test_addr.c 35 KB

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  1. /* Copyright (c) 2001-2004, Roger Dingledine.
  2. * Copyright (c) 2004-2006, Roger Dingledine, Nick Mathewson.
  3. * Copyright (c) 2007-2013, The Tor Project, Inc. */
  4. /* See LICENSE for licensing information */
  5. #define ADDRESSMAP_PRIVATE
  6. #include "orconfig.h"
  7. #include "or.h"
  8. #include "test.h"
  9. #include "addressmap.h"
  10. static void
  11. test_addr_basic(void)
  12. {
  13. uint32_t u32;
  14. uint16_t u16;
  15. char *cp;
  16. /* Test addr_port_lookup */
  17. cp = NULL; u32 = 3; u16 = 3;
  18. test_assert(!addr_port_lookup(LOG_WARN, "1.2.3.4", &cp, &u32, &u16));
  19. test_streq(cp, "1.2.3.4");
  20. test_eq(u32, 0x01020304u);
  21. test_eq(u16, 0);
  22. tor_free(cp);
  23. test_assert(!addr_port_lookup(LOG_WARN, "4.3.2.1:99", &cp, &u32, &u16));
  24. test_streq(cp, "4.3.2.1");
  25. test_eq(u32, 0x04030201u);
  26. test_eq(u16, 99);
  27. tor_free(cp);
  28. test_assert(!addr_port_lookup(LOG_WARN, "nonexistent.address:4040",
  29. &cp, NULL, &u16));
  30. test_streq(cp, "nonexistent.address");
  31. test_eq(u16, 4040);
  32. tor_free(cp);
  33. test_assert(!addr_port_lookup(LOG_WARN, "localhost:9999", &cp, &u32, &u16));
  34. test_streq(cp, "localhost");
  35. test_eq(u32, 0x7f000001u);
  36. test_eq(u16, 9999);
  37. tor_free(cp);
  38. u32 = 3;
  39. test_assert(!addr_port_lookup(LOG_WARN, "localhost", NULL, &u32, &u16));
  40. test_eq_ptr(cp, NULL);
  41. test_eq(u32, 0x7f000001u);
  42. test_eq(u16, 0);
  43. tor_free(cp);
  44. test_eq(0, addr_mask_get_bits(0x0u));
  45. test_eq(32, addr_mask_get_bits(0xFFFFFFFFu));
  46. test_eq(16, addr_mask_get_bits(0xFFFF0000u));
  47. test_eq(31, addr_mask_get_bits(0xFFFFFFFEu));
  48. test_eq(1, addr_mask_get_bits(0x80000000u));
  49. /* Test inet_ntop */
  50. {
  51. char tmpbuf[TOR_ADDR_BUF_LEN];
  52. const char *ip = "176.192.208.224";
  53. struct in_addr in;
  54. /* good round trip */
  55. test_eq(tor_inet_pton(AF_INET, ip, &in), 1);
  56. test_eq_ptr(tor_inet_ntop(AF_INET, &in, tmpbuf, sizeof(tmpbuf)), &tmpbuf);
  57. test_streq(tmpbuf, ip);
  58. /* just enough buffer length */
  59. test_streq(tor_inet_ntop(AF_INET, &in, tmpbuf, strlen(ip) + 1), ip);
  60. /* too short buffer */
  61. test_eq_ptr(tor_inet_ntop(AF_INET, &in, tmpbuf, strlen(ip)), NULL);
  62. }
  63. done:
  64. ;
  65. }
  66. #define test_op_ip6_(a,op,b,e1,e2) \
  67. STMT_BEGIN \
  68. tt_assert_test_fmt_type(a,b,e1" "#op" "e2,struct in6_addr*, \
  69. (memcmp(val1_->s6_addr, val2_->s6_addr, 16) op 0), \
  70. char *, "%s", \
  71. { int i; char *cp; \
  72. cp = print_ = tor_malloc(64); \
  73. for (i=0;i<16;++i) { \
  74. tor_snprintf(cp, 3,"%02x", (unsigned)value_->s6_addr[i]);\
  75. cp += 2; \
  76. if (i != 15) *cp++ = ':'; \
  77. } \
  78. }, \
  79. { tor_free(print_); }, \
  80. TT_EXIT_TEST_FUNCTION \
  81. ); \
  82. STMT_END
  83. /** Helper: Assert that two strings both decode as IPv6 addresses with
  84. * tor_inet_pton(), and both decode to the same address. */
  85. #define test_pton6_same(a,b) STMT_BEGIN \
  86. test_eq(tor_inet_pton(AF_INET6, a, &a1), 1); \
  87. test_eq(tor_inet_pton(AF_INET6, b, &a2), 1); \
  88. test_op_ip6_(&a1,==,&a2,#a,#b); \
  89. STMT_END
  90. /** Helper: Assert that <b>a</b> is recognized as a bad IPv6 address by
  91. * tor_inet_pton(). */
  92. #define test_pton6_bad(a) \
  93. test_eq(0, tor_inet_pton(AF_INET6, a, &a1))
  94. /** Helper: assert that <b>a</b>, when parsed by tor_inet_pton() and displayed
  95. * with tor_inet_ntop(), yields <b>b</b>. Also assert that <b>b</b> parses to
  96. * the same value as <b>a</b>. */
  97. #define test_ntop6_reduces(a,b) STMT_BEGIN \
  98. test_eq(tor_inet_pton(AF_INET6, a, &a1), 1); \
  99. test_streq(tor_inet_ntop(AF_INET6, &a1, buf, sizeof(buf)), b); \
  100. test_eq(tor_inet_pton(AF_INET6, b, &a2), 1); \
  101. test_op_ip6_(&a1, ==, &a2, a, b); \
  102. STMT_END
  103. /** Helper: assert that <b>a</b> parses by tor_inet_pton() into a address that
  104. * passes tor_addr_is_internal() with <b>for_listening</b>. */
  105. #define test_internal_ip(a,for_listening) STMT_BEGIN \
  106. test_eq(tor_inet_pton(AF_INET6, a, &t1.addr.in6_addr), 1); \
  107. t1.family = AF_INET6; \
