router.c 124 KB

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  1. /* Copyright (c) 2001 Matej Pfajfar.
  2. * Copyright (c) 2001-2004, Roger Dingledine.
  3. * Copyright (c) 2004-2006, Roger Dingledine, Nick Mathewson.
  4. * Copyright (c) 2007-2017, The Tor Project, Inc. */
  5. /* See LICENSE for licensing information */
  6. #define ROUTER_PRIVATE
  7. #include "or.h"
  8. #include "circuitbuild.h"
  9. #include "circuitlist.h"
  10. #include "circuituse.h"
  11. #include "config.h"
  12. #include "connection.h"
  13. #include "control.h"
  14. #include "crypto_curve25519.h"
  15. #include "directory.h"
  16. #include "dirserv.h"
  17. #include "dns.h"
  18. #include "geoip.h"
  19. #include "hibernate.h"
  20. #include "main.h"
  21. #include "networkstatus.h"
  22. #include "nodelist.h"
  23. #include "policies.h"
  24. #include "protover.h"
  25. #include "relay.h"
  26. #include "rephist.h"
  27. #include "router.h"
  28. #include "routerkeys.h"
  29. #include "routerlist.h"
  30. #include "routerparse.h"
  31. #include "statefile.h"
  32. #include "torcert.h"
  33. #include "transports.h"
  34. #include "routerset.h"
  35. /**
  36. * \file router.c
  37. * \brief Miscellaneous relay functionality, including RSA key maintenance,
  38. * generating and uploading server descriptors, picking an address to
  39. * advertise, and so on.
  40. *
  41. * This module handles the job of deciding whether we are a Tor relay, and if
  42. * so what kind. (Mostly through functions like server_mode() that inspect an
  43. * or_options_t, but in some cases based on our own capabilities, such as when
  44. * we are deciding whether to be a directory cache in
  45. * router_has_bandwidth_to_be_dirserver().)
  46. *
  47. * Also in this module are the functions to generate our own routerinfo_t and
  48. * extrainfo_t, and to encode those to signed strings for upload to the
  49. * directory authorities.
  50. *
  51. * This module also handles key maintenance for RSA and Curve25519-ntor keys,
  52. * and for our TLS context. (These functions should eventually move to
  53. * routerkeys.c along with the code that handles Ed25519 keys now.)
  54. **/
  55. /************************************************************/
  56. /*****
  57. * Key management: ORs only.
  58. *****/
  59. /** Private keys for this OR. There is also an SSL key managed by tortls.c.
  60. */
  61. static tor_mutex_t *key_lock=NULL;
  62. static time_t onionkey_set_at=0; /**< When was onionkey last changed? */
  63. /** Current private onionskin decryption key: used to decode CREATE cells. */
  64. static crypto_pk_t *onionkey=NULL;
  65. /** Previous private onionskin decryption key: used to decode CREATE cells
  66. * generated by clients that have an older version of our descriptor. */
  67. static crypto_pk_t *lastonionkey=NULL;
  68. /** Current private ntor secret key: used to perform the ntor handshake. */
  69. static curve25519_keypair_t curve25519_onion_key;
  70. /** Previous private ntor secret key: used to perform the ntor handshake
  71. * with clients that have an older version of our descriptor. */
  72. static curve25519_keypair_t last_curve25519_onion_key;
  73. /** Private server "identity key": used to sign directory info and TLS
  74. * certificates. Never changes. */
  75. static crypto_pk_t *server_identitykey=NULL;
  76. /** Digest of server_identitykey. */
  77. static char server_identitykey_digest[DIGEST_LEN];
  78. /** Private client "identity key": used to sign bridges' and clients'
  79. * outbound TLS certificates. Regenerated on startup and on IP address
  80. * change. */
  81. static crypto_pk_t *client_identitykey=NULL;
  82. /** Signing key used for v3 directory material; only set for authorities. */
  83. static crypto_pk_t *authority_signing_key = NULL;
  84. /** Key certificate to authenticate v3 directory material; only set for
  85. * authorities. */
  86. static authority_cert_t *authority_key_certificate = NULL;
  87. /** For emergency V3 authority key migration: An extra signing key that we use
  88. * with our old (obsolete) identity key for a while. */
  89. static crypto_pk_t *legacy_signing_key = NULL;
  90. /** For emergency V3 authority key migration: An extra certificate to
  91. * authenticate legacy_signing_key with our obsolete identity key.*/
  92. static authority_cert_t *legacy_key_certificate = NULL;
  93. /* (Note that v3 authorities also have a separate "authority identity key",
  94. * but this key is never actually loaded by the Tor process. Instead, it's
  95. * used by tor-gencert to sign new signing keys and make new key
  96. * certificates. */
  97. /** Replace the current onion key with <b>k</b>. Does not affect
  98. * lastonionkey; to update lastonionkey correctly, call rotate_onion_key().
  99. */
  100. static void
  101. set_onion_key(crypto_pk_t *k)
  102. {
  103. if (onionkey && crypto_pk_eq_keys(onionkey, k)) {
  104. /* k is already our onion key; free it and return */
  105. crypto_pk_free(k);
  106. return;
  107. }
  108. tor_mutex_acquire(key_lock);
  109. crypto_pk_free(onionkey);
  110. onionkey = k;
  111. tor_mutex_release(key_lock);
  112. mark_my_descriptor_dirty("set onion key");
  113. }
  114. /** Return the current onion key. Requires that the onion key has been
  115. * loaded or generated. */
  116. crypto_pk_t *
  117. get_onion_key(void)
  118. {
  119. tor_assert(onionkey);
  120. return onionkey;
  121. }
  122. /** Store a full copy of the current onion key into *<b>key</b>, and a full
  123. * copy of the most recent onion key into *<b>last</b>.
  124. */
  125. void
  126. dup_onion_keys(crypto_pk_t **key, crypto_pk_t **last)
  127. {
  128. tor_assert(key);
  129. tor_assert(last);
  130. tor_mutex_acquire(key_lock);
  131. tor_assert(onionkey);
  132. *key = crypto_pk_copy_full(onionkey);
  133. if (lastonionkey)
  134. *last = crypto_pk_copy_full(lastonionkey);
  135. else
  136. *last = NULL;
  137. tor_mutex_release(key_lock);
  138. }
  139. /** Expire our old set of onion keys. This is done by setting
  140. * last_curve25519_onion_key and lastonionkey to all zero's and NULL
  141. * respectively.
  142. *
  143. * This function does not perform any grace period checks for the old onion
  144. * keys.
  145. */
  146. void
  147. expire_old_onion_keys(void)
  148. {
  149. char *fname = NULL;
  150. tor_mutex_acquire(key_lock);
  151. /* Free lastonionkey and set it to NULL. */
  152. if (lastonionkey) {
  153. crypto_pk_free(lastonionkey);
  154. lastonionkey = NULL;
  155. }
  156. /* We zero out the keypair. See the tor_mem_is_zero() check made in
  157. * construct_ntor_key_map() below. */
  158. memset(&last_curve25519_onion_key, 0, sizeof(last_curve25519_onion_key));
  159. tor_mutex_release(key_lock);
  160. fname = get_datadir_fname2("keys", "secret_onion_key.old");
  161. if (file_status(fname) == FN_FILE) {
  162. if (tor_unlink(fname) != 0) {
  163. log_warn(LD_FS, "Couldn't unlink old onion key file %s: %s",
  164. fname, strerror(errno));
  165. }
  166. }
  167. tor_free(fname);
  168. fname = get_datadir_fname2("keys", "secret_onion_key_ntor.old");
  169. if (file_status(fname) == FN_FILE) {
  170. if (tor_unlink(fname) != 0) {
  171. log_warn(LD_FS, "Couldn't unlink old ntor onion key file %s: %s",
  172. fname, strerror(errno));
  173. }
  174. }
  175. tor_free(fname);
  176. }
  177. /** Return the current secret onion key for the ntor handshake. Must only
  178. * be called from the main thread. */
  179. static const curve25519_keypair_t *
  180. get_current_curve25519_keypair(void)
  181. {
  182. return &curve25519_onion_key;
  183. }
  184. /** Return a map from KEYID (the key itself) to keypairs for use in the ntor
  185. * handshake. Must only be called from the main thread. */
  186. di_digest256_map_t *
  187. construct_ntor_key_map(void)
  188. {
  189. di_digest256_map_t *m = NULL;
  190. dimap_add_entry(&m,
  191. curve25519_onion_key.pubkey.public_key,
  192. tor_memdup(&curve25519_onion_key,
  193. sizeof(curve25519_keypair_t)));
  194. if (!tor_mem_is_zero((const char*)
  195. last_curve25519_onion_key.pubkey.public_key,
  196. CURVE25519_PUBKEY_LEN)) {
  197. dimap_add_entry(&m,
  198. last_curve25519_onion_key.pubkey.public_key,
  199. tor_memdup(&last_curve25519_onion_key,
  200. sizeof(curve25519_keypair_t)));
  201. }
  202. return m;
  203. }
  204. /** Helper used to deallocate a di_digest256_map_t returned by
  205. * construct_ntor_key_map. */
  206. static void
  207. ntor_key_map_free_helper(void *arg)
  208. {
  209. curve25519_keypair_t *k = arg;
  210. memwipe(k, 0, sizeof(*k));
  211. tor_free(k);
  212. }
  213. /** Release all storage from a keymap returned by construct_ntor_key_map. */
  214. void
  215. ntor_key_map_free(di_digest256_map_t *map)
  216. {
  217. if (!map)
  218. return;
  219. dimap_free(map, ntor_key_map_free_helper);
  220. }
  221. /** Return the time when the onion key was last set. This is either the time
  222. * when the process launched, or the time of the most recent key rotation since
  223. * the process launched.
  224. */
  225. time_t
  226. get_onion_key_set_at(void)
  227. {
  228. return onionkey_set_at;
  229. }
  230. /** Set the current server identity key to <b>k</b>.
  231. */
  232. void
  233. set_server_identity_key(crypto_pk_t *k)
  234. {
  235. crypto_pk_free(server_identitykey);
  236. server_identitykey = k;
  237. crypto_pk_get_digest(server_identitykey, server_identitykey_digest);
  238. }
  239. /** Make sure that we have set up our identity keys to match or not match as
  240. * appropriate, and die with an assertion if we have not. */
  241. static void
  242. assert_identity_keys_ok(void)
  243. {
  244. if (1)
  245. return;
  246. tor_assert(client_identitykey);
  247. if (public_server_mode(get_options())) {
  248. /* assert that we have set the client and server keys to be equal */
  249. tor_assert(server_identitykey);
  250. tor_assert(crypto_pk_eq_keys(client_identitykey, server_identitykey));
  251. } else {
  252. /* assert that we have set the client and server keys to be unequal */
  253. if (server_identitykey)
  254. tor_assert(!crypto_pk_eq_keys(client_identitykey, server_identitykey));
  255. }
  256. }
  257. /** Returns the current server identity key; requires that the key has
  258. * been set, and that we are running as a Tor server.
  259. */
  260. crypto_pk_t *
  261. get_server_identity_key(void)
  262. {
  263. tor_assert(server_identitykey);
  264. tor_assert(server_mode(get_options()));
  265. assert_identity_keys_ok();
  266. return server_identitykey;
  267. }
  268. /** Return true iff we are a server and the server identity key
  269. * has been set. */
  270. int
  271. server_identity_key_is_set(void)
  272. {
  273. return server_mode(get_options()) && server_identitykey != NULL;
  274. }
  275. /** Set the current client identity key to <b>k</b>.
  276. */
  277. void
  278. set_client_identity_key(crypto_pk_t *k)
  279. {
  280. crypto_pk_free(client_identitykey);
  281. client_identitykey = k;
  282. }
  283. /** Returns the current client identity key for use on outgoing TLS
  284. * connections; requires that the key has been set.
  285. */
  286. crypto_pk_t *
  287. get_tlsclient_identity_key(void)
  288. {
  289. tor_assert(client_identitykey);
  290. assert_identity_keys_ok();
  291. return client_identitykey;
  292. }
  293. /** Return true iff the client identity key has been set. */
  294. int
  295. client_identity_key_is_set(void)
  296. {
  297. return client_identitykey != NULL;
  298. }
  299. /** Return the key certificate for this v3 (voting) authority, or NULL
  300. * if we have no such certificate. */
  301. MOCK_IMPL(authority_cert_t *,
  302. get_my_v3_authority_cert, (void))
  303. {
  304. return authority_key_certificate;
  305. }
  306. /** Return the v3 signing key for this v3 (voting) authority, or NULL
  307. * if we have no such key. */
  308. crypto_pk_t *
  309. get_my_v3_authority_signing_key(void)
  310. {
  311. return authority_signing_key;
  312. }
  313. /** If we're an authority, and we're using a legacy authority identity key for
  314. * emergency migration purposes, return the certificate associated with that
  315. * key. */
  316. authority_cert_t *
  317. get_my_v3_legacy_cert(void)
  318. {
  319. return legacy_key_certificate;
  320. }
  321. /** If we're an authority, and we're using a legacy authority identity key for
  322. * emergency migration purposes, return that key. */
  323. crypto_pk_t *
  324. get_my_v3_legacy_signing_key(void)
  325. {
  326. return legacy_signing_key;
  327. }
  328. /** Replace the previous onion key with the current onion key, and generate
  329. * a new previous onion key. Immediately after calling this function,
  330. * the OR should:
  331. * - schedule all previous cpuworkers to shut down _after_ processing
  332. * pending work. (This will cause fresh cpuworkers to be generated.)
  333. * - generate and upload a fresh routerinfo.
  334. */
  335. void
  336. rotate_onion_key(void)
  337. {
  338. char *fname, *fname_prev;
  339. crypto_pk_t *prkey = NULL;
  340. or_state_t *state = get_or_state();
  341. curve25519_keypair_t new_curve25519_keypair;
  342. time_t now;
  343. fname = get_datadir_fname2("keys", "secret_onion_key");
  344. fname_prev = get_datadir_fname2("keys", "secret_onion_key.old");
  345. /* There isn't much point replacing an old key with an empty file */
  346. if (file_status(fname) == FN_FILE) {
  347. if (replace_file(fname, fname_prev))
  348. goto error;
  349. }
  350. if (!(prkey = crypto_pk_new())) {
  351. log_err(LD_GENERAL,"Error constructing rotated onion key");
  352. goto error;
  353. }
  354. if (crypto_pk_generate_key(prkey)) {
  355. log_err(LD_BUG,"Error generating onion key");
  356. goto error;
  357. }
  358. if (crypto_pk_write_private_key_to_filename(prkey, fname)) {
  359. log_err(LD_FS,"Couldn't write generated onion key to \"%s\".", fname);
  360. goto error;
  361. }
  362. tor_free(fname);
  363. tor_free(fname_prev);
  364. fname = get_datadir_fname2("keys", "secret_onion_key_ntor");
  365. fname_prev = get_datadir_fname2("keys", "secret_onion_key_ntor.old");
  366. if (curve25519_keypair_generate(&new_curve25519_keypair, 1) < 0)
  367. goto error;
  368. /* There isn't much point replacing an old key with an empty file */
  369. if (file_status(fname) == FN_FILE) {
  370. if (replace_file(fname, fname_prev))
  371. goto error;
  372. }
  373. if (curve25519_keypair_write_to_file(&new_curve25519_keypair, fname,
  374. "onion") < 0) {
  375. log_err(LD_FS,"Couldn't write curve25519 onion key to \"%s\".",fname);
  376. goto error;
  377. }
  378. log_info(LD_GENERAL, "Rotating onion key");
  379. tor_mutex_acquire(key_lock);
  380. crypto_pk_free(lastonionkey);
  381. lastonionkey = onionkey;
  382. onionkey = prkey;
  383. memcpy(&last_curve25519_onion_key, &curve25519_onion_key,
  384. sizeof(curve25519_keypair_t));
  385. memcpy(&curve25519_onion_key, &new_curve25519_keypair,
  386. sizeof(curve25519_keypair_t));
  387. now = time(NULL);
  388. state->LastRotatedOnionKey = onionkey_set_at = now;
  389. tor_mutex_release(key_lock);
  390. mark_my_descriptor_dirty("rotated onion key");
  391. or_state_mark_dirty(state, get_options()->AvoidDiskWrites ? now+3600 : 0);
  392. goto done;
  393. error:
  394. log_warn(LD_GENERAL, "Couldn't rotate onion key.");
  395. if (prkey)
  396. crypto_pk_free(prkey);
  397. done:
  398. memwipe(&new_curve25519_keypair, 0, sizeof(new_curve25519_keypair));
  399. tor_free(fname);
  400. tor_free(fname_prev);
  401. }
  402. /** Log greeting message that points to new relay lifecycle document the
  403. * first time this function has been called.
  404. */
  405. static void
  406. log_new_relay_greeting(void)
  407. {
  408. static int already_logged = 0;
  409. if (already_logged)
  410. return;
  411. tor_log(LOG_NOTICE, LD_GENERAL, "You are running a new relay. "
  412. "Thanks for helping the Tor network! If you wish to know "
  413. "what will happen in the upcoming weeks regarding its usage, "
  414. "have a look at https://blog.torproject.org/blog/lifecycle-of"
  415. "-a-new-relay");
  416. already_logged = 1;
  417. }
  418. /** Try to read an RSA key from <b>fname</b>. If <b>fname</b> doesn't exist
  419. * and <b>generate</b> is true, create a new RSA key and save it in
  420. * <b>fname</b>. Return the read/created key, or NULL on error. Log all
  421. * errors at level <b>severity</b>. If <b>log_greeting</b> is non-zero and a
  422. * new key was created, log_new_relay_greeting() is called.
