test.c 42 KB

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  1. /* Copyright (c) 2001-2004, Roger Dingledine.
  2. * Copyright (c) 2004-2006, Roger Dingledine, Nick Mathewson.
  3. * Copyright (c) 2007-2010, The Tor Project, Inc. */
  4. /* See LICENSE for licensing information */
  5. /* Ordinarily defined in tor_main.c; this bit is just here to provide one
  6. * since we're not linking to tor_main.c */
  7. const char tor_git_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 BUFFERS_PRIVATE
  26. #define CONFIG_PRIVATE
  27. #define GEOIP_PRIVATE
  28. #define ROUTER_PRIVATE
  29. #define CIRCUIT_PRIVATE
  30. /*
  31. * Linux doesn't provide lround in math.h by default, but mac os does...
  32. * It's best just to leave math.h out of the picture entirely.
  33. */
  34. //#include <math.h>
  35. long int lround(double x);
  36. double fabs(double x);
  37. #include "or.h"
  38. #include "buffers.h"
  39. #include "circuitbuild.h"
  40. #include "config.h"
  41. #include "connection_edge.h"
  42. #include "geoip.h"
  43. #include "rendcommon.h"
  44. #include "test.h"
  45. #include "torgzip.h"
  46. #include "mempool.h"
  47. #include "memarea.h"
  48. #include "onion.h"
  49. #include "policies.h"
  50. #include "rephist.h"
  51. #include "routerparse.h"
  52. #ifdef USE_DMALLOC
  53. #include <dmalloc.h>
  54. #include <openssl/crypto.h>
  55. #include "main.h"
  56. #endif
  57. /** Set to true if any unit test has failed. Mostly, this is set by the macros
  58. * in test.h */
  59. int have_failed = 0;
  60. /** Temporary directory (set up by setup_directory) under which we store all
  61. * our files during testing. */
  62. static char temp_dir[256];
  63. static pid_t temp_dir_setup_in_pid = 0;
  64. /** Select and create the temporary directory we'll use to run our unit tests.
  65. * Store it in <b>temp_dir</b>. Exit immediately if we can't create it.
  66. * idempotent. */
  67. static void
  68. setup_directory(void)
  69. {
  70. static int is_setup = 0;
  71. int r;
  72. if (is_setup) return;
  73. #ifdef MS_WINDOWS
  74. // XXXX
  75. tor_snprintf(temp_dir, sizeof(temp_dir),
  76. "c:\\windows\\temp\\tor_test_%d", (int)getpid());
  77. r = mkdir(temp_dir);
  78. #else
  79. tor_snprintf(temp_dir, sizeof(temp_dir), "/tmp/tor_test_%d", (int) getpid());
  80. r = mkdir(temp_dir, 0700);
  81. #endif
  82. if (r) {
  83. fprintf(stderr, "Can't create directory %s:", temp_dir);
  84. perror("");
  85. exit(1);
  86. }
  87. is_setup = 1;
  88. temp_dir_setup_in_pid = getpid();
  89. }
  90. /** Return a filename relative to our testing temporary directory */
  91. const char *
  92. get_fname(const char *name)
  93. {
  94. static char buf[1024];
  95. setup_directory();
  96. tor_snprintf(buf,sizeof(buf),"%s/%s",temp_dir,name);
  97. return buf;
  98. }
  99. /** Remove all files stored under the temporary directory, and the directory
  100. * itself. Called by atexit(). */
  101. static void
  102. remove_directory(void)
  103. {
  104. smartlist_t *elements;
  105. if (getpid() != temp_dir_setup_in_pid) {
  106. /* Only clean out the tempdir when the main process is exiting. */
  107. return;
  108. }
  109. elements = tor_listdir(temp_dir);
  110. if (elements) {
  111. SMARTLIST_FOREACH(elements, const char *, cp,
  112. {
  113. size_t len = strlen(cp)+strlen(temp_dir)+16;
  114. char *tmp = tor_malloc(len);
  115. tor_snprintf(tmp, len, "%s"PATH_SEPARATOR"%s", temp_dir, cp);
  116. unlink(tmp);
  117. tor_free(tmp);
  118. });
  119. SMARTLIST_FOREACH(elements, char *, cp, tor_free(cp));
  120. smartlist_free(elements);
  121. }
  122. rmdir(temp_dir);
  123. }
  124. /** Define this if unit tests spend too much time generating public keys*/
  125. #undef CACHE_GENERATED_KEYS
  126. static crypto_pk_env_t *pregen_keys[5] = {NULL, NULL, NULL, NULL, NULL};
  127. #define N_PREGEN_KEYS ((int)(sizeof(pregen_keys)/sizeof(pregen_keys[0])))
  128. /** Generate and return a new keypair for use in unit tests. If we're using
  129. * the key cache optimization, we might reuse keys: we only guarantee that
  130. * keys made with distinct values for <b>idx</b> are different. The value of
  131. * <b>idx</b> must be at least 0, and less than N_PREGEN_KEYS. */
  132. crypto_pk_env_t *
  133. pk_generate(int idx)
  134. {
  135. #ifdef CACHE_GENERATED_KEYS
  136. tor_assert(idx < N_PREGEN_KEYS);
  137. if (! pregen_keys[idx]) {
  138. pregen_keys[idx] = crypto_new_pk_env();
  139. tor_assert(!crypto_pk_generate_key(pregen_keys[idx]));
  140. }
  141. return crypto_pk_dup_key(pregen_keys[idx]);
  142. #else
  143. crypto_pk_env_t *result;
  144. (void) idx;
  145. result = crypto_new_pk_env();
  146. tor_assert(!crypto_pk_generate_key(result));
  147. return result;
  148. #endif
  149. }
  150. /** Free all storage used for the cached key optimization. */
  151. static void
  152. free_pregenerated_keys(void)
  153. {
  154. unsigned idx;
  155. for (idx = 0; idx < N_PREGEN_KEYS; ++idx) {
  156. if (pregen_keys[idx]) {
  157. crypto_free_pk_env(pregen_keys[idx]);
  158. pregen_keys[idx] = NULL;
  159. }
  160. }
  161. }
  162. /** Run unit tests for buffers.c */
  163. static void
  164. test_buffers(void)
  165. {
  166. char str[256];
  167. char str2[256];
  168. buf_t *buf = NULL, *buf2 = NULL;
  169. const char *cp;
  170. int j;
  171. size_t r;
  172. /****
  173. * buf_new
  174. ****/
  175. if (!(buf = buf_new()))
  176. test_fail();
  177. //test_eq(buf_capacity(buf), 4096);
  178. test_eq(buf_datalen(buf), 0);
  179. /****
  180. * General pointer frobbing
  181. */
  182. for (j=0;j<256;++j) {
  183. str[j] = (char)j;
  184. }
  185. write_to_buf(str, 256, buf);
  186. write_to_buf(str, 256, buf);