  108. if (!tor_addr_is_internal(&t1, for_listening)) \
  109. test_fail_msg( a "was not internal."); \
  110. STMT_END
  111. /** Helper: assert that <b>a</b> parses by tor_inet_pton() into a address that
  112. * does not pass tor_addr_is_internal() with <b>for_listening</b>. */
  113. #define test_external_ip(a,for_listening) STMT_BEGIN \
  114. test_eq(tor_inet_pton(AF_INET6, a, &t1.addr.in6_addr), 1); \
  115. t1.family = AF_INET6; \
  116. if (tor_addr_is_internal(&t1, for_listening)) \
  117. test_fail_msg(a "was not external."); \
  118. STMT_END
  119. /** Helper: Assert that <b>a</b> and <b>b</b>, when parsed by
  120. * tor_inet_pton(), give addresses that compare in the order defined by
  121. * <b>op</b> with tor_addr_compare(). */
  122. #define test_addr_compare(a, op, b) STMT_BEGIN \
  123. test_eq(tor_inet_pton(AF_INET6, a, &t1.addr.in6_addr), 1); \
  124. test_eq(tor_inet_pton(AF_INET6, b, &t2.addr.in6_addr), 1); \
  125. t1.family = t2.family = AF_INET6; \
  126. r = tor_addr_compare(&t1,&t2,CMP_SEMANTIC); \
  127. if (!(r op 0)) \
  128. test_fail_msg("failed: tor_addr_compare("a","b") "#op" 0"); \
  129. STMT_END
  130. /** Helper: Assert that <b>a</b> and <b>b</b>, when parsed by
  131. * tor_inet_pton(), give addresses that compare in the order defined by
  132. * <b>op</b> with tor_addr_compare_masked() with <b>m</b> masked. */
  133. #define test_addr_compare_masked(a, op, b, m) STMT_BEGIN \
  134. test_eq(tor_inet_pton(AF_INET6, a, &t1.addr.in6_addr), 1); \
  135. test_eq(tor_inet_pton(AF_INET6, b, &t2.addr.in6_addr), 1); \
  136. t1.family = t2.family = AF_INET6; \
  137. r = tor_addr_compare_masked(&t1,&t2,m,CMP_SEMANTIC); \
  138. if (!(r op 0)) \
  139. test_fail_msg("failed: tor_addr_compare_masked("a","b","#m") "#op" 0"); \
  140. STMT_END
  141. /** Helper: assert that <b>xx</b> is parseable as a masked IPv6 address with
  142. * ports by tor_parse_mask_addr_ports(), with family <b>f</b>, IP address
  143. * as 4 32-bit words <b>ip1...ip4</b>, mask bits as <b>mm</b>, and port range
  144. * as <b>pt1..pt2</b>. */
  145. #define test_addr_mask_ports_parse(xx, f, ip1, ip2, ip3, ip4, mm, pt1, pt2) \
  146. STMT_BEGIN \
  147. test_eq(tor_addr_parse_mask_ports(xx, 0, &t1, &mask, &port1, &port2), \
  148. f); \
  149. p1=tor_inet_ntop(AF_INET6, &t1.addr.in6_addr, bug, sizeof(bug)); \
  150. test_eq(htonl(ip1), tor_addr_to_in6_addr32(&t1)[0]); \
  151. test_eq(htonl(ip2), tor_addr_to_in6_addr32(&t1)[1]); \
  152. test_eq(htonl(ip3), tor_addr_to_in6_addr32(&t1)[2]); \
  153. test_eq(htonl(ip4), tor_addr_to_in6_addr32(&t1)[3]); \
  154. test_eq(mask, mm); \
  155. test_eq(port1, pt1); \
  156. test_eq(port2, pt2); \
  157. STMT_END
  158. /** Run unit tests for IPv6 encoding/decoding/manipulation functions. */
  159. static void
  160. test_addr_ip6_helpers(void)
  161. {
  162. char buf[TOR_ADDR_BUF_LEN], bug[TOR_ADDR_BUF_LEN];
  163. char rbuf[REVERSE_LOOKUP_NAME_BUF_LEN];
  164. struct in6_addr a1, a2;
  165. tor_addr_t t1, t2;
  166. int r, i;
  167. uint16_t port1, port2;
  168. maskbits_t mask;
  169. const char *p1;
  170. struct sockaddr_storage sa_storage;
  171. struct sockaddr_in *sin;
  172. struct sockaddr_in6 *sin6;
  173. /* Test tor_inet_ntop and tor_inet_pton: IPv6 */
  174. {
  175. const char *ip = "2001::1234";
  176. const char *ip_ffff = "::ffff:192.168.1.2";
  177. /* good round trip */
  178. test_eq(tor_inet_pton(AF_INET6, ip, &a1), 1);
  179. test_eq_ptr(tor_inet_ntop(AF_INET6, &a1, buf, sizeof(buf)), &buf);
  180. test_streq(buf, ip);
  181. /* good round trip - ::ffff:0:0 style */
  182. test_eq(tor_inet_pton(AF_INET6, ip_ffff, &a2), 1);
  183. test_eq_ptr(tor_inet_ntop(AF_INET6, &a2, buf, sizeof(buf)), &buf);
  184. test_streq(buf, ip_ffff);
  185. /* just long enough buffer (remember \0) */
  186. test_streq(tor_inet_ntop(AF_INET6, &a1, buf, strlen(ip)+1), ip);
  187. test_streq(tor_inet_ntop(AF_INET6, &a2, buf, strlen(ip_ffff)+1),
  188. ip_ffff);
  189. /* too short buffer (remember \0) */
  190. test_eq_ptr(tor_inet_ntop(AF_INET6, &a1, buf, strlen(ip)), NULL);
  191. test_eq_ptr(tor_inet_ntop(AF_INET6, &a2, buf, strlen(ip_ffff)), NULL);
  192. }
  193. /* ==== Converting to and from sockaddr_t. */
  194. sin = (struct sockaddr_in *)&sa_storage;
