address.c 59 KB

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  1. /* Copyright (c) 2003-2004, Roger Dingledine
  2. * Copyright (c) 2004-2006, Roger Dingledine, Nick Mathewson.
  3. * Copyright (c) 2007-2015, The Tor Project, Inc. */
  4. /* See LICENSE for licensing information */
  5. /**
  6. * \file address.c
  7. * \brief Functions to use and manipulate the tor_addr_t structure.
  8. **/
  9. #define ADDRESS_PRIVATE
  10. #include "orconfig.h"
  11. #ifdef _WIN32
  12. /* For access to structs needed by GetAdaptersAddresses */
  13. #ifndef WIN32_LEAN_AND_MEAN
  14. #error "orconfig.h didn't define WIN32_LEAN_AND_MEAN"
  15. #endif
  16. #ifndef WINVER
  17. #error "orconfig.h didn't define WINVER"
  18. #endif
  19. #ifndef _WIN32_WINNT
  20. #error "orconfig.h didn't define _WIN32_WINNT"
  21. #endif
  22. #if WINVER < 0x0501
  23. #error "winver too low"
  24. #endif
  25. #if _WIN32_WINNT < 0x0501
  26. #error "winver too low"
  27. #endif
  28. #include <winsock2.h>
  29. #include <process.h>
  30. #include <windows.h>
  31. #include <iphlpapi.h>
  32. #endif
  33. #include "compat.h"
  34. #include "util.h"
  35. #include "util_format.h"
  36. #include "address.h"
  37. #include "torlog.h"
  38. #include "container.h"
  39. #include "sandbox.h"
  40. #ifdef HAVE_SYS_TIME_H
  41. #include <sys/time.h>
  42. #endif
  43. #ifdef HAVE_UNISTD_H
  44. #include <unistd.h>
  45. #endif
  46. #ifdef HAVE_ERRNO_H
  47. #include <errno.h>
  48. #endif
  49. #ifdef HAVE_NETINET_IN_H
  50. #include <netinet/in.h>
  51. #endif
  52. #ifdef HAVE_ARPA_INET_H
  53. #include <arpa/inet.h>
  54. #endif
  55. #ifdef HAVE_SYS_SOCKET_H
  56. #include <sys/socket.h>
  57. #endif
  58. #ifdef HAVE_NETDB_H
  59. #include <netdb.h>
  60. #endif
  61. #ifdef HAVE_SYS_PARAM_H
  62. #include <sys/param.h> /* FreeBSD needs this to know what version it is */
  63. #endif
  64. #ifdef HAVE_SYS_UN_H
  65. #include <sys/un.h>
  66. #endif
  67. #ifdef HAVE_IFADDRS_H
  68. #include <ifaddrs.h>
  69. #endif
  70. #ifdef HAVE_SYS_IOCTL_H
  71. #include <sys/ioctl.h>
  72. #endif
  73. #ifdef HAVE_NET_IF_H
  74. #include <net/if.h>
  75. #endif
  76. #include <stdarg.h>
  77. #include <stdio.h>
  78. #include <stdlib.h>
  79. #include <string.h>
  80. #include <assert.h>
  81. /* tor_addr_is_null() and maybe other functions rely on AF_UNSPEC being 0 to
  82. * work correctly. Bail out here if we've found a platform where AF_UNSPEC
  83. * isn't 0. */
  84. #if AF_UNSPEC != 0
  85. #error We rely on AF_UNSPEC being 0. Let us know about your platform, please!
  86. #endif
  87. /** Convert the tor_addr_t in <b>a</b>, with port in <b>port</b>, into a
  88. * sockaddr object in *<b>sa_out</b> of object size <b>len</b>. If not enough
  89. * room is available in sa_out, or on error, return 0. On success, return
  90. * the length of the sockaddr.
  91. *
  92. * Interface note: ordinarily, we return -1 for error. We can't do that here,
  93. * since socklen_t is unsigned on some platforms.
  94. **/
  95. socklen_t
  96. tor_addr_to_sockaddr(const tor_addr_t *a,
  97. uint16_t port,
  98. struct sockaddr *sa_out,
  99. socklen_t len)
  100. {
  101. memset(sa_out, 0, len);
  102. sa_family_t family = tor_addr_family(a);
  103. if (family == AF_INET) {
  104. struct sockaddr_in *sin;
  105. if (len < (int)sizeof(struct sockaddr_in))
  106. return 0;
  107. sin = (struct sockaddr_in *)sa_out;
  108. #ifdef HAVE_STRUCT_SOCKADDR_IN_SIN_LEN
  109. sin->sin_len = sizeof(struct sockaddr_in);
  110. #endif
  111. sin->sin_family = AF_INET;
  112. sin->sin_port = htons(port);
  113. sin->sin_addr.s_addr = tor_addr_to_ipv4n(a);
  114. return sizeof(struct sockaddr_in);
  115. } else if (family == AF_INET6) {
  116. struct sockaddr_in6 *sin6;
  117. if (len < (int)sizeof(struct sockaddr_in6))
  118. return 0;
  119. sin6 = (struct sockaddr_in6 *)sa_out;
  120. #ifdef HAVE_STRUCT_SOCKADDR_IN6_SIN6_LEN
  121. sin6->sin6_len = sizeof(struct sockaddr_in6);
  122. #endif
  123. sin6->sin6_family = AF_INET6;
  124. sin6->sin6_port = htons(port);
  125. memcpy(&sin6->sin6_addr, tor_addr_to_in6(a), sizeof(struct in6_addr));
  126. return sizeof(struct sockaddr_in6);
  127. } else {
  128. return 0;
  129. }
  130. }
  131. /** Set address <b>a</b> to zero. This address belongs to
  132. * the AF_UNIX family. */
  133. static void
  134. tor_addr_make_af_unix(tor_addr_t *a)
  135. {
  136. memset(a, 0, sizeof(*a));
  137. a->family = AF_UNIX;
  138. }
  139. /** Set the tor_addr_t in <b>a</b> to contain the socket address contained in
  140. * <b>sa</b>. IF <b>port_out</b> is non-NULL and <b>sa</b> contains a port,
  141. * set *<b>port_out</b> to that port. Return 0 on success and -1 on
  142. * failure. */
  143. int
  144. tor_addr_from_sockaddr(tor_addr_t *a, const struct sockaddr *sa,
  145. uint16_t *port_out)
  146. {
  147. tor_assert(a);
  148. tor_assert(sa);
  149. memset(a, 0, sizeof(*a));
  150. if (sa->sa_family == AF_INET) {
  151. struct sockaddr_in *sin = (struct sockaddr_in *) sa;
  152. tor_addr_from_ipv4n(a, sin->sin_addr.s_addr);
  153. if (port_out)
  154. *port_out = ntohs(sin->sin_port);
  155. } else if (sa->sa_family == AF_INET6) {
  156. struct sockaddr_in6 *sin6 = (struct sockaddr_in6 *) sa;
  157. tor_addr_from_in6(a, &sin6->sin6_addr);
  158. if (port_out)
  159. *port_out = ntohs(sin6->sin6_port);
  160. } else if (sa->sa_family == AF_UNIX) {
  161. tor_addr_make_af_unix(a);
  162. return 0;
  163. } else {
  164. tor_addr_make_unspec(a);
  165. return -1;
  166. }
  167. return 0;
  168. }
  169. /** Return a newly allocated string holding the address described in
  170. * <b>sa</b>. AF_UNIX, AF_UNSPEC, AF_INET, and AF_INET6 are supported. */
  171. char *
  172. tor_sockaddr_to_str(const struct sockaddr *sa)
  173. {
  174. char address[TOR_ADDR_BUF_LEN];
  175. char *result;
  176. tor_addr_t addr;
  177. uint16_t port;
  178. #ifdef HAVE_SYS_UN_H
  179. if (sa->sa_family == AF_UNIX) {
  180. struct sockaddr_un *s_un = (struct sockaddr_un *)sa;
  181. tor_asprintf(&result, "unix:%s", s_un->sun_path);
  182. return result;
  183. }
  184. #endif
  185. if (sa->sa_family == AF_UNSPEC)
  186. return tor_strdup("unspec");
  187. if (tor_addr_from_sockaddr(&addr, sa, &port) < 0)
  188. return NULL;
  189. if (! tor_addr_to_str(address, &addr, sizeof(address), 1))
  190. return NULL;
  191. tor_asprintf(&result, "%s:%d", address, (int)port);
  192. return result;
  193. }
  194. /** Set address <b>a</b> to the unspecified address. This address belongs to
  195. * no family. */
  196. void
  197. tor_addr_make_unspec(tor_addr_t *a)
  198. {
  199. memset(a, 0, sizeof(*a));
  200. a->family = AF_UNSPEC;
  201. }
  202. /** Set address <b>a</b> to the null address in address family <b>family</b>.
  203. * The null address for AF_INET is 0.0.0.0. The null address for AF_INET6 is
  204. * [::]. AF_UNSPEC is all null. */
  205. void
  206. tor_addr_make_null(tor_addr_t *a, sa_family_t family)
  207. {
  208. memset(a, 0, sizeof(*a));
  209. a->family = family;
  210. }
  211. /** Similar behavior to Unix gethostbyname: resolve <b>name</b>, and set
  212. * *<b>addr</b> to the proper IP address and family. The <b>family</b>
  213. * argument (which must be AF_INET, AF_INET6, or AF_UNSPEC) declares a
  214. * <i>preferred</i> family, though another one may be returned if only one
  215. * family is implemented for this address.
  216. *
  217. * Return 0 on success, -1 on failure; 1 on transient failure.
  218. */
  219. int
  220. tor_addr_lookup(const char *name, uint16_t family, tor_addr_t *addr)
  221. {
  222. /* Perhaps eventually this should be replaced by a tor_getaddrinfo or
  223. * something.