  187. test_eq(buf_datalen(buf), 512);
  188. fetch_from_buf(str2, 200, buf);
  189. test_memeq(str, str2, 200);
  190. test_eq(buf_datalen(buf), 312);
  191. memset(str2, 0, sizeof(str2));
  192. fetch_from_buf(str2, 256, buf);
  193. test_memeq(str+200, str2, 56);
  194. test_memeq(str, str2+56, 200);
  195. test_eq(buf_datalen(buf), 56);
  196. memset(str2, 0, sizeof(str2));
  197. /* Okay, now we should be 512 bytes into the 4096-byte buffer. If we add
  198. * another 3584 bytes, we hit the end. */
  199. for (j=0;j<15;++j) {
  200. write_to_buf(str, 256, buf);
  201. }
  202. assert_buf_ok(buf);
  203. test_eq(buf_datalen(buf), 3896);
  204. fetch_from_buf(str2, 56, buf);
  205. test_eq(buf_datalen(buf), 3840);
  206. test_memeq(str+200, str2, 56);
  207. for (j=0;j<15;++j) {
  208. memset(str2, 0, sizeof(str2));
  209. fetch_from_buf(str2, 256, buf);
  210. test_memeq(str, str2, 256);
  211. }
  212. test_eq(buf_datalen(buf), 0);
  213. buf_free(buf);
  214. buf = NULL;
  215. /* Okay, now make sure growing can work. */
  216. buf = buf_new_with_capacity(16);
  217. //test_eq(buf_capacity(buf), 16);
  218. write_to_buf(str+1, 255, buf);
  219. //test_eq(buf_capacity(buf), 256);
  220. fetch_from_buf(str2, 254, buf);
  221. test_memeq(str+1, str2, 254);
  222. //test_eq(buf_capacity(buf), 256);
  223. assert_buf_ok(buf);
  224. write_to_buf(str, 32, buf);
  225. //test_eq(buf_capacity(buf), 256);
  226. assert_buf_ok(buf);
  227. write_to_buf(str, 256, buf);
  228. assert_buf_ok(buf);
  229. //test_eq(buf_capacity(buf), 512);
  230. test_eq(buf_datalen(buf), 33+256);
  231. fetch_from_buf(str2, 33, buf);
  232. test_eq(*str2, str[255]);
  233. test_memeq(str2+1, str, 32);
  234. //test_eq(buf_capacity(buf), 512);
  235. test_eq(buf_datalen(buf), 256);
  236. fetch_from_buf(str2, 256, buf);
  237. test_memeq(str, str2, 256);
  238. /* now try shrinking: case 1. */
  239. buf_free(buf);
  240. buf = buf_new_with_capacity(33668);
  241. for (j=0;j<67;++j) {
  242. write_to_buf(str,255, buf);
  243. }
  244. //test_eq(buf_capacity(buf), 33668);
  245. test_eq(buf_datalen(buf), 17085);
  246. for (j=0; j < 40; ++j) {
  247. fetch_from_buf(str2, 255,buf);
  248. test_memeq(str2, str, 255);
  249. }
  250. /* now try shrinking: case 2. */
  251. buf_free(buf);
  252. buf = buf_new_with_capacity(33668);
  253. for (j=0;j<67;++j) {
  254. write_to_buf(str,255, buf);
  255. }
  256. for (j=0; j < 20; ++j) {
  257. fetch_from_buf(str2, 255,buf);
  258. test_memeq(str2, str, 255);
  259. }
  260. for (j=0;j<80;++j) {
  261. write_to_buf(str,255, buf);
  262. }
  263. //test_eq(buf_capacity(buf),33668);
  264. for (j=0; j < 120; ++j) {
  265. fetch_from_buf(str2, 255,buf);
  266. test_memeq(str2, str, 255);
  267. }
  268. /* Move from buf to buf. */
  269. buf_free(buf);
  270. buf = buf_new_with_capacity(4096);
  271. buf2 = buf_new_with_capacity(4096);
  272. for (j=0;j<100;++j)
  273. write_to_buf(str, 255, buf);
  274. test_eq(buf_datalen(buf), 25500);
  275. for (j=0;j<100;++j) {
  276. r = 10;
  277. move_buf_to_buf(buf2, buf, &r);
  278. test_eq(r, 0);
  279. }
  280. test_eq(buf_datalen(buf), 24500);
  281. test_eq(buf_datalen(buf2), 1000);
  282. for (j=0;j<3;++j) {
  283. fetch_from_buf(str2, 255, buf2);
  284. test_memeq(str2, str, 255);
  285. }
  286. r = 8192; /*big move*/
  287. move_buf_to_buf(buf2, buf, &r);
  288. test_eq(r, 0);
  289. r = 30000; /* incomplete move */
  290. move_buf_to_buf(buf2, buf, &r);
  291. test_eq(r, 13692);
  292. for (j=0;j<97;++j) {
  293. fetch_from_buf(str2, 255, buf2);
  294. test_memeq(str2, str, 255);
  295. }
  296. buf_free(buf);
  297. buf_free(buf2);
  298. buf = buf2 = NULL;
  299. buf = buf_new_with_capacity(5);
  300. cp = "Testing. This is a moderately long Testing string.";
  301. for (j = 0; cp[j]; j++)
  302. write_to_buf(cp+j, 1, buf);
  303. test_eq(0, buf_find_string_offset(buf, "Testing", 7));
  304. test_eq(1, buf_find_string_offset(buf, "esting", 6));
  305. test_eq(1, buf_find_string_offset(buf, "est", 3));
  306. test_eq(39, buf_find_string_offset(buf, "ing str", 7));
  307. test_eq(35, buf_find_string_offset(buf, "Testing str", 11));
  308. test_eq(32, buf_find_string_offset(buf, "ng ", 3));
  309. test_eq(43, buf_find_string_offset(buf, "string.", 7));
  310. test_eq(-1, buf_find_string_offset(buf, "shrdlu", 6));
  311. test_eq(-1, buf_find_string_offset(buf, "Testing thing", 13));
  312. test_eq(-1, buf_find_string_offset(buf, "ngx", 3));
  313. buf_free(buf);
  314. buf = NULL;
  315. #if 0
  316. {
  317. int s;
  318. int eof;
  319. int i;
  320. buf_t *buf2;
  321. /****
  322. * read_to_buf
  323. ****/
  324. s = open(get_fname("data"), O_WRONLY|O_CREAT|O_TRUNC, 0600);
  325. write(s, str, 256);
  326. close(s);
  327. s = open(get_fname("data"), O_RDONLY, 0);
  328. eof = 0;
  329. errno = 0; /* XXXX */
  330. i = read_to_buf(s, 10, buf, &eof);
  331. printf("%s\n", strerror(errno));
  332. test_eq(i, 10);
  333. test_eq(eof, 0);
  334. //test_eq(buf_capacity(buf), 4096);
  335. test_eq(buf_datalen(buf), 10);
  336. test_memeq(str, (char*)_buf_peek_raw_buffer(buf), 10);
  337. /* Test reading 0 bytes. */
  338. i = read_to_buf(s, 0, buf, &eof);
  339. //test_eq(buf_capacity(buf), 512*1024);
  340. test_eq(buf_datalen(buf), 10);
  341. test_eq(eof, 0);
  342. test_eq(i, 0);
  343. /* Now test when buffer is filled exactly. */
  344. buf2 = buf_new_with_capacity(6);
  345. i = read_to_buf(s, 6, buf2, &eof);
  346. //test_eq(buf_capacity(buf2), 6);
  347. test_eq(buf_datalen(buf2), 6);
  348. test_eq(eof, 0);
  349. test_eq(i, 6);
  350. test_memeq(str+10, (char*)_buf_peek_raw_buffer(buf2), 6);
  351. buf_free(buf2);
  352. buf2 = NULL;
  353. /* Now test when buffer is filled with more data to read. */