  195. sin->sin_family = AF_INET;
  196. sin->sin_port = 9090;
  197. sin->sin_addr.s_addr = htonl(0x7f7f0102); /*127.127.1.2*/
  198. tor_addr_from_sockaddr(&t1, (struct sockaddr *)sin, NULL);
  199. test_eq(tor_addr_family(&t1), AF_INET);
  200. test_eq(tor_addr_to_ipv4h(&t1), 0x7f7f0102);
  201. memset(&sa_storage, 0, sizeof(sa_storage));
  202. test_eq(sizeof(struct sockaddr_in),
  203. tor_addr_to_sockaddr(&t1, 1234, (struct sockaddr *)&sa_storage,
  204. sizeof(sa_storage)));
  205. test_eq(1234, ntohs(sin->sin_port));
  206. test_eq(0x7f7f0102, ntohl(sin->sin_addr.s_addr));
  207. memset(&sa_storage, 0, sizeof(sa_storage));
  208. sin6 = (struct sockaddr_in6 *)&sa_storage;
  209. sin6->sin6_family = AF_INET6;
  210. sin6->sin6_port = htons(7070);
  211. sin6->sin6_addr.s6_addr[0] = 128;
  212. tor_addr_from_sockaddr(&t1, (struct sockaddr *)sin6, NULL);
  213. test_eq(tor_addr_family(&t1), AF_INET6);
  214. p1 = tor_addr_to_str(buf, &t1, sizeof(buf), 0);
  215. test_streq(p1, "8000::");
  216. memset(&sa_storage, 0, sizeof(sa_storage));
  217. test_eq(sizeof(struct sockaddr_in6),
  218. tor_addr_to_sockaddr(&t1, 9999, (struct sockaddr *)&sa_storage,
  219. sizeof(sa_storage)));
  220. test_eq(AF_INET6, sin6->sin6_family);
  221. test_eq(9999, ntohs(sin6->sin6_port));
  222. test_eq(0x80000000, ntohl(S6_ADDR32(sin6->sin6_addr)[0]));
  223. /* ==== tor_addr_lookup: static cases. (Can't test dns without knowing we
  224. * have a good resolver. */
  225. test_eq(0, tor_addr_lookup("127.128.129.130", AF_UNSPEC, &t1));
  226. test_eq(AF_INET, tor_addr_family(&t1));
  227. test_eq(tor_addr_to_ipv4h(&t1), 0x7f808182);
  228. test_eq(0, tor_addr_lookup("9000::5", AF_UNSPEC, &t1));
  229. test_eq(AF_INET6, tor_addr_family(&t1));
  230. test_eq(0x90, tor_addr_to_in6_addr8(&t1)[0]);
  231. test_assert(tor_mem_is_zero((char*)tor_addr_to_in6_addr8(&t1)+1, 14));
  232. test_eq(0x05, tor_addr_to_in6_addr8(&t1)[15]);
  233. /* === Test pton: valid af_inet6 */
  234. /* Simple, valid parsing. */
  235. r = tor_inet_pton(AF_INET6,
  236. "0102:0304:0506:0708:090A:0B0C:0D0E:0F10", &a1);
  237. test_assert(r==1);
  238. for (i=0;i<16;++i) { test_eq(i+1, (int)a1.s6_addr[i]); }
  239. /* ipv4 ending. */
  240. test_pton6_same("0102:0304:0506:0708:090A:0B0C:0D0E:0F10",
  241. "0102:0304:0506:0708:090A:0B0C:13.14.15.16");
  242. /* shortened words. */
  243. test_pton6_same("0001:0099:BEEF:0000:0123:FFFF:0001:0001",
  244. "1:99:BEEF:0:0123:FFFF:1:1");
  245. /* zeros at the beginning */
  246. test_pton6_same("0000:0000:0000:0000:0009:C0A8:0001:0001",
  247. "::9:c0a8:1:1");
  248. test_pton6_same("0000:0000:0000:0000:0009:C0A8:0001:0001",
  249. "::9:c0a8:0.1.0.1");
  250. /* zeros in the middle. */
  251. test_pton6_same("fe80:0000:0000:0000:0202:1111:0001:0001",
  252. "fe80::202:1111:1:1");
  253. /* zeros at the end. */
  254. test_pton6_same("1000:0001:0000:0007:0000:0000:0000:0000",
  255. "1000:1:0:7::");
  256. /* === Test ntop: af_inet6 */
  257. test_ntop6_reduces("0:0:0:0:0:0:0:0", "::");
  258. test_ntop6_reduces("0001:0099:BEEF:0006:0123:FFFF:0001:0001",
  259. "1:99:beef:6:123:ffff:1:1");
  260. //test_ntop6_reduces("0:0:0:0:0:0:c0a8:0101", "::192.168.1.1");
  261. test_ntop6_reduces("0:0:0:0:0:ffff:c0a8:0101", "::ffff:192.168.1.1");
  262. test_ntop6_reduces("002:0:0000:0:3::4", "2::3:0:0:4");
  263. test_ntop6_reduces("0:0::1:0:3", "::1:0:3");
  264. test_ntop6_reduces("008:0::0", "8::");
  265. test_ntop6_reduces("0:0:0:0:0:ffff::1", "::ffff:0.0.0.1");
  266. test_ntop6_reduces("abcd:0:0:0:0:0:7f00::", "abcd::7f00:0");
  267. test_ntop6_reduces("0000:0000:0000:0000:0009:C0A8:0001:0001",
  268. "::9:c0a8:1:1");
  269. test_ntop6_reduces("fe80:0000:0000:0000:0202:1111:0001:0001",
  270. "fe80::202:1111:1:1");
  271. test_ntop6_reduces("1000:0001:0000:0007:0000:0000:0000:0000",
  272. "1000:1:0:7::");
  273. /* Bad af param */
  274. test_eq(tor_inet_pton(AF_UNSPEC, 0, 0), -1);
  275. /* === Test pton: invalid in6. */
  276. test_pton6_bad("foobar.");
  277. test_pton6_bad("-1::");
  278. test_pton6_bad("00001::");
  279. test_pton6_bad("10000::");
  280. test_pton6_bad("::10000");
  281. test_pton6_bad("55555::");
  282. test_pton6_bad("9:-60::");
  283. test_pton6_bad("9:+60::");
  284. test_pton6_bad("9|60::");
