dns.c 71 KB

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  1. /* Copyright (c) 2003-2004, Roger Dingledine.
  2. * Copyright (c) 2004-2006, Roger Dingledine, Nick Mathewson.
  3. * Copyright (c) 2007-2016, The Tor Project, Inc. */
  4. /* See LICENSE for licensing information */
  5. /**
  6. * \file dns.c
  7. * \brief Implements a local cache for DNS results for Tor servers.
  8. * This is implemented as a wrapper around Adam Langley's eventdns.c code.
  9. * (We can't just use gethostbyname() and friends because we really need to
  10. * be nonblocking.)
  11. *
  12. * There are three main cases when a Tor relay uses dns.c to launch a DNS
  13. * request:
  14. * <ol>
  15. * <li>To check whether the DNS server is working more or less correctly.
  16. * This happens via dns_launch_correctness_checks(). The answer is
  17. * reported in the return value from later calls to
  18. * dns_seems_to_be_broken().
  19. * <li>When a client has asked the relay, in a RELAY_BEGIN cell, to connect
  20. * to a given server by hostname. This happens via dns_resolve().
  21. * <li>When a client has asked the rela, in a RELAY_RESOLVE cell, to look
  22. * up a given server's IP address(es) by hostname. This also happens via
  23. * dns_resolve().
  24. * </ol>
  25. *
  26. * Each of these gets handled a little differently.
  27. *
  28. * To check for correctness, we look up some hostname we expect to exist and
  29. * have real entries, some hostnames which we expect to definitely not exist,
  30. * and some hostnames that we expect to probably not exist. If too many of
  31. * the hostnames that shouldn't exist do exist, that's a DNS hijacking
  32. * attempt. If too many of the hostnames that should exist have the same
  33. * addresses as the ones that shouldn't exist, that's a very bad DNS hijacking
  34. * attempt, or a very naughty captive portal. And if the hostnames that
  35. * should exist simply don't exist, we probably have a broken nameserver.
  36. *
  37. * To handle client requests, we first check our cache for answers. If there
  38. * isn't something up-to-date, we've got to launch A or AAAA requests as
  39. * appropriate. How we handle responses to those in particular is a bit
  40. * complex; see dns_lookup() and set_exitconn_info_from_resolve().
  41. *
  42. * When a lookup is finally complete, the inform_pending_connections()
  43. * function will tell all of the streams that have been waiting for the
  44. * resolve, by calling connection_exit_connect() if the client sent a
  45. * RELAY_BEGIN cell, and by calling send_resolved_cell() or
  46. * send_hostname_cell() if the client sent a RELAY_RESOLVE cell.
  47. **/
  48. #define DNS_PRIVATE
  49. #include "or.h"
  50. #include "circuitlist.h"
  51. #include "circuituse.h"
  52. #include "config.h"
  53. #include "connection.h"
  54. #include "connection_edge.h"
  55. #include "control.h"
  56. #include "dns.h"
  57. #include "main.h"
  58. #include "policies.h"
  59. #include "relay.h"
  60. #include "router.h"
  61. #include "ht.h"
  62. #include "sandbox.h"
  63. #include <event2/event.h>
  64. #include <event2/dns.h>
  65. /** How long will we wait for an answer from the resolver before we decide
  66. * that the resolver is wedged? */
  67. #define RESOLVE_MAX_TIMEOUT 300
  68. /** Our evdns_base; this structure handles all our name lookups. */
  69. static struct evdns_base *the_evdns_base = NULL;
  70. /** Have we currently configured nameservers with eventdns? */
  71. static int nameservers_configured = 0;
  72. /** Did our most recent attempt to configure nameservers with eventdns fail? */
  73. static int nameserver_config_failed = 0;
  74. /** What was the resolv_conf fname we last used when configuring the
  75. * nameservers? Used to check whether we need to reconfigure. */
  76. static char *resolv_conf_fname = NULL;
  77. /** What was the mtime on the resolv.conf file we last used when configuring
  78. * the nameservers? Used to check whether we need to reconfigure. */
  79. static time_t resolv_conf_mtime = 0;
  80. static void purge_expired_resolves(time_t now);
  81. static void dns_found_answer(const char *address, uint8_t query_type,
  82. int dns_answer,
  83. const tor_addr_t *addr,
  84. const char *hostname,
  85. uint32_t ttl);
  86. static void add_wildcarded_test_address(const char *address);
  87. static int configure_nameservers(int force);
  88. static int answer_is_wildcarded(const char *ip);
  89. static int evdns_err_is_transient(int err);
  90. static void inform_pending_connections(cached_resolve_t *resolve);
  91. static void make_pending_resolve_cached(cached_resolve_t *cached);
  92. #ifdef DEBUG_DNS_CACHE
  93. static void assert_cache_ok_(void);
  94. #define assert_cache_ok() assert_cache_ok_()
  95. #else
  96. #define assert_cache_ok() STMT_NIL
  97. #endif
  98. static void assert_resolve_ok(cached_resolve_t *resolve);
  99. /** Hash table of cached_resolve objects. */
  100. static HT_HEAD(cache_map, cached_resolve_t) cache_root;
  101. /** Global: how many IPv6 requests have we made in all? */
  102. static uint64_t n_ipv6_requests_made = 0;
  103. /** Global: how many IPv6 requests have timed out? */
  104. static uint64_t n_ipv6_timeouts = 0;
  105. /** Global: Do we think that IPv6 DNS is broken? */
  106. static int dns_is_broken_for_ipv6 = 0;
  107. /** Function to compare hashed resolves on their addresses; used to
  108. * implement hash tables. */
  109. static inline int
  110. cached_resolves_eq(cached_resolve_t *a, cached_resolve_t *b)
  111. {
  112. /* make this smarter one day? */
  113. assert_resolve_ok(a); // Not b; b may be just a search.
  114. return !strncmp(a->address, b->address, MAX_ADDRESSLEN);
  115. }
  116. /** Hash function for cached_resolve objects */
  117. static inline unsigned int
  118. cached_resolve_hash(cached_resolve_t *a)
  119. {
  120. return (unsigned) siphash24g((const uint8_t*)a->address, strlen(a->address));
  121. }
  122. HT_PROTOTYPE(cache_map, cached_resolve_t, node, cached_resolve_hash,
  123. cached_resolves_eq)
  124. HT_GENERATE2(cache_map, cached_resolve_t, node, cached_resolve_hash,
  125. cached_resolves_eq, 0.6, tor_reallocarray_, tor_free_)
  126. /** Initialize the DNS cache. */
  127. static void
  128. init_cache_map(void)
  129. {
  130. HT_INIT(cache_map, &cache_root);
  131. }
  132. /** Helper: called by eventdns when eventdns wants to log something. */
  133. static void
  134. evdns_log_cb(int warn, const char *msg)
  135. {
  136. const char *cp;
  137. static int all_down = 0;
  138. int severity = warn ? LOG_WARN : LOG_INFO;
  139. if (!strcmpstart(msg, "Resolve requested for") &&
  140. get_options()->SafeLogging) {
  141. log_info(LD_EXIT, "eventdns: Resolve requested.");
  142. return;
  143. } else if (!strcmpstart(msg, "Search: ")) {
  144. return;
  145. }
  146. if (!strcmpstart(msg, "Nameserver ") && (cp=strstr(msg, " has failed: "))) {
  147. char *ns = tor_strndup(msg+11, cp-(msg+11));
  148. const char *err = strchr(cp, ':')+2;
  149. tor_assert(err);
  150. /* Don't warn about a single failed nameserver; we'll warn with 'all
  151. * nameservers have failed' if we're completely out of nameservers;
  152. * otherwise, the situation is tolerable. */
  153. severity = LOG_INFO;
  154. control_event_server_status(LOG_NOTICE,
  155. "NAMESERVER_STATUS NS=%s STATUS=DOWN ERR=%s",
  156. ns, escaped(err));
  157. tor_free(ns);
  158. } else if (!strcmpstart(msg, "Nameserver ") &&
  159. (cp=strstr(msg, " is back up"))) {
  160. char *ns = tor_strndup(msg+11, cp-(msg+11));
  161. severity = (all_down && warn) ? LOG_NOTICE : LOG_INFO;
  162. all_down = 0;
  163. control_event_server_status(LOG_NOTICE,
  164. "NAMESERVER_STATUS NS=%s STATUS=UP", ns);
  165. tor_free(ns);
  166. } else if (!strcmp(msg, "All nameservers have failed")) {
  167. control_event_server_status(LOG_WARN, "NAMESERVER_ALL_DOWN");
  168. all_down = 1;
  169. }
  170. tor_log(severity, LD_EXIT, "eventdns: %s", msg);
  171. }
  172. /** Helper: passed to eventdns.c as a callback so it can generate random
  173. * numbers for transaction IDs and 0x20-hack coding. */
  174. static void
  175. dns_randfn_(char *b, size_t n)
  176. {
  177. crypto_rand(b,n);
  178. }
  179. /** Initialize the DNS subsystem; called by the OR process. */
  180. int
  181. dns_init(void)
  182. {
  183. init_cache_map();
  184. evdns_set_random_bytes_fn(dns_randfn_);
  185. if (server_mode(get_options())) {
  186. int r = configure_nameservers(1);
  187. return r;
  188. }
  189. return 0;
  190. }
  191. /** Called when DNS-related options change (or may have changed). Returns -1
  192. * on failure, 0 on success. */
  193. int
  194. dns_reset(void)
  195. {
  196. const or_options_t *options = get_options();
  197. if (! server_mode(options)) {
  198. if (!the_evdns_base) {
  199. if (!(the_evdns_base = evdns_base_new(tor_libevent_get_base(), 0))) {
  200. log_err(LD_BUG, "Couldn't create an evdns_base");
  201. return -1;
  202. }
  203. }
  204. evdns_base_clear_nameservers_and_suspend(the_evdns_base);
  205. evdns_base_search_clear(the_evdns_base);
  206. nameservers_configured = 0;
  207. tor_free(resolv_conf_fname);
  208. resolv_conf_mtime = 0;
  209. } else {
  210. if (configure_nameservers(0) < 0) {
  211. return -1;
  212. }
  213. }
  214. return 0;
  215. }
  216. /** Return true iff the most recent attempt to initialize the DNS subsystem
  217. * failed. */
  218. int
  219. has_dns_init_failed(void)
  220. {
  221. return nameserver_config_failed;
  222. }
  223. /** Helper: Given a TTL from a DNS response, determine what TTL to give the
  224. * OP that asked us to resolve it, and how long to cache that record
  225. * ourselves. */
  226. uint32_t
  227. dns_clip_ttl(uint32_t ttl)
  228. {
  229. /* This logic is a defense against "DefectTor" DNS-based traffic
  230. * confirmation attacks, as in https://nymity.ch/tor-dns/tor-dns.pdf .
  231. * We only give two values: a "low" value and a "high" value.
