connection.c 135 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) 2007-2011, The Tor Project, Inc. */
  5. /* See LICENSE for licensing information */
  6. /**
  7. * \file connection.c
  8. * \brief General high-level functions to handle reading and writing
  9. * on connections.
  10. **/
  11. #include "or.h"
  12. #include "buffers.h"
  13. #include "circuitbuild.h"
  14. #include "circuitlist.h"
  15. #include "circuituse.h"
  16. #include "config.h"
  17. #include "connection.h"
  18. #include "connection_edge.h"
  19. #include "connection_or.h"
  20. #include "control.h"
  21. #include "cpuworker.h"
  22. #include "directory.h"
  23. #include "dirserv.h"
  24. #include "dns.h"
  25. #include "dnsserv.h"
  26. #include "geoip.h"
  27. #include "main.h"
  28. #include "policies.h"
  29. #include "reasons.h"
  30. #include "relay.h"
  31. #include "rendclient.h"
  32. #include "rendcommon.h"
  33. #include "rephist.h"
  34. #include "router.h"
  35. #include "routerparse.h"
  36. #ifdef USE_BUFFEREVENTS
  37. #include <event2/event.h>
  38. #endif
  39. static connection_t *connection_create_listener(
  40. const struct sockaddr *listensockaddr,
  41. socklen_t listensocklen, int type,
  42. const char *address,
  43. const port_cfg_t *portcfg);
  44. static void connection_init(time_t now, connection_t *conn, int type,
  45. int socket_family);
  46. static int connection_init_accepted_conn(connection_t *conn,
  47. const listener_connection_t *listener);
  48. static int connection_handle_listener_read(connection_t *conn, int new_type);
  49. #ifndef USE_BUFFEREVENTS
  50. static int connection_bucket_should_increase(int bucket,
  51. or_connection_t *conn);
  52. #endif
  53. static int connection_finished_flushing(connection_t *conn);
  54. static int connection_flushed_some(connection_t *conn);
  55. static int connection_finished_connecting(connection_t *conn);
  56. static int connection_reached_eof(connection_t *conn);
  57. static int connection_read_to_buf(connection_t *conn, ssize_t *max_to_read,
  58. int *socket_error);
  59. static int connection_process_inbuf(connection_t *conn, int package_partial);
  60. static void client_check_address_changed(tor_socket_t sock);
  61. static void set_constrained_socket_buffers(tor_socket_t sock, int size);
  62. static const char *connection_proxy_state_to_string(int state);
  63. static int connection_read_https_proxy_response(connection_t *conn);
  64. static void connection_send_socks5_connect(connection_t *conn);
  65. static const char *proxy_type_to_string(int proxy_type);
  66. static int get_proxy_type(void);
  67. /** The last IPv4 address that our network interface seemed to have been
  68. * binding to, in host order. We use this to detect when our IP changes. */
  69. static uint32_t last_interface_ip = 0;
  70. /** A list of uint32_ts for addresses we've used in outgoing connections.
  71. * Used to detect IP address changes. */
  72. static smartlist_t *outgoing_addrs = NULL;
  73. #define CASE_ANY_LISTENER_TYPE \
  74. case CONN_TYPE_OR_LISTENER: \
  75. case CONN_TYPE_AP_LISTENER: \
  76. case CONN_TYPE_DIR_LISTENER: \
  77. case CONN_TYPE_CONTROL_LISTENER: \
  78. case CONN_TYPE_AP_TRANS_LISTENER: \
  79. case CONN_TYPE_AP_NATD_LISTENER: \
  80. case CONN_TYPE_AP_DNS_LISTENER
  81. /**************************************************************/
  82. /**
  83. * Return the human-readable name for the connection type <b>type</b>
  84. */
  85. const char *
  86. conn_type_to_string(int type)
  87. {
  88. static char buf[64];
  89. switch (type) {
  90. case CONN_TYPE_OR_LISTENER: return "OR listener";
  91. case CONN_TYPE_OR: return "OR";
  92. case CONN_TYPE_EXIT: return "Exit";
  93. case CONN_TYPE_AP_LISTENER: return "Socks listener";
  94. case CONN_TYPE_AP_TRANS_LISTENER:
  95. return "Transparent pf/netfilter listener";
  96. case CONN_TYPE_AP_NATD_LISTENER: return "Transparent natd listener";
  97. case CONN_TYPE_AP_DNS_LISTENER: return "DNS listener";
  98. case CONN_TYPE_AP: return "Socks";
  99. case CONN_TYPE_DIR_LISTENER: return "Directory listener";
  100. case CONN_TYPE_DIR: return "Directory";
  101. case CONN_TYPE_CPUWORKER: return "CPU worker";
  102. case CONN_TYPE_CONTROL_LISTENER: return "Control listener";
  103. case CONN_TYPE_CONTROL: return "Control";
  104. default:
  105. log_warn(LD_BUG, "unknown connection type %d", type);
  106. tor_snprintf(buf, sizeof(buf), "unknown [%d]", type);
  107. return buf;
  108. }
  109. }
  110. /**
  111. * Return the human-readable name for the connection state <b>state</b>
  112. * for the connection type <b>type</b>
  113. */
  114. const char *
  115. conn_state_to_string(int type, int state)
  116. {
  117. static char buf[96];
  118. switch (type) {
  119. CASE_ANY_LISTENER_TYPE:
  120. if (state == LISTENER_STATE_READY)
  121. return "ready";
  122. break;
  123. case CONN_TYPE_OR:
  124. switch (state) {
  125. case OR_CONN_STATE_CONNECTING: return "connect()ing";
  126. case OR_CONN_STATE_PROXY_HANDSHAKING: return "handshaking (proxy)";
  127. case OR_CONN_STATE_TLS_HANDSHAKING: return "handshaking (TLS)";
  128. case OR_CONN_STATE_TLS_CLIENT_RENEGOTIATING:
  129. return "renegotiating (TLS)";
  130. case OR_CONN_STATE_TLS_SERVER_RENEGOTIATING:
  131. return "waiting for renegotiation (TLS)";
  132. case OR_CONN_STATE_OR_HANDSHAKING: return "handshaking (Tor)";
  133. case OR_CONN_STATE_OPEN: return "open";
  134. }
  135. break;
  136. case CONN_TYPE_EXIT:
  137. switch (state) {
  138. case EXIT_CONN_STATE_RESOLVING: return "waiting for dest info";
  139. case EXIT_CONN_STATE_CONNECTING: return "connecting";
  140. case EXIT_CONN_STATE_OPEN: return "open";
  141. case EXIT_CONN_STATE_RESOLVEFAILED: return "resolve failed";
  142. }
  143. break;
  144. case CONN_TYPE_AP:
  145. switch (state) {
  146. case AP_CONN_STATE_SOCKS_WAIT: return "waiting for socks info";
  147. case AP_CONN_STATE_NATD_WAIT: return "waiting for natd dest info";
  148. case AP_CONN_STATE_RENDDESC_WAIT: return "waiting for rendezvous desc";
  149. case AP_CONN_STATE_CONTROLLER_WAIT: return "waiting for controller";
  150. case AP_CONN_STATE_CIRCUIT_WAIT: return "waiting for circuit";
  151. case AP_CONN_STATE_CONNECT_WAIT: return "waiting for connect response";
  152. case AP_CONN_STATE_RESOLVE_WAIT: return "waiting for resolve response";
  153. case AP_CONN_STATE_OPEN: return "open";
  154. }
  155. break;
  156. case CONN_TYPE_DIR:
  157. switch (state) {
  158. case DIR_CONN_STATE_CONNECTING: return "connecting";
  159. case DIR_CONN_STATE_CLIENT_SENDING: return "client sending";
  160. case DIR_CONN_STATE_CLIENT_READING: return "client reading";
  161. case DIR_CONN_STATE_CLIENT_FINISHED: return "client finished";
  162. case DIR_CONN_STATE_SERVER_COMMAND_WAIT: return "waiting for command";
  163. case DIR_CONN_STATE_SERVER_WRITING: return "writing";
  164. }
  165. break;
  166. case CONN_TYPE_CPUWORKER:
  167. switch (state) {
  168. case CPUWORKER_STATE_IDLE: return "idle";
  169. case CPUWORKER_STATE_BUSY_ONION: return "busy with onion";
  170. }
  171. break;
  172. case CONN_TYPE_CONTROL:
  173. switch (state) {
  174. case CONTROL_CONN_STATE_OPEN: return "open (protocol v1)";
  175. case CONTROL_CONN_STATE_NEEDAUTH:
  176. return "waiting for authentication (protocol v1)";
  177. }
  178. break;
  179. }
  180. log_warn(LD_BUG, "unknown connection state %d (type %d)", state, type);
  181. tor_snprintf(buf, sizeof(buf),
  182. "unknown state [%d] on unknown [%s] connection",
  183. state, conn_type_to_string(type));
  184. return buf;
  185. }
  186. #ifdef USE_BUFFEREVENTS
  187. /** Return true iff the connection's type is one that can use a
  188. bufferevent-based implementation. */
  189. int
  190. connection_type_uses_bufferevent(connection_t *conn)
  191. {
  192. switch (conn->type) {
  193. case CONN_TYPE_AP:
  194. case CONN_TYPE_EXIT:
  195. case CONN_TYPE_DIR:
  196. case CONN_TYPE_CONTROL:
  197. case CONN_TYPE_OR:
  198. case CONN_TYPE_CPUWORKER:
  199. return 1;
  200. default:
  201. return 0;
  202. }
  203. }
  204. #endif
  205. /** Allocate and return a new dir_connection_t, initialized as by
  206. * connection_init(). */
  207. dir_connection_t *
  208. dir_connection_new(int socket_family)
  209. {
  210. dir_connection_t *dir_conn = tor_malloc_zero(sizeof(dir_connection_t));
  211. connection_init(time(NULL), TO_CONN(dir_conn), CONN_TYPE_DIR, socket_family);
  212. return dir_conn;
  213. }
  214. /** Allocate and return a new or_connection_t, initialized as by
  215. * connection_init(). */
  216. or_connection_t *
  217. or_connection_new(int socket_family)
  218. {
  219. or_connection_t *or_conn = tor_malloc_zero(sizeof(or_connection_t));
  220. time_t now = time(NULL);
  221. connection_init(now, TO_CONN(or_conn), CONN_TYPE_OR, socket_family);
  222. or_conn->timestamp_last_added_nonpadding = time(NULL);
  223. or_conn->next_circ_id = crypto_rand_int(1<<15);
  224. or_conn->active_circuit_pqueue = smartlist_create();
  225. or_conn->active_circuit_pqueue_last_recalibrated = cell_ewma_get_tick();
  226. return or_conn;
  227. }
  228. /** Allocate and return a new entry_connection_t, initialized as by
  229. * connection_init(). */
  230. entry_connection_t *
  231. entry_connection_new(int type, int socket_family)
  232. {
  233. entry_connection_t *entry_conn = tor_malloc_zero(sizeof(entry_connection_t));
  234. tor_assert(type == CONN_TYPE_AP);
  235. connection_init(time(NULL), ENTRY_TO_CONN(entry_conn), type, socket_family);
  236. entry_conn->_edge.socks_request = socks_request_new();
  237. return entry_conn;
  238. }
  239. /** Allocate and return a new edge_connection_t, initialized as by
  240. * connection_init(). */
  241. edge_connection_t *
  242. edge_connection_new(int type, int socket_family)
  243. {
  244. edge_connection_t *edge_conn = tor_malloc_zero(sizeof(edge_connection_t));
  245. tor_assert(type == CONN_TYPE_EXIT);
  246. connection_init(time(NULL), TO_CONN(edge_conn), type, socket_family);
  247. return edge_conn;
  248. }
  249. /** Allocate and return a new control_connection_t, initialized as by
  250. * connection_init(). */
  251. control_connection_t *
  252. control_connection_new(int socket_family)
  253. {
  254. control_connection_t *control_conn =
  255. tor_malloc_zero(sizeof(control_connection_t));
  256. connection_init(time(NULL),
  257. TO_CONN(control_conn), CONN_TYPE_CONTROL, socket_family);
  258. log_notice(LD_CONTROL, "New control connection opened.");
  259. return control_conn;
  260. }
  261. /** Allocate and return a new listener_connection_t, initialized as by
  262. * connection_init(). */
  263. listener_connection_t *
  264. listener_connection_new(int type, int socket_family)
  265. {
  266. listener_connection_t *listener_conn =
  267. tor_malloc_zero(sizeof(listener_connection_t));
  268. connection_init(time(NULL), TO_CONN(listener_conn), type, socket_family);
  269. return listener_conn;
  270. }
  271. /** Allocate, initialize, and return a new connection_t subtype of <b>type</b>
  272. * to make or receive connections of address family <b>socket_family</b>. The
  273. * type should be one of the CONN_TYPE_* constants. */
  274. connection_t *
  275. connection_new(int type, int socket_family)
  276. {
  277. switch (type) {
  278. case CONN_TYPE_OR:
  279. return TO_CONN(or_connection_new(socket_family));
  280. case CONN_TYPE_EXIT:
  281. return TO_CONN(edge_connection_new(type, socket_family));
  282. case CONN_TYPE_AP:
  283. return ENTRY_TO_CONN(entry_connection_new(type, socket_family));
  284. case CONN_TYPE_DIR:
  285. return TO_CONN(dir_connection_new(socket_family));
  286. case CONN_TYPE_CONTROL:
  287. return TO_CONN(control_connection_new(socket_family));
  288. CASE_ANY_LISTENER_TYPE:
  289. return TO_CONN(listener_connection_new(type, socket_family));
  290. default: {
  291. connection_t *conn = tor_malloc_zero(sizeof(connection_t));
  292. connection_init(time(NULL), conn, type, socket_family);
  293. return conn;
  294. }
  295. }
  296. }
  297. /** Initializes conn. (you must call connection_add() to link it into the main
  298. * array).
  299. *
  300. * Set conn-\>type to <b>type</b>. Set conn-\>s and conn-\>conn_array_index to
  301. * -1 to signify they are not yet assigned.
  302. *
  303. * If conn is not a listener type, allocate buffers for it. If it's
  304. * an AP type, allocate space to store the socks_request.
  305. *
  306. * Assign a pseudorandom next_circ_id between 0 and 2**15.
  307. *
  308. * Initialize conn's timestamps to now.
  309. */
  310. static void
  311. connection_init(time_t now, connection_t *conn, int type, int socket_family)
  312. {
  313. static uint64_t n_connections_allocated = 1;
  314. switch (type) {
  315. case CONN_TYPE_OR:
  316. conn->magic = OR_CONNECTION_MAGIC;
  317. break;
  318. case CONN_TYPE_EXIT:
  319. conn->magic = ENTRY_CONNECTION_MAGIC;
  320. break;
  321. case CONN_TYPE_AP:
  322. conn->magic = EDGE_CONNECTION_MAGIC;
  323. break;
  324. case CONN_TYPE_DIR:
  325. conn->magic = DIR_CONNECTION_MAGIC;
  326. break;
  327. case CONN_TYPE_CONTROL:
  328. conn->magic = CONTROL_CONNECTION_MAGIC;
  329. break;
  330. CASE_ANY_LISTENER_TYPE:
  331. conn->magic = LISTENER_CONNECTION_MAGIC;
  332. break;
  333. default:
  334. conn->magic = BASE_CONNECTION_MAGIC;
  335. break;
  336. }
  337. conn->s = -1; /* give it a default of 'not used' */
  338. conn->conn_array_index = -1; /* also default to 'not used' */
  339. conn->global_identifier = n_connections_allocated++;
  340. conn->type = type;
  341. conn->socket_family = socket_family;
  342. #ifndef USE_BUFFEREVENTS
  343. if (!connection_is_listener(conn)) {
  344. /* listeners never use their buf */
  345. conn->inbuf = buf_new();
  346. conn->outbuf = buf_new();
  347. }
  348. #endif
  349. conn->timestamp_created = now;
  350. conn->timestamp_lastread = now;
  351. conn->timestamp_lastwritten = now;
  352. }
  353. /** Create a link between <b>conn_a</b> and <b>conn_b</b>. */
  354. void
  355. connection_link_connections(connection_t *conn_a, connection_t *conn_b)
  356. {
  357. tor_assert(conn_a->s < 0);
  358. tor_assert(conn_b->s < 0);
  359. conn_a->linked = 1;
  360. conn_b->linked = 1;
  361. conn_a->linked_conn = conn_b;
  362. conn_b->linked_conn = conn_a;
  363. }
  364. /** Deallocate memory used by <b>conn</b>. Deallocate its buffers if
  365. * necessary, close its socket if necessary, and mark the directory as dirty
  366. * if <b>conn</b> is an OR or OP connection.
  367. */
  368. static void
  369. _connection_free(connection_t *conn)
  370. {
  371. void *mem;
  372. size_t memlen;
  373. if (!conn)
  374. return;
  375. switch (conn->type) {
  376. case CONN_TYPE_OR:
  377. tor_assert(conn->magic == OR_CONNECTION_MAGIC);
  378. mem = TO_OR_CONN(conn);
  379. memlen = sizeof(or_connection_t);
  380. break;
  381. case CONN_TYPE_AP:
  382. tor_assert(conn->magic == ENTRY_CONNECTION_MAGIC);
  383. mem = TO_ENTRY_CONN(conn);
  384. memlen = sizeof(entry_connection_t);
  385. break;
  386. case CONN_TYPE_EXIT:
  387. tor_assert(conn->magic == EDGE_CONNECTION_MAGIC);
  388. mem = TO_EDGE_CONN(conn);
  389. memlen = sizeof(edge_connection_t);
  390. break;
  391. case CONN_TYPE_DIR:
  392. tor_assert(conn->magic == DIR_CONNECTION_MAGIC);
  393. mem = TO_DIR_CONN(conn);
  394. memlen = sizeof(dir_connection_t);
  395. break;
  396. case CONN_TYPE_CONTROL:
  397. tor_assert(conn->magic == CONTROL_CONNECTION_MAGIC);
  398. mem = TO_CONTROL_CONN(conn);
  399. memlen = sizeof(control_connection_t);
  400. break;
  401. CASE_ANY_LISTENER_TYPE:
  402. tor_assert(conn->magic == LISTENER_CONNECTION_MAGIC);
  403. mem = TO_LISTENER_CONN(conn);
  404. memlen = sizeof(listener_connection_t);
  405. break;
  406. default:
  407. tor_assert(conn->magic == BASE_CONNECTION_MAGIC);
  408. mem = conn;
  409. memlen = sizeof(connection_t);
  410. break;
  411. }
  412. if (conn->linked) {
  413. log_info(LD_GENERAL, "Freeing linked %s connection [%s] with %d "
  414. "bytes on inbuf, %d on outbuf.",
  415. conn_type_to_string(conn->type),
  416. conn_state_to_string(conn->type, conn->state),
  417. (int)connection_get_inbuf_len(conn),
  418. (int)connection_get_outbuf_len(conn));
  419. }
  420. if (!connection_is_listener(conn)) {
  421. buf_free(conn->inbuf);
  422. buf_free(conn->outbuf);
  423. } else {
  424. if (conn->socket_family == AF_UNIX) {
  425. /* For now only control ports can be Unix domain sockets
  426. * and listeners at the same time */
  427. tor_assert(conn->type == CONN_TYPE_CONTROL_LISTENER);
  428. if (unlink(conn->address) < 0 && errno != ENOENT) {
  429. log_warn(LD_NET, "Could not unlink %s: %s", conn->address,
  430. strerror(errno));
  431. }
  432. }
  433. }
  434. tor_free(conn->address);
  435. if (connection_speaks_cells(conn)) {
  436. or_connection_t *or_conn = TO_OR_CONN(conn);
  437. tor_tls_free(or_conn->tls);
  438. or_conn->tls = NULL;
  439. or_handshake_state_free(or_conn->handshake_state);
  440. or_conn->handshake_state = NULL;
  441. smartlist_free(or_conn->active_circuit_pqueue);
  442. tor_free(or_conn->nickname);
  443. }
  444. if (CONN_IS_EDGE(conn)) {
  445. edge_connection_t *edge_conn = TO_EDGE_CONN(conn);
  446. tor_free(edge_conn->chosen_exit_name);
  447. tor_free(edge_conn->original_dest_address);
  448. if (edge_conn->socks_request)
  449. socks_request_free(edge_conn->socks_request);
  450. if (edge_conn->pending_optimistic_data) {
  451. generic_buffer_free(edge_conn->pending_optimistic_data);
  452. }
  453. if (edge_conn->sending_optimistic_data) {
  454. generic_buffer_free(edge_conn->sending_optimistic_data);
  455. }
  456. rend_data_free(edge_conn->rend_data);
  457. }
  458. if (conn->type == CONN_TYPE_CONTROL) {
  459. control_connection_t *control_conn = TO_CONTROL_CONN(conn);
  460. tor_free(control_conn->incoming_cmd);
  461. }
  462. tor_free(conn->read_event); /* Probably already freed by connection_free. */
  463. tor_free(conn->write_event); /* Probably already freed by connection_free. */
  464. IF_HAS_BUFFEREVENT(conn, {
  465. /* This was a workaround to handle bugs in some old versions of libevent
  466. * where callbacks can occur after calling bufferevent_free(). Setting
  467. * the callbacks to NULL prevented this. It shouldn't be necessary any
  468. * more, but let's not tempt fate for now. */
  469. bufferevent_setcb(conn->bufev, NULL, NULL, NULL, NULL);
  470. bufferevent_free(conn->bufev);
  471. conn->bufev = NULL;
  472. });
  473. if (conn->type == CONN_TYPE_DIR) {
  474. dir_connection_t *dir_conn = TO_DIR_CONN(conn);
  475. tor_free(dir_conn->requested_resource);
  476. tor_zlib_free(dir_conn->zlib_state);
  477. if (dir_conn->fingerprint_stack) {
  478. SMARTLIST_FOREACH(dir_conn->fingerprint_stack, char *, cp, tor_free(cp));
  479. smartlist_free(dir_conn->fingerprint_stack);
  480. }
  481. cached_dir_decref(dir_conn->cached_dir);
  482. rend_data_free(dir_conn->rend_data);
  483. }
  484. if (SOCKET_OK(conn->s)) {
  485. log_debug(LD_NET,"closing fd %d.",(int)conn->s);
  486. tor_close_socket(conn->s);
  487. conn->s = -1;
  488. }
  489. if (conn->type == CONN_TYPE_OR &&
  490. !tor_digest_is_zero(TO_OR_CONN(conn)->identity_digest)) {
  491. log_warn(LD_BUG, "called on OR conn with non-zeroed identity_digest");
  492. connection_or_remove_from_identity_map(TO_OR_CONN(conn));
  493. }
  494. #ifdef USE_BUFFEREVENTS
  495. if (conn->type == CONN_TYPE_OR && TO_OR_CONN(conn)->bucket_cfg) {
  496. ev_token_bucket_cfg_free(TO_OR_CONN(conn)->bucket_cfg);
  497. }
  498. #endif
  499. memset(mem, 0xCC, memlen); /* poison memory */
  500. tor_free(mem);
  501. }
  502. /** Make sure <b>conn</b> isn't in any of the global conn lists; then free it.
  503. */
  504. void
  505. connection_free(connection_t *conn)
  506. {
  507. if (!conn)
  508. return;
  509. tor_assert(!connection_is_on_closeable_list(conn));
  510. tor_assert(!connection_in_array(conn));
  511. if (conn->linked_conn) {
  512. log_err(LD_BUG, "Called with conn->linked_conn still set.");
  513. tor_fragile_assert();
  514. conn->linked_conn->linked_conn = NULL;
  515. if (! conn->linked_conn->marked_for_close &&
  516. conn->linked_conn->reading_from_linked_conn)
  517. connection_start_reading(conn->linked_conn);
  518. conn->linked_conn = NULL;
  519. }
  520. if (connection_speaks_cells(conn)) {
  521. if (!tor_digest_is_zero(TO_OR_CONN(conn)->identity_digest)) {
  522. connection_or_remove_from_identity_map(TO_OR_CONN(conn));
  523. }
  524. }
  525. if (conn->type == CONN_TYPE_CONTROL) {
  526. connection_control_closed(TO_CONTROL_CONN(conn));
  527. }
  528. connection_unregister_events(conn);
  529. _connection_free(conn);
  530. }
  531. /** Call _connection_free() on every connection in our array, and release all
  532. * storage held by connection.c. This is used by cpuworkers and dnsworkers
  533. * when they fork, so they don't keep resources held open (especially
  534. * sockets).
  535. *
  536. * Don't do the checks in connection_free(), because they will
  537. * fail.
  538. */
  539. void
  540. connection_free_all(void)
  541. {
  542. smartlist_t *conns = get_connection_array();
  543. /* We don't want to log any messages to controllers. */
  544. SMARTLIST_FOREACH(conns, connection_t *, conn,
  545. if (conn->type == CONN_TYPE_CONTROL)
  546. TO_CONTROL_CONN(conn)->event_mask = 0);
  547. control_update_global_event_mask();
  548. /* Unlink everything from the identity map. */
  549. connection_or_clear_identity_map();
  550. /* Clear out our list of broken connections */
  551. clear_broken_connection_map(0);
  552. SMARTLIST_FOREACH(conns, connection_t *, conn, _connection_free(conn));
  553. if (outgoing_addrs) {
  554. SMARTLIST_FOREACH(outgoing_addrs, void*, addr, tor_free(addr));
  555. smartlist_free(outgoing_addrs);
  556. outgoing_addrs = NULL;
  557. }
  558. }
  559. /**
  560. * Called when we're about to finally unlink and free a connection:
  561. * perform necessary accounting and cleanup
  562. * - Directory conns that failed to fetch a rendezvous descriptor
  563. * need to inform pending rendezvous streams.
  564. * - OR conns need to call rep_hist_note_*() to record status.
  565. * - AP conns need to send a socks reject if necessary.
  566. * - Exit conns need to call connection_dns_remove() if necessary.
  567. * - AP and Exit conns need to send an end cell if they can.
  568. * - DNS conns need to fail any resolves that are pending on them.
  569. * - OR and edge connections need to be unlinked from circuits.
  570. */
  571. void
  572. connection_about_to_close_connection(connection_t *conn)
  573. {
  574. tor_assert(conn->marked_for_close);
  575. switch (conn->type) {
  576. case CONN_TYPE_DIR:
  577. connection_dir_about_to_close(TO_DIR_CONN(conn));
  578. break;
  579. case CONN_TYPE_OR:
  580. connection_or_about_to_close(TO_OR_CONN(conn));
  581. break;
  582. case CONN_TYPE_AP:
  583. connection_ap_about_to_close(TO_EDGE_CONN(conn));
  584. break;
  585. case CONN_TYPE_EXIT:
  586. connection_exit_about_to_close(TO_EDGE_CONN(conn));
  587. break;
  588. }
  589. }
  590. /** Return true iff connection_close_immediate() has been called on this
  591. * connection. */
  592. #define CONN_IS_CLOSED(c) \
  593. ((c)->linked ? ((c)->linked_conn_is_closed) : ((c)->s < 0))
  594. /** Close the underlying socket for <b>conn</b>, so we don't try to
  595. * flush it. Must be used in conjunction with (right before)
  596. * connection_mark_for_close().
  597. */
  598. void
  599. connection_close_immediate(connection_t *conn)
  600. {
  601. assert_connection_ok(conn,0);
  602. if (CONN_IS_CLOSED(conn)) {
  603. log_err(LD_BUG,"Attempt to close already-closed connection.");
  604. tor_fragile_assert();
  605. return;
  606. }
  607. if (conn->outbuf_flushlen) {
  608. log_info(LD_NET,"fd %d, type %s, state %s, %d bytes on outbuf.",
  609. (int)conn->s, conn_type_to_string(conn->type),
  610. conn_state_to_string(conn->type, conn->state),
  611. (int)conn->outbuf_flushlen);
  612. }
  613. connection_unregister_events(conn);
  614. if (SOCKET_OK(conn->s))
  615. tor_close_socket(conn->s);
  616. conn->s = -1;
  617. if (conn->linked)
  618. conn->linked_conn_is_closed = 1;
  619. if (conn->outbuf)
  620. buf_clear(conn->outbuf);
  621. conn->outbuf_flushlen = 0;
  622. }
  623. /** Mark <b>conn</b> to be closed next time we loop through
  624. * conn_close_if_marked() in main.c. */
  625. void
  626. _connection_mark_for_close(connection_t *conn, int line, const char *file)
  627. {
  628. assert_connection_ok(conn,0);
  629. tor_assert(line);
  630. tor_assert(line < 1<<16); /* marked_for_close can only fit a uint16_t. */
  631. tor_assert(file);
  632. if (conn->marked_for_close) {
  633. log(LOG_WARN,LD_BUG,"Duplicate call to connection_mark_for_close at %s:%d"
  634. " (first at %s:%d)", file, line, conn->marked_for_close_file,
  635. conn->marked_for_close);
  636. tor_fragile_assert();
  637. return;
  638. }
  639. conn->marked_for_close = line;
  640. conn->marked_for_close_file = file;
  641. add_connection_to_closeable_list(conn);
  642. /* in case we're going to be held-open-til-flushed, reset
  643. * the number of seconds since last successful write, so
  644. * we get our whole 15 seconds */
  645. conn->timestamp_lastwritten = time(NULL);
  646. }
  647. /** Find each connection that has hold_open_until_flushed set to
  648. * 1 but hasn't written in the past 15 seconds, and set
  649. * hold_open_until_flushed to 0. This means it will get cleaned
  650. * up in the next loop through close_if_marked() in main.c.
  651. */
  652. void
  653. connection_expire_held_open(void)
  654. {
  655. time_t now;
  656. smartlist_t *conns = get_connection_array();
  657. now = time(NULL);
  658. SMARTLIST_FOREACH(conns, connection_t *, conn,
  659. {
  660. /* If we've been holding the connection open, but we haven't written
  661. * for 15 seconds...
  662. */
  663. if (conn->hold_open_until_flushed) {
  664. tor_assert(conn->marked_for_close);
  665. if (now - conn->timestamp_lastwritten >= 15) {
  666. int severity;
  667. if (conn->type == CONN_TYPE_EXIT ||
  668. (conn->type == CONN_TYPE_DIR &&
  669. conn->purpose == DIR_PURPOSE_SERVER))
  670. severity = LOG_INFO;
  671. else
  672. severity = LOG_NOTICE;
  673. log_fn(severity, LD_NET,
  674. "Giving up on marked_for_close conn that's been flushing "
  675. "for 15s (fd %d, type %s, state %s).",
  676. (int)conn->s, conn_type_to_string(conn->type),
  677. conn_state_to_string(conn->type, conn->state));
  678. conn->hold_open_until_flushed = 0;
  679. }
  680. }
  681. });
  682. }
  683. #ifdef HAVE_SYS_UN_H
  684. /** Create an AF_UNIX listenaddr struct.
  685. * <b>listenaddress</b> provides the path to the Unix socket.
  686. *
  687. * Eventually <b>listenaddress</b> will also optionally contain user, group,
  688. * and file permissions for the new socket. But not yet. XXX
  689. * Also, since we do not create the socket here the information doesn't help
  690. * here.
  691. *
  692. * If not NULL <b>readable_address</b> will contain a copy of the path part of
  693. * <b>listenaddress</b>.
  694. *
  695. * The listenaddr struct has to be freed by the caller.
  696. */
  697. static struct sockaddr_un *
  698. create_unix_sockaddr(const char *listenaddress, char **readable_address,
  699. socklen_t *len_out)
  700. {
  701. struct sockaddr_un *sockaddr = NULL;
  702. sockaddr = tor_malloc_zero(sizeof(struct sockaddr_un));
  703. sockaddr->sun_family = AF_UNIX;
  704. if (strlcpy(sockaddr->sun_path, listenaddress, sizeof(sockaddr->sun_path))
  705. >= sizeof(sockaddr->sun_path)) {
  706. log_warn(LD_CONFIG, "Unix socket path '%s' is too long to fit.",
  707. escaped(listenaddress));
  708. tor_free(sockaddr);
  709. return NULL;
  710. }
  711. if (readable_address)
  712. *readable_address = tor_strdup(listenaddress);
  713. *len_out = sizeof(struct sockaddr_un);
  714. return sockaddr;
  715. }
  716. #else
  717. static struct sockaddr *
  718. create_unix_sockaddr(const char *listenaddress, char **readable_address,
  719. socklen_t *len_out)
  720. {
  721. (void)listenaddress;
  722. (void)readable_address;
  723. log_fn(LOG_ERR, LD_BUG,
  724. "Unix domain sockets not supported, yet we tried to create one.");
  725. *len_out = 0;
  726. tor_assert(0);
  727. };
  728. #endif /* HAVE_SYS_UN_H */
  729. /** Warn that an accept or a connect has failed because we're running up
  730. * against our ulimit. Rate-limit these warnings so that we don't spam
  731. * the log. */
  732. static void
  733. warn_too_many_conns(void)
  734. {
  735. #define WARN_TOO_MANY_CONNS_INTERVAL (6*60*60)
  736. static ratelim_t last_warned = RATELIM_INIT(WARN_TOO_MANY_CONNS_INTERVAL);
  737. char *m;
  738. if ((m = rate_limit_log(&last_warned, approx_time()))) {
  739. int n_conns = get_n_open_sockets();
  740. log_warn(LD_NET,"Failing because we have %d connections already. Please "
  741. "raise your ulimit -n.%s", n_conns, m);
  742. tor_free(m);
  743. control_event_general_status(LOG_WARN, "TOO_MANY_CONNECTIONS CURRENT=%d",
  744. n_conns);
  745. }
  746. }
  747. #ifdef HAVE_SYS_UN_H
  748. /** Check whether we should be willing to open an AF_UNIX socket in
  749. * <b>path</b>. Return 0 if we should go ahead and -1 if we shouldn't. */
  750. static int
  751. check_location_for_unix_socket(const or_options_t *options, const char *path)
  752. {
  753. int r = -1;
  754. char *p = tor_strdup(path);
  755. cpd_check_t flags = CPD_CHECK_MODE_ONLY;
  756. if (get_parent_directory(p)<0)
  757. goto done;
  758. if (options->ControlSocketsGroupWritable)
  759. flags |= CPD_GROUP_OK;
  760. if (check_private_dir(p, flags, options->User) < 0) {
  761. char *escpath, *escdir;
  762. escpath = esc_for_log(path);
  763. escdir = esc_for_log(p);
  764. log_warn(LD_GENERAL, "Before Tor can create a control socket in %s, the "
  765. "directory %s needs to exist, and to be accessible only by the "
  766. "user%s account that is running Tor. (On some Unix systems, "
  767. "anybody who can list a socket can conect to it, so Tor is "
  768. "being careful.)", escpath, escdir,
  769. options->ControlSocketsGroupWritable ? " and group" : "");
  770. tor_free(escpath);
  771. tor_free(escdir);
  772. goto done;
  773. }
  774. r = 0;
  775. done:
  776. tor_free(p);
  777. return r;
  778. }
  779. #endif
  780. /** Tell the TCP stack that it shouldn't wait for a long time after
  781. * <b>sock</b> has closed before reusing its port. */
  782. static void
  783. make_socket_reuseable(tor_socket_t sock)
  784. {
  785. #ifdef MS_WINDOWS
  786. (void) sock;
  787. #else
  788. int one=1;
  789. /* REUSEADDR on normal places means you can rebind to the port
  790. * right after somebody else has let it go. But REUSEADDR on win32
  791. * means you can bind to the port _even when somebody else
  792. * already has it bound_. So, don't do that on Win32. */
  793. setsockopt(sock, SOL_SOCKET, SO_REUSEADDR, (void*) &one,
  794. (socklen_t)sizeof(one));
  795. #endif
  796. }
  797. /** Bind a new non-blocking socket listening to the socket described
  798. * by <b>listensockaddr</b>.
  799. *
  800. * <b>address</b> is only used for logging purposes and to add the information
  801. * to the conn.
  802. */
  803. static connection_t *
  804. connection_create_listener(const struct sockaddr *listensockaddr,
  805. socklen_t socklen,
  806. int type, const char *address,
  807. const port_cfg_t *port_cfg)
  808. {
  809. listener_connection_t *lis_conn;
  810. connection_t *conn;
  811. tor_socket_t s; /* the socket we're going to make */
  812. uint16_t usePort = 0, gotPort = 0;
  813. int start_reading = 0;
  814. static int global_next_session_group = SESSION_GROUP_FIRST_AUTO;
  815. tor_addr_t addr;
  816. if (get_n_open_sockets() >= get_options()->_ConnLimit-1) {
  817. warn_too_many_conns();
  818. return NULL;
  819. }
  820. if (listensockaddr->sa_family == AF_INET) {
  821. int is_tcp = (type != CONN_TYPE_AP_DNS_LISTENER);
  822. if (is_tcp)
  823. start_reading = 1;
  824. tor_addr_from_sockaddr(&addr, listensockaddr, &usePort);
  825. log_notice(LD_NET, "Opening %s on %s:%d",
  826. conn_type_to_string(type), fmt_addr(&addr), usePort);
  827. s = tor_open_socket(PF_INET,
  828. is_tcp ? SOCK_STREAM : SOCK_DGRAM,
  829. is_tcp ? IPPROTO_TCP: IPPROTO_UDP);
  830. if (!SOCKET_OK(s)) {
  831. log_warn(LD_NET,"Socket creation failed.");
  832. goto err;
  833. }
  834. make_socket_reuseable(s);
  835. if (bind(s,listensockaddr,socklen) < 0) {
  836. const char *helpfulhint = "";
  837. int e = tor_socket_errno(s);
  838. if (ERRNO_IS_EADDRINUSE(e))
  839. helpfulhint = ". Is Tor already running?";
  840. log_warn(LD_NET, "Could not bind to %s:%u: %s%s", address, usePort,
  841. tor_socket_strerror(e), helpfulhint);
  842. tor_close_socket(s);
  843. goto err;
  844. }
  845. if (is_tcp) {
  846. if (listen(s,SOMAXCONN) < 0) {
  847. log_warn(LD_NET, "Could not listen on %s:%u: %s", address, usePort,
  848. tor_socket_strerror(tor_socket_errno(s)));
  849. tor_close_socket(s);
  850. goto err;
  851. }
  852. }
  853. if (usePort != 0) {
  854. gotPort = usePort;
  855. } else {
  856. tor_addr_t addr2;
  857. struct sockaddr_storage ss;
  858. socklen_t ss_len=sizeof(ss);
  859. if (getsockname(s, (struct sockaddr*)&ss, &ss_len)<0) {
  860. log_warn(LD_NET, "getsockname() couldn't learn address for %s: %s",
  861. conn_type_to_string(type),
  862. tor_socket_strerror(tor_socket_errno(s)));
  863. gotPort = 0;
  864. }
  865. tor_addr_from_sockaddr(&addr2, (struct sockaddr*)&ss, &gotPort);
  866. }
  867. #ifdef HAVE_SYS_UN_H
  868. } else if (listensockaddr->sa_family == AF_UNIX) {
  869. start_reading = 1;
  870. /* For now only control ports can be Unix domain sockets
  871. * and listeners at the same time */
  872. tor_assert(type == CONN_TYPE_CONTROL_LISTENER);
  873. if (check_location_for_unix_socket(get_options(), address) < 0)
  874. goto err;
  875. log_notice(LD_NET, "Opening %s on %s",
  876. conn_type_to_string(type), address);
  877. tor_addr_make_unspec(&addr);
  878. if (unlink(address) < 0 && errno != ENOENT) {
  879. log_warn(LD_NET, "Could not unlink %s: %s", address,
  880. strerror(errno));
  881. goto err;
  882. }
  883. s = tor_open_socket(AF_UNIX, SOCK_STREAM, 0);
  884. if (s < 0) {
  885. log_warn(LD_NET,"Socket creation failed: %s.", strerror(errno));
  886. goto err;
  887. }
  888. if (bind(s, listensockaddr, (socklen_t)sizeof(struct sockaddr_un)) == -1) {
  889. log_warn(LD_NET,"Bind to %s failed: %s.", address,
  890. tor_socket_strerror(tor_socket_errno(s)));
  891. goto err;
  892. }
  893. if (get_options()->ControlSocketsGroupWritable) {
  894. /* We need to use chmod; fchmod doesn't work on sockets on all
  895. * platforms. */
  896. if (chmod(address, 0660) < 0) {
  897. log_warn(LD_FS,"Unable to make %s group-writable.", address);
  898. tor_close_socket(s);
  899. goto err;
  900. }
  901. }
  902. if (listen(s,SOMAXCONN) < 0) {
  903. log_warn(LD_NET, "Could not listen on %s: %s", address,
  904. tor_socket_strerror(tor_socket_errno(s)));
  905. tor_close_socket(s);
  906. goto err;
  907. }
  908. #endif /* HAVE_SYS_UN_H */
  909. } else {
  910. log_err(LD_BUG,"Got unexpected address family %d.",
  911. listensockaddr->sa_family);
  912. tor_assert(0);
  913. }
  914. set_socket_nonblocking(s);
  915. lis_conn = listener_connection_new(type, listensockaddr->sa_family);
  916. conn = TO_CONN(lis_conn);
  917. conn->socket_family = listensockaddr->sa_family;
  918. conn->s = s;
  919. conn->address = tor_strdup(address);
  920. conn->port = gotPort;
  921. tor_addr_copy(&conn->addr, &addr);
  922. if (port_cfg->isolation_flags) {
  923. lis_conn->isolation_flags = port_cfg->isolation_flags;
  924. if (port_cfg->session_group >= 0) {
  925. lis_conn->session_group = port_cfg->session_group;
  926. } else {
  927. /* XXXX023 This can wrap after ~INT_MAX ports are opened. */
  928. lis_conn->session_group = global_next_session_group--;
  929. }
  930. }
  931. if (connection_add(conn) < 0) { /* no space, forget it */
  932. log_warn(LD_NET,"connection_add for listener failed. Giving up.");
  933. connection_free(conn);
  934. goto err;
  935. }
  936. log_fn(usePort==gotPort ? LOG_DEBUG : LOG_NOTICE, LD_NET,
  937. "%s listening on port %u.",
  938. conn_type_to_string(type), gotPort);
  939. if (type == CONN_TYPE_CONTROL_LISTENER)
  940. control_ports_write_to_file();
  941. conn->state = LISTENER_STATE_READY;
  942. if (start_reading) {
  943. connection_start_reading(conn);
  944. } else {
  945. tor_assert(type == CONN_TYPE_AP_DