, i;
  2693. char *b1, *b2;
  2694. crypto_cipher_env_t *c;
  2695. struct timeval start, end;
  2696. const int iters = 100000;
  2697. uint64_t nsec;
  2698. c = crypto_new_cipher_env();
  2699. crypto_cipher_generate_key(c);
  2700. crypto_cipher_encrypt_init_cipher(c);
  2701. for (len = 1; len <= 8192; len *= 2) {
  2702. b1 = tor_malloc_zero(len);
  2703. b2 = tor_malloc_zero(len);
  2704. tor_gettimeofday(&start);
  2705. for (i = 0; i < iters; ++i) {
  2706. crypto_cipher_encrypt(c, b1, b2, len);
  2707. }
  2708. tor_gettimeofday(&end);
  2709. tor_free(b1);
  2710. tor_free(b2);
  2711. nsec = (uint64_t) tv_udiff(&start,&end);
  2712. nsec *= 1000;
  2713. nsec /= (iters*len);
  2714. printf("%d bytes: "U64_FORMAT" nsec per byte\n", len,
  2715. U64_PRINTF_ARG(nsec));
  2716. }
  2717. crypto_free_cipher_env(c);
  2718. }
  2719. static void
  2720. test_util_mempool(void)
  2721. {
  2722. mp_pool_t *pool;
  2723. smartlist_t *allocated;
  2724. int i;
  2725. pool = mp_pool_new(1, 100);
  2726. test_assert(pool->new_chunk_capacity >= 100);
  2727. test_assert(pool->item_alloc_size >= sizeof(void*)+1);
  2728. mp_pool_destroy(pool);
  2729. pool = mp_pool_new(241, 2500);
  2730. test_assert(pool->new_chunk_capacity >= 10);
  2731. test_assert(pool->item_alloc_size >= sizeof(void*)+241);
  2732. test_eq(pool->item_alloc_size & 0x03, 0);
  2733. test_assert(pool->new_chunk_capacity < 60);
  2734. allocated = smartlist_create();
  2735. for (i = 0; i < 100000; ++i) {
  2736. if (smartlist_len(allocated) < 20 || crypto_rand_int(2)) {
  2737. void *m = mp_pool_get(pool);
  2738. memset(m, 0x09, 241);
  2739. smartlist_add(allocated, m);
  2740. //printf("%d: %p\n", i, m);
  2741. //mp_pool_assert_ok(pool);
  2742. } else {
  2743. int idx = crypto_rand_int(smartlist_len(allocated));
  2744. void *m = smartlist_get(allocated, idx);
  2745. //printf("%d: free %p\n", i, m);
  2746. smartlist_del(allocated, idx);
  2747. mp_pool_release(m);
  2748. //mp_pool_assert_ok(pool);
  2749. }
  2750. if (crypto_rand_int(777)==0)
  2751. mp_pool_clean(pool, -1);
  2752. if (i % 777)
  2753. mp_pool_assert_ok(pool);
  2754. }
  2755. SMARTLIST_FOREACH(allocated, void *, m, mp_pool_release(m));
  2756. mp_pool_assert_ok(pool);
  2757. mp_pool_clean(pool, 0);
  2758. mp_pool_assert_ok(pool);
  2759. mp_pool_destroy(pool);
  2760. smartlist_free(allocated);
  2761. }
  2762. static void
  2763. test_util_datadir(void)
  2764. {
  2765. char buf[1024];
  2766. char *f;
  2767. f = get_datadir_fname(NULL);
  2768. test_streq(f, temp_dir);
  2769. tor_free(f);
  2770. f = get_datadir_fname("state");
  2771. tor_snprintf(buf, sizeof(buf), "%s"PATH_SEPARATOR"state", temp_dir);
  2772. test_streq(f, buf);
  2773. tor_free(f);
  2774. f = get_datadir_fname2("cache", "thingy");
  2775. tor_snprintf(buf, sizeof(buf),
  2776. "%s"PATH_SEPARATOR"cache"PATH_SEPARATOR"thingy", temp_dir);
  2777. test_streq(f, buf);
  2778. tor_free(f);