  285. test_pton6_bad("0x60::");
  286. test_pton6_bad("::0x60");
  287. test_pton6_bad("9:0x60::");
  288. test_pton6_bad("1:2:33333:4:0002:3::");
  289. test_pton6_bad("1:2:3333:4:fish:3::");
  290. test_pton6_bad("1:2:3:4:5:6:7:8:9");
  291. test_pton6_bad("1:2:3:4:5:6:7");
  292. test_pton6_bad("1:2:3:4:5:6:1.2.3.4.5");
  293. test_pton6_bad("1:2:3:4:5:6:1.2.3");
  294. test_pton6_bad("::1.2.3");
  295. test_pton6_bad("::1.2.3.4.5");
  296. test_pton6_bad("::ffff:0xff.0.0.0");
  297. test_pton6_bad("::ffff:ff.0.0.0");
  298. test_pton6_bad("::ffff:256.0.0.0");
  299. test_pton6_bad("::ffff:-1.0.0.0");
  300. test_pton6_bad("99");
  301. test_pton6_bad("");
  302. test_pton6_bad(".");
  303. test_pton6_bad(":");
  304. test_pton6_bad("1::2::3:4");
  305. test_pton6_bad("a:::b:c");
  306. test_pton6_bad(":::a:b:c");
  307. test_pton6_bad("a:b:c:::");
  308. /* test internal checking */
  309. test_external_ip("fbff:ffff::2:7", 0);
  310. test_internal_ip("fc01::2:7", 0);
  311. test_internal_ip("fc01::02:7", 0);
  312. test_internal_ip("fc01::002:7", 0);
  313. test_internal_ip("fc01::0002:7", 0);
  314. test_internal_ip("fdff:ffff::f:f", 0);
  315. test_external_ip("fe00::3:f", 0);
  316. test_external_ip("fe7f:ffff::2:7", 0);
  317. test_internal_ip("fe80::2:7", 0);
  318. test_internal_ip("febf:ffff::f:f", 0);
  319. test_internal_ip("fec0::2:7:7", 0);
  320. test_internal_ip("feff:ffff::e:7:7", 0);
  321. test_external_ip("ff00::e:7:7", 0);
  322. test_internal_ip("::", 0);
  323. test_internal_ip("::1", 0);
  324. test_internal_ip("::1", 1);
  325. test_internal_ip("::", 0);
  326. test_external_ip("::", 1);
  327. test_external_ip("::2", 0);
  328. test_external_ip("2001::", 0);
  329. test_external_ip("ffff::", 0);
  330. test_external_ip("::ffff:0.0.0.0", 1);
  331. test_internal_ip("::ffff:0.0.0.0", 0);
  332. test_internal_ip("::ffff:0.255.255.255", 0);
  333. test_external_ip("::ffff:1.0.0.0", 0);
  334. test_external_ip("::ffff:9.255.255.255", 0);
  335. test_internal_ip("::ffff:10.0.0.0", 0);
  336. test_internal_ip("::ffff:10.255.255.255", 0);
  337. test_external_ip("::ffff:11.0.0.0", 0);
  338. test_external_ip("::ffff:126.255.255.255", 0);
  339. test_internal_ip("::ffff:127.0.0.0", 0);
  340. test_internal_ip("::ffff:127.255.255.255", 0);
  341. test_external_ip("::ffff:128.0.0.0", 0);
  342. test_external_ip("::ffff:172.15.255.255", 0);
  343. test_internal_ip("::ffff:172.16.0.0", 0);
  344. test_internal_ip("::ffff:172.31.255.255", 0);
  345. test_external_ip("::ffff:172.32.0.0", 0);
  346. test_external_ip("::ffff:192.167.255.255", 0);
  347. test_internal_ip("::ffff:192.168.0.0", 0);
  348. test_internal_ip("::ffff:192.168.255.255", 0);
  349. test_external_ip("::ffff:192.169.0.0", 0);
  350. test_external_ip("::ffff:169.253.255.255", 0);
  351. test_internal_ip("::ffff:169.254.0.0", 0);
  352. test_internal_ip("::ffff:169.254.255.255", 0);
  353. test_external_ip("::ffff:169.255.0.0", 0);
  354. test_assert(is_internal_IP(0x7f000001, 0));
  355. /* tor_addr_compare(tor_addr_t x2) */
  356. test_addr_compare("ffff::", ==, "ffff::0");
  357. test_addr_compare("0::3:2:1", <, "0::ffff:0.3.2.1");
  358. test_addr_compare("0::2:2:1", <, "0::ffff:0.3.2.1");
  359. test_addr_compare("0::ffff:0.3.2.1", >, "0::0:0:0");
  360. test_addr_compare("0::ffff:5.2.2.1", <, "::ffff:6.0.0.0"); /* XXXX wrong. */
  361. tor_addr_parse_mask_ports("[::ffff:2.3.4.5]", 0, &t1, NULL, NULL, NULL);
  362. tor_addr_parse_mask_ports("2.3.4.5", 0, &t2, NULL, NULL, NULL);
  363. test_assert(tor_addr_compare(&t1, &t2, CMP_SEMANTIC) == 0);
  364. tor_addr_parse_mask_ports("[::ffff:2.3.4.4]", 0, &t1, NULL, NULL, NULL);
  365. tor_addr_parse_mask_ports("2.3.4.5", 0, &t2, NULL, NULL, NULL);
  366. test_assert(tor_addr_compare(&t1, &t2, CMP_SEMANTIC) < 0);
  367. /* test compare_masked */
  368. test_addr_compare_masked("ffff::", ==, "ffff::0", 128);
  369. test_addr_compare_masked("ffff::", ==, "ffff::0", 64);
  370. test_addr_compare_masked("0::2:2:1", <, "0::8000:2:1", 81);
  371. test_addr_compare_masked("0::2:2:1", ==, "0::8000:2:1", 80);
  372. /* Test undecorated tor_addr_to_str */
  373. test_eq(AF_INET6, tor_addr_parse(&t1, "[123:45:6789::5005:11]"));
  374. p1 = tor_addr_to_str(buf, &t1, sizeof(buf), 0);