  423. */
  424. crypto_pk_t *
  425. init_key_from_file(const char *fname, int generate, int severity,
  426. int log_greeting)
  427. {
  428. crypto_pk_t *prkey = NULL;
  429. if (!(prkey = crypto_pk_new())) {
  430. tor_log(severity, LD_GENERAL,"Error constructing key");
  431. goto error;
  432. }
  433. switch (file_status(fname)) {
  434. case FN_DIR:
  435. case FN_ERROR:
  436. tor_log(severity, LD_FS,"Can't read key from \"%s\"", fname);
  437. goto error;
  438. /* treat empty key files as if the file doesn't exist, and,
  439. * if generate is set, replace the empty file in
  440. * crypto_pk_write_private_key_to_filename() */
  441. case FN_NOENT:
  442. case FN_EMPTY:
  443. if (generate) {
  444. if (!have_lockfile()) {
  445. if (try_locking(get_options(), 0)<0) {
  446. /* Make sure that --list-fingerprint only creates new keys
  447. * if there is no possibility for a deadlock. */
  448. tor_log(severity, LD_FS, "Another Tor process has locked \"%s\". "
  449. "Not writing any new keys.", fname);
  450. /*XXXX The 'other process' might make a key in a second or two;
  451. * maybe we should wait for it. */
  452. goto error;
  453. }
  454. }
  455. log_info(LD_GENERAL, "No key found in \"%s\"; generating fresh key.",
  456. fname);
  457. if (crypto_pk_generate_key(prkey)) {
  458. tor_log(severity, LD_GENERAL,"Error generating onion key");
  459. goto error;
  460. }
  461. if (crypto_pk_check_key(prkey) <= 0) {
  462. tor_log(severity, LD_GENERAL,"Generated key seems invalid");
  463. goto error;
  464. }
  465. log_info(LD_GENERAL, "Generated key seems valid");
  466. if (log_greeting) {
  467. log_new_relay_greeting();
  468. }
  469. if (crypto_pk_write_private_key_to_filename(prkey, fname)) {
  470. tor_log(severity, LD_FS,
  471. "Couldn't write generated key to \"%s\".", fname);
  472. goto error;
  473. }
  474. } else {
  475. tor_log(severity, LD_GENERAL, "No key found in \"%s\"", fname);
  476. goto error;
  477. }
  478. return prkey;
  479. case FN_FILE:
  480. if (crypto_pk_read_private_key_from_filename(prkey, fname)) {
  481. tor_log(severity, LD_GENERAL,"Error loading private key.");
  482. goto error;
  483. }
  484. return prkey;
  485. default:
  486. tor_assert(0);
  487. }
  488. error:
  489. if (prkey)
  490. crypto_pk_free(prkey);
  491. return NULL;
  492. }
  493. /** Load a curve25519 keypair from the file <b>fname</b>, writing it into
  494. * <b>keys_out</b>. If the file isn't found, or is empty, and <b>generate</b>
  495. * is true, create a new keypair and write it into the file. If there are
  496. * errors, log them at level <b>severity</b>. Generate files using <b>tag</b>
  497. * in their ASCII wrapper. */
  498. static int
  499. init_curve25519_keypair_from_file(curve25519_keypair_t *keys_out,
  500. const char *fname,
  501. int generate,
  502. int severity,
  503. const char *tag)
  504. {
  505. switch (file_status(fname)) {
  506. case FN_DIR:
  507. case FN_ERROR:
  508. tor_log(severity, LD_FS,"Can't read key from \"%s\"", fname);
  509. goto error;
  510. /* treat empty key files as if the file doesn't exist, and, if generate
  511. * is set, replace the empty file in curve25519_keypair_write_to_file() */
  512. case FN_NOENT:
  513. case FN_EMPTY:
  514. if (generate) {
  515. if (!have_lockfile()) {
  516. if (try_locking(get_options(), 0)<0) {
  517. /* Make sure that --list-fingerprint only creates new keys
  518. * if there is no possibility for a deadlock. */
  519. tor_log(severity, LD_FS, "Another Tor process has locked \"%s\". "
  520. "Not writing any new keys.", fname);
  521. /*XXXX The 'other process' might make a key in a second or two;
  522. * maybe we should wait for it. */
  523. goto error;
  524. }
  525. }
  526. log_info(LD_GENERAL, "No key found in \"%s\"; generating fresh key.",
  527. fname);
  528. if (curve25519_keypair_generate(keys_out, 1) < 0)
  529. goto error;
  530. if (curve25519_keypair_write_to_file(keys_out, fname, tag)<0) {
  531. tor_log(severity, LD_FS,
  532. "Couldn't write generated key to \"%s\".", fname);
  533. memwipe(keys_out, 0, sizeof(*keys_out));
  534. goto error;
  535. }
  536. } else {
  537. log_info(LD_GENERAL, "No key found in \"%s\"", fname);
  538. }
  539. return 0;
  540. case FN_FILE:
  541. {
  542. char *tag_in=NULL;
  543. if (curve25519_keypair_read_from_file(keys_out, &tag_in, fname) < 0) {
  544. tor_log(severity, LD_GENERAL,"Error loading private key.");
  545. tor_free(tag_in);
  546. goto error;
  547. }
  548. if (!tag_in || strcmp(tag_in, tag)) {
  549. tor_log(severity, LD_GENERAL,"Unexpected tag %s on private key.",
  550. escaped(tag_in));
  551. tor_free(tag_in);
  552. goto error;
  553. }
  554. tor_free(tag_in);
  555. return 0;
  556. }
  557. default:
  558. tor_assert(0);
  559. }
  560. error:
  561. return -1;
  562. }
  563. /** Try to load the vote-signing private key and certificate for being a v3
  564. * directory authority, and make sure they match. If <b>legacy</b>, load a
  565. * legacy key/cert set for emergency key migration; otherwise load the regular
  566. * key/cert set. On success, store them into *<b>key_out</b> and
  567. * *<b>cert_out</b> respectively, and return 0. On failure, return -1. */
  568. static int
  569. load_authority_keyset(int legacy, crypto_pk_t **key_out,
  570. authority_cert_t **cert_out)
  571. {
  572. int r = -1;
  573. char *fname = NULL, *cert = NULL;
  574. const char *eos = NULL;
  575. crypto_pk_t *signing_key = NULL;
  576. authority_cert_t *parsed = NULL;
  577. fname = get_datadir_fname2("keys",
  578. legacy ? "legacy_signing_key" : "authority_signing_key");
  579. signing_key = init_key_from_file(fname, 0, LOG_ERR, 0);
  580. if (!signing_key) {
  581. log_warn(LD_DIR, "No version 3 directory key found in %s", fname);
  582. goto done;
  583. }
  584. tor_free(fname);
  585. fname = get_datadir_fname2("keys",
  586. legacy ? "legacy_certificate" : "authority_certificate");
  587. cert = read_file_to_str(fname, 0, NULL);
  588. if (!cert) {
  589. log_warn(LD_DIR, "Signing key found, but no certificate found in %s",
  590. fname);
  591. goto done;
  592. }
  593. parsed = authority_cert_parse_from_string(cert, &eos);
  594. if (!parsed) {
  595. log_warn(LD_DIR, "Unable to parse certificate in %s", fname);
  596. goto done;
  597. }
  598. if (!crypto_pk_eq_keys(signing_key, parsed->signing_key)) {
  599. log_warn(LD_DIR, "Stored signing key does not match signing key in "
  600. "certificate");
  601. goto done;
  602. }
  603. crypto_pk_free(*key_out);
  604. authority_cert_free(*cert_out);
  605. *key_out = signing_key;
  606. *cert_out = parsed;
  607. r = 0;
  608. signing_key = NULL;
  609. parsed = NULL;
  610. done:
  611. tor_free(fname);
  612. tor_free(cert);
  613. crypto_pk_free(signing_key);
  614. authority_cert_free(parsed);
  615. return r;
  616. }
  617. /** Load the v3 (voting) authority signing key and certificate, if they are
  618. * present. Return -1 if anything is missing, mismatched, or unloadable;
  619. * return 0 on success. */
  620. static int
  621. init_v3_authority_keys(void)
  622. {
  623. if (load_authority_keyset(0, &authority_signing_key,
  624. &authority_key_certificate)<0)
  625. return -1;
  626. if (get_options()->V3AuthUseLegacyKey &&
  627. load_authority_keyset(1, &legacy_signing_key,
  628. &legacy_key_certificate)<0)
  629. return -1;
  630. return 0;
  631. }
  632. /** If we're a v3 authority, check whether we have a certificate that's
  633. * likely to expire soon. Warn if we do, but not too often. */
  634. void
  635. v3_authority_check_key_expiry(void)
  636. {
  637. time_t now, expires;
  638. static time_t last_warned = 0;
  639. int badness, time_left, warn_interval;
  640. if (!authdir_mode_v3(get_options()) || !authority_key_certificate)
  641. return;
  642. now = time(NULL);
  643. expires = authority_key_certificate->expires;
  644. time_left = (int)( expires - now );
  645. if (time_left <= 0) {
  646. badness = LOG_ERR;
  647. warn_interval = 60*60;
  648. } else if (time_left <= 24*60*60) {
  649. badness = LOG_WARN;
  650. warn_interval = 60*60;
  651. } else if (time_left <= 24*60*60*7) {
  652. badness = LOG_WARN;
  653. warn_interval = 24*60*60;
  654. } else if (time_left <= 24*60*60*30) {
  655. badness = LOG_WARN;
  656. warn_interval = 24*60*60*5;
  657. } else {
  658. return;
  659. }
  660. if (last_warned + warn_interval > now)
  661. return;
  662. if (time_left <= 0) {
  663. tor_log(badness, LD_DIR, "Your v3 authority certificate has expired."
  664. " Generate a new one NOW.");
  665. } else if (time_left <= 24*60*60) {
  666. tor_log(badness, LD_DIR, "Your v3 authority certificate expires in %d "
  667. "hours; Generate a new one NOW.", time_left/(60*60));
  668. } else {
  669. tor_log(badness, LD_DIR, "Your v3 authority certificate expires in %d "
  670. "days; Generate a new one soon.", time_left/(24*60*60));
  671. }
  672. last_warned = now;
  673. }
  674. /** Get the lifetime of an onion key in days. This value is defined by the
  675. * network consesus parameter "onion-key-rotation-days". Always returns a value
  676. * between <b>MIN_ONION_KEY_LIFETIME_DAYS</b> and
  677. * <b>MAX_ONION_KEY_LIFETIME_DAYS</b>.
  678. */
  679. static int
  680. get_onion_key_rotation_days_(void)
  681. {
  682. return networkstatus_get_param(NULL,
  683. "onion-key-rotation-days",
  684. DEFAULT_ONION_KEY_LIFETIME_DAYS,
  685. MIN_ONION_KEY_LIFETIME_DAYS,
  686. MAX_ONION_KEY_LIFETIME_DAYS);
  687. }
  688. /** Get the current lifetime of an onion key in seconds. This value is defined
  689. * by the network consesus parameter "onion-key-rotation-days", but the value
  690. * is converted to seconds.
  691. */
  692. int
  693. get_onion_key_lifetime(void)
  694. {
  695. return get_onion_key_rotation_days_()*24*60*60;
  696. }
  697. /** Get the grace period of an onion key in seconds. This value is defined by
  698. * the network consesus parameter "onion-key-grace-period-days", but the value
  699. * is converted to seconds.
  700. */
  701. int
  702. get_onion_key_grace_period(void)
  703. {
  704. int grace_period;
  705. grace_period = networkstatus_get_param(NULL,
  706. "onion-key-grace-period-days",
  707. DEFAULT_ONION_KEY_GRACE_PERIOD_DAYS,
  708. MIN_ONION_KEY_GRACE_PERIOD_DAYS,
  709. get_onion_key_rotation_days_());
  710. return grace_period*24*60*60;
  711. }
  712. /** Set up Tor's TLS contexts, based on our configuration and keys. Return 0
  713. * on success, and -1 on failure. */
  714. int
  715. router_initialize_tls_context(void)
  716. {
  717. unsigned int flags = 0;
  718. const or_options_t *options = get_options();
  719. int lifetime = options->SSLKeyLifetime;
  720. if (public_server_mode(options))
  721. flags |= TOR_TLS_CTX_IS_PUBLIC_SERVER;
  722. if (options->TLSECGroup) {
  723. if (!strcasecmp(options->TLSECGroup, "P256"))
  724. flags |= TOR_TLS_CTX_USE_ECDHE_P256;
  725. else if (!strcasecmp(options->TLSECGroup, "P224"))
  726. flags |= TOR_TLS_CTX_USE_ECDHE_P224;
  727. }
  728. if (!lifetime) { /* we should guess a good ssl cert lifetime */
  729. /* choose between 5 and 365 days, and round to the day */
  730. unsigned int five_days = 5*24*3600;
  731. unsigned int one_year = 365*24*3600;
  732. lifetime = crypto_rand_int_range(five_days, one_year);
  733. lifetime -= lifetime % (24*3600);
  734. if (crypto_rand_int(2)) {
  735. /* Half the time we expire at midnight, and half the time we expire
  736. * one second before midnight. (Some CAs wobble their expiry times a
  737. * bit in practice, perhaps to reduce collision attacks; see ticket
  738. * 8443 for details about observed certs in the wild.) */
  739. lifetime--;
  740. }
  741. }
  742. /* It's ok to pass lifetime in as an unsigned int, since
  743. * config_parse_interval() checked it. */
  744. return tor_tls_context_init(flags,
  745. get_tlsclient_identity_key(),
  746. server_mode(options) ?
  747. get_server_identity_key() : NULL,
  748. (unsigned int)lifetime);
  749. }
  750. /** Compute fingerprint (or hashed fingerprint if hashed is 1) and write
  751. * it to 'fingerprint' (or 'hashed-fingerprint'). Return 0 on success, or
  752. * -1 if Tor should die,
  753. */
  754. STATIC int
  755. router_write_fingerprint(int hashed)
  756. {
  757. char *keydir = NULL, *cp = NULL;
  758. const char *fname = hashed ? "hashed-fingerprint" :
  759. "fingerprint";
  760. char fingerprint[FINGERPRINT_LEN+1];
  761. const or_options_t *options = get_options();
  762. char *fingerprint_line = NULL;
  763. int result = -1;
  764. keydir = get_datadir_fname(fname);
  765. log_info(LD_GENERAL,"Dumping %sfingerprint to \"%s\"...",
  766. hashed ? "hashed " : "", keydir);
  767. if (!hashed) {
  768. if (crypto_pk_get_fingerprint(get_server_identity_key(),
  769. fingerprint, 0) < 0) {
  770. log_err(LD_GENERAL,"Error computing fingerprint");
  771. goto done;
  772. }
  773. } else {
  774. if (crypto_pk_get_hashed_fingerprint(get_server_identity_key(),
  775. fingerprint) < 0) {
  776. log_err(LD_GENERAL,"Error computing hashed fingerprint");
  777. goto done;
  778. }
  779. }
  780. tor_asprintf(&fingerprint_line, "%s %s\n", options->Nickname, fingerprint);
  781. /* Check whether we need to write the (hashed-)fingerprint file. */
  782. cp = read_file_to_str(keydir, RFTS_IGNORE_MISSING, NULL);
  783. if (!cp || strcmp(cp, fingerprint_line)) {
  784. if (write_str_to_file(keydir, fingerprint_line, 0)) {
  785. log_err(LD_FS, "Error writing %sfingerprint line to file",
  786. hashed ? "hashed " : "");
  787. goto done;
  788. }
  789. }
  790. log_notice(LD_GENERAL, "Your Tor %s identity key fingerprint is '%s %s'",
  791. hashed ? "bridge's hashed" : "server's", options->Nickname,
  792. fingerprint);
  793. result = 0;
  794. done:
  795. tor_free(cp);
  796. tor_free(keydir);
  797. tor_free(fingerprint_line);
  798. return result;
  799. }
  800. static int
  801. init_keys_common(void)
  802. {
  803. if (!key_lock)
  804. key_lock = tor_mutex_new();
  805. /* There are a couple of paths that put us here before we've asked
  806. * openssl to initialize itself. */
  807. if (crypto_global_init(get_options()->HardwareAccel,
  808. get_options()->AccelName,
  809. get_options()->AccelDir)) {
  810. log_err(LD_BUG, "Unable to initialize OpenSSL. Exiting.");
  811. return -1;
  812. }
  813. return 0;
  814. }
  815. int
  816. init_keys_client(void)
  817. {
  818. crypto_pk_t *prkey;
  819. if (init_keys_common() < 0)
  820. return -1;
  821. if (!(prkey = crypto_pk_new()))
  822. return -1;
  823. if (crypto_pk_generate_key(prkey)) {
  824. crypto_pk_free(prkey);
  825. return -1;
  826. }
  827. set_client_identity_key(prkey);
  828. /* Create a TLS context. */
  829. if (router_initialize_tls_context() < 0) {
  830. log_err(LD_GENERAL,"Error creating TLS context for Tor client.");
  831. return -1;
  832. }
  833. return 0;
  834. }
  835. /** Initialize all OR private keys, and the TLS context, as necessary.
  836. * On OPs, this only initializes the tls context. Return 0 on success,
  837. * or -1 if Tor should die.
  838. */
  839. int
  840. init_keys(void)
  841. {
  842. char *keydir;
  843. const char *mydesc;
  844. crypto_pk_t *prkey;
  845. char digest[DIGEST_LEN];
  846. char v3_digest[DIGEST_LEN];
  847. const or_options_t *options = get_options();
  848. dirinfo_type_t type;
  849. time_t now = time(NULL);
  850. dir_server_t *ds;
  851. int v3_digest_set = 0;
  852. authority_cert_t *cert = NULL;
  853. /* OP's don't need persistent keys; just make up an identity and
  854. * initialize the TLS context. */
  855. if (!server_mode(options)) {
  856. return init_keys_client();
  857. }
  858. if (init_keys_common() < 0)
  859. return -1;
  860. /* Make sure DataDirectory exists, and is private. */
  861. cpd_check_t cpd_opts = CPD_CREATE;
  862. if (options->DataDirectoryGroupReadable)
  863. cpd_opts |= CPD_GROUP_READ;
  864. if (check_private_dir(options->DataDirectory, cpd_opts, options->User)) {
  865. log_err(LD_OR, "Can't create/check datadirectory %s",
  866. options->DataDirectory);
  867. return -1;
  868. }
  869. /* Check the key directory. */
  870. keydir = get_datadir_fname("keys");
  871. if (check_private_dir(keydir, CPD_CREATE, options->User)) {
  872. tor_free(keydir);
  873. return -1;
  874. }
  875. tor_free(keydir);
  876. /* 1a. Read v3 directory authority key/cert information. */
  877. memset(v3_digest, 0, sizeof(v3_digest));
  878. if (authdir_mode_v3(options)) {
  879. if (init_v3_authority_keys()<0) {
  880. log_err(LD_GENERAL, "We're configured as a V3 authority, but we "
  881. "were unable to load our v3 authority keys and certificate! "
  882. "Use tor-gencert to generate them. Dying.");
  883. return -1;
  884. }
  885. cert = get_my_v3_authority_cert();
  886. if (cert) {
  887. crypto_pk_get_digest(get_my_v3_authority_cert()->identity_key,
  888. v3_digest);
  889. v3_digest_set = 1;
  890. }
  891. }
  892. /* 1b. Read identity key. Make it if none is found. */
  893. keydir = get_datadir_fname2("keys", "secret_id_key");
  894. log_info(LD_GENERAL,"Reading/making identity key \"%s\"...",keydir);
  895. prkey = init_key_from_file(keydir, 1, LOG_ERR, 1);
  896. tor_free(keydir);
  897. if (!prkey) return -1;
  898. set_server_identity_key(prkey);
  899. /* 1c. If we are configured as a bridge, generate a client key;
  900. * otherwise, set the server identity key as our client identity
  901. * key. */
  902. if (public_server_mode(options)) {
  903. set_client_identity_key(crypto_pk_dup_key(prkey)); /* set above */
  904. } else {
  905. if (!(prkey = crypto_pk_new()))
  906. return -1;
  907. if (crypto_pk_generate_key(prkey)) {
  908. crypto_pk_free(prkey);
  909. return -1;
  910. }
  911. set_client_identity_key(prkey);
  912. }
  913. /* 1d. Load all ed25519 keys */
  914. if (load_ed_keys(options,now) < 0)
  915. return -1;
  916. /* 2. Read onion key. Make it if none is found. */
  917. keydir = get_datadir_fname2("keys", "secret_onion_key");
  918. log_info(LD_GENERAL,"Reading/making onion key \"%s\"...",keydir);
  919. prkey = init_key_from_file(keydir, 1, LOG_ERR, 1);
  920. tor_free(keydir);
  921. if (!prkey) return -1;
  922. set_onion_key(prkey);
  923. if (options->command == CMD_RUN_TOR) {
  924. /* only mess with the state file if we're actually running Tor */
  925. or_state_t *state = get_or_state();
  926. if (state->LastRotatedOnionKey > 100 && state->LastRotatedOnionKey < now) {
  927. /* We allow for some parsing slop, but we don't want to risk accepting
  928. * values in the distant future. If we did, we might never rotate the
  929. * onion key. */
  930. onionkey_set_at = state->LastRotatedOnionKey;
  931. } else {
  932. /* We have no LastRotatedOnionKey set; either we just created the key
  933. * or it's a holdover from 0.1.2.4-alpha-dev or earlier. In either case,
  934. * start the clock ticking now so that we will eventually rotate it even
  935. * if we don't stay up for the full lifetime of an onion key. */
  936. state->LastRotatedOnionKey = onionkey_set_at = now;
  937. or_state_mark_dirty(state, options->AvoidDiskWrites ?
  938. time(NULL)+3600 : 0);
  939. }
  940. }
  941. keydir = get_datadir_fname2("keys", "secret_onion_key.old");
  942. if (!lastonionkey && file_status(keydir) == FN_FILE) {
  943. /* Load keys from non-empty files only.
  944. * Missing old keys won't be replaced with freshly generated keys. */
  945. prkey = init_key_from_file(keydir, 0, LOG_ERR, 0);
  946. if (prkey)
  947. lastonionkey = prkey;
  948. }
  949. tor_free(keydir);
  950. {
  951. /* 2b. Load curve25519 onion keys. */
  952. int r;
  953. keydir = get_datadir_fname2("keys", "secret_onion_key_ntor");
  954. r = init_curve25519_keypair_from_file(&curve25519_onion_key,
  955. keydir, 1, LOG_ERR, "onion");
  956. tor_free(keydir);
  957. if (r<0)
  958. return -1;
  959. keydir = get_datadir_fname2("keys", "secret_onion_key_ntor.old");
  960. if (tor_mem_is_zero((const char *)
  961. last_curve25519_onion_key.pubkey.public_key,
  962. CURVE25519_PUBKEY_LEN) &&
  963. file_status(keydir) == FN_FILE) {
  964. /* Load keys from non-empty files only.
  965. * Missing old keys won't be replaced with freshly generated keys. */
  966. init_curve25519_keypair_from_file(&last_curve25519_onion_key,
  967. keydir, 0, LOG_ERR, "onion");
  968. }
  969. tor_free(keydir);
  970. }
  971. /* 3. Initialize link key and TLS context. */
  972. if (router_initialize_tls_context() < 0) {
  973. log_err(LD_GENERAL,"Error initializing TLS context");
  974. return -1;
  975. }
  976. /* 3b. Get an ed25519 link certificate. Note that we need to do this
  977. * after we set up the TLS context */
  978. if (generate_ed_link_cert(options, now) < 0) {
  979. log_err(LD_GENERAL,"Couldn't make link cert");
  980. return -1;
  981. }
  982. /* 4. Build our router descriptor. */
  983. /* Must be called after keys are initialized. */
  984. mydesc = router_get_my_descriptor();
  985. if (authdir_mode_handles_descs(options, ROUTER_PURPOSE_GENERAL)) {
  986. const char *m = NULL;
  987. routerinfo_t *ri;
  988. /* We need to add our own fingerprint so it gets recognized. */
  989. if (dirserv_add_own_fingerprint(get_server_identity_key())) {
  990. log_err(LD_GENERAL,"Error adding own fingerprint to set of relays");
  991. return -1;
  992. }
  993. if (mydesc) {
  994. was_router_added_t added;
  995. ri = router_parse_entry_from_string(mydesc, NULL, 1, 0, NULL, NULL);
  996. if (!ri) {
  997. log_err(LD_GENERAL,"Generated a routerinfo we couldn't parse.");
  998. return -1;
  999. }
  1000. added = dirserv_add_descriptor(ri, &m, "self");
  1001. if (!WRA_WAS_ADDED(added)) {
  1002. if (!WRA_WAS_OUTDATED(added)) {
  1003. log_err(LD_GENERAL, "Unable to add own descriptor to directory: %s",
  1004. m?m:"<unknown error>");
  1005. return -1;
  1006. } else {
  1007. /* If the descriptor was outdated, that's ok. This can happen
  1008. * when some config options are toggled that affect workers, but
  1009. * we don't really need new keys yet so the descriptor doesn't
  1010. * change and the old one is still fresh. */
  1011. log_info(LD_GENERAL, "Couldn't add own descriptor to directory "
  1012. "after key init: %s This is usually not a problem.",
  1013. m?m:"<unknown error>");
  1014. }
  1015. }
  1016. }
  1017. }
  1018. /* 5. Dump fingerprint and possibly hashed fingerprint to files. */
  1019. if (router_write_fingerprint(0)) {
  1020. log_err(LD_FS, "Error writing fingerprint to file");
  1021. return -1;
  1022. }
  1023. if (!public_server_mode(options) && router_write_fingerprint(1)) {
  1024. log_err(LD_FS, "Error writing hashed fingerprint to file");
  1025. return -1;
  1026. }
  1027. if (!authdir_mode(options))
  1028. return 0;
  1029. /* 6. [authdirserver only] load approved-routers file */
  1030. if (dirserv_load_fingerprint_file() < 0) {
  1031. log_err(LD_GENERAL,"Error loading fingerprints");
  1032. return -1;
  1033. }
  1034. /* 6b. [authdirserver only] add own key to approved directories. */
  1035. crypto_pk_get_digest(get_server_identity_key(), digest);
  1036. type = ((options->V3AuthoritativeDir ?
  1037. (V3_DIRINFO|MICRODESC_DIRINFO|EXTRAINFO_DIRINFO) : NO_DIRINFO) |
  1038. (options->BridgeAuthoritativeDir ? BRIDGE_DIRINFO : NO_DIRINFO));
  1039. ds = router_get_trusteddirserver_by_digest(digest);
  1040. if (!ds) {
  1041. ds = trusted_dir_server_new(options->Nickname, NULL,
  1042. router_get_advertised_dir_port(options, 0),
  1043. router_get_advertised_or_port(options),
  1044. NULL,
  1045. digest,
  1046. v3_digest,
  1047. type, 0.0);
  1048. if (!ds) {
  1049. log_err(LD_GENERAL,"We want to be a directory authority, but we "
  1050. "couldn't add ourselves to the authority list. Failing.");
  1051. return -1;
  1052. }
  1053. dir_server_add(ds);
  1054. }
  1055. if (ds->type != type) {
  1056. log_warn(LD_DIR, "Configured authority type does not match authority "
  1057. "type in DirAuthority list. Adjusting. (%d v %d)",
  1058. type, ds->type);
  1059. ds->type = type;
  1060. }
  1061. if (v3_digest_set && (ds->type & V3_DIRINFO) &&
  1062. tor_memneq(v3_digest, ds->v3_identity_digest, DIGEST_LEN)) {
  1063. log_warn(LD_DIR, "V3 identity key does not match identity declared in "
  1064. "DirAuthority line. Adjusting.");
  1065. memcpy(ds->v3_identity_digest, v3_digest, DIGEST_LEN);
  1066. }
  1067. if (cert) { /* add my own cert to the list of known certs */
  1068. log_info(LD_DIR, "adding my own v3 cert");
  1069. if (trusted_dirs_load_certs_from_string(
  1070. cert->cache_info.signed_descriptor_body,
  1071. TRUSTED_DIRS_CERTS_SRC_SELF, 0,
  1072. NULL)<0) {
  1073. log_warn(LD_DIR, "Unable to parse my own v3 cert! Failing.");
  1074. return -1;
  1075. }
  1076. }
  1077. return 0; /* success */
  1078. }
  1079. /* Keep track of whether we should upload our server descriptor,
  1080. * and what type of server we are.
  1081. */
  1082. /** Whether we can reach our ORPort from the outside. */
  1083. static int can_reach_or_port = 0;
  1084. /** Whether we can reach our DirPort from the outside. */
  1085. static int can_reach_dir_port = 0;
  1086. /** Forget what we have learned about our reachability status. */
  1087. void
  1088. router_reset_reachability(void)
  1089. {
  1090. can_reach_or_port = can_reach_dir_port = 0;
  1091. }
  1092. /** Return 1 if we won't do reachability checks, because:
  1093. * - AssumeReachable is set, or
  1094. * - the network is disabled.
  1095. * Otherwise, return 0.
  1096. */
  1097. static int
  1098. router_reachability_checks_disabled(const or_options_t *options)
  1099. {
  1100. return options->AssumeReachable ||
  1101. net_is_disabled();
  1102. }
  1103. /** Return 0 if we need to do an ORPort reachability check, because:
  1104. * - no reachability check has been done yet, or
  1105. * - we've initiated reachability checks, but none have succeeded.
  1106. * Return 1 if we don't need to do an ORPort reachability check, because:
  1107. * - we've seen a successful reachability check, or
  1108. * - AssumeReachable is set, or
  1109. * - the network is disabled.
  1110. */
  1111. int
  1112. check_whether_orport_reachable(const or_options_t *options)
  1113. {
  1114. int reach_checks_disabled = router_reachability_checks_disabled(options);
  1115. return reach_checks_disabled ||
  1116. can_reach_or_port;
  1117. }
  1118. /** Return 0 if we need to do a DirPort reachability check, because:
  1119. * - no reachability check has been done yet, or
  1120. * - we've initiated reachability checks, but none have succeeded.
  1121. * Return 1 if we don't need to do a DirPort reachability check, because:
  1122. * - we've seen a successful reachability check, or
  1123. * - there is no DirPort set, or
  1124. * - AssumeReachable is set, or
  1125. * - the network is disabled.
  1126. */
  1127. int
  1128. check_whether_dirport_reachable(const or_options_t *options)
  1129. {
  1130. int reach_checks_disabled = router_reachability_checks_disabled(options) ||
  1131. !options->DirPort_set;
  1132. return reach_checks_disabled ||
  1133. can_reach_dir_port;
  1134. }
  1135. /** The lower threshold of remaining bandwidth required to advertise (or
  1136. * automatically provide) directory services */
  1137. /* XXX Should this be increased? */
  1138. #define MIN_BW_TO_ADVERTISE_DIRSERVER 51200
  1139. /** Return true iff we have enough configured bandwidth to cache directory
  1140. * information. */
  1141. static int
  1142. router_has_bandwidth_to_be_dirserver(const or_options_t *options)
  1143. {
  1144. if (options->BandwidthRate < MIN_BW_TO_ADVERTISE_DIRSERVER) {
  1145. return 0;
  1146. }
  1147. if (options->RelayBandwidthRate > 0 &&
  1148. options->RelayBandwidthRate < MIN_BW_TO_ADVERTISE_DIRSERVER) {
  1149. return 0;
  1150. }
  1151. return 1;
  1152. }
  1153. /** Helper: Return 1 if we have sufficient resources for serving directory
  1154. * requests, return 0 otherwise.
  1155. * dir_port is either 0 or the configured DirPort number.
  1156. * If AccountingMax is set less than our advertised bandwidth, then don't
  1157. * serve requests. Likewise, if our advertised bandwidth is less than
  1158. * MIN_BW_TO_ADVERTISE_DIRSERVER, don't bother trying to serve requests.
  1159. */
  1160. static int
  1161. router_should_be_directory_server(const or_options_t *options, int dir_port)
  1162. {
  1163. static int advertising=1; /* start out assuming we will advertise */
  1164. int new_choice=1;
  1165. const char *reason = NULL;
  1166. if (accounting_is_enabled(options) &&
  1167. get_options()->AccountingRule != ACCT_IN) {
  1168. /* Don't spend bytes for directory traffic if we could end up hibernating,
  1169. * but allow DirPort otherwise. Some relay operators set AccountingMax
  1170. * because they're confused or to get statistics. Directory traffic has a
  1171. * much larger effect on output than input so there is no reason to turn it
  1172. * off if using AccountingRule in. */
  1173. int interval_length = accounting_get_interval_length();
  1174. uint32_t effective_bw = get_effective_bwrate(options);
  1175. uint64_t acc_bytes;
  1176. if (!interval_length) {
  1177. log_warn(LD_BUG, "An accounting interval is not allowed to be zero "
  1178. "seconds long. Raising to 1.");
  1179. interval_length = 1;
  1180. }
  1181. log_info(LD_GENERAL, "Calculating whether to advertise %s: effective "
  1182. "bwrate: %u, AccountingMax: "U64_FORMAT", "
  1183. "accounting interval length %d",
  1184. dir_port ? "dirport" : "begindir",
  1185. effective_bw, U64_PRINTF_ARG(options->AccountingMax),
  1186. interval_length);
  1187. acc_bytes = options->AccountingMax;
  1188. if (get_options()->AccountingRule == ACCT_SUM)
  1189. acc_bytes /= 2;
  1190. if (effective_bw >=
  1191. acc_bytes / interval_length) {
  1192. new_choice = 0;
  1193. reason = "AccountingMax enabled";
  1194. }
  1195. } else if (! router_has_bandwidth_to_be_dirserver(options)) {
  1196. /* if we're advertising a small amount */
  1197. new_choice = 0;
  1198. reason = "BandwidthRate under 50KB";
  1199. }
  1200. if (advertising != new_choice) {
  1201. if (new_choice == 1) {
  1202. if (dir_port > 0)
  1203. log_notice(LD_DIR, "Advertising DirPort as %d", dir_port);
  1204. else
  1205. log_notice(LD_DIR, "Advertising directory service support");
  1206. } else {
  1207. tor_assert(reason);
  1208. log_notice(LD_DIR, "Not advertising Dir%s (Reason: %s)",
  1209. dir_port ? "Port" : "ectory Service support", reason);
  1210. }
  1211. advertising = new_choice;
  1212. }
  1213. return advertising;
  1214. }
  1215. /** Return 1 if we are configured to accept either relay or directory requests
  1216. * from clients and we aren't at risk of exceeding our bandwidth limits, thus
  1217. * we should be a directory server. If not, return 0.
  1218. */
  1219. int
  1220. dir_server_mode(const or_options_t *options)
  1221. {
  1222. if (!options->DirCache)
  1223. return 0;
  1224. return options->DirPort_set ||
  1225. (server_mode(options) && router_has_bandwidth_to_be_dirserver(options));
  1226. }
  1227. /** Look at a variety of factors, and return 0 if we don't want to
  1228. * advertise the fact that we have a DirPort open or begindir support, else
  1229. * return 1.
  1230. *
  1231. * Where dir_port or supports_tunnelled_dir_requests are not relevant, they
  1232. * must be 0.
  1233. *
  1234. * Log a helpful message if we change our mind about whether to publish.
  1235. */
  1236. static int
  1237. decide_to_advertise_dir_impl(const or_options_t *options,
  1238. uint16_t dir_port,
  1239. int supports_tunnelled_dir_requests)
  1240. {
  1241. /* Part one: reasons to publish or not publish that aren't
  1242. * worth mentioning to the user, either because they're obvious
  1243. * or because they're normal behavior. */
  1244. /* short circuit the rest of the function */
  1245. if (!dir_port && !supports_tunnelled_dir_requests)
  1246. return 0;
  1247. if (authdir_mode(options)) /* always publish */
  1248. return 1;
  1249. if (net_is_disabled())
  1250. return 0;
  1251. if (dir_port && !router_get_advertised_dir_port(options, dir_port))
  1252. return 0;
  1253. if (supports_tunnelled_dir_requests &&
  1254. !router_get_advertised_or_port(options))
  1255. return 0;
  1256. /* Part two: consider config options that could make us choose to
  1257. * publish or not publish that the user might find surprising. */
  1258. return router_should_be_directory_server(options, dir_port);
  1259. }
  1260. /** Front-end to decide_to_advertise_dir_impl(): return 0 if we don't want to
  1261. * advertise the fact that we have a DirPort open, else return the
  1262. * DirPort we want to advertise.
  1263. */
  1264. static int
  1265. decide_to_advertise_dirport(const or_options_t *options, uint16_t dir_port)
  1266. {
  1267. /* supports_tunnelled_dir_requests is not relevant, pass 0 */
  1268. return decide_to_advertise_dir_impl(options, dir_port, 0) ? dir_port : 0;
  1269. }
  1270. /** Front-end to decide_to_advertise_dir_impl(): return 0 if we don't want to
  1271. * advertise the fact that we support begindir requests, else return 1.
  1272. */
  1273. static int
  1274. decide_to_advertise_begindir(const or_options_t *options,
  1275. int supports_tunnelled_dir_requests)
  1276. {
  1277. /* dir_port is not relevant, pass 0 */
  1278. return decide_to_advertise_dir_impl(options, 0,
  1279. supports_tunnelled_dir_requests);
  1280. }
  1281. /** Allocate and return a new extend_info_t that can be used to build
  1282. * a circuit to or through the router <b>r</b>. Uses the primary
  1283. * address of the router, so should only be called on a server. */
  1284. static extend_info_t *
  1285. extend_info_from_router(const routerinfo_t *r)
  1286. {
  1287. tor_addr_port_t ap;
  1288. tor_assert(r);
  1289. /* Make sure we don't need to check address reachability */
  1290. tor_assert_nonfatal(router_skip_or_reachability(get_options(), 0));
  1291. const ed25519_public_key_t *ed_id_key;
  1292. if (r->cache_info.signing_key_cert)
  1293. ed_id_key = &r->cache_info.signing_key_cert->signing_key;
  1294. else
  1295. ed_id_key = NULL;
  1296. router_get_prim_orport(r, &ap);
  1297. return extend_info_new(r->nickname, r->cache_info.identity_digest,
  1298. ed_id_key,
  1299. r->onion_pkey, r->onion_curve25519_pkey,
  1300. &ap.addr, ap.port);
  1301. }
  1302. /** Some time has passed, or we just got new directory information.
  1303. * See if we currently believe our ORPort or DirPort to be
  1304. * unreachable. If so, launch a new test for it.
  1305. *
  1306. * For ORPort, we simply try making a circuit that ends at ourselves.
  1307. * Success is noticed in onionskin_answer().
  1308. *
  1309. * For DirPort, we make a connection via Tor to our DirPort and ask
  1310. * for our own server descriptor.
  1311. * Success is noticed in connection_dir_client_reached_eof().
  1312. */
  1313. void
  1314. consider_testing_reachability(int test_or, int test_dir)
  1315. {
  1316. const routerinfo_t *me = router_get_my_routerinfo();
  1317. const or_options_t *options = get_options();
  1318. int orport_reachable = check_whether_orport_reachable(options);
  1319. tor_addr_t addr;
  1320. if (!me)
  1321. return;
  1322. if (routerset_contains_router(options->ExcludeNodes, me, -1) &&
  1323. options->StrictNodes) {
  1324. /* If we've excluded ourself, and StrictNodes is set, we can't test
  1325. * ourself. */
  1326. if (test_or || test_dir) {
  1327. #define SELF_EXCLUDED_WARN_INTERVAL 3600
  1328. static ratelim_t warning_limit=RATELIM_INIT(SELF_EXCLUDED_WARN_INTERVAL);
  1329. log_fn_ratelim(&warning_limit, LOG_WARN, LD_CIRC,
  1330. "Can't peform self-tests for this relay: we have "
  1331. "listed ourself in ExcludeNodes, and StrictNodes is set. "
  1332. "We cannot learn whether we are usable, and will not "
  1333. "be able to advertise ourself.");
  1334. }
  1335. return;
  1336. }
  1337. if (test_or && (!orport_reachable || !circuit_enough_testing_circs())) {
  1338. extend_info_t *ei = extend_info_from_router(me);
  1339. /* XXX IPv6 self testing */
  1340. log_info(LD_CIRC, "Testing %s of my ORPort: %s:%d.",
  1341. !orport_reachable ? "reachability" : "bandwidth",
  1342. fmt_addr32(me->addr), me->or_port);
  1343. circuit_launch_by_extend_info(CIRCUIT_PURPOSE_TESTING, ei,
  1344. CIRCLAUNCH_NEED_CAPACITY|CIRCLAUNCH_IS_INTERNAL);
  1345. extend_info_free(ei);
  1346. }
  1347. /* XXX IPv6 self testing */
  1348. tor_addr_from_ipv4h(&addr, me->addr);
  1349. if (test_dir && !check_whether_dirport_reachable(options) &&
  1350. !connection_get_by_type_addr_port_purpose(
  1351. CONN_TYPE_DIR, &addr, me->dir_port,
  1352. DIR_PURPOSE_FETCH_SERVERDESC)) {
  1353. tor_addr_port_t my_orport, my_dirport;
  1354. memcpy(&my_orport.addr, &addr, sizeof(addr));
  1355. memcpy(&my_dirport.addr, &addr, sizeof(addr));
  1356. my_orport.port = me->or_port;
  1357. my_dirport.port = me->dir_port;
  1358. /* ask myself, via tor, for my server descriptor. */
  1359. directory_request_t *req =
  1360. directory_request_new(DIR_PURPOSE_FETCH_SERVERDESC);
  1361. directory_request_set_or_addr_port(req, &my_orport);
  1362. directory_request_set_dir_addr_port(req, &my_dirport);
  1363. directory_request_set_directory_id_digest(req,
  1364. me->cache_info.identity_digest);
  1365. // ask via an anon circuit, connecting to our dirport.
  1366. directory_request_set_indirection(req, DIRIND_ANON_DIRPORT);
  1367. directory_request_set_resource(req, "authority.z");
  1368. directory_initiate_request(req);
  1369. directory_request_free(req);
  1370. }
  1371. }
  1372. /** Annotate that we found our ORPort reachable. */
  1373. void
  1374. router_orport_found_reachable(void)
  1375. {
  1376. const routerinfo_t *me = router_get_my_routerinfo();
  1377. const or_options_t *options = get_options();
  1378. if (!can_reach_or_port && me) {
  1379. char *address = tor_dup_ip(me->addr);
  1380. log_notice(LD_OR,"Self-testing indicates your ORPort is reachable from "
  1381. "the outside. Excellent.%s",
  1382. options->PublishServerDescriptor_ != NO_DIRINFO
  1383. && check_whether_dirport_reachable(options) ?
  1384. " Publishing server descriptor." : "");
  1385. can_reach_or_port = 1;
  1386. mark_my_descriptor_dirty("ORPort found reachable");
  1387. /* This is a significant enough change to upload immediately,
  1388. * at least in a test network */
  1389. if (options->TestingTorNetwork == 1) {
  1390. reschedule_descriptor_update_check();
  1391. }
  1392. control_event_server_status(LOG_NOTICE,
  1393. "REACHABILITY_SUCCEEDED ORADDRESS=%s:%d",
  1394. address, me->or_port);
  1395. tor_free(address);
  1396. }
  1397. }
  1398. /** Annotate that we found our DirPort reachable. */
  1399. void
  1400. router_dirport_found_reachable(void)
  1401. {
  1402. const routerinfo_t *me = router_get_my_routerinfo();
  1403. const or_options_t *options = get_options();
  1404. if (!can_reach_dir_port && me) {
  1405. char *address = tor_dup_ip(me->addr);
  1406. log_notice(LD_DIRSERV,"Self-testing indicates your DirPort is reachable "
  1407. "from the outside. Excellent.%s",
  1408. options->PublishServerDescriptor_ != NO_DIRINFO
  1409. && check_whether_orport_reachable(options) ?
  1410. " Publishing server descriptor." : "");
  1411. can_reach_dir_port = 1;
  1412. if (decide_to_advertise_dirport(options, me->dir_port)) {
  1413. mark_my_descriptor_dirty("DirPort found reachable");
  1414. /* This is a significant enough change to upload immediately,
  1415. * at least in a test network */
  1416. if (options->TestingTorNetwork == 1) {
  1417. reschedule_descriptor_update_check();
  1418. }
  1419. }
  1420. control_event_server_status(LOG_NOTICE,
  1421. "REACHABILITY_SUCCEEDED DIRADDRESS=%s:%d",
  1422. address, me->dir_port);
  1423. tor_free(address);
  1424. }
  1425. }
  1426. /** We have enough testing circuits open. Send a bunch of "drop"
  1427. * cells down each of them, to exercise our bandwidth. */
  1428. void
  1429. router_perform_bandwidth_test(int num_circs, time_t now)
  1430. {
  1431. int num_cells = (int)(get_options()->BandwidthRate * 10 /
  1432. CELL_MAX_NETWORK_SIZE);
  1433. int max_cells = num_cells < CIRCWINDOW_START ?
  1434. num_cells : CIRCWINDOW_START;
  1435. int cells_per_circuit = max_cells / num_circs;
  1436. origin_circuit_t *circ = NULL;
  1437. log_notice(LD_OR,"Performing bandwidth self-test...done.");
  1438. while ((circ = circuit_get_next_by_pk_and_purpose(circ, NULL,
  1439. CIRCUIT_PURPOSE_TESTING))) {
  1440. /* dump cells_per_circuit drop cells onto this circ */
  1441. int i = cells_per_circuit;
  1442. if (circ->base_.state != CIRCUIT_STATE_OPEN)
  1443. continue;
  1444. circ->base_.timestamp_dirty = now;
  1445. while (i-- > 0) {
  1446. if (relay_send_command_from_edge(0, TO_CIRCUIT(circ),
  1447. RELAY_COMMAND_DROP,
  1448. NULL, 0, circ->cpath->prev)<0) {
  1449. return; /* stop if error */
  1450. }
  1451. }
  1452. }
  1453. }
  1454. /** Return true iff our network is in some sense disabled: either we're
  1455. * hibernating, entering hibernation, or the network is turned off with
  1456. * DisableNetwork. */
  1457. int
  1458. net_is_disabled(void)
  1459. {
  1460. return get_options()->DisableNetwork || we_are_hibernating();
  1461. }
  1462. /** Return true iff we believe ourselves to be an authoritative
  1463. * directory server.
  1464. */
  1465. int
  1466. authdir_mode(const or_options_t *options)
  1467. {
  1468. return options->AuthoritativeDir != 0;
  1469. }
  1470. /** Return true iff we believe ourselves to be a v3 authoritative
  1471. * directory server.
  1472. */
  1473. int
  1474. authdir_mode_v3(const or_options_t *options)
  1475. {
  1476. return authdir_mode(options) && options->V3AuthoritativeDir != 0;
  1477. }
  1478. /** Return true iff we are a v3 directory authority. */
  1479. int
  1480. authdir_mode_any_main(const or_options_t *options)
  1481. {
  1482. return options->V3AuthoritativeDir;
  1483. }
  1484. /** Return true if we believe ourselves to be any kind of
  1485. * authoritative directory beyond just a hidserv authority. */
  1486. int
  1487. authdir_mode_any_nonhidserv(const or_options_t *options)
  1488. {
  1489. return options->BridgeAuthoritativeDir ||
  1490. authdir_mode_any_main(options);
  1491. }
  1492. /** Return true iff we are an authoritative directory server that is
  1493. * authoritative about receiving and serving descriptors of type
  1494. * <b>purpose</b> on its dirport. Use -1 for "any purpose". */
  1495. int
  1496. authdir_mode_handles_descs(const or_options_t *options, int purpose)
  1497. {
  1498. if (purpose < 0)
  1499. return authdir_mode_any_nonhidserv(options);
  1500. else if (purpose == ROUTER_PURPOSE_GENERAL)
  1501. return authdir_mode_any_main(options);
  1502. else if (purpose == ROUTER_PURPOSE_BRIDGE)
  1503. return (options->BridgeAuthoritativeDir);
  1504. else
  1505. return 0;
  1506. }
  1507. /** Return true iff we are an authoritative directory server that
  1508. * publishes its own network statuses.
  1509. */
  1510. int
  1511. authdir_mode_publishes_statuses(const or_options_t *options)
  1512. {
  1513. if (authdir_mode_bridge(options))
  1514. return 0;
  1515. return authdir_mode_any_nonhidserv(options);
  1516. }
  1517. /** Return true iff we are an authoritative directory server that
  1518. * tests reachability of the descriptors it learns about.
  1519. */
  1520. int
  1521. authdir_mode_tests_reachability(const or_options_t *options)
  1522. {
  1523. return authdir_mode_handles_descs(options, -1);
  1524. }
  1525. /** Return true iff we believe ourselves to be a bridge authoritative
  1526. * directory server.
  1527. */
  1528. int
  1529. authdir_mode_bridge(const or_options_t *options)
  1530. {
  1531. return authdir_mode(options) && options->BridgeAuthoritativeDir != 0;
  1532. }
  1533. /** Return true iff we are trying to be a server.
  1534. */
  1535. MOCK_IMPL(int,
  1536. server_mode,(const or_options_t *options))
  1537. {
  1538. if (options->ClientOnly) return 0;
  1539. /* XXXX I believe we can kill off ORListenAddress here.*/
  1540. return (options->ORPort_set || options->ORListenAddress);
  1541. }
  1542. /** Return true iff we are trying to be a non-bridge server.
  1543. */
  1544. MOCK_IMPL(int,
  1545. public_server_mode,(const or_options_t *options))
  1546. {
  1547. if (!server_mode(options)) return 0;
  1548. return (!options->BridgeRelay);
  1549. }
  1550. /** Return true iff the combination of options in <b>options</b> and parameters
  1551. * in the consensus mean that we don't want to allow exits from circuits
  1552. * we got from addresses not known to be servers. */
  1553. int
  1554. should_refuse_unknown_exits(const or_options_t *options)
  1555. {
  1556. if (options->RefuseUnknownExits != -1) {
  1557. return options->RefuseUnknownExits;
  1558. } else {
  1559. return networkstatus_get_param(NULL, "refuseunknownexits", 1, 0, 1);
  1560. }
  1561. }
  1562. /** Remember if we've advertised ourselves to the dirservers. */
  1563. static int server_is_advertised=0;
  1564. /** Return true iff we have published our descriptor lately.
  1565. */
  1566. MOCK_IMPL(int,
  1567. advertised_server_mode,(void))
  1568. {
  1569. return server_is_advertised;
  1570. }
  1571. /**
  1572. * Called with a boolean: set whether we have recently published our
  1573. * descriptor.
  1574. */
  1575. static void
  1576. set_server_advertised(int s)
  1577. {
  1578. server_is_advertised = s;
  1579. }
  1580. /** Return true iff we are trying to proxy client connections. */
  1581. int
  1582. proxy_mode(const or_options_t *options)
  1583. {
  1584. (void)options;
  1585. SMARTLIST_FOREACH_BEGIN(get_configured_ports(), const port_cfg_t *, p) {
  1586. if (p->type == CONN_TYPE_AP_LISTENER ||
  1587. p->type == CONN_TYPE_AP_TRANS_LISTENER ||
  1588. p->type == CONN_TYPE_AP_DNS_LISTENER ||
  1589. p->type == CONN_TYPE_AP_NATD_LISTENER)
  1590. return 1;
  1591. } SMARTLIST_FOREACH_END(p);
  1592. return 0;
  1593. }
  1594. /** Decide if we're a publishable server. We are a publishable server if:
  1595. * - We don't have the ClientOnly option set
  1596. * and
  1597. * - We have the PublishServerDescriptor option set to non-empty
  1598. * and
  1599. * - We have ORPort set
  1600. * and
  1601. * - We believe our ORPort and DirPort (if present) are reachable from
  1602. * the outside; or
  1603. * - We believe our ORPort is reachable from the outside, and we can't
  1604. * check our DirPort because the consensus has no exits; or
  1605. * - We are an authoritative directory server.
  1606. */
  1607. static int
  1608. decide_if_publishable_server(void)
  1609. {
  1610. const or_options_t *options = get_options();
  1611. if (options->ClientOnly)
  1612. return 0;
  1613. if (options->PublishServerDescriptor_ == NO_DIRINFO)
  1614. return 0;
  1615. if (!server_mode(options))
  1616. return 0;
  1617. if (authdir_mode(options))
  1618. return 1;
  1619. if (!router_get_advertised_or_port(options))
  1620. return 0;
  1621. if (!check_whether_orport_reachable(options))
  1622. return 0;
  1623. if (router_have_consensus_path() == CONSENSUS_PATH_INTERNAL) {
  1624. /* All set: there are no exits in the consensus (maybe this is a tiny
  1625. * test network), so we can't check our DirPort reachability. */
  1626. return 1;
  1627. } else {
  1628. return check_whether_dirport_reachable(options);
  1629. }
  1630. }
  1631. /** Initiate server descriptor upload as reasonable (if server is publishable,
  1632. * etc). <b>force</b> is as for router_upload_dir_desc_to_dirservers.
  1633. *
  1634. * We need to rebuild the descriptor if it's dirty even if we're not
  1635. * uploading, because our reachability testing *uses* our descriptor to
  1636. * determine what IP address and ports to test.
  1637. */
  1638. void
  1639. consider_publishable_server(int force)
  1640. {
  1641. int rebuilt;
  1642. if (!server_mode(get_options()))
  1643. return;
  1644. rebuilt = router_rebuild_descriptor(0);
  1645. if (decide_if_publishable_server()) {
  1646. set_server_advertised(1);
  1647. if (rebuilt == 0)
  1648. router_upload_dir_desc_to_dirservers(force);
  1649. } else {
  1650. set_server_advertised(0);
  1651. }
  1652. }
  1653. /** Return the port of the first active listener of type
  1654. * <b>listener_type</b>. */
  1655. /** XXX not a very good interface. it's not reliable when there are
  1656. multiple listeners. */
  1657. uint16_t
  1658. router_get_active_listener_port_by_type_af(int listener_type,
  1659. sa_family_t family)
  1660. {
  1661. /* Iterate all connections, find one of the right kind and return
  1662. the port. Not very sophisticated or fast, but effective. */
  1663. smartlist_t *conns = get_connection_array();
  1664. SMARTLIST_FOREACH_BEGIN(conns, connection_t *, conn) {
  1665. if (conn->type == listener_type && !conn->marked_for_close &&
  1666. conn->socket_family == family) {
  1667. return conn->port;
  1668. }
  1669. } SMARTLIST_FOREACH_END(conn);
  1670. return 0;
  1671. }
  1672. /** Return the port that we should advertise as our ORPort; this is either
  1673. * the one configured in the ORPort option, or the one we actually bound to
  1674. * if ORPort is "auto".
  1675. */
  1676. uint16_t
  1677. router_get_advertised_or_port(const or_options_t *options)
  1678. {
  1679. return router_get_advertised_or_port_by_af(options, AF_INET);
  1680. }
  1681. /** As router_get_advertised_or_port(), but allows an address family argument.
  1682. */
  1683. uint16_t
  1684. router_get_advertised_or_port_by_af(const or_options_t *options,
  1685. sa_family_t family)
  1686. {
  1687. int port = get_first_advertised_port_by_type_af(CONN_TYPE_OR_LISTENER,
  1688. family);
  1689. (void)options;
  1690. /* If the port is in 'auto' mode, we have to use
  1691. router_get_listener_port_by_type(). */
  1692. if (port == CFG_AUTO_PORT)
  1693. return router_get_active_listener_port_by_type_af(CONN_TYPE_OR_LISTENER,
  1694. family);
  1695. return port;
  1696. }
  1697. /** Return the port that we should advertise as our DirPort;
  1698. * this is one of three possibilities:
  1699. * The one that is passed as <b>dirport</b> if the DirPort option is 0, or
  1700. * the one configured in the DirPort option,
  1701. * or the one we actually bound to if DirPort is "auto". */
  1702. uint16_t
  1703. router_get_advertised_dir_port(const or_options_t *options, uint16_t dirport)
  1704. {
  1705. int dirport_configured = get_primary_dir_port();
  1706. (void)options;
  1707. if (!dirport_configured)
  1708. return dirport;
  1709. if (dirport_configured == CFG_AUTO_PORT)
  1710. return router_get_active_listener_port_by_type_af(CONN_TYPE_DIR_LISTENER,
  1711. AF_INET);
  1712. return dirport_configured;
  1713. }
  1714. /*
  1715. * OR descriptor generation.
  1716. */
  1717. /** My routerinfo. */
  1718. static routerinfo_t *desc_routerinfo = NULL;
  1719. /** My extrainfo */
  1720. static extrainfo_t *desc_extrainfo = NULL;
  1721. /** Why did we most recently decide to regenerate our descriptor? Used to
  1722. * tell the authorities why we're sending it to them. */
  1723. static const char *desc_gen_reason = NULL;
  1724. /** Since when has our descriptor been "clean"? 0 if we need to regenerate it
  1725. * now. */
  1726. static time_t desc_clean_since = 0;
  1727. /** Why did we mark the descriptor dirty? */
  1728. static const char *desc_dirty_reason = NULL;
  1729. /** Boolean: do we need to regenerate the above? */
  1730. static int desc_needs_upload = 0;
  1731. /** OR only: If <b>force</b> is true, or we haven't uploaded this
  1732. * descriptor successfully yet, try to upload our signed descriptor to
  1733. * all the directory servers we know about.
  1734. */
  1735. void
  1736. router_upload_dir_desc_to_dirservers(int force)
  1737. {
  1738. const routerinfo_t *ri;
  1739. extrainfo_t *ei;
  1740. char *msg;
  1741. size_t desc_len, extra_len = 0, total_len;
  1742. dirinfo_type_t auth = get_options()->PublishServerDescriptor_;
  1743. ri = router_get_my_routerinfo();
  1744. if (!ri) {
  1745. log_info(LD_GENERAL, "No descriptor; skipping upload");
  1746. return;
  1747. }
  1748. ei = router_get_my_extrainfo();
  1749. if (auth == NO_DIRINFO)
  1750. return;
  1751. if (!force && !desc_needs_upload)
  1752. return;
  1753. log_info(LD_OR, "Uploading relay descriptor to directory authorities%s",
  1754. force ? " (forced)" : "");
  1755. desc_needs_upload = 0;
  1756. desc_len = ri->cache_info.signed_descriptor_len;
  1757. extra_len = ei ? ei->cache_info.signed_descriptor_len : 0;
  1758. total_len = desc_len + extra_len + 1;
  1759. msg = tor_malloc(total_len);
  1760. memcpy(msg, ri->cache_info.signed_descriptor_body, desc_len);
  1761. if (ei) {
  1762. memcpy(msg+desc_len, ei->cache_info.signed_descriptor_body, extra_len);
  1763. }
  1764. msg[desc_len+extra_len] = 0;
  1765. directory_post_to_dirservers(DIR_PURPOSE_UPLOAD_DIR,
  1766. (auth & BRIDGE_DIRINFO) ?
  1767. ROUTER_PURPOSE_BRIDGE :
  1768. ROUTER_PURPOSE_GENERAL,
  1769. auth, msg, desc_len, extra_len);
  1770. tor_free(msg);
  1771. }
  1772. /** OR only: Check whether my exit policy says to allow connection to
  1773. * conn. Return 0 if we accept; non-0 if we reject.
