policies.c 109 KB

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  1. /* Copyright (c) 2001-2004, Roger Dingledine.
  2. * Copyright (c) 2004-2006, Roger Dingledine, Nick Mathewson.
  3. * Copyright (c) 2007-2017, The Tor Project, Inc. */
  4. /* See LICENSE for licensing information */
  5. /**
  6. * \file policies.c
  7. * \brief Code to parse and use address policies and exit policies.
  8. *
  9. * We have two key kinds of address policy: full and compressed. A full
  10. * policy is an array of accept/reject patterns, to be applied in order.
  11. * A short policy is simply a list of ports. This module handles both
  12. * kinds, including generic functions to apply them to addresses, and
  13. * also including code to manage the global policies that we apply to
  14. * incoming and outgoing connections.
  15. **/
  16. #define POLICIES_PRIVATE
  17. #include "or.h"
  18. #include "bridges.h"
  19. #include "config.h"
  20. #include "dirserv.h"
  21. #include "microdesc.h"
  22. #include "networkstatus.h"
  23. #include "nodelist.h"
  24. #include "policies.h"
  25. #include "router.h"
  26. #include "routerparse.h"
  27. #include "geoip.h"
  28. #include "ht.h"
  29. #include "dir_server_st.h"
  30. #include "port_cfg_st.h"
  31. /** Policy that addresses for incoming SOCKS connections must match. */
  32. static smartlist_t *socks_policy = NULL;
  33. /** Policy that addresses for incoming directory connections must match. */
  34. static smartlist_t *dir_policy = NULL;
  35. /** Policy that addresses for incoming router descriptors must match in order
  36. * to be published by us. */
  37. static smartlist_t *authdir_reject_policy = NULL;
  38. /** Policy that addresses for incoming router descriptors must match in order
  39. * to be marked as valid in our networkstatus. */
  40. static smartlist_t *authdir_invalid_policy = NULL;
  41. /** Policy that addresses for incoming router descriptors must <b>not</b>
  42. * match in order to not be marked as BadExit. */
  43. static smartlist_t *authdir_badexit_policy = NULL;
  44. /** Parsed addr_policy_t describing which addresses we believe we can start
  45. * circuits at. */
  46. static smartlist_t *reachable_or_addr_policy = NULL;
  47. /** Parsed addr_policy_t describing which addresses we believe we can connect
  48. * to directories at. */
  49. static smartlist_t *reachable_dir_addr_policy = NULL;
  50. /** Element of an exit policy summary */
  51. typedef struct policy_summary_item_t {
  52. uint16_t prt_min; /**< Lowest port number to accept/reject. */
  53. uint16_t prt_max; /**< Highest port number to accept/reject. */
  54. uint64_t reject_count; /**< Number of IP-Addresses that are rejected to
  55. this port range. */
  56. unsigned int accepted:1; /** Has this port already been accepted */
  57. } policy_summary_item_t;
  58. /** Private networks. This list is used in two places, once to expand the
  59. * "private" keyword when parsing our own exit policy, secondly to ignore
  60. * just such networks when building exit policy summaries. It is important
  61. * that all authorities agree on that list when creating summaries, so don't
  62. * just change this without a proper migration plan and a proposal and stuff.
  63. */
  64. static const char *private_nets[] = {
  65. "0.0.0.0/8", "169.254.0.0/16",
  66. "127.0.0.0/8", "192.168.0.0/16", "10.0.0.0/8", "172.16.0.0/12",
  67. "[::]/8",
  68. "[fc00::]/7", "[fe80::]/10", "[fec0::]/10", "[ff00::]/8", "[::]/127",
  69. NULL
  70. };
  71. static int policies_parse_exit_policy_internal(
  72. config_line_t *cfg,
  73. smartlist_t **dest,
  74. int ipv6_exit,
  75. int rejectprivate,
  76. const smartlist_t *configured_addresses,
  77. int reject_interface_addresses,
  78. int reject_configured_port_addresses,
  79. int add_default_policy,
  80. int add_reduced_policy);
  81. /** Replace all "private" entries in *<b>policy</b> with their expanded
  82. * equivalents. */
  83. void
  84. policy_expand_private(smartlist_t **policy)
  85. {
  86. uint16_t port_min, port_max;
  87. int i;
  88. smartlist_t *tmp;
  89. if (!*policy) /*XXXX disallow NULL policies? */
  90. return;
  91. tmp = smartlist_new();
  92. SMARTLIST_FOREACH_BEGIN(*policy, addr_policy_t *, p) {
  93. if (! p->is_private) {
  94. smartlist_add(tmp, p);
  95. continue;
  96. }
  97. for (i = 0; private_nets[i]; ++i) {
  98. addr_policy_t newpolicy;
  99. memcpy(&newpolicy, p, sizeof(addr_policy_t));
  100. newpolicy.is_private = 0;
  101. newpolicy.is_canonical = 0;
  102. if (tor_addr_parse_mask_ports(private_nets[i], 0,
  103. &newpolicy.addr,
  104. &newpolicy.maskbits, &port_min, &port_max)<0) {
  105. tor_assert_unreached();
  106. }
  107. smartlist_add(tmp, addr_policy_get_canonical_entry(&newpolicy));
  108. }
  109. addr_policy_free(p);
  110. } SMARTLIST_FOREACH_END(p);
  111. smartlist_free(*policy);
  112. *policy = tmp;
  113. }
  114. /** Expand each of the AF_UNSPEC elements in *<b>policy</b> (which indicate
  115. * protocol-neutral wildcards) into a pair of wildcard elements: one IPv4-
  116. * specific and one IPv6-specific. */
  117. void
  118. policy_expand_unspec(smartlist_t **policy)
  119. {
  120. smartlist_t *tmp;
  121. if (!*policy)
  122. return;
  123. tmp = smartlist_new();
  124. SMARTLIST_FOREACH_BEGIN(*policy, addr_policy_t *, p) {
  125. sa_family_t family = tor_addr_family(&p->addr);
  126. if (family == AF_INET6 || family == AF_INET || p->is_private) {
  127. smartlist_add(tmp, p);
  128. } else if (family == AF_UNSPEC) {
  129. addr_policy_t newpolicy_ipv4;
  130. addr_policy_t newpolicy_ipv6;
  131. memcpy(&newpolicy_ipv4, p, sizeof(addr_policy_t));
  132. memcpy(&newpolicy_ipv6, p, sizeof(addr_policy_t));
  133. newpolicy_ipv4.is_canonical = 0;
  134. newpolicy_ipv6.is_canonical = 0;
  135. if (p->maskbits != 0) {
  136. log_warn(LD_BUG, "AF_UNSPEC policy with maskbits==%d", p->maskbits);
  137. newpolicy_ipv4.maskbits = 0;
  138. newpolicy_ipv6.maskbits = 0;
  139. }
  140. tor_addr_from_ipv4h(&newpolicy_ipv4.addr, 0);
  141. tor_addr_from_ipv6_bytes(&newpolicy_ipv6.addr,
  142. "\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0");
  143. smartlist_add(tmp, addr_policy_get_canonical_entry(&newpolicy_ipv4));
  144. smartlist_add(tmp, addr_policy_get_canonical_entry(&newpolicy_ipv6));
  145. addr_policy_free(p);
  146. } else {
  147. log_warn(LD_BUG, "Funny-looking address policy with family %d", family);
  148. smartlist_add(tmp, p);
  149. }
  150. } SMARTLIST_FOREACH_END(p);
  151. smartlist_free(*policy);
  152. *policy = tmp;
  153. }
  154. /**
  155. * Given a linked list of config lines containing "accept[6]" and "reject[6]"
  156. * tokens, parse them and append the result to <b>dest</b>. Return -1
  157. * if any tokens are malformed (and don't append any), else return 0.
  158. *
  159. * If <b>assume_action</b> is nonnegative, then insert its action
  160. * (ADDR_POLICY_ACCEPT or ADDR_POLICY_REJECT) for items that specify no
  161. * action.
  162. */
  163. static int
  164. parse_addr_policy(config_line_t *cfg, smartlist_t **dest,
  165. int assume_action)
  166. {
  167. smartlist_t *result;
  168. smartlist_t *entries;
  169. addr_policy_t *item;
  170. int malformed_list;
  171. int r = 0;
  172. if (!cfg)
  173. return 0;
  174. result = smartlist_new();
  175. entries = smartlist_new();
  176. for (; cfg; cfg = cfg->next) {
  177. smartlist_split_string(entries, cfg->value, ",",
  178. SPLIT_SKIP_SPACE|SPLIT_IGNORE_BLANK, 0);
  179. SMARTLIST_FOREACH_BEGIN(entries, const char *, ent) {
  180. log_debug(LD_CONFIG,"Adding new entry '%s'",ent);
  181. malformed_list = 0;
  182. item = router_parse_addr_policy_item_from_string(ent, assume_action,
  183. &malformed_list);
  184. if (item) {
  185. smartlist_add(result, item);
  186. } else if (malformed_list) {
  187. /* the error is so severe the entire list should be discarded */
  188. log_warn(LD_CONFIG, "Malformed policy '%s'. Discarding entire policy "
  189. "list.", ent);
  190. r = -1;
  191. } else {
  192. /* the error is minor: don't add the item, but keep processing the
  193. * rest of the policies in the list */
  194. log_debug(LD_CONFIG, "Ignored policy '%s' due to non-fatal error. "
  195. "The remainder of the policy list will be used.",
  196. ent);
  197. }
  198. } SMARTLIST_FOREACH_END(ent);
  199. SMARTLIST_FOREACH(entries, char *, ent, tor_free(ent));
  200. smartlist_clear(entries);
  201. }
  202. smartlist_free(entries);
  203. if (r == -1) {
  204. addr_policy_list_free(result);
  205. } else {
  206. policy_expand_private(&result);
  207. policy_expand_unspec(&result);
  208. if (*dest) {
  209. smartlist_add_all(*dest, result);
  210. smartlist_free(result);
  211. } else {
  212. *dest = result;
  213. }
  214. }
  215. return r;
  216. }
  217. /** Helper: parse the Reachable(Dir|OR)?Addresses fields into
  218. * reachable_(or|dir)_addr_policy. The options should already have
  219. * been validated by validate_addr_policies.
  220. */
  221. static int
  222. parse_reachable_addresses(void)
  223. {
  224. const or_options_t *options = get_options();
  225. int ret = 0;
  226. if (options->ReachableDirAddresses &&
  227. options->ReachableORAddresses &&
  228. options->ReachableAddresses) {
  229. log_warn(LD_CONFIG,
  230. "Both ReachableDirAddresses and ReachableORAddresses are set. "
  231. "ReachableAddresses setting will be ignored.");
  232. }
  233. addr_policy_list_free(reachable_or_addr_policy);
  234. reachable_or_addr_policy = NULL;
  235. if (!options->ReachableORAddresses && options->ReachableAddresses)
  236. log_info(LD_CONFIG,
  237. "Using ReachableAddresses as ReachableORAddresses.");
  238. if (parse_addr_policy(options->ReachableORAddresses ?
  239. options->ReachableORAddresses :
  240. options->ReachableAddresses,
  241. &reachable_or_addr_policy, ADDR_POLICY_ACCEPT)) {
  242. log_warn(LD_CONFIG,
  243. "Error parsing Reachable%sAddresses entry; ignoring.",
  244. options->ReachableORAddresses ? "OR" : "");
  245. ret = -1;
  246. }
  247. addr_policy_list_free(reachable_dir_addr_policy);
  248. reachable_dir_addr_policy = NULL;
  249. if (!options->ReachableDirAddresses && options->ReachableAddresses)
  250. log_info(LD_CONFIG,
  251. "Using ReachableAddresses as ReachableDirAddresses");
  252. if (parse_addr_policy(options->ReachableDirAddresses ?
  253. options->ReachableDirAddresses :
  254. options->ReachableAddresses,
  255. &reachable_dir_addr_policy, ADDR_POLICY_ACCEPT)) {
  256. if (options->ReachableDirAddresses)
  257. log_warn(LD_CONFIG,
  258. "Error parsing ReachableDirAddresses entry; ignoring.");
  259. ret = -1;
  260. }
  261. /* We ignore ReachableAddresses for relays */
  262. if (!server_mode(options)) {
  263. if (policy_is_reject_star(reachable_or_addr_policy, AF_UNSPEC, 0)
  264. || policy_is_reject_star(reachable_dir_addr_policy, AF_UNSPEC,0)) {
  265. log_warn(LD_CONFIG, "Tor cannot connect to the Internet if "
  266. "ReachableAddresses, ReachableORAddresses, or "
  267. "ReachableDirAddresses reject all addresses. Please accept "
  268. "some addresses in these options.");
  269. } else if (options->ClientUseIPv4 == 1
  270. && (policy_is_reject_star(reachable_or_addr_policy, AF_INET, 0)
  271. || policy_is_reject_star(reachable_dir_addr_policy, AF_INET, 0))) {
  272. log_warn(LD_CONFIG, "You have set ClientUseIPv4 1, but "
  273. "ReachableAddresses, ReachableORAddresses, or "
  274. "ReachableDirAddresses reject all IPv4 addresses. "
  275. "Tor will not connect using IPv4.");
  276. } else if (fascist_firewall_use_ipv6(options)
  277. && (policy_is_reject_star(reachable_or_addr_policy, AF_INET6, 0)
  278. || policy_is_reject_star(reachable_dir_addr_policy, AF_INET6, 0))) {
  279. log_warn(LD_CONFIG, "You have configured tor to use or prefer IPv6 "
  280. "(or UseBridges 1), but "
  281. "ReachableAddresses, ReachableORAddresses, or "
  282. "ReachableDirAddresses reject all IPv6 addresses. "
  283. "Tor will not connect using IPv6.");
  284. }
  285. }
  286. return ret;
  287. }
  288. /* Return true iff ClientUseIPv4 0 or ClientUseIPv6 0 might block any OR or Dir
  289. * address:port combination. */
  290. static int
  291. firewall_is_fascist_impl(void)
  292. {
  293. const or_options_t *options = get_options();
  294. /* Assume every non-bridge relay has an IPv4 address.
  295. * Clients which use bridges may only know the IPv6 address of their
  296. * bridge, but they will connect regardless of the ClientUseIPv6 setting. */
  297. return options->ClientUseIPv4 == 0;
  298. }
  299. /** Return true iff the firewall options, including ClientUseIPv4 0 and
  300. * ClientUseIPv6 0, might block any OR address:port combination.
  301. * Address preferences may still change which address is selected even if
  302. * this function returns false.
  303. */
  304. int
  305. firewall_is_fascist_or(void)
  306. {
  307. return (reachable_or_addr_policy != NULL || firewall_is_fascist_impl());
  308. }
  309. /** Return true iff the firewall options, including ClientUseIPv4 0 and
  310. * ClientUseIPv6 0, might block any Dir address:port combination.
  311. * Address preferences may still change which address is selected even if
  312. * this function returns false.
  313. */
  314. int
  315. firewall_is_fascist_dir(void)
  316. {
  317. return (reachable_dir_addr_policy != NULL || firewall_is_fascist_impl());
  318. }
  319. /** Return true iff <b>policy</b> (possibly NULL) will allow a
  320. * connection to <b>addr</b>:<b>port</b>.
  321. */
  322. static int
  323. addr_policy_permits_tor_addr(const tor_addr_t *addr, uint16_t port,
  324. smartlist_t *policy)
  325. {
  326. addr_policy_result_t p;
  327. p = compare_tor_addr_to_addr_policy(addr, port, policy);
  328. switch (p) {
  329. case ADDR_POLICY_PROBABLY_ACCEPTED:
  330. case ADDR_POLICY_ACCEPTED:
  331. return 1;
  332. case ADDR_POLICY_PROBABLY_REJECTED:
  333. case ADDR_POLICY_REJECTED:
  334. return 0;
  335. default:
  336. log_warn(LD_BUG, "Unexpected result: %d", (int)p);
  337. return 0;
  338. }
  339. }
  340. /** Return true iff <b> policy</b> (possibly NULL) will allow a connection to
  341. * <b>addr</b>:<b>port</b>. <b>addr</b> is an IPv4 address given in host
  342. * order. */
  343. /* XXXX deprecate when possible. */
  344. static int
  345. addr_policy_permits_address(uint32_t addr, uint16_t port,
  346. smartlist_t *policy)
  347. {
  348. tor_addr_t a;
  349. tor_addr_from_ipv4h(&a, addr);
  350. return addr_policy_permits_tor_addr(&a, port, policy);
  351. }
  352. /** Return true iff we think our firewall will let us make a connection to
  353. * addr:port.
  354. *
  355. * If we are configured as a server, ignore any address family preference and
  356. * just use IPv4.
  357. * Otherwise:
  358. * - return false for all IPv4 addresses:
  359. * - if ClientUseIPv4 is 0, or
  360. * if pref_only and pref_ipv6 are both true;
  361. * - return false for all IPv6 addresses:
  362. * - if fascist_firewall_use_ipv6() is 0, or
  363. * - if pref_only is true and pref_ipv6 is false.