  354. buf2 = buf_new_with_capacity(32);
  355. i = read_to_buf(s, 128, buf2, &eof);
  356. //test_eq(buf_capacity(buf2), 128);
  357. test_eq(buf_datalen(buf2), 32);
  358. test_eq(eof, 0);
  359. test_eq(i, 32);
  360. buf_free(buf2);
  361. buf2 = NULL;
  362. /* Now read to eof. */
  363. test_assert(buf_capacity(buf) > 256);
  364. i = read_to_buf(s, 1024, buf, &eof);
  365. test_eq(i, (256-32-10-6));
  366. test_eq(buf_capacity(buf), MAX_BUF_SIZE);
  367. test_eq(buf_datalen(buf), 256-6-32);
  368. test_memeq(str, (char*)_buf_peek_raw_buffer(buf), 10); /* XXX Check rest. */
  369. test_eq(eof, 0);
  370. i = read_to_buf(s, 1024, buf, &eof);
  371. test_eq(i, 0);
  372. test_eq(buf_capacity(buf), MAX_BUF_SIZE);
  373. test_eq(buf_datalen(buf), 256-6-32);
  374. test_eq(eof, 1);
  375. }
  376. #endif
  377. done:
  378. if (buf)
  379. buf_free(buf);
  380. if (buf2)
  381. buf_free(buf2);
  382. }
  383. /** Run unit tests for the onion handshake code. */
  384. static void
  385. test_onion_handshake(void)
  386. {
  387. /* client-side */
  388. crypto_dh_env_t *c_dh = NULL;
  389. char c_buf[ONIONSKIN_CHALLENGE_LEN];
  390. char c_keys[40];
  391. /* server-side */
  392. char s_buf[ONIONSKIN_REPLY_LEN];
  393. char s_keys[40];
  394. /* shared */
  395. crypto_pk_env_t *pk = NULL;
  396. pk = pk_generate(0);
  397. /* client handshake 1. */
  398. memset(c_buf, 0, ONIONSKIN_CHALLENGE_LEN);
  399. test_assert(! onion_skin_create(pk, &c_dh, c_buf));
  400. /* server handshake */
  401. memset(s_buf, 0, ONIONSKIN_REPLY_LEN);
  402. memset(s_keys, 0, 40);
  403. test_assert(! onion_skin_server_handshake(c_buf, pk, NULL,
  404. s_buf, s_keys, 40));
  405. /* client handshake 2 */
  406. memset(c_keys, 0, 40);
  407. test_assert(! onion_skin_client_handshake(c_dh, s_buf, c_keys, 40));
  408. if (memcmp(c_keys, s_keys, 40)) {
  409. puts("Aiiiie");
  410. exit(1);
  411. }
  412. test_memeq(c_keys, s_keys, 40);
  413. memset(s_buf, 0, 40);
  414. test_memneq(c_keys, s_buf, 40);
  415. done:
  416. if (c_dh)
  417. crypto_dh_free(c_dh);
  418. if (pk)
  419. crypto_free_pk_env(pk);
  420. }
  421. static void
  422. test_circuit_timeout(void)
  423. {
  424. /* Plan:
  425. * 1. Generate 1000 samples
  426. * 2. Estimate parameters
  427. * 3. If difference, repeat
  428. * 4. Save state
  429. * 5. load state
  430. * 6. Estimate parameters
  431. * 7. compare differences
  432. */
  433. circuit_build_times_t initial;
  434. circuit_build_times_t estimate;
  435. circuit_build_times_t final;
  436. double timeout1, timeout2;
  437. or_state_t state;
  438. int i, runs;
  439. double close_ms;
  440. circuit_build_times_init(&initial);
  441. circuit_build_times_init(&estimate);
  442. circuit_build_times_init(&final);
  443. memset(&state, 0, sizeof(or_state_t));
  444. circuitbuild_running_unit_tests();
  445. #define timeout0 (build_time_t)(30*1000.0)
  446. initial.Xm = 3000;
  447. circuit_build_times_initial_alpha(&initial,
  448. CBT_DEFAULT_QUANTILE_CUTOFF/100.0,
  449. timeout0);
  450. close_ms = MAX(circuit_build_times_calculate_timeout(&initial,
  451. CBT_DEFAULT_CLOSE_QUANTILE/100.0),
  452. CBT_DEFAULT_TIMEOUT_INITIAL_VALUE);
  453. do {
  454. for (i=0; i < CBT_DEFAULT_MIN_CIRCUITS_TO_OBSERVE; i++) {
  455. build_time_t sample = circuit_build_times_generate_sample(&initial,0,1);
  456. if (sample > close_ms) {
  457. circuit_build_times_add_time(&estimate, CBT_BUILD_ABANDONED);
  458. } else {
  459. circuit_build_times_add_time(&estimate, sample);
  460. }
  461. }
  462. circuit_build_times_update_alpha(&estimate);
  463. timeout1 = circuit_build_times_calculate_timeout(&estimate,
  464. CBT_DEFAULT_QUANTILE_CUTOFF/100.0);
  465. circuit_build_times_set_timeout(&estimate);
  466. log_notice(LD_CIRC, "Timeout1 is %lf, Xm is %d", timeout1, estimate.Xm);
  467. /* 2% error */
  468. } while (fabs(circuit_build_times_cdf(&initial, timeout0) -
  469. circuit_build_times_cdf(&initial, timeout1)) > 0.02);
  470. test_assert(estimate.total_build_times <= CBT_NCIRCUITS_TO_OBSERVE);
  471. circuit_build_times_update_state(&estimate, &state);
  472. test_assert(circuit_build_times_parse_state(&final, &state) == 0);
  473. circuit_build_times_update_alpha(&final);
  474. timeout2 = circuit_build_times_calculate_timeout(&final,
  475. CBT_DEFAULT_QUANTILE_CUTOFF/100.0);
  476. circuit_build_times_set_timeout(&final);
  477. log_notice(LD_CIRC, "Timeout2 is %lf, Xm is %d", timeout2, final.Xm);
  478. /* 5% here because some accuracy is lost due to histogram conversion */
  479. test_assert(fabs(circuit_build_times_cdf(&initial, timeout0) -
  480. circuit_build_times_cdf(&initial, timeout2)) < 0.05);
  481. for (runs = 0; runs < 50; runs++) {
  482. int build_times_idx = 0;
  483. int total_build_times = 0;
  484. final.close_ms = final.timeout_ms = CBT_DEFAULT_TIMEOUT_INITIAL_VALUE;
  485. estimate.close_ms = estimate.timeout_ms
  486. = CBT_DEFAULT_TIMEOUT_INITIAL_VALUE;
  487. for (i = 0; i < CBT_DEFAULT_RECENT_CIRCUITS*2; i++) {
  488. circuit_build_times_network_circ_success(&estimate);
  489. circuit_build_times_add_time(&estimate,
  490. circuit_build_times_generate_sample(&estimate, 0,
  491. CBT_DEFAULT_QUANTILE_CUTOFF/100.0));
  492. circuit_build_times_network_circ_success(&estimate);
  493. circuit_build_times_add_time(&final,
  494. circuit_build_times_generate_sample(&final, 0,
  495. CBT_DEFAULT_QUANTILE_CUTOFF/100.0));
  496. }
  497. test_assert(!circuit_build_times_network_check_changed(&estimate));
  498. test_assert(!circuit_build_times_network_check_changed(&final));
  499. /* Reset liveness to be non-live */
  500. final.liveness.network_last_live = 0;
  501. estimate.liveness.network_last_live = 0;