  1774. */
  1775. int
  1776. router_compare_to_my_exit_policy(const tor_addr_t *addr, uint16_t port)
  1777. {
  1778. const routerinfo_t *me = router_get_my_routerinfo();
  1779. if (!me) /* make sure routerinfo exists */
  1780. return -1;
  1781. /* make sure it's resolved to something. this way we can't get a
  1782. 'maybe' below. */
  1783. if (tor_addr_is_null(addr))
  1784. return -1;
  1785. /* look at router_get_my_routerinfo()->exit_policy for both the v4 and the
  1786. * v6 policies. The exit_policy field in router_get_my_routerinfo() is a
  1787. * bit unusual, in that it contains IPv6 and IPv6 entries. We don't want to
  1788. * look at router_get_my_routerinfo()->ipv6_exit_policy, since that's a port
  1789. * summary. */
  1790. if ((tor_addr_family(addr) == AF_INET ||
  1791. tor_addr_family(addr) == AF_INET6)) {
  1792. return compare_tor_addr_to_addr_policy(addr, port,
  1793. me->exit_policy) != ADDR_POLICY_ACCEPTED;
  1794. #if 0
  1795. } else if (tor_addr_family(addr) == AF_INET6) {
  1796. return get_options()->IPv6Exit &&
  1797. desc_routerinfo->ipv6_exit_policy &&
  1798. compare_tor_addr_to_short_policy(addr, port,
  1799. me->ipv6_exit_policy) != ADDR_POLICY_ACCEPTED;
  1800. #endif
  1801. } else {
  1802. return -1;
  1803. }
  1804. }
  1805. /** Return true iff my exit policy is reject *:*. Return -1 if we don't
  1806. * have a descriptor */
  1807. MOCK_IMPL(int,
  1808. router_my_exit_policy_is_reject_star,(void))
  1809. {
  1810. if (!router_get_my_routerinfo()) /* make sure routerinfo exists */
  1811. return -1;
  1812. return router_get_my_routerinfo()->policy_is_reject_star;
  1813. }
  1814. /** Return true iff I'm a server and <b>digest</b> is equal to
  1815. * my server identity key digest. */
  1816. int
  1817. router_digest_is_me(const char *digest)
  1818. {
  1819. return (server_identitykey &&
  1820. tor_memeq(server_identitykey_digest, digest, DIGEST_LEN));
  1821. }
  1822. /** Return my identity digest. */
  1823. const uint8_t *
  1824. router_get_my_id_digest(void)
  1825. {
  1826. return (const uint8_t *)server_identitykey_digest;
  1827. }
  1828. /** Return true iff I'm a server and <b>digest</b> is equal to
  1829. * my identity digest. */
  1830. int
  1831. router_extrainfo_digest_is_me(const char *digest)
  1832. {
  1833. extrainfo_t *ei = router_get_my_extrainfo();
  1834. if (!ei)
  1835. return 0;
  1836. return tor_memeq(digest,
  1837. ei->cache_info.signed_descriptor_digest,
  1838. DIGEST_LEN);
  1839. }
  1840. /** A wrapper around router_digest_is_me(). */
  1841. int
  1842. router_is_me(const routerinfo_t *router)
  1843. {
  1844. return router_digest_is_me(router->cache_info.identity_digest);
  1845. }
  1846. /** Return a routerinfo for this OR, rebuilding a fresh one if
  1847. * necessary. Return NULL on error, or if called on an OP. */
  1848. MOCK_IMPL(const routerinfo_t *,
  1849. router_get_my_routerinfo,(void))
  1850. {
  1851. if (!server_mode(get_options()))
  1852. return NULL;
  1853. if (router_rebuild_descriptor(0))
  1854. return NULL;
  1855. return desc_routerinfo;
  1856. }
  1857. /** OR only: Return a signed server descriptor for this OR, rebuilding a fresh
  1858. * one if necessary. Return NULL on error.
  1859. */
  1860. const char *
  1861. router_get_my_descriptor(void)
  1862. {
  1863. const char *body;
  1864. const routerinfo_t *me = router_get_my_routerinfo();
  1865. if (! me)
  1866. return NULL;
  1867. tor_assert(me->cache_info.saved_location == SAVED_NOWHERE);
  1868. body = signed_descriptor_get_body(&me->cache_info);
  1869. /* Make sure this is nul-terminated. */
  1870. tor_assert(!body[me->cache_info.signed_descriptor_len]);
  1871. log_debug(LD_GENERAL,"my desc is '%s'", body);
  1872. return body;
  1873. }
  1874. /** Return the extrainfo document for this OR, or NULL if we have none.
  1875. * Rebuilt it (and the server descriptor) if necessary. */
  1876. extrainfo_t *
  1877. router_get_my_extrainfo(void)
  1878. {
  1879. if (!server_mode(get_options()))
  1880. return NULL;
  1881. if (router_rebuild_descriptor(0))
  1882. return NULL;
  1883. return desc_extrainfo;
  1884. }
  1885. /** Return a human-readable string describing what triggered us to generate
  1886. * our current descriptor, or NULL if we don't know. */
  1887. const char *
  1888. router_get_descriptor_gen_reason(void)
  1889. {
  1890. return desc_gen_reason;
  1891. }
  1892. /** A list of nicknames that we've warned about including in our family
  1893. * declaration verbatim rather than as digests. */
  1894. static smartlist_t *warned_nonexistent_family = NULL;
  1895. static int router_guess_address_from_dir_headers(uint32_t *guess);
  1896. /** Make a current best guess at our address, either because
  1897. * it's configured in torrc, or because we've learned it from
  1898. * dirserver headers. Place the answer in *<b>addr</b> and return
  1899. * 0 on success, else return -1 if we have no guess.
  1900. *
  1901. * If <b>cache_only</b> is true, just return any cached answers, and
  1902. * don't try to get any new answers.
  1903. */
  1904. MOCK_IMPL(int,
  1905. router_pick_published_address,(const or_options_t *options, uint32_t *addr,
  1906. int cache_only))
  1907. {
  1908. /* First, check the cached output from resolve_my_address(). */
  1909. *addr = get_last_resolved_addr();
  1910. if (*addr)
  1911. return 0;
  1912. /* Second, consider doing a resolve attempt right here. */
  1913. if (!cache_only) {
  1914. if (resolve_my_address(LOG_INFO, options, addr, NULL, NULL) >= 0) {
  1915. log_info(LD_CONFIG,"Success: chose address '%s'.", fmt_addr32(*addr));
  1916. return 0;
  1917. }
  1918. }
  1919. /* Third, check the cached output from router_new_address_suggestion(). */
  1920. if (router_guess_address_from_dir_headers(addr) >= 0)
  1921. return 0;
  1922. /* We have no useful cached answers. Return failure. */
  1923. return -1;
  1924. }
  1925. /* Like router_check_descriptor_address_consistency, but specifically for the
  1926. * ORPort or DirPort.
  1927. * listener_type is either CONN_TYPE_OR_LISTENER or CONN_TYPE_DIR_LISTENER. */
  1928. static void
  1929. router_check_descriptor_address_port_consistency(uint32_t ipv4h_desc_addr,
  1930. int listener_type)
  1931. {
  1932. tor_assert(listener_type == CONN_TYPE_OR_LISTENER ||
  1933. listener_type == CONN_TYPE_DIR_LISTENER);
  1934. /* The first advertised Port may be the magic constant CFG_AUTO_PORT.
  1935. */
  1936. int port_v4_cfg = get_first_advertised_port_by_type_af(listener_type,
  1937. AF_INET);
  1938. if (port_v4_cfg != 0 &&
  1939. !port_exists_by_type_addr32h_port(listener_type,
  1940. ipv4h_desc_addr, port_v4_cfg, 1)) {
  1941. const tor_addr_t *port_addr = get_first_advertised_addr_by_type_af(
  1942. listener_type,
  1943. AF_INET);
  1944. /* If we're building a descriptor with no advertised address,
  1945. * something is terribly wrong. */
  1946. tor_assert(port_addr);
  1947. tor_addr_t desc_addr;
  1948. char port_addr_str[TOR_ADDR_BUF_LEN];
  1949. char desc_addr_str[TOR_ADDR_BUF_LEN];
  1950. tor_addr_to_str(port_addr_str, port_addr, TOR_ADDR_BUF_LEN, 0);
  1951. tor_addr_from_ipv4h(&desc_addr, ipv4h_desc_addr);
  1952. tor_addr_to_str(desc_addr_str, &desc_addr, TOR_ADDR_BUF_LEN, 0);
  1953. const char *listener_str = (listener_type == CONN_TYPE_OR_LISTENER ?
  1954. "OR" : "Dir");
  1955. log_warn(LD_CONFIG, "The IPv4 %sPort address %s does not match the "
  1956. "descriptor address %s. If you have a static public IPv4 "
  1957. "address, use 'Address <IPv4>' and 'OutboundBindAddress "
  1958. "<IPv4>'. If you are behind a NAT, use two %sPort lines: "
  1959. "'%sPort <PublicPort> NoListen' and '%sPort <InternalPort> "
  1960. "NoAdvertise'.",
  1961. listener_str, port_addr_str, desc_addr_str, listener_str,
  1962. listener_str, listener_str);
  1963. }
  1964. }
  1965. /* Tor relays only have one IPv4 address in the descriptor, which is derived
  1966. * from the Address torrc option, or guessed using various methods in
  1967. * router_pick_published_address().
  1968. * Warn the operator if there is no ORPort on the descriptor address
  1969. * ipv4h_desc_addr.
  1970. * Warn the operator if there is no DirPort on the descriptor address.
  1971. * This catches a few common config errors:
  1972. * - operators who expect ORPorts and DirPorts to be advertised on the
  1973. * ports' listen addresses, rather than the torrc Address (or guessed
  1974. * addresses in the absence of an Address config). This includes
  1975. * operators who attempt to put their ORPort and DirPort on different
  1976. * addresses;
  1977. * - discrepancies between guessed addresses and configured listen
  1978. * addresses (when the Address option isn't set).
  1979. * If a listener is listening on all IPv4 addresses, it is assumed that it
  1980. * is listening on the configured Address, and no messages are logged.
  1981. * If an operators has specified NoAdvertise ORPorts in a NAT setting,
  1982. * no messages are logged, unless they have specified other advertised
  1983. * addresses.
  1984. * The message tells operators to configure an ORPort and DirPort that match
  1985. * the Address (using NoListen if needed).
  1986. */
  1987. static void
  1988. router_check_descriptor_address_consistency(uint32_t ipv4h_desc_addr)
  1989. {
  1990. router_check_descriptor_address_port_consistency(ipv4h_desc_addr,
  1991. CONN_TYPE_OR_LISTENER);
  1992. router_check_descriptor_address_port_consistency(ipv4h_desc_addr,
  1993. CONN_TYPE_DIR_LISTENER);
  1994. }
  1995. /** Build a fresh routerinfo, signed server descriptor, and extra-info document
  1996. * for this OR. Set r to the generated routerinfo, e to the generated
  1997. * extra-info document. Return 0 on success, -1 on temporary error. Failure to
  1998. * generate an extra-info document is not an error and is indicated by setting
  1999. * e to NULL. Caller is responsible for freeing generated documents if 0 is
  2000. * returned.
  2001. */
  2002. int
  2003. router_build_fresh_descriptor(routerinfo_t **r, extrainfo_t **e)
  2004. {
  2005. routerinfo_t *ri;
  2006. extrainfo_t *ei;
  2007. uint32_t addr;
  2008. char platform[256];
  2009. int hibernating = we_are_hibernating();
  2010. const or_options_t *options = get_options();
  2011. if (router_pick_published_address(options, &addr, 0) < 0) {
  2012. log_warn(LD_CONFIG, "Don't know my address while generating descriptor");
  2013. return -1;
  2014. }
  2015. /* Log a message if the address in the descriptor doesn't match the ORPort
  2016. * and DirPort addresses configured by the operator. */
  2017. router_check_descriptor_address_consistency(addr);
  2018. ri = tor_malloc_zero(sizeof(routerinfo_t));
  2019. ri->cache_info.routerlist_index = -1;
  2020. ri->nickname = tor_strdup(options->Nickname);
  2021. ri->addr = addr;
  2022. ri->or_port = router_get_advertised_or_port(options);
  2023. ri->dir_port = router_get_advertised_dir_port(options, 0);
  2024. ri->supports_tunnelled_dir_requests =
  2025. directory_permits_begindir_requests(options);
  2026. ri->cache_info.published_on = time(NULL);
  2027. ri->onion_pkey = crypto_pk_dup_key(get_onion_key()); /* must invoke from
  2028. * main thread */
  2029. ri->onion_curve25519_pkey =
  2030. tor_memdup(&get_current_curve25519_keypair()->pubkey,
  2031. sizeof(curve25519_public_key_t));
  2032. /* For now, at most one IPv6 or-address is being advertised. */
  2033. {
  2034. const port_cfg_t *ipv6_orport = NULL;
  2035. SMARTLIST_FOREACH_BEGIN(get_configured_ports(), const port_cfg_t *, p) {
  2036. if (p->type == CONN_TYPE_OR_LISTENER &&
  2037. ! p->server_cfg.no_advertise &&
  2038. ! p->server_cfg.bind_ipv4_only &&
  2039. tor_addr_family(&p->addr) == AF_INET6) {
  2040. /* Like IPv4, if the relay is configured using the default
  2041. * authorities, disallow internal IPs. Otherwise, allow them. */
  2042. const int default_auth = using_default_dir_authorities(options);
  2043. if (! tor_addr_is_internal(&p->addr, 0) || ! default_auth) {
  2044. ipv6_orport = p;
  2045. break;
  2046. } else {
  2047. char addrbuf[TOR_ADDR_BUF_LEN];
  2048. log_warn(LD_CONFIG,
  2049. "Unable to use configured IPv6 address \"%s\" in a "
  2050. "descriptor. Skipping it. "
  2051. "Try specifying a globally reachable address explicitly.",
  2052. tor_addr_to_str(addrbuf, &p->addr, sizeof(addrbuf), 1));
  2053. }
  2054. }
  2055. } SMARTLIST_FOREACH_END(p);
  2056. if (ipv6_orport) {
  2057. tor_addr_copy(&ri->ipv6_addr, &ipv6_orport->addr);
  2058. ri->ipv6_orport = ipv6_orport->port;
  2059. }
  2060. }
  2061. ri->identity_pkey = crypto_pk_dup_key(get_server_identity_key());
  2062. if (crypto_pk_get_digest(ri->identity_pkey,
  2063. ri->cache_info.identity_digest)<0) {
  2064. routerinfo_free(ri);
  2065. return -1;
  2066. }
  2067. ri->cache_info.signing_key_cert =
  2068. tor_cert_dup(get_master_signing_key_cert());
  2069. get_platform_str(platform, sizeof(platform));
  2070. ri->platform = tor_strdup(platform);
  2071. ri->protocol_list = tor_strdup(protover_get_supported_protocols());
  2072. /* compute ri->bandwidthrate as the min of various options */
  2073. ri->bandwidthrate = get_effective_bwrate(options);
  2074. /* and compute ri->bandwidthburst similarly */
  2075. ri->bandwidthburst = get_effective_bwburst(options);
  2076. ri->bandwidthcapacity = hibernating ? 0 : rep_hist_bandwidth_assess();
  2077. if (dns_seems_to_be_broken() || has_dns_init_failed()) {
  2078. /* DNS is screwed up; don't claim to be an exit. */
  2079. policies_exit_policy_append_reject_star(&ri->exit_policy);
  2080. } else {
  2081. policies_parse_exit_policy_from_options(options,ri->addr,&ri->ipv6_addr,
  2082. &ri->exit_policy);
  2083. }
  2084. ri->policy_is_reject_star =
  2085. policy_is_reject_star(ri->exit_policy, AF_INET, 1) &&
  2086. policy_is_reject_star(ri->exit_policy, AF_INET6, 1);
  2087. if (options->IPv6Exit) {
  2088. char *p_tmp = policy_summarize(ri->exit_policy, AF_INET6);
  2089. if (p_tmp)
  2090. ri->ipv6_exit_policy = parse_short_policy(p_tmp);
  2091. tor_free(p_tmp);
  2092. }
  2093. if (options->MyFamily && ! options->BridgeRelay) {
  2094. smartlist_t *family;
  2095. if (!warned_nonexistent_family)
  2096. warned_nonexistent_family = smartlist_new();
  2097. family = smartlist_new();
  2098. ri->declared_family = smartlist_new();
  2099. smartlist_split_string(family, options->MyFamily, ",",
  2100. SPLIT_SKIP_SPACE|SPLIT_IGNORE_BLANK|SPLIT_STRIP_SPACE, 0);
  2101. SMARTLIST_FOREACH_BEGIN(family, char *, name) {
  2102. const node_t *member;
  2103. if (!strcasecmp(name, options->Nickname))
  2104. goto skip; /* Don't list ourself, that's redundant */
  2105. else
  2106. member = node_get_by_nickname(name, 1);
  2107. if (!member) {
  2108. int is_legal = is_legal_nickname_or_hexdigest(name);
  2109. if (!smartlist_contains_string(warned_nonexistent_family, name) &&
  2110. !is_legal_hexdigest(name)) {
  2111. if (is_legal)
  2112. log_warn(LD_CONFIG,
  2113. "I have no descriptor for the router named \"%s\" in my "
  2114. "declared family; I'll use the nickname as is, but "
  2115. "this may confuse clients.", name);
  2116. else
  2117. log_warn(LD_CONFIG, "There is a router named \"%s\" in my "
  2118. "declared family, but that isn't a legal nickname. "
  2119. "Skipping it.", escaped(name));
  2120. smartlist_add_strdup(warned_nonexistent_family, name);
  2121. }
  2122. if (is_legal) {
  2123. smartlist_add(ri->declared_family, name);
  2124. name = NULL;
  2125. }
  2126. } else if (router_digest_is_me(member->identity)) {
  2127. /* Don't list ourself in our own family; that's redundant */
  2128. /* XXX shouldn't be possible */
  2129. } else {
  2130. char *fp = tor_malloc(HEX_DIGEST_LEN+2);
  2131. fp[0] = '$';
  2132. base16_encode(fp+1,HEX_DIGEST_LEN+1,
  2133. member->identity, DIGEST_LEN);
  2134. smartlist_add(ri->declared_family, fp);
  2135. if (smartlist_contains_string(warned_nonexistent_family, name))
  2136. smartlist_string_remove(warned_nonexistent_family, name);
  2137. }
  2138. skip:
  2139. tor_free(name);
  2140. } SMARTLIST_FOREACH_END(name);
  2141. /* remove duplicates from the list */
  2142. smartlist_sort_strings(ri->declared_family);
  2143. smartlist_uniq_strings(ri->declared_family);
  2144. smartlist_free(family);
  2145. }
  2146. /* Now generate the extrainfo. */
  2147. ei = tor_malloc_zero(sizeof(extrainfo_t));
  2148. ei->cache_info.is_extrainfo = 1;
  2149. strlcpy(ei->nickname, get_options()->Nickname, sizeof(ei->nickname));
  2150. ei->cache_info.published_on = ri->cache_info.published_on;
  2151. ei->cache_info.signing_key_cert =
  2152. tor_cert_dup(get_master_signing_key_cert());
  2153. memcpy(ei->cache_info.identity_digest, ri->cache_info.identity_digest,
  2154. DIGEST_LEN);
  2155. if (extrainfo_dump_to_string(&ei->cache_info.signed_descriptor_body,
  2156. ei, get_server_identity_key(),
  2157. get_master_signing_keypair()) < 0) {
  2158. log_warn(LD_BUG, "Couldn't generate extra-info descriptor.");
  2159. extrainfo_free(ei);
  2160. ei = NULL;
  2161. } else {
  2162. ei->cache_info.signed_descriptor_len =
  2163. strlen(ei->cache_info.signed_descriptor_body);
  2164. router_get_extrainfo_hash(ei->cache_info.signed_descriptor_body,
  2165. ei->cache_info.signed_descriptor_len,
  2166. ei->cache_info.signed_descriptor_digest);
  2167. crypto_digest256((char*) ei->digest256,
  2168. ei->cache_info.signed_descriptor_body,
  2169. ei->cache_info.signed_descriptor_len,
  2170. DIGEST_SHA256);
  2171. }
  2172. /* Now finish the router descriptor. */
  2173. if (ei) {
  2174. memcpy(ri->cache_info.extra_info_digest,
  2175. ei->cache_info.signed_descriptor_digest,
  2176. DIGEST_LEN);
  2177. memcpy(ri->cache_info.extra_info_digest256,
  2178. ei->digest256,
  2179. DIGEST256_LEN);
  2180. } else {
  2181. /* ri was allocated with tor_malloc_zero, so there is no need to
  2182. * zero ri->cache_info.extra_info_digest here. */
  2183. }
  2184. if (! (ri->cache_info.signed_descriptor_body =
  2185. router_dump_router_to_string(ri, get_server_identity_key(),
  2186. get_onion_key(),
  2187. get_current_curve25519_keypair(),
  2188. get_master_signing_keypair())) ) {
  2189. log_warn(LD_BUG, "Couldn't generate router descriptor.");
  2190. routerinfo_free(ri);
  2191. extrainfo_free(ei);
  2192. return -1;
  2193. }
  2194. ri->cache_info.signed_descriptor_len =
  2195. strlen(ri->cache_info.signed_descriptor_body);
  2196. ri->purpose =
  2197. options->BridgeRelay ? ROUTER_PURPOSE_BRIDGE : ROUTER_PURPOSE_GENERAL;
  2198. if (options->BridgeRelay) {
  2199. /* Bridges shouldn't be able to send their descriptors unencrypted,
  2200. anyway, since they don't have a DirPort, and always connect to the
  2201. bridge authority anonymously. But just in case they somehow think of
  2202. sending them on an unencrypted connection, don't allow them to try. */
  2203. ri->cache_info.send_unencrypted = 0;
  2204. if (ei)
  2205. ei->cache_info.send_unencrypted = 0;
  2206. } else {
  2207. ri->cache_info.send_unencrypted = 1;
  2208. if (ei)
  2209. ei->cache_info.send_unencrypted = 1;
  2210. }
  2211. router_get_router_hash(ri->cache_info.signed_descriptor_body,
  2212. strlen(ri->cache_info.signed_descriptor_body),
  2213. ri->cache_info.signed_descriptor_digest);
  2214. if (ei) {
  2215. tor_assert(!