  232. */
  233. if (ttl < MIN_DNS_TTL_AT_EXIT)
  234. return MIN_DNS_TTL_AT_EXIT;
  235. else
  236. return MAX_DNS_TTL_AT_EXIT;
  237. }
  238. /** Helper: free storage held by an entry in the DNS cache. */
  239. static void
  240. free_cached_resolve_(cached_resolve_t *r)
  241. {
  242. if (!r)
  243. return;
  244. while (r->pending_connections) {
  245. pending_connection_t *victim = r->pending_connections;
  246. r->pending_connections = victim->next;
  247. tor_free(victim);
  248. }
  249. if (r->res_status_hostname == RES_STATUS_DONE_OK)
  250. tor_free(r->result_ptr.hostname);
  251. r->magic = 0xFF00FF00;
  252. tor_free(r);
  253. }
  254. /** Compare two cached_resolve_t pointers by expiry time, and return
  255. * less-than-zero, zero, or greater-than-zero as appropriate. Used for
  256. * the priority queue implementation. */
  257. static int
  258. compare_cached_resolves_by_expiry_(const void *_a, const void *_b)
  259. {
  260. const cached_resolve_t *a = _a, *b = _b;
  261. if (a->expire < b->expire)
  262. return -1;
  263. else if (a->expire == b->expire)
  264. return 0;
  265. else
  266. return 1;
  267. }
  268. /** Priority queue of cached_resolve_t objects to let us know when they
  269. * will expire. */
  270. static smartlist_t *cached_resolve_pqueue = NULL;
  271. static void
  272. cached_resolve_add_answer(cached_resolve_t *resolve,
  273. int query_type,
  274. int dns_result,
  275. const tor_addr_t *answer_addr,
  276. const char *answer_hostname,
  277. uint32_t ttl)
  278. {
  279. if (query_type == DNS_PTR) {
  280. if (resolve->res_status_hostname != RES_STATUS_INFLIGHT)
  281. return;
  282. if (dns_result == DNS_ERR_NONE && answer_hostname) {
  283. resolve->result_ptr.hostname = tor_strdup(answer_hostname);
  284. resolve->res_status_hostname = RES_STATUS_DONE_OK;
  285. } else {
  286. resolve->result_ptr.err_hostname = dns_result;
  287. resolve->res_status_hostname = RES_STATUS_DONE_ERR;
  288. }
  289. resolve->ttl_hostname = ttl;
  290. } else if (query_type == DNS_IPv4_A) {
  291. if (resolve->res_status_ipv4 != RES_STATUS_INFLIGHT)
  292. return;
  293. if (dns_result == DNS_ERR_NONE && answer_addr &&
  294. tor_addr_family(answer_addr) == AF_INET) {
  295. resolve->result_ipv4.addr_ipv4 = tor_addr_to_ipv4h(answer_addr);
  296. resolve->res_status_ipv4 = RES_STATUS_DONE_OK;
  297. } else {
  298. resolve->result_ipv4.err_ipv4 = dns_result;
  299. resolve->res_status_ipv4 = RES_STATUS_DONE_ERR;
  300. }
  301. resolve->ttl_ipv4 = ttl;
  302. } else if (query_type == DNS_IPv6_AAAA) {
  303. if (resolve->res_status_ipv6 != RES_STATUS_INFLIGHT)
  304. return;
  305. if (dns_result == DNS_ERR_NONE && answer_addr &&
  306. tor_addr_family(answer_addr) == AF_INET6) {
  307. memcpy(&resolve->result_ipv6.addr_ipv6,
  308. tor_addr_to_in6(answer_addr),
  309. sizeof(struct in6_addr));
  310. resolve->res_status_ipv6 = RES_STATUS_DONE_OK;
  311. } else {
  312. resolve->result_ipv6.err_ipv6 = dns_result;
  313. resolve->res_status_ipv6 = RES_STATUS_DONE_ERR;
  314. }
  315. resolve->ttl_ipv6 = ttl;
  316. }
  317. }
  318. /** Return true iff there are no in-flight requests for <b>resolve</b>. */
  319. static int
  320. cached_resolve_have_all_answers(const cached_resolve_t *resolve)
  321. {
  322. return (resolve->res_status_ipv4 != RES_STATUS_INFLIGHT &&
  323. resolve->res_status_ipv6 != RES_STATUS_INFLIGHT &&
  324. resolve->res_status_hostname != RES_STATUS_INFLIGHT);
  325. }
  326. /** Set an expiry time for a cached_resolve_t, and add it to the expiry
  327. * priority queue */
  328. static void
  329. set_expiry(cached_resolve_t *resolve, time_t expires)
  330. {
  331. tor_assert(resolve && resolve->expire == 0);
  332. if (!cached_resolve_pqueue)
  333. cached_resolve_pqueue = smartlist_new();
  334. resolve->expire = expires;
  335. smartlist_pqueue_add(cached_resolve_pqueue,
  336. compare_cached_resolves_by_expiry_,
  337. STRUCT_OFFSET(cached_resolve_t, minheap_idx),
  338. resolve);
  339. }
  340. /** Free all storage held in the DNS cache and related structures. */
  341. void
  342. dns_free_all(void)
  343. {
  344. cached_resolve_t **ptr, **next, *item;
  345. assert_cache_ok();
  346. if (cached_resolve_pqueue) {
  347. SMARTLIST_FOREACH(cached_resolve_pqueue, cached_resolve_t *, res,
  348. {
  349. if (res->state == CACHE_STATE_DONE)
  350. free_cached_resolve_(res);
  351. });
  352. }
  353. for (ptr = HT_START(cache_map, &cache_root); ptr != NULL; ptr = next) {
  354. item = *ptr;
  355. next = HT_NEXT_RMV(cache_map, &cache_root, ptr);
  356. free_cached_resolve_(item);
  357. }
  358. HT_CLEAR(cache_map, &cache_root);
  359. smartlist_free(cached_resolve_pqueue);
  360. cached_resolve_pqueue = NULL;
  361. tor_free(resolv_conf_fname);
  362. }
  363. /** Remove every cached_resolve whose <b>expire</b> time is before or
  364. * equal to <b>now</b> from the cache. */
  365. static void
  366. purge_expired_resolves(time_t now)
  367. {
  368. cached_resolve_t *resolve, *removed;
  369. pending_connection_t *pend;
  370. edge_connection_t *pendconn;
  371. assert_cache_ok();
  372. if (!cached_resolve_pqueue)
  373. return;
  374. while (smartlist_len(cached_resolve_pqueue)) {
  375. resolve = smartlist_get(cached_resolve_pqueue, 0);
  376. if (resolve->expire > now)
  377. break;
  378. smartlist_pqueue_pop(cached_resolve_pqueue,
  379. compare_cached_resolves_by_expiry_,
  380. STRUCT_OFFSET(cached_resolve_t, minheap_idx));
  381. if (resolve->state == CACHE_STATE_PENDING) {
  382. log_debug(LD_EXIT,
  383. "Expiring a dns resolve %s that's still pending. Forgot to "
  384. "cull it? DNS resolve didn't tell us about the timeout?",
  385. escaped_safe_str(resolve->address));
  386. } else if (resolve->state == CACHE_STATE_CACHED) {
  387. log_debug(LD_EXIT,
  388. "Forgetting old cached resolve (address %s, expires %lu)",
  389. escaped_safe_str(resolve->address),
  390. (unsigned long)resolve->expire);
  391. tor_assert(!resolve->pending_connections);
  392. } else {
  393. tor_assert(resolve->state == CACHE_STATE_DONE);
  394. tor_assert(!resolve->pending_connections);
  395. }
  396. if (resolve->pending_connections) {
  397. log_debug(LD_EXIT,
  398. "Closing pending connections on timed-out DNS resolve!");
  399. while (resolve->pending_connections) {
  400. pend = resolve->pending_connections;
  401. resolve->pending_connections = pend->next;
  402. /* Connections should only be pending if they have no socket. */
  403. tor_assert(!SOCKET_OK(pend->conn->base_.s));
  404. pendconn = pend->conn;
  405. /* Prevent double-remove */
  406. pendconn->base_.state = EXIT_CONN_STATE_RESOLVEFAILED;
  407. if (!pendconn->base_.marked_for_close) {
  408. connection_edge_end(pendconn, END_STREAM_REASON_TIMEOUT);
  409. circuit_detach_stream(circuit_get_by_edge_conn(pendconn), pendconn);
  410. connection_free(TO_CONN(pendconn));
  411. }
  412. tor_free(pend);
  413. }
  414. }
  415. if (resolve->state == CACHE_STATE_CACHED ||
  416. resolve->state == CACHE_STATE_PENDING) {
  417. removed = HT_REMOVE(cache_map, &cache_root, resolve);
  418. if (removed != resolve) {
  419. log_err(LD_BUG, "The expired resolve we purged didn't match any in"
  420. " the cache. Tried to purge %s (%p); instead got %s (%p).",
  421. resolve->address, (void*)resolve,
  422. removed ? removed->address : "NULL", (void*)removed);
  423. }
  424. tor_assert(removed == resolve);
  425. } else {
  426. /* This should be in state DONE. Make sure it's not in the cache. */
  427. cached_resolve_t *tmp = HT_FIND(cache_map, &cache_root, resolve);
  428. tor_assert(tmp != resolve);
  429. }
  430. if (resolve->res_status_hostname == RES_STATUS_DONE_OK)
  431. tor_free(resolve->result_ptr.hostname);
  432. resolve->magic = 0xF0BBF0BB;
  433. tor_free(resolve);
  434. }
  435. assert_cache_ok();
  436. }
  437. /* argument for send_resolved_cell only, meaning "let the answer type be ipv4
  438. * or ipv6 depending on the connection's address". */
  439. #define RESOLVED_TYPE_AUTO 0xff
  440. /** Send a response to the RESOLVE request of a connection.
  441. * <b>answer_type</b> must be one of
  442. * RESOLVED_TYPE_(AUTO|ERROR|ERROR_TRANSIENT|).
  443. *
  444. * If <b>circ</b> is provided, and we have a cached answer, send the
  445. * answer back along circ; otherwise, send the answer back along
  446. * <b>conn</b>'s attached circuit.
  447. */
  448. MOCK_IMPL(STATIC void,
  449. send_resolved_cell,(edge_connection_t *conn, uint8_t answer_type,
  450. const cached_resolve_t *resolved))
  451. {
  452. char buf[RELAY_PAYLOAD_SIZE], *cp = buf;
  453. size_t buflen = 0;
  454. uint32_t ttl;
  455. buf[0] = answer_type;
  456. ttl = dns_clip_ttl(conn->address_ttl);
  457. switch (answer_type)
  458. {
  459. case RESOLVED_TYPE_AUTO:
  460. if (resolved && resolved->res_status_ipv4 == RES_STATUS_DONE_OK) {
  461. cp[0] = RESOLVED_TYPE_IPV4;
  462. cp[1] = 4;
  463. set_uint32(cp+2, htonl(resolved->result_ipv4.addr_ipv4));
  464. set_uint32(cp+6, htonl(ttl));
  465. cp += 10;
  466. }
  467. if (resolved && resolved->res_status_ipv6 == RES_STATUS_DONE_OK) {
  468. const uint8_t *bytes = resolved->result_ipv6.addr_ipv6.s6_addr;
  469. cp[0] = RESOLVED_TYPE_IPV6;
  470. cp[1] = 16;
  471. memcpy(cp+2, bytes, 16);
  472. set_uint32(cp+18, htonl(ttl));
  473. cp += 22;
  474. }
  475. if (cp != buf) {
  476. buflen = cp - buf;
  477. break;
  478. } else {
  479. answer_type = RESOLVED_TYPE_ERROR;
  480. /* fall through. */
  481. }
  482. case RESOLVED_TYPE_ERROR_TRANSIENT:
  483. case RESOLVED_TYPE_ERROR:
  484. {
  485. const char *errmsg = "Error resolving hostname";
  486. size_t msglen = strlen(errmsg);
  487. buf[0] = answer_type;
  488. buf[1] = msglen;
  489. strlcpy(buf+2, errmsg, sizeof(buf)-2);
  490. set_uint32(buf+2+msglen, htonl(ttl));
  491. buflen = 6+msglen;
  492. break;
  493. }
  494. default:
  495. tor_assert(0);
  496. return;
  497. }
  498. // log_notice(LD_EXIT, "Sending a regular RESOLVED reply: ");
  499. connection_edge_send_command(conn, RELAY_COMMAND_RESOLVED, buf, buflen);
  500. }
  501. /** Send a response to the RESOLVE request of a connection for an in-addr.arpa
  502. * address on connection <b>conn</b> which yielded the result <b>hostname</b>.