  502. build_times_idx = estimate.build_times_idx;
  503. total_build_times = estimate.total_build_times;
  504. for (i = 0; i < CBT_NETWORK_NONLIVE_TIMEOUT_COUNT; i++) {
  505. test_assert(circuit_build_times_network_check_live(&estimate));
  506. test_assert(circuit_build_times_network_check_live(&final));
  507. circuit_build_times_count_close(&estimate, 0,
  508. (time_t)(approx_time()-estimate.close_ms/1000.0-1));
  509. circuit_build_times_count_close(&final, 0,
  510. (time_t)(approx_time()-final.close_ms/1000.0-1));
  511. }
  512. test_assert(!circuit_build_times_network_check_live(&estimate));
  513. test_assert(!circuit_build_times_network_check_live(&final));
  514. for ( ; i < CBT_NETWORK_NONLIVE_DISCARD_COUNT; i++) {
  515. circuit_build_times_count_close(&estimate, 0,
  516. (time_t)(approx_time()-estimate.close_ms/1000.0-1));
  517. if (i < CBT_NETWORK_NONLIVE_DISCARD_COUNT-1) {
  518. circuit_build_times_count_close(&final, 0,
  519. (time_t)(approx_time()-final.close_ms/1000.0-1));
  520. }
  521. }
  522. test_assert(!circuit_build_times_network_check_live(&estimate));
  523. test_assert(!circuit_build_times_network_check_live(&final));
  524. log_info(LD_CIRC, "idx: %d %d, tot: %d %d",
  525. build_times_idx, estimate.build_times_idx,
  526. total_build_times, estimate.total_build_times);
  527. /* Check rollback index. Should match top of loop. */
  528. test_assert(build_times_idx == estimate.build_times_idx);
  529. // This can fail if estimate.total_build_times == 1000, because
  530. // in that case, rewind actually causes us to lose timeouts
  531. if (total_build_times != CBT_NCIRCUITS_TO_OBSERVE)
  532. test_assert(total_build_times == estimate.total_build_times);
  533. /* Now simulate that the network has become live and we need
  534. * a change */
  535. circuit_build_times_network_is_live(&estimate);
  536. circuit_build_times_network_is_live(&final);
  537. for (i = 0; i < CBT_DEFAULT_MAX_RECENT_TIMEOUT_COUNT; i++) {
  538. circuit_build_times_count_timeout(&estimate, 1);
  539. if (i < CBT_DEFAULT_MAX_RECENT_TIMEOUT_COUNT-1) {
  540. circuit_build_times_count_timeout(&final, 1);
  541. }
  542. }
  543. test_assert(estimate.liveness.after_firsthop_idx == 0);
  544. test_assert(final.liveness.after_firsthop_idx ==
  545. CBT_DEFAULT_MAX_RECENT_TIMEOUT_COUNT-1);
  546. test_assert(circuit_build_times_network_check_live(&estimate));
  547. test_assert(circuit_build_times_network_check_live(&final));
  548. circuit_build_times_count_timeout(&final, 1);
  549. }
  550. done:
  551. return;
  552. }
  553. /** Helper: Parse the exit policy string in <b>policy_str</b>, and make sure
  554. * that policies_summarize() produces the string <b>expected_summary</b> from
  555. * it. */
  556. static void
  557. test_policy_summary_helper(const char *policy_str,
  558. const char *expected_summary)
  559. {
  560. config_line_t line;
  561. smartlist_t *policy = smartlist_create();
  562. char *summary = NULL;
  563. int r;
  564. line.key = (char*)"foo";
  565. line.value = (char *)policy_str;
  566. line.next = NULL;
  567. r = policies_parse_exit_policy(&line, &policy, 0, NULL, 1);
  568. test_eq(r, 0);
  569. summary = policy_summarize(policy);
  570. test_assert(summary != NULL);
  571. test_streq(summary, expected_summary);
  572. done:
  573. tor_free(summary);
  574. if (policy)
  575. addr_policy_list_free(policy);
  576. }
  577. /** Run unit tests for generating summary lines of exit policies */
  578. static void
  579. test_policies(void)
  580. {
  581. int i;
  582. smartlist_t *policy = NULL, *policy2 = NULL, *policy3 = NULL,
  583. *policy4 = NULL, *policy5 = NULL, *policy6 = NULL,
  584. *policy7 = NULL;
  585. addr_policy_t *p;
  586. tor_addr_t tar;
  587. config_line_t line;
  588. smartlist_t *sm = NULL;
  589. char *policy_str = NULL;
  590. policy = smartlist_create();
  591. p = router_parse_addr_policy_item_from_string("reject 192.168.0.0/16:*",-1);
  592. test_assert(p != NULL);
  593. test_eq(ADDR_POLICY_REJECT, p->policy_type);
  594. tor_addr_from_ipv4h(&tar, 0xc0a80000u);
  595. test_eq(0, tor_addr_compare(&p->addr, &tar, CMP_EXACT));
  596. test_eq(16, p->maskbits);
  597. test_eq(1, p->prt_min);
  598. test_eq(65535, p->prt_max);
  599. smartlist_add(policy, p);
  600. test_assert(ADDR_POLICY_ACCEPTED ==
  601. compare_addr_to_addr_policy(0x01020304u, 2, policy));
  602. test_assert(ADDR_POLICY_PROBABLY_ACCEPTED ==
  603. compare_addr_to_addr_policy(0, 2, policy));
  604. test_assert(ADDR_POLICY_REJECTED ==
  605. compare_addr_to_addr_policy(0xc0a80102, 2, policy));
  606. test_assert(0 == policies_parse_exit_policy(NULL, &policy2, 1, NULL, 1));
  607. test_assert(policy2);
  608. policy3 = smartlist_create();
  609. p = router_parse_addr_policy_item_from_string("reject *:*",-1);
  610. test_assert(p != NULL);
  611. smartlist_add(policy3, p);
  612. p = router_parse_addr_policy_item_from_string("accept *:*",-1);
  613. test_assert(p != NULL);
  614. smartlist_add(policy3, p);
  615. policy4 = smartlist_create();
  616. p = router_parse_addr_policy_item_from_string("accept *:443",-1);
  617. test_assert(p != NULL);
  618. smartlist_add(policy4, p);
  619. p = router_parse_addr_policy_item_from_string("accept *:443",-1);
  620. test_assert(p != NULL);
  621. smartlist_add(policy4, p);
  622. policy5 = smartlist_create();
  623. p = router_parse_addr_policy_item_from_string("reject 0.0.0.0/8:*",-1);
  624. test_assert(p != NULL);
  625. smartlist_add(policy5, p);
  626. p = router_parse_addr_policy_item_from_string("reject 169.254.0.0/16:*",-1);
  627. test_assert(p != NULL);
  628. smartlist_add(policy5, p);
  629. p = router_parse_addr_policy_item_from_string("reject 127.0.0.0/8:*",-1);