  2779. f = get_datadir_fname2_suffix("cache", "thingy", ".foo");
  2780. tor_snprintf(buf, sizeof(buf),
  2781. "%s"PATH_SEPARATOR"cache"PATH_SEPARATOR"thingy.foo", temp_dir);
  2782. test_streq(f, buf);
  2783. tor_free(f);
  2784. f = get_datadir_fname_suffix("cache", ".foo");
  2785. tor_snprintf(buf, sizeof(buf), "%s"PATH_SEPARATOR"cache.foo",
  2786. temp_dir);
  2787. test_streq(f, buf);
  2788. tor_free(f);
  2789. }
  2790. /* Test AES-CTR encryption and decryption with IV. */
  2791. static void
  2792. test_crypto_aes_iv(void)
  2793. {
  2794. crypto_cipher_env_t *cipher;
  2795. char *plain, *encrypted1, *encrypted2, *decrypted1, *decrypted2;
  2796. char plain_1[1], plain_15[15], plain_16[16], plain_17[17];
  2797. char key1[16], key2[16];
  2798. size_t encrypted_size, decrypted_size;
  2799. plain = tor_malloc(4095);
  2800. encrypted1 = tor_malloc(4095 + 1 + 16);
  2801. encrypted2 = tor_malloc(4095 + 1 + 16);
  2802. decrypted1 = tor_malloc(4095 + 1);
  2803. decrypted2 = tor_malloc(4095 + 1);
  2804. crypto_rand(plain, 4095);
  2805. crypto_rand(key1, 16);
  2806. crypto_rand(key2, 16);
  2807. crypto_rand(plain_1, 1);
  2808. crypto_rand(plain_15, 15);
  2809. crypto_rand(plain_16, 16);
  2810. crypto_rand(plain_17, 17);
  2811. key1[0] = key2[0] + 128; /* Make sure that contents are different. */
  2812. /* Encrypt and decrypt with the same key. */
  2813. cipher = crypto_create_init_cipher(key1, 1);
  2814. encrypted_size = crypto_cipher_encrypt_with_iv(cipher, encrypted1, 16 + 4095,
  2815. plain, 4095);
  2816. crypto_free_cipher_env(cipher);
  2817. test_eq(encrypted_size, 16 + 4095);
  2818. cipher = crypto_create_init_cipher(key1, 0);
  2819. decrypted_size = crypto_cipher_decrypt_with_iv(cipher, decrypted1, 4095,
  2820. encrypted1, encrypted_size);
  2821. crypto_free_cipher_env(cipher);
  2822. test_eq(decrypted_size, 4095);
  2823. test_memeq(plain, decrypted1, 4095);
  2824. /* Encrypt a second time (with a new random initialization vector). */
  2825. cipher = crypto_create_init_cipher(key1, 1);
  2826. encrypted_size = crypto_cipher_encrypt_with_iv(cipher, encrypted2, 16 + 4095,
  2827. plain, 4095);
  2828. crypto_free_cipher_env(cipher);
  2829. test_eq(encrypted_size, 16 + 4095);
  2830. cipher = crypto_create_init_cipher(key1, 0);
  2831. decrypted_size = crypto_cipher_decrypt_with_iv(cipher, decrypted2, 4095,
  2832. encrypted2, encrypted_size);
  2833. crypto_free_cipher_env(cipher);
  2834. test_eq(decrypted_size, 4095);
  2835. test_memeq(plain, decrypted2, 4095);
  2836. test_memneq(encrypted1, encrypted2, encrypted_size);
  2837. /* Decrypt with the wrong key. */
  2838. cipher = crypto_create_init_cipher(key2, 0);
  2839. decrypted_size = crypto_cipher_decrypt_with_iv(cipher, decrypted2, 4095,
  2840. encrypted1, encrypted_size);
  2841. crypto_free_cipher_env(cipher);
  2842. test_memneq(plain, decrypted2, encrypted_size);
  2843. /* Alter the initialization vector. */
  2844. encrypted1[0] += 42;