  224. */
  225. struct in_addr iaddr;
  226. struct in6_addr iaddr6;
  227. tor_assert(name);
  228. tor_assert(addr);
  229. tor_assert(family == AF_INET || family == AF_INET6 || family == AF_UNSPEC);
  230. if (!*name) {
  231. /* Empty address is an error. */
  232. return -1;
  233. } else if (tor_inet_pton(AF_INET, name, &iaddr)) {
  234. /* It's an IPv4 IP. */
  235. if (family == AF_INET6)
  236. return -1;
  237. tor_addr_from_in(addr, &iaddr);
  238. return 0;
  239. } else if (tor_inet_pton(AF_INET6, name, &iaddr6)) {
  240. if (family == AF_INET)
  241. return -1;
  242. tor_addr_from_in6(addr, &iaddr6);
  243. return 0;
  244. } else {
  245. #ifdef HAVE_GETADDRINFO
  246. int err;
  247. struct addrinfo *res=NULL, *res_p;
  248. struct addrinfo *best=NULL;
  249. struct addrinfo hints;
  250. int result = -1;
  251. memset(&hints, 0, sizeof(hints));
  252. hints.ai_family = family;
  253. hints.ai_socktype = SOCK_STREAM;
  254. err = sandbox_getaddrinfo(name, NULL, &hints, &res);
  255. /* The check for 'res' here shouldn't be necessary, but it makes static
  256. * analysis tools happy. */
  257. if (!err && res) {
  258. best = NULL;
  259. for (res_p = res; res_p; res_p = res_p->ai_next) {
  260. if (family == AF_UNSPEC) {
  261. if (res_p->ai_family == AF_INET) {
  262. best = res_p;
  263. break;
  264. } else if (res_p->ai_family == AF_INET6 && !best) {
  265. best = res_p;
  266. }
  267. } else if (family == res_p->ai_family) {
  268. best = res_p;
  269. break;
  270. }
  271. }
  272. if (!best)
  273. best = res;
  274. if (best->ai_family == AF_INET) {
  275. tor_addr_from_in(addr,
  276. &((struct sockaddr_in*)best->ai_addr)->sin_addr);
  277. result = 0;
  278. } else if (best->ai_family == AF_INET6) {
  279. tor_addr_from_in6(addr,
  280. &((struct sockaddr_in6*)best->ai_addr)->sin6_addr);
  281. result = 0;
  282. }
  283. sandbox_freeaddrinfo(res);
  284. return result;
  285. }
  286. return (err == EAI_AGAIN) ? 1 : -1;
  287. #else
  288. struct hostent *ent;
  289. int err;
  290. #ifdef HAVE_GETHOSTBYNAME_R_6_ARG
  291. char buf[2048];
  292. struct hostent hostent;
  293. int r;
  294. r = gethostbyname_r(name, &hostent, buf, sizeof(buf), &ent, &err);
  295. #elif defined(HAVE_GETHOSTBYNAME_R_5_ARG)
  296. char buf[2048];
  297. struct hostent hostent;
  298. ent = gethostbyname_r(name, &hostent, buf, sizeof(buf), &err);
  299. #elif defined(HAVE_GETHOSTBYNAME_R_3_ARG)
  300. struct hostent_data data;
  301. struct hostent hent;
  302. memset(&data, 0, sizeof(data));
  303. err = gethostbyname_r(name, &hent, &data);
  304. ent = err ? NULL : &hent;
  305. #else
  306. ent = gethostbyname(name);
  307. #ifdef _WIN32
  308. err = WSAGetLastError();
  309. #else
  310. err = h_errno;
  311. #endif
  312. #endif /* endif HAVE_GETHOSTBYNAME_R_6_ARG. */
  313. if (ent) {
  314. if (ent->h_addrtype == AF_INET) {
  315. tor_addr_from_in(addr, (struct in_addr*) ent->h_addr);
  316. } else if (ent->h_addrtype == AF_INET6) {
  317. tor_addr_from_in6(addr, (struct in6_addr*) ent->h_addr);
  318. } else {
  319. tor_assert(0); /* gethostbyname() returned a bizarre addrtype */
  320. }
  321. return 0;
  322. }
  323. #ifdef _WIN32
  324. return (err == WSATRY_AGAIN) ? 1 : -1;
  325. #else
  326. return (err == TRY_AGAIN) ? 1 : -1;
  327. #endif
  328. #endif
  329. }
  330. }
  331. /** Return true iff <b>ip</b> is an IP reserved to localhost or local networks
  332. * in RFC1918 or RFC4193 or RFC4291. (fec0::/10, deprecated by RFC3879, is
  333. * also treated as internal for now.)
  334. */
  335. int
  336. tor_addr_is_internal_(const tor_addr_t *addr, int for_listening,
  337. const char *filename, int lineno)
  338. {
  339. uint32_t iph4 = 0;
  340. uint32_t iph6[4];
  341. tor_assert(addr);
  342. sa_family_t v_family = tor_addr_family(addr);
  343. if (v_family == AF_INET) {
  344. iph4 = tor_addr_to_ipv4h(addr);
  345. } else if (v_family == AF_INET6) {
  346. if (tor_addr_is_v4(addr)) { /* v4-mapped */
  347. uint32_t *addr32 = NULL;
  348. v_family = AF_INET;
  349. // Work around an incorrect NULL pointer dereference warning in
  350. // "clang --analyze" due to limited analysis depth
  351. addr32 = tor_addr_to_in6_addr32(addr);
  352. // To improve performance, wrap this assertion in:
  353. // #if !defined(__clang_analyzer__) || PARANOIA
  354. tor_assert(addr32);
  355. iph4 = ntohl(addr32[3]);
  356. }
  357. }
  358. if (v_family == AF_INET6) {
  359. const uint32_t *a32 = tor_addr_to_in6_addr32(addr);
  360. iph6[0] = ntohl(a32[0]);
  361. iph6[1] = ntohl(a32[1]);
  362. iph6[2] = ntohl(a32[2]);
  363. iph6[3] = ntohl(a32[3]);
  364. if (for_listening && !iph6[0] && !iph6[1] && !iph6[2] && !iph6[3]) /* :: */
  365. return 0;
  366. if (((iph6[0] & 0xfe000000) == 0xfc000000) || /* fc00/7 - RFC4193 */
  367. ((iph6[0] & 0xffc00000) == 0xfe800000) || /* fe80/10 - RFC4291 */
  368. ((iph6[0] & 0xffc00000) == 0xfec00000)) /* fec0/10 D- RFC3879 */
  369. return 1;
  370. if (!iph6[0] && !iph6[1] && !iph6[2] &&
  371. ((iph6[3] & 0xfffffffe) == 0x00000000)) /* ::/127 */
  372. return 1;
  373. return 0;
  374. } else if (v_family == AF_INET) {
  375. if (for_listening && !iph4) /* special case for binding to 0.0.0.0 */
  376. return 0;
  377. if (((iph4 & 0xff000000) == 0x0a000000) || /* 10/8 */
  378. ((iph4 & 0xff000000) == 0x00000000) || /* 0/8 */
  379. ((iph4 & 0xff000000) == 0x7f000000) || /* 127/8 */
  380. ((iph4 & 0xffff0000) == 0xa9fe0000) || /* 169.254/16 */
  381. ((iph4 & 0xfff00000) == 0xac100000) || /* 172.16/12 */
  382. ((iph4 & 0xffff0000) == 0xc0a80000)) /* 192.168/16 */
  383. return 1;
  384. return 0;
  385. }
  386. /* unknown address family... assume it's not safe for external use */
  387. /* rather than tor_assert(0) */
  388. log_warn(LD_BUG, "tor_addr_is_internal() called from %s:%d with a "
  389. "non-IP address of type %d", filename, lineno, (int)v_family);
  390. tor_fragile_assert();
  391. return 1;
  392. }
  393. /** Convert a tor_addr_t <b>addr</b> into a string, and store it in
  394. * <b>dest</b> of size <b>len</b>. Returns a pointer to dest on success,
  395. * or NULL on failure. If <b>decorate</b>, surround IPv6 addresses with
  396. * brackets.
  397. */
  398. const char *
  399. tor_addr_to_str(char *dest, const tor_addr_t *addr, size_t len, int decorate)
  400. {
  401. const char *ptr;
  402. tor_assert(addr && dest);
  403. switch (tor_addr_family(addr)) {
  404. case AF_INET:
  405. /* Shortest addr x.x.x.x + \0 */
  406. if (len < 8)
  407. return NULL;
  408. ptr = tor_inet_ntop(AF_INET, &addr->addr.in_addr, dest, len);
  409. break;
  410. case AF_INET6:
  411. /* Shortest addr [ :: ] + \0 */
  412. if (len < (3 + (decorate ? 2 : 0)))
  413. return NULL;
  414. if (decorate)
  415. ptr = tor_inet_ntop(AF_INET6, &addr->addr.in6_addr, dest+1, len-2);
  416. else
  417. ptr = tor_inet_ntop(AF_INET6, &addr->addr.in6_addr, dest, len);
  418. if (ptr && decorate) {
  419. *dest = '[';
  420. memcpy(dest+strlen(dest), "]", 2);
  421. tor_assert(ptr == dest+1);
  422. ptr = dest;
  423. }
  424. break;
  425. case AF_UNIX:
  426. tor_snprintf(dest, len, "AF_UNIX");
  427. ptr = dest;
  428. break;
  429. default:
  430. return NULL;
  431. }
  432. return ptr;
  433. }
  434. /** Parse an .in-addr.arpa or .ip6.arpa address from <b>address</b>. Return 0
  435. * if this is not an .in-addr.arpa address or an .ip6.arpa address. Return -1
  436. * if this is an ill-formed .in-addr.arpa address or an .ip6.arpa address.
  437. * Also return -1 if <b>family</b> is not AF_UNSPEC, and the parsed address
  438. * family does not match <b>family</b>. On success, return 1, and store the
  439. * result, if any, into <b>result</b>, if provided.
  440. *
  441. * If <b>accept_regular</b> is set and the address is in neither recognized
  442. * reverse lookup hostname format, try parsing the address as a regular
  443. * IPv4 or IPv6 address too.
  444. */
  445. int
  446. tor_addr_parse_PTR_name(tor_addr_t *result, const char *address,
  447. int family, int accept_regular)
  448. {
  449. if (!strcasecmpend(address, ".in-addr.arpa")) {
  450. /* We have an in-addr.arpa address. */
  451. char buf[INET_NTOA_BUF_LEN];
  452. size_t len;
  453. struct in_addr inaddr;
  454. if (family == AF_INET6)
  455. return -1;
  456. len = strlen(address) - strlen(".in-addr.arpa");
  457. if (len >= INET_NTOA_BUF_LEN)
  458. return -1; /* Too long. */
  459. memcpy(buf, address, len);
  460. buf[len] = '\0';
  461. if (tor_inet_aton(buf, &inaddr) == 0)
  462. return -1; /* malformed. */
  463. /* reverse the bytes */
  464. inaddr.s_addr = (uint32_t)
  465. (((inaddr.s_addr & 0x000000ff) << 24)
  466. |((inaddr.s_addr & 0x0000ff00) << 8)
  467. |((inaddr.s_addr & 0x00ff0000) >> 8)
  468. |((inaddr.s_addr & 0xff000000) >> 24));
  469. if (result) {
  470. tor_addr_from_in(result, &inaddr);
  471. }
  472. return 1;
  473. }
  474. if (!strcasecmpend(address, ".ip6.arpa")) {
  475. const char *cp;
  476. int n0, n1;
  477. struct in6_addr in6;
  478. if (family == AF_INET)
  479. return -1;
  480. cp = address;
  481. for (int i = 0; i < 16; ++i) {
  482. n0 = hex_decode_digit(*cp++); /* The low-order nybble appears first. */
  483. if (*cp++ != '.') return -1; /* Then a dot. */
  484. n1 = hex_decode_digit(*cp++); /* The high-order nybble appears first. */
  485. if (*cp++ != '.') return -1; /* Then another dot. */
  486. if (n0<0 || n1 < 0) /* Both nybbles must be hex. */
  487. return -1;
  488. /* We don't check the length of the string in here. But that's okay,
  489. * since we already know that the string ends with ".ip6.arpa", and
  490. * there is no way to frameshift .ip6.arpa so it fits into the pattern
  491. * of hexdigit, period, hexdigit, period that we enforce above.