  375. test_streq(p1, "123:45:6789::5005:11");
  376. test_eq(AF_INET, tor_addr_parse(&t1, "18.0.0.1"));
  377. p1 = tor_addr_to_str(buf, &t1, sizeof(buf), 0);
  378. test_streq(p1, "18.0.0.1");
  379. /* Test decorated tor_addr_to_str */
  380. test_eq(AF_INET6, tor_addr_parse(&t1, "[123:45:6789::5005:11]"));
  381. p1 = tor_addr_to_str(buf, &t1, sizeof(buf), 1);
  382. test_streq(p1, "[123:45:6789::5005:11]");
  383. test_eq(AF_INET, tor_addr_parse(&t1, "18.0.0.1"));
  384. p1 = tor_addr_to_str(buf, &t1, sizeof(buf), 1);
  385. test_streq(p1, "18.0.0.1");
  386. /* Test buffer bounds checking of tor_addr_to_str */
  387. test_eq(AF_INET6, tor_addr_parse(&t1, "::")); /* 2 + \0 */
  388. test_eq_ptr(tor_addr_to_str(buf, &t1, 2, 0), NULL); /* too short buf */
  389. test_streq(tor_addr_to_str(buf, &t1, 3, 0), "::");
  390. test_eq_ptr(tor_addr_to_str(buf, &t1, 4, 1), NULL); /* too short buf */
  391. test_streq(tor_addr_to_str(buf, &t1, 5, 1), "[::]");
  392. test_eq(AF_INET6, tor_addr_parse(&t1, "2000::1337")); /* 10 + \0 */
  393. test_eq_ptr(tor_addr_to_str(buf, &t1, 10, 0), NULL); /* too short buf */
  394. test_streq(tor_addr_to_str(buf, &t1, 11, 0), "2000::1337");
  395. test_eq_ptr(tor_addr_to_str(buf, &t1, 12, 1), NULL); /* too short buf */
  396. test_streq(tor_addr_to_str(buf, &t1, 13, 1), "[2000::1337]");
  397. test_eq(AF_INET, tor_addr_parse(&t1, "1.2.3.4")); /* 7 + \0 */
  398. test_eq_ptr(tor_addr_to_str(buf, &t1, 7, 0), NULL); /* too short buf */
  399. test_streq(tor_addr_to_str(buf, &t1, 8, 0), "1.2.3.4");
  400. test_eq(AF_INET, tor_addr_parse(&t1, "255.255.255.255")); /* 15 + \0 */
  401. test_eq_ptr(tor_addr_to_str(buf, &t1, 15, 0), NULL); /* too short buf */
  402. test_streq(tor_addr_to_str(buf, &t1, 16, 0), "255.255.255.255");
  403. test_eq_ptr(tor_addr_to_str(buf, &t1, 15, 1), NULL); /* too short buf */
  404. test_streq(tor_addr_to_str(buf, &t1, 16, 1), "255.255.255.255");
  405. t1.family = AF_UNSPEC;
  406. test_eq_ptr(tor_addr_to_str(buf, &t1, sizeof(buf), 0), NULL);
  407. /* Test tor_addr_parse_PTR_name */
  408. i = tor_addr_parse_PTR_name(&t1, "Foobar.baz", AF_UNSPEC, 0);
  409. test_eq(0, i);
  410. i = tor_addr_parse_PTR_name(&t1, "Foobar.baz", AF_UNSPEC, 1);
  411. test_eq(0, i);
  412. i = tor_addr_parse_PTR_name(&t1, "1.0.168.192.in-addr.arpa",
  413. AF_UNSPEC, 1);
  414. test_eq(1, i);
  415. test_eq(tor_addr_family(&t1), AF_INET);
  416. p1 = tor_addr_to_str(buf, &t1, sizeof(buf), 1);
  417. test_streq(p1, "192.168.0.1");
  418. i = tor_addr_parse_PTR_name(&t1, "192.168.0.99", AF_UNSPEC, 0);
  419. test_eq(0, i);
  420. i = tor_addr_parse_PTR_name(&t1, "192.168.0.99", AF_UNSPEC, 1);
  421. test_eq(1, i);
  422. p1 = tor_addr_to_str(buf, &t1, sizeof(buf), 1);
  423. test_streq(p1, "192.168.0.99");
  424. memset(&t1, 0, sizeof(t1));
  425. i = tor_addr_parse_PTR_name(&t1,
  426. "0.1.2.3.4.5.6.7.8.9.a.b.c.d.e.f."
  427. "f.e.e.b.1.e.b.e.e.f.f.e.e.e.d.9."
  428. "ip6.ARPA",
  429. AF_UNSPEC, 0);
  430. test_eq(1, i);
  431. p1 = tor_addr_to_str(buf, &t1, sizeof(buf), 1);
  432. test_streq(p1, "[9dee:effe:ebe1:beef:fedc:ba98:7654:3210]");
  433. /* Failing cases. */
  434. i = tor_addr_parse_PTR_name(&t1,
  435. "6.7.8.9.a.b.c.d.e.f."
  436. "f.e.e.b.1.e.b.e.e.f.f.e.e.e.d.9."
  437. "ip6.ARPA",
  438. AF_UNSPEC, 0);
  439. test_eq(i, -1);
  440. i = tor_addr_parse_PTR_name(&t1,
  441. "6.7.8.9.a.b.c.d.e.f.a.b.c.d.e.f.0."
  442. "f.e.e.b.1.e.b.e.e.f.f.e.e.e.d.9."
  443. "ip6.ARPA",
  444. AF_UNSPEC, 0);
  445. test_eq(i, -1);
  446. i = tor_addr_parse_PTR_name(&t1,
  447. "6.7.8.9.a.b.c.d.e.f.X.0.0.0.0.9."
  448. "f.e.e.b.1.e.b.e.e.f.f.e.e.e.d.9."
  449. "ip6.ARPA",
  450. AF_UNSPEC, 0);
  451. test_eq(i, -1);
  452. i = tor_addr_parse_PTR_name(&t1, "32.1.1.in-addr.arpa",
  453. AF_UNSPEC, 0);
  454. test_eq(i, -1);
  455. i = tor_addr_parse_PTR_name(&t1, ".in-addr.arpa",
  456. AF_UNSPEC, 0);
  457. test_eq(i, -1);
  458. i = tor_addr_parse_PTR_name(&t1, "1.2.3.4.5.in-addr.arpa",
  459. AF_UNSPEC, 0);
  460. test_eq(i, -1);
  461. i = tor_addr_parse_PTR_name(&t1, "1.2.3.4.5.in-addr.arpa",
  462. AF_INET6, 0);
  463. test_eq(i, -1);
  464. i = tor_addr_parse_PTR_name(&t1,
  465. "6.7.8.9.a.b.c.d.e.f.a.b.c.d.e.0."
  466. "f.e.e.b.1.e.b.e.e.f.f.e.e.e.d.9."