  2216. routerinfo_incompatible_with_extrainfo(ri->identity_pkey, ei,
  2217. &ri->cache_info, NULL));
  2218. }
  2219. *r = ri;
  2220. *e = ei;
  2221. return 0;
  2222. }
  2223. /** If <b>force</b> is true, or our descriptor is out-of-date, rebuild a fresh
  2224. * routerinfo, signed server descriptor, and extra-info document for this OR.
  2225. * Return 0 on success, -1 on temporary error.
  2226. */
  2227. int
  2228. router_rebuild_descriptor(int force)
  2229. {
  2230. routerinfo_t *ri;
  2231. extrainfo_t *ei;
  2232. uint32_t addr;
  2233. const or_options_t *options = get_options();
  2234. if (desc_clean_since && !force)
  2235. return 0;
  2236. if (router_pick_published_address(options, &addr, 0) < 0 ||
  2237. router_get_advertised_or_port(options) == 0) {
  2238. /* Stop trying to rebuild our descriptor every second. We'll
  2239. * learn that it's time to try again when ip_address_changed()
  2240. * marks it dirty. */
  2241. desc_clean_since = time(NULL);
  2242. return -1;
  2243. }
  2244. log_info(LD_OR, "Rebuilding relay descriptor%s", force ? " (forced)" : "");
  2245. if (router_build_fresh_descriptor(&ri, &ei) < 0) {
  2246. return -1;
  2247. }
  2248. routerinfo_free(desc_routerinfo);
  2249. desc_routerinfo = ri;
  2250. extrainfo_free(desc_extrainfo);
  2251. desc_extrainfo = ei;
  2252. desc_clean_since = time(NULL);
  2253. desc_needs_upload = 1;
  2254. desc_gen_reason = desc_dirty_reason;
  2255. desc_dirty_reason = NULL;
  2256. control_event_my_descriptor_changed();
  2257. return 0;
  2258. }
  2259. /** If our router descriptor ever goes this long without being regenerated
  2260. * because something changed, we force an immediate regenerate-and-upload. */
  2261. #define FORCE_REGENERATE_DESCRIPTOR_INTERVAL (18*60*60)
  2262. /** If our router descriptor seems to be missing or unacceptable according
  2263. * to the authorities, regenerate and reupload it _this_ often. */
  2264. #define FAST_RETRY_DESCRIPTOR_INTERVAL (90*60)
  2265. /** Mark descriptor out of date if it's been "too long" since we last tried
  2266. * to upload one. */
  2267. void
  2268. mark_my_descriptor_dirty_if_too_old(time_t now)
  2269. {
  2270. networkstatus_t *ns;
  2271. const routerstatus_t *rs;
  2272. const char *retry_fast_reason = NULL; /* Set if we should retry frequently */
  2273. const time_t slow_cutoff = now - FORCE_REGENERATE_DESCRIPTOR_INTERVAL;
  2274. const time_t fast_cutoff = now - FAST_RETRY_DESCRIPTOR_INTERVAL;
  2275. /* If it's already dirty, don't mark it. */
  2276. if (! desc_clean_since)
  2277. return;
  2278. /* If it's older than FORCE_REGENERATE_DESCRIPTOR_INTERVAL, it's always
  2279. * time to rebuild it. */
  2280. if (desc_clean_since < slow_cutoff) {
  2281. mark_my_descriptor_dirty("time for new descriptor");
  2282. return;
  2283. }
  2284. /* Now we see whether we want to be retrying frequently or no. The
  2285. * rule here is that we'll retry frequently if we aren't listed in the
  2286. * live consensus we have, or if the publication time of the
  2287. * descriptor listed for us in the consensus is very old. */
  2288. ns = networkstatus_get_live_consensus(now);
  2289. if (ns) {
  2290. rs = networkstatus_vote_find_entry(ns, server_identitykey_digest);
  2291. if (rs == NULL)
  2292. retry_fast_reason = "not listed in consensus";
  2293. else if (rs->published_on < slow_cutoff)
  2294. retry_fast_reason = "version listed in consensus is quite old";
  2295. }
  2296. if (retry_fast_reason && desc_clean_since < fast_cutoff)
  2297. mark_my_descriptor_dirty(retry_fast_reason);
  2298. }
  2299. /** Call when the current descriptor is out of date. */
  2300. void
  2301. mark_my_descriptor_dirty(const char *reason)
  2302. {
  2303. const or_options_t *options = get_options();
  2304. if (server_mode(options) && options->PublishServerDescriptor_)
  2305. log_info(LD_OR, "Decided to publish new relay descriptor: %s", reason);
  2306. desc_clean_since = 0;
  2307. if (!desc_dirty_reason)
  2308. desc_dirty_reason = reason;
  2309. }
  2310. /** How frequently will we republish our descriptor because of large (factor
  2311. * of 2) shifts in estimated bandwidth? Note: We don't use this constant
  2312. * if our previous bandwidth estimate was exactly 0. */
  2313. #define MAX_BANDWIDTH_CHANGE_FREQ (20*60)
  2314. /** Check whether bandwidth has changed a lot since the last time we announced
  2315. * bandwidth. If so, mark our descriptor dirty. */
  2316. void
  2317. check_descriptor_bandwidth_changed(time_t now)
  2318. {
  2319. static time_t last_changed = 0;
  2320. uint64_t prev, cur;
  2321. if (!router_get_my_routerinfo())
  2322. return;
  2323. prev = router_get_my_routerinfo()->bandwidthcapacity;
  2324. cur = we_are_hibernating() ? 0 : rep_hist_bandwidth_assess();
  2325. if ((prev != cur && (!prev || !cur)) ||
  2326. cur > prev*2 ||
  2327. cur < prev/2) {
  2328. if (last_changed+MAX_BANDWIDTH_CHANGE_FREQ < now || !prev) {
  2329. log_info(LD_GENERAL,
  2330. "Measured bandwidth has changed; rebuilding descriptor.");
  2331. mark_my_descriptor_dirty("bandwidth has changed");
  2332. last_changed = now;
  2333. }
  2334. }
  2335. }
  2336. /** Note at log level severity that our best guess of address has changed from
  2337. * <b>prev</b> to <b>cur</b>. */
  2338. static void
  2339. log_addr_has_changed(int severity,
  2340. const tor_addr_t *prev,
  2341. const tor_addr_t *cur,
  2342. const char *source)
  2343. {
  2344. char addrbuf_prev[TOR_ADDR_BUF_LEN];
  2345. char addrbuf_cur[TOR_ADDR_BUF_LEN];
  2346. if (tor_addr_to_str(addrbuf_prev, prev, sizeof(addrbuf_prev), 1) == NULL)
  2347. strlcpy(addrbuf_prev, "???", TOR_ADDR_BUF_LEN);
  2348. if (tor_addr_to_str(addrbuf_cur, cur, sizeof(addrbuf_cur), 1) == NULL)
  2349. strlcpy(addrbuf_cur, "???", TOR_ADDR_BUF_LEN);
  2350. if (!tor_addr_is_null(prev))
  2351. log_fn(severity, LD_GENERAL,
  2352. "Our IP Address has changed from %s to %s; "
  2353. "rebuilding descriptor (source: %s).",
  2354. addrbuf_prev, addrbuf_cur, source);
  2355. else
  2356. log_notice(LD_GENERAL,
  2357. "Guessed our IP address as %s (source: %s).",
  2358. addrbuf_cur, source);
  2359. }
  2360. /** Check whether our own address as defined by the Address configuration
  2361. * has changed. This is for routers that get their address from a service
  2362. * like dyndns. If our address has changed, mark our descriptor dirty. */
  2363. void
  2364. check_descriptor_ipaddress_changed(time_t now)
  2365. {
  2366. uint32_t prev, cur;
  2367. const or_options_t *options = get_options();
  2368. const char *method = NULL;
  2369. char *hostname = NULL;
  2370. (void) now;
  2371. if (router_get_my_routerinfo() == NULL)
  2372. return;
  2373. /* XXXX ipv6 */
  2374. prev = router_get_my_routerinfo()->addr;
  2375. if (resolve_my_address(LOG_INFO, options, &cur, &method, &hostname) < 0) {
  2376. log_info(LD_CONFIG,"options->Address didn't resolve into an IP.");
  2377. return;
  2378. }
  2379. if (prev != cur) {
  2380. char *source;
  2381. tor_addr_t tmp_prev, tmp_cur;
  2382. tor_addr_from_ipv4h(&tmp_prev, prev);
  2383. tor_addr_from_ipv4h(&tmp_cur, cur);
  2384. tor_asprintf(&source, "METHOD=%s%s%s", method,
  2385. hostname ? " HOSTNAME=" : "",
  2386. hostname ? hostname : "");
  2387. log_addr_has_changed(LOG_NOTICE, &tmp_prev, &tmp_cur, source);
  2388. tor_free(source);
  2389. ip_address_changed(0);
  2390. }
  2391. tor_free(hostname);
  2392. }
  2393. /** The most recently guessed value of our IP address, based on directory
  2394. * headers. */
  2395. static tor_addr_t last_guessed_ip = TOR_ADDR_NULL;
  2396. /** A directory server <b>d_conn</b> told us our IP address is
  2397. * <b>suggestion</b>.
  2398. * If this address is different from the one we think we are now, and
  2399. * if our computer doesn't actually know its IP address, then switch. */
  2400. void
  2401. router_new_address_suggestion(const char *suggestion,
  2402. const dir_connection_t *d_conn)
  2403. {
  2404. tor_addr_t addr;
  2405. uint32_t cur = 0; /* Current IPv4 address. */
  2406. const or_options_t *options = get_options();
  2407. /* first, learn what the IP address actually is */
  2408. if (tor_addr_parse(&addr, suggestion) == -1) {
  2409. log_debug(LD_DIR, "Malformed X-Your-Address-Is header %s. Ignoring.",
  2410. escaped(suggestion));
  2411. return;
  2412. }
  2413. log_debug(LD_DIR, "Got X-Your-Address-Is: %s.", suggestion);
  2414. if (!server_mode(options)) {
  2415. tor_addr_copy(&last_guessed_ip, &addr);
  2416. return;
  2417. }
  2418. /* XXXX ipv6 */
  2419. cur = get_last_resolved_addr();
  2420. if (cur ||
  2421. resolve_my_address(LOG_INFO, options, &cur, NULL, NULL) >= 0) {
  2422. /* We're all set -- we already know our address. Great. */
  2423. tor_addr_from_ipv4h(&last_guessed_ip, cur); /* store it in case we
  2424. need it later */
  2425. return;
  2426. }
  2427. if (tor_addr_is_internal(&addr, 0)) {
  2428. /* Don't believe anybody who says our IP is, say, 127.0.0.1. */
  2429. return;
  2430. }
  2431. if (tor_addr_eq(&d_conn->base_.addr, &addr)) {
  2432. /* Don't believe anybody who says our IP is their IP. */
  2433. log_debug(LD_DIR, "A directory server told us our IP address is %s, "
  2434. "but they are just reporting their own IP address. Ignoring.",
  2435. suggestion);
  2436. return;
  2437. }
  2438. /* Okay. We can't resolve our own address, and X-Your-Address-Is is giving
  2439. * us an answer different from what we had the last time we managed to
  2440. * resolve it. */
  2441. if (!tor_addr_eq(&last_guessed_ip, &addr)) {
  2442. control_event_server_status(LOG_NOTICE,
  2443. "EXTERNAL_ADDRESS ADDRESS=%s METHOD=DIRSERV",
  2444. suggestion);
  2445. log_addr_has_changed(LOG_NOTICE, &last_guessed_ip, &addr,
  2446. d_conn->base_.address);
  2447. ip_address_changed(0);
  2448. tor_addr_copy(&last_guessed_ip, &addr); /* router_rebuild_descriptor()
  2449. will fetch it */
  2450. }
  2451. }
  2452. /** We failed to resolve our address locally, but we'd like to build
  2453. * a descriptor and publish / test reachability. If we have a guess
  2454. * about our address based on directory headers, answer it and return
  2455. * 0; else return -1. */
  2456. static int
  2457. router_guess_address_from_dir_headers(uint32_t *guess)
  2458. {
  2459. if (!tor_addr_is_null(&last_guessed_ip)) {
  2460. *guess = tor_addr_to_ipv4h(&last_guessed_ip);
  2461. return 0;
  2462. }
  2463. return -1;
  2464. }
  2465. /** Set <b>platform</b> (max length <b>len</b>) to a NUL-terminated short
  2466. * string describing the version of Tor and the operating system we're
  2467. * currently running on.
  2468. */
  2469. STATIC void
  2470. get_platform_str(char *platform, size_t len)
  2471. {
  2472. tor_snprintf(platform, len, "Tor %s on %s",
  2473. get_short_version(), get_uname());
  2474. }
  2475. /* XXX need to audit this thing and count fenceposts. maybe
  2476. * refactor so we don't have to keep asking if we're
  2477. * near the end of maxlen?
  2478. */
  2479. #define DEBUG_ROUTER_DUMP_ROUTER_TO_STRING
  2480. /** OR only: Given a routerinfo for this router, and an identity key to sign
  2481. * with, encode the routerinfo as a signed server descriptor and return a new
  2482. * string encoding the result, or NULL on failure.
  2483. */
  2484. char *
  2485. router_dump_router_to_string(routerinfo_t *router,
  2486. const crypto_pk_t *ident_key,
  2487. const crypto_pk_t *tap_key,
  2488. const curve25519_keypair_t *ntor_keypair,
  2489. const ed25519_keypair_t *signing_keypair)
  2490. {
  2491. char *address = NULL;
  2492. char *onion_pkey = NULL; /* Onion key, PEM-encoded. */
  2493. char *identity_pkey = NULL; /* Identity key, PEM-encoded. */
  2494. char digest[DIGEST256_LEN];
  2495. char published[ISO_TIME_LEN+1];
  2496. char fingerprint[FINGERPRINT_LEN+1];
  2497. char *extra_info_line = NULL;
  2498. size_t onion_pkeylen, identity_pkeylen;
  2499. char *family_line = NULL;
  2500. char *extra_or_address = NULL;
  2501. const or_options_t *options = get_options();
  2502. smartlist_t *chunks = NULL;
  2503. char *output = NULL;
  2504. const int emit_ed_sigs = signing_keypair &&
  2505. router->cache_info.signing_key_cert;
  2506. char *ed_cert_line = NULL;
  2507. char *rsa_tap_cc_line = NULL;
  2508. char *ntor_cc_line = NULL;
  2509. char *proto_line = NULL;
  2510. /* Make sure the identity key matches the one in the routerinfo. */
  2511. if (!crypto_pk_eq_keys(ident_key, router->identity_pkey)) {
  2512. log_warn(LD_BUG,"Tried to sign a router with a private key that didn't "
  2513. "match router's public key!");
  2514. goto err;
  2515. }
  2516. if (emit_ed_sigs) {
  2517. if (!router->cache_info.signing_key_cert->signing_key_included ||
  2518. !ed25519_pubkey_eq(&router->cache_info.signing_key_cert->signed_key,
  2519. &signing_keypair->pubkey)) {
  2520. log_warn(LD_BUG, "Tried to sign a router descriptor with a mismatched "
  2521. "ed25519 key chain %d",
  2522. router->cache_info.signing_key_cert->signing_key_included);
  2523. goto err;
  2524. }
  2525. }
  2526. /* record our fingerprint, so we can include it in the descriptor */
  2527. if (crypto_pk_get_fingerprint(router->identity_pkey, fingerprint, 1)<0) {
  2528. log_err(LD_BUG,"Error computing fingerprint");
  2529. goto err;
  2530. }
  2531. if (emit_ed_sigs) {
  2532. /* Encode ed25519 signing cert */
  2533. char ed_cert_base64[256];
  2534. char ed_fp_base64[ED25519_BASE64_LEN+1];
  2535. if (base64_encode(ed_cert_base64, sizeof(ed_cert_base64),
  2536. (const char*)router->cache_info.signing_key_cert->encoded,
  2537. router->cache_info.signing_key_cert->encoded_len,
  2538. BASE64_ENCODE_MULTILINE) < 0) {
  2539. log_err(LD_BUG,"Couldn't base64-encode signing key certificate!");
  2540. goto err;
  2541. }
  2542. if (ed25519_public_to_base64(ed_fp_base64,
  2543. &router->cache_info.signing_key_cert->signing_key)<0) {
  2544. log_err(LD_BUG,"Couldn't base64-encode identity key\n");
  2545. goto err;
  2546. }
  2547. tor_asprintf(&ed_cert_line, "identity-ed25519\n"
  2548. "-----BEGIN ED25519 CERT-----\n"
  2549. "%s"
  2550. "-----END ED25519 CERT-----\n"
  2551. "master-key-ed25519 %s\n",
  2552. ed_cert_base64, ed_fp_base64);
  2553. }
  2554. /* PEM-encode the onion key */
  2555. if (crypto_pk_write_public_key_to_string(router->onion_pkey,
  2556. &onion_pkey,&onion_pkeylen)<0) {
  2557. log_warn(LD_BUG,"write onion_pkey to string failed!");
  2558. goto err;
  2559. }
  2560. /* PEM-encode the identity key */
  2561. if (crypto_pk_write_public_key_to_string(router->identity_pkey,
  2562. &identity_pkey,&identity_pkeylen)<0) {
  2563. log_warn(LD_BUG,"write identity_pkey to string failed!");
  2564. goto err;
  2565. }
  2566. /* Cross-certify with RSA key */
  2567. if (tap_key && router->cache_info.signing_key_cert &&
  2568. router->cache_info.signing_key_cert->signing_key_included) {
  2569. char buf[256];
  2570. int tap_cc_len = 0;
  2571. uint8_t *tap_cc =
  2572. make_tap_onion_key_crosscert(tap_key,
  2573. &router->cache_info.signing_key_cert->signing_key,
  2574. router->identity_pkey,
  2575. &tap_cc_len);
  2576. if (!tap_cc) {
  2577. log_warn(LD_BUG,"make_tap_onion_key_crosscert failed!");
  2578. goto err;
  2579. }
  2580. if (base64_encode(buf, sizeof(buf), (const char*)tap_cc, tap_cc_len,
  2581. BASE64_ENCODE_MULTILINE) < 0) {
  2582. log_warn(LD_BUG,"base64_encode(rsa_crosscert) failed!");
  2583. tor_free(tap_cc);
  2584. goto err;
  2585. }
  2586. tor_free(tap_cc);
  2587. tor_asprintf(&rsa_tap_cc_line,
  2588. "onion-key-crosscert\n"
  2589. "-----BEGIN CROSSCERT-----\n"
  2590. "%s"
  2591. "-----END CROSSCERT-----\n", buf);
  2592. }
  2593. /* Cross-certify with onion keys */
  2594. if (ntor_keypair && router->cache_info.signing_key_cert &&
  2595. router->cache_info.signing_key_cert->signing_key_included) {
  2596. int sign = 0;
  2597. char buf[256];
  2598. /* XXXX Base the expiration date on the actual onion key expiration time?*/
  2599. tor_cert_t *cert =
  2600. make_ntor_onion_key_crosscert(ntor_keypair,
  2601. &router->cache_info.signing_key_cert->signing_key,
  2602. router->cache_info.published_on,
  2603. get_onion_key_lifetime(), &sign);
  2604. if (!cert) {
  2605. log_warn(LD_BUG,"make_ntor_onion_key_crosscert failed!");
  2606. goto err;
  2607. }
  2608. tor_assert(sign == 0 || sign == 1);
  2609. if (base64_encode(buf, sizeof(buf),
  2610. (const char*)cert->encoded, cert->encoded_len,
  2611. BASE64_ENCODE_MULTILINE)<0) {
  2612. log_warn(LD_BUG,"base64_encode(ntor_crosscert) failed!");
  2613. tor_cert_free(cert);
  2614. goto err;
  2615. }
  2616. tor_cert_free(cert);
  2617. tor_asprintf(&ntor_cc_line,
  2618. "ntor-onion-key-crosscert %d\n"
  2619. "-----BEGIN ED25519 CERT-----\n"
  2620. "%s"
  2621. "-----END ED25519 CERT-----\n", sign, buf);
  2622. }
  2623. /* Encode the publication time. */
  2624. format_iso_time(published, router->cache_info.published_on);
  2625. if (router->declared_family && smartlist_len(router->declared_family)) {
  2626. char *family = smartlist_join_strings(router->declared_family,
  2627. " ", 0, NULL);
  2628. tor_asprintf(&family_line, "family %s\n", family);
  2629. tor_free(family);
  2630. } else {
  2631. family_line = tor_strdup("");
  2632. }
  2633. if (!tor_digest_is_zero(router->cache_info.extra_info_digest)) {
  2634. char extra_info_digest[HEX_DIGEST_LEN+1];
  2635. base16_encode(extra_info_digest, sizeof(extra_info_digest),
  2636. router->cache_info.extra_info_digest, DIGEST_LEN);
  2637. if (!tor_digest256_is_zero(router->cache_info.extra_info_digest256)) {
  2638. char d256_64[BASE64_DIGEST256_LEN+1];
  2639. digest256_to_base64(d256_64, router->cache_info.extra_info_digest256);
  2640. tor_asprintf(&extra_info_line, "extra-info-digest %s %s\n",
  2641. extra_info_digest, d256_64);
  2642. } else {
  2643. tor_asprintf(&extra_info_line, "extra-info-digest %s\n",
  2644. extra_info_digest);
  2645. }
  2646. }
  2647. if (router->ipv6_orport &&
  2648. tor_addr_family(&router->ipv6_addr) == AF_INET6) {
  2649. char addr[TOR_ADDR_BUF_LEN];
  2650. const char *a;
  2651. a = tor_addr_to_str(addr, &router->ipv6_addr, sizeof(addr), 1);
  2652. if (a) {
  2653. tor_asprintf(&extra_or_address,
  2654. "or-address %s:%d\n", a, router->ipv6_orport);
  2655. log_debug(LD_OR, "My or-address line is <%s>", extra_or_address);
  2656. }
  2657. }
  2658. if (router->protocol_list) {
  2659. tor_asprintf(&proto_line, "proto %s\n", router->protocol_list);
  2660. } else {
  2661. proto_line = tor_strdup("");
  2662. }
  2663. address = tor_dup_ip(router->addr);
  2664. chunks = smartlist_new();
  2665. /* Generate the easy portion of the router descriptor. */
  2666. smartlist_add_asprintf(chunks,
  2667. "router %s %s %d 0 %d\n"
  2668. "%s"
  2669. "%s"
  2670. "platform %s\n"
  2671. "%s"
  2672. "published %s\n"
  2673. "fingerprint %s\n"
  2674. "uptime %ld\n"
  2675. "bandwidth %d %d %d\n"
  2676. "%s%s"
  2677. "onion-key\n%s"
  2678. "signing-key\n%s"
  2679. "%s%s"
  2680. "%s%s%s%s",
  2681. router->nickname,
  2682. address,
  2683. router->or_port,
  2684. decide_to_advertise_dirport(options, router->dir_port),
  2685. ed_cert_line ? ed_cert_line : "",
  2686. extra_or_address ? extra_or_address : "",
  2687. router->platform,
  2688. proto_line,
  2689. published,
  2690. fingerprint,
  2691. stats_n_seconds_working,
  2692. (int) router->bandwidthrate,
  2693. (int) router->bandwidthburst,
  2694. (int) router->bandwidthcapacity,
  2695. extra_info_line ? extra_info_line : "",
  2696. (options->DownloadExtraInfo || options->V3AuthoritativeDir) ?
  2697. "caches-extra-info\n" : "",
  2698. onion_pkey, identity_pkey,
  2699. rsa_tap_cc_line ? rsa_tap_cc_line : "",
  2700. ntor_cc_line ? ntor_cc_line : "",
  2701. family_line,
  2702. we_are_hibernating() ? "hibernating 1\n" : "",
  2703. "hidden-service-dir\n",
  2704. options->AllowSingleHopExits ? "allow-single-hop-exits\n" : "");
  2705. if (options->ContactInfo && strlen(options->ContactInfo)) {
  2706. const char *ci = options->ContactInfo;
  2707. if (strchr(ci, '\n') || strchr(ci, '\r'))
  2708. ci = escaped(ci);
  2709. smartlist_add_asprintf(chunks, "contact %s\n", ci);
  2710. }
  2711. if (router->onion_curve25519_pkey) {
  2712. char kbuf[128];
  2713. base64_encode(kbuf, sizeof(kbuf),
  2714. (const char *)router->onion_curve25519_pkey->public_key,
  2715. CURVE25519_PUBKEY_LEN, BASE64_ENCODE_MULTILINE);
  2716. smartlist_add_asprintf(chunks, "ntor-onion-key %s", kbuf);
  2717. } else {
  2718. /* Authorities will start rejecting relays without ntor keys in 0.2.9 */
  2719. log_err(LD_BUG, "A relay must have an ntor onion key");
  2720. goto err;
  2721. }
  2722. /* Write the exit policy to the end of 's'. */
  2723. if (!router->exit_policy || !smartlist_len(router->exit_policy)) {
  2724. smartlist_add_strdup(chunks, "reject *:*\n");
  2725. } else if (router->exit_policy) {
  2726. char *exit_policy = router_dump_exit_policy_to_string(router,1,0);
  2727. if (!exit_policy)
  2728. goto err;
  2729. smartlist_add_asprintf(chunks, "%s\n", exit_policy);
  2730. tor_free(exit_policy);
  2731. }
  2732. if (router->ipv6_exit_policy) {
  2733. char *p6 = write_short_policy(router->ipv6_exit_policy);
  2734. if (p6 && strcmp(p6, "reject 1-65535")) {
  2735. smartlist_add_asprintf(chunks,
  2736. "ipv6-policy %s\n", p6);
  2737. }
  2738. tor_free(p6);
  2739. }
  2740. if (decide_to_advertise_begindir(options,
  2741. router->supports_tunnelled_dir_requests)) {
  2742. smartlist_add_strdup(chunks, "tunnelled-dir-server\n");
  2743. }
  2744. /* Sign the descriptor with Ed25519 */
  2745. if (emit_ed_sigs) {
  2746. smartlist_add_strdup(chunks, "router-sig-ed25519 ");
  2747. crypto_digest_smartlist_prefix(digest, DIGEST256_LEN,
  2748. ED_DESC_SIGNATURE_PREFIX,
  2749. chunks, "", DIGEST_SHA256);
  2750. ed25519_signature_t sig;
  2751. char buf[ED25519_SIG_BASE64_LEN+1];
  2752. if (ed25519_sign(&sig, (const uint8_t*)digest, DIGEST256_LEN,
  2753. signing_keypair) < 0)
  2754. goto err;
  2755. if (ed25519_signature_to_base64(buf, &sig) < 0)
  2756. goto err;
  2757. smartlist_add_asprintf(chunks, "%s\n", buf);
  2758. }
  2759. /* Sign the descriptor with RSA */
  2760. smartlist_add_strdup(chunks, "router-signature\n");
  2761. crypto_digest_smartlist(digest, DIGEST_LEN, chunks, "", DIGEST_SHA1);
  2762. note_crypto_pk_op(SIGN_RTR);
  2763. {
  2764. char *sig;
  2765. if (!(sig = router_get_dirobj_signature(digest, DIGEST_LEN, ident_key))) {
  2766. log_warn(LD_BUG, "Couldn't sign router descriptor");
  2767. goto err;
  2768. }
  2769. smartlist_add(chunks, sig);
  2770. }
  2771. /* include a last '\n' */
  2772. smartlist_add_strdup(chunks, "\n");
  2773. output = smartlist_join_strings(chunks, "", 0, NULL);
  2774. #ifdef DEBUG_ROUTER_DUMP_ROUTER_TO_STRING
  2775. {
  2776. char *s_dup;
  2777. const char *cp;
  2778. routerinfo_t *ri_tmp;
  2779. cp = s_dup = tor_strdup(output);
  2780. ri_tmp = router_parse_entry_from_string(cp, NULL, 1, 0, NULL, NULL);
  2781. if (!ri_tmp) {
  2782. log_err(LD_BUG,
  2783. "We just generated a router descriptor we can't parse.");
  2784. log_err(LD_BUG, "Descriptor was: <<%s>>", output);
  2785. goto err;
  2786. }
  2787. tor_free(s_dup);
  2788. routerinfo_free(ri_tmp);
  2789. }
  2790. #endif
  2791. goto done;
  2792. err:
  2793. tor_free(output); /* sets output to NULL */
  2794. done:
  2795. if (chunks) {
  2796. SMARTLIST_FOREACH(chunks, char *, cp, tor_free(cp));
  2797. smartlist_free(chunks);
  2798. }
  2799. tor_free(address);
  2800. tor_free(family_line);
  2801. tor_free(onion_pkey);
  2802. tor_free(identity_pkey);
  2803. tor_free(extra_or_address);
  2804. tor_free(ed_cert_line);
  2805. tor_free(rsa_tap_cc_line);
  2806. tor_free(ntor_cc_line);
  2807. tor_free(extra_info_line);
  2808. tor_free(proto_line);
  2809. return output;
  2810. }
  2811. /**
  2812. * OR only: Given <b>router</b>, produce a string with its exit policy.
  2813. * If <b>include_ipv4</b> is true, include IPv4 entries.
  2814. * If <b>include_ipv6</b> is true, include IPv6 entries.
  2815. */
  2816. char *
  2817. router_dump_exit_policy_to_string(const routerinfo_t *router,
  2818. int include_ipv4,
  2819. int include_ipv6)
  2820. {
  2821. if ((!router->exit_policy) || (router->policy_is_reject_star)) {
  2822. return tor_strdup("reject *:*");
  2823. }
  2824. return policy_dump_to_string(router->exit_policy,
  2825. include_ipv4,
  2826. include_ipv6);
  2827. }
  2828. /** Copy the primary (IPv4) OR port (IP address and TCP port) for
  2829. * <b>router</b> into *<b>ap_out</b>. */
  2830. void
  2831. router_get_prim_orport(const routerinfo_t *router, tor_addr_port_t *ap_out)
  2832. {
  2833. tor_assert(ap_out != NULL);
  2834. tor_addr_from_ipv4h(&ap_out->addr, router->addr);
  2835. ap_out->port = router->or_port;
  2836. }
  2837. /** Return 1 if any of <b>router</b>'s addresses are <b>addr</b>.
  2838. * Otherwise return 0. */
  2839. int
  2840. router_has_addr(const routerinfo_t *router, const tor_addr_t *addr)
  2841. {
  2842. return
  2843. tor_addr_eq_ipv4h(addr, router->addr) ||
  2844. tor_addr_eq(&router->ipv6_addr, addr);
  2845. }
  2846. int
  2847. router_has_orport(const routerinfo_t *router, const tor_addr_port_t *orport)
  2848. {
  2849. return
  2850. (tor_addr_eq_ipv4h(&orport->addr, router->addr) &&
  2851. orport->port == router->or_port) ||
  2852. (tor_addr_eq(&orport->addr, &router->ipv6_addr) &&
  2853. orport->port == router->ipv6_orport);
  2854. }
  2855. /** Load the contents of <b>filename</b>, find the last line starting with
  2856. * <b>end_line</b>, ensure that its timestamp is not more than 25 hours in
  2857. * the past or more than 1 hour in the future with respect to <b>now</b>,
  2858. * and write the file contents starting with that line to *<b>out</b>.