  630. test_assert(p != NULL);
  631. smartlist_add(policy5, p);
  632. p = router_parse_addr_policy_item_from_string("reject 192.168.0.0/16:*",-1);
  633. test_assert(p != NULL);
  634. smartlist_add(policy5, p);
  635. p = router_parse_addr_policy_item_from_string("reject 10.0.0.0/8:*",-1);
  636. test_assert(p != NULL);
  637. smartlist_add(policy5, p);
  638. p = router_parse_addr_policy_item_from_string("reject 172.16.0.0/12:*",-1);
  639. test_assert(p != NULL);
  640. smartlist_add(policy5, p);
  641. p = router_parse_addr_policy_item_from_string("reject 80.190.250.90:*",-1);
  642. test_assert(p != NULL);
  643. smartlist_add(policy5, p);
  644. p = router_parse_addr_policy_item_from_string("reject *:1-65534",-1);
  645. test_assert(p != NULL);
  646. smartlist_add(policy5, p);
  647. p = router_parse_addr_policy_item_from_string("reject *:65535",-1);
  648. test_assert(p != NULL);
  649. smartlist_add(policy5, p);
  650. p = router_parse_addr_policy_item_from_string("accept *:1-65535",-1);
  651. test_assert(p != NULL);
  652. smartlist_add(policy5, p);
  653. policy6 = smartlist_create();
  654. p = router_parse_addr_policy_item_from_string("accept 43.3.0.0/9:*",-1);
  655. test_assert(p != NULL);
  656. smartlist_add(policy6, p);
  657. policy7 = smartlist_create();
  658. p = router_parse_addr_policy_item_from_string("accept 0.0.0.0/8:*",-1);
  659. test_assert(p != NULL);
  660. smartlist_add(policy7, p);
  661. test_assert(!exit_policy_is_general_exit(policy));
  662. test_assert(exit_policy_is_general_exit(policy2));
  663. test_assert(!exit_policy_is_general_exit(NULL));
  664. test_assert(!exit_policy_is_general_exit(policy3));
  665. test_assert(!exit_policy_is_general_exit(policy4));
  666. test_assert(!exit_policy_is_general_exit(policy5));
  667. test_assert(!exit_policy_is_general_exit(policy6));
  668. test_assert(!exit_policy_is_general_exit(policy7));
  669. test_assert(cmp_addr_policies(policy, policy2));
  670. test_assert(cmp_addr_policies(policy, NULL));
  671. test_assert(!cmp_addr_policies(policy2, policy2));
  672. test_assert(!cmp_addr_policies(NULL, NULL));
  673. test_assert(!policy_is_reject_star(policy2));
  674. test_assert(policy_is_reject_star(policy));
  675. test_assert(policy_is_reject_star(NULL));
  676. addr_policy_list_free(policy);
  677. policy = NULL;
  678. /* make sure compacting logic works. */
  679. policy = NULL;
  680. line.key = (char*)"foo";
  681. line.value = (char*)"accept *:80,reject private:*,reject *:*";
  682. line.next = NULL;
  683. test_assert(0 == policies_parse_exit_policy(&line, &policy, 0, NULL, 1));
  684. test_assert(policy);
  685. //test_streq(policy->string, "accept *:80");
  686. //test_streq(policy->next->string, "reject *:*");
  687. test_eq(smartlist_len(policy), 2);
  688. /* test policy summaries */
  689. /* check if we properly ignore private IP addresses */
  690. test_policy_summary_helper("reject 192.168.0.0/16:*,"
  691. "reject 0.0.0.0/8:*,"
  692. "reject 10.0.0.0/8:*,"
  693. "accept *:10-30,"
  694. "accept *:90,"
  695. "reject *:*",
  696. "accept 10-30,90");
  697. /* check all accept policies, and proper counting of rejects */
  698. test_policy_summary_helper("reject 11.0.0.0/9:80,"
  699. "reject 12.0.0.0/9:80,"
  700. "reject 13.0.0.0/9:80,"
  701. "reject 14.0.0.0/9:80,"
  702. "accept *:*", "accept 1-65535");
  703. test_policy_summary_helper("reject 11.0.0.0/9:80,"
  704. "reject 12.0.0.0/9:80,"
  705. "reject 13.0.0.0/9:80,"
  706. "reject 14.0.0.0/9:80,"
  707. "reject 15.0.0.0:81,"
  708. "accept *:*", "accept 1-65535");
  709. test_policy_summary_helper("reject 11.0.0.0/9:80,"
  710. "reject 12.0.0.0/9:80,"
  711. "reject 13.0.0.0/9:80,"
  712. "reject 14.0.0.0/9:80,"
  713. "reject 15.0.0.0:80,"
  714. "accept *:*",
  715. "reject 80");
  716. /* no exits */
  717. test_policy_summary_helper("accept 11.0.0.0/9:80,"
  718. "reject *:*",
  719. "reject 1-65535");
  720. /* port merging */
  721. test_policy_summary_helper("accept *:80,"
  722. "accept *:81,"
  723. "accept *:100-110,"
  724. "accept *:111,"
  725. "reject *:*",
  726. "accept 80-81,100-111");
  727. /* border ports */
  728. test_policy_summary_helper("accept *:1,"
  729. "accept *:3,"
  730. "accept *:65535,"
  731. "reject *:*",
  732. "accept 1,3,65535");
  733. /* holes */
  734. test_policy_summary_helper("accept *:1,"
  735. "accept *:3,"
  736. "accept *:5,"
  737. "accept *:7,"
  738. "reject *:*",
  739. "accept 1,3,5,7");
  740. test_policy_summary_helper("reject *:1,"
  741. "reject *:3,"
  742. "reject *:5,"
  743. "reject *:7,"
  744. "accept *:*",
  745. "reject 1,3,5,7");
  746. /* truncation ports */
  747. sm = smartlist_create();
  748. for (i=1; i<2000; i+=2) {
  749. char buf[POLICY_BUF_LEN];
  750. tor_snprintf(buf, sizeof(buf), "reject *:%d", i);
  751. smartlist_add(sm, tor_strdup(buf));
  752. }
  753. smartlist_add(sm, tor_strdup("accept *:*"));
  754. policy_str = smartlist_join_strings(sm, ",", 0, NULL);
  755. test_policy_summary_helper( policy_str,
  756. "accept 2,4,6,8,10,12,14,16,18,20,22,24,26,28,30,32,34,36,38,40,42,44,"
  757. "46,48,50,52,54,56,58,60,62,64,66,68,70,72,74,76,78,80,82,84,86,88,90,"
  758. "92,94,96,98,100,102,104,106,108,110,112,114,116,118,120,122,124,126,128,"
  759. "130,132,134,136,138,140,142,144,146,148,150,152,154,156,158,160,162,164,"
  760. "166,168,170,172,174,176,178,180,182,184,186,188,190,192,194,196,198,200,"
  761. "202,204,206,208,210,212,214,216,218,220,222,224,226,228,230,232,234,236,"
  762. "238,240,242,244,246,248,250,252,254,256,258,260,262,264,266,268,270,272,"
  763. "274,276,278,280,282,284,286,288,290,292,294,296,298,300,302,304,306,308,"