  364. *
  365. * Return false if addr is NULL or tor_addr_is_null(), or if port is 0. */
  366. STATIC int
  367. fascist_firewall_allows_address(const tor_addr_t *addr,
  368. uint16_t port,
  369. smartlist_t *firewall_policy,
  370. int pref_only, int pref_ipv6)
  371. {
  372. const or_options_t *options = get_options();
  373. const int client_mode = !server_mode(options);
  374. if (!addr || tor_addr_is_null(addr) || !port) {
  375. return 0;
  376. }
  377. /* Clients stop using IPv4 if it's disabled. In most cases, clients also
  378. * stop using IPv4 if it's not preferred.
  379. * Servers must have IPv4 enabled and preferred. */
  380. if (tor_addr_family(addr) == AF_INET && client_mode &&
  381. (!options->ClientUseIPv4 || (pref_only && pref_ipv6))) {
  382. return 0;
  383. }
  384. /* Clients and Servers won't use IPv6 unless it's enabled (and in most
  385. * cases, IPv6 must also be preferred before it will be used). */
  386. if (tor_addr_family(addr) == AF_INET6 &&
  387. (!fascist_firewall_use_ipv6(options) || (pref_only && !pref_ipv6))) {
  388. return 0;
  389. }
  390. return addr_policy_permits_tor_addr(addr, port,
  391. firewall_policy);
  392. }
  393. /** Is this client configured to use IPv6?
  394. * Returns true if the client might use IPv6 for some of its connections
  395. * (including dual-stack and IPv6-only clients), and false if it will never
  396. * use IPv6 for any connections.
  397. * Use node_ipv6_or/dir_preferred() when checking a specific node and OR/Dir
  398. * port: it supports bridge client per-node IPv6 preferences.
  399. */
  400. int
  401. fascist_firewall_use_ipv6(const or_options_t *options)
  402. {
  403. /* Clients use IPv6 if it's set, or they use bridges, or they don't use
  404. * IPv4, or they prefer it.
  405. * ClientPreferIPv6DirPort is deprecated, but check it anyway. */
  406. return (options->ClientUseIPv6 == 1 || options->ClientUseIPv4 == 0 ||
  407. options->ClientPreferIPv6ORPort == 1 ||
  408. options->ClientPreferIPv6DirPort == 1 || options->UseBridges == 1);
  409. }
  410. /** Do we prefer to connect to IPv6, ignoring ClientPreferIPv6ORPort and
  411. * ClientPreferIPv6DirPort?
  412. * If we're unsure, return -1, otherwise, return 1 for IPv6 and 0 for IPv4.
  413. */
  414. static int
  415. fascist_firewall_prefer_ipv6_impl(const or_options_t *options)
  416. {
  417. /*
  418. Cheap implementation of config options ClientUseIPv4 & ClientUseIPv6 --
  419. If we're a server or IPv6 is disabled, use IPv4.
  420. If IPv4 is disabled, use IPv6.
  421. */
  422. if (server_mode(options) || !fascist_firewall_use_ipv6(options)) {
  423. return 0;
  424. }
  425. if (!options->ClientUseIPv4) {
  426. return 1;
  427. }
  428. return -1;
  429. }
  430. /** Do we prefer to connect to IPv6 ORPorts?
  431. * Use node_ipv6_or_preferred() whenever possible: it supports bridge client
  432. * per-node IPv6 preferences.
  433. */
  434. int
  435. fascist_firewall_prefer_ipv6_orport(const or_options_t *options)
  436. {
  437. int pref_ipv6 = fascist_firewall_prefer_ipv6_impl(options);
  438. if (pref_ipv6 >= 0) {
  439. return pref_ipv6;
  440. }
  441. /* We can use both IPv4 and IPv6 - which do we prefer? */
  442. if (options->ClientPreferIPv6ORPort == 1) {
  443. return 1;
  444. }
  445. return 0;
  446. }
  447. /** Do we prefer to connect to IPv6 DirPorts?
  448. *
  449. * (node_ipv6_dir_preferred() doesn't support bridge client per-node IPv6
  450. * preferences. There's no reason to use it instead of this function.)
  451. */
  452. int
  453. fascist_firewall_prefer_ipv6_dirport(const or_options_t *options)
  454. {
  455. int pref_ipv6 = fascist_firewall_prefer_ipv6_impl(options);
  456. if (pref_ipv6 >= 0) {
  457. return pref_ipv6;
  458. }
  459. /* We can use both IPv4 and IPv6 - which do we prefer? */
  460. if (options->ClientPreferIPv6DirPort == 1) {
  461. return 1;
  462. }
  463. return 0;
  464. }
  465. /** Return true iff we think our firewall will let us make a connection to
  466. * addr:port. Uses ReachableORAddresses or ReachableDirAddresses based on
  467. * fw_connection.
  468. * If pref_only is true, return true if addr is in the client's preferred
  469. * address family, which is IPv6 if pref_ipv6 is true, and IPv4 otherwise.
  470. * If pref_only is false, ignore pref_ipv6, and return true if addr is allowed.
  471. */
  472. int
  473. fascist_firewall_allows_address_addr(const tor_addr_t *addr, uint16_t port,
  474. firewall_connection_t fw_connection,
  475. int pref_only, int pref_ipv6)
  476. {
  477. if (fw_connection == FIREWALL_OR_CONNECTION) {
  478. return fascist_firewall_allows_address(addr, port,
  479. reachable_or_addr_policy,
  480. pref_only, pref_ipv6);
  481. } else if (fw_connection == FIREWALL_DIR_CONNECTION) {
  482. return fascist_firewall_allows_address(addr, port,
  483. reachable_dir_addr_policy,
  484. pref_only, pref_ipv6);
  485. } else {
  486. log_warn(LD_BUG, "Bad firewall_connection_t value %d.",
  487. fw_connection);
  488. return 0;
  489. }
  490. }
  491. /** Return true iff we think our firewall will let us make a connection to
  492. * addr:port (ap). Uses ReachableORAddresses or ReachableDirAddresses based on
  493. * fw_connection.
  494. * pref_only and pref_ipv6 work as in fascist_firewall_allows_address_addr().
  495. */
  496. static int
  497. fascist_firewall_allows_address_ap(const tor_addr_port_t *ap,
  498. firewall_connection_t fw_connection,
  499. int pref_only, int pref_ipv6)
  500. {
  501. tor_assert(ap);
  502. return fascist_firewall_allows_address_addr(&ap->addr, ap->port,
  503. fw_connection, pref_only,
  504. pref_ipv6);
  505. }
  506. /* Return true iff we think our firewall will let us make a connection to
  507. * ipv4h_or_addr:ipv4_or_port. ipv4h_or_addr is interpreted in host order.
  508. * Uses ReachableORAddresses or ReachableDirAddresses based on
  509. * fw_connection.
  510. * pref_only and pref_ipv6 work as in fascist_firewall_allows_address_addr().
  511. */
  512. static int
  513. fascist_firewall_allows_address_ipv4h(uint32_t ipv4h_or_addr,
  514. uint16_t ipv4_or_port,
  515. firewall_connection_t fw_connection,
  516. int pref_only, int pref_ipv6)
  517. {
  518. tor_addr_t ipv4_or_addr;
  519. tor_addr_from_ipv4h(&ipv4_or_addr, ipv4h_or_addr);
  520. return fascist_firewall_allows_address_addr(&ipv4_or_addr, ipv4_or_port,
  521. fw_connection, pref_only,
  522. pref_ipv6);
  523. }
  524. /** Return true iff we think our firewall will let us make a connection to
  525. * ipv4h_addr/ipv6_addr. Uses ipv4_orport/ipv6_orport/ReachableORAddresses or
  526. * ipv4_dirport/ipv6_dirport/ReachableDirAddresses based on IPv4/IPv6 and
  527. * <b>fw_connection</b>.
  528. * pref_only and pref_ipv6 work as in fascist_firewall_allows_address_addr().
  529. */
  530. static int
  531. fascist_firewall_allows_base(uint32_t ipv4h_addr, uint16_t ipv4_orport,
  532. uint16_t ipv4_dirport,
  533. const tor_addr_t *ipv6_addr, uint16_t ipv6_orport,
  534. uint16_t ipv6_dirport,
  535. firewall_connection_t fw_connection,
  536. int pref_only, int pref_ipv6)
  537. {
  538. if (fascist_firewall_allows_address_ipv4h(ipv4h_addr,
  539. (fw_connection == FIREWALL_OR_CONNECTION
  540. ? ipv4_orport
  541. : ipv4_dirport),
  542. fw_connection,
  543. pref_only, pref_ipv6)) {
  544. return 1;
  545. }
  546. if (fascist_firewall_allows_address_addr(ipv6_addr,
  547. (fw_connection == FIREWALL_OR_CONNECTION
  548. ? ipv6_orport
  549. : ipv6_dirport),
  550. fw_connection,
  551. pref_only, pref_ipv6)) {
  552. return 1;
  553. }
  554. return 0;
  555. }
  556. /** Like fascist_firewall_allows_base(), but takes ri. */
  557. static int
  558. fascist_firewall_allows_ri_impl(const routerinfo_t *ri,
  559. firewall_connection_t fw_connection,
  560. int pref_only, int pref_ipv6)
  561. {
  562. if (!ri) {
  563. return 0;
  564. }
  565. /* Assume IPv4 and IPv6 DirPorts are the same */
  566. return fascist_firewall_allows_base(ri->addr, ri->or_port, ri->dir_port,
  567. &ri->ipv6_addr, ri->ipv6_orport,
  568. ri->dir_port, fw_connection, pref_only,
  569. pref_ipv6);
  570. }
  571. /** Like fascist_firewall_allows_rs, but takes pref_ipv6. */
  572. static int
  573. fascist_firewall_allows_rs_impl(const routerstatus_t *rs,
  574. firewall_connection_t fw_connection,
  575. int pref_only, int pref_ipv6)
  576. {
  577. if (!rs) {
  578. return 0;
  579. }
  580. /* Assume IPv4 and IPv6 DirPorts are the same */
  581. return fascist_firewall_allows_base(rs->addr, rs->or_port, rs->dir_port,
  582. &rs->ipv6_addr, rs->ipv6_orport,
  583. rs->dir_port, fw_connection, pref_only,
  584. pref_ipv6);
  585. }
  586. /** Like fascist_firewall_allows_base(), but takes rs.
  587. * When rs is a fake_status from a dir_server_t, it can have a reachable
  588. * address, even when the corresponding node does not.
  589. * nodes can be missing addresses when there's no consensus (IPv4 and IPv6),
  590. * or when there is a microdescriptor consensus, but no microdescriptors
  591. * (microdescriptors have IPv6, the microdesc consensus does not). */
  592. int
  593. fascist_firewall_allows_rs(const routerstatus_t *rs,
  594. firewall_connection_t fw_connection, int pref_only)
  595. {
  596. if (!rs) {
  597. return 0;
  598. }
  599. /* We don't have access to the node-specific IPv6 preference, so use the
  600. * generic IPv6 preference instead. */
  601. const or_options_t *options = get_options();
  602. int pref_ipv6 = (fw_connection == FIREWALL_OR_CONNECTION
  603. ? fascist_firewall_prefer_ipv6_orport(options)
  604. : fascist_firewall_prefer_ipv6_dirport(options));
  605. return fascist_firewall_allows_rs_impl(rs, fw_connection, pref_only,
  606. pref_ipv6);
  607. }
  608. /** Return true iff we think our firewall will let us make a connection to
  609. * ipv6_addr:ipv6_orport based on ReachableORAddresses.
  610. * If <b>fw_connection</b> is FIREWALL_DIR_CONNECTION, returns 0.
  611. * pref_only and pref_ipv6 work as in fascist_firewall_allows_address_addr().
  612. */
  613. static int
  614. fascist_firewall_allows_md_impl(const microdesc_t *md,
  615. firewall_connection_t fw_connection,
  616. int pref_only, int pref_ipv6)
  617. {
  618. if (!md) {
  619. return 0;
  620. }
  621. /* Can't check dirport, it doesn't have one */
  622. if (fw_connection == FIREWALL_DIR_CONNECTION) {
  623. return 0;
  624. }
  625. /* Also can't check IPv4, doesn't have that either */
  626. return fascist_firewall_allows_address_addr(&md->ipv6_addr, md->ipv6_orport,
  627. fw_connection, pref_only,
  628. pref_ipv6);
  629. }
  630. /** Like fascist_firewall_allows_base(), but takes node, and looks up pref_ipv6
  631. * from node_ipv6_or/dir_preferred(). */
  632. int
  633. fascist_firewall_allows_node(const node_t *node,
  634. firewall_connection_t fw_connection,
  635. int pref_only)
  636. {
  637. if (!node) {
  638. return 0;
  639. }
  640. node_assert_ok(node);
  641. const int pref_ipv6 = (fw_connection == FIREWALL_OR_CONNECTION
  642. ? node_ipv6_or_preferred(node)
  643. : node_ipv6_dir_preferred(node));
  644. /* Sometimes, the rs is missing the IPv6 address info, and we need to go
  645. * all the way to the md */
  646. if (node->ri && fascist_firewall_allows_ri_impl(node->ri, fw_connection,
  647. pref_only, pref_ipv6)) {
  648. return 1;
  649. } else if (node->rs && fascist_firewall_allows_rs_impl(node->rs,
  650. fw_connection,
  651. pref_only,
  652. pref_ipv6)) {
  653. return 1;
  654. } else if (node->md && fascist_firewall_allows_md_impl(node->md,
  655. fw_connection,
  656. pref_only,
  657. pref_ipv6)) {
  658. return 1;
  659. } else {
  660. /* If we know nothing, assume it's unreachable, we'll never get an address
  661. * to connect to. */
  662. return 0;
  663. }
  664. }
  665. /** Like fascist_firewall_allows_rs(), but takes ds. */
  666. int
  667. fascist_firewall_allows_dir_server(const dir_server_t *ds,
  668. firewall_connection_t fw_connection,
  669. int pref_only)
  670. {
  671. if (!ds) {
  672. return 0;
  673. }
  674. /* A dir_server_t always has a fake_status. As long as it has the same
  675. * addresses/ports in both fake_status and dir_server_t, this works fine.
  676. * (See #17867.)
  677. * fascist_firewall_allows_rs only checks the addresses in fake_status. */
  678. return fascist_firewall_allows_rs(&ds->fake_status, fw_connection,
  679. pref_only);
  680. }
  681. /** If a and b are both valid and allowed by fw_connection,
  682. * choose one based on want_a and return it.
  683. * Otherwise, return whichever is allowed.
  684. * Otherwise, return NULL.
  685. * pref_only and pref_ipv6 work as in fascist_firewall_allows_address_addr().
  686. */
  687. static const tor_addr_port_t *
  688. fascist_firewall_choose_address_impl(const tor_addr_port_t *a,
  689. const tor_addr_port_t *b,
  690. int want_a,
  691. firewall_connection_t fw_connection,
  692. int pref_only, int pref_ipv6)
  693. {
  694. const tor_addr_port_t *use_a = NULL;
  695. const tor_addr_port_t *use_b = NULL;
  696. if (fascist_firewall_allows_address_ap(a, fw_connection, pref_only,
  697. pref_ipv6)) {
  698. use_a = a;
  699. }
  700. if (fascist_firewall_allows_address_ap(b, fw_connection, pref_only,
  701. pref_ipv6)) {
  702. use_b = b;
  703. }
  704. /* If both are allowed */
  705. if (use_a && use_b) {
  706. /* Choose a if we want it */
  707. return (want_a ? use_a : use_b);
  708. } else {
  709. /* Choose a if we have it */
  710. return (use_a ? use_a : use_b);
  711. }
  712. }
  713. /** If a and b are both valid and preferred by fw_connection,
  714. * choose one based on want_a and return it.
  715. * Otherwise, return whichever is preferred.
  716. * If neither are preferred, and pref_only is false:
  717. * - If a and b are both allowed by fw_connection,
  718. * choose one based on want_a and return it.
  719. * - Otherwise, return whichever is preferred.
  720. * Otherwise, return NULL. */
  721. STATIC const tor_addr_port_t *
  722. fascist_firewall_choose_address(const tor_addr_port_t *a,
  723. const tor_addr_port_t *b,
  724. int want_a,
  725. firewall_connection_t fw_connection,
  726. int pref_only, int pref_ipv6)
  727. {
  728. const tor_addr_port_t *pref = fascist_firewall_choose_address_impl(
  729. a, b, want_a,
  730. fw_connection,
  731. 1, pref_ipv6);
  732. if (pref_only || pref) {
  733. /* If there is a preferred address, use it. If we can only use preferred
  734. * addresses, and neither address is preferred, pref will be NULL, and we
  735. * want to return NULL, so return it. */
  736. return pref;
  737. } else {
  738. /* If there's no preferred address, and we can return addresses that are
  739. * not preferred, use an address that's allowed */
  740. return fascist_firewall_choose_address_impl(a, b, want_a, fw_connection,
  741. 0, pref_ipv6);
  742. }
  743. }
  744. /** Copy an address and port into <b>ap</b> that we think our firewall will
  745. * let us connect to. Uses ipv4_addr/ipv6_addr and
  746. * ipv4_orport/ipv6_orport/ReachableORAddresses or
  747. * ipv4_dirport/ipv6_dirport/ReachableDirAddresses based on IPv4/IPv6 and
  748. * <b>fw_connection</b>.