  492. */
  493. /* Assign from low-byte to high-byte. */
  494. in6.s6_addr[15-i] = n0 | (n1 << 4);
  495. }
  496. if (strcasecmp(cp, "ip6.arpa"))
  497. return -1;
  498. if (result) {
  499. tor_addr_from_in6(result, &in6);
  500. }
  501. return 1;
  502. }
  503. if (accept_regular) {
  504. tor_addr_t tmp;
  505. int r = tor_addr_parse(&tmp, address);
  506. if (r < 0)
  507. return 0;
  508. if (r != family && family != AF_UNSPEC)
  509. return -1;
  510. if (result)
  511. memcpy(result, &tmp, sizeof(tor_addr_t));
  512. return 1;
  513. }
  514. return 0;
  515. }
  516. /** Convert <b>addr</b> to an in-addr.arpa name or a .ip6.arpa name,
  517. * and store the result in the <b>outlen</b>-byte buffer at
  518. * <b>out</b>. Return the number of chars written to <b>out</b>, not
  519. * including the trailing \0, on success. Returns -1 on failure. */
  520. int
  521. tor_addr_to_PTR_name(char *out, size_t outlen,
  522. const tor_addr_t *addr)
  523. {
  524. tor_assert(out);
  525. tor_assert(addr);
  526. if (addr->family == AF_INET) {
  527. uint32_t a = tor_addr_to_ipv4h(addr);
  528. return tor_snprintf(out, outlen, "%d.%d.%d.%d.in-addr.arpa",
  529. (int)(uint8_t)((a )&0xff),
  530. (int)(uint8_t)((a>>8 )&0xff),
  531. (int)(uint8_t)((a>>16)&0xff),
  532. (int)(uint8_t)((a>>24)&0xff));
  533. } else if (addr->family == AF_INET6) {
  534. int i;
  535. char *cp = out;
  536. const uint8_t *bytes = tor_addr_to_in6_addr8(addr);
  537. if (outlen < REVERSE_LOOKUP_NAME_BUF_LEN)
  538. return -1;
  539. for (i = 15; i >= 0; --i) {
  540. uint8_t byte = bytes[i];
  541. *cp++ = "0123456789abcdef"[byte & 0x0f];
  542. *cp++ = '.';
  543. *cp++ = "0123456789abcdef"[byte >> 4];
  544. *cp++ = '.';
  545. }
  546. memcpy(cp, "ip6.arpa", 9); /* 8 characters plus NUL */
  547. return 32 * 2 + 8;
  548. }
  549. return -1;
  550. }
  551. /** Parse a string <b>s</b> containing an IPv4/IPv6 address, and possibly
  552. * a mask and port or port range. Store the parsed address in
  553. * <b>addr_out</b>, a mask (if any) in <b>mask_out</b>, and port(s) (if any)
  554. * in <b>port_min_out</b> and <b>port_max_out</b>.
  555. *
  556. * The syntax is:
  557. * Address OptMask OptPortRange
  558. * Address ::= IPv4Address / "[" IPv6Address "]" / "*"
  559. * OptMask ::= "/" Integer /
  560. * OptPortRange ::= ":*" / ":" Integer / ":" Integer "-" Integer /
  561. *
  562. * - If mask, minport, or maxport are NULL, we do not want these
  563. * options to be set; treat them as an error if present.
  564. * - If the string has no mask, the mask is set to /32 (IPv4) or /128 (IPv6).
  565. * - If the string has one port, it is placed in both min and max port
  566. * variables.
  567. * - If the string has no port(s), port_(min|max)_out are set to 1 and 65535.
  568. *
  569. * Return an address family on success, or -1 if an invalid address string is
  570. * provided.
  571. *
  572. * If 'flags & TAPMP_EXTENDED_STAR' is false, then the wildcard address '*'
  573. * yield an IPv4 wildcard.
  574. *
  575. * If 'flags & TAPMP_EXTENDED_STAR' is true, then the wildcard address '*'
  576. * yields an AF_UNSPEC wildcard address, which expands to corresponding
  577. * wildcard IPv4 and IPv6 rules, and the following change is made
  578. * in the grammar above:
  579. * Address ::= IPv4Address / "[" IPv6Address "]" / "*" / "*4" / "*6"
  580. * with the new "*4" and "*6" productions creating a wildcard to match
  581. * IPv4 or IPv6 addresses.
  582. *
  583. * If 'flags & TAPMP_EXTENDED_STAR' and 'flags & TAPMP_STAR_IPV4_ONLY' are
  584. * both true, then the wildcard address '*' yields an IPv4 wildcard.
  585. *
  586. * If 'flags & TAPMP_EXTENDED_STAR' and 'flags & TAPMP_STAR_IPV6_ONLY' are
  587. * both true, then the wildcard address '*' yields an IPv6 wildcard.
  588. *
  589. * TAPMP_STAR_IPV4_ONLY and TAPMP_STAR_IPV6_ONLY are mutually exclusive. */
  590. int
  591. tor_addr_parse_mask_ports(const char *s,
  592. unsigned flags,
  593. tor_addr_t *addr_out,
  594. maskbits_t *maskbits_out,
  595. uint16_t *port_min_out, uint16_t *port_max_out)
  596. {
  597. char *base = NULL, *address, *mask = NULL, *port = NULL, *rbracket = NULL;
  598. char *endptr;
  599. int any_flag=0, v4map=0;
  600. sa_family_t family;
  601. struct in6_addr in6_tmp;
  602. struct in_addr in_tmp = { .s_addr = 0 };
  603. tor_assert(s);
  604. tor_assert(addr_out);
  605. /* We can either only want an IPv4 address or only want an IPv6 address,
  606. * but we can't only want IPv4 & IPv6 at the same time. */
  607. tor_assert(!((flags & TAPMP_STAR_IPV4_ONLY)
  608. && (flags & TAPMP_STAR_IPV6_ONLY)));
  609. /** Longest possible length for an address, mask, and port-range combination.
  610. * Includes IP, [], /mask, :, ports */
  611. #define MAX_ADDRESS_LENGTH (TOR_ADDR_BUF_LEN+2+(1+INET_NTOA_BUF_LEN)+12+1)
  612. if (strlen(s) > MAX_ADDRESS_LENGTH) {
  613. log_warn(LD_GENERAL, "Impossibly long IP %s; rejecting", escaped(s));
  614. goto err;
  615. }
  616. base = tor_strdup(s);
  617. /* Break 'base' into separate strings. */
  618. address = base;
  619. if (*address == '[') { /* Probably IPv6 */
  620. address++;
  621. rbracket = strchr(address, ']');
  622. if (!rbracket) {
  623. log_warn(LD_GENERAL,
  624. "No closing IPv6 bracket in address pattern; rejecting.");
  625. goto err;
  626. }
  627. }
  628. mask = strchr((rbracket?rbracket:address),'/');
  629. port = strchr((mask?mask:(rbracket?rbracket:address)), ':');
  630. if (port)
  631. *port++ = '\0';
  632. if (mask)
  633. *mask++ = '\0';
  634. if (rbracket)
  635. *rbracket = '\0';
  636. if (port && mask)
  637. tor_assert(port > mask);
  638. if (mask && rbracket)
  639. tor_assert(mask > rbracket);
  640. /* Now "address" is the a.b.c.d|'*'|abcd::1 part...
  641. * "mask" is the Mask|Maskbits part...
  642. * and "port" is the *|port|min-max part.