  764. "310,312,314,316,318,320,322,324,326,328,330,332,334,336,338,340,342,344,"
  765. "346,348,350,352,354,356,358,360,362,364,366,368,370,372,374,376,378,380,"
  766. "382,384,386,388,390,392,394,396,398,400,402,404,406,408,410,412,414,416,"
  767. "418,420,422,424,426,428,430,432,434,436,438,440,442,444,446,448,450,452,"
  768. "454,456,458,460,462,464,466,468,470,472,474,476,478,480,482,484,486,488,"
  769. "490,492,494,496,498,500,502,504,506,508,510,512,514,516,518,520,522");
  770. done:
  771. addr_policy_list_free(policy);
  772. addr_policy_list_free(policy2);
  773. addr_policy_list_free(policy3);
  774. addr_policy_list_free(policy4);
  775. addr_policy_list_free(policy5);
  776. addr_policy_list_free(policy6);
  777. addr_policy_list_free(policy7);
  778. tor_free(policy_str);
  779. if (sm) {
  780. SMARTLIST_FOREACH(sm, char *, s, tor_free(s));
  781. smartlist_free(sm);
  782. }
  783. }
  784. /** Run AES performance benchmarks. */
  785. static void
  786. bench_aes(void)
  787. {
  788. int len, i;
  789. char *b1, *b2;
  790. crypto_cipher_env_t *c;
  791. struct timeval start, end;
  792. const int iters = 100000;
  793. uint64_t nsec;
  794. c = crypto_new_cipher_env();
  795. crypto_cipher_generate_key(c);
  796. crypto_cipher_encrypt_init_cipher(c);
  797. for (len = 1; len <= 8192; len *= 2) {
  798. b1 = tor_malloc_zero(len);
  799. b2 = tor_malloc_zero(len);
  800. tor_gettimeofday(&start);
  801. for (i = 0; i < iters; ++i) {
  802. crypto_cipher_encrypt(c, b1, b2, len);
  803. }
  804. tor_gettimeofday(&end);
  805. tor_free(b1);
  806. tor_free(b2);
  807. nsec = (uint64_t) tv_udiff(&start,&end);
  808. nsec *= 1000;
  809. nsec /= (iters*len);
  810. printf("%d bytes: "U64_FORMAT" nsec per byte\n", len,
  811. U64_PRINTF_ARG(nsec));
  812. }
  813. crypto_free_cipher_env(c);
  814. }
  815. /** Run digestmap_t performance benchmarks. */
  816. static void
  817. bench_dmap(void)
  818. {
  819. smartlist_t *sl = smartlist_create();
  820. smartlist_t *sl2 = smartlist_create();
  821. struct timeval start, end, pt2, pt3, pt4;
  822. const int iters = 10000;
  823. const int elts = 4000;
  824. const int fpostests = 1000000;
  825. char d[20];
  826. int i,n=0, fp = 0;
  827. digestmap_t *dm = digestmap_new();
  828. digestset_t *ds = digestset_new(elts);
  829. for (i = 0; i < elts; ++i) {
  830. crypto_rand(d, 20);
  831. smartlist_add(sl, tor_memdup(d, 20));
  832. }
  833. for (i = 0; i < elts; ++i) {
  834. crypto_rand(d, 20);
  835. smartlist_add(sl2, tor_memdup(d, 20));
  836. }
  837. printf("nbits=%d\n", ds->mask+1);
  838. tor_gettimeofday(&start);
  839. for (i = 0; i < iters; ++i) {
  840. SMARTLIST_FOREACH(sl, const char *, cp, digestmap_set(dm, cp, (void*)1));
  841. }
  842. tor_gettimeofday(&pt2);
  843. for (i = 0; i < iters; ++i) {
  844. SMARTLIST_FOREACH(sl, const char *, cp, digestmap_get(dm, cp));
  845. SMARTLIST_FOREACH(sl2, const char *, cp, digestmap_get(dm, cp));
  846. }
  847. tor_gettimeofday(&pt3);
  848. for (i = 0; i < iters; ++i) {
  849. SMARTLIST_FOREACH(sl, const char *, cp, digestset_add(ds, cp));
  850. }
  851. tor_gettimeofday(&pt4);
  852. for (i = 0; i < iters; ++i) {
  853. SMARTLIST_FOREACH(sl, const char *, cp, n += digestset_isin(ds, cp));
  854. SMARTLIST_FOREACH(sl2, const char *, cp, n += digestset_isin(ds, cp));
  855. }
  856. tor_gettimeofday(&end);
  857. for (i = 0; i < fpostests; ++i) {
  858. crypto_rand(d, 20);
  859. if (digestset_isin(ds, d)) ++fp;
  860. }
  861. printf("%ld\n",(unsigned long)tv_udiff(&start, &pt2));
  862. printf("%ld\n",(unsigned long)tv_udiff(&pt2, &pt3));
  863. printf("%ld\n",(unsigned long)tv_udiff(&pt3, &pt4));
  864. printf("%ld\n",(unsigned long)tv_udiff(&pt4, &end));
  865. printf("-- %d\n", n);
  866. printf("++ %f\n", fp/(double)fpostests);
  867. digestmap_free(dm, NULL);
  868. digestset_free(ds);
  869. SMARTLIST_FOREACH(sl, char *, cp, tor_free(cp));
  870. SMARTLIST_FOREACH(sl2, char *, cp, tor_free(cp));
  871. smartlist_free(sl);
  872. smartlist_free(sl2);
  873. }
  874. /** Test encoding and parsing of rendezvous service descriptors. */
  875. static void
  876. test_rend_fns(void)
  877. {
  878. rend_service_descriptor_t *generated = NULL, *parsed = NULL;
  879. char service_id[DIGEST_LEN];
  880. char service_id_base32[REND_SERVICE_ID_LEN_BASE32+1];
  881. const char *next_desc;
  882. smartlist_t *descs = smartlist_create();
  883. char computed_desc_id[DIGEST_LEN];
  884. char parsed_desc_id[DIGEST_LEN];
  885. crypto_pk_env_t *pk1 = NULL, *pk2 = NULL;
  886. time_t now;
  887. char *intro_points_encrypted = NULL;
  888. size_t intro_points_size;
  889. size_t encoded_size;
  890. int i;
  891. char address1[] = "fooaddress.onion";
  892. char address2[] = "aaaaaaaaaaaaaaaa.onion";
  893. char address3[] = "fooaddress.exit";
  894. char address4[] = "www.torproject.org";
  895. test_assert(BAD_HOSTNAME == parse_extended_hostname(address1, 1));
  896. test_assert(ONION_HOSTNAME == parse_extended_hostname(address2, 1));
  897. test_assert(EXIT_HOSTNAME == parse_extended_hostname(address3, 1));
  898. test_assert(NORMAL_HOSTNAME == parse_extended_hostname(address4, 1));
  899. pk1 = pk_generate(0);
  900. pk2 = pk_generate(1);
  901. generated = tor_malloc_zero(sizeof(rend_service_descriptor_t));
  902. generated->pk = crypto_pk_dup_key(pk1);
  903. crypto_pk_get_digest(generated->pk, service_id);
  904. base32_encode(service_id_base32, REND_SERVICE_ID_LEN_BASE32+1,
  905. service_id, REND_SERVICE_ID_LEN);
  906. now = time(NULL);
  907. generated->timestamp = now;
  908. generated->version = 2;
  909. generated->protocols = 42;
  910. generated->intro_nodes = smartlist_create();
  911. for (i = 0; i < 3; i++) {