  749. * If pref_only, only choose preferred addresses. In either case, choose
  750. * a preferred address before an address that's not preferred.
  751. * If both addresses could be chosen (they are both preferred or both allowed)
  752. * choose IPv6 if pref_ipv6 is true, otherwise choose IPv4. */
  753. static void
  754. fascist_firewall_choose_address_base(const tor_addr_t *ipv4_addr,
  755. uint16_t ipv4_orport,
  756. uint16_t ipv4_dirport,
  757. const tor_addr_t *ipv6_addr,
  758. uint16_t ipv6_orport,
  759. uint16_t ipv6_dirport,
  760. firewall_connection_t fw_connection,
  761. int pref_only,
  762. int pref_ipv6,
  763. tor_addr_port_t* ap)
  764. {
  765. const tor_addr_port_t *result = NULL;
  766. const int want_ipv4 = !pref_ipv6;
  767. tor_assert(ipv6_addr);
  768. tor_assert(ap);
  769. tor_addr_make_null(&ap->addr, AF_UNSPEC);
  770. ap->port = 0;
  771. tor_addr_port_t ipv4_ap;
  772. tor_addr_copy(&ipv4_ap.addr, ipv4_addr);
  773. ipv4_ap.port = (fw_connection == FIREWALL_OR_CONNECTION
  774. ? ipv4_orport
  775. : ipv4_dirport);
  776. tor_addr_port_t ipv6_ap;
  777. tor_addr_copy(&ipv6_ap.addr, ipv6_addr);
  778. ipv6_ap.port = (fw_connection == FIREWALL_OR_CONNECTION
  779. ? ipv6_orport
  780. : ipv6_dirport);
  781. result = fascist_firewall_choose_address(&ipv4_ap, &ipv6_ap,
  782. want_ipv4,
  783. fw_connection, pref_only,
  784. pref_ipv6);
  785. if (result) {
  786. tor_addr_copy(&ap->addr, &result->addr);
  787. ap->port = result->port;
  788. }
  789. }
  790. /** Like fascist_firewall_choose_address_base(), but takes a host-order IPv4
  791. * address as the first parameter. */
  792. static void
  793. fascist_firewall_choose_address_ipv4h(uint32_t ipv4h_addr,
  794. uint16_t ipv4_orport,
  795. uint16_t ipv4_dirport,
  796. const tor_addr_t *ipv6_addr,
  797. uint16_t ipv6_orport,
  798. uint16_t ipv6_dirport,
  799. firewall_connection_t fw_connection,
  800. int pref_only,
  801. int pref_ipv6,
  802. tor_addr_port_t* ap)
  803. {
  804. tor_addr_t ipv4_addr;
  805. tor_addr_from_ipv4h(&ipv4_addr, ipv4h_addr);
  806. tor_assert(ap);
  807. tor_addr_make_null(&ap->addr, AF_UNSPEC);
  808. ap->port = 0;
  809. fascist_firewall_choose_address_base(&ipv4_addr, ipv4_orport,
  810. ipv4_dirport, ipv6_addr,
  811. ipv6_orport, ipv6_dirport,
  812. fw_connection, pref_only,
  813. pref_ipv6, ap);
  814. }
  815. /* Some microdescriptor consensus methods have no IPv6 addresses in rs: they
  816. * are in the microdescriptors. For these consensus methods, we can't rely on
  817. * the node's IPv6 address until its microdescriptor is available (when using
  818. * microdescs).
  819. * But for bridges, rewrite_node_address_for_bridge() updates node->ri with
  820. * the configured address, so we can trust bridge addresses.
  821. * (Bridges could gain an IPv6 address if their microdescriptor arrives, but
  822. * this will never be their preferred address: that is in the config.)
  823. * Returns true if the node needs a microdescriptor for its IPv6 address, and
  824. * false if the addresses in the node are already up-to-date.
  825. */
  826. static int
  827. node_awaiting_ipv6(const or_options_t* options, const node_t *node)
  828. {
  829. tor_assert(node);
  830. /* There's no point waiting for an IPv6 address if we'd never use it */
  831. if (!fascist_firewall_use_ipv6(options)) {
  832. return 0;
  833. }
  834. /* If the node has an IPv6 address, we're not waiting */
  835. if (node_has_ipv6_addr(node)) {
  836. return 0;
  837. }
  838. /* If the current consensus method and flavour has IPv6 addresses, we're not
  839. * waiting */
  840. if (networkstatus_consensus_has_ipv6(options)) {
  841. return 0;
  842. }
  843. /* Bridge clients never use the address from a bridge's md, so there's no
  844. * need to wait for it. */
  845. if (node_is_a_configured_bridge(node)) {
  846. return 0;
  847. }
  848. /* We are waiting if we_use_microdescriptors_for_circuits() and we have no
  849. * md. */
  850. return (!node->md && we_use_microdescriptors_for_circuits(options));
  851. }
  852. /** Like fascist_firewall_choose_address_base(), but takes <b>rs</b>.
  853. * Consults the corresponding node, then falls back to rs if node is NULL.
  854. * This should only happen when there's no valid consensus, and rs doesn't
  855. * correspond to a bridge client's bridge.
  856. */
  857. void
  858. fascist_firewall_choose_address_rs(const routerstatus_t *rs,
  859. firewall_connection_t fw_connection,
  860. int pref_only, tor_addr_port_t* ap)
  861. {
  862. tor_assert(ap);
  863. tor_addr_make_null(&ap->addr, AF_UNSPEC);
  864. ap->port = 0;
  865. if (!rs) {
  866. return;
  867. }
  868. const or_options_t *options = get_options();
  869. const node_t *node = node_get_by_id(rs->identity_digest);
  870. if (node && !node_awaiting_ipv6(options, node)) {
  871. fascist_firewall_choose_address_node(node, fw_connection, pref_only, ap);
  872. } else {
  873. /* There's no node-specific IPv6 preference, so use the generic IPv6
  874. * preference instead. */
  875. int pref_ipv6 = (fw_connection == FIREWALL_OR_CONNECTION
  876. ? fascist_firewall_prefer_ipv6_orport(options)
  877. : fascist_firewall_prefer_ipv6_dirport(options));
  878. /* Assume IPv4 and IPv6 DirPorts are the same.
  879. * Assume the IPv6 OR and Dir addresses are the same. */
  880. fascist_firewall_choose_address_ipv4h(rs->addr, rs->or_port, rs->dir_port,
  881. &rs->ipv6_addr, rs->ipv6_orport,
  882. rs->dir_port, fw_connection,
  883. pref_only, pref_ipv6, ap);
  884. }
  885. }
  886. /** Like fascist_firewall_choose_address_base(), but takes <b>node</b>, and
  887. * looks up the node's IPv6 preference rather than taking an argument
  888. * for pref_ipv6. */
  889. void
  890. fascist_firewall_choose_address_node(const node_t *node,
  891. firewall_connection_t fw_connection,
  892. int pref_only, tor_addr_port_t *ap)
  893. {
  894. tor_assert(ap);
  895. tor_addr_make_null(&ap->addr, AF_UNSPEC);
  896. ap->port = 0;
  897. if (!node) {
  898. return;
  899. }
  900. node_assert_ok(node);
  901. /* Calling fascist_firewall_choose_address_node() when the node is missing
  902. * IPv6 information breaks IPv6-only clients.
  903. * If the node is a hard-coded fallback directory or authority, call
  904. * fascist_firewall_choose_address_rs() on the fake (hard-coded) routerstatus
  905. * for the node.
  906. * If it is not hard-coded, check that the node has a microdescriptor, full
  907. * descriptor (routerinfo), or is one of our configured bridges before
  908. * calling this function. */
  909. if (BUG(node_awaiting_ipv6(get_options(), node))) {
  910. return;
  911. }
  912. const int pref_ipv6_node = (fw_connection == FIREWALL_OR_CONNECTION
  913. ? node_ipv6_or_preferred(node)
  914. : node_ipv6_dir_preferred(node));
  915. tor_addr_port_t ipv4_or_ap;
  916. node_get_prim_orport(node, &ipv4_or_ap);
  917. tor_addr_port_t ipv4_dir_ap;
  918. node_get_prim_dirport(node, &ipv4_dir_ap);
  919. tor_addr_port_t ipv6_or_ap;
  920. node_get_pref_ipv6_orport(node, &ipv6_or_ap);
  921. tor_addr_port_t ipv6_dir_ap;
  922. node_get_pref_ipv6_dirport(node, &ipv6_dir_ap);
  923. /* Assume the IPv6 OR and Dir addresses are the same. */
  924. fascist_firewall_choose_address_base(&ipv4_or_ap.addr, ipv4_or_ap.port,
  925. ipv4_dir_ap.port, &ipv6_or_ap.addr,
  926. ipv6_or_ap.port, ipv6_dir_ap.port,
  927. fw_connection, pref_only,
  928. pref_ipv6_node, ap);
  929. }
  930. /** Like fascist_firewall_choose_address_rs(), but takes <b>ds</b>. */
  931. void
  932. fascist_firewall_choose_address_dir_server(const dir_server_t *ds,
  933. firewall_connection_t fw_connection,
  934. int pref_only,
  935. tor_addr_port_t *ap)
  936. {
  937. tor_assert(ap);
  938. tor_addr_make_null(&ap->addr, AF_UNSPEC);
  939. ap->port = 0;
  940. if (!ds) {
  941. return;
  942. }
  943. /* A dir_server_t always has a fake_status. As long as it has the same
  944. * addresses/ports in both fake_status and dir_server_t, this works fine.
  945. * (See #17867.)
  946. * This function relies on fascist_firewall_choose_address_rs looking up the
  947. * node if it can, because that will get the latest info for the relay. */
  948. fascist_firewall_choose_address_rs(&ds->fake_status, fw_connection,
  949. pref_only, ap);
  950. }
  951. /** Return 1 if <b>addr</b> is permitted to connect to our dir port,
  952. * based on <b>dir_policy</b>. Else return 0.
  953. */
  954. int
  955. dir_policy_permits_address(const tor_addr_t *addr)
  956. {
  957. return addr_policy_permits_tor_addr(addr, 1, dir_policy);
  958. }
  959. /** Return 1 if <b>addr</b> is permitted to connect to our socks port,
  960. * based on <b>socks_policy</b>. Else return 0.
  961. */
  962. int
  963. socks_policy_permits_address(const tor_addr_t *addr)
  964. {
  965. return addr_policy_permits_tor_addr(addr, 1, socks_policy);
  966. }
  967. /** Return true iff the address <b>addr</b> is in a country listed in the
  968. * case-insensitive list of country codes <b>cc_list</b>. */
  969. static int
  970. addr_is_in_cc_list(uint32_t addr, const smartlist_t *cc_list)
  971. {
  972. country_t country;
  973. const char *name;
  974. tor_addr_t tar;
  975. if (!cc_list)
  976. return 0;
  977. /* XXXXipv6 */
  978. tor_addr_from_ipv4h(&tar, addr);
  979. country = geoip_get_country_by_addr(&tar);
  980. name = geoip_get_country_name(country);
  981. return smartlist_contains_string_case(cc_list, name);
  982. }
  983. /** Return 1 if <b>addr</b>:<b>port</b> is permitted to publish to our
  984. * directory, based on <b>authdir_reject_policy</b>. Else return 0.
  985. */
  986. int
  987. authdir_policy_permits_address(uint32_t addr, uint16_t port)
  988. {
  989. if (! addr_policy_permits_address(addr, port, authdir_reject_policy))
  990. return 0;
  991. return !addr_is_in_cc_list(addr, get_options()->AuthDirRejectCCs);
  992. }
  993. /** Return 1 if <b>addr</b>:<b>port</b> is considered valid in our
  994. * directory, based on <b>authdir_invalid_policy</b>. Else return 0.
  995. */
  996. int
  997. authdir_policy_valid_address(uint32_t addr, uint16_t port)
  998. {
  999. if (! addr_policy_permits_address(addr, port, authdir_invalid_policy))
  1000. return 0;
  1001. return !addr_is_in_cc_list(addr, get_options()->AuthDirInvalidCCs);
  1002. }
  1003. /** Return 1 if <b>addr</b>:<b>port</b> should be marked as a bad exit,
  1004. * based on <b>authdir_badexit_policy</b>. Else return 0.
  1005. */
  1006. int
  1007. authdir_policy_badexit_address(uint32_t addr, uint16_t port)
  1008. {
  1009. if (! addr_policy_permits_address(addr, port, authdir_badexit_policy))
  1010. return 1;
  1011. return addr_is_in_cc_list(addr, get_options()->AuthDirBadExitCCs);
  1012. }
  1013. #define REJECT(arg) \
  1014. STMT_BEGIN *msg = tor_strdup(arg); goto err; STMT_END
  1015. /** Config helper: If there's any problem with the policy configuration
  1016. * options in <b>options</b>, return -1 and set <b>msg</b> to a newly
  1017. * allocated description of the error. Else return 0. */
  1018. int
  1019. validate_addr_policies(const or_options_t *options, char **msg)
  1020. {
  1021. /* XXXX Maybe merge this into parse_policies_from_options, to make sure
  1022. * that the two can't go out of sync. */
  1023. smartlist_t *addr_policy=NULL;
  1024. *msg = NULL;
  1025. if (policies_parse_exit_policy_from_options(options,0,NULL,&addr_policy)) {
  1026. REJECT("Error in ExitPolicy entry.");
  1027. }
  1028. static int warned_about_exitrelay = 0;
  1029. const int exitrelay_setting_is_auto = options->ExitRelay == -1;
  1030. const int policy_accepts_something =
  1031. ! (policy_is_reject_star(addr_policy, AF_INET, 1) &&
  1032. policy_is_reject_star(addr_policy, AF_INET6, 1));
  1033. if (server_mode(options) &&
  1034. ! warned_about_exitrelay &&
  1035. exitrelay_setting_is_auto &&
  1036. policy_accepts_something) {
  1037. /* Policy accepts something */
  1038. warned_about_exitrelay = 1;
  1039. log_warn(LD_CONFIG,
  1040. "Tor is running as an exit relay%s. If you did not want this "
  1041. "behavior, please set the ExitRelay option to 0. If you do "
  1042. "want to run an exit Relay, please set the ExitRelay option "
  1043. "to 1 to disable this warning, and for forward compatibility.",
  1044. options->ExitPolicy == NULL ?
  1045. " with the default exit policy" : "");
  1046. if (options->ExitPolicy == NULL && options->ReducedExitPolicy == 0) {
  1047. log_warn(LD_CONFIG,
  1048. "In a future version of Tor, ExitRelay 0 may become the "
  1049. "default when no ExitPolicy is given.");
  1050. }
  1051. }
  1052. /* The rest of these calls *append* to addr_policy. So don't actually
  1053. * use the results for anything other than checking if they parse! */
  1054. if (parse_addr_policy(options->DirPolicy, &addr_policy, -1))
  1055. REJECT("Error in DirPolicy entry.");
  1056. if (parse_addr_policy(options->SocksPolicy, &addr_policy, -1))
  1057. REJECT("Error in SocksPolicy entry.");
  1058. if (parse_addr_policy(options->AuthDirReject, &addr_policy,
  1059. ADDR_POLICY_REJECT))
  1060. REJECT("Error in AuthDirReject entry.");
  1061. if (parse_addr_policy(options->AuthDirInvalid, &addr_policy,
  1062. ADDR_POLICY_REJECT))
  1063. REJECT("Error in AuthDirInvalid entry.");
  1064. if (parse_addr_policy(options->AuthDirBadExit, &addr_policy,
  1065. ADDR_POLICY_REJECT))
  1066. REJECT("Error in AuthDirBadExit entry.");
  1067. if (parse_addr_policy(options->ReachableAddresses, &addr_policy,
  1068. ADDR_POLICY_ACCEPT))
  1069. REJECT("Error in ReachableAddresses entry.");
  1070. if (parse_addr_policy(options->ReachableORAddresses, &addr_policy,
  1071. ADDR_POLICY_ACCEPT))
  1072. REJECT("Error in ReachableORAddresses entry.");
  1073. if (parse_addr_policy(options->ReachableDirAddresses, &addr_policy,
  1074. ADDR_POLICY_ACCEPT))
  1075. REJECT("Error in ReachableDirAddresses entry.");
  1076. err:
  1077. addr_policy_list_free(addr_policy);
  1078. return *msg ? -1 : 0;
  1079. #undef REJECT
  1080. }
  1081. /** Parse <b>string</b> in the same way that the exit policy
  1082. * is parsed, and put the processed version in *<b>policy</b>.