  503. * The answer type will be RESOLVED_HOSTNAME.
  504. *
  505. * If <b>circ</b> is provided, and we have a cached answer, send the
  506. * answer back along circ; otherwise, send the answer back along
  507. * <b>conn</b>'s attached circuit.
  508. */
  509. MOCK_IMPL(STATIC void,
  510. send_resolved_hostname_cell,(edge_connection_t *conn,
  511. const char *hostname))
  512. {
  513. char buf[RELAY_PAYLOAD_SIZE];
  514. size_t buflen;
  515. uint32_t ttl;
  516. size_t namelen = strlen(hostname);
  517. tor_assert(hostname);
  518. tor_assert(namelen < 256);
  519. ttl = dns_clip_ttl(conn->address_ttl);
  520. buf[0] = RESOLVED_TYPE_HOSTNAME;
  521. buf[1] = (uint8_t)namelen;
  522. memcpy(buf+2, hostname, namelen);
  523. set_uint32(buf+2+namelen, htonl(ttl));
  524. buflen = 2+namelen+4;
  525. // log_notice(LD_EXIT, "Sending a reply RESOLVED reply: %s", hostname);
  526. connection_edge_send_command(conn, RELAY_COMMAND_RESOLVED, buf, buflen);
  527. // log_notice(LD_EXIT, "Sent");
  528. }
  529. /** See if we have a cache entry for <b>exitconn</b>-\>address. If so,
  530. * if resolve valid, put it into <b>exitconn</b>-\>addr and return 1.
  531. * If resolve failed, free exitconn and return -1.
  532. *
  533. * (For EXIT_PURPOSE_RESOLVE connections, send back a RESOLVED error cell
  534. * on returning -1. For EXIT_PURPOSE_CONNECT connections, there's no
  535. * need to send back an END cell, since connection_exit_begin_conn will
  536. * do that for us.)
  537. *
  538. * If we have a cached answer, send the answer back along <b>exitconn</b>'s
  539. * circuit.
  540. *
  541. * Else, if seen before and pending, add conn to the pending list,
  542. * and return 0.
  543. *
  544. * Else, if not seen before, add conn to pending list, hand to
  545. * dns farm, and return 0.
  546. *
  547. * Exitconn's on_circuit field must be set, but exitconn should not
  548. * yet be linked onto the n_streams/resolving_streams list of that circuit.
  549. * On success, link the connection to n_streams if it's an exit connection.
  550. * On "pending", link the connection to resolving streams. Otherwise,
  551. * clear its on_circuit field.
  552. */
  553. int
  554. dns_resolve(edge_connection_t *exitconn)
  555. {
  556. or_circuit_t *oncirc = TO_OR_CIRCUIT(exitconn->on_circuit);
  557. int is_resolve, r;
  558. int made_connection_pending = 0;
  559. char *hostname = NULL;
  560. cached_resolve_t *resolve = NULL;
  561. is_resolve = exitconn->base_.purpose == EXIT_PURPOSE_RESOLVE;
  562. r = dns_resolve_impl(exitconn, is_resolve, oncirc, &hostname,
  563. &made_connection_pending, &resolve);
  564. switch (r) {
  565. case 1:
  566. /* We got an answer without a lookup -- either the answer was
  567. * cached, or it was obvious (like an IP address). */
  568. if (is_resolve) {
  569. /* Send the answer back right now, and detach. */
  570. if (hostname)
  571. send_resolved_hostname_cell(exitconn, hostname);
  572. else
  573. send_resolved_cell(exitconn, RESOLVED_TYPE_AUTO, resolve);
  574. exitconn->on_circuit = NULL;
  575. } else {
  576. /* Add to the n_streams list; the calling function will send back a
  577. * connected cell. */
  578. exitconn->next_stream = oncirc->n_streams;
  579. oncirc->n_streams = exitconn;
  580. }
  581. break;
  582. case 0:
  583. /* The request is pending: add the connection into the linked list of
  584. * resolving_streams on this circuit. */
  585. exitconn->base_.state = EXIT_CONN_STATE_RESOLVING;
  586. exitconn->next_stream = oncirc->resolving_streams;
  587. oncirc->resolving_streams = exitconn;
  588. break;
  589. case -2:
  590. case -1:
  591. /* The request failed before it could start: cancel this connection,
  592. * and stop everybody waiting for the same connection. */
  593. if (is_resolve) {
  594. send_resolved_cell(exitconn,
  595. (r == -1) ? RESOLVED_TYPE_ERROR : RESOLVED_TYPE_ERROR_TRANSIENT,
  596. NULL);
  597. }
  598. exitconn->on_circuit = NULL;
  599. dns_cancel_pending_resolve(exitconn->base_.address);
  600. if (!made_connection_pending && !exitconn->base_.marked_for_close) {
  601. /* If we made the connection pending, then we freed it already in
  602. * dns_cancel_pending_resolve(). If we marked it for close, it'll
  603. * get freed from the main loop. Otherwise, can free it now. */
  604. connection_free(TO_CONN(exitconn));
  605. }
  606. break;
  607. default:
  608. tor_assert(0);
  609. }
  610. tor_free(hostname);
  611. return r;
  612. }
  613. /** Helper function for dns_resolve: same functionality, but does not handle:
  614. * - marking connections on error and clearing their on_circuit
  615. * - linking connections to n_streams/resolving_streams,
  616. * - sending resolved cells if we have an answer/error right away,
  617. *
  618. * Return -2 on a transient error. If it's a reverse resolve and it's
  619. * successful, sets *<b>hostname_out</b> to a newly allocated string
  620. * holding the cached reverse DNS value.
  621. *
  622. * Set *<b>made_connection_pending_out</b> to true if we have placed
  623. * <b>exitconn</b> on the list of pending connections for some resolve; set it
  624. * to false otherwise.
  625. *
  626. * Set *<b>resolve_out</b> to a cached resolve, if we found one.
  627. */
  628. MOCK_IMPL(STATIC int,
  629. dns_resolve_impl,(edge_connection_t *exitconn, int is_resolve,
  630. or_circuit_t *oncirc, char **hostname_out,
  631. int *made_connection_pending_out,
  632. cached_resolve_t **resolve_out))
  633. {
  634. cached_resolve_t *resolve;
  635. cached_resolve_t search;
  636. pending_connection_t *pending_connection;
  637. int is_reverse = 0;
  638. tor_addr_t addr;
  639. time_t now = time(NULL);
  640. int r;
  641. assert_connection_ok(TO_CONN(exitconn), 0);
  642. tor_assert(!SOCKET_OK(exitconn->base_.s));
  643. assert_cache_ok();
  644. tor_assert(oncirc);
  645. *made_connection_pending_out = 0;
  646. /* first check if exitconn->base_.address is an IP. If so, we already
  647. * know the answer. */
  648. if (tor_addr_parse(&addr, exitconn->base_.address) >= 0) {
  649. if (tor_addr_family(&addr) == AF_INET ||
  650. tor_addr_family(&addr) == AF_INET6) {
  651. tor_addr_copy(&exitconn->base_.addr, &addr);
  652. exitconn->address_ttl = DEFAULT_DNS_TTL;
  653. return 1;
  654. } else {
  655. /* XXXX unspec? Bogus? */
  656. return -1;
  657. }
  658. }
  659. /* If we're a non-exit, don't even do DNS lookups. */
  660. if (router_my_exit_policy_is_reject_star())
  661. return -1;
  662. if (address_is_invalid_destination(exitconn->base_.address, 0)) {
  663. tor_log(LOG_PROTOCOL_WARN, LD_EXIT,
  664. "Rejecting invalid destination address %s",
  665. escaped_safe_str(exitconn->base_.address));
  666. return -1;
  667. }
  668. /* then take this opportunity to see if there are any expired
  669. * resolves in the hash table. */
  670. purge_expired_resolves(now);
  671. /* lower-case exitconn->base_.address, so it's in canonical form */
  672. tor_strlower(exitconn->base_.address);
  673. /* Check whether this is a reverse lookup. If it's malformed, or it's a
  674. * .in-addr.arpa address but this isn't a resolve request, kill the
  675. * connection.
  676. */
  677. if ((r = tor_addr_parse_PTR_name(&addr, exitconn->base_.address,
  678. AF_UNSPEC, 0)) != 0) {
  679. if (r == 1) {
  680. is_reverse = 1;
  681. if (tor_addr_is_internal(&addr, 0)) /* internal address? */
  682. return -1;
  683. }
  684. if (!is_reverse || !is_resolve) {
  685. if (!is_reverse)
  686. log_info(LD_EXIT, "Bad .in-addr.arpa address \"%s\"; sending error.",
  687. escaped_safe_str(exitconn->base_.address));
  688. else if (!is_resolve)
  689. log_info(LD_EXIT,
  690. "Attempt to connect to a .in-addr.arpa address \"%s\"; "
  691. "sending error.",
  692. escaped_safe_str(exitconn->base_.address));
  693. return -1;
  694. }
  695. //log_notice(LD_EXIT, "Looks like an address %s",
  696. //exitconn->base_.address);
  697. }
  698. exitconn->is_reverse_dns_lookup = is_reverse;
  699. /* now check the hash table to see if 'address' is already there. */
  700. strlcpy(search.address, exitconn->base_.address, sizeof(search.address));
  701. resolve = HT_FIND(cache_map, &cache_root, &search);
  702. if (resolve && resolve->expire > now) { /* already there */
  703. switch (resolve->state) {
  704. case CACHE_STATE_PENDING:
  705. /* add us to the pending list */
  706. pending_connection = tor_malloc_zero(
  707. sizeof(pending_connection_t));
  708. pending_connection->conn = exitconn;
  709. pending_connection->next = resolve->pending_connections;
  710. resolve->pending_connections = pending_connection;
  711. *made_connection_pending_out = 1;
  712. log_debug(LD_EXIT,"Connection (fd "TOR_SOCKET_T_FORMAT") waiting "
  713. "for pending DNS resolve of %s", exitconn->base_.s,
  714. escaped_safe_str(exitconn->base_.address));
  715. return 0;
  716. case CACHE_STATE_CACHED:
  717. log_debug(LD_EXIT,"Connection (fd "TOR_SOCKET_T_FORMAT") found "
  718. "cached answer for %s",
  719. exitconn->base_.s,
  720. escaped_safe_str(resolve->address));
  721. *resolve_out = resolve;
  722. return set_exitconn_info_from_resolve(exitconn, resolve, hostname_out);
  723. case CACHE_STATE_DONE:
  724. log_err(LD_BUG, "Found a 'DONE' dns resolve still in the cache.");
  725. tor_fragile_assert();
  726. }
  727. tor_assert(0);
  728. }
  729. tor_assert(!resolve);
  730. /* not there, need to add it */
  731. resolve = tor_malloc_zero(sizeof(cached_resolve_t));
  732. resolve->magic = CACHED_RESOLVE_MAGIC;
  733. resolve->state = CACHE_STATE_PENDING;
  734. resolve->minheap_idx = -1;
  735. strlcpy(resolve->address, exitconn->base_.address, sizeof(resolve->address));
  736. /* add this connection to the pending list */
  737. pending_connection = tor_malloc_zero(sizeof(pending_connection_t));
  738. pending_connection->conn = exitconn;
  739. resolve->pending_connections = pending_connection;
  740. *made_connection_pending_out = 1;
  741. /* Add this resolve to the cache and priority queue. */
  742. HT_INSERT(cache_map, &cache_root, resolve);
  743. set_expiry(resolve, now + RESOLVE_MAX_TIMEOUT);
  744. log_debug(LD_EXIT,"Launching %s.",
  745. escaped_safe_str(exitconn->base_.address));
  746. assert_cache_ok();
  747. return launch_resolve(resolve);
  748. }
  749. /** Given an exit connection <b>exitconn</b>, and a cached_resolve_t
  750. * <b>resolve</b> whose DNS lookups have all either succeeded or failed,
  751. * update the appropriate fields (address_ttl and addr) of <b>exitconn</b>.