  643. */
  644. /* Process the address portion */
  645. memset(addr_out, 0, sizeof(tor_addr_t));
  646. if (!strcmp(address, "*")) {
  647. if (flags & TAPMP_EXTENDED_STAR) {
  648. if (flags & TAPMP_STAR_IPV4_ONLY) {
  649. family = AF_INET;
  650. tor_addr_from_ipv4h(addr_out, 0);
  651. } else if (flags & TAPMP_STAR_IPV6_ONLY) {
  652. static char nil_bytes[16] = { [0]=0,0,0,0, 0,0,0,0, 0,0,0,0, 0,0,0,0 };
  653. family = AF_INET6;
  654. tor_addr_from_ipv6_bytes(addr_out, nil_bytes);
  655. } else {
  656. family = AF_UNSPEC;
  657. tor_addr_make_unspec(addr_out);
  658. log_info(LD_GENERAL,
  659. "'%s' expands into rules which apply to all IPv4 and IPv6 "
  660. "addresses. (Use accept/reject *4:* for IPv4 or "
  661. "accept[6]/reject[6] *6:* for IPv6.)", s);
  662. }
  663. } else {
  664. family = AF_INET;
  665. tor_addr_from_ipv4h(addr_out, 0);
  666. }
  667. any_flag = 1;
  668. } else if (!strcmp(address, "*4") && (flags & TAPMP_EXTENDED_STAR)) {
  669. family = AF_INET;
  670. tor_addr_from_ipv4h(addr_out, 0);
  671. any_flag = 1;
  672. } else if (!strcmp(address, "*6") && (flags & TAPMP_EXTENDED_STAR)) {
  673. static char nil_bytes[16] = { [0]=0,0,0,0, 0,0,0,0, 0,0,0,0, 0,0,0,0 };
  674. family = AF_INET6;
  675. tor_addr_from_ipv6_bytes(addr_out, nil_bytes);
  676. any_flag = 1;
  677. } else if (tor_inet_pton(AF_INET6, address, &in6_tmp) > 0) {
  678. family = AF_INET6;
  679. tor_addr_from_in6(addr_out, &in6_tmp);
  680. } else if (tor_inet_pton(AF_INET, address, &in_tmp) > 0) {
  681. family = AF_INET;
  682. tor_addr_from_in(addr_out, &in_tmp);
  683. } else {
  684. log_warn(LD_GENERAL, "Malformed IP %s in address pattern; rejecting.",
  685. escaped(address));
  686. goto err;
  687. }
  688. v4map = tor_addr_is_v4(addr_out);
  689. /* Parse mask */
  690. if (maskbits_out) {
  691. int bits = 0;
  692. struct in_addr v4mask;
  693. if (mask) { /* the caller (tried to) specify a mask */
  694. bits = (int) strtol(mask, &endptr, 10);
  695. if (!*endptr) { /* strtol converted everything, so it was an integer */
  696. if ((bits<0 || bits>128) ||
  697. (family == AF_INET && bits > 32)) {
  698. log_warn(LD_GENERAL,
  699. "Bad number of mask bits (%d) on address range; rejecting.",
  700. bits);
  701. goto err;
  702. }
  703. } else { /* mask might still be an address-style mask */
  704. if (tor_inet_pton(AF_INET, mask, &v4mask) > 0) {
  705. bits = addr_mask_get_bits(ntohl(v4mask.s_addr));
  706. if (bits < 0) {
  707. log_warn(LD_GENERAL,
  708. "IPv4-style mask %s is not a prefix address; rejecting.",
  709. escaped(mask));
  710. goto err;
  711. }
  712. } else { /* Not IPv4; we don't do address-style IPv6 masks. */
  713. log_warn(LD_GENERAL,
  714. "Malformed mask on address range %s; rejecting.",
  715. escaped(s));
  716. goto err;
  717. }
  718. }
  719. if (family == AF_INET6 && v4map) {
  720. if (bits > 32 && bits < 96) { /* Crazy */
  721. log_warn(LD_GENERAL,
  722. "Bad mask bits %d for V4-mapped V6 address; rejecting.",
  723. bits);
  724. goto err;
  725. }
  726. /* XXXX_IP6 is this really what we want? */
  727. bits = 96 + bits%32; /* map v4-mapped masks onto 96-128 bits */
  728. }
  729. if (any_flag) {
  730. log_warn(LD_GENERAL,
  731. "Found bit prefix with wildcard address; rejecting");
  732. goto err;
  733. }
  734. } else { /* pick an appropriate mask, as none was given */
  735. if (any_flag)
  736. bits = 0; /* This is okay whether it's V6 or V4 (FIX V4-mapped V6!) */
  737. else if (tor_addr_family(addr_out) == AF_INET)
  738. bits = 32;
  739. else if (tor_addr_family(addr_out) == AF_INET6)
  740. bits = 128;
  741. }
  742. *maskbits_out = (maskbits_t) bits;
  743. } else {
  744. if (mask) {
  745. log_warn(LD_GENERAL,
  746. "Unexpected mask in address %s; rejecting", escaped(s));
  747. goto err;
  748. }
  749. }
  750. /* Parse port(s) */
  751. if (port_min_out) {
  752. uint16_t port2;
  753. if (!port_max_out) /* caller specified one port; fake the second one */
  754. port_max_out = &port2;
  755. if (parse_port_range(port, port_min_out, port_max_out) < 0) {
  756. goto err;
  757. } else if ((*port_min_out != *port_max_out) && port_max_out == &port2) {
  758. log_warn(LD_GENERAL,
  759. "Wanted one port from address range, but there are two.");
  760. port_max_out = NULL; /* caller specified one port, so set this back */
  761. goto err;
  762. }
  763. } else {
  764. if (port) {
  765. log_warn(LD_GENERAL,
  766. "Unexpected ports in address %s; rejecting", escaped(s));
  767. goto err;
  768. }
  769. }
  770. tor_free(base);
  771. return tor_addr_family(addr_out);
  772. err:
  773. tor_free(base);
  774. return -1;
  775. }
  776. /** Determine whether an address is IPv4, either native or IPv4-mapped IPv6.
  777. * Note that this is about representation only, as any decent stack will
  778. * reject IPv4-mapped addresses received on the wire (and won't use them
  779. * on the wire either).
  780. */
  781. int
  782. tor_addr_is_v4(const tor_addr_t *addr)
  783. {
  784. tor_assert(addr);
  785. if (tor_addr_family(addr) == AF_INET)
  786. return 1;
  787. if (tor_addr_family(addr) == AF_INET6) {
  788. /* First two don't need to be ordered */
  789. uint32_t *a32 = tor_addr_to_in6_addr32(addr);
  790. if (a32[0] == 0 && a32[1] == 0 && ntohl(a32[2]) == 0x0000ffffu)
  791. return 1;
  792. }
  793. return 0; /* Not IPv4 - unknown family or a full-blood IPv6 address */
  794. }
  795. /** Determine whether an address <b>addr</b> is null, either all zeroes or
  796. * belonging to family AF_UNSPEC.
  797. */
  798. int
  799. tor_addr_is_null(const tor_addr_t *addr)
  800. {
  801. tor_assert(addr);
  802. switch (tor_addr_family(addr)) {
  803. case AF_INET6: {
  804. uint32_t *a32 = tor_addr_to_in6_addr32(addr);
  805. return (a32[0] == 0) && (a32[1] == 0) && (a32[2] == 0) && (a32[3] == 0);
  806. }
  807. case AF_INET:
  808. return (tor_addr_to_ipv4n(addr) == 0);
  809. case AF_UNIX:
  810. return 1;
  811. case AF_UNSPEC:
  812. return 1;
  813. default:
  814. log_warn(LD_BUG, "Called with unknown address family %d",
  815. (int)tor_addr_family(addr));
  816. return 0;
  817. }
  818. //return 1;
  819. }
  820. /** Return true iff <b>addr</b> is a loopback address */
  821. int
  822. tor_addr_is_loopback(const tor_addr_t *addr)
  823. {
  824. tor_assert(addr);
  825. switch (tor_addr_family(addr)) {
  826. case AF_INET6: {
  827. /* ::1 */
  828. uint32_t *a32 = tor_addr_to_in6_addr32(addr);
  829. return (a32[0] == 0) && (a32[1] == 0) && (a32[2] == 0) &&
  830. (ntohl(a32[3]) == 1);
  831. }
  832. case AF_INET:
  833. /* 127.0.0.1 */
  834. return (tor_addr_to_ipv4h(addr) & 0xff000000) == 0x7f000000;
  835. case AF_UNSPEC:
  836. return 0;
  837. default:
  838. tor_fragile_assert();
  839. return 0;
  840. }
  841. }
  842. /** Set <b>dest</b> to equal the IPv4 address in <b>v4addr</b> (given in
  843. * network order). */
  844. void
  845. tor_addr_from_ipv4n(tor_addr_t *dest, uint32_t v4addr)
  846. {
  847. tor_assert(dest);
  848. memset(dest, 0, sizeof(tor_addr_t));
  849. dest->family = AF_INET;
  850. dest->addr.in_addr.s_addr = v4addr;
  851. }
  852. /** Set <b>dest</b> to equal the IPv6 address in the 16 bytes at
  853. * <b>ipv6_bytes</b>. */
  854. void
  855. tor_addr_from_ipv6_bytes(tor_addr_t *dest, const char *ipv6_bytes)
  856. {
  857. tor_assert(dest);
  858. tor_assert(ipv6_bytes);
  859. memset(dest, 0, sizeof(tor_addr_t));
  860. dest->family = AF_INET6;
  861. memcpy(dest->addr.in6_addr.s6_addr, ipv6_bytes, 16);
  862. }
  863. /** Set <b>dest</b> equal to the IPv6 address in the in6_addr <b>in6</b>. */
  864. void
  865. tor_addr_from_in6(tor_addr_t *dest, const struct in6_addr *in6)
  866. {
  867. tor_addr_from_ipv6_bytes(dest, (const char*)in6->s6_addr);
  868. }
  869. /** Copy a tor_addr_t from <b>src</b> to <b>dest</b>.
  870. */
  871. void
  872. tor_addr_copy(tor_addr_t *dest, const tor_addr_t *src)
  873. {
  874. if (src == dest)
  875. return;
  876. tor_assert(src);
  877. tor_assert(dest);
  878. memcpy(dest, src, sizeof(tor_addr_t));
  879. }
  880. /** Copy a tor_addr_t from <b>src</b> to <b>dest</b>, taking extra care to
  881. * copy only the well-defined portions. Used for computing hashes of
  882. * addresses.
  883. */
  884. void
  885. tor_addr_copy_tight(tor_addr_t *dest, const tor_addr_t *src)
  886. {
  887. tor_assert(src != dest);
  888. tor_assert(src);
  889. tor_assert(dest);
  890. memset(dest, 0, sizeof(tor_addr_t));
  891. dest->family = src->family;
  892. switch (tor_addr_family(src))
  893. {
  894. case AF_INET:
  895. dest->addr.in_addr.s_addr = src->addr.in_addr.s_addr;
  896. break;
  897. case AF_INET6:
  898. memcpy(dest->addr.in6_addr.s6_addr, src->addr.in6_addr.s6_addr, 16);
  899. case AF_UNSPEC:
  900. break;
  901. default:
  902. tor_fragile_assert();
  903. }
  904. }
  905. /** Given two addresses <b>addr1</b> and <b>addr2</b>, return 0 if the two
  906. * addresses are equivalent under the mask mbits, less than 0 if addr1
  907. * precedes addr2, and greater than 0 otherwise.
  908. *
  909. * Different address families (IPv4 vs IPv6) are always considered unequal if
  910. * <b>how</b> is CMP_EXACT; otherwise, IPv6-mapped IPv4 addresses are
  911. * considered equivalent to their IPv4 equivalents.
  912. */
  913. int
  914. tor_addr_compare(const tor_addr_t *addr1, const tor_addr_t *addr2,
  915. tor_addr_comparison_t how)
  916. {
  917. return tor_addr_compare_masked(addr1, addr2, 128, how);
  918. }
  919. /** As tor_addr_compare(), but only looks at the first <b>mask</b> bits of
  920. * the address.
  921. *
  922. * Reduce over-specific masks (>128 for ipv6, >32 for ipv4) to 128 or 32.
  923. *
  924. * The mask is interpreted relative to <b>addr1</b>, so that if a is
  925. * \::ffff:1.2.3.4, and b is 3.4.5.6,
  926. * tor_addr_compare_masked(a,b,100,CMP_SEMANTIC) is the same as
  927. * -tor_addr_compare_masked(b,a,4,CMP_SEMANTIC).