  2845. cipher = crypto_create_init_cipher(key1, 0);
  2846. decrypted_size = crypto_cipher_decrypt_with_iv(cipher, decrypted1, 4095,
  2847. encrypted1, encrypted_size);
  2848. crypto_free_cipher_env(cipher);
  2849. test_memneq(plain, decrypted2, 4095);
  2850. /* Special length case: 1. */
  2851. cipher = crypto_create_init_cipher(key1, 1);
  2852. encrypted_size = crypto_cipher_encrypt_with_iv(cipher, encrypted1, 16 + 1,
  2853. plain_1, 1);
  2854. crypto_free_cipher_env(cipher);
  2855. test_eq(encrypted_size, 16 + 1);
  2856. cipher = crypto_create_init_cipher(key1, 0);
  2857. decrypted_size = crypto_cipher_decrypt_with_iv(cipher, decrypted1, 1,
  2858. encrypted1, encrypted_size);
  2859. crypto_free_cipher_env(cipher);
  2860. test_eq(decrypted_size, 1);
  2861. test_memeq(plain_1, decrypted1, 1);
  2862. /* Special length case: 15. */
  2863. cipher = crypto_create_init_cipher(key1, 1);
  2864. encrypted_size = crypto_cipher_encrypt_with_iv(cipher, encrypted1, 16 + 15,
  2865. plain_15, 15);
  2866. crypto_free_cipher_env(cipher);
  2867. test_eq(encrypted_size, 16 + 15);
  2868. cipher = crypto_create_init_cipher(key1, 0);
  2869. decrypted_size = crypto_cipher_decrypt_with_iv(cipher, decrypted1, 15,
  2870. encrypted1, encrypted_size);
  2871. crypto_free_cipher_env(cipher);
  2872. test_eq(decrypted_size, 15);
  2873. test_memeq(plain_15, decrypted1, 15);
  2874. /* Special length case: 16. */
  2875. cipher = crypto_create_init_cipher(key1, 1);
  2876. encrypted_size = crypto_cipher_encrypt_with_iv(cipher, encrypted1, 16 + 16,
  2877. plain_16, 16);
  2878. crypto_free_cipher_env(cipher);
  2879. test_eq(encrypted_size, 16 + 16);
  2880. cipher = crypto_create_init_cipher(key1, 0);
  2881. decrypted_size = crypto_cipher_decrypt_with_iv(cipher, decrypted1, 16,
  2882. encrypted1, encrypted_size);
  2883. test_eq(decrypted_size, 16);
  2884. test_memeq(plain_16, decrypted1, 16);
  2885. /* Special length case: 17. */
  2886. cipher = crypto_create_init_cipher(key1, 1);
  2887. encrypted_size = crypto_cipher_encrypt_with_iv(cipher, encrypted1, 16 + 17,
  2888. plain_17, 17);
  2889. crypto_free_cipher_env(cipher);
  2890. test_eq(encrypted_size, 16 + 17);
  2891. cipher = crypto_create_init_cipher(key1, 0);
  2892. decrypted_size = crypto_cipher_decrypt_with_iv(cipher, decrypted1, 17,
  2893. encrypted1, encrypted_size);
  2894. crypto_free_cipher_env(cipher);
  2895. test_eq(decrypted_size, 17);
  2896. test_memeq(plain_17, decrypted1, 17);
  2897. /* Free memory. */
  2898. tor_free(plain);
  2899. tor_free(encrypted1);
  2900. tor_free(encrypted2);
  2901. tor_free(decrypted1);
  2902. tor_free(decrypted2);
  2903. }
  2904. /* Test base32 decoding. */
  2905. static void
  2906. test_crypto_base32_decode(void)
  2907. {
  2908. char plain[60], encoded[96 + 1], decoded[60];
  2909. int res;
  2910. crypto_rand(plain, 60);
  2911. /* Encode and decode a random string. */
  2912. base32_encode(encoded, 96 + 1, plain, 60);