  1083. * Ignore port specifiers.
  1084. */
  1085. static int
  1086. load_policy_from_option(config_line_t *config, const char *option_name,
  1087. smartlist_t **policy,
  1088. int assume_action)
  1089. {
  1090. int r;
  1091. int killed_any_ports = 0;
  1092. addr_policy_list_free(*policy);
  1093. *policy = NULL;
  1094. r = parse_addr_policy(config, policy, assume_action);
  1095. if (r < 0) {
  1096. return -1;
  1097. }
  1098. if (*policy) {
  1099. SMARTLIST_FOREACH_BEGIN(*policy, addr_policy_t *, n) {
  1100. /* ports aren't used in these. */
  1101. if (n->prt_min > 1 || n->prt_max != 65535) {
  1102. addr_policy_t newp, *c;
  1103. memcpy(&newp, n, sizeof(newp));
  1104. newp.prt_min = 1;
  1105. newp.prt_max = 65535;
  1106. newp.is_canonical = 0;
  1107. c = addr_policy_get_canonical_entry(&newp);
  1108. SMARTLIST_REPLACE_CURRENT(*policy, n, c);
  1109. addr_policy_free(n);
  1110. killed_any_ports = 1;
  1111. }
  1112. } SMARTLIST_FOREACH_END(n);
  1113. }
  1114. if (killed_any_ports) {
  1115. log_warn(LD_CONFIG, "Ignoring ports in %s option.", option_name);
  1116. }
  1117. return 0;
  1118. }
  1119. /** Set all policies based on <b>options</b>, which should have been validated
  1120. * first by validate_addr_policies. */
  1121. int
  1122. policies_parse_from_options(const or_options_t *options)
  1123. {
  1124. int ret = 0;
  1125. if (load_policy_from_option(options->SocksPolicy, "SocksPolicy",
  1126. &socks_policy, -1) < 0)
  1127. ret = -1;
  1128. if (load_policy_from_option(options->DirPolicy, "DirPolicy",
  1129. &dir_policy, -1) < 0)
  1130. ret = -1;
  1131. if (load_policy_from_option(options->AuthDirReject, "AuthDirReject",
  1132. &authdir_reject_policy, ADDR_POLICY_REJECT) < 0)
  1133. ret = -1;
  1134. if (load_policy_from_option(options->AuthDirInvalid, "AuthDirInvalid",
  1135. &authdir_invalid_policy, ADDR_POLICY_REJECT) < 0)
  1136. ret = -1;
  1137. if (load_policy_from_option(options->AuthDirBadExit, "AuthDirBadExit",
  1138. &authdir_badexit_policy, ADDR_POLICY_REJECT) < 0)
  1139. ret = -1;
  1140. if (parse_reachable_addresses() < 0)
  1141. ret = -1;
  1142. return ret;
  1143. }
  1144. /** Compare two provided address policy items, and renturn -1, 0, or 1
  1145. * if the first is less than, equal to, or greater than the second. */
  1146. static int
  1147. single_addr_policy_eq(const addr_policy_t *a, const addr_policy_t *b)
  1148. {
  1149. int r;
  1150. #define CMP_FIELD(field) do { \
  1151. if (a->field != b->field) { \
  1152. return 0; \
  1153. } \
  1154. } while (0)
  1155. CMP_FIELD(policy_type);
  1156. CMP_FIELD(is_private);
  1157. /* refcnt and is_canonical are irrelevant to equality,
  1158. * they are hash table implementation details */
  1159. if ((r=tor_addr_compare(&a->addr, &b->addr, CMP_EXACT)))
  1160. return 0;
  1161. CMP_FIELD(maskbits);
  1162. CMP_FIELD(prt_min);
  1163. CMP_FIELD(prt_max);
  1164. #undef CMP_FIELD
  1165. return 1;
  1166. }
  1167. /** As single_addr_policy_eq, but compare every element of two policies.
  1168. */
  1169. int
  1170. addr_policies_eq(const smartlist_t *a, const smartlist_t *b)
  1171. {
  1172. int i;
  1173. int len_a = a ? smartlist_len(a) : 0;
  1174. int len_b = b ? smartlist_len(b) : 0;
  1175. if (len_a != len_b)
  1176. return 0;
  1177. for (i = 0; i < len_a; ++i) {
  1178. if (! single_addr_policy_eq(smartlist_get(a, i), smartlist_get(b, i)))
  1179. return 0;
  1180. }
  1181. return 1;
  1182. }
  1183. /** Node in hashtable used to store address policy entries. */
  1184. typedef struct policy_map_ent_t {
  1185. HT_ENTRY(policy_map_ent_t) node;
  1186. addr_policy_t *policy;
  1187. } policy_map_ent_t;
  1188. /* DOCDOC policy_root */
  1189. static HT_HEAD(policy_map, policy_map_ent_t) policy_root = HT_INITIALIZER();
  1190. /** Return true iff a and b are equal. */
  1191. static inline int
  1192. policy_eq(policy_map_ent_t *a, policy_map_ent_t *b)
  1193. {
  1194. return single_addr_policy_eq(a->policy, b->policy);
  1195. }
  1196. /** Return a hashcode for <b>ent</b> */
  1197. static unsigned int
  1198. policy_hash(const policy_map_ent_t *ent)
  1199. {
  1200. const addr_policy_t *a = ent->policy;
  1201. addr_policy_t aa;
  1202. memset(&aa, 0, sizeof(aa));
  1203. aa.prt_min = a->prt_min;
  1204. aa.prt_max = a->prt_max;
  1205. aa.maskbits = a->maskbits;
  1206. aa.policy_type = a->policy_type;
  1207. aa.is_private = a->is_private;
  1208. if (a->is_private) {
  1209. aa.is_private = 1;
  1210. } else {
  1211. tor_addr_copy_tight(&aa.addr, &a->addr);
  1212. }
  1213. return (unsigned) siphash24g(&aa, sizeof(aa));
  1214. }
  1215. HT_PROTOTYPE(policy_map, policy_map_ent_t, node, policy_hash,
  1216. policy_eq)
  1217. HT_GENERATE2(policy_map, policy_map_ent_t, node, policy_hash,
  1218. policy_eq, 0.6, tor_reallocarray_, tor_free_)
  1219. /** Given a pointer to an addr_policy_t, return a copy of the pointer to the
  1220. * "canonical" copy of that addr_policy_t; the canonical copy is a single
  1221. * reference-counted object. */
  1222. addr_policy_t *
  1223. addr_policy_get_canonical_entry(addr_policy_t *e)
  1224. {
  1225. policy_map_ent_t search, *found;
  1226. if (e->is_canonical)
  1227. return e;
  1228. search.policy = e;
  1229. found = HT_FIND(policy_map, &policy_root, &search);
  1230. if (!found) {
  1231. found = tor_malloc_zero(sizeof(policy_map_ent_t));
  1232. found->policy = tor_memdup(e, sizeof(addr_policy_t));
  1233. found->policy->is_canonical = 1;
  1234. found->policy->refcnt = 0;
  1235. HT_INSERT(policy_map, &policy_root, found);
  1236. }
  1237. tor_assert(single_addr_policy_eq(found->policy, e));
  1238. ++found->policy->refcnt;
  1239. return found->policy;
  1240. }
  1241. /** Helper for compare_tor_addr_to_addr_policy. Implements the case where
  1242. * addr and port are both known. */
  1243. static addr_policy_result_t
  1244. compare_known_tor_addr_to_addr_policy(const tor_addr_t *addr, uint16_t port,
  1245. const smartlist_t *policy)
  1246. {
  1247. /* We know the address and port, and we know the policy, so we can just
  1248. * compute an exact match. */
  1249. SMARTLIST_FOREACH_BEGIN(policy, addr_policy_t *, tmpe) {
  1250. if (tmpe->addr.family == AF_UNSPEC) {
  1251. log_warn(LD_BUG, "Policy contains an AF_UNSPEC address, which only "
  1252. "matches other AF_UNSPEC addresses.");
  1253. }
  1254. /* Address is known */
  1255. if (!tor_addr_compare_masked(addr, &tmpe->addr, tmpe->maskbits,
  1256. CMP_EXACT)) {
  1257. if (port >= tmpe->prt_min && port <= tmpe->prt_max) {
  1258. /* Exact match for the policy */
  1259. return tmpe->policy_type == ADDR_POLICY_ACCEPT ?
  1260. ADDR_POLICY_ACCEPTED : ADDR_POLICY_REJECTED;
  1261. }
  1262. }
  1263. } SMARTLIST_FOREACH_END(tmpe);
  1264. /* accept all by default. */
  1265. return ADDR_POLICY_ACCEPTED;
  1266. }
  1267. /** Helper for compare_tor_addr_to_addr_policy. Implements the case where
  1268. * addr is known but port is not. */
  1269. static addr_policy_result_t
  1270. compare_known_tor_addr_to_addr_policy_noport(const tor_addr_t *addr,
  1271. const smartlist_t *policy)
  1272. {
  1273. /* We look to see if there's a definite match. If so, we return that
  1274. match's value, unless there's an intervening possible match that says
  1275. something different. */
  1276. int maybe_accept = 0, maybe_reject = 0;
  1277. SMARTLIST_FOREACH_BEGIN(policy, addr_policy_t *, tmpe) {
  1278. if (tmpe->addr.family == AF_UNSPEC) {
  1279. log_warn(LD_BUG, "Policy contains an AF_UNSPEC address, which only "
  1280. "matches other AF_UNSPEC addresses.");
  1281. }
  1282. if (!tor_addr_compare_masked(addr, &tmpe->addr, tmpe->maskbits,
  1283. CMP_EXACT)) {
  1284. if (tmpe->prt_min <= 1 && tmpe->prt_max >= 65535) {
  1285. /* Definitely matches, since it covers all ports. */
  1286. if (tmpe->policy_type == ADDR_POLICY_ACCEPT) {
  1287. /* If we already hit a clause that might trigger a 'reject', than we
  1288. * can't be sure of this certain 'accept'.*/
  1289. return maybe_reject ? ADDR_POLICY_PROBABLY_ACCEPTED :
  1290. ADDR_POLICY_ACCEPTED;
  1291. } else {
  1292. return maybe_accept ? ADDR_POLICY_PROBABLY_REJECTED :
  1293. ADDR_POLICY_REJECTED;
  1294. }
  1295. } else {
  1296. /* Might match. */
  1297. if (tmpe->policy_type == ADDR_POLICY_REJECT)
  1298. maybe_reject = 1;
  1299. else
  1300. maybe_accept = 1;
  1301. }
  1302. }
  1303. } SMARTLIST_FOREACH_END(tmpe);
  1304. /* accept all by default. */
  1305. return maybe_reject ? ADDR_POLICY_PROBABLY_ACCEPTED : ADDR_POLICY_ACCEPTED;
  1306. }
  1307. /** Helper for compare_tor_addr_to_addr_policy. Implements the case where
  1308. * port is known but address is not. */
  1309. static addr_policy_result_t
  1310. compare_unknown_tor_addr_to_addr_policy(uint16_t port,
  1311. const smartlist_t *policy)
  1312. {
  1313. /* We look to see if there's a definite match. If so, we return that
  1314. match's value, unless there's an intervening possible match that says
  1315. something different. */
  1316. int maybe_accept = 0, maybe_reject = 0;
  1317. SMARTLIST_FOREACH_BEGIN(policy, addr_policy_t *, tmpe) {
  1318. if (tmpe->addr.family == AF_UNSPEC) {
  1319. log_warn(LD_BUG, "Policy contains an AF_UNSPEC address, which only "
  1320. "matches other AF_UNSPEC addresses.");
  1321. }
  1322. if (tmpe->prt_min <= port && port <= tmpe->prt_max) {
  1323. if (tmpe->maskbits == 0) {
  1324. /* Definitely matches, since it covers all addresses. */
  1325. if (tmpe->policy_type == ADDR_POLICY_ACCEPT) {
  1326. /* If we already hit a clause that might trigger a 'reject', than we
  1327. * can't be sure of this certain 'accept'.*/
  1328. return maybe_reject ? ADDR_POLICY_PROBABLY_ACCEPTED :
  1329. ADDR_POLICY_ACCEPTED;
  1330. } else {
  1331. return maybe_accept ? ADDR_POLICY_PROBABLY_REJECTED :
  1332. ADDR_POLICY_REJECTED;
  1333. }
  1334. } else {
  1335. /* Might match. */
  1336. if (tmpe->policy_type == ADDR_POLICY_REJECT)
  1337. maybe_reject = 1;
  1338. else
  1339. maybe_accept = 1;
  1340. }
  1341. }
  1342. } SMARTLIST_FOREACH_END(tmpe);
  1343. /* accept all by default. */
  1344. return maybe_reject ? ADDR_POLICY_PROBABLY_ACCEPTED : ADDR_POLICY_ACCEPTED;
  1345. }
  1346. /** Decide whether a given addr:port is definitely accepted,
  1347. * definitely rejected, probably accepted, or probably rejected by a
  1348. * given policy. If <b>addr</b> is 0, we don't know the IP of the
  1349. * target address. If <b>port</b> is 0, we don't know the port of the
  1350. * target address. (At least one of <b>addr</b> and <b>port</b> must be
  1351. * provided. If you want to know whether a policy would definitely reject
  1352. * an unknown address:port, use policy_is_reject_star().)
  1353. *
  1354. * We could do better by assuming that some ranges never match typical
  1355. * addresses (127.0.0.1, and so on). But we'll try this for now.
  1356. */
  1357. MOCK_IMPL(addr_policy_result_t,
  1358. compare_tor_addr_to_addr_policy,(const tor_addr_t *addr, uint16_t port,
  1359. const smartlist_t *policy))
  1360. {
  1361. if (!policy) {
  1362. /* no policy? accept all. */
  1363. return ADDR_POLICY_ACCEPTED;
  1364. } else if (addr == NULL || tor_addr_is_null(addr)) {
  1365. if (port == 0) {
  1366. log_info(LD_BUG, "Rejecting null address with 0 port (family %d)",
  1367. addr ? tor_addr_family(addr) : -1);
  1368. return ADDR_POLICY_REJECTED;
  1369. }
  1370. return compare_unknown_tor_addr_to_addr_policy(port, policy);
  1371. } else if (port == 0) {
  1372. return compare_known_tor_addr_to_addr_policy_noport(addr, policy);
  1373. } else {
  1374. return compare_known_tor_addr_to_addr_policy(addr, port, policy);
  1375. }
  1376. }
  1377. /** Return true iff the address policy <b>a</b> covers every case that
  1378. * would be covered by <b>b</b>, so that a,b is redundant. */
  1379. static int
  1380. addr_policy_covers(addr_policy_t *a, addr_policy_t *b)
  1381. {
  1382. if (tor_addr_family(&a->addr) != tor_addr_family(&b->addr)) {
  1383. /* You can't cover a different family. */
  1384. return 0;
  1385. }
  1386. /* We can ignore accept/reject, since "accept *:80, reject *:80" reduces
  1387. * to "accept *:80". */
  1388. if (a->maskbits > b->maskbits) {
  1389. /* a has more fixed bits than b; it can't possibly cover b. */
  1390. return 0;
  1391. }
  1392. if (tor_addr_compare_masked(&a->addr, &b->addr, a->maskbits, CMP_EXACT)) {
  1393. /* There's a fixed bit in a that's set differently in b. */
  1394. return 0;
  1395. }
  1396. return (a->prt_min <= b->prt_min && a->prt_max >= b->prt_max);
  1397. }
  1398. /** Return true iff the address policies <b>a</b> and <b>b</b> intersect,
  1399. * that is, there exists an address/port that is covered by <b>a</b> that
  1400. * is also covered by <b>b</b>.
  1401. */
  1402. static int
  1403. addr_policy_intersects(addr_policy_t *a, addr_policy_t *b)
  1404. {
  1405. maskbits_t minbits;
  1406. /* All the bits we care about are those that are set in both
  1407. * netmasks. If they are equal in a and b's networkaddresses
  1408. * then the networks intersect. If there is a difference,
  1409. * then they do not. */
  1410. if (a->maskbits < b->maskbits)
  1411. minbits = a->maskbits;
  1412. else
  1413. minbits = b->maskbits;
  1414. if (tor_addr_compare_masked(&a->addr, &b->addr, minbits, CMP_EXACT))
  1415. return 0;
  1416. if (a->prt_max < b->prt_min || b->prt_max < a->prt_min)
  1417. return 0;
  1418. return 1;
  1419. }
  1420. /** Add the exit policy described by <b>more</b> to <b>policy</b>.