  752. *
  753. * The logic can be complicated here, since we might have launched both
  754. * an A lookup and an AAAA lookup, and since either of those might have
  755. * succeeded or failed, and since we want to answer a RESOLVE cell with
  756. * a full answer but answer a BEGIN cell with whatever answer the client
  757. * would accept <i>and</i> we could still connect to.
  758. *
  759. * If this is a reverse lookup, set *<b>hostname_out</b> to a newly allocated
  760. * copy of the name resulting hostname.
  761. *
  762. * Return -2 on a transient error, -1 on a permenent error, and 1 on
  763. * a successful lookup.
  764. */
  765. MOCK_IMPL(STATIC int,
  766. set_exitconn_info_from_resolve,(edge_connection_t *exitconn,
  767. const cached_resolve_t *resolve,
  768. char **hostname_out))
  769. {
  770. int ipv4_ok, ipv6_ok, answer_with_ipv4, r;
  771. uint32_t begincell_flags;
  772. const int is_resolve = exitconn->base_.purpose == EXIT_PURPOSE_RESOLVE;
  773. tor_assert(exitconn);
  774. tor_assert(resolve);
  775. if (exitconn->is_reverse_dns_lookup) {
  776. exitconn->address_ttl = resolve->ttl_hostname;
  777. if (resolve->res_status_hostname == RES_STATUS_DONE_OK) {
  778. *hostname_out = tor_strdup(resolve->result_ptr.hostname);
  779. return 1;
  780. } else {
  781. return -1;
  782. }
  783. }
  784. /* If we're here then the connection wants one or either of ipv4, ipv6, and
  785. * we can give it one or both. */
  786. if (is_resolve) {
  787. begincell_flags = BEGIN_FLAG_IPV6_OK;
  788. } else {
  789. begincell_flags = exitconn->begincell_flags;
  790. }
  791. ipv4_ok = (resolve->res_status_ipv4 == RES_STATUS_DONE_OK) &&
  792. ! (begincell_flags & BEGIN_FLAG_IPV4_NOT_OK);
  793. ipv6_ok = (resolve->res_status_ipv6 == RES_STATUS_DONE_OK) &&
  794. (begincell_flags & BEGIN_FLAG_IPV6_OK) &&
  795. get_options()->IPv6Exit;
  796. /* Now decide which one to actually give. */
  797. if (ipv4_ok && ipv6_ok && is_resolve) {
  798. answer_with_ipv4 = 1;
  799. } else if (ipv4_ok && ipv6_ok) {
  800. /* If we have both, see if our exit policy has an opinion. */
  801. const uint16_t port = exitconn->base_.port;
  802. int ipv4_allowed, ipv6_allowed;
  803. tor_addr_t a4, a6;
  804. tor_addr_from_ipv4h(&a4, resolve->result_ipv4.addr_ipv4);
  805. tor_addr_from_in6(&a6, &resolve->result_ipv6.addr_ipv6);
  806. ipv4_allowed = !router_compare_to_my_exit_policy(&a4, port);
  807. ipv6_allowed = !router_compare_to_my_exit_policy(&a6, port);
  808. if (ipv4_allowed && !ipv6_allowed) {
  809. answer_with_ipv4 = 1;
  810. } else if (ipv6_allowed && !ipv4_allowed) {
  811. answer_with_ipv4 = 0;
  812. } else {
  813. /* Our exit policy would permit both. Answer with whichever the user
  814. * prefers */
  815. answer_with_ipv4 = !(begincell_flags &
  816. BEGIN_FLAG_IPV6_PREFERRED);
  817. }
  818. } else {
  819. /* Otherwise if one is okay, send it back. */
  820. if (ipv4_ok) {
  821. answer_with_ipv4 = 1;
  822. } else if (ipv6_ok) {
  823. answer_with_ipv4 = 0;
  824. } else {
  825. /* Neither one was okay. Choose based on user preference. */
  826. answer_with_ipv4 = !(begincell_flags &
  827. BEGIN_FLAG_IPV6_PREFERRED);
  828. }
  829. }
  830. /* Finally, we write the answer back. */
  831. r = 1;
  832. if (answer_with_ipv4) {
  833. if (resolve->res_status_ipv4 == RES_STATUS_DONE_OK) {
  834. tor_addr_from_ipv4h(&exitconn->base_.addr,
  835. resolve->result_ipv4.addr_ipv4);
  836. } else {
  837. r = evdns_err_is_transient(resolve->result_ipv4.err_ipv4) ? -2 : -1;
  838. }
  839. exitconn->address_ttl = resolve->ttl_ipv4;
  840. } else {
  841. if (resolve->res_status_ipv6 == RES_STATUS_DONE_OK) {
  842. tor_addr_from_in6(&exitconn->base_.addr,
  843. &resolve->result_ipv6.addr_ipv6);
  844. } else {
  845. r = evdns_err_is_transient(resolve->result_ipv6.err_ipv6) ? -2 : -1;
  846. }
  847. exitconn->address_ttl = resolve->ttl_ipv6;
  848. }
  849. return r;
  850. }
  851. /** Log an error and abort if conn is waiting for a DNS resolve.
  852. */
  853. void
  854. assert_connection_edge_not_dns_pending(edge_connection_t *conn)
  855. {
  856. pending_connection_t *pend;
  857. cached_resolve_t search;
  858. #if 1
  859. cached_resolve_t *resolve;
  860. strlcpy(search.address, conn->base_.address, sizeof(search.address));
  861. resolve = HT_FIND(cache_map, &cache_root, &search);
  862. if (!resolve)
  863. return;
  864. for (pend = resolve->pending_connections; pend; pend = pend->next) {
  865. tor_assert(pend->conn != conn);
  866. }
  867. #else
  868. cached_resolve_t **resolve;
  869. HT_FOREACH(resolve, cache_map, &cache_root) {
  870. for (pend = (*resolve)->pending_connections; pend; pend = pend->next) {
  871. tor_assert(pend->conn != conn);
  872. }
  873. }
  874. #endif
  875. }
  876. /** Log an error and abort if any connection waiting for a DNS resolve is
  877. * corrupted. */
  878. void
  879. assert_all_pending_dns_resolves_ok(void)
  880. {
  881. pending_connection_t *pend;
  882. cached_resolve_t **resolve;
  883. HT_FOREACH(resolve, cache_map, &cache_root) {
  884. for (pend = (*resolve)->pending_connections;
  885. pend;
  886. pend = pend->next) {
  887. assert_connection_ok(TO_CONN(pend->conn), 0);
  888. tor_assert(!SOCKET_OK(pend->conn->base_.s));
  889. tor_assert(!connection_in_array(TO_CONN(pend->conn)));
  890. }
  891. }
  892. }
  893. /** Remove <b>conn</b> from the list of connections waiting for conn-\>address.
  894. */
  895. void
  896. connection_dns_remove(edge_connection_t *conn)
  897. {
  898. pending_connection_t *pend, *victim;
  899. cached_resolve_t search;
  900. cached_resolve_t *resolve;
  901. tor_assert(conn->base_.type == CONN_TYPE_EXIT);
  902. tor_assert(conn->base_.state == EXIT_CONN_STATE_RESOLVING);
  903. strlcpy(search.address, conn->base_.address, sizeof(search.address));
  904. resolve = HT_FIND(cache_map, &cache_root, &search);
  905. if (!resolve) {
  906. log_notice(LD_BUG, "Address %s is not pending. Dropping.",
  907. escaped_safe_str(conn->base_.address));
  908. return;
  909. }
  910. tor_assert(resolve->pending_connections);
  911. assert_connection_ok(TO_CONN(conn),0);
  912. pend = resolve->pending_connections;
  913. if (pend->conn == conn) {
  914. resolve->pending_connections = pend->next;
  915. tor_free(pend);
  916. log_debug(LD_EXIT, "First connection (fd "TOR_SOCKET_T_FORMAT") no "
  917. "longer waiting for resolve of %s",
  918. conn->base_.s,
  919. escaped_safe_str(conn->base_.address));
  920. return;
  921. } else {
  922. for ( ; pend->next; pend = pend->next) {
  923. if (pend->next->conn == conn) {
  924. victim = pend->next;
  925. pend->next = victim->next;
  926. tor_free(victim);
  927. log_debug(LD_EXIT,
  928. "Connection (fd "TOR_SOCKET_T_FORMAT") no longer waiting "
  929. "for resolve of %s",
  930. conn->base_.s, escaped_safe_str(conn->base_.address));
  931. return; /* more are pending */
  932. }
  933. }
  934. log_warn(LD_BUG, "Connection (fd "TOR_SOCKET_T_FORMAT") was not waiting "
  935. "for a resolve of %s, but we tried to remove it.",
  936. conn->base_.s, escaped_safe_str(conn->base_.address));
  937. }
  938. }
  939. /** Mark all connections waiting for <b>address</b> for close. Then cancel
  940. * the resolve for <b>address</b> itself, and remove any cached results for
  941. * <b>address</b> from the cache.
  942. */
  943. MOCK_IMPL(void,
  944. dns_cancel_pending_resolve,(const char *address))
  945. {
  946. pending_connection_t *pend;
  947. cached_resolve_t search;
  948. cached_resolve_t *resolve, *tmp;
  949. edge_connection_t *pendconn;
  950. circuit_t *circ;
  951. strlcpy(search.address, address, sizeof(search.address));
  952. resolve = HT_FIND(cache_map, &cache_root, &search);
  953. if (!resolve)
  954. return;
  955. if (resolve->state != CACHE_STATE_PENDING) {
  956. /* We can get into this state if we never actually created the pending
  957. * resolve, due to finding an earlier cached error or something. Just
  958. * ignore it. */
  959. if (resolve->pending_connections) {
  960. log_warn(LD_BUG,
  961. "Address %s is not pending but has pending connections!",
  962. escaped_safe_str(address));
  963. tor_fragile_assert();
  964. }
  965. return;
  966. }
  967. if (!resolve->pending_connections) {
  968. log_warn(LD_BUG,
  969. "Address %s is pending but has no pending connections!",
  970. escaped_safe_str(address));
  971. tor_fragile_assert();
  972. return;
  973. }
  974. tor_assert(resolve->pending_connections);
  975. /* mark all pending connections to fail */
  976. log_debug(LD_EXIT,
  977. "Failing all connections waiting on DNS resolve of %s",
  978. escaped_safe_str(address));
  979. while (resolve->pending_connections) {
  980. pend = resolve->pending_connections;
  981. pend->conn->base_.state = EXIT_CONN_STATE_RESOLVEFAILED;
  982. pendconn = pend->conn;
  983. assert_connection_ok(TO_CONN(pendconn), 0);
  984. tor_assert(!SOCKET_OK(pendconn->base_.s));
  985. if (!pendconn->base_.marked_for_close) {
  986. connection_edge_end(pendconn, END_STREAM_REASON_RESOLVEFAILED);
  987. }
  988. circ = circuit_get_by_edge_conn(pendconn);
  989. if (circ)
  990. circuit_detach_stream(circ, pendconn);
  991. if (!pendconn->base_.marked_for_close)
  992. connection_free(TO_CONN(pendconn));
  993. resolve->pending_connections = pend->next;
  994. tor_free(pend);
  995. }
  996. tmp = HT_REMOVE(cache_map, &cache_root, resolve);
  997. if (tmp != resolve) {
  998. log_err(LD_BUG, "The cancelled resolve we purged didn't match any in"
  999. " the cache. Tried to purge %s (%p); instead got %s (%p).",
  1000. resolve->address, (void*)resolve,
  1001. tmp ? tmp->address : "NULL", (void*)tmp);
  1002. }
  1003. tor_assert(tmp == resolve);
  1004. resolve->state = CACHE_STATE_DONE;
  1005. }
  1006. /** Return true iff <b>address</b> is one of the addresses we use to verify
  1007. * that well-known sites aren't being hijacked by our DNS servers. */
  1008. static inline int
  1009. is_test_address(const char *address)
  1010. {
  1011. const or_options_t *options = get_options();
  1012. return options->ServerDNSTestAddresses &&
  1013. smartlist_contains_string_case(options->ServerDNSTestAddresses, address);
  1014. }
  1015. /** Called on the OR side when the eventdns library tells us the outcome of a
  1016. * single DNS resolve: remember the answer, and tell all pending connections
  1017. * about the result of the lookup if the lookup is now done. (<b>address</b>
  1018. * is a NUL-terminated string containing the address to look up;
  1019. * <b>query_type</b> is one of DNS_{IPv4_A,IPv6_AAAA,PTR}; <b>dns_answer</b>
  1020. * is DNS_OK or one of DNS_ERR_*, <b>addr</b> is an IPv4 or IPv6 address if we
  1021. * got one; <b>hostname</b> is a hostname fora PTR request if we got one, and
  1022. * <b>ttl</b> is the time-to-live of this answer, in seconds.)
  1023. */
  1024. static void
  1025. dns_found_answer(const char *address, uint8_t query_type,
  1026. int dns_answer,
  1027. const tor_addr_t *addr,
  1028. const char *hostname, uint32_t ttl)
  1029. {
  1030. cached_resolve_t search;
  1031. cached_resolve_t *resolve;
  1032. assert_cache_ok();
  1033. strlcpy(search.address, address, sizeof(search.address));
  1034. resolve = HT_FIND(cache_map, &cache_root, &search);
  1035. if (!resolve) {
  1036. int is_test_addr = is_test_address(address);
  1037. if (!is_test_addr)
  1038. log_info(LD_EXIT,"Resolved unasked address %s; ignoring.",
  1039. escaped_safe_str(address));
  1040. return;
  1041. }
  1042. assert_resolve_ok(resolve);
  1043. if (resolve->state != CACHE_STATE_PENDING) {
  1044. /* XXXX Maybe update addr? or check addr for consistency? Or let
  1045. * VALID replace FAILED? */
  1046. int is_test_addr = is_test_address(address);
  1047. if (!is_test_addr)
  1048. log_notice(LD_EXIT,
  1049. "Resolved %s which was already resolved; ignoring",
  1050. escaped_safe_str(address));
  1051. tor_assert(resolve->pending_connections == NULL);
  1052. return;
  1053. }
  1054. cached_resolve_add_answer(resolve, query_type, dns_answer,
  1055. addr, hostname, ttl);
  1056. if (cached_resolve_have_all_answers(resolve)) {
  1057. inform_pending_connections(resolve);
  1058. make_pending_resolve_cached(resolve);
  1059. }
  1060. }
  1061. /** Given a pending cached_resolve_t that we just finished resolving,
  1062. * inform every connection that was waiting for the outcome of that
  1063. * resolution.
  1064. *
  1065. * Do this by sending a RELAY_RESOLVED cell (if the pending stream had sent us
  1066. * RELAY_RESOLVE cell), or by launching an exit connection (if the pending
  1067. * stream had send us a RELAY_BEGIN cell).
  1068. */
  1069. static void
  1070. inform_pending_connections(cached_resolve_t *resolve)
  1071. {
  1072. pending_connection_t *pend;
  1073. edge_connection_t *pendconn;
  1074. int r;
  1075. while (resolve->pending_connections) {
  1076. char *hostname = NULL;
  1077. pend = resolve->pending_connections;
  1078. pendconn = pend->conn; /* don't pass complex things to the
  1079. connection_mark_for_close macro */
  1080. assert_connection_ok(TO_CONN(pendconn),time(NULL));
  1081. if (pendconn->base_.marked_for_close) {
  1082. /* prevent double-remove. */
  1083. pendconn->base_.state = EXIT_CONN_STATE_RESOLVEFAILED;
  1084. resolve->pending_connections = pend->next;
  1085. tor_free(pend);
  1086. continue;
  1087. }
  1088. r = set_exitconn_info_from_resolve(pendconn,
  1089. resolve,
  1090. &hostname);
  1091. if (r < 0) {
  1092. /* prevent double-remove. */
  1093. pendconn->base_.state = EXIT_CONN_STATE_RESOLVEFAILED;
  1094. if (pendconn->base_.purpose == EXIT_PURPOSE_CONNECT) {
  1095. connection_edge_end(pendconn, END_STREAM_REASON_RESOLVEFAILED);
  1096. /* This detach must happen after we send the end cell. */
  1097. circuit_detach_stream(circuit_get_by_edge_conn(pendconn), pendconn);
  1098. } else {
  1099. send_resolved_cell(pendconn, r == -1 ?
  1100. RESOLVED_TYPE_ERROR : RESOLVED_TYPE_ERROR_TRANSIENT,
  1101. NULL);
  1102. /* This detach must happen after we send the resolved cell. */
  1103. circuit_detach_stream(circuit_get_by_edge_conn(pendconn), pendconn);
  1104. }
  1105. connection_free(TO_CONN(pendconn));
  1106. } else {
  1107. circuit_t *circ;
  1108. if (pendconn->base_.purpose == EXIT_PURPOSE_CONNECT) {
  1109. /* prevent double-remove. */
  1110. pend->conn->base_.state = EXIT_CONN_STATE_CONNECTING;
  1111. circ = circuit_get_by_edge_conn(pend->conn);
  1112. tor_assert(circ);
  1113. tor_assert(!CIRCUIT_IS_ORIGIN(circ));
  1114. /* unlink pend->conn from resolving_streams, */
  1115. circuit_detach_stream(circ, pend->conn);
  1116. /* and link it to n_streams */
  1117. pend->conn->next_stream = TO_OR_CIRCUIT(circ)->n_streams;
  1118. pend->conn->on_circuit = circ;
  1119. TO_OR_CIRCUIT(circ)->n_streams = pend->conn;
  1120. connection_exit_connect(pend->conn);
  1121. } else {
  1122. /* prevent double-remove. This isn't really an accurate state,
  1123. * but it does the right thing. */
  1124. pendconn->base_.state = EXIT_CONN_STATE_RESOLVEFAILED;
  1125. if (pendconn->is_reverse_dns_lookup)
  1126. send_resolved_hostname_cell(pendconn, hostname);
  1127. else
  1128. send_resolved_cell(pendconn, RESOLVED_TYPE_AUTO, resolve);
  1129. circ = circuit_get_by_edge_conn(pendconn);
  1130. tor_assert(circ);
  1131. circuit_detach_stream(circ, pendconn);
  1132. connection_free(TO_CONN(pendconn));
  1133. }
  1134. }
  1135. resolve->pending_connections = pend->next;
  1136. tor_free(pend);
  1137. tor_free(hostname);
  1138. }
  1139. }
  1140. /** Remove a pending cached_resolve_t from the hashtable, and add a
  1141. * corresponding cached cached_resolve_t.
  1142. *
  1143. * This function is only necessary because of the perversity of our
  1144. * cache timeout code; see inline comment for ideas on eliminating it.
  1145. **/
  1146. static void
  1147. make_pending_resolve_cached(cached_resolve_t *resolve)
  1148. {
  1149. cached_resolve_t *removed;
  1150. resolve->state = CACHE_STATE_DONE;
  1151. removed = HT_REMOVE(cache_map, &cache_root, resolve);
  1152. if (removed != resolve) {
  1153. log_err(LD_BUG, "The pending resolve we found wasn't removable from"
  1154. " the cache. Tried to purge %s (%p); instead got %s (%p).",
  1155. resolve->address, (void*)resolve,
  1156. removed ? removed->address : "NULL", (void*)removed);
  1157. }
  1158. assert_resolve_ok(resolve);
  1159. assert_cache_ok();
  1160. /* The resolve will eventually just hit the time-out in the expiry queue and
  1161. * expire. See fd0bafb0dedc7e2 for a brief explanation of how this got that
  1162. * way. XXXXX we could do better!*/
  1163. {
  1164. cached_resolve_t *new_resolve = tor_memdup(resolve,
  1165. sizeof(cached_resolve_t));
  1166. uint32_t ttl = UINT32_MAX;
  1167. new_resolve->expire = 0; /* So that set_expiry won't croak. */
  1168. if (resolve->res_status_hostname == RES_STATUS_DONE_OK)
  1169. new_resolve->result_ptr.hostname =
  1170. tor_strdup(resolve->result_ptr.hostname);
  1171. new_resolve->state = CACHE_STATE_CACHED;
  1172. assert_resolve_ok(new_resolve);
  1173. HT_INSERT(cache_map, &cache_root, new_resolve);
  1174. if ((resolve->res_status_ipv4 == RES_STATUS_DONE_OK ||
  1175. resolve->res_status_ipv4 == RES_STATUS_DONE_ERR) &&
  1176. resolve->ttl_ipv4 < ttl)
  1177. ttl = resolve->ttl_ipv4;
  1178. if ((resolve->res_status_ipv6 == RES_STATUS_DONE_OK ||
  1179. resolve->res_status_ipv6 == RES_STATUS_DONE_ERR) &&
  1180. resolve->ttl_ipv6 < ttl)
  1181. ttl = resolve->ttl_ipv6;
  1182. if ((resolve->res_status_hostname == RES_STATUS_DONE_OK ||
  1183. resolve->res_status_hostname == RES_STATUS_DONE_ERR) &&
  1184. resolve->ttl_hostname < ttl)
  1185. ttl = resolve->ttl_hostname;
  1186. set_expiry(new_resolve, time(NULL) + dns_clip_ttl(ttl));
  1187. }
  1188. assert_cache_ok();
  1189. }
  1190. /** Eventdns helper: return true iff the eventdns result <b>err</b> is
  1191. * a transient failure. */
  1192. static int
  1193. evdns_err_is_transient(int err)
  1194. {
  1195. switch (err)
  1196. {
  1197. case DNS_ERR_SERVERFAILED:
  1198. case DNS_ERR_TRUNCATED:
  1199. case DNS_ERR_TIMEOUT:
  1200. return 1;
  1201. default:
  1202. return 0;
  1203. }
  1204. }
  1205. /** Configure eventdns nameservers if force is true, or if the configuration
  1206. * has changed since the last time we called this function, or if we failed on
  1207. * our last attempt. On Unix, this reads from /etc/resolv.conf or
  1208. * options->ServerDNSResolvConfFile; on Windows, this reads from
  1209. * options->ServerDNSResolvConfFile or the registry. Return 0 on success or
  1210. * -1 on failure. */
  1211. static int
  1212. configure_nameservers(int force)
  1213. {
  1214. const or_options_t *options;
  1215. const char *conf_fname;
  1216. struct stat st;
  1217. int r, flags;
  1218. options = get_options();
  1219. conf_fname = options->ServerDNSResolvConfFile;
  1220. #ifndef _WIN32
  1221. if (!conf_fname)
  1222. conf_fname = "/etc/resolv.conf";
  1223. #endif
  1224. flags = DNS_OPTIONS_ALL;
  1225. if (!the_evdns_base) {
  1226. if (!(the_evdns_base = evdns_base_new(tor_libevent_get_base(), 0))) {
  1227. log_err(LD_BUG, "Couldn't create an evdns_base");
  1228. return -1;
  1229. }
  1230. }
  1231. evdns_set_log_fn(evdns_log_cb);
  1232. if (conf_fname) {
  1233. log_debug(LD_FS, "stat()ing %s", conf_fname);
  1234. if (stat(sandbox_intern_string(conf_fname), &st)) {
  1235. log_warn(LD_EXIT, "Unable to stat resolver configuration in '%s': %s",
  1236. conf_fname, strerror(errno));
  1237. goto err;
  1238. }
  1239. if (!force && resolv_conf_fname && !strcmp(conf_fname,resolv_conf_fname)
  1240. && st.st_mtime == resolv_conf_mtime) {
  1241. log_info(LD_EXIT, "No change to '%s'", conf_fname);
  1242. return 0;
  1243. }
  1244. if (nameservers_configured) {
  1245. evdns_base_search_clear(the_evdns_base);
  1246. evdns_base_clear_nameservers_and_suspend(the_evdns_base);
  1247. }
  1248. #if defined(DNS_OPTION_HOSTSFILE) && defined(USE_LIBSECCOMP)
  1249. if (flags & DNS_OPTION_HOSTSFILE) {
  1250. flags ^= DNS_OPTION_HOSTSFILE;
  1251. log_debug(LD_FS, "Loading /etc/hosts");
  1252. evdns_base_load_hosts(the_evdns_base,
  1253. sandbox_intern_string("/etc/hosts"));
  1254. }
  1255. #endif
  1256. log_info(LD_EXIT, "Parsing resolver configuration in '%s'", conf_fname);
  1257. if ((r = evdns_base_resolv_conf_parse(the_evdns_base, flags,
  1258. sandbox_intern_string(conf_fname)))) {
  1259. log_warn(LD_EXIT, "Unable to parse '%s', or no nameservers in '%s' (%d)",
  1260. conf_fname, conf_fname, r);
  1261. goto err;
  1262. }
  1263. if (evdns_base_count_nameservers(the_evdns_base) == 0) {
  1264. log_warn(LD_EXIT, "Unable to find any nameservers in '%s'.", conf_fname);
  1265. goto err;
  1266. }
  1267. tor_free(resolv_conf_fname);
  1268. resolv_conf_fname = tor_strdup(conf_fname);
  1269. resolv_conf_mtime = st.st_mtime;
  1270. if (nameservers_configured)
  1271. evdns_base_resume(the_evdns_base);
  1272. }
  1273. #ifdef _WIN32
  1274. else {
  1275. if (nameservers_configured) {
  1276. evdns_base_search_clear(the_evdns_base);
  1277. evdns_base_clear_nameservers_and_suspend(the_evdns_base);
  1278. }
  1279. if (evdns_base_config_windows_nameservers(the_evdns_base)) {
  1280. log_warn(LD_EXIT,"Could not config nameservers.");
  1281. goto err;
  1282. }
  1283. if (evdns_base_count_nameservers(the_evdns_base) == 0) {
  1284. log_warn(LD_EXIT, "Unable to find any platform nameservers in "
  1285. "your Windows configuration.");
  1286. goto err;
  1287. }
  1288. if (nameservers_configured)
  1289. evdns_base_resume(the_evdns_base);
  1290. tor_free(resolv_conf_fname);
  1291. resolv_conf_mtime = 0;
  1292. }
  1293. #endif
  1294. #define SET(k,v) evdns_base_set_option(the_evdns_base, (k), (v))
  1295. if (evdns_base_count_nameservers(the_evdns_base) == 1) {
  1296. SET("max-timeouts:", "16");
  1297. SET("timeout:", "10");
  1298. } else {
  1299. SET("max-timeouts:", "3");
  1300. SET("timeout:", "5");
  1301. }
  1302. if (options->ServerDNSRandomizeCase)
  1303. SET("randomize-case:", "1");
  1304. else
  1305. SET("randomize-case:", "0");
  1306. #undef SET
  1307. dns_servers_relaunch_checks();
  1308. nameservers_configured = 1;
  1309. if (nameserver_config_failed) {
  1310. nameserver_config_failed = 0;
  1311. /* XXX the three calls to republish the descriptor might be producing
  1312. * descriptors that are only cosmetically different, especially on
  1313. * non-exit relays! -RD */
  1314. mark_my_descriptor_dirty("dns resolvers back");
  1315. }
  1316. return 0;
  1317. err:
  1318. nameservers_configured = 0;
  1319. if (! nameserver_config_failed) {
  1320. nameserver_config_failed = 1;
  1321. mark_my_descriptor_dirty("dns resolvers failed");
  1322. }
  1323. return -1;
  1324. }
  1325. /** For eventdns: Called when we get an answer for a request we launched.
  1326. * See eventdns.h for arguments; 'arg' holds the address we tried to resolve.
  1327. */
  1328. static void
  1329. evdns_callback(int result, char type, int count, int ttl, void *addresses,
  1330. void *arg)
  1331. {
  1332. char *arg_ = arg;
  1333. uint8_t orig_query_type = arg_[0];
  1334. char *string_address = arg_ + 1;
  1335. tor_addr_t addr;
  1336. const char *hostname = NULL;
  1337. int was_wildcarded = 0;
  1338. tor_addr_make_unspec(&addr);
  1339. /* Keep track of whether IPv6 is working */
  1340. if (type == DNS_IPv6_AAAA) {
  1341. if (result == DNS_ERR_TIMEOUT) {
  1342. ++n_ipv6_timeouts;
  1343. }
  1344. if (n_ipv6_timeouts > 10 &&
  1345. n_ipv6_timeouts > n_ipv6_requests_made / 2) {
  1346. if (! dns_is_broken_for_ipv6) {
  1347. log_notice(LD_EXIT, "More than half of our IPv6 requests seem to "
  1348. "have timed out. I'm going to assume I can't get AAAA "
  1349. "responses.");
  1350. dns_is_broken_for_ipv6 = 1;
  1351. }
  1352. }
  1353. }
  1354. if (result == DNS_ERR_NONE) {
  1355. if (type == DNS_IPv4_A && count) {
  1356. char answer_buf[INET_NTOA_BUF_LEN+1];
  1357. char *escaped_address;
  1358. uint32_t *addrs = addresses;
  1359. tor_addr_from_ipv4n(&addr, addrs[0]);
  1360. tor_addr_to_str(answer_buf, &addr, sizeof(answer_buf), 0);
  1361. escaped_address = esc_for_log(string_address);
  1362. if (answer_is_wildcarded(answer_buf)) {
  1363. log_debug(LD_EXIT, "eventdns said that %s resolves to ISP-hijacked "
  1364. "address %s; treating as a failure.",
  1365. safe_str(escaped_address),
  1366. escaped_safe_str(answer_buf));
  1367. was_wildcarded = 1;
  1368. tor_addr_make_unspec(&addr);
  1369. result = DNS_ERR_NOTEXIST;
  1370. } else {
  1371. log_debug(LD_EXIT, "eventdns said that %s resolves to %s",
  1372. safe_str(escaped_address),
  1373. escaped_safe_str(answer_buf));
  1374. }
  1375. tor_free(escaped_address);
  1376. } else if (type == DNS_IPv6_AAAA && count) {
  1377. char answer_buf[TOR_ADDR_BUF_LEN];
  1378. char *escaped_address;
  1379. struct in6_addr *addrs = addresses;
  1380. tor_addr_from_in6(&addr, &addrs[0]);
  1381. tor_inet_ntop(AF_INET6, &addrs[0], answer_buf, sizeof(answer_buf));
  1382. escaped_address = esc_for_log(string_address);
  1383. if (answer_is_wildcarded(answer_buf)) {
  1384. log_debug(LD_EXIT, "eventdns said that %s resolves to ISP-hijacked "
  1385. "address %s; treating as a failure.",
  1386. safe_str(escaped_address),
  1387. escaped_safe_str(answer_buf));
  1388. was_wildcarded = 1;
  1389. tor_addr_make_unspec(&addr);
  1390. result = DNS_ERR_NOTEXIST;
  1391. } else {
  1392. log_debug(LD_EXIT, "eventdns said that %s resolves to %s",
  1393. safe_str(escaped_address),
  1394. escaped_safe_str(answer_buf));
  1395. }
  1396. tor_free(escaped_address);
  1397. } else if (type == DNS_PTR && count) {
  1398. char *escaped_address;
  1399. hostname = ((char**)addresses)[0];
  1400. escaped_address = esc_for_log(string_address);
  1401. log_debug(LD_EXIT, "eventdns said that %s resolves to %s",
  1402. safe_str(escaped_address),
  1403. escaped_safe_str(hostname));
  1404. tor_free(escaped_address);
  1405. } else if (count) {
  1406. log_warn(LD_EXIT, "eventdns returned only non-IPv4 answers for %s.",
  1407. escaped_safe_str(string_address));
  1408. } else {
  1409. log_warn(LD_BUG, "eventdns returned no addresses or error for %s!",
  1410. escaped_safe_str(string_address));
  1411. }
  1412. }
  1413. if (was_wildcarded) {
  1414. if (is_test_address(string_address)) {
  1415. /* Ick. We're getting redirected on known-good addresses. Our DNS
  1416. * server must really hate us. */
  1417. add_wildcarded_test_address(string_address);
  1418. }
  1419. }
  1420. if (orig_query_type && type && orig_query_type != type) {
  1421. log_warn(LD_BUG, "Weird; orig_query_type == %d but type == %d",
  1422. (int)orig_query_type, (int)type);
  1423. }
  1424. if (result != DNS_ERR_SHUTDOWN)
  1425. dns_found_answer(string_address, orig_query_type,
  1426. result, &addr, hostname, ttl);
  1427. tor_free(arg_);
  1428. }
  1429. /** Start a single DNS resolve for <b>address</b> (if <b>query_type</b> is
  1430. * DNS_IPv4_A or DNS_IPv6_AAAA) <b>ptr_address</b> (if <b>query_type</b> is
  1431. * DNS_PTR). Return 0 if we launched the request, -1 otherwise. */
  1432. static int
  1433. launch_one_resolve(const char *address, uint8_t query_type,
  1434. const tor_addr_t *ptr_address)
  1435. {
  1436. const int options = get_options()->ServerDNSSearchDomains ? 0
  1437. : DNS_QUERY_NO_SEARCH;
  1438. const size_t addr_len = strlen(address);
  1439. struct evdns_request *req = 0;
  1440. char *addr = tor_malloc(addr_len + 2);
  1441. addr[0] = (char) query_type;
  1442. memcpy(addr+1, address, addr_len + 1);
  1443. switch (query_type) {
  1444. case DNS_IPv4_A:
  1445. req = evdns_base_resolve_ipv4(the_evdns_base,
  1446. address, options, evdns_callback, addr);
  1447. break;
  1448. case DNS_IPv6_AAAA:
  1449. req = evdns_base_resolve_ipv6(the_evdns_base,
  1450. address, options, evdns_callback, addr);
  1451. ++n_ipv6_requests_made;
  1452. break;
  1453. case DNS_PTR:
  1454. if (tor_addr_family(ptr_address) == AF_INET)
  1455. req = evdns_base_resolve_reverse(the_evdns_base,
  1456. tor_addr_to_in(ptr_address),
  1457. DNS_QUERY_NO_SEARCH,
  1458. evdns_callback, addr);
  1459. else if (tor_addr_family(ptr_address) == AF_INET6)
  1460. req = evdns_base_resolve_reverse_ipv6(the_evdns_base,
  1461. tor_addr_to_in6(ptr_address),
  1462. DNS_QUERY_NO_SEARCH,
  1463. evdns_callback, addr);
  1464. else
  1465. log_warn(LD_BUG, "Called with PTR query and unexpected address family");
  1466. break;
  1467. default:
  1468. log_warn(LD_BUG, "Called with unexpectd query type %d", (int)query_type);
  1469. break;
  1470. }
  1471. if (req) {
  1472. return 0;
  1473. } else {
  1474. tor_free(addr);
  1475. return -1;
  1476. }
  1477. }
  1478. /** For eventdns: start resolving as necessary to find the target for
  1479. * <b>exitconn</b>. Returns -1 on error, -2 on transient error,
  1480. * 0 on "resolve launched." */
  1481. MOCK_IMPL(STATIC int,
  1482. launch_resolve,(cached_resolve_t *resolve))
  1483. {
  1484. tor_addr_t a;
  1485. int r;
  1486. if (get_options()->DisableNetwork)
  1487. return -1;
  1488. /* What? Nameservers not configured? Sounds like a bug. */
  1489. if (!nameservers_configured) {
  1490. log_warn(LD_EXIT, "(Harmless.) Nameservers not configured, but resolve "
  1491. "launched. Configuring.");
  1492. if (configure_nameservers(1) < 0) {
  1493. return -1;
  1494. }
  1495. }
  1496. r = tor_addr_parse_PTR_name(
  1497. &a, resolve->address, AF_UNSPEC, 0);
  1498. tor_assert(the_evdns_base);
  1499. if (r == 0) {
  1500. log_info(LD_EXIT, "Launching eventdns request for %s",
  1501. escaped_safe_str(resolve->address));
  1502. resolve->res_status_ipv4 = RES_STATUS_INFLIGHT;
  1503. if (get_options()->IPv6Exit)
  1504. resolve->res_status_ipv6 = RES_STATUS_INFLIGHT;
  1505. if (launch_one_resolve(resolve->address, DNS_IPv4_A, NULL) < 0) {
  1506. resolve->res_status_ipv4 = 0;
  1507. r = -1;
  1508. }
  1509. if (r==0 && get_options()->IPv6Exit) {
  1510. /* We ask for an IPv6 address for *everything*. */
  1511. if (launch_one_resolve(resolve->address, DNS_IPv6_AAAA, NULL) < 0) {
  1512. resolve->res_status_ipv6 = 0;
  1513. r = -1;
  1514. }
  1515. }
  1516. } else if (r == 1) {
  1517. r = 0;
  1518. log_info(LD_EXIT, "Launching eventdns reverse request for %s",
  1519. escaped_safe_str(resolve->address));
  1520. resolve->res_status_hostname = RES_STATUS_INFLIGHT;
  1521. if (launch_one_resolve(resolve->address, DNS_PTR, &a) < 0) {
  1522. resolve->res_status_hostname = 0;
  1523. r = -1;
  1524. }
  1525. } else if (r == -1) {
  1526. log_warn(LD_BUG, "Somehow a malformed in-addr.arpa address reached here.");
  1527. }
  1528. if (r < 0) {
  1529. log_fn(LOG_PROTOCOL_WARN, LD_EXIT, "eventdns rejected address %s.",
  1530. escaped_safe_str(resolve->address));
  1531. }
  1532. return r;
  1533. }
  1534. /** How many requests for bogus addresses have we launched so far? */
  1535. static int n_wildcard_requests = 0;
  1536. /** Map from dotted-quad IP address in response to an int holding how many
  1537. * times we've seen it for a randomly generated (hopefully bogus) address. It
  1538. * would be easier to use definitely-invalid addresses (as specified by
  1539. * RFC2606), but see comment in dns_launch_wildcard_checks(). */
  1540. static strmap_t *dns_wildcard_response_count = NULL;
  1541. /** If present, a list of dotted-quad IP addresses that we are pretty sure our
  1542. * nameserver wants to return in response to requests for nonexistent domains.
  1543. */
  1544. static smartlist_t *dns_wildcard_list = NULL;
  1545. /** True iff we've logged about a single address getting wildcarded.
  1546. * Subsequent warnings will be less severe. */
  1547. static int dns_wildcard_one_notice_given = 0;
  1548. /** True iff we've warned that our DNS server is wildcarding too many failures.
  1549. */
  1550. static int dns_wildcard_notice_given = 0;
  1551. /** List of supposedly good addresses that are getting wildcarded to the
  1552. * same addresses as nonexistent addresses. */
  1553. static smartlist_t *dns_wildcarded_test_address_list = NULL;
  1554. /** True iff we've warned about a test address getting wildcarded */
  1555. static int dns_wildcarded_test_address_notice_given = 0;
  1556. /** True iff all addresses seem to be getting wildcarded. */
  1557. static int dns_is_completely_invalid = 0;
  1558. /** Called when we see <b>id</b> (a dotted quad or IPv6 address) in response
  1559. * to a request for a hopefully bogus address. */
  1560. static void
  1561. wildcard_increment_answer(const char *id)
  1562. {
  1563. int *ip;
  1564. if (!dns_wildcard_response_count)
  1565. dns_wildcard_response_count = strmap_new();
  1566. ip = strmap_get(dns_wildcard_response_count, id); // may be null (0)
  1567. if (!ip) {
  1568. ip = tor_malloc_zero(sizeof(int));
  1569. strmap_set(dns_wildcard_response_count, id, ip);
  1570. }
  1571. ++*ip;
  1572. if (*ip > 5 && n_wildcard_requests > 10) {
  1573. if (!dns_wildcard_list) dns_wildcard_list = smartlist_new();
  1574. if (!smartlist_contains_string(dns_wildcard_list, id)) {
  1575. tor_log(dns_wildcard_notice_given ? LOG_INFO : LOG_NOTICE, LD_EXIT,
  1576. "Your DNS provider has given \"%s\" as an answer for %d different "
  1577. "invalid addresses. Apparently they are hijacking DNS failures. "
  1578. "I'll try to correct for this by treating future occurrences of "
  1579. "\"%s\" as 'not found'.", id, *ip, id);
  1580. smartlist_add_strdup(dns_wildcard_list, id);
  1581. }
  1582. if (!dns_wildcard_notice_given)
  1583. control_event_server_status(LOG_NOTICE, "DNS_HIJACKED");
  1584. dns_wildcard_notice_given = 1;
  1585. }
  1586. }
  1587. /** Note that a single test address (one believed to be good) seems to be
  1588. * getting redirected to the same IP as failures are. */
  1589. static void
  1590. add_wildcarded_test_address(const char *address)
  1591. {
  1592. int n, n_test_addrs;
  1593. if (!dns_wildcarded_test_address_list)
  1594. dns_wildcarded_test_address_list = smartlist_new();
  1595. if (smartlist_contains_string_case(dns_wildcarded_test_address_list,
  1596. address))
  1597. return;
  1598. n_test_addrs = get_options()->ServerDNSTestAddresses ?
  1599. smartlist_len(get_options()->ServerDNSTestAddresses) : 0;
  1600. smartlist_add_strdup(dns_wildcarded_test_address_list, address);
  1601. n = smartlist_len(dns_wildcarded_test_address_list);
  1602. if (n > n_test_addrs/2) {
  1603. tor_log(dns_wildcarded_test_address_notice_given ? LOG_INFO : LOG_NOTICE,
  1604. LD_EXIT, "Your DNS provider tried to redirect \"%s\" to a junk "
  1605. "address. It has done this with %d test addresses so far. I'm "
  1606. "going to stop being an exit node for now, since our DNS seems so "
  1607. "broken.", address, n);
  1608. if (!dns_is_completely_invalid) {
  1609. dns_is_completely_invalid = 1;
  1610. mark_my_descriptor_dirty("dns hijacking confirmed");
  1611. }
  1612. if (!dns_wildcarded_test_address_notice_given)
  1613. control_event_server_status(LOG_WARN, "DNS_USELESS");
  1614. dns_wildcarded_test_address_notice_given = 1;
  1615. }
  1616. }
  1617. /** Callback function when we get an answer (possibly failing) for a request
  1618. * for a (hopefully) nonexistent domain. */
  1619. static void
  1620. evdns_wildcard_check_callback(int result, char type, int count, int ttl,
  1621. void *addresses, void *arg)
  1622. {
  1623. (void)ttl;
  1624. ++n_wildcard_requests;
  1625. if (result == DNS_ERR_NONE && count) {
  1626. char *string_address = arg;
  1627. int i;
  1628. if (type == DNS_IPv4_A) {
  1629. const uint32_t *addrs = addresses;
  1630. for (i = 0; i < count; ++i) {
  1631. char answer_buf[INET_NTOA_BUF_LEN+1];
  1632. struct in_addr in;
  1633. in.s_addr = addrs[i];
  1634. tor_inet_ntoa(&in, answer_buf, sizeof(answer_buf));
  1635. wildcard_increment_answer(answer_buf);
  1636. }
  1637. } else if (type == DNS_IPv6_AAAA) {
  1638. const struct in6_addr *addrs = addresses;
  1639. for (i = 0; i < count; ++i) {
  1640. char answer_buf[TOR_ADDR_BUF_LEN+1];
  1641. tor_inet_ntop(AF_INET6, &addrs[i], answer_buf, sizeof(answer_buf));
  1642. wildcard_increment_answer(answer_buf);
  1643. }
  1644. }
  1645. tor_log(dns_wildcard_one_notice_given ? LOG_INFO : LOG_NOTICE, LD_EXIT,
  1646. "Your DNS provider gave an answer for \"%s\", which "
  1647. "is not supposed to exist. Apparently they are hijacking "
  1648. "DNS failures. Trying to correct for this. We've noticed %d "
  1649. "possibly bad address%s so far.",
  1650. string_address, strmap_size(dns_wildcard_response_count),
  1651. (strmap_size(dns_wildcard_response_count) == 1) ? "" : "es");
  1652. dns_wildcard_one_notice_given = 1;
  1653. }
  1654. tor_free(arg);
  1655. }
  1656. /** Launch a single request for a nonexistent hostname consisting of between
  1657. * <b>min_len</b> and <b>max_len</b> random (plausible) characters followed by
  1658. * <b>suffix</b> */
  1659. static void
  1660. launch_wildcard_check(int min_len, int max_len, int is_ipv6,
  1661. const char *suffix)
  1662. {
  1663. char *addr;
  1664. struct evdns_request *req;
  1665. addr = crypto_random_hostname(min_len, max_len, "", suffix);
  1666. log_info(LD_EXIT, "Testing whether our DNS server is hijacking nonexistent "
  1667. "domains with request for bogus hostname \"%s\"", addr);
  1668. tor_assert(the_evdns_base);
  1669. if (is_ipv6)
  1670. req = evdns_base_resolve_ipv6(
  1671. the_evdns_base,
  1672. /* This "addr" tells us which address to resolve */
  1673. addr,
  1674. DNS_QUERY_NO_SEARCH, evdns_wildcard_check_callback,
  1675. /* This "addr" is an argument to the callback*/ addr);
  1676. else
  1677. req = evdns_base_resolve_ipv4(
  1678. the_evdns_base,
  1679. /* This "addr" tells us which address to resolve */
  1680. addr,
  1681. DNS_QUERY_NO_SEARCH, evdns_wildcard_check_callback,
  1682. /* This "addr" is an argument to the callback*/ addr);
  1683. if (!req) {
  1684. /* There is no evdns request in progress; stop addr from getting leaked */
  1685. tor_free(addr);
  1686. }
  1687. }
  1688. /** Launch attempts to resolve a bunch of known-good addresses (configured in
  1689. * ServerDNSTestAddresses). [Callback for a libevent timer] */
  1690. static void
  1691. launch_test_addresses(evutil_socket_t fd, short event, void *args)
  1692. {
  1693. const or_options_t *options = get_options();
  1694. (void)fd;
  1695. (void)event;
  1696. (void)args;
  1697. if (options->DisableNetwork)
  1698. return;
  1699. log_info(LD_EXIT, "Launching checks to see whether our nameservers like to "
  1700. "hijack *everything*.");
  1701. /* This situation is worse than the failure-hijacking situation. When this
  1702. * happens, we're no good for DNS requests at all, and we shouldn't really
  1703. * be an exit server.*/
  1704. if (options->ServerDNSTestAddresses) {
  1705. tor_assert(the_evdns_base);
  1706. SMARTLIST_FOREACH_BEGIN(options->ServerDNSTestAddresses,
  1707. const char *, address) {
  1708. if (launch_one_resolve(address, DNS_IPv4_A, NULL) < 0) {
  1709. log_info(LD_EXIT, "eventdns rejected test address %s",
  1710. escaped_safe_str(address));
  1711. }
  1712. if (launch_one_resolve(address, DNS_IPv6_AAAA, NULL) < 0) {
  1713. log_info(LD_EXIT, "eventdns rejected test address %s",
  1714. escaped_safe_str(address));
  1715. }
  1716. } SMARTLIST_FOREACH_END(address);
  1717. }
  1718. }
  1719. #define N_WILDCARD_CHECKS 2
  1720. /** Launch DNS requests for a few nonexistent hostnames and a few well-known
  1721. * hostnames, and see if we can catch our nameserver trying to hijack them and
  1722. * map them to a stupid "I couldn't find ggoogle.com but maybe you'd like to
  1723. * buy these lovely encyclopedias" page. */
  1724. static void
  1725. dns_launch_wildcard_checks(void)
  1726. {
  1727. int i, ipv6;
  1728. log_info(LD_EXIT, "Launching checks to see whether our nameservers like "
  1729. "to hijack DNS failures.");
  1730. for (ipv6 = 0; ipv6 <= 1; ++ipv6) {
  1731. for (i = 0; i < N_WILDCARD_CHECKS; ++i) {
  1732. /* RFC2606 reserves these. Sadly, some DNS hijackers, in a silly
  1733. * attempt to 'comply' with rfc2606, refrain from giving A records for
  1734. * these. This is the standards-compliance equivalent of making sure
  1735. * that your crackhouse's elevator inspection certificate is up to date.
  1736. */
  1737. launch_wildcard_check(2, 16, ipv6, ".invalid");
  1738. launch_wildcard_check(2, 16, ipv6, ".test");
  1739. /* These will break specs if there are ever any number of
  1740. * 8+-character top-level domains. */
  1741. launch_wildcard_check(8, 16, ipv6, "");
  1742. /* Try some random .com/org/net domains. This will work fine so long as
  1743. * not too many resolve to the same place. */
  1744. launch_wildcard_check(8, 16, ipv6, ".com");
  1745. launch_wildcard_check(8, 16, ipv6, ".org");
  1746. launch_wildcard_check(8, 16, ipv6, ".net");
  1747. }
  1748. }
  1749. }
  1750. /** If appropriate, start testing whether our DNS servers tend to lie to
  1751. * us. */
  1752. void
  1753. dns_launch_correctness_checks(void)
  1754. {
  1755. static struct event *launch_event = NULL;
  1756. struct timeval timeout;
  1757. if (!get_options()->ServerDNSDetectHijacking)
  1758. return;
  1759. dns_launch_wildcard_checks();
  1760. /* Wait a while before launching requests for test addresses, so we can
  1761. * get the results from checking for wildcarding. */
  1762. if (! launch_event)
  1763. launch_event = tor_evtimer_new(tor_libevent_get_base(),
  1764. launch_test_addresses, NULL);
  1765. timeout.tv_sec = 30;
  1766. timeout.tv_usec = 0;
  1767. if (evtimer_add(launch_event, &timeout)<0) {
  1768. log_warn(LD_BUG, "Couldn't add timer for checking for dns hijacking");
  1769. }
  1770. }
  1771. /** Return true iff our DNS servers lie to us too much to be trusted. */
  1772. int
  1773. dns_seems_to_be_broken(void)
  1774. {
  1775. return dns_is_completely_invalid;
  1776. }
  1777. /** Return true iff we think that IPv6 hostname lookup is broken */
  1778. int
  1779. dns_seems_to_be_broken_for_ipv6(void)
  1780. {
  1781. return dns_is_broken_for_ipv6;
  1782. }
  1783. /** Forget what we've previously learned about our DNS servers' correctness. */
  1784. void
  1785. dns_reset_correctness_checks(void)
  1786. {
  1787. strmap_free(dns_wildcard_response_count, tor_free_);
  1788. dns_wildcard_response_count = NULL;
  1789. n_wildcard_requests = 0;
  1790. n_ipv6_requests_made = n_ipv6_timeouts = 0;
  1791. if (dns_wildcard_list) {
  1792. SMARTLIST_FOREACH(dns_wildcard_list, char *, cp, tor_free(cp));
  1793. smartlist_clear(dns_wildcard_list);
  1794. }
  1795. if (dns_wildcarded_test_address_list) {
  1796. SMARTLIST_FOREACH(dns_wildcarded_test_address_list, char *, cp,
  1797. tor_free(cp));
  1798. smartlist_clear(dns_wildcarded_test_address_list);
  1799. }
  1800. dns_wildcard_one_notice_given = dns_wildcard_notice_given =
  1801. dns_wildcarded_test_address_notice_given = dns_is_completely_invalid =
  1802. dns_is_broken_for_ipv6 = 0;
  1803. }
  1804. /** Return true iff we have noticed that the dotted-quad <b>ip</b> has been
  1805. * returned in response to requests for nonexistent hostnames. */
  1806. static int
  1807. answer_is_wildcarded(const char *ip)
  1808. {
  1809. return dns_wildcard_list && smartlist_contains_string(dns_wildcard_list, ip);
  1810. }
  1811. /** Exit with an assertion if <b>resolve</b> is corrupt. */
  1812. static void
  1813. assert_resolve_ok(cached_resolve_t *resolve)
  1814. {
  1815. tor_assert(resolve);
  1816. tor_assert(resolve->magic == CACHED_RESOLVE_MAGIC);
  1817. tor_assert(strlen(resolve->address) < MAX_ADDRESSLEN);
  1818. tor_assert(tor_strisnonupper(resolve->address));
  1819. if (resolve->state != CACHE_STATE_PENDING) {
  1820. tor_assert(!resolve->pending_connections);
  1821. }
  1822. if (resolve->state == CACHE_STATE_PENDING ||
  1823. resolve->state == CACHE_STATE_DONE) {
  1824. #if 0
  1825. tor_assert(!resolve->ttl);
  1826. if (resolve->is_reverse)
  1827. tor_assert(!resolve->hostname);
  1828. else
  1829. tor_assert(!resolve->result_ipv4.addr_ipv4);
  1830. #endif
  1831. /*XXXXX ADD MORE */
  1832. }
  1833. }
  1834. /** Return the number of DNS cache entries as an int */
  1835. static int
  1836. dns_cache_entry_count(void)
  1837. {
  1838. return HT_SIZE(&cache_root);
  1839. }
  1840. /** Log memory information about our internal DNS cache at level 'severity'. */
  1841. void
  1842. dump_dns_mem_usage(int severity)
  1843. {
  1844. /* This should never be larger than INT_MAX. */
  1845. int hash_count = dns_cache_entry_count();
  1846. size_t hash_mem = sizeof(struct cached_resolve_t) * hash_count;
  1847. hash_mem += HT_MEM_USAGE(&cache_root);
  1848. /* Print out the count and estimated size of our &cache_root. It undercounts
  1849. hostnames in cached reverse resolves.
  1850. */
  1851. tor_log(severity, LD_MM, "Our DNS cache has %d entries.", hash_count);
  1852. tor_log(severity, LD_MM, "Our DNS cache size is approximately %u bytes.",
  1853. (unsigned)hash_mem);
  1854. }
  1855. #ifdef DEBUG_DNS_CACHE
  1856. /** Exit with an assertion if the DNS cache is corrupt. */
  1857. static void
  1858. assert_cache_ok_(void)
  1859. {
  1860. cached_resolve_t **resolve;
  1861. int bad_rep = HT_REP_IS_BAD_(cache_map, &cache_root);
  1862. if (bad_rep) {
  1863. log_err(LD_BUG, "Bad rep type %d on dns cache hash table", bad_rep);
  1864. tor_assert(!bad_rep);
  1865. }
  1866. HT_FOREACH(resolve, cache_map, &cache_root) {
  1867. assert_resolve_ok(*resolve);
  1868. tor_assert((*resolve)->state != CACHE_STATE_DONE);
  1869. }
  1870. if (!cached_resolve_pqueue)
  1871. return;
  1872. smartlist_pqueue_assert_ok(cached_resolve_pqueue,
  1873. compare_cached_resolves_by_expiry_,
  1874. STRUCT_OFFSET(cached_resolve_t, minheap_idx));
  1875. SMARTLIST_FOREACH(cached_resolve_pqueue, cached_resolve_t *, res,
  1876. {
  1877. if (res->state == CACHE_STATE_DONE) {
  1878. cached_resolve_t *found = HT_FIND(cache_map, &cache_root, res);
  1879. tor_assert(!found || found != res);
  1880. } else {
  1881. cached_resolve_t *found = HT_FIND(cache_map, &cache_root, res);
  1882. tor_assert(found);
  1883. }
  1884. });
  1885. }
  1886. #endif
  1887. cached_resolve_t
  1888. *dns_get_cache_entry(cached_resolve_t *query)
  1889. {
  1890. return HT_FIND(cache_map, &cache_root, query);
  1891. }
  1892. void
  1893. dns_insert_cache_entry(cached_resolve_t *new_entry)
  1894. {
  1895. HT_INSERT(cache_map, &cache_root, new_entry);
  1896. }