  912. rend_intro_point_t *intro = tor_malloc_zero(sizeof(rend_intro_point_t));
  913. crypto_pk_env_t *okey = pk_generate(2 + i);
  914. intro->extend_info = tor_malloc_zero(sizeof(extend_info_t));
  915. intro->extend_info->onion_key = okey;
  916. crypto_pk_get_digest(intro->extend_info->onion_key,
  917. intro->extend_info->identity_digest);
  918. //crypto_rand(info->identity_digest, DIGEST_LEN); /* Would this work? */
  919. intro->extend_info->nickname[0] = '$';
  920. base16_encode(intro->extend_info->nickname + 1,
  921. sizeof(intro->extend_info->nickname) - 1,
  922. intro->extend_info->identity_digest, DIGEST_LEN);
  923. /* Does not cover all IP addresses. */
  924. tor_addr_from_ipv4h(&intro->extend_info->addr, crypto_rand_int(65536));
  925. intro->extend_info->port = 1 + crypto_rand_int(65535);
  926. intro->intro_key = crypto_pk_dup_key(pk2);
  927. smartlist_add(generated->intro_nodes, intro);
  928. }
  929. test_assert(rend_encode_v2_descriptors(descs, generated, now, 0,
  930. REND_NO_AUTH, NULL, NULL) > 0);
  931. test_assert(rend_compute_v2_desc_id(computed_desc_id, service_id_base32,
  932. NULL, now, 0) == 0);
  933. test_memeq(((rend_encoded_v2_service_descriptor_t *)
  934. smartlist_get(descs, 0))->desc_id, computed_desc_id, DIGEST_LEN);
  935. test_assert(rend_parse_v2_service_descriptor(&parsed, parsed_desc_id,
  936. &intro_points_encrypted,
  937. &intro_points_size,
  938. &encoded_size,
  939. &next_desc,
  940. ((rend_encoded_v2_service_descriptor_t *)
  941. smartlist_get(descs, 0))->desc_str) == 0);
  942. test_assert(parsed);
  943. test_memeq(((rend_encoded_v2_service_descriptor_t *)
  944. smartlist_get(descs, 0))->desc_id, parsed_desc_id, DIGEST_LEN);
  945. test_eq(rend_parse_introduction_points(parsed, intro_points_encrypted,
  946. intro_points_size), 3);
  947. test_assert(!crypto_pk_cmp_keys(generated->pk, parsed->pk));
  948. test_eq(parsed->timestamp, now);
  949. test_eq(parsed->version, 2);
  950. test_eq(parsed->protocols, 42);
  951. test_eq(smartlist_len(parsed->intro_nodes), 3);
  952. for (i = 0; i < smartlist_len(parsed->intro_nodes); i++) {
  953. rend_intro_point_t *par_intro = smartlist_get(parsed->intro_nodes, i),
  954. *gen_intro = smartlist_get(generated->intro_nodes, i);
  955. extend_info_t *par_info = par_intro->extend_info;
  956. extend_info_t *gen_info = gen_intro->extend_info;
  957. test_assert(!crypto_pk_cmp_keys(gen_info->onion_key, par_info->onion_key));
  958. test_memeq(gen_info->identity_digest, par_info->identity_digest,
  959. DIGEST_LEN);
  960. test_streq(gen_info->nickname, par_info->nickname);
  961. test_assert(tor_addr_eq(&gen_info->addr, &par_info->addr));
  962. test_eq(gen_info->port, par_info->port);
  963. }
  964. rend_service_descriptor_free(parsed);
  965. rend_service_descriptor_free(generated);
  966. parsed = generated = NULL;
  967. done:
  968. if (descs) {
  969. for (i = 0; i < smartlist_len(descs); i++)
  970. rend_encoded_v2_service_descriptor_free(smartlist_get(descs, i));
  971. smartlist_free(descs);
  972. }
  973. if (parsed)
  974. rend_service_descriptor_free(parsed);
  975. if (generated)
  976. rend_service_descriptor_free(generated);
  977. if (pk1)
  978. crypto_free_pk_env(pk1);
  979. if (pk2)
  980. crypto_free_pk_env(pk2);
  981. tor_free(intro_points_encrypted);
  982. }
  983. /** Run unit tests for GeoIP code. */
  984. static void
  985. test_geoip(void)
  986. {
  987. int i, j;
  988. time_t now = time(NULL);
  989. char *s = NULL;
  990. /* Populate the DB a bit. Add these in order, since we can't do the final
  991. * 'sort' step. These aren't very good IP addresses, but they're perfectly
  992. * fine uint32_t values. */
  993. test_eq(0, geoip_parse_entry("10,50,AB"));
  994. test_eq(0, geoip_parse_entry("52,90,XY"));
  995. test_eq(0, geoip_parse_entry("95,100,AB"));
  996. test_eq(0, geoip_parse_entry("\"105\",\"140\",\"ZZ\""));
  997. test_eq(0, geoip_parse_entry("\"150\",\"190\",\"XY\""));
  998. test_eq(0, geoip_parse_entry("\"200\",\"250\",\"AB\""));
  999. /* We should have 4 countries: ??, ab, xy, zz. */
  1000. test_eq(4, geoip_get_n_countries());
  1001. /* Make sure that country ID actually works. */
  1002. #define NAMEFOR(x) geoip_get_country_name(geoip_get_country_by_ip(x))
  1003. test_streq("??", NAMEFOR(3));
  1004. test_eq(0, geoip_get_country_by_ip(3));
  1005. test_streq("ab", NAMEFOR(32));
  1006. test_streq("??", NAMEFOR(5));
  1007. test_streq("??", NAMEFOR(51));
  1008. test_streq("xy", NAMEFOR(150));
  1009. test_streq("xy", NAMEFOR(190));
  1010. test_streq("??", NAMEFOR(2000));
  1011. #undef NAMEFOR
  1012. get_options()->BridgeRelay = 1;
  1013. get_options()->BridgeRecordUsageByCountry = 1;
  1014. /* Put 9 observations in AB... */
  1015. for (i=32; i < 40; ++i)
  1016. geoip_note_client_seen(GEOIP_CLIENT_CONNECT, i, now-7200);
  1017. geoip_note_client_seen(GEOIP_CLIENT_CONNECT, 225, now-7200);
  1018. /* and 3 observations in XY, several times. */
  1019. for (j=0; j < 10; ++j)
  1020. for (i=52; i < 55; ++i)
  1021. geoip_note_client_seen(GEOIP_CLIENT_CONNECT, i, now-3600);
  1022. /* and 17 observations in ZZ... */
  1023. for (i=110; i < 127; ++i)
  1024. geoip_note_client_seen(GEOIP_CLIENT_CONNECT, i, now);
  1025. s = geoip_get_client_history(GEOIP_CLIENT_CONNECT);
  1026. test_assert(s);
  1027. test_streq("zz=24,ab=16,xy=8", s);
  1028. tor_free(s);
  1029. /* Now clear out all the AB observations. */
  1030. geoip_remove_old_clients(now-6000);
  1031. s = geoip_get_client_history(GEOIP_CLIENT_CONNECT);
  1032. test_assert(s);
  1033. test_streq("zz=24,xy=8", s);
  1034. done:
  1035. tor_free(s);
  1036. }
  1037. /** Run unit tests for stats code. */
  1038. static void
  1039. test_stats(void)