  1421. */
  1422. STATIC void
  1423. append_exit_policy_string(smartlist_t **policy, const char *more)
  1424. {
  1425. config_line_t tmp;
  1426. tmp.key = NULL;
  1427. tmp.value = (char*) more;
  1428. tmp.next = NULL;
  1429. if (parse_addr_policy(&tmp, policy, -1)<0) {
  1430. log_warn(LD_BUG, "Unable to parse internally generated policy %s",more);
  1431. }
  1432. }
  1433. /** Add "reject <b>addr</b>:*" to <b>dest</b>, creating the list as needed. */
  1434. void
  1435. addr_policy_append_reject_addr(smartlist_t **dest, const tor_addr_t *addr)
  1436. {
  1437. tor_assert(dest);
  1438. tor_assert(addr);
  1439. addr_policy_t p, *add;
  1440. memset(&p, 0, sizeof(p));
  1441. p.policy_type = ADDR_POLICY_REJECT;
  1442. p.maskbits = tor_addr_family(addr) == AF_INET6 ? 128 : 32;
  1443. tor_addr_copy(&p.addr, addr);
  1444. p.prt_min = 1;
  1445. p.prt_max = 65535;
  1446. add = addr_policy_get_canonical_entry(&p);
  1447. if (!*dest)
  1448. *dest = smartlist_new();
  1449. smartlist_add(*dest, add);
  1450. log_debug(LD_CONFIG, "Adding a reject ExitPolicy 'reject %s:*'",
  1451. fmt_addr(addr));
  1452. }
  1453. /* Is addr public for the purposes of rejection? */
  1454. static int
  1455. tor_addr_is_public_for_reject(const tor_addr_t *addr)
  1456. {
  1457. return (!tor_addr_is_null(addr) && !tor_addr_is_internal(addr, 0)
  1458. && !tor_addr_is_multicast(addr));
  1459. }
  1460. /* Add "reject <b>addr</b>:*" to <b>dest</b>, creating the list as needed.
  1461. * Filter the address, only adding an IPv4 reject rule if ipv4_rules
  1462. * is true, and similarly for ipv6_rules. Check each address returns true for
  1463. * tor_addr_is_public_for_reject before adding it.
  1464. */
  1465. static void
  1466. addr_policy_append_reject_addr_filter(smartlist_t **dest,
  1467. const tor_addr_t *addr,
  1468. int ipv4_rules,
  1469. int ipv6_rules)
  1470. {
  1471. tor_assert(dest);
  1472. tor_assert(addr);
  1473. /* Only reject IP addresses which are public */
  1474. if (tor_addr_is_public_for_reject(addr)) {
  1475. /* Reject IPv4 addresses and IPv6 addresses based on the filters */
  1476. int is_ipv4 = tor_addr_is_v4(addr);
  1477. if ((is_ipv4 && ipv4_rules) || (!is_ipv4 && ipv6_rules)) {
  1478. addr_policy_append_reject_addr(dest, addr);
  1479. }
  1480. }
  1481. }
  1482. /** Add "reject addr:*" to <b>dest</b>, for each addr in addrs, creating the
  1483. * list as needed. */
  1484. void
  1485. addr_policy_append_reject_addr_list(smartlist_t **dest,
  1486. const smartlist_t *addrs)
  1487. {
  1488. tor_assert(dest);
  1489. tor_assert(addrs);
  1490. SMARTLIST_FOREACH_BEGIN(addrs, tor_addr_t *, addr) {
  1491. addr_policy_append_reject_addr(dest, addr);
  1492. } SMARTLIST_FOREACH_END(addr);
  1493. }
  1494. /** Add "reject addr:*" to <b>dest</b>, for each addr in addrs, creating the
  1495. * list as needed. Filter using */
  1496. static void
  1497. addr_policy_append_reject_addr_list_filter(smartlist_t **dest,
  1498. const smartlist_t *addrs,
  1499. int ipv4_rules,
  1500. int ipv6_rules)
  1501. {
  1502. tor_assert(dest);
  1503. tor_assert(addrs);
  1504. SMARTLIST_FOREACH_BEGIN(addrs, tor_addr_t *, addr) {
  1505. addr_policy_append_reject_addr_filter(dest, addr, ipv4_rules, ipv6_rules);
  1506. } SMARTLIST_FOREACH_END(addr);
  1507. }
  1508. /** Detect and excise "dead code" from the policy *<b>dest</b>. */
  1509. static void
  1510. exit_policy_remove_redundancies(smartlist_t *dest)
  1511. {
  1512. addr_policy_t *ap, *tmp;
  1513. int i, j;
  1514. /* Step one: kill every ipv4 thing after *4:*, every IPv6 thing after *6:*
  1515. */
  1516. {
  1517. int kill_v4=0, kill_v6=0;
  1518. for (i = 0; i < smartlist_len(dest); ++i) {
  1519. sa_family_t family;
  1520. ap = smartlist_get(dest, i);
  1521. family = tor_addr_family(&ap->addr);
  1522. if ((family == AF_INET && kill_v4) ||
  1523. (family == AF_INET6 && kill_v6)) {
  1524. smartlist_del_keeporder(dest, i--);
  1525. addr_policy_free(ap);
  1526. continue;
  1527. }
  1528. if (ap->maskbits == 0 && ap->prt_min <= 1 && ap->prt_max >= 65535) {
  1529. /* This is a catch-all line -- later lines are unreachable. */
  1530. if (family == AF_INET) {
  1531. kill_v4 = 1;
  1532. } else if (family == AF_INET6) {
  1533. kill_v6 = 1;
  1534. }
  1535. }
  1536. }
  1537. }
  1538. /* Step two: for every entry, see if there's a redundant entry
  1539. * later on, and remove it. */
  1540. for (i = 0; i < smartlist_len(dest)-1; ++i) {
  1541. ap = smartlist_get(dest, i);
  1542. for (j = i+1; j < smartlist_len(dest); ++j) {
  1543. tmp = smartlist_get(dest, j);
  1544. tor_assert(j > i);
  1545. if (addr_policy_covers(ap, tmp)) {
  1546. char p1[POLICY_BUF_LEN], p2[POLICY_BUF_LEN];
  1547. policy_write_item(p1, sizeof(p1), tmp, 0);
  1548. policy_write_item(p2, sizeof(p2), ap, 0);
  1549. log_debug(LD_CONFIG, "Removing exit policy %s (%d). It is made "
  1550. "redundant by %s (%d).", p1, j, p2, i);
  1551. smartlist_del_keeporder(dest, j--);
  1552. addr_policy_free(tmp);
  1553. }
  1554. }
  1555. }
  1556. /* Step three: for every entry A, see if there's an entry B making this one
  1557. * redundant later on. This is the case if A and B are of the same type
  1558. * (accept/reject), A is a subset of B, and there is no other entry of
  1559. * different type in between those two that intersects with A.
  1560. *
  1561. * Anybody want to double-check the logic here? XXX
  1562. */
  1563. for (i = 0; i < smartlist_len(dest)-1; ++i) {
  1564. ap = smartlist_get(dest, i);
  1565. for (j = i+1; j < smartlist_len(dest); ++j) {
  1566. // tor_assert(j > i); // j starts out at i+1; j only increases; i only
  1567. // // decreases.
  1568. tmp = smartlist_get(dest, j);
  1569. if (ap->policy_type != tmp->policy_type) {
  1570. if (addr_policy_intersects(ap, tmp))
  1571. break;
  1572. } else { /* policy_types are equal. */
  1573. if (addr_policy_covers(tmp, ap)) {
  1574. char p1[POLICY_BUF_LEN], p2[POLICY_BUF_LEN];
  1575. policy_write_item(p1, sizeof(p1), ap, 0);
  1576. policy_write_item(p2, sizeof(p2), tmp, 0);
  1577. log_debug(LD_CONFIG, "Removing exit policy %s. It is already "
  1578. "covered by %s.", p1, p2);
  1579. smartlist_del_keeporder(dest, i--);
  1580. addr_policy_free(ap);
  1581. break;
  1582. }
  1583. }
  1584. }
  1585. }
  1586. }
  1587. /** Reject private helper for policies_parse_exit_policy_internal: rejects
  1588. * publicly routable addresses on this exit relay.
  1589. *
  1590. * Add reject entries to the linked list *<b>dest</b>:
  1591. * <ul>
  1592. * <li>if configured_addresses is non-NULL, add entries that reject each
  1593. * tor_addr_t in the list as a destination.
  1594. * <li>if reject_interface_addresses is true, add entries that reject each
  1595. * public IPv4 and IPv6 address of each interface on this machine.
  1596. * <li>if reject_configured_port_addresses is true, add entries that reject
  1597. * each IPv4 and IPv6 address configured for a port.
  1598. * </ul>
  1599. *
  1600. * IPv6 entries are only added if ipv6_exit is true. (All IPv6 addresses are
  1601. * already blocked by policies_parse_exit_policy_internal if ipv6_exit is
  1602. * false.)
  1603. *
  1604. * The list in <b>dest</b> is created as needed.
  1605. */
  1606. void
  1607. policies_parse_exit_policy_reject_private(
  1608. smartlist_t **dest,
  1609. int ipv6_exit,
  1610. const smartlist_t *configured_addresses,
  1611. int reject_interface_addresses,
  1612. int reject_configured_port_addresses)
  1613. {
  1614. tor_assert(dest);
  1615. /* Reject configured addresses, if they are from public netblocks. */
  1616. if (configured_addresses) {
  1617. addr_policy_append_reject_addr_list_filter(dest, configured_addresses,
  1618. 1, ipv6_exit);
  1619. }
  1620. /* Reject configured port addresses, if they are from public netblocks. */
  1621. if (reject_configured_port_addresses) {
  1622. const smartlist_t *port_addrs = get_configured_ports();
  1623. SMARTLIST_FOREACH_BEGIN(port_addrs, port_cfg_t *, port) {
  1624. /* Only reject port IP addresses, not port unix sockets */
  1625. if (!port->is_unix_addr) {
  1626. addr_policy_append_reject_addr_filter(dest, &port->addr, 1, ipv6_exit);
  1627. }
  1628. } SMARTLIST_FOREACH_END(port);
  1629. }
  1630. /* Reject local addresses from public netblocks on any interface. */
  1631. if (reject_interface_addresses) {
  1632. smartlist_t *public_addresses = NULL;
  1633. /* Reject public IPv4 addresses on any interface */
  1634. public_addresses = get_interface_address6_list(LOG_INFO, AF_INET, 0);
  1635. addr_policy_append_reject_addr_list_filter(dest, public_addresses, 1, 0);
  1636. interface_address6_list_free(public_addresses);
  1637. /* Don't look for IPv6 addresses if we're configured as IPv4-only */
  1638. if (ipv6_exit) {
  1639. /* Reject public IPv6 addresses on any interface */
  1640. public_addresses = get_interface_address6_list(LOG_INFO, AF_INET6, 0);
  1641. addr_policy_append_reject_addr_list_filter(dest, public_addresses, 0, 1);
  1642. interface_address6_list_free(public_addresses);
  1643. }
  1644. }
  1645. /* If addresses were added multiple times, remove all but one of them. */
  1646. if (*dest) {
  1647. exit_policy_remove_redundancies(*dest);
  1648. }
  1649. }
  1650. /**
  1651. * Iterate through <b>policy</b> looking for redundant entries. Log a
  1652. * warning message with the first redundant entry, if any is found.
  1653. */
  1654. static void
  1655. policies_log_first_redundant_entry(const smartlist_t *policy)
  1656. {
  1657. int found_final_effective_entry = 0;
  1658. int first_redundant_entry = 0;
  1659. tor_assert(policy);
  1660. SMARTLIST_FOREACH_BEGIN(policy, const addr_policy_t *, p) {
  1661. sa_family_t family;
  1662. int found_ipv4_wildcard = 0, found_ipv6_wildcard = 0;
  1663. const int i = p_sl_idx;
  1664. /* Look for accept/reject *[4|6|]:* entires */
  1665. if (p->prt_min <= 1 && p->prt_max == 65535 && p->maskbits == 0) {
  1666. family = tor_addr_family(&p->addr);
  1667. /* accept/reject *:* may have already been expanded into
  1668. * accept/reject *4:*,accept/reject *6:*
  1669. * But handle both forms.
  1670. */
  1671. if (family == AF_INET || family == AF_UNSPEC) {
  1672. found_ipv4_wildcard = 1;
  1673. }
  1674. if (family == AF_INET6 || family == AF_UNSPEC) {
  1675. found_ipv6_wildcard = 1;
  1676. }
  1677. }
  1678. /* We also find accept *4:*,reject *6:* ; and
  1679. * accept *4:*,<other policies>,accept *6:* ; and similar.
  1680. * That's ok, because they make any subsequent entries redundant. */
  1681. if (found_ipv4_wildcard && found_ipv6_wildcard) {
  1682. found_final_effective_entry = 1;
  1683. /* if we're not on the final entry in the list */
  1684. if (i < smartlist_len(policy) - 1) {
  1685. first_redundant_entry = i + 1;
  1686. }
  1687. break;
  1688. }
  1689. } SMARTLIST_FOREACH_END(p);
  1690. /* Work out if there are redundant trailing entries in the policy list */
  1691. if (found_final_effective_entry && first_redundant_entry > 0) {
  1692. const addr_policy_t *p;
  1693. /* Longest possible policy is
  1694. * "accept6 ffff:ffff:..255/128:10000-65535",
  1695. * which contains a max-length IPv6 address, plus 24 characters. */
  1696. char line[TOR_ADDR_BUF_LEN + 32];
  1697. tor_assert(first_redundant_entry < smartlist_len(policy));
  1698. p = smartlist_get(policy, first_redundant_entry);
  1699. /* since we've already parsed the policy into an addr_policy_t struct,
  1700. * we might not log exactly what the user typed in */
  1701. policy_write_item(line, TOR_ADDR_BUF_LEN + 32, p, 0);
  1702. log_warn(LD_DIR, "Exit policy '%s' and all following policies are "
  1703. "redundant, as it follows accept/reject *:* rules for both "
  1704. "IPv4 and IPv6. They will be removed from the exit policy. (Use "
  1705. "accept/reject *:* as the last entry in any exit policy.)",
  1706. line);
  1707. }
  1708. }
  1709. #define DEFAULT_EXIT_POLICY \
  1710. "reject *:25,reject *:119,reject *:135-139,reject *:445," \
  1711. "reject *:563,reject *:1214,reject *:4661-4666," \
  1712. "reject *:6346-6429,reject *:6699,reject *:6881-6999,accept *:*"
  1713. #define REDUCED_EXIT_POLICY \
  1714. "accept *:20-23,accept *:43,accept *:53,accept *:79-81,accept *:88," \
  1715. "accept *:110,accept *:143,accept *:194,accept *:220,accept *:389," \
  1716. "accept *:443,accept *:464,accept *:465,accept *:531,accept *:543-544," \
  1717. "accept *:554,accept *:563,accept *:587,accept *:636,accept *:706," \
  1718. "accept *:749,accept *:873,accept *:902-904,accept *:981,accept *:989-995," \
  1719. "accept *:1194,accept *:1220,accept *:1293,accept *:1500,accept *:1533," \
  1720. "accept *:1677,accept *:1723,accept *:1755,accept *:1863," \
  1721. "accept *:2082-2083,accept *:2086-2087,accept *:2095-2096," \
  1722. "accept *:2102-2104,accept *:3128,accept *:3389,accept *:3690," \
  1723. "accept *:4321,accept *:4643,accept *:5050,accept *:5190," \
  1724. "accept *:5222-5223,accept *:5228,accept *:5900,accept *:6660-6669," \
  1725. "accept *:6679,accept *:6697,accept *:8000,accept *:8008,accept *:8074," \
  1726. "accept *:8080,accept *:8082,accept *:8087-8088,accept *:8232-8233," \
  1727. "accept *:8332-8333,accept *:8443,accept *:8888,accept *:9418," \
  1728. "accept *:9999,accept *:10000,accept *:11371,accept *:19294," \
  1729. "accept *:19638,accept *:50002,accept *:64738,reject *:*"
  1730. /** Parse the exit policy <b>cfg</b> into the linked list *<b>dest</b>.
  1731. *
  1732. * If <b>ipv6_exit</b> is false, prepend "reject *6:*" to the policy.
  1733. *
  1734. * If <b>configured_addresses</b> contains addresses:
  1735. * - prepend entries that reject the addresses in this list. These may be the
  1736. * advertised relay addresses and/or the outbound bind addresses,
  1737. * depending on the ExitPolicyRejectPrivate and
  1738. * ExitPolicyRejectLocalInterfaces settings.
  1739. * If <b>rejectprivate</b> is true:
  1740. * - prepend "reject private:*" to the policy.
  1741. * If <b>reject_interface_addresses</b> is true:
  1742. * - prepend entries that reject publicly routable interface addresses on
  1743. * this exit relay by calling policies_parse_exit_policy_reject_private
  1744. * If <b>reject_configured_port_addresses</b> is true:
  1745. * - prepend entries that reject all configured port addresses
  1746. *
  1747. * If cfg doesn't end in an absolute accept or reject and if
  1748. * <b>add_default_policy</b> is true, add the default exit
  1749. * policy afterwards.
  1750. *
  1751. * Return -1 if we can't parse cfg, else return 0.