  2859. * Return 1 for success, 0 if the file does not exist or is empty, or -1
  2860. * if the file does not contain a line matching these criteria or other
  2861. * failure. */
  2862. static int
  2863. load_stats_file(const char *filename, const char *end_line, time_t now,
  2864. char **out)
  2865. {
  2866. int r = -1;
  2867. char *fname = get_datadir_fname(filename);
  2868. char *contents, *start = NULL, *tmp, timestr[ISO_TIME_LEN+1];
  2869. time_t written;
  2870. switch (file_status(fname)) {
  2871. case FN_FILE:
  2872. /* X022 Find an alternative to reading the whole file to memory. */
  2873. if ((contents = read_file_to_str(fname, 0, NULL))) {
  2874. tmp = strstr(contents, end_line);
  2875. /* Find last block starting with end_line */
  2876. while (tmp) {
  2877. start = tmp;
  2878. tmp = strstr(tmp + 1, end_line);
  2879. }
  2880. if (!start)
  2881. goto notfound;
  2882. if (strlen(start) < strlen(end_line) + 1 + sizeof(timestr))
  2883. goto notfound;
  2884. strlcpy(timestr, start + 1 + strlen(end_line), sizeof(timestr));
  2885. if (parse_iso_time(timestr, &written) < 0)
  2886. goto notfound;
  2887. if (written < now - (25*60*60) || written > now + (1*60*60))
  2888. goto notfound;
  2889. *out = tor_strdup(start);
  2890. r = 1;
  2891. }
  2892. notfound:
  2893. tor_free(contents);
  2894. break;
  2895. /* treat empty stats files as if the file doesn't exist */
  2896. case FN_NOENT:
  2897. case FN_EMPTY:
  2898. r = 0;
  2899. break;
  2900. case FN_ERROR:
  2901. case FN_DIR:
  2902. default:
  2903. break;
  2904. }
  2905. tor_free(fname);
  2906. return r;
  2907. }
  2908. /** Write the contents of <b>extrainfo</b> and aggregated statistics to
  2909. * *<b>s_out</b>, signing them with <b>ident_key</b>. Return 0 on
  2910. * success, negative on failure. */
  2911. int
  2912. extrainfo_dump_to_string(char **s_out, extrainfo_t *extrainfo,
  2913. crypto_pk_t *ident_key,
  2914. const ed25519_keypair_t *signing_keypair)
  2915. {
  2916. const or_options_t *options = get_options();
  2917. char identity[HEX_DIGEST_LEN+1];
  2918. char published[ISO_TIME_LEN+1];
  2919. char digest[DIGEST_LEN];
  2920. char *bandwidth_usage;
  2921. int result;
  2922. static int write_stats_to_extrainfo = 1;
  2923. char sig[DIROBJ_MAX_SIG_LEN+1];
  2924. char *s = NULL, *pre, *contents, *cp, *s_dup = NULL;
  2925. time_t now = time(NULL);
  2926. smartlist_t *chunks = smartlist_new();
  2927. extrainfo_t *ei_tmp = NULL;
  2928. const int emit_ed_sigs = signing_keypair &&
  2929. extrainfo->cache_info.signing_key_cert;
  2930. char *ed_cert_line = NULL;
  2931. base16_encode(identity, sizeof(identity),
  2932. extrainfo->cache_info.identity_digest, DIGEST_LEN);
  2933. format_iso_time(published, extrainfo->cache_info.published_on);
  2934. bandwidth_usage = rep_hist_get_bandwidth_lines();
  2935. if (emit_ed_sigs) {
  2936. if (!extrainfo->cache_info.signing_key_cert->signing_key_included ||
  2937. !ed25519_pubkey_eq(&extrainfo->cache_info.signing_key_cert->signed_key,
  2938. &signing_keypair->pubkey)) {
  2939. log_warn(LD_BUG, "Tried to sign a extrainfo descriptor with a "
  2940. "mismatched ed25519 key chain %d",
  2941. extrainfo->cache_info.signing_key_cert->signing_key_included);
  2942. goto err;
  2943. }
  2944. char ed_cert_base64[256];
  2945. if (base64_encode(ed_cert_base64, sizeof(ed_cert_base64),
  2946. (const char*)extrainfo->cache_info.signing_key_cert->encoded,
  2947. extrainfo->cache_info.signing_key_cert->encoded_len,
  2948. BASE64_ENCODE_MULTILINE) < 0) {
  2949. log_err(LD_BUG,"Couldn't base64-encode signing key certificate!");
  2950. goto err;
  2951. }
  2952. tor_asprintf(&ed_cert_line, "identity-ed25519\n"
  2953. "-----BEGIN ED25519 CERT-----\n"
  2954. "%s"
  2955. "-----END ED25519 CERT-----\n", ed_cert_base64);
  2956. } else {
  2957. ed_cert_line = tor_strdup("");
  2958. }
  2959. tor_asprintf(&pre, "extra-info %s %s\n%spublished %s\n%s",
  2960. extrainfo->nickname, identity,
  2961. ed_cert_line,
  2962. published, bandwidth_usage);
  2963. smartlist_add(chunks, pre);
  2964. if (geoip_is_loaded(AF_INET))
  2965. smartlist_add_asprintf(chunks, "geoip-db-digest %s\n",
  2966. geoip_db_digest(AF_INET));
  2967. if (geoip_is_loaded(AF_INET6))
  2968. smartlist_add_asprintf(chunks, "geoip6-db-digest %s\n",
  2969. geoip_db_digest(AF_INET6));
  2970. if (options->ExtraInfoStatistics && write_stats_to_extrainfo) {
  2971. log_info(LD_GENERAL, "Adding stats to extra-info descriptor.");
  2972. if (options->DirReqStatistics &&
  2973. load_stats_file("stats"PATH_SEPARATOR"dirreq-stats",
  2974. "dirreq-stats-end", now, &contents) > 0) {
  2975. smartlist_add(chunks, contents);
  2976. }
  2977. if (options->HiddenServiceStatistics &&
  2978. load_stats_file("stats"PATH_SEPARATOR"hidserv-stats",
  2979. "hidserv-stats-end", now, &contents) > 0) {
  2980. smartlist_add(chunks, contents);
  2981. }
  2982. if (options->EntryStatistics &&
  2983. load_stats_file("stats"PATH_SEPARATOR"entry-stats",
  2984. "entry-stats-end", now, &contents) > 0) {
  2985. smartlist_add(chunks, contents);
  2986. }
  2987. if (options->CellStatistics &&
  2988. load_stats_file("stats"PATH_SEPARATOR"buffer-stats",
  2989. "cell-stats-end", now, &contents) > 0) {
  2990. smartlist_add(chunks, contents);
  2991. }
  2992. if (options->ExitPortStatistics &&
  2993. load_stats_file("stats"PATH_SEPARATOR"exit-stats",
  2994. "exit-stats-end", now, &contents) > 0) {
  2995. smartlist_add(chunks, contents);
  2996. }
  2997. if (options->ConnDirectionStatistics &&
  2998. load_stats_file("stats"PATH_SEPARATOR"conn-stats",
  2999. "conn-bi-direct", now, &contents) > 0) {
  3000. smartlist_add(chunks, contents);
  3001. }
  3002. }
  3003. /* Add information about the pluggable transports we support. */
  3004. if (options->ServerTransportPlugin) {
  3005. char *pluggable_transports = pt_get_extra_info_descriptor_string();
  3006. if (pluggable_transports)
  3007. smartlist_add(chunks, pluggable_transports);
  3008. }
  3009. if (should_record_bridge_info(options) && write_stats_to_extrainfo) {
  3010. const char *bridge_stats = geoip_get_bridge_stats_extrainfo(now);
  3011. if (bridge_stats) {
  3012. smartlist_add_strdup(chunks, bridge_stats);
  3013. }
  3014. }
  3015. if (emit_ed_sigs) {
  3016. char sha256_digest[DIGEST256_LEN];
  3017. smartlist_add_strdup(chunks, "router-sig-ed25519 ");
  3018. crypto_digest_smartlist_prefix(sha256_digest, DIGEST256_LEN,
  3019. ED_DESC_SIGNATURE_PREFIX,
  3020. chunks, "", DIGEST_SHA256);
  3021. ed25519_signature_t ed_sig;
  3022. char buf[ED25519_SIG_BASE64_LEN+1];
  3023. if (ed25519_sign(&ed_sig, (const uint8_t*)sha256_digest, DIGEST256_LEN,
  3024. signing_keypair) < 0)
  3025. goto err;
  3026. if (ed25519_signature_to_base64(buf, &ed_sig) < 0)
  3027. goto err;
  3028. smartlist_add_asprintf(chunks, "%s\n", buf);
  3029. }
  3030. smartlist_add_strdup(chunks, "router-signature\n");
  3031. s = smartlist_join_strings(chunks, "", 0, NULL);
  3032. while (strlen(s) > MAX_EXTRAINFO_UPLOAD_SIZE - DIROBJ_MAX_SIG_LEN) {
  3033. /* So long as there are at least two chunks (one for the initial
  3034. * extra-info line and one for the router-signature), we can keep removing
  3035. * things. */
  3036. if (smartlist_len(chunks) > 2) {
  3037. /* We remove the next-to-last element (remember, len-1 is the last
  3038. element), since we need to keep the router-signature element. */
  3039. int idx = smartlist_len(chunks) - 2;
  3040. char *e = smartlist_get(chunks, idx);
  3041. smartlist_del_keeporder(chunks, idx);
  3042. log_warn(LD_GENERAL, "We just generated an extra-info descriptor "
  3043. "with statistics that exceeds the 50 KB "
  3044. "upload limit. Removing last added "
  3045. "statistics.");
  3046. tor_free(e);
  3047. tor_free(s);
  3048. s = smartlist_join_strings(chunks, "", 0, NULL);
  3049. } else {
  3050. log_warn(LD_BUG, "We just generated an extra-info descriptors that "
  3051. "exceeds the 50 KB upload limit.");
  3052. goto err;
  3053. }
  3054. }
  3055. memset(sig, 0, sizeof(sig));
  3056. if (router_get_extrainfo_hash(s, strlen(s), digest) < 0 ||
  3057. router_append_dirobj_signature(sig, sizeof(sig), digest, DIGEST_LEN,
  3058. ident_key) < 0) {
  3059. log_warn(LD_BUG, "Could not append signature to extra-info "
  3060. "descriptor.");
  3061. goto err;
  3062. }
  3063. smartlist_add_strdup(chunks, sig);
  3064. tor_free(s);
  3065. s = smartlist_join_strings(chunks, "", 0, NULL);
  3066. cp = s_dup = tor_strdup(s);
  3067. ei_tmp = extrainfo_parse_entry_from_string(cp, NULL, 1, NULL, NULL);
  3068. if (!ei_tmp) {
  3069. if (write_stats_to_extrainfo) {
  3070. log_warn(LD_GENERAL, "We just generated an extra-info descriptor "
  3071. "with statistics that we can't parse. Not "
  3072. "adding statistics to this or any future "
  3073. "extra-info descriptors.");
  3074. write_stats_to_extrainfo = 0;
  3075. result = extrainfo_dump_to_string(s_out, extrainfo, ident_key,
  3076. signing_keypair);
  3077. goto done;
  3078. } else {
  3079. log_warn(LD_BUG, "We just generated an extrainfo descriptor we "
  3080. "can't parse.");
  3081. goto err;
  3082. }
  3083. }
  3084. *s_out = s;
  3085. s = NULL; /* prevent free */
  3086. result = 0;
  3087. goto done;
  3088. err:
  3089. result = -1;
  3090. done:
  3091. tor_free(s);
  3092. SMARTLIST_FOREACH(chunks, char *, chunk, tor_free(chunk));
  3093. smartlist_free(chunks);
  3094. tor_free(s_dup);
  3095. tor_free(ed_cert_line);
  3096. extrainfo_free(ei_tmp);
  3097. tor_free(bandwidth_usage);
  3098. return result;
  3099. }
  3100. /** Return true iff <b>s</b> is a valid server nickname. (That is, a string
  3101. * containing between 1 and MAX_NICKNAME_LEN characters from
  3102. * LEGAL_NICKNAME_CHARACTERS.) */
  3103. int
  3104. is_legal_nickname(const char *s)
  3105. {
  3106. size_t len;
  3107. tor_assert(s);
  3108. len = strlen(s);
  3109. return len > 0 && len <= MAX_NICKNAME_LEN &&
  3110. strspn(s,LEGAL_NICKNAME_CHARACTERS) == len;
  3111. }
  3112. /** Return true iff <b>s</b> is a valid server nickname or
  3113. * hex-encoded identity-key digest. */
  3114. int
  3115. is_legal_nickname_or_hexdigest(const char *s)
  3116. {
  3117. if (*s!='$')
  3118. return is_legal_nickname(s);
  3119. else
  3120. return is_legal_hexdigest(s);
  3121. }
  3122. /** Return true iff <b>s</b> is a valid hex-encoded identity-key
  3123. * digest. (That is, an optional $, followed by 40 hex characters,
  3124. * followed by either nothing, or = or ~ followed by a nickname, or
  3125. * a character other than =, ~, or a hex character.)
  3126. */
  3127. int
  3128. is_legal_hexdigest(const char *s)
  3129. {
  3130. size_t len;
  3131. tor_assert(s);
  3132. if (s[0] == '$') s++;
  3133. len = strlen(s);
  3134. if (len > HEX_DIGEST_LEN) {
  3135. if (s[HEX_DIGEST_LEN] == '=' ||
  3136. s[HEX_DIGEST_LEN] == '~') {
  3137. if (!is_legal_nickname(s+HEX_DIGEST_LEN+1))
  3138. return 0;
  3139. } else {
  3140. return 0;
  3141. }
  3142. }
  3143. return (len >= HEX_DIGEST_LEN &&
  3144. strspn(s,HEX_CHARACTERS)==HEX_DIGEST_LEN);
  3145. }
  3146. /** Use <b>buf</b> (which must be at least NODE_DESC_BUF_LEN bytes long) to
  3147. * hold a human-readable description of a node with identity digest
  3148. * <b>id_digest</b>, named-status <b>is_named</b>, nickname <b>nickname</b>,
  3149. * and address <b>addr</b> or <b>addr32h</b>.
  3150. *
  3151. * The <b>nickname</b> and <b>addr</b> fields are optional and may be set to
  3152. * NULL. The <b>addr32h</b> field is optional and may be set to 0.
  3153. *
  3154. * Return a pointer to the front of <b>buf</b>.
  3155. */
  3156. const char *
  3157. format_node_description(char *buf,
  3158. const char *id_digest,
  3159. int is_named,
  3160. const char *nickname,
  3161. const tor_addr_t *addr,
  3162. uint32_t addr32h)
  3163. {
  3164. char *cp;
  3165. if (!buf)
  3166. return "<NULL BUFFER>";
  3167. buf[0] = '$';
  3168. base16_encode(buf+1, HEX_DIGEST_LEN+1, id_digest, DIGEST_LEN);
  3169. cp = buf+1+HEX_DIGEST_LEN;
  3170. if (nickname) {
  3171. buf[1+HEX_DIGEST_LEN] = is_named ? '=' : '~';
  3172. strlcpy(buf+1+HEX_DIGEST_LEN+1, nickname, MAX_NICKNAME_LEN+1);
  3173. cp += strlen(cp);
  3174. }
  3175. if (addr32h || addr) {
  3176. memcpy(cp, " at ", 4);
  3177. cp += 4;
  3178. if (addr) {
  3179. tor_addr_to_str(cp, addr, TOR_ADDR_BUF_LEN, 0);
  3180. } else {
  3181. struct in_addr in;
  3182. in.s_addr = htonl(addr32h);
  3183. tor_inet_ntoa(&in, cp, INET_NTOA_BUF_LEN);
  3184. }
  3185. }
  3186. return buf;
  3187. }
  3188. /** Use <b>buf</b> (which must be at least NODE_DESC_BUF_LEN bytes long) to
  3189. * hold a human-readable description of <b>ri</b>.
  3190. *
  3191. *
  3192. * Return a pointer to the front of <b>buf</b>.
  3193. */
  3194. const char *
  3195. router_get_description(char *buf, const routerinfo_t *ri)
  3196. {
  3197. if (!ri)
  3198. return "<null>";
  3199. return format_node_description(buf,
  3200. ri->cache_info.identity_digest,
  3201. router_is_named(ri),
  3202. ri->nickname,
  3203. NULL,
  3204. ri->addr);
  3205. }
  3206. /** Use <b>buf</b> (which must be at least NODE_DESC_BUF_LEN bytes long) to
  3207. * hold a human-readable description of <b>node</b>.
  3208. *
  3209. * Return a pointer to the front of <b>buf</b>.
  3210. */
  3211. const char *
  3212. node_get_description(char *buf, const node_t *node)
  3213. {
  3214. const char *nickname = NULL;
  3215. uint32_t addr32h = 0;
  3216. int is_named = 0;
  3217. if (!node)
  3218. return "<null>";
  3219. if (node->rs) {
  3220. nickname = node->rs->nickname;
  3221. is_named = node->rs->is_named;
  3222. addr32h = node->rs->addr;
  3223. } else if (node->ri) {
  3224. nickname = node->ri->nickname;
  3225. addr32h = node->ri->addr;
  3226. }
  3227. return format_node_description(buf,
  3228. node->identity,
  3229. is_named,
  3230. nickname,
  3231. NULL,
  3232. addr32h);
  3233. }
  3234. /** Use <b>buf</b> (which must be at least NODE_DESC_BUF_LEN bytes long) to
  3235. * hold a human-readable description of <b>rs</b>.
  3236. *
  3237. * Return a pointer to the front of <b>buf</b>.
  3238. */
  3239. const char *
  3240. routerstatus_get_description(char *buf, const routerstatus_t *rs)
  3241. {
  3242. if (!rs)
  3243. return "<null>";
  3244. return format_node_description(buf,
  3245. rs->identity_digest,
  3246. rs->is_named,
  3247. rs->nickname,
  3248. NULL,
  3249. rs->addr);
  3250. }
  3251. /** Use <b>buf</b> (which must be at least NODE_DESC_BUF_LEN bytes long) to
  3252. * hold a human-readable description of <b>ei</b>.
  3253. *
  3254. * Return a pointer to the front of <b>buf</b>.
  3255. */
  3256. const char *
  3257. extend_info_get_description(char *buf, const extend_info_t *ei)
  3258. {
  3259. if (!ei)
  3260. return "<null>";
  3261. return format_node_description(buf,
  3262. ei->identity_digest,
  3263. 0,
  3264. ei->nickname,
  3265. &ei->addr,
  3266. 0);
  3267. }
  3268. /** Return a human-readable description of the routerinfo_t <b>ri</b>.
  3269. *
  3270. * This function is not thread-safe. Each call to this function invalidates
  3271. * previous values returned by this function.
  3272. */
  3273. const char *
  3274. router_describe(const routerinfo_t *ri)
  3275. {
  3276. static char buf[NODE_DESC_BUF_LEN];
  3277. return router_get_description(buf, ri);
  3278. }
  3279. /** Return a human-readable description of the node_t <b>node</b>.
  3280. *
  3281. * This function is not thread-safe. Each call to this function invalidates
  3282. * previous values returned by this function.
  3283. */
  3284. const char *
  3285. node_describe(const node_t *node)
  3286. {
  3287. static char buf[NODE_DESC_BUF_LEN];
  3288. return node_get_description(buf, node);
  3289. }
  3290. /** Return a human-readable description of the routerstatus_t <b>rs</b>.
  3291. *
  3292. * This function is not thread-safe. Each call to this function invalidates
  3293. * previous values returned by this function.
  3294. */
  3295. const char *
  3296. routerstatus_describe(const routerstatus_t *rs)
  3297. {
  3298. static char buf[NODE_DESC_BUF_LEN];
  3299. return routerstatus_get_description(buf, rs);
  3300. }
  3301. /** Return a human-readable description of the extend_info_t <b>ri</b>.
  3302. *
  3303. * This function is not thread-safe. Each call to this function invalidates
  3304. * previous values returned by this function.
  3305. */
  3306. const char *
  3307. extend_info_describe(const extend_info_t *ei)
  3308. {
  3309. static char buf[NODE_DESC_BUF_LEN];
  3310. return extend_info_get_description(buf, ei);
  3311. }
  3312. /** Set <b>buf</b> (which must have MAX_VERBOSE_NICKNAME_LEN+1 bytes) to the
  3313. * verbose representation of the identity of <b>router</b>. The format is:
  3314. * A dollar sign.
  3315. * The upper-case hexadecimal encoding of the SHA1 hash of router's identity.
  3316. * A "=" if the router is named; a "~" if it is not.
  3317. * The router's nickname.
  3318. **/
  3319. void
  3320. router_get_verbose_nickname(char *buf, const routerinfo_t *router)
  3321. {
  3322. const char *good_digest = networkstatus_get_router_digest_by_nickname(
  3323. router->nickname);
  3324. int is_named = good_digest && tor_memeq(good_digest,
  3325. router->cache_info.identity_digest,
  3326. DIGEST_LEN);
  3327. buf[0] = '$';
  3328. base16_encode(buf+1, HEX_DIGEST_LEN+1, router->cache_info.identity_digest,
  3329. DIGEST_LEN);
  3330. buf[1+HEX_DIGEST_LEN] = is_named ? '=' : '~';
  3331. strlcpy(buf+1+HEX_DIGEST_LEN+1, router->nickname, MAX_NICKNAME_LEN+1);
  3332. }
  3333. /** Forget that we have issued any router-related warnings, so that we'll
  3334. * warn again if we see the same errors. */
  3335. void
  3336. router_reset_warnings(void)
  3337. {
  3338. if (warned_nonexistent_family) {
  3339. SMARTLIST_FOREACH(warned_nonexistent_family, char *, cp, tor_free(cp));
  3340. smartlist_clear(warned_nonexistent_family);
  3341. }
  3342. }
  3343. /** Given a router purpose, convert it to a string. Don't call this on
  3344. * ROUTER_PURPOSE_UNKNOWN: The whole point of that value is that we don't
  3345. * know its string representation. */
  3346. const char *
  3347. router_purpose_to_string(uint8_t p)
  3348. {
  3349. switch (p)
  3350. {
  3351. case ROUTER_PURPOSE_GENERAL: return "general";
  3352. case ROUTER_PURPOSE_BRIDGE: return "bridge";
  3353. case ROUTER_PURPOSE_CONTROLLER: return "controller";
  3354. default:
  3355. tor_assert(0);
  3356. }
  3357. return NULL;
  3358. }
  3359. /** Given a string, convert it to a router purpose. */
  3360. uint8_t
  3361. router_purpose_from_string(const char *s)
  3362. {
  3363. if (!strcmp(s, "general"))
  3364. return ROUTER_PURPOSE_GENERAL;
  3365. else if (!strcmp(s, "bridge"))
  3366. return ROUTER_PURPOSE_BRIDGE;
  3367. else if (!strcmp(s, "controller"))
  3368. return ROUTER_PURPOSE_CONTROLLER;
  3369. else
  3370. return ROUTER_PURPOSE_UNKNOWN;
  3371. }
  3372. /** Release all static resources held in router.c */
  3373. void
  3374. router_free_all(void)
  3375. {
  3376. crypto_pk_free(onionkey);
  3377. crypto_pk_free(lastonionkey);
  3378. crypto_pk_free(server_identitykey);
  3379. crypto_pk_free(client_identitykey);
  3380. tor_mutex_free(key_lock);
  3381. routerinfo_free(desc_routerinfo);
  3382. extrainfo_free(desc_extrainfo);
  3383. crypto_pk_free(authority_signing_key);
  3384. authority_cert_free(authority_key_certificate);
  3385. crypto_pk_free(legacy_signing_key);
  3386. authority_cert_free(legacy_key_certificate);
  3387. memwipe(&curve25519_onion_key, 0, sizeof(curve25519_onion_key));
  3388. memwipe(&last_curve25519_onion_key, 0, sizeof(last_curve25519_onion_key));
  3389. if (warned_nonexistent_family) {
  3390. SMARTLIST_FOREACH(warned_nonexistent_family, char *, cp, tor_free(cp));
  3391. smartlist_free(warned_nonexistent_family);
  3392. }
  3393. }
  3394. /** Return a smartlist of tor_addr_port_t's with all the OR ports of
  3395. <b>ri</b>. Note that freeing of the items in the list as well as
  3396. the smartlist itself is the callers responsibility. */
  3397. smartlist_t *
  3398. router_get_all_orports(const routerinfo_t *ri)
  3399. {
  3400. tor_assert(ri);
  3401. node_t fake_node;
  3402. memset(&fake_node, 0, sizeof(fake_node));
  3403. /* we don't modify ri, fake_node is passed as a const node_t *
  3404. */
  3405. fake_node.ri = (routerinfo_t *)ri;
  3406. return node_get_all_orports(&fake_node);
  3407. }