  2913. res = base32_decode(decoded, 60, encoded, 96);
  2914. test_eq(res, 0);
  2915. test_memeq(plain, decoded, 60);
  2916. /* Encode, uppercase, and decode a random string. */
  2917. base32_encode(encoded, 96 + 1, plain, 60);
  2918. tor_strupper(encoded);
  2919. res = base32_decode(decoded, 60, encoded, 96);
  2920. test_eq(res, 0);
  2921. test_memeq(plain, decoded, 60);
  2922. /* Change encoded string and decode. */
  2923. if (encoded[0] == 'A' || encoded[0] == 'a')
  2924. encoded[0] = 'B';
  2925. else
  2926. encoded[0] = 'A';
  2927. res = base32_decode(decoded, 60, encoded, 96);
  2928. test_eq(res, 0);
  2929. test_memneq(plain, decoded, 60);
  2930. }
  2931. /* Test encoding and parsing of v2 rendezvous service descriptors. */
  2932. static void
  2933. test_rend_fns_v2(void)
  2934. {
  2935. rend_service_descriptor_t *generated, *parsed;
  2936. char service_id[DIGEST_LEN];
  2937. char service_id_base32[REND_SERVICE_ID_LEN_BASE32+1];
  2938. const char *next_desc;
  2939. smartlist_t *desc_strs = smartlist_create();
  2940. smartlist_t *desc_ids = smartlist_create();
  2941. char computed_desc_id[DIGEST_LEN];
  2942. char parsed_desc_id[DIGEST_LEN];
  2943. crypto_pk_env_t *pk1, *pk2;
  2944. time_t now;
  2945. char *intro_points_encrypted;
  2946. size_t intro_points_size;
  2947. size_t encoded_size;
  2948. int i;
  2949. pk1 = pk_generate(0);
  2950. pk2 = pk_generate(1);
  2951. generated = tor_malloc_zero(sizeof(rend_service_descriptor_t));
  2952. generated->pk = crypto_pk_dup_key(pk1);
  2953. crypto_pk_get_digest(generated->pk, service_id);
  2954. base32_encode(service_id_base32, REND_SERVICE_ID_LEN_BASE32+1,
  2955. service_id, REND_SERVICE_ID_LEN);
  2956. now = time(NULL);
  2957. generated->timestamp = now;
  2958. generated->n_intro_points = 3;
  2959. generated->version = 2;
  2960. generated->protocols = 42;
  2961. generated->intro_point_extend_info =
  2962. tor_malloc_zero(sizeof(extend_info_t *) * generated->n_intro_points);
  2963. generated->intro_points =
  2964. tor_malloc_zero(sizeof(char *) * generated->n_intro_points);
  2965. generated->intro_keys = strmap_new();
  2966. for (i = 0; i < generated->n_intro_points; i++) {
  2967. extend_info_t *info = tor_malloc_zero(sizeof(extend_info_t));
  2968. crypto_pk_env_t *okey = pk_generate(2 + i);
  2969. info->onion_key = crypto_pk_dup_key(okey);
  2970. crypto_pk_get_digest(info->onion_key, info->identity_digest);
  2971. //crypto_rand(info->identity_digest, DIGEST_LEN); /* Would this work? */
  2972. info->nickname[0] = '$';
  2973. base16_encode(info->nickname + 1, sizeof(info->nickname) - 1,
  2974. info->identity_digest, DIGEST_LEN);
  2975. info->addr = crypto_rand_int(65536); /* Does not cover all IP addresses. */
  2976. info->port = crypto_rand_int(65536);
  2977. generated->intro_points[i] = tor_strdup(info->nickname);
  2978. generated->intro_point_extend_info[i] = info;
  2979. strmap_set(generated->intro_keys, info->nickname, pk2);
  2980. }
  2981. test_assert(rend_encode_v2_descriptors(desc_strs, desc_ids, generated, now,
  2982. NULL, 0) > 0);
  2983. test_assert(rend_compute_v2_desc_id(computed_desc_id, service_id_base32,
  2984. NULL, now, 0) == 0);
  2985. test_assert(smartlist_digest_isin(desc_ids, computed_desc_id));
  2986. test_assert(rend_parse_v2_service_descriptor(&parsed, parsed_desc_id,
  2987. &intro_points_encrypted,
  2988. &intro_points_size,
  2989. &encoded_size,
  2990. &next_desc,
  2991. desc_strs->list[0]) == 0);
  2992. test_assert(parsed);
  2993. test_assert(smartlist_digest_isin(desc_ids, parsed_desc_id));
  2994. test_assert(rend_decrypt_introduction_points(parsed, NULL,
  2995. intro_points_encrypted,
  2996. intro_points_size) == 3);
  2997. test_assert(!crypto_pk_cmp_keys(generated->pk, parsed->pk));
  2998. test_eq(parsed->timestamp, now);
  2999. test_eq(parsed->version, 2);
  3000. test_eq(parsed->protocols, 42);
  3001. test_eq(parsed->n_intro_points, 3);
  3002. for (i = 0; i < parsed->n_intro_points; i++) {
  3003. extend_info_t *par_info = parsed->intro_point_extend_info[i];
  3004. extend_info_t *gen_info = generated->intro_point_extend_info[i];
  3005. test_assert(!crypto_pk_cmp_keys(gen_info->onion_key, par_info->onion_key));
  3006. test_memeq(gen_info->identity_digest, par_info->identity_digest,
  3007. DIGEST_LEN);
  3008. test_streq(gen_info->nickname, par_info->nickname);
  3009. test_streq(generated->intro_points[i], parsed->intro_points[i]);
  3010. test_eq(gen_info->addr, par_info->addr);
  3011. test_eq(gen_info->port, par_info->port);
  3012. }
  3013. tor_free(intro_points_encrypted);
  3014. /*for (i = 0; i < REND_NUMBER_OF_NON_CONSECUTIVE_REPLICAS; i++)
  3015. tor_free(desc_strs[i]);*/
  3016. smartlist_free(desc_strs);
  3017. for (i = 0; i < parsed->n_intro_points; i++) {
  3018. tor_free(parsed->intro_point_extend_info[i]->onion_key);
  3019. tor_free(generated->intro_point_extend_info[i]->onion_key);
  3020. }
  3021. }
  3022. #define ENT(x) { #x, test_ ## x, 0, 0 }
  3023. #define SUBENT(x,y) { #x "/" #y, test_ ## x ## _ ## y, 1, 0 }
  3024. static struct {
  3025. const char *test_name;
  3026. void (*test_fn)(void);
  3027. int is_subent;
  3028. int selected;
  3029. } test_array[] = {
  3030. ENT(buffers),
  3031. ENT(crypto),
  3032. SUBENT(crypto, dh),
  3033. SUBENT(crypto, s2k),
  3034. SUBENT(crypto, aes_iv),
  3035. SUBENT(crypto, base32_decode),
  3036. ENT(util),
  3037. SUBENT(util, ip6_helpers),
  3038. SUBENT(util, gzip),
  3039. SUBENT(util, datadir),
  3040. SUBENT(util, smartlist),
  3041. SUBENT(util, bitarray),
  3042. SUBENT(util, mempool),
  3043. SUBENT(util, strmap),
  3044. SUBENT(util, control_formats),
  3045. SUBENT(util, pqueue),
  3046. SUBENT(util, mmap),
  3047. SUBENT(util, threads),
  3048. SUBENT(util, order_functions),
  3049. ENT(onion_handshake),
  3050. ENT(dir_format),
  3051. ENT(v3_networkstatus),
  3052. ENT(policies),
  3053. ENT(rend_fns),
  3054. SUBENT(rend_fns, v2),