  928. *
  929. * We guarantee that the ordering from tor_addr_compare_masked is a total
  930. * order on addresses, but not that it is any particular order, or that it
  931. * will be the same from one version to the next.
  932. */
  933. int
  934. tor_addr_compare_masked(const tor_addr_t *addr1, const tor_addr_t *addr2,
  935. maskbits_t mbits, tor_addr_comparison_t how)
  936. {
  937. /** Helper: Evaluates to -1 if a is less than b, 0 if a equals b, or 1 if a
  938. * is greater than b. May evaluate a and b more than once. */
  939. #define TRISTATE(a,b) (((a)<(b))?-1: (((a)==(b))?0:1))
  940. sa_family_t family1, family2, v_family1, v_family2;
  941. tor_assert(addr1 && addr2);
  942. v_family1 = family1 = tor_addr_family(addr1);
  943. v_family2 = family2 = tor_addr_family(addr2);
  944. if (family1==family2) {
  945. /* When the families are the same, there's only one way to do the
  946. * comparison: exactly. */
  947. int r;
  948. switch (family1) {
  949. case AF_UNSPEC:
  950. return 0; /* All unspecified addresses are equal */
  951. case AF_INET: {
  952. uint32_t a1 = tor_addr_to_ipv4h(addr1);
  953. uint32_t a2 = tor_addr_to_ipv4h(addr2);
  954. if (mbits <= 0)
  955. return 0;
  956. if (mbits > 32)
  957. mbits = 32;
  958. a1 >>= (32-mbits);
  959. a2 >>= (32-mbits);
  960. r = TRISTATE(a1, a2);
  961. return r;
  962. }
  963. case AF_INET6: {
  964. if (mbits > 128)
  965. mbits = 128;
  966. const uint8_t *a1 = tor_addr_to_in6_addr8(addr1);
  967. const uint8_t *a2 = tor_addr_to_in6_addr8(addr2);
  968. const int bytes = mbits >> 3;
  969. const int leftover_bits = mbits & 7;
  970. if (bytes && (r = tor_memcmp(a1, a2, bytes))) {
  971. return r;
  972. } else if (leftover_bits) {
  973. uint8_t b1 = a1[bytes] >> (8-leftover_bits);
  974. uint8_t b2 = a2[bytes] >> (8-leftover_bits);
  975. return TRISTATE(b1, b2);
  976. } else {
  977. return 0;
  978. }
  979. }
  980. default:
  981. tor_fragile_assert();
  982. return 0;
  983. }
  984. } else if (how == CMP_EXACT) {
  985. /* Unequal families and an exact comparison? Stop now! */
  986. return TRISTATE(family1, family2);
  987. }
  988. if (mbits == 0)
  989. return 0;
  990. if (family1 == AF_INET6 && tor_addr_is_v4(addr1))
  991. v_family1 = AF_INET;
  992. if (family2 == AF_INET6 && tor_addr_is_v4(addr2))
  993. v_family2 = AF_INET;
  994. if (v_family1 == v_family2) {
  995. /* One or both addresses are a mapped ipv4 address. */
  996. uint32_t a1, a2;
  997. if (family1 == AF_INET6) {
  998. a1 = tor_addr_to_mapped_ipv4h(addr1);
  999. if (mbits <= 96)
  1000. return 0;
  1001. mbits -= 96; /* We just decided that the first 96 bits of a1 "match". */
  1002. } else {
  1003. a1 = tor_addr_to_ipv4h(addr1);
  1004. }
  1005. if (family2 == AF_INET6) {
  1006. a2 = tor_addr_to_mapped_ipv4h(addr2);
  1007. } else {
  1008. a2 = tor_addr_to_ipv4h(addr2);
  1009. }
  1010. if (mbits > 32) mbits = 32;
  1011. a1 >>= (32-mbits);
  1012. a2 >>= (32-mbits);
  1013. return TRISTATE(a1, a2);
  1014. } else {
  1015. /* Unequal families, and semantic comparison, and no semantic family
  1016. * matches. */
  1017. return TRISTATE(family1, family2);
  1018. }
  1019. }
  1020. /** Return a hash code based on the address addr. DOCDOC extra */
  1021. uint64_t
  1022. tor_addr_hash(const tor_addr_t *addr)
  1023. {
  1024. switch (tor_addr_family(addr)) {
  1025. case AF_INET:
  1026. return siphash24g(&addr->addr.in_addr.s_addr, 4);
  1027. case AF_UNSPEC:
  1028. return 0x4e4d5342;
  1029. case AF_INET6:
  1030. return siphash24g(&addr->addr.in6_addr.s6_addr, 16);
  1031. default:
  1032. tor_fragile_assert();
  1033. return 0;
  1034. }
  1035. }
  1036. /** Return a newly allocated string with a representation of <b>addr</b>. */
  1037. char *
  1038. tor_dup_addr(const tor_addr_t *addr)
  1039. {
  1040. char buf[TOR_ADDR_BUF_LEN];
  1041. if (tor_addr_to_str(buf, addr, sizeof(buf), 0)) {
  1042. return tor_strdup(buf);
  1043. } else {
  1044. return tor_strdup("<unknown address type>");
  1045. }
  1046. }
  1047. /** Return a string representing the address <b>addr</b>. This string
  1048. * is statically allocated, and must not be freed. Each call to
  1049. * <b>fmt_addr_impl</b> invalidates the last result of the function.
  1050. * This function is not thread-safe. If <b>decorate</b> is set, add
  1051. * brackets to IPv6 addresses.
  1052. *
  1053. * It's better to use the wrapper macros of this function:
  1054. * <b>fmt_addr()</b> and <b>fmt_and_decorate_addr()</b>.
  1055. */
  1056. const char *
  1057. fmt_addr_impl(const tor_addr_t *addr, int decorate)
  1058. {
  1059. static char buf[TOR_ADDR_BUF_LEN];
  1060. if (!addr) return "<null>";
  1061. if (tor_addr_to_str(buf, addr, sizeof(buf), decorate))
  1062. return buf;
  1063. else
  1064. return "???";
  1065. }
  1066. /** Return a string representing the pair <b>addr</b> and <b>port</b>.
  1067. * This calls fmt_and_decorate_addr internally, so IPv6 addresses will
  1068. * have brackets, and the caveats of fmt_addr_impl apply.
  1069. */
  1070. const char *
  1071. fmt_addrport(const tor_addr_t *addr, uint16_t port)
  1072. {
  1073. /* Add space for a colon and up to 5 digits. */
  1074. static char buf[TOR_ADDR_BUF_LEN + 6];
  1075. tor_snprintf(buf, sizeof(buf), "%s:%u", fmt_and_decorate_addr(addr), port);
  1076. return buf;
  1077. }
  1078. /** Like fmt_addr(), but takes <b>addr</b> as a host-order IPv4
  1079. * addresses. Also not thread-safe, also clobbers its return buffer on
  1080. * repeated calls. */
  1081. const char *
  1082. fmt_addr32(uint32_t addr)
  1083. {
  1084. static char buf[INET_NTOA_BUF_LEN];
  1085. struct in_addr in;
  1086. in.s_addr = htonl(addr);
  1087. tor_inet_ntoa(&in, buf, sizeof(buf));
  1088. return buf;
  1089. }
  1090. /** Convert the string in <b>src</b> to a tor_addr_t <b>addr</b>. The string
  1091. * may be an IPv4 address, an IPv6 address, or an IPv6 address surrounded by
  1092. * square brackets.
  1093. *
  1094. * Return an address family on success, or -1 if an invalid address string is
  1095. * provided. */
  1096. int
  1097. tor_addr_parse(tor_addr_t *addr, const char *src)
  1098. {
  1099. /* Holds substring of IPv6 address after removing square brackets */
  1100. char *tmp = NULL;
  1101. int result;
  1102. struct in_addr in_tmp;
  1103. struct in6_addr in6_tmp;
  1104. tor_assert(addr && src);
  1105. if (src[0] == '[' && src[1])
  1106. src = tmp = tor_strndup(src+1, strlen(src)-2);
  1107. if (tor_inet_pton(AF_INET6, src, &in6_tmp) > 0) {
  1108. result = AF_INET6;
  1109. tor_addr_from_in6(addr, &in6_tmp);
  1110. } else if (tor_inet_pton(AF_INET, src, &in_tmp) > 0) {
  1111. result = AF_INET;
  1112. tor_addr_from_in(addr, &in_tmp);
  1113. } else {
  1114. result = -1;
  1115. }
  1116. tor_free(tmp);
  1117. return result;
  1118. }
  1119. /** Parse an address or address-port combination from <b>s</b>, resolve the
  1120. * address as needed, and put the result in <b>addr_out</b> and (optionally)
  1121. * <b>port_out</b>. Return 0 on success, negative on failure. */
  1122. int
  1123. tor_addr_port_lookup(const char *s, tor_addr_t *addr_out, uint16_t *port_out)
  1124. {
  1125. const char *port;
  1126. tor_addr_t addr;
  1127. uint16_t portval;
  1128. char *tmp = NULL;
  1129. tor_assert(s);
  1130. tor_assert(addr_out);
  1131. s = eat_whitespace(s);
  1132. if (*s == '[') {
  1133. port = strstr(s, "]");
  1134. if (!port)
  1135. goto err;
  1136. tmp = tor_strndup(s+1, port-(s+1));
  1137. port = port+1;
  1138. if (*port == ':')
  1139. port++;
  1140. else
  1141. port = NULL;
  1142. } else {
  1143. port = strchr(s, ':');
  1144. if (port)
  1145. tmp = tor_strndup(s, port-s);
  1146. else
  1147. tmp = tor_strdup(s);
  1148. if (port)
  1149. ++port;
  1150. }
  1151. if (tor_addr_lookup(tmp, AF_UNSPEC, &addr) != 0)
  1152. goto err;
  1153. tor_free(tmp);
  1154. if (port) {
  1155. portval = (int) tor_parse_long(port, 10, 1, 65535, NULL, NULL);
  1156. if (!portval)
  1157. goto err;
  1158. } else {
  1159. portval = 0;
  1160. }
  1161. if (port_out)
  1162. *port_out = portval;
  1163. tor_addr_copy(addr_out, &addr);
  1164. return 0;
  1165. err:
  1166. tor_free(tmp);
  1167. return -1;
  1168. }
  1169. #ifdef _WIN32
  1170. typedef ULONG (WINAPI *GetAdaptersAddresses_fn_t)(
  1171. ULONG, ULONG, PVOID, PIP_ADAPTER_ADDRESSES, PULONG);
  1172. #endif
  1173. #ifdef HAVE_IFADDRS_TO_SMARTLIST
  1174. /*
  1175. * Convert a linked list consisting of <b>ifaddrs</b> structures
  1176. * into smartlist of <b>tor_addr_t</b> structures.