  1752. *
  1753. * This function is used to parse the exit policy from our torrc. For
  1754. * the functions used to parse the exit policy from a router descriptor,
  1755. * see router_add_exit_policy.
  1756. */
  1757. static int
  1758. policies_parse_exit_policy_internal(config_line_t *cfg,
  1759. smartlist_t **dest,
  1760. int ipv6_exit,
  1761. int rejectprivate,
  1762. const smartlist_t *configured_addresses,
  1763. int reject_interface_addresses,
  1764. int reject_configured_port_addresses,
  1765. int add_default_policy,
  1766. int add_reduced_policy)
  1767. {
  1768. if (!ipv6_exit) {
  1769. append_exit_policy_string(dest, "reject *6:*");
  1770. }
  1771. if (rejectprivate) {
  1772. /* Reject IPv4 and IPv6 reserved private netblocks */
  1773. append_exit_policy_string(dest, "reject private:*");
  1774. }
  1775. /* Consider rejecting IPv4 and IPv6 advertised relay addresses, outbound bind
  1776. * addresses, publicly routable addresses, and configured port addresses
  1777. * on this exit relay */
  1778. policies_parse_exit_policy_reject_private(dest, ipv6_exit,
  1779. configured_addresses,
  1780. reject_interface_addresses,
  1781. reject_configured_port_addresses);
  1782. if (parse_addr_policy(cfg, dest, -1))
  1783. return -1;
  1784. /* Before we add the default policy and final rejects, check to see if
  1785. * there are any lines after accept *:* or reject *:*. These lines have no
  1786. * effect, and are most likely an error. */
  1787. policies_log_first_redundant_entry(*dest);
  1788. if (add_reduced_policy) {
  1789. append_exit_policy_string(dest, REDUCED_EXIT_POLICY);
  1790. } else if (add_default_policy) {
  1791. append_exit_policy_string(dest, DEFAULT_EXIT_POLICY);
  1792. } else {
  1793. append_exit_policy_string(dest, "reject *4:*");
  1794. append_exit_policy_string(dest, "reject *6:*");
  1795. }
  1796. exit_policy_remove_redundancies(*dest);
  1797. return 0;
  1798. }
  1799. /** Parse exit policy in <b>cfg</b> into <b>dest</b> smartlist.
  1800. *
  1801. * Prepend an entry that rejects all IPv6 destinations unless
  1802. * <b>EXIT_POLICY_IPV6_ENABLED</b> bit is set in <b>options</b> bitmask.
  1803. *
  1804. * If <b>EXIT_POLICY_REJECT_PRIVATE</b> bit is set in <b>options</b>:
  1805. * - prepend an entry that rejects all destinations in all netblocks
  1806. * reserved for private use.
  1807. * - prepend entries that reject the advertised relay addresses in
  1808. * configured_addresses
  1809. * If <b>EXIT_POLICY_REJECT_LOCAL_INTERFACES</b> bit is set in <b>options</b>:
  1810. * - prepend entries that reject publicly routable addresses on this exit
  1811. * relay by calling policies_parse_exit_policy_internal
  1812. * - prepend entries that reject the outbound bind addresses in
  1813. * configured_addresses
  1814. * - prepend entries that reject all configured port addresses
  1815. *
  1816. * If <b>EXIT_POLICY_ADD_DEFAULT</b> bit is set in <b>options</b>, append
  1817. * default exit policy entries to <b>result</b> smartlist.
  1818. */
  1819. int
  1820. policies_parse_exit_policy(config_line_t *cfg, smartlist_t **dest,
  1821. exit_policy_parser_cfg_t options,
  1822. const smartlist_t *configured_addresses)
  1823. {
  1824. int ipv6_enabled = (options & EXIT_POLICY_IPV6_ENABLED) ? 1 : 0;
  1825. int reject_private = (options & EXIT_POLICY_REJECT_PRIVATE) ? 1 : 0;
  1826. int add_default = (options & EXIT_POLICY_ADD_DEFAULT) ? 1 : 0;
  1827. int reject_local_interfaces = (options &
  1828. EXIT_POLICY_REJECT_LOCAL_INTERFACES) ? 1 : 0;
  1829. int add_reduced = (options & EXIT_POLICY_ADD_REDUCED) ? 1 : 0;
  1830. return policies_parse_exit_policy_internal(cfg,dest,ipv6_enabled,
  1831. reject_private,
  1832. configured_addresses,
  1833. reject_local_interfaces,
  1834. reject_local_interfaces,
  1835. add_default,
  1836. add_reduced);
  1837. }
  1838. /** Helper function that adds a copy of addr to a smartlist as long as it is
  1839. * non-NULL and not tor_addr_is_null().
  1840. *
  1841. * The caller is responsible for freeing all the tor_addr_t* in the smartlist.
  1842. */
  1843. static void
  1844. policies_copy_addr_to_smartlist(smartlist_t *addr_list, const tor_addr_t *addr)
  1845. {
  1846. if (addr && !tor_addr_is_null(addr)) {
  1847. tor_addr_t *addr_copy = tor_malloc(sizeof(tor_addr_t));
  1848. tor_addr_copy(addr_copy, addr);
  1849. smartlist_add(addr_list, addr_copy);
  1850. }
  1851. }
  1852. /** Helper function that adds ipv4h_addr to a smartlist as a tor_addr_t *,
  1853. * as long as it is not tor_addr_is_null(), by converting it to a tor_addr_t
  1854. * and passing it to policies_add_addr_to_smartlist.
  1855. *
  1856. * The caller is responsible for freeing all the tor_addr_t* in the smartlist.
  1857. */
  1858. static void
  1859. policies_copy_ipv4h_to_smartlist(smartlist_t *addr_list, uint32_t ipv4h_addr)
  1860. {
  1861. if (ipv4h_addr) {
  1862. tor_addr_t ipv4_tor_addr;
  1863. tor_addr_from_ipv4h(&ipv4_tor_addr, ipv4h_addr);
  1864. policies_copy_addr_to_smartlist(addr_list, &ipv4_tor_addr);
  1865. }
  1866. }
  1867. /** Helper function that adds copies of or_options->OutboundBindAddresses
  1868. * to a smartlist as tor_addr_t *, as long as or_options is non-NULL, and
  1869. * the addresses are not tor_addr_is_null(), by passing them to
  1870. * policies_add_addr_to_smartlist.
  1871. *
  1872. * The caller is responsible for freeing all the tor_addr_t* in the smartlist.
  1873. */
  1874. static void
  1875. policies_copy_outbound_addresses_to_smartlist(smartlist_t *addr_list,
  1876. const or_options_t *or_options)
  1877. {
  1878. if (or_options) {
  1879. for (int i=0;i<OUTBOUND_ADDR_MAX;i++) {
  1880. for (int j=0;j<2;j++) {
  1881. if (!tor_addr_is_null(&or_options->OutboundBindAddresses[i][j])) {
  1882. policies_copy_addr_to_smartlist(addr_list,
  1883. &or_options->OutboundBindAddresses[i][j]);
  1884. }
  1885. }
  1886. }
  1887. }
  1888. }
  1889. /** Parse <b>ExitPolicy</b> member of <b>or_options</b> into <b>result</b>
  1890. * smartlist.
  1891. * If <b>or_options->IPv6Exit</b> is false, prepend an entry that
  1892. * rejects all IPv6 destinations.
  1893. *
  1894. * If <b>or_options->ExitPolicyRejectPrivate</b> is true:
  1895. * - prepend an entry that rejects all destinations in all netblocks reserved
  1896. * for private use.
  1897. * - if local_address is non-zero, treat it as a host-order IPv4 address, and
  1898. * add it to the list of configured addresses.
  1899. * - if ipv6_local_address is non-NULL, and not the null tor_addr_t, add it
  1900. * to the list of configured addresses.
  1901. * If <b>or_options->ExitPolicyRejectLocalInterfaces</b> is true:
  1902. * - if or_options->OutboundBindAddresses[][0] (=IPv4) is not the null
  1903. * tor_addr_t, add it to the list of configured addresses.
  1904. * - if or_options->OutboundBindAddresses[][1] (=IPv6) is not the null
  1905. * tor_addr_t, add it to the list of configured addresses.
  1906. *
  1907. * If <b>or_options->BridgeRelay</b> is false, append entries of default
  1908. * Tor exit policy into <b>result</b> smartlist.
  1909. *
  1910. * If or_options->ExitRelay is false, then make our exit policy into
  1911. * "reject *:*" regardless.
  1912. */
  1913. int
  1914. policies_parse_exit_policy_from_options(const or_options_t *or_options,
  1915. uint32_t local_address,
  1916. const tor_addr_t *ipv6_local_address,
  1917. smartlist_t **result)
  1918. {
  1919. exit_policy_parser_cfg_t parser_cfg = 0;
  1920. smartlist_t *configured_addresses = NULL;
  1921. int rv = 0;
  1922. /* Short-circuit for non-exit relays */
  1923. if (or_options->ExitRelay == 0) {
  1924. append_exit_policy_string(result, "reject *4:*");
  1925. append_exit_policy_string(result, "reject *6:*");
  1926. return 0;
  1927. }
  1928. configured_addresses = smartlist_new();
  1929. /* Configure the parser */
  1930. if (or_options->IPv6Exit) {
  1931. parser_cfg |= EXIT_POLICY_IPV6_ENABLED;
  1932. }
  1933. if (or_options->ExitPolicyRejectPrivate) {
  1934. parser_cfg |= EXIT_POLICY_REJECT_PRIVATE;
  1935. }
  1936. if (!or_options->BridgeRelay) {
  1937. if (or_options->ReducedExitPolicy)
  1938. parser_cfg |= EXIT_POLICY_ADD_REDUCED;
  1939. else
  1940. parser_cfg |= EXIT_POLICY_ADD_DEFAULT;
  1941. }
  1942. if (or_options->ExitPolicyRejectLocalInterfaces) {
  1943. parser_cfg |= EXIT_POLICY_REJECT_LOCAL_INTERFACES;
  1944. }
  1945. /* Copy the configured addresses into the tor_addr_t* list */
  1946. if (or_options->ExitPolicyRejectPrivate) {
  1947. policies_copy_ipv4h_to_smartlist(configured_addresses, local_address);
  1948. policies_copy_addr_to_smartlist(configured_addresses, ipv6_local_address);
  1949. }
  1950. if (or_options->ExitPolicyRejectLocalInterfaces) {
  1951. policies_copy_outbound_addresses_to_smartlist(configured_addresses,
  1952. or_options);
  1953. }
  1954. rv = policies_parse_exit_policy(or_options->ExitPolicy, result, parser_cfg,
  1955. configured_addresses);
  1956. SMARTLIST_FOREACH(configured_addresses, tor_addr_t *, a, tor_free(a));
  1957. smartlist_free(configured_addresses);
  1958. return rv;
  1959. }
  1960. /** Add "reject *:*" to the end of the policy in *<b>dest</b>, allocating
  1961. * *<b>dest</b> as needed. */
  1962. void
  1963. policies_exit_policy_append_reject_star(smartlist_t **dest)
  1964. {
  1965. append_exit_policy_string(dest, "reject *4:*");
  1966. append_exit_policy_string(dest, "reject *6:*");
  1967. }
  1968. /** Replace the exit policy of <b>node</b> with reject *:* */
  1969. void
  1970. policies_set_node_exitpolicy_to_reject_all(node_t *node)
  1971. {
  1972. node->rejects_all = 1;
  1973. }
  1974. /** Return 1 if there is at least one /8 subnet in <b>policy</b> that
  1975. * allows exiting to <b>port</b>. Otherwise, return 0. */
  1976. static int
  1977. exit_policy_is_general_exit_helper(smartlist_t *policy, int port)
  1978. {
  1979. uint32_t mask, ip, i;
  1980. /* Is this /8 rejected (1), or undecided (0)? */
  1981. char subnet_status[256];
  1982. memset(subnet_status, 0, sizeof(subnet_status));
  1983. SMARTLIST_FOREACH_BEGIN(policy, addr_policy_t *, p) {
  1984. if (tor_addr_family(&p->addr) != AF_INET)
  1985. continue; /* IPv4 only for now */
  1986. if (p->prt_min > port || p->prt_max < port)
  1987. continue; /* Doesn't cover our port. */
  1988. mask = 0;
  1989. tor_assert(p->maskbits <= 32);
  1990. if (p->maskbits)
  1991. mask = UINT32_MAX<<(32-p->maskbits);
  1992. ip = tor_addr_to_ipv4h(&p->addr);
  1993. /* Calculate the first and last subnet that this exit policy touches
  1994. * and set it as loop boundaries. */
  1995. for (i = ((mask & ip)>>24); i <= (~((mask & ip) ^ mask)>>24); ++i) {
  1996. tor_addr_t addr;
  1997. if (subnet_status[i] != 0)
  1998. continue; /* We already reject some part of this /8 */
  1999. tor_addr_from_ipv4h(&addr, i<<24);
  2000. if (tor_addr_is_internal(&addr, 0) &&
  2001. !get_options()->DirAllowPrivateAddresses) {
  2002. continue; /* Local or non-routable addresses */
  2003. }
  2004. if (p->policy_type == ADDR_POLICY_ACCEPT) {
  2005. if (p->maskbits > 8)
  2006. continue; /* Narrower than a /8. */
  2007. /* We found an allowed subnet of at least size /8. Done
  2008. * for this port! */
  2009. return 1;
  2010. } else if (p->policy_type == ADDR_POLICY_REJECT) {
  2011. subnet_status[i] = 1;
  2012. }
  2013. }
  2014. } SMARTLIST_FOREACH_END(p);
  2015. return 0;
  2016. }
  2017. /** Return true iff <b>ri</b> is "useful as an exit node", meaning
  2018. * it allows exit to at least one /8 address space for each of ports 80
  2019. * and 443. */
  2020. int
  2021. exit_policy_is_general_exit(smartlist_t *policy)
  2022. {
  2023. if (!policy) /*XXXX disallow NULL policies? */
  2024. return 0;
  2025. return (exit_policy_is_general_exit_helper(policy, 80) &&
  2026. exit_policy_is_general_exit_helper(policy, 443));
  2027. }
  2028. /** Return false if <b>policy</b> might permit access to some addr:port;
  2029. * otherwise if we are certain it rejects everything, return true. If no
  2030. * part of <b>policy</b> matches, return <b>default_reject</b>.
  2031. * NULL policies are allowed, and treated as empty. */
  2032. int
  2033. policy_is_reject_star(const smartlist_t *policy, sa_family_t family,
  2034. int default_reject)
  2035. {
  2036. if (!policy)
  2037. return default_reject;
  2038. SMARTLIST_FOREACH_BEGIN(policy, const addr_policy_t *, p) {
  2039. if (p->policy_type == ADDR_POLICY_ACCEPT &&
  2040. (tor_addr_family(&p->addr) == family ||
  2041. tor_addr_family(&p->addr) == AF_UNSPEC)) {
  2042. return 0;
  2043. } else if (p->policy_type == ADDR_POLICY_REJECT &&
  2044. p->prt_min <= 1 && p->prt_max == 65535 &&
  2045. p->maskbits == 0 &&
  2046. (tor_addr_family(&p->addr) == family ||
  2047. tor_addr_family(&p->addr) == AF_UNSPEC)) {
  2048. return 1;
  2049. }
  2050. } SMARTLIST_FOREACH_END(p);
  2051. return default_reject;
  2052. }
  2053. /** Write a single address policy to the buf_len byte buffer at buf. Return
  2054. * the number of characters written, or -1 on failure. */
  2055. int
  2056. policy_write_item(char *buf, size_t buflen, const addr_policy_t *policy,
  2057. int format_for_desc)
  2058. {
  2059. size_t written = 0;
  2060. char addrbuf[TOR_ADDR_BUF_LEN];
  2061. const char *addrpart;
  2062. int result;
  2063. const int is_accept = policy->policy_type == ADDR_POLICY_ACCEPT;
  2064. const sa_family_t family = tor_addr_family(&policy->addr);
  2065. const int is_ip6 = (family == AF_INET6);
  2066. tor_addr_to_str(addrbuf, &policy->addr, sizeof(addrbuf), 1);
  2067. /* write accept/reject 1.2.3.4 */
  2068. if (policy->is_private) {
  2069. addrpart = "private";
  2070. } else if (policy->maskbits == 0) {
  2071. if (format_for_desc)
  2072. addrpart = "*";
  2073. else if (family == AF_INET6)
  2074. addrpart = "*6";
  2075. else if (family == AF_INET)
  2076. addrpart = "*4";
  2077. else
  2078. addrpart = "*";
  2079. } else {
  2080. addrpart = addrbuf;
  2081. }
  2082. result = tor_snprintf(buf, buflen, "%s%s %s",
  2083. is_accept ? "accept" : "reject",
  2084. (is_ip6&&format_for_desc)?"6":"",
  2085. addrpart);
  2086. if (result < 0)
  2087. return -1;
  2088. written += strlen(buf);
  2089. /* If the maskbits is 32 (IPv4) or 128 (IPv6) we don't need to give it. If
  2090. the mask is 0, we already wrote "*". */
  2091. if (policy->maskbits < (is_ip6?128:32) && policy->maskbits > 0) {
  2092. if (tor_snprintf(buf+written, buflen-written, "/%d", policy->maskbits)<0)
  2093. return -1;
  2094. written += strlen(buf+written);
  2095. }
  2096. if (policy->prt_min <= 1 && policy->prt_max == 65535) {
  2097. /* There is no port set; write ":*" */
  2098. if (written+4 > buflen)
  2099. return -1;
  2100. strlcat(buf+written, ":*", buflen-written);
  2101. written += 2;
  2102. } else if (policy->prt_min == policy->prt_max) {
  2103. /* There is only one port; write ":80". */
  2104. result = tor_snprintf(buf+written, buflen-written, ":%d", policy->prt_min);
  2105. if (result<0)
  2106. return -1;
  2107. written += result;
  2108. } else {
  2109. /* There is a range of ports; write ":79-80". */
  2110. result = tor_snprintf(buf+written, buflen-written, ":%d-%d",
  2111. policy->prt_min, policy->prt_max);
  2112. if (result<0)
  2113. return -1;
  2114. written += result;
  2115. }
  2116. if (written < buflen)
  2117. buf[written] = '\0';
  2118. else
  2119. return -1;
  2120. return (int)written;
  2121. }
  2122. /** Create a new exit policy summary, initially only with a single
  2123. * port 1-64k item */
  2124. /* XXXX This entire thing will do most stuff in O(N^2), or worse. Use an
  2125. * RB-tree if that turns out to matter. */
  2126. static smartlist_t *
  2127. policy_summary_create(void)
  2128. {
  2129. smartlist_t *summary;
  2130. policy_summary_item_t* item;
  2131. item = tor_malloc_zero(sizeof(policy_summary_item_t));
  2132. item->prt_min = 1;
  2133. item->prt_max = 65535;
  2134. item->reject_count = 0;
  2135. item->accepted = 0;
  2136. summary = smartlist_new();
  2137. smartlist_add(summary, item);
  2138. return summary;
  2139. }
  2140. /** Split the summary item in <b>item</b> at the port <b>new_starts</b>.