  467. "ip6.ARPA",
  468. AF_INET, 0);
  469. test_eq(i, -1);
  470. /* === Test tor_addr_to_PTR_name */
  471. /* Stage IPv4 addr */
  472. memset(&sa_storage, 0, sizeof(sa_storage));
  473. sin = (struct sockaddr_in *)&sa_storage;
  474. sin->sin_family = AF_INET;
  475. sin->sin_addr.s_addr = htonl(0x7f010203); /* 127.1.2.3 */
  476. tor_addr_from_sockaddr(&t1, (struct sockaddr *)sin, NULL);
  477. /* Check IPv4 PTR - too short buffer */
  478. test_eq(tor_addr_to_PTR_name(rbuf, 1, &t1), -1);
  479. test_eq(tor_addr_to_PTR_name(rbuf,
  480. strlen("3.2.1.127.in-addr.arpa") - 1,
  481. &t1), -1);
  482. /* Check IPv4 PTR - valid addr */
  483. test_eq(tor_addr_to_PTR_name(rbuf, sizeof(rbuf), &t1),
  484. strlen("3.2.1.127.in-addr.arpa"));
  485. test_streq(rbuf, "3.2.1.127.in-addr.arpa");
  486. /* Invalid addr family */
  487. t1.family = AF_UNSPEC;
  488. test_eq(tor_addr_to_PTR_name(rbuf, sizeof(rbuf), &t1), -1);
  489. /* Stage IPv6 addr */
  490. memset(&sa_storage, 0, sizeof(sa_storage));
  491. sin6 = (struct sockaddr_in6 *)&sa_storage;
  492. sin6->sin6_family = AF_INET6;
  493. sin6->sin6_addr.s6_addr[0] = 0x80; /* 8000::abcd */
  494. sin6->sin6_addr.s6_addr[14] = 0xab;
  495. sin6->sin6_addr.s6_addr[15] = 0xcd;
  496. tor_addr_from_sockaddr(&t1, (struct sockaddr *)sin6, NULL);
  497. {
  498. const char* addr_PTR = "d.c.b.a.0.0.0.0.0.0.0.0.0.0.0.0."
  499. "0.0.0.0.0.0.0.0.0.0.0.0.0.0.0.8.ip6.arpa";
  500. /* Check IPv6 PTR - too short buffer */
  501. test_eq(tor_addr_to_PTR_name(rbuf, 0, &t1), -1);
  502. test_eq(tor_addr_to_PTR_name(rbuf, strlen(addr_PTR) - 1, &t1), -1);
  503. /* Check IPv6 PTR - valid addr */
  504. test_eq(tor_addr_to_PTR_name(rbuf, sizeof(rbuf), &t1),
  505. strlen(addr_PTR));
  506. test_streq(rbuf, addr_PTR);
  507. }
  508. /* XXXX turn this into a separate function; it's not all IPv6. */
  509. /* test tor_addr_parse_mask_ports */
  510. test_addr_mask_ports_parse("[::f]/17:47-95", AF_INET6,
  511. 0, 0, 0, 0x0000000f, 17, 47, 95);
  512. test_streq(p1, "::f");
  513. //test_addr_parse("[::fefe:4.1.1.7/120]:999-1000");
  514. //test_addr_parse_check("::fefe:401:107", 120, 999, 1000);
  515. test_addr_mask_ports_parse("[::ffff:4.1.1.7]/120:443", AF_INET6,
  516. 0, 0, 0x0000ffff, 0x04010107, 120, 443, 443);
  517. test_streq(p1, "::ffff:4.1.1.7");
  518. test_addr_mask_ports_parse("[abcd:2::44a:0]:2-65000", AF_INET6,
  519. 0xabcd0002, 0, 0, 0x044a0000, 128, 2, 65000);
  520. test_streq(p1, "abcd:2::44a:0");
  521. /* Try some long addresses. */
  522. r=tor_addr_parse_mask_ports("[ffff:1111:1111:1111:1111:1111:1111:1111]",
  523. 0, &t1, NULL, NULL, NULL);
  524. test_assert(r == AF_INET6);
  525. r=tor_addr_parse_mask_ports("[ffff:1111:1111:1111:1111:1111:1111:11111]",
  526. 0, &t1, NULL, NULL, NULL);
  527. test_assert(r == -1);
  528. r=tor_addr_parse_mask_ports("[ffff:1111:1111:1111:1111:1111:1111:1111:1]",
  529. 0, &t1, NULL, NULL, NULL);
  530. test_assert(r == -1);
  531. r=tor_addr_parse_mask_ports(
  532. "[ffff:1111:1111:1111:1111:1111:1111:ffff:"
  533. "ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff:"
  534. "ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff:"
  535. "ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff]",
  536. 0, &t1, NULL, NULL, NULL);
  537. test_assert(r == -1);
  538. /* Try some failing cases. */
  539. r=tor_addr_parse_mask_ports("[fefef::]/112", 0, &t1, NULL, NULL, NULL);
  540. test_assert(r == -1);
  541. r=tor_addr_parse_mask_ports("[fefe::/112", 0, &t1, NULL, NULL, NULL);
  542. test_assert(r == -1);
  543. r=tor_addr_parse_mask_ports("[fefe::", 0, &t1, NULL, NULL, NULL);
  544. test_assert(r == -1);
  545. r=tor_addr_parse_mask_ports("[fefe::X]", 0, &t1, NULL, NULL, NULL);
  546. test_assert(r == -1);
  547. r=tor_addr_parse_mask_ports("efef::/112", 0, &t1, NULL, NULL, NULL);
  548. test_assert(r == -1);
  549. r=tor_addr_parse_mask_ports("[f:f:f:f:f:f:f:f::]",0,&t1, NULL, NULL, NULL);
  550. test_assert(r == -1);
  551. r=tor_addr_parse_mask_ports("[::f:f:f:f:f:f:f:f]",0,&t1, NULL, NULL, NULL);
  552. test_assert(r == -1);
  553. r=tor_addr_parse_mask_ports("[f:f:f:f:f:f:f:f:f]",0,&t1, NULL, NULL, NULL);
  554. test_assert(r == -1);
  555. r=tor_addr_parse_mask_ports("[f:f:f:f:f::]/fred",0,&t1,&mask, NULL, NULL);
  556. test_assert(r == -1);
  557. r=tor_addr_parse_mask_ports("[f:f:f:f:f::]/255.255.0.0",
  558. 0,&t1, NULL, NULL, NULL);
  559. test_assert(r == -1);
  560. /* This one will get rejected because it isn't a pure prefix. */
  561. r=tor_addr_parse_mask_ports("1.1.2.3/255.255.64.0",0,&t1, &mask,NULL,NULL);
  562. test_assert(r == -1);
  563. /* Test for V4-mapped address with mask < 96. (arguably not valid) */
  564. r=tor_addr_parse_mask_ports("[::ffff:1.1.2.2/33]",0,&t1, &mask, NULL, NULL);