  1177. */
  1178. STATIC smartlist_t *
  1179. ifaddrs_to_smartlist(const struct ifaddrs *ifa, sa_family_t family)
  1180. {
  1181. smartlist_t *result = smartlist_new();
  1182. const struct ifaddrs *i;
  1183. for (i = ifa; i; i = i->ifa_next) {
  1184. tor_addr_t tmp;
  1185. if ((i->ifa_flags & (IFF_UP | IFF_RUNNING)) != (IFF_UP | IFF_RUNNING))
  1186. continue;
  1187. if (!i->ifa_addr)
  1188. continue;
  1189. if (i->ifa_addr->sa_family != AF_INET &&
  1190. i->ifa_addr->sa_family != AF_INET6)
  1191. continue;
  1192. if (family != AF_UNSPEC && i->ifa_addr->sa_family != family)
  1193. continue;
  1194. if (tor_addr_from_sockaddr(&tmp, i->ifa_addr, NULL) < 0)
  1195. continue;
  1196. smartlist_add(result, tor_memdup(&tmp, sizeof(tmp)));
  1197. }
  1198. return result;
  1199. }
  1200. /** Use getiffaddrs() function to get list of current machine
  1201. * network interface addresses. Represent the result by smartlist of
  1202. * <b>tor_addr_t</b> structures.
  1203. */
  1204. STATIC smartlist_t *
  1205. get_interface_addresses_ifaddrs(int severity, sa_family_t family)
  1206. {
  1207. /* Most free Unixy systems provide getifaddrs, which gives us a linked list
  1208. * of struct ifaddrs. */
  1209. struct ifaddrs *ifa = NULL;
  1210. smartlist_t *result;
  1211. if (getifaddrs(&ifa) < 0) {
  1212. log_fn(severity, LD_NET, "Unable to call getifaddrs(): %s",
  1213. strerror(errno));
  1214. return NULL;
  1215. }
  1216. result = ifaddrs_to_smartlist(ifa, family);
  1217. freeifaddrs(ifa);
  1218. return result;
  1219. }
  1220. #endif
  1221. #ifdef HAVE_IP_ADAPTER_TO_SMARTLIST
  1222. /** Convert a Windows-specific <b>addresses</b> linked list into smartlist
  1223. * of <b>tor_addr_t</b> structures.
  1224. */
  1225. STATIC smartlist_t *
  1226. ip_adapter_addresses_to_smartlist(const IP_ADAPTER_ADDRESSES *addresses)
  1227. {
  1228. smartlist_t *result = smartlist_new();
  1229. const IP_ADAPTER_ADDRESSES *address;
  1230. for (address = addresses; address; address = address->Next) {
  1231. const IP_ADAPTER_UNICAST_ADDRESS *a;
  1232. for (a = address->FirstUnicastAddress; a; a = a->Next) {
  1233. /* Yes, it's a linked list inside a linked list */
  1234. const struct sockaddr *sa = a->Address.lpSockaddr;
  1235. tor_addr_t tmp;
  1236. if (sa->sa_family != AF_INET && sa->sa_family != AF_INET6)
  1237. continue;
  1238. if (tor_addr_from_sockaddr(&tmp, sa, NULL) < 0)
  1239. continue;
  1240. smartlist_add(result, tor_memdup(&tmp, sizeof(tmp)));
  1241. }
  1242. }
  1243. return result;
  1244. }
  1245. /** Windows only: use GetAdaptersInfo() function to retrieve network interface
  1246. * addresses of current machine and return them to caller as smartlist of
  1247. * <b>tor_addr_t</b> structures.
  1248. */
  1249. STATIC smartlist_t *
  1250. get_interface_addresses_win32(int severity, sa_family_t family)
  1251. {
  1252. /* Windows XP began to provide GetAdaptersAddresses. Windows 2000 had a
  1253. "GetAdaptersInfo", but that's deprecated; let's just try
  1254. GetAdaptersAddresses and fall back to connect+getsockname.
  1255. */
  1256. HANDLE lib = load_windows_system_library(TEXT("iphlpapi.dll"));
  1257. smartlist_t *result = NULL;
  1258. GetAdaptersAddresses_fn_t fn;
  1259. ULONG size, res;
  1260. IP_ADAPTER_ADDRESSES *addresses = NULL;
  1261. (void) severity;
  1262. #define FLAGS (GAA_FLAG_SKIP_ANYCAST | \
  1263. GAA_FLAG_SKIP_MULTICAST | \
  1264. GAA_FLAG_SKIP_DNS_SERVER)
  1265. if (!lib) {
  1266. log_fn(severity, LD_NET, "Unable to load iphlpapi.dll");
  1267. goto done;
  1268. }
  1269. if (!(fn = (GetAdaptersAddresses_fn_t)
  1270. GetProcAddress(lib, "GetAdaptersAddresses"))) {
  1271. log_fn(severity, LD_NET, "Unable to obtain pointer to "
  1272. "GetAdaptersAddresses");
  1273. goto done;
  1274. }
  1275. /* Guess how much space we need. */
  1276. size = 15*1024;
  1277. addresses = tor_malloc(size);
  1278. res = fn(family, FLAGS, NULL, addresses, &size);
  1279. if (res == ERROR_BUFFER_OVERFLOW) {
  1280. /* we didn't guess that we needed enough space; try again */
  1281. tor_free(addresses);
  1282. addresses = tor_malloc(size);
  1283. res = fn(AF_UNSPEC, FLAGS, NULL, addresses, &size);
  1284. }
  1285. if (res != NO_ERROR) {
  1286. log_fn(severity, LD_NET, "GetAdaptersAddresses failed (result: %lu)", res);
  1287. goto done;
  1288. }
  1289. result = ip_adapter_addresses_to_smartlist(addresses);
  1290. done:
  1291. if (lib)
  1292. FreeLibrary(lib);
  1293. tor_free(addresses);
  1294. return result;
  1295. }
  1296. #endif
  1297. #ifdef HAVE_IFCONF_TO_SMARTLIST
  1298. /* Guess how much space we need. There shouldn't be any struct ifreqs
  1299. * larger than this, even on OS X where the struct's size is dynamic. */
  1300. #define IFREQ_SIZE 4096
  1301. /* This is defined on Mac OS X */
  1302. #ifndef _SIZEOF_ADDR_IFREQ
  1303. #define _SIZEOF_ADDR_IFREQ sizeof
  1304. #endif
  1305. /** Convert <b>*buf</b>, an ifreq structure array of size <b>buflen</b>,
  1306. * into smartlist of <b>tor_addr_t</b> structures.
  1307. */
  1308. STATIC smartlist_t *
  1309. ifreq_to_smartlist(char *buf, size_t buflen)
  1310. {
  1311. smartlist_t *result = smartlist_new();
  1312. char *end = buf + buflen;
  1313. /* These acrobatics are due to alignment issues which trigger
  1314. * undefined behaviour traps on OSX. */
  1315. struct ifreq *r = tor_malloc(IFREQ_SIZE);
  1316. while (buf < end) {
  1317. /* Copy up to IFREQ_SIZE bytes into the struct ifreq, but don't overrun
  1318. * buf. */
  1319. memcpy(r, buf, end - buf < IFREQ_SIZE ? end - buf : IFREQ_SIZE);
  1320. const struct sockaddr *sa = &r->ifr_addr;
  1321. tor_addr_t tmp;
  1322. int valid_sa_family = (sa->sa_family == AF_INET ||
  1323. sa->sa_family == AF_INET6);
  1324. int conversion_success = (tor_addr_from_sockaddr(&tmp, sa, NULL) == 0);
  1325. if (valid_sa_family && conversion_success)
  1326. smartlist_add(result, tor_memdup(&tmp, sizeof(tmp)));
  1327. buf += _SIZEOF_ADDR_IFREQ(*r);
  1328. }
  1329. tor_free(r);
  1330. return result;
  1331. }
  1332. /** Use ioctl(.,SIOCGIFCONF,.) to get a list of current machine
  1333. * network interface addresses. Represent the result by smartlist of
  1334. * <b>tor_addr_t</b> structures.
  1335. */
  1336. STATIC smartlist_t *
  1337. get_interface_addresses_ioctl(int severity, sa_family_t family)
  1338. {
  1339. /* Some older unixy systems make us use ioctl(SIOCGIFCONF) */
  1340. struct ifconf ifc;
  1341. int fd;
  1342. smartlist_t *result = NULL;
  1343. /* This interface, AFAICT, only supports AF_INET addresses,
  1344. * except on AIX. For Solaris, we could use SIOCGLIFCONF. */
  1345. /* Bail out if family is neither AF_INET nor AF_UNSPEC since
  1346. * ioctl() technique supports non-IPv4 interface addresses on
  1347. * a small number of niche systems only. If family is AF_UNSPEC,
  1348. * fall back to getting AF_INET addresses only. */
  1349. if (family == AF_UNSPEC)
  1350. family = AF_INET;
  1351. else if (family != AF_INET)
  1352. return NULL;
  1353. fd = socket(family, SOCK_DGRAM, 0);
  1354. if (fd < 0) {
  1355. tor_log(severity, LD_NET, "socket failed: %s", strerror(errno));
  1356. goto done;
  1357. }
  1358. int mult = 1;
  1359. ifc.ifc_buf = NULL;
  1360. do {
  1361. mult *= 2;
  1362. ifc.ifc_len = mult * IFREQ_SIZE;
  1363. ifc.ifc_buf = tor_realloc(ifc.ifc_buf, ifc.ifc_len);
  1364. tor_assert(ifc.ifc_buf);
  1365. if (ioctl(fd, SIOCGIFCONF, &ifc) < 0) {
  1366. tor_log(severity, LD_NET, "ioctl failed: %s", strerror(errno));
  1367. goto done;
  1368. }
  1369. /* Ensure we have least IFREQ_SIZE bytes unused at the end. Otherwise, we
  1370. * don't know if we got everything during ioctl. */
  1371. } while (mult * IFREQ_SIZE - ifc.ifc_len <= IFREQ_SIZE);
  1372. result = ifreq_to_smartlist(ifc.ifc_buf, ifc.ifc_len);
  1373. done:
  1374. if (fd >= 0)
  1375. close(fd);
  1376. tor_free(ifc.ifc_buf);
  1377. return result;
  1378. }
  1379. #endif
  1380. /** Try to ask our network interfaces what addresses they are bound to.
  1381. * Return a new smartlist of tor_addr_t on success, and NULL on failure.
  1382. * (An empty smartlist indicates that we successfully learned that we have no
  1383. * addresses.) Log failure messages at <b>severity</b>. Only return the
  1384. * interface addresses of requested <b>family</b> and ignore the addresses
  1385. * of other address families. */
  1386. MOCK_IMPL(smartlist_t *,
  1387. get_interface_addresses_raw,(int severity, sa_family_t family))
  1388. {
  1389. smartlist_t *result = NULL;
  1390. #if defined(HAVE_IFADDRS_TO_SMARTLIST)
  1391. if ((result = get_interface_addresses_ifaddrs(severity, family)))
  1392. return result;
  1393. #endif
  1394. #if defined(HAVE_IP_ADAPTER_TO_SMARTLIST)
  1395. if ((result = get_interface_addresses_win32(severity, family)))
  1396. return result;
  1397. #endif
  1398. #if defined(HAVE_IFCONF_TO_SMARTLIST)
  1399. if ((result = get_interface_addresses_ioctl(severity, family)))
  1400. return result;
  1401. #endif
  1402. (void) severity;
  1403. return NULL;
  1404. }
  1405. /** Return true iff <b>a</b> is a multicast address. */
  1406. int
  1407. tor_addr_is_multicast(const tor_addr_t *a)
  1408. {
  1409. sa_family_t family = tor_addr_family(a);
  1410. if (family == AF_INET) {
  1411. uint32_t ipv4h = tor_addr_to_ipv4h(a);
  1412. if ((ipv4h >> 24) == 0xe0)
  1413. return 1; /* Multicast */
  1414. } else if (family == AF_INET6) {
  1415. const uint8_t *a32 = tor_addr_to_in6_addr8(a);
  1416. if (a32[0] == 0xff)
  1417. return 1;
  1418. }
  1419. return 0;
  1420. }
  1421. /** Attempt to retrieve IP address of current host by utilizing some
  1422. * UDP socket trickery. Only look for address of given <b>family</b>
  1423. * (only AF_INET and AF_INET6 are supported). Set result to *<b>addr</b>.
  1424. * Return 0 on success, -1 on failure.
  1425. */
  1426. MOCK_IMPL(int,
  1427. get_interface_address6_via_udp_socket_hack,(int severity,
  1428. sa_family_t family,
  1429. tor_addr_t *addr))
  1430. {
  1431. struct sockaddr_storage my_addr, target_addr;
  1432. int sock=-1, r=-1;
  1433. socklen_t addr_len;
  1434. memset(addr, 0, sizeof(tor_addr_t));
  1435. memset(&target_addr, 0, sizeof(target_addr));
  1436. /* Don't worry: no packets are sent. We just need to use a real address
  1437. * on the actual Internet. */
  1438. if (family == AF_INET6) {
  1439. struct sockaddr_in6 *sin6 = (struct sockaddr_in6*)&target_addr;
  1440. /* Use the "discard" service port */
  1441. sin6->sin6_port = htons(9);
  1442. sock = tor_open_socket(PF_INET6,SOCK_DGRAM,IPPROTO_UDP);
  1443. addr_len = (socklen_t)sizeof(struct sockaddr_in6);
  1444. sin6->sin6_family = AF_INET6;
  1445. S6_ADDR16(sin6->sin6_addr)[0] = htons(0x2002); /* 2002:: */
  1446. } else if (family == AF_INET) {
  1447. struct sockaddr_in *sin = (struct sockaddr_in*)&target_addr;
  1448. /* Use the "discard" service port */
  1449. sin->sin_port = htons(9);
  1450. sock = tor_open_socket(PF_INET,SOCK_DGRAM,IPPROTO_UDP);
  1451. addr_len = (socklen_t)sizeof(struct sockaddr_in);
  1452. sin->sin_family = AF_INET;
  1453. sin->sin_addr.s_addr = htonl(0x12000001); /* 18.0.0.1 */
  1454. } else {
  1455. return -1;
  1456. }
  1457. if (sock < 0) {
  1458. int e = tor_socket_errno(-1);
  1459. log_fn(severity, LD_NET, "unable to create socket: %s",
  1460. tor_socket_strerror(e));
  1461. goto err;
  1462. }
  1463. if (tor_connect_socket(sock,(struct sockaddr *)&target_addr,
  1464. addr_len) < 0) {
  1465. int e = tor_socket_errno(sock);
  1466. log_fn(severity, LD_NET, "connect() failed: %s", tor_socket_strerror(e));
  1467. goto err;
  1468. }
  1469. if (tor_getsockname(sock,(struct sockaddr*)&my_addr, &addr_len)) {
  1470. int e = tor_socket_errno(sock);
  1471. log_fn(severity, LD_NET, "getsockname() to determine interface failed: %s",
  1472. tor_socket_strerror(e));
  1473. goto err;
  1474. }
  1475. if (tor_addr_from_sockaddr(addr, (struct sockaddr*)&my_addr, NULL) == 0) {
  1476. if (tor_addr_is_loopback(addr) || tor_addr_is_multicast(addr)) {
  1477. log_fn(severity, LD_NET, "Address that we determined via UDP socket"
  1478. " magic is unsuitable for public comms.");
  1479. } else {
  1480. r=0;
  1481. }
  1482. }
  1483. err:
  1484. if (sock >= 0)
  1485. tor_close_socket(sock);
  1486. if (r == -1)
  1487. memset(addr, 0, sizeof(tor_addr_t));
  1488. return r;
  1489. }
  1490. /** Set *<b>addr</b> to an arbitrary IP address (if any) of an interface that
  1491. * connects to the Internet. Prefer public IP addresses to internal IP
  1492. * addresses. This address should only be used in checking whether our
  1493. * address has changed, as it may be an internal IP address. Return 0 on
  1494. * success, -1 on failure.
  1495. * Prefer get_interface_address6_list for a list of all addresses on all
  1496. * interfaces which connect to the Internet.
  1497. */
  1498. MOCK_IMPL(int,
  1499. get_interface_address6,(int severity, sa_family_t family, tor_addr_t *addr))
  1500. {
  1501. smartlist_t *addrs;
  1502. int rv = -1;
  1503. tor_assert(addr);
  1504. memset(addr, 0, sizeof(tor_addr_t));
  1505. /* Get a list of public or internal IPs in arbitrary order */
  1506. addrs = get_interface_address6_list(severity, family, 1);
  1507. /* Find the first non-internal address, or the last internal address
  1508. * Ideally, we want the default route, see #12377 for details */
  1509. SMARTLIST_FOREACH_BEGIN(addrs, tor_addr_t *, a) {
  1510. tor_addr_copy(addr, a);
  1511. rv = 0;
  1512. /* If we found a non-internal address, declare success. Otherwise,
  1513. * keep looking. */
  1514. if (!tor_addr_is_internal(a, 0))
  1515. break;
  1516. } SMARTLIST_FOREACH_END(a);
  1517. free_interface_address6_list(addrs);
  1518. return rv;
  1519. }
  1520. /** Free a smartlist of IP addresses returned by get_interface_address6_list.
  1521. */
  1522. void
  1523. free_interface_address6_list(smartlist_t *addrs)
  1524. {
  1525. if (addrs != NULL) {
  1526. SMARTLIST_FOREACH(addrs, tor_addr_t *, a, tor_free(a));
  1527. smartlist_free(addrs);
  1528. }
  1529. }
  1530. /** Return a smartlist of the IP addresses of type family from all interfaces
  1531. * on the server. Excludes loopback and multicast addresses. Only includes
  1532. * internal addresses if include_internal is true. (Note that a relay behind
  1533. * NAT may use an internal address to connect to the Internet.)
  1534. * An empty smartlist means that there are no addresses of the selected type
  1535. * matching these criteria.
  1536. * Returns NULL on failure.
  1537. * Use free_interface_address6_list to free the returned list.
  1538. */
  1539. MOCK_IMPL(smartlist_t *,get_interface_address6_list,(int severity,
  1540. sa_family_t family,
  1541. int include_internal))
  1542. {
  1543. smartlist_t *addrs;
  1544. tor_addr_t addr;
  1545. /* Try to do this the smart way if possible. */
  1546. if ((addrs = get_interface_addresses_raw(severity, family))) {
  1547. SMARTLIST_FOREACH_BEGIN(addrs, tor_addr_t *, a)
  1548. {
  1549. if (tor_addr_is_loopback(a) ||
  1550. tor_addr_is_multicast(a)) {
  1551. SMARTLIST_DEL_CURRENT(addrs, a);
  1552. tor_free(a);
  1553. continue;
  1554. }
  1555. if (!include_internal && tor_addr_is_internal(a, 0)) {
  1556. SMARTLIST_DEL_CURRENT(addrs, a);
  1557. tor_free(a);
  1558. continue;
  1559. }
  1560. } SMARTLIST_FOREACH_END(a);
  1561. }
  1562. if (addrs && smartlist_len(addrs) > 0) {
  1563. return addrs;
  1564. }
  1565. /* if we removed all entries as unsuitable */
  1566. if (addrs) {
  1567. smartlist_free(addrs);
  1568. }
  1569. /* Okay, the smart way is out. */
  1570. addrs = smartlist_new();
  1571. if (family == AF_INET || family == AF_UNSPEC) {
  1572. if (get_interface_address6_via_udp_socket_hack(severity,AF_INET,
  1573. &addr) == 0) {
  1574. if (include_internal || !tor_addr_is_internal(&addr, 0)) {
  1575. smartlist_add(addrs, tor_dup_addr(&addr));
  1576. }
  1577. }
  1578. }
  1579. if (family == AF_INET6 || family == AF_UNSPEC) {
  1580. if (get_interface_address6_via_udp_socket_hack(severity,AF_INET6,
  1581. &addr) == 0) {
  1582. if (include_internal || !tor_addr_is_internal(&addr, 0)) {
  1583. smartlist_add(addrs, tor_dup_addr(&addr));
  1584. }
  1585. }
  1586. }
  1587. return addrs;
  1588. }
  1589. /* ======
  1590. * IPv4 helpers
  1591. * XXXX024 IPv6 deprecate some of these.
  1592. */
  1593. /** Given an address of the form "ip:port", try to divide it into its
  1594. * ip and port portions, setting *<b>address_out</b> to a newly
  1595. * allocated string holding the address portion and *<b>port_out</b>
  1596. * to the port.