  2141. * The current item is changed to end at new-starts - 1, the new item
  2142. * copies reject_count and accepted from the old item,
  2143. * starts at new_starts and ends at the port where the original item
  2144. * previously ended.
  2145. */
  2146. static policy_summary_item_t*
  2147. policy_summary_item_split(policy_summary_item_t* old, uint16_t new_starts)
  2148. {
  2149. policy_summary_item_t* new;
  2150. new = tor_malloc_zero(sizeof(policy_summary_item_t));
  2151. new->prt_min = new_starts;
  2152. new->prt_max = old->prt_max;
  2153. new->reject_count = old->reject_count;
  2154. new->accepted = old->accepted;
  2155. old->prt_max = new_starts-1;
  2156. tor_assert(old->prt_min <= old->prt_max);
  2157. tor_assert(new->prt_min <= new->prt_max);
  2158. return new;
  2159. }
  2160. /* XXXX Nick says I'm going to hell for this. If he feels charitably towards
  2161. * my immortal soul, he can clean it up himself. */
  2162. #define AT(x) ((policy_summary_item_t*)smartlist_get(summary, x))
  2163. #define IPV4_BITS (32)
  2164. /* Every IPv4 address is counted as one rejection */
  2165. #define REJECT_CUTOFF_SCALE_IPV4 (0)
  2166. /* Ports are rejected in an IPv4 summary if they are rejected in more than two
  2167. * IPv4 /8 address blocks */
  2168. #define REJECT_CUTOFF_COUNT_IPV4 (U64_LITERAL(1) << \
  2169. (IPV4_BITS - REJECT_CUTOFF_SCALE_IPV4 - 7))
  2170. #define IPV6_BITS (128)
  2171. /* IPv6 /64s are counted as one rejection, anything smaller is ignored */
  2172. #define REJECT_CUTOFF_SCALE_IPV6 (64)
  2173. /* Ports are rejected in an IPv6 summary if they are rejected in more than one
  2174. * IPv6 /16 address block.
  2175. * This is roughly equivalent to the IPv4 cutoff, as only five IPv6 /12s (and
  2176. * some scattered smaller blocks) have been allocated to the RIRs.
  2177. * Network providers are typically allocated one or more IPv6 /32s.
  2178. */
  2179. #define REJECT_CUTOFF_COUNT_IPV6 (U64_LITERAL(1) << \
  2180. (IPV6_BITS - REJECT_CUTOFF_SCALE_IPV6 - 16))
  2181. /** Split an exit policy summary so that prt_min and prt_max
  2182. * fall at exactly the start and end of an item respectively.
  2183. */
  2184. static int
  2185. policy_summary_split(smartlist_t *summary,
  2186. uint16_t prt_min, uint16_t prt_max)
  2187. {
  2188. int start_at_index;
  2189. int i = 0;
  2190. while (AT(i)->prt_max < prt_min)
  2191. i++;
  2192. if (AT(i)->prt_min != prt_min) {
  2193. policy_summary_item_t* new_item;
  2194. new_item = policy_summary_item_split(AT(i), prt_min);
  2195. smartlist_insert(summary, i+1, new_item);
  2196. i++;
  2197. }
  2198. start_at_index = i;
  2199. while (AT(i)->prt_max < prt_max)
  2200. i++;
  2201. if (AT(i)->prt_max != prt_max) {
  2202. policy_summary_item_t* new_item;
  2203. new_item = policy_summary_item_split(AT(i), prt_max+1);
  2204. smartlist_insert(summary, i+1, new_item);
  2205. }
  2206. return start_at_index;
  2207. }
  2208. /** Mark port ranges as accepted if they are below the reject_count for family
  2209. */
  2210. static void
  2211. policy_summary_accept(smartlist_t *summary,
  2212. uint16_t prt_min, uint16_t prt_max,
  2213. sa_family_t family)
  2214. {
  2215. tor_assert_nonfatal_once(family == AF_INET || family == AF_INET6);
  2216. uint64_t family_reject_count = ((family == AF_INET) ?
  2217. REJECT_CUTOFF_COUNT_IPV4 :
  2218. REJECT_CUTOFF_COUNT_IPV6);
  2219. int i = policy_summary_split(summary, prt_min, prt_max);
  2220. while (i < smartlist_len(summary) &&
  2221. AT(i)->prt_max <= prt_max) {
  2222. if (!AT(i)->accepted &&
  2223. AT(i)->reject_count <= family_reject_count)
  2224. AT(i)->accepted = 1;
  2225. i++;
  2226. }
  2227. tor_assert(i < smartlist_len(summary) || prt_max==65535);
  2228. }
  2229. /** Count the number of addresses in a network in family with prefixlen
  2230. * maskbits against the given portrange. */
  2231. static void
  2232. policy_summary_reject(smartlist_t *summary,
  2233. maskbits_t maskbits,
  2234. uint16_t prt_min, uint16_t prt_max,
  2235. sa_family_t family)
  2236. {
  2237. tor_assert_nonfatal_once(family == AF_INET || family == AF_INET6);
  2238. int i = policy_summary_split(summary, prt_min, prt_max);
  2239. /* The length of a single address mask */
  2240. int addrbits = (family == AF_INET) ? IPV4_BITS : IPV6_BITS;
  2241. tor_assert_nonfatal_once(addrbits >= maskbits);
  2242. /* We divide IPv6 address counts by (1 << scale) to keep them in a uint64_t
  2243. */
  2244. int scale = ((family == AF_INET) ?
  2245. REJECT_CUTOFF_SCALE_IPV4 :
  2246. REJECT_CUTOFF_SCALE_IPV6);
  2247. tor_assert_nonfatal_once(addrbits >= scale);
  2248. if (maskbits > (addrbits - scale)) {
  2249. tor_assert_nonfatal_once(family == AF_INET6);
  2250. /* The address range is so small, we'd need billions of them to reach the
  2251. * rejection limit. So we ignore this range in the reject count. */
  2252. return;
  2253. }
  2254. uint64_t count = 0;
  2255. if (addrbits - scale - maskbits >= 64) {
  2256. tor_assert_nonfatal_once(family == AF_INET6);
  2257. /* The address range is so large, it's an automatic rejection for all ports
  2258. * in the range. */
  2259. count = UINT64_MAX;
  2260. } else {
  2261. count = (U64_LITERAL(1) << (addrbits - scale - maskbits));
  2262. }
  2263. tor_assert_nonfatal_once(count > 0);
  2264. while (i < smartlist_len(summary) &&
  2265. AT(i)->prt_max <= prt_max) {
  2266. if (AT(i)->reject_count <= UINT64_MAX - count) {
  2267. AT(i)->reject_count += count;
  2268. } else {
  2269. /* IPv4 would require a 4-billion address redundant policy to get here,
  2270. * but IPv6 just needs to have ::/0 */
  2271. if (family == AF_INET) {
  2272. tor_assert_nonfatal_unreached_once();
  2273. }
  2274. /* If we do get here, use saturating arithmetic */
  2275. AT(i)->reject_count = UINT64_MAX;
  2276. }
  2277. i++;
  2278. }
  2279. tor_assert(i < smartlist_len(summary) || prt_max==65535);
  2280. }
  2281. /** Add a single exit policy item to our summary:
  2282. *
  2283. * If it is an accept, ignore it unless it is for all IP addresses
  2284. * ("*", i.e. its prefixlen/maskbits is 0). Otherwise call
  2285. * policy_summary_accept().
  2286. *
  2287. * If it is a reject, ignore it if it is about one of the private
  2288. * networks. Otherwise call policy_summary_reject().
  2289. */
  2290. static void
  2291. policy_summary_add_item(smartlist_t *summary, addr_policy_t *p)
  2292. {
  2293. if (p->policy_type == ADDR_POLICY_ACCEPT) {
  2294. if (p->maskbits == 0) {
  2295. policy_summary_accept(summary, p->prt_min, p->prt_max, p->addr.family);
  2296. }
  2297. } else if (p->policy_type == ADDR_POLICY_REJECT) {
  2298. int is_private = 0;
  2299. int i;
  2300. for (i = 0; private_nets[i]; ++i) {
  2301. tor_addr_t addr;
  2302. maskbits_t maskbits;
  2303. if (tor_addr_parse_mask_ports(private_nets[i], 0, &addr,
  2304. &maskbits, NULL, NULL)<0) {
  2305. tor_assert(0);
  2306. }
  2307. if (tor_addr_compare(&p->addr, &addr, CMP_EXACT) == 0 &&
  2308. p->maskbits == maskbits) {
  2309. is_private = 1;
  2310. break;
  2311. }
  2312. }
  2313. if (!is_private) {
  2314. policy_summary_reject(summary, p->maskbits, p->prt_min, p->prt_max,
  2315. p->addr.family);
  2316. }
  2317. } else
  2318. tor_assert(0);
  2319. }
  2320. /** Create a string representing a summary for an exit policy.
  2321. * The summary will either be an "accept" plus a comma-separated list of port
  2322. * ranges or a "reject" plus port-ranges, depending on which is shorter.
  2323. *
  2324. * If no exits are allowed at all then "reject 1-65535" is returned. If no
  2325. * ports are blocked instead of "reject " we return "accept 1-65535". (These
  2326. * are an exception to the shorter-representation-wins rule).
  2327. */
  2328. char *
  2329. policy_summarize(smartlist_t *policy, sa_family_t family)
  2330. {
  2331. smartlist_t *summary = policy_summary_create();
  2332. smartlist_t *accepts, *rejects;
  2333. int i, last, start_prt;
  2334. size_t accepts_len, rejects_len;
  2335. char *accepts_str = NULL, *rejects_str = NULL, *shorter_str, *result;
  2336. const char *prefix;
  2337. tor_assert(policy);
  2338. /* Create the summary list */
  2339. SMARTLIST_FOREACH_BEGIN(policy, addr_policy_t *, p) {
  2340. sa_family_t f = tor_addr_family(&p->addr);
  2341. if (f != AF_INET && f != AF_INET6) {
  2342. log_warn(LD_BUG, "Weird family when summarizing address policy");
  2343. }
  2344. if (f != family)
  2345. continue;
  2346. policy_summary_add_item(summary, p);
  2347. } SMARTLIST_FOREACH_END(p);
  2348. /* Now create two lists of strings, one for accepted and one
  2349. * for rejected ports. We take care to merge ranges so that
  2350. * we avoid getting stuff like "1-4,5-9,10", instead we want
  2351. * "1-10"
  2352. */
  2353. i = 0;
  2354. start_prt = 1;
  2355. accepts = smartlist_new();
  2356. rejects = smartlist_new();
  2357. while (1) {
  2358. last = i == smartlist_len(summary)-1;
  2359. if (last ||
  2360. AT(i)->accepted != AT(i+1)->accepted) {
  2361. char buf[POLICY_BUF_LEN];
  2362. if (start_prt == AT(i)->prt_max)
  2363. tor_snprintf(buf, sizeof(buf), "%d", start_prt);
  2364. else
  2365. tor_snprintf(buf, sizeof(buf), "%d-%d", start_prt, AT(i)->prt_max);
  2366. if (AT(i)->accepted)
  2367. smartlist_add_strdup(accepts, buf);
  2368. else
  2369. smartlist_add_strdup(rejects, buf);
  2370. if (last)
  2371. break;
  2372. start_prt = AT(i+1)->prt_min;
  2373. };
  2374. i++;
  2375. };
  2376. /* Figure out which of the two stringlists will be shorter and use
  2377. * that to build the result
  2378. */
  2379. if (smartlist_len(accepts) == 0) { /* no exits at all */
  2380. result = tor_strdup("reject 1-65535");
  2381. goto cleanup;
  2382. }
  2383. if (smartlist_len(rejects) == 0) { /* no rejects at all */
  2384. result = tor_strdup("accept 1-65535");
  2385. goto cleanup;
  2386. }
  2387. accepts_str = smartlist_join_strings(accepts, ",", 0, &accepts_len);
  2388. rejects_str = smartlist_join_strings(rejects, ",", 0, &rejects_len);
  2389. if (rejects_len > MAX_EXITPOLICY_SUMMARY_LEN-strlen("reject")-1 &&
  2390. accepts_len > MAX_EXITPOLICY_SUMMARY_LEN-strlen("accept")-1) {
  2391. char *c;
  2392. shorter_str = accepts_str;
  2393. prefix = "accept";
  2394. c = shorter_str + (MAX_EXITPOLICY_SUMMARY_LEN-strlen(prefix)-1);
  2395. while (*c != ',' && c >= shorter_str)
  2396. c--;
  2397. tor_assert(c >= shorter_str);
  2398. tor_assert(*c == ',');
  2399. *c = '\0';
  2400. } else if (rejects_len < accepts_len) {
  2401. shorter_str = rejects_str;
  2402. prefix = "reject";
  2403. } else {
  2404. shorter_str = accepts_str;
  2405. prefix = "accept";
  2406. }
  2407. tor_asprintf(&result, "%s %s", prefix, shorter_str);
  2408. cleanup:
  2409. /* cleanup */
  2410. SMARTLIST_FOREACH(summary, policy_summary_item_t *, s, tor_free(s));
  2411. smartlist_free(summary);
  2412. tor_free(accepts_str);
  2413. SMARTLIST_FOREACH(accepts, char *, s, tor_free(s));
  2414. smartlist_free(accepts);
  2415. tor_free(rejects_str);
  2416. SMARTLIST_FOREACH(rejects, char *, s, tor_free(s));
  2417. smartlist_free(rejects);
  2418. return result;
  2419. }
  2420. /** Convert a summarized policy string into a short_policy_t. Return NULL
  2421. * if the string is not well-formed. */
  2422. short_policy_t *
  2423. parse_short_policy(const char *summary)
  2424. {
  2425. const char *orig_summary = summary;
  2426. short_policy_t *result;
  2427. int is_accept;
  2428. int n_entries;
  2429. short_policy_entry_t entries[MAX_EXITPOLICY_SUMMARY_LEN]; /* overkill */
  2430. const char *next;
  2431. if (!strcmpstart(summary, "accept ")) {
  2432. is_accept = 1;
  2433. summary += strlen("accept ");
  2434. } else if (!strcmpstart(summary, "reject ")) {
  2435. is_accept = 0;
  2436. summary += strlen("reject ");
  2437. } else {
  2438. log_fn(LOG_PROTOCOL_WARN, LD_DIR, "Unrecognized policy summary keyword");
  2439. return NULL;
  2440. }
  2441. n_entries = 0;
  2442. for ( ; *summary; summary = next) {
  2443. const char *comma = strchr(summary, ',');
  2444. unsigned low, high;
  2445. char dummy;
  2446. char ent_buf[32];
  2447. size_t len;
  2448. next = comma ? comma+1 : strchr(summary, '\0');
  2449. len = comma ? (size_t)(comma - summary) : strlen(summary);
  2450. if (n_entries == MAX_EXITPOLICY_SUMMARY_LEN) {
  2451. log_fn(LOG_PROTOCOL_WARN, LD_DIR, "Impossibly long policy summary %s",
  2452. escaped(orig_summary));
  2453. return NULL;
  2454. }
  2455. if (! TOR_ISDIGIT(*summary) || len > (sizeof(ent_buf)-1)) {
  2456. /* unrecognized entry format. skip it. */
  2457. continue;
  2458. }
  2459. if (len < 1) {
  2460. /* empty; skip it. */
  2461. /* XXX This happens to be unreachable, since if len==0, then *summary is
  2462. * ',' or '\0', and the TOR_ISDIGIT test above would have failed. */
  2463. continue;
  2464. }
  2465. memcpy(ent_buf, summary, len);
  2466. ent_buf[len] = '\0';
  2467. if (tor_sscanf(ent_buf, "%u-%u%c", &low, &high, &dummy) == 2) {
  2468. if (low<1 || low>65535 || high<1 || high>65535 || low>high) {
  2469. log_fn(LOG_PROTOCOL_WARN, LD_DIR,
  2470. "Found bad entry in policy summary %s", escaped(orig_summary));
  2471. return NULL;