  3055. { NULL, NULL, 0, 0 },
  3056. };
  3057. static void syntax(void) ATTR_NORETURN;
  3058. static void
  3059. syntax(void)
  3060. {
  3061. int i;
  3062. printf("Syntax:\n"
  3063. " test [-v|--verbose] [--warn|--notice|--info|--debug]\n"
  3064. " [testname...]\n"
  3065. "Recognized tests are:\n");
  3066. for (i = 0; test_array[i].test_name; ++i) {
  3067. printf(" %s\n", test_array[i].test_name);
  3068. }
  3069. exit(0);
  3070. }
  3071. int
  3072. main(int c, char**v)
  3073. {
  3074. or_options_t *options = options_new();
  3075. char *errmsg = NULL;
  3076. int i;
  3077. int verbose = 0, any_selected = 0;
  3078. int loglevel = LOG_ERR;
  3079. for (i = 1; i < c; ++i) {
  3080. if (!strcmp(v[i], "-v") || !strcmp(v[i], "--verbose"))
  3081. verbose++;
  3082. else if (!strcmp(v[i], "--warn"))
  3083. loglevel = LOG_WARN;
  3084. else if (!strcmp(v[i], "--notice"))
  3085. loglevel = LOG_NOTICE;
  3086. else if (!strcmp(v[i], "--info"))
  3087. loglevel = LOG_INFO;
  3088. else if (!strcmp(v[i], "--debug"))
  3089. loglevel = LOG_DEBUG;
  3090. else if (!strcmp(v[i], "--help") || !strcmp(v[i], "-h") || v[i][0] == '-')
  3091. syntax();
  3092. else {
  3093. int j, found=0;
  3094. for (j = 0; test_array[j].test_name; ++j) {
  3095. if (!strcmp(v[i], test_array[j].test_name) ||
  3096. (test_array[j].is_subent &&
  3097. !strcmpstart(test_array[j].test_name, v[i]) &&
  3098. test_array[j].test_name[strlen(v[i])] == '/') ||
  3099. (v[i][0] == '=' && !strcmp(v[i]+1, test_array[j].test_name))) {
  3100. test_array[j].selected = 1;
  3101. any_selected = 1;
  3102. found = 1;
  3103. }
  3104. }
  3105. if (!found) {
  3106. printf("Unknown test: %s\n", v[i]);
  3107. syntax();
  3108. }
  3109. }
  3110. }
  3111. if (!any_selected) {
  3112. for (i = 0; test_array[i].test_name; ++i) {
  3113. test_array[i].selected = 1;
  3114. }
  3115. }
  3116. add_stream_log(loglevel, LOG_ERR, "", stdout);
  3117. options->command = CMD_RUN_UNITTESTS;
  3118. rep_hist_init();
  3119. network_init();
  3120. setup_directory();
  3121. options_init(options);
  3122. options->DataDirectory = tor_strdup(temp_dir);
  3123. if (set_options(options, &errmsg) < 0) {
  3124. printf("Failed to set initial options: %s\n", errmsg);
  3125. tor_free(errmsg);
  3126. return 1;
  3127. }
  3128. crypto_seed_rng();
  3129. if (0) {
  3130. bench_aes();
  3131. return 0;
  3132. }
  3133. atexit(remove_directory);
  3134. printf("Running Tor unit tests on %s\n", get_uname());
  3135. for (i = 0; test_array[i].test_name; ++i) {
  3136. if (!test_array[i].selected)
  3137. continue;
  3138. if (!test_array[i].is_subent) {
  3139. printf("\n============================== %s\n",test_array[i].test_name);
  3140. } else if (test_array[i].is_subent && verbose) {
  3141. printf("\n%s", test_array[i].test_name);
  3142. }
  3143. test_array[i].test_fn();
  3144. }
  3145. puts("");
  3146. if (have_failed)
  3147. return 1;
  3148. else
  3149. return 0;
  3150. }