  565. test_assert(r == -1);
  566. r=tor_addr_parse_mask_ports("1.1.2.2/33",0,&t1, &mask, NULL, NULL);
  567. test_assert(r == -1);
  568. /* Try extended wildcard addresses with out TAPMP_EXTENDED_STAR*/
  569. r=tor_addr_parse_mask_ports("*4",0,&t1, &mask, NULL, NULL);
  570. test_assert(r == -1);
  571. r=tor_addr_parse_mask_ports("*6",0,&t1, &mask, NULL, NULL);
  572. test_assert(r == -1);
  573. #if 0
  574. /* Try a mask with a wildcard. */
  575. r=tor_addr_parse_mask_ports("*/16",0,&t1, &mask, NULL, NULL);
  576. test_assert(r == -1);
  577. r=tor_addr_parse_mask_ports("*4/16",TAPMP_EXTENDED_STAR,
  578. &t1, &mask, NULL, NULL);
  579. test_assert(r == -1);
  580. r=tor_addr_parse_mask_ports("*6/30",TAPMP_EXTENDED_STAR,
  581. &t1, &mask, NULL, NULL);
  582. test_assert(r == -1);
  583. #endif
  584. /* Basic mask tests*/
  585. r=tor_addr_parse_mask_ports("1.1.2.2/31",0,&t1, &mask, NULL, NULL);
  586. test_assert(r == AF_INET);
  587. tt_int_op(mask,==,31);
  588. tt_int_op(tor_addr_family(&t1),==,AF_INET);
  589. tt_int_op(tor_addr_to_ipv4h(&t1),==,0x01010202);
  590. r=tor_addr_parse_mask_ports("3.4.16.032:1-2",0,&t1, &mask, &port1, &port2);
  591. test_assert(r == AF_INET);
  592. tt_int_op(mask,==,32);
  593. tt_int_op(tor_addr_family(&t1),==,AF_INET);
  594. tt_int_op(tor_addr_to_ipv4h(&t1),==,0x03041020);
  595. test_assert(port1 == 1);
  596. test_assert(port2 == 2);
  597. r=tor_addr_parse_mask_ports("1.1.2.3/255.255.128.0",0,&t1, &mask,NULL,NULL);
  598. test_assert(r == AF_INET);
  599. tt_int_op(mask,==,17);
  600. tt_int_op(tor_addr_family(&t1),==,AF_INET);
  601. tt_int_op(tor_addr_to_ipv4h(&t1),==,0x01010203);
  602. r=tor_addr_parse_mask_ports("[efef::]/112",0,&t1, &mask, &port1, &port2);
  603. test_assert(r == AF_INET6);
  604. test_assert(port1 == 1);
  605. test_assert(port2 == 65535);
  606. /* Try regular wildcard behavior without TAPMP_EXTENDED_STAR */
  607. r=tor_addr_parse_mask_ports("*:80-443",0,&t1,&mask,&port1,&port2);
  608. tt_int_op(r,==,AF_INET); /* Old users of this always get inet */
  609. tt_int_op(tor_addr_family(&t1),==,AF_INET);
  610. tt_int_op(tor_addr_to_ipv4h(&t1),==,0);
  611. tt_int_op(mask,==,0);
  612. tt_int_op(port1,==,80);
  613. tt_int_op(port2,==,443);
  614. /* Now try wildcards *with* TAPMP_EXTENDED_STAR */
  615. r=tor_addr_parse_mask_ports("*:8000-9000",TAPMP_EXTENDED_STAR,
  616. &t1,&mask,&port1,&port2);
  617. tt_int_op(r,==,AF_UNSPEC);
  618. tt_int_op(tor_addr_family(&t1),==,AF_UNSPEC);
  619. tt_int_op(mask,==,0);
  620. tt_int_op(port1,==,8000);
  621. tt_int_op(port2,==,9000);
  622. r=tor_addr_parse_mask_ports("*4:6667",TAPMP_EXTENDED_STAR,
  623. &t1,&mask,&port1,&port2);
  624. tt_int_op(r,==,AF_INET);
  625. tt_int_op(tor_addr_family(&t1),==,AF_INET);
  626. tt_int_op(tor_addr_to_ipv4h(&t1),==,0);
  627. tt_int_op(mask,==,0);
  628. tt_int_op(port1,==,6667);
  629. tt_int_op(port2,==,6667);
  630. r=tor_addr_parse_mask_ports("*6",TAPMP_EXTENDED_STAR,
  631. &t1,&mask,&port1,&port2);
  632. tt_int_op(r,==,AF_INET6);
  633. tt_int_op(tor_addr_family(&t1),==,AF_INET6);
  634. tt_assert(tor_mem_is_zero((const char*)tor_addr_to_in6_addr32(&t1), 16));
  635. tt_int_op(mask,==,0);
  636. tt_int_op(port1,==,1);
  637. tt_int_op(port2,==,65535);
  638. /* make sure inet address lengths >= max */
  639. test_assert(INET_NTOA_BUF_LEN >= sizeof("255.255.255.255"));
  640. test_assert(TOR_ADDR_BUF_LEN >=
  641. sizeof("ffff:ffff:ffff:ffff:ffff:ffff:255.255.255.255"));
  642. test_assert(sizeof(tor_addr_t) >= sizeof(struct in6_addr));
  643. /* get interface addresses */
  644. r = get_interface_address6(LOG_DEBUG, AF_INET, &t1);
  645. i = get_interface_address6(LOG_DEBUG, AF_INET6, &t2);
  646. TT_BLATHER(("v4 address: %s (family=%d)", fmt_addr(&t1),
  647. tor_addr_family(&t1)));
  648. TT_BLATHER(("v6 address: %s (family=%d)", fmt_addr(&t2),
  649. tor_addr_family(&t2)));
  650. done:
  651. ;
  652. }
  653. /** Test tor_addr_port_parse(). */
  654. static void
  655. test_addr_parse(void)
  656. {
  657. int r;
  658. tor_addr_t addr;
  659. char buf[TOR_ADDR_BUF_LEN];
  660. uint16_t port = 0;
  661. /* Correct call. */
  662. r= tor_addr_port_parse(LOG_DEBUG,
  663. "192.0.2.1:1234",
  664. &addr, &port, -1);
  665. test_assert(r == 0);
  666. tor_addr_to_str(buf, &addr, sizeof(buf), 0);
  667. test_streq(buf, "192.0.2.1");
  668. test_eq(port, 1234);
  669. r= tor_addr_port_parse(LOG_DEBUG,
  670. "[::1]:1234",
  671. &addr, &port, -1);
  672. test_assert(r == 0);
  673. tor_addr_to_str(buf, &addr, sizeof(buf), 0);
  674. test_streq(buf, "::1");
  675. test_eq(port, 1234);
  676. /* Domain name. */
  677. r= tor_addr_port_parse(LOG_DEBUG,
  678. "torproject.org:1234",
  679. &addr, &port, -1);
  680. test_assert(r == -1);
  681. /* Only IP. */
  682. r= tor_addr_port_parse(LOG_DEBUG,
  683. "192.0.2.2",
  684. &addr, &port, -1);
  685. test_assert(r == -1);
  686. r= tor_addr_port_parse(LOG_DEBUG,
  687. "192.0.2.2",
  688. &addr, &port, 200);
  689. test_assert(r == 0);
  690. tt_int_op(port,==,200);
  691. r= tor_addr_port_parse(LOG_DEBUG,
  692. "[::1]",
  693. &addr, &port, -1);
  694. test_assert(r == -1);
  695. r= tor_addr_port_parse(LOG_DEBUG,
  696. "[::1]",
  697. &addr, &port, 400);
  698. test_assert(r == 0);
  699. tt_int_op(port,==,400);
  700. /* Bad port. */
  701. r= tor_addr_port_parse(LOG_DEBUG,
  702. "192.0.2.2:66666",
  703. &addr, &port, -1);
  704. test_assert(r == -1);
  705. r= tor_addr_port_parse(LOG_DEBUG,
  706. "192.0.2.2:66666",
  707. &addr, &port, 200);
  708. test_assert(r == -1);
  709. /* Only domain name */
  710. r= tor_addr_port_parse(LOG_DEBUG,
  711. "torproject.org",
  712. &addr, &port, -1);
  713. test_assert(r == -1);
  714. r= tor_addr_port_parse(LOG_DEBUG,
  715. "torproject.org",
  716. &addr, &port, 200);
  717. test_assert(r == -1);
  718. /* Bad IP address */
  719. r= tor_addr_port_parse(LOG_DEBUG,
  720. "192.0.2:1234",
  721. &addr, &port, -1);
  722. test_assert(r == -1);
  723. /* Make sure that the default port has lower priority than the real
  724. one */
  725. r= tor_addr_port_parse(LOG_DEBUG,
  726. "192.0.2.2:1337",
  727. &addr, &port, 200);
  728. test_assert(r == 0);
  729. tt_int_op(port,==,1337);
  730. r= tor_addr_port_parse(LOG_DEBUG,
  731. "[::1]:1369",
  732. &addr, &port, 200);
  733. test_assert(r == 0);
  734. tt_int_op(port,==,1369);
  735. done:
  736. ;
  737. }
  738. static void
  739. update_difference(int ipv6, uint8_t *d,
  740. const tor_addr_t *a, const tor_addr_t *b)
  741. {
  742. const int n_bytes = ipv6 ? 16 : 4;
  743. uint8_t a_tmp[4], b_tmp[4];
  744. const uint8_t *ba, *bb;
  745. int i;
  746. if (ipv6) {
  747. ba = tor_addr_to_in6_addr8(a);
  748. bb = tor_addr_to_in6_addr8(b);
  749. } else {
  750. set_uint32(a_tmp, tor_addr_to_ipv4n(a));
  751. set_uint32(b_tmp, tor_addr_to_ipv4n(b));
  752. ba = a_tmp; bb = b_tmp;
  753. }
  754. for (i = 0; i < n_bytes; ++i) {
  755. d[i] |= ba[i] ^ bb[i];
  756. }
  757. }
  758. static void
  759. test_virtaddrmap(void *data)
  760. {
  761. /* Let's start with a bunch of random addresses. */
  762. int ipv6, bits, iter, b;
  763. virtual_addr_conf_t cfg[2];
  764. uint8_t bytes[16];
  765. (void)data;
  766. tor_addr_parse(&cfg[0].addr, "64.65.0.0");
  767. tor_addr_parse(&cfg[1].addr, "3491:c0c0::");
  768. for (ipv6 = 0; ipv6 <= 1; ++ipv6) {
  769. for (bits = 0; bits < 18; ++bits) {
  770. tor_addr_t last_a;
  771. cfg[ipv6].bits = bits;
  772. memset(bytes, 0, sizeof(bytes));
  773. tor_addr_copy(&last_a, &cfg[ipv6].addr);
  774. /* Generate 128 addresses with each addr/bits combination. */
  775. for (iter = 0; iter < 128; ++iter) {
  776. tor_addr_t a;
  777. get_random_virtual_addr(&cfg[ipv6], &a);
  778. //printf("%s\n", fmt_addr(&a));
  779. /* Make sure that the first b bits match the configured network */
  780. tt_int_op(0, ==, tor_addr_compare_masked(&a, &cfg[ipv6].addr,
  781. bits, CMP_EXACT));
  782. /* And track which bits have been different between pairs of
  783. * addresses */
  784. update_difference(ipv6, bytes, &last_a, &a);
  785. }
  786. /* Now make sure all but the first 'bits' bits of bytes are true */
  787. for (b = bits+1; b < (ipv6?128:32); ++b) {
  788. tt_assert(1 & (bytes[b/8] >> (7-(b&7))));
  789. }
  790. }
  791. }
  792. done:
  793. ;
  794. }
  795. static void
  796. test_addr_is_loopback(void *data)
  797. {
  798. static const struct loopback_item {
  799. const char *name;
  800. int is_loopback;
  801. } loopback_items[] = {
  802. { "::1", 1 },
  803. { "127.0.0.1", 1 },
  804. { "127.99.100.101", 1 },
  805. { "128.99.100.101", 0 },
  806. { "8.8.8.8", 0 },
  807. { "0.0.0.0", 0 },
  808. { "::2", 0 },
  809. { "::", 0 },
  810. { "::1.0.0.0", 0 },
  811. { NULL, 0 }
  812. };
  813. int i;
  814. tor_addr_t addr;
  815. (void)data;
  816. for (i=0; loopback_items[i].name; ++i) {
  817. tt_int_op(tor_addr_parse(&addr, loopback_items[i].name), >=, 0);
  818. tt_int_op(tor_addr_is_loopback(&addr), ==, loopback_items[i].is_loopback);
  819. }
  820. tor_addr_make_unspec(&addr);
  821. tt_int_op(tor_addr_is_loopback(&addr), ==, 0);
  822. done:
  823. ;
  824. }
  825. #define ADDR_LEGACY(name) \
  826. { #name, legacy_test_helper, 0, &legacy_setup, test_addr_ ## name }
  827. struct testcase_t addr_tests[] = {
  828. ADDR_LEGACY(basic),
  829. ADDR_LEGACY(ip6_helpers),
  830. ADDR_LEGACY(parse),
  831. { "virtaddr", test_virtaddrmap, 0, NULL, NULL },
  832. { "is_loopback", test_addr_is_loopback, 0, NULL, NULL },
  833. END_OF_TESTCASES
  834. };