  2472. }
  2473. } else if (tor_sscanf(ent_buf, "%u%c", &low, &dummy) == 1) {
  2474. if (low<1 || low>65535) {
  2475. log_fn(LOG_PROTOCOL_WARN, LD_DIR,
  2476. "Found bad entry in policy summary %s", escaped(orig_summary));
  2477. return NULL;
  2478. }
  2479. high = low;
  2480. } else {
  2481. log_fn(LOG_PROTOCOL_WARN, LD_DIR,"Found bad entry in policy summary %s",
  2482. escaped(orig_summary));
  2483. return NULL;
  2484. }
  2485. entries[n_entries].min_port = low;
  2486. entries[n_entries].max_port = high;
  2487. n_entries++;
  2488. }
  2489. if (n_entries == 0) {
  2490. log_fn(LOG_PROTOCOL_WARN, LD_DIR,
  2491. "Found no port-range entries in summary %s", escaped(orig_summary));
  2492. return NULL;
  2493. }
  2494. {
  2495. size_t size = offsetof(short_policy_t, entries) +
  2496. sizeof(short_policy_entry_t)*(n_entries);
  2497. result = tor_malloc_zero(size);
  2498. tor_assert( (char*)&result->entries[n_entries-1] < ((char*)result)+size);
  2499. }
  2500. result->is_accept = is_accept;
  2501. result->n_entries = n_entries;
  2502. memcpy(result->entries, entries, sizeof(short_policy_entry_t)*n_entries);
  2503. return result;
  2504. }
  2505. /** Write <b>policy</b> back out into a string. */
  2506. char *
  2507. write_short_policy(const short_policy_t *policy)
  2508. {
  2509. int i;
  2510. char *answer;
  2511. smartlist_t *sl = smartlist_new();
  2512. smartlist_add_asprintf(sl, "%s", policy->is_accept ? "accept " : "reject ");
  2513. for (i=0; i < policy->n_entries; i++) {
  2514. const short_policy_entry_t *e = &policy->entries[i];
  2515. if (e->min_port == e->max_port) {
  2516. smartlist_add_asprintf(sl, "%d", e->min_port);
  2517. } else {
  2518. smartlist_add_asprintf(sl, "%d-%d", e->min_port, e->max_port);
  2519. }
  2520. if (i < policy->n_entries-1)
  2521. smartlist_add_strdup(sl, ",");
  2522. }
  2523. answer = smartlist_join_strings(sl, "", 0, NULL);
  2524. SMARTLIST_FOREACH(sl, char *, a, tor_free(a));
  2525. smartlist_free(sl);
  2526. return answer;
  2527. }
  2528. /** Release all storage held in <b>policy</b>. */
  2529. void
  2530. short_policy_free_(short_policy_t *policy)
  2531. {
  2532. tor_free(policy);
  2533. }
  2534. /** See whether the <b>addr</b>:<b>port</b> address is likely to be accepted
  2535. * or rejected by the summarized policy <b>policy</b>. Return values are as
  2536. * for compare_tor_addr_to_addr_policy. Unlike the regular addr_policy
  2537. * functions, requires the <b>port</b> be specified. */
  2538. addr_policy_result_t
  2539. compare_tor_addr_to_short_policy(const tor_addr_t *addr, uint16_t port,
  2540. const short_policy_t *policy)
  2541. {
  2542. int i;
  2543. int found_match = 0;
  2544. int accept_;
  2545. tor_assert(port != 0);
  2546. if (addr && tor_addr_is_null(addr))
  2547. addr = NULL; /* Unspec means 'no address at all,' in this context. */
  2548. if (addr && get_options()->ClientRejectInternalAddresses &&
  2549. (tor_addr_is_internal(addr, 0) || tor_addr_is_loopback(addr)))
  2550. return ADDR_POLICY_REJECTED;
  2551. for (i=0; i < policy->n_entries; ++i) {
  2552. const short_policy_entry_t *e = &policy->entries[i];
  2553. if (e->min_port <= port && port <= e->max_port) {
  2554. found_match = 1;
  2555. break;
  2556. }
  2557. }
  2558. if (found_match)
  2559. accept_ = policy->is_accept;
  2560. else
  2561. accept_ = ! policy->is_accept;
  2562. /* ???? are these right? -NM */
  2563. /* We should be sure not to return ADDR_POLICY_ACCEPTED in the accept
  2564. * case here, because it would cause clients to believe that the node
  2565. * allows exit enclaving. Trying it anyway would open up a cool attack
  2566. * where the node refuses due to exitpolicy, the client reacts in
  2567. * surprise by rewriting the node's exitpolicy to reject *:*, and then
  2568. * an adversary targets users by causing them to attempt such connections
  2569. * to 98% of the exits.
  2570. *
  2571. * Once microdescriptors can handle addresses in special cases (e.g. if
  2572. * we ever solve ticket 1774), we can provide certainty here. -RD */
  2573. if (accept_)
  2574. return ADDR_POLICY_PROBABLY_ACCEPTED;
  2575. else
  2576. return ADDR_POLICY_REJECTED;
  2577. }
  2578. /** Return true iff <b>policy</b> seems reject all ports */
  2579. int
  2580. short_policy_is_reject_star(const short_policy_t *policy)
  2581. {
  2582. /* This doesn't need to be as much on the lookout as policy_is_reject_star,
  2583. * since policy summaries are from the consensus or from consensus
  2584. * microdescs.
  2585. */
  2586. tor_assert(policy);
  2587. /* Check for an exact match of "reject 1-65535". */
  2588. return (policy->is_accept == 0 && policy->n_entries == 1 &&
  2589. policy->entries[0].min_port == 1 &&
  2590. policy->entries[0].max_port == 65535);
  2591. }
  2592. /** Decide whether addr:port is probably or definitely accepted or rejected by
  2593. * <b>node</b>. See compare_tor_addr_to_addr_policy for details on addr/port
  2594. * interpretation. */
  2595. addr_policy_result_t
  2596. compare_tor_addr_to_node_policy(const tor_addr_t *addr, uint16_t port,
  2597. const node_t *node)
  2598. {
  2599. if (node->rejects_all)
  2600. return ADDR_POLICY_REJECTED;
  2601. if (addr && tor_addr_family(addr) == AF_INET6) {
  2602. const short_policy_t *p = NULL;
  2603. if (node->ri)
  2604. p = node->ri->ipv6_exit_policy;
  2605. else if (node->md)
  2606. p = node->md->ipv6_exit_policy;
  2607. if (p)
  2608. return compare_tor_addr_to_short_policy(addr, port, p);
  2609. else
  2610. return ADDR_POLICY_REJECTED;
  2611. }
  2612. if (node->ri) {
  2613. return compare_tor_addr_to_addr_policy(addr, port, node->ri->exit_policy);
  2614. } else if (node->md) {
  2615. if (node->md->exit_policy == NULL)
  2616. return ADDR_POLICY_REJECTED;
  2617. else
  2618. return compare_tor_addr_to_short_policy(addr, port,
  2619. node->md->exit_policy);
  2620. } else {
  2621. return ADDR_POLICY_PROBABLY_REJECTED;
  2622. }
  2623. }
  2624. /**
  2625. * Given <b>policy_list</b>, a list of addr_policy_t, produce a string
  2626. * representation of the list.
  2627. * If <b>include_ipv4</b> is true, include IPv4 entries.
  2628. * If <b>include_ipv6</b> is true, include IPv6 entries.
  2629. */
  2630. char *
  2631. policy_dump_to_string(const smartlist_t *policy_list,
  2632. int include_ipv4,
  2633. int include_ipv6)
  2634. {
  2635. smartlist_t *policy_string_list;
  2636. char *policy_string = NULL;
  2637. policy_string_list = smartlist_new();
  2638. SMARTLIST_FOREACH_BEGIN(policy_list, addr_policy_t *, tmpe) {
  2639. char *pbuf;
  2640. int bytes_written_to_pbuf;
  2641. if ((tor_addr_family(&tmpe->addr) == AF_INET6) && (!include_ipv6)) {
  2642. continue; /* Don't include IPv6 parts of address policy */
  2643. }
  2644. if ((tor_addr_family(&tmpe->addr) == AF_INET) && (!include_ipv4)) {
  2645. continue; /* Don't include IPv4 parts of address policy */
  2646. }
  2647. pbuf = tor_malloc(POLICY_BUF_LEN);
  2648. bytes_written_to_pbuf = policy_write_item(pbuf,POLICY_BUF_LEN, tmpe, 1);
  2649. if (bytes_written_to_pbuf < 0) {
  2650. log_warn(LD_BUG, "policy_dump_to_string ran out of room!");
  2651. tor_free(pbuf);
  2652. goto done;
  2653. }
  2654. smartlist_add(policy_string_list,pbuf);
  2655. } SMARTLIST_FOREACH_END(tmpe);
  2656. policy_string = smartlist_join_strings(policy_string_list, "\n", 0, NULL);
  2657. done:
  2658. SMARTLIST_FOREACH(policy_string_list, char *, str, tor_free(str));
  2659. smartlist_free(policy_string_list);
  2660. return policy_string;
  2661. }
  2662. /** Implementation for GETINFO control command: knows the answer for questions
  2663. * about "exit-policy/..." */
  2664. int
  2665. getinfo_helper_policies(control_connection_t *conn,
  2666. const char *question, char **answer,
  2667. const char **errmsg)
  2668. {
  2669. (void) conn;
  2670. (void) errmsg;
  2671. if (!strcmp(question, "exit-policy/default")) {
  2672. *answer = tor_strdup(DEFAULT_EXIT_POLICY);
  2673. } else if (!strcmp(question, "exit-policy/reject-private/default")) {
  2674. smartlist_t *private_policy_strings;
  2675. const char **priv = private_nets;
  2676. private_policy_strings = smartlist_new();
  2677. while (*priv != NULL) {
  2678. /* IPv6 addresses are in "[]" and contain ":",
  2679. * IPv4 addresses are not in "[]" and contain "." */
  2680. smartlist_add_asprintf(private_policy_strings, "reject %s:*", *priv);
  2681. priv++;
  2682. }
  2683. *answer = smartlist_join_strings(private_policy_strings,
  2684. ",", 0, NULL);
  2685. SMARTLIST_FOREACH(private_policy_strings, char *, str, tor_free(str));
  2686. smartlist_free(private_policy_strings);
  2687. } else if (!strcmp(question, "exit-policy/reject-private/relay")) {
  2688. const or_options_t *options = get_options();
  2689. int err = 0;
  2690. const routerinfo_t *me = router_get_my_routerinfo_with_err(&err);
  2691. if (!me) {
  2692. *errmsg = routerinfo_err_to_string(err);
  2693. return routerinfo_err_is_transient(err) ? -1 : 0;
  2694. }
  2695. if (!options->ExitPolicyRejectPrivate &&
  2696. !options->ExitPolicyRejectLocalInterfaces) {
  2697. *answer = tor_strdup("");
  2698. return 0;
  2699. }
  2700. smartlist_t *private_policy_list = smartlist_new();
  2701. smartlist_t *configured_addresses = smartlist_new();
  2702. /* Copy the configured addresses into the tor_addr_t* list */
  2703. if (options->ExitPolicyRejectPrivate) {
  2704. policies_copy_ipv4h_to_smartlist(configured_addresses, me->addr);
  2705. policies_copy_addr_to_smartlist(configured_addresses, &me->ipv6_addr);
  2706. }
  2707. if (options->ExitPolicyRejectLocalInterfaces) {
  2708. policies_copy_outbound_addresses_to_smartlist(configured_addresses,
  2709. options);
  2710. }
  2711. policies_parse_exit_policy_reject_private(
  2712. &private_policy_list,
  2713. options->IPv6Exit,
  2714. configured_addresses,
  2715. options->ExitPolicyRejectLocalInterfaces,
  2716. options->ExitPolicyRejectLocalInterfaces);
  2717. *answer = policy_dump_to_string(private_policy_list, 1, 1);
  2718. addr_policy_list_free(private_policy_list);
  2719. SMARTLIST_FOREACH(configured_addresses, tor_addr_t *, a, tor_free(a));
  2720. smartlist_free(configured_addresses);
  2721. } else if (!strcmpstart(question, "exit-policy/")) {
  2722. int include_ipv4 = 0;
  2723. int include_ipv6 = 0;
  2724. int err = 0;
  2725. const routerinfo_t *me = router_get_my_routerinfo_with_err(&err);
  2726. if (!me) {
  2727. *errmsg = routerinfo_err_to_string(err);
  2728. return routerinfo_err_is_transient(err) ? -1 : 0;
  2729. }
  2730. if (!strcmp(question, "exit-policy/ipv4")) {
  2731. include_ipv4 = 1;
  2732. } else if (!strcmp(question, "exit-policy/ipv6")) {
  2733. include_ipv6 = 1;
  2734. } else if (!strcmp(question, "exit-policy/full")) {
  2735. include_ipv4 = include_ipv6 = 1;
  2736. } else {
  2737. return 0; /* No such key. */
  2738. }
  2739. *answer = router_dump_exit_policy_to_string(me,include_ipv4,
  2740. include_ipv6);
  2741. }
  2742. return 0;
  2743. }
  2744. /** Release all storage held by <b>p</b>. */
  2745. void
  2746. addr_policy_list_free_(smartlist_t *lst)
  2747. {
  2748. if (!lst)
  2749. return;
  2750. SMARTLIST_FOREACH(lst, addr_policy_t *, policy, addr_policy_free(policy));
  2751. smartlist_free(lst);
  2752. }
  2753. /** Release all storage held by <b>p</b>. */
  2754. void
  2755. addr_policy_free_(addr_policy_t *p)
  2756. {
  2757. if (!p)
  2758. return;
  2759. if (--p->refcnt <= 0) {
  2760. if (p->is_canonical) {
  2761. policy_map_ent_t search, *found;
  2762. search.policy = p;
  2763. found = HT_REMOVE(policy_map, &policy_root, &search);
  2764. if (found) {
  2765. tor_assert(p == found->policy);
  2766. tor_free(found);
  2767. }
  2768. }
  2769. tor_free(p);
  2770. }
  2771. }
  2772. /** Release all storage held by policy variables. */
  2773. void
  2774. policies_free_all(void)
  2775. {
  2776. addr_policy_list_free(reachable_or_addr_policy);
  2777. reachable_or_addr_policy = NULL;
  2778. addr_policy_list_free(reachable_dir_addr_policy);
  2779. reachable_dir_addr_policy = NULL;
  2780. addr_policy_list_free(socks_policy);
  2781. socks_policy = NULL;
  2782. addr_policy_list_free(dir_policy);
  2783. dir_policy = NULL;
  2784. addr_policy_list_free(authdir_reject_policy);
  2785. authdir_reject_policy = NULL;
  2786. addr_policy_list_free(authdir_invalid_policy);
  2787. authdir_invalid_policy = NULL;
  2788. addr_policy_list_free(authdir_badexit_policy);
  2789. authdir_badexit_policy = NULL;
  2790. if (!HT_EMPTY(&policy_root)) {
  2791. policy_map_ent_t **ent;
  2792. int n = 0;
  2793. char buf[POLICY_BUF_LEN];
  2794. log_warn(LD_MM, "Still had %d address policies cached at shutdown.",
  2795. (int)HT_SIZE(&policy_root));
  2796. /* Note the first 10 cached policies to try to figure out where they
  2797. * might be coming from. */
  2798. HT_FOREACH(ent, policy_map, &policy_root) {
  2799. if (++n > 10)
  2800. break;
  2801. if (policy_write_item(buf, sizeof(buf), (*ent)->policy, 0) >= 0)
  2802. log_warn(LD_MM," %d [%d]: %s", n, (*ent)->policy->refcnt, buf);
  2803. }
  2804. }
  2805. HT_CLEAR(policy_map, &policy_root);
  2806. }