  1040. {
  1041. time_t now = 1281533250; /* 2010-08-11 13:27:30 UTC */
  1042. char *s = NULL;
  1043. /* We shouldn't collect exit stats without initializing them. */
  1044. rep_hist_note_exit_stream_opened(80);
  1045. rep_hist_note_exit_bytes(80, 100, 10000);
  1046. s = rep_hist_format_exit_stats(now + 86400);
  1047. test_assert(!s);
  1048. /* Initialize stats, note some streams and bytes, and generate history
  1049. * string. */
  1050. rep_hist_exit_stats_init(now);
  1051. rep_hist_note_exit_stream_opened(80);
  1052. rep_hist_note_exit_bytes(80, 100, 10000);
  1053. rep_hist_note_exit_stream_opened(443);
  1054. rep_hist_note_exit_bytes(443, 100, 10000);
  1055. rep_hist_note_exit_bytes(443, 100, 10000);
  1056. s = rep_hist_format_exit_stats(now + 86400);
  1057. test_streq("exit-stats-end 2010-08-12 13:27:30 (86400 s)\n"
  1058. "exit-kibibytes-written 80=1,443=1,other=0\n"
  1059. "exit-kibibytes-read 80=10,443=20,other=0\n"
  1060. "exit-streams-opened 80=4,443=4,other=0\n", s);
  1061. tor_free(s);
  1062. /* Stop collecting stats, add some bytes, and ensure we don't generate
  1063. * a history string. */
  1064. rep_hist_exit_stats_term();
  1065. rep_hist_note_exit_bytes(80, 100, 10000);
  1066. s = rep_hist_format_exit_stats(now + 86400);
  1067. test_assert(!s);
  1068. /* Re-start stats, add some bytes, reset stats, and see what history we
  1069. * get when observing no streams or bytes at all. */
  1070. rep_hist_exit_stats_init(now);
  1071. rep_hist_note_exit_stream_opened(80);
  1072. rep_hist_note_exit_bytes(80, 100, 10000);
  1073. rep_hist_reset_exit_stats(now);
  1074. s = rep_hist_format_exit_stats(now + 86400);
  1075. test_streq("exit-stats-end 2010-08-12 13:27:30 (86400 s)\n"
  1076. "exit-kibibytes-written other=0\n"
  1077. "exit-kibibytes-read other=0\n"
  1078. "exit-streams-opened other=0\n", s);
  1079. done:
  1080. tor_free(s);
  1081. }
  1082. static void *
  1083. legacy_test_setup(const struct testcase_t *testcase)
  1084. {
  1085. return testcase->setup_data;
  1086. }
  1087. void
  1088. legacy_test_helper(void *data)
  1089. {
  1090. void (*fn)(void) = data;
  1091. fn();
  1092. }
  1093. static int
  1094. legacy_test_cleanup(const struct testcase_t *testcase, void *ptr)
  1095. {
  1096. (void)ptr;
  1097. (void)testcase;
  1098. return 1;
  1099. }
  1100. const struct testcase_setup_t legacy_setup = {
  1101. legacy_test_setup, legacy_test_cleanup
  1102. };
  1103. #define ENT(name) \
  1104. { #name, legacy_test_helper, 0, &legacy_setup, test_ ## name }
  1105. #define SUBENT(group, name) \
  1106. { #group "_" #name, legacy_test_helper, 0, &legacy_setup, \
  1107. test_ ## group ## _ ## name }
  1108. #define DISABLED(name) \
  1109. { #name, legacy_test_helper, TT_SKIP, &legacy_setup, name }
  1110. #define FORK(name) \
  1111. { #name, legacy_test_helper, TT_FORK, &legacy_setup, test_ ## name }
  1112. static struct testcase_t test_array[] = {
  1113. ENT(buffers),
  1114. ENT(onion_handshake),
  1115. ENT(circuit_timeout),
  1116. ENT(policies),
  1117. ENT(rend_fns),
  1118. ENT(geoip),
  1119. FORK(stats),
  1120. DISABLED(bench_aes),
  1121. DISABLED(bench_dmap),
  1122. END_OF_TESTCASES
  1123. };
  1124. extern struct testcase_t addr_tests[];
  1125. extern struct testcase_t crypto_tests[];
  1126. extern struct testcase_t container_tests[];
  1127. extern struct testcase_t util_tests[];
  1128. extern struct testcase_t dir_tests[];
  1129. static struct testgroup_t testgroups[] = {
  1130. { "", test_array },
  1131. { "addr/", addr_tests },
  1132. { "crypto/", crypto_tests },
  1133. { "container/", container_tests },
  1134. { "util/", util_tests },
  1135. { "dir/", dir_tests },
  1136. END_OF_GROUPS
  1137. };
  1138. /** Main entry point for unit test code: parse the command line, and run
  1139. * some unit tests. */
  1140. int
  1141. main(int c, const char **v)
  1142. {
  1143. or_options_t *options;
  1144. char *errmsg = NULL;
  1145. int i, i_out;
  1146. int loglevel = LOG_ERR;
  1147. #ifdef USE_DMALLOC
  1148. {
  1149. int r = CRYPTO_set_mem_ex_functions(_tor_malloc, _tor_realloc, _tor_free);
  1150. tor_assert(r);
  1151. }
  1152. #endif
  1153. update_approx_time(time(NULL));
  1154. options = options_new();
  1155. tor_threads_init();
  1156. init_logging();
  1157. for (i_out = i = 1; i < c; ++i) {
  1158. if (!strcmp(v[i], "--warn")) {
  1159. loglevel = LOG_WARN;
  1160. } else if (!strcmp(v[i], "--notice")) {
  1161. loglevel = LOG_NOTICE;
  1162. } else if (!strcmp(v[i], "--info")) {
  1163. loglevel = LOG_INFO;
  1164. } else if (!strcmp(v[i], "--debug")) {
  1165. loglevel = LOG_DEBUG;
  1166. } else {
  1167. v[i_out++] = v[i];
  1168. }
  1169. }
  1170. c = i_out;
  1171. {
  1172. log_severity_list_t s;
  1173. memset(&s, 0, sizeof(s));
  1174. set_log_severity_config(loglevel, LOG_ERR, &s);
  1175. add_stream_log(&s, "", fileno(stdout));
  1176. }
  1177. options->command = CMD_RUN_UNITTESTS;
  1178. crypto_global_init(0, NULL, NULL);
  1179. rep_hist_init();
  1180. network_init();
  1181. setup_directory();
  1182. options_init(options);
  1183. options->DataDirectory = tor_strdup(temp_dir);
  1184. options->EntryStatistics = 1;
  1185. if (set_options(options, &errmsg) < 0) {
  1186. printf("Failed to set initial options: %s\n", errmsg);
  1187. tor_free(errmsg);
  1188. return 1;
  1189. }
  1190. crypto_seed_rng(1);
  1191. atexit(remove_directory);
  1192. have_failed = (tinytest_main(c, v, testgroups) != 0);
  1193. free_pregenerated_keys();
  1194. #ifdef USE_DMALLOC
  1195. tor_free_all(0);
  1196. dmalloc_log_unfreed();
  1197. #endif
  1198. if (have_failed)
  1199. return 1;
  1200. else
  1201. return 0;
  1202. }