  1597. *
  1598. * Don't do DNS lookups and don't allow domain names in the "ip" field.
  1599. *
  1600. * If <b>default_port</b> is less than 0, don't accept <b>addrport</b> of the
  1601. * form "ip" or "ip:0". Otherwise, accept those forms, and set
  1602. * *<b>port_out</b> to <b>default_port</b>.
  1603. *
  1604. * Return 0 on success, -1 on failure. */
  1605. int
  1606. tor_addr_port_parse(int severity, const char *addrport,
  1607. tor_addr_t *address_out, uint16_t *port_out,
  1608. int default_port)
  1609. {
  1610. int retval = -1;
  1611. int r;
  1612. char *addr_tmp = NULL;
  1613. tor_assert(addrport);
  1614. tor_assert(address_out);
  1615. tor_assert(port_out);
  1616. r = tor_addr_port_split(severity, addrport, &addr_tmp, port_out);
  1617. if (r < 0)
  1618. goto done;
  1619. if (!*port_out) {
  1620. if (default_port >= 0)
  1621. *port_out = default_port;
  1622. else
  1623. goto done;
  1624. }
  1625. /* make sure that address_out is an IP address */
  1626. if (tor_addr_parse(address_out, addr_tmp) < 0)
  1627. goto done;
  1628. retval = 0;
  1629. done:
  1630. tor_free(addr_tmp);
  1631. return retval;
  1632. }
  1633. /** Given an address of the form "host[:port]", try to divide it into its host
  1634. * and port portions, setting *<b>address_out</b> to a newly allocated string
  1635. * holding the address portion and *<b>port_out</b> to the port (or 0 if no
  1636. * port is given). Return 0 on success, -1 on failure. */
  1637. int
  1638. tor_addr_port_split(int severity, const char *addrport,
  1639. char **address_out, uint16_t *port_out)
  1640. {
  1641. tor_addr_t a_tmp;
  1642. tor_assert(addrport);
  1643. tor_assert(address_out);
  1644. tor_assert(port_out);
  1645. /* We need to check for IPv6 manually because addr_port_lookup() doesn't
  1646. * do a good job on IPv6 addresses that lack a port. */
  1647. if (tor_addr_parse(&a_tmp, addrport) == AF_INET6) {
  1648. *port_out = 0;
  1649. *address_out = tor_strdup(addrport);
  1650. return 0;
  1651. }
  1652. return addr_port_lookup(severity, addrport, address_out, NULL, port_out);
  1653. }
  1654. /** Parse a string of the form "host[:port]" from <b>addrport</b>. If
  1655. * <b>address</b> is provided, set *<b>address</b> to a copy of the
  1656. * host portion of the string. If <b>addr</b> is provided, try to
  1657. * resolve the host portion of the string and store it into
  1658. * *<b>addr</b> (in host byte order). If <b>port_out</b> is provided,
  1659. * store the port number into *<b>port_out</b>, or 0 if no port is given.
  1660. * If <b>port_out</b> is NULL, then there must be no port number in
  1661. * <b>addrport</b>.
  1662. * Return 0 on success, -1 on failure.
  1663. */
  1664. int
  1665. addr_port_lookup(int severity, const char *addrport, char **address,
  1666. uint32_t *addr, uint16_t *port_out)
  1667. {
  1668. const char *colon;
  1669. char *address_ = NULL;
  1670. int port_;
  1671. int ok = 1;
  1672. tor_assert(addrport);
  1673. colon = strrchr(addrport, ':');
  1674. if (colon) {
  1675. address_ = tor_strndup(addrport, colon-addrport);
  1676. port_ = (int) tor_parse_long(colon+1,10,1,65535,NULL,NULL);
  1677. if (!port_) {
  1678. log_fn(severity, LD_GENERAL, "Port %s out of range", escaped(colon+1));
  1679. ok = 0;
  1680. }
  1681. if (!port_out) {
  1682. char *esc_addrport = esc_for_log(addrport);
  1683. log_fn(severity, LD_GENERAL,
  1684. "Port %s given on %s when not required",
  1685. escaped(colon+1), esc_addrport);
  1686. tor_free(esc_addrport);
  1687. ok = 0;
  1688. }
  1689. } else {
  1690. address_ = tor_strdup(addrport);
  1691. port_ = 0;
  1692. }
  1693. if (addr) {
  1694. /* There's an addr pointer, so we need to resolve the hostname. */
  1695. if (tor_lookup_hostname(address_,addr)) {
  1696. log_fn(severity, LD_NET, "Couldn't look up %s", escaped(address_));
  1697. ok = 0;
  1698. *addr = 0;
  1699. }
  1700. }
  1701. if (address && ok) {
  1702. *address = address_;
  1703. } else {
  1704. if (address)
  1705. *address = NULL;
  1706. tor_free(address_);
  1707. }
  1708. if (port_out)
  1709. *port_out = ok ? ((uint16_t) port_) : 0;
  1710. return ok ? 0 : -1;
  1711. }
  1712. /** If <b>mask</b> is an address mask for a bit-prefix, return the number of
  1713. * bits. Otherwise, return -1. */
  1714. int
  1715. addr_mask_get_bits(uint32_t mask)
  1716. {
  1717. int i;
  1718. if (mask == 0)
  1719. return 0;
  1720. if (mask == 0xFFFFFFFFu)
  1721. return 32;
  1722. for (i=1; i<=32; ++i) {
  1723. if (mask == (uint32_t) ~((1u<<(32-i))-1)) {
  1724. return i;
  1725. }
  1726. }
  1727. return -1;
  1728. }
  1729. /** Parse a string <b>s</b> in the format of (*|port(-maxport)?)?, setting the
  1730. * various *out pointers as appropriate. Return 0 on success, -1 on failure.
  1731. */
  1732. int
  1733. parse_port_range(const char *port, uint16_t *port_min_out,
  1734. uint16_t *port_max_out)
  1735. {
  1736. int port_min, port_max, ok;
  1737. tor_assert(port_min_out);
  1738. tor_assert(port_max_out);
  1739. if (!port || *port == '\0' || strcmp(port, "*") == 0) {
  1740. port_min = 1;
  1741. port_max = 65535;
  1742. } else {
  1743. char *endptr = NULL;
  1744. port_min = (int)tor_parse_long(port, 10, 0, 65535, &ok, &endptr);
  1745. if (!ok) {
  1746. log_warn(LD_GENERAL,
  1747. "Malformed port %s on address range; rejecting.",
  1748. escaped(port));
  1749. return -1;
  1750. } else if (endptr && *endptr == '-') {
  1751. port = endptr+1;
  1752. endptr = NULL;
  1753. port_max = (int)tor_parse_long(port, 10, 1, 65535, &ok, &endptr);
  1754. if (!ok) {
  1755. log_warn(LD_GENERAL,
  1756. "Malformed port %s on address range; rejecting.",
  1757. escaped(port));
  1758. return -1;
  1759. }
  1760. } else {
  1761. port_max = port_min;
  1762. }
  1763. if (port_min > port_max) {
  1764. log_warn(LD_GENERAL, "Insane port range on address policy; rejecting.");
  1765. return -1;
  1766. }
  1767. }
  1768. if (port_min < 1)
  1769. port_min = 1;
  1770. if (port_max > 65535)
  1771. port_max = 65535;
  1772. *port_min_out = (uint16_t) port_min;
  1773. *port_max_out = (uint16_t) port_max;
  1774. return 0;
  1775. }
  1776. /** Given an IPv4 in_addr struct *<b>in</b> (in network order, as usual),
  1777. * write it as a string into the <b>buf_len</b>-byte buffer in
  1778. * <b>buf</b>.
  1779. */
  1780. int
  1781. tor_inet_ntoa(const struct in_addr *in, char *buf, size_t buf_len)
  1782. {
  1783. uint32_t a = ntohl(in->s_addr);
  1784. return tor_snprintf(buf, buf_len, "%d.%d.%d.%d",
  1785. (int)(uint8_t)((a>>24)&0xff),
  1786. (int)(uint8_t)((a>>16)&0xff),
  1787. (int)(uint8_t)((a>>8 )&0xff),
  1788. (int)(uint8_t)((a )&0xff));
  1789. }
  1790. /** Given a host-order <b>addr</b>, call tor_inet_ntop() on it
  1791. * and return a strdup of the resulting address.
  1792. */
  1793. char *
  1794. tor_dup_ip(uint32_t addr)
  1795. {
  1796. char buf[TOR_ADDR_BUF_LEN];
  1797. struct in_addr in;
  1798. in.s_addr = htonl(addr);
  1799. tor_inet_ntop(AF_INET, &in, buf, sizeof(buf));
  1800. return tor_strdup(buf);
  1801. }
  1802. /**
  1803. * Set *<b>addr</b> to a host-order IPv4 address (if any) of an
  1804. * interface that connects to the Internet. Prefer public IP addresses to
  1805. * internal IP addresses. This address should only be used in checking
  1806. * whether our address has changed, as it may be an internal IPv4 address.
  1807. * Return 0 on success, -1 on failure.
  1808. * Prefer get_interface_address_list6 for a list of all IPv4 and IPv6
  1809. * addresses on all interfaces which connect to the Internet.
  1810. */
  1811. MOCK_IMPL(int,
  1812. get_interface_address,(int severity, uint32_t *addr))
  1813. {
  1814. tor_addr_t local_addr;
  1815. int r;
  1816. memset(addr, 0, sizeof(uint32_t));
  1817. r = get_interface_address6(severity, AF_INET, &local_addr);
  1818. if (r>=0)
  1819. *addr = tor_addr_to_ipv4h(&local_addr);
  1820. return r;
  1821. }
  1822. /** Return true if we can tell that <b>name</b> is a canonical name for the
  1823. * loopback address. */
  1824. int
  1825. tor_addr_hostname_is_local(const char *name)
  1826. {
  1827. return !strcasecmp(name, "localhost") ||
  1828. !strcasecmp(name, "local") ||
  1829. !strcasecmpend(name, ".local");
  1830. }
  1831. /** Return a newly allocated tor_addr_port_t with <b>addr</b> and
  1832. <b>port</b> filled in. */
  1833. tor_addr_port_t *
  1834. tor_addr_port_new(const tor_addr_t *addr, uint16_t port)
  1835. {
  1836. tor_addr_port_t *ap = tor_malloc_zero(sizeof(tor_addr_port_t));
  1837. if (addr)
  1838. tor_addr_copy(&ap->addr, addr);
  1839. ap->port = port;
  1840. return ap;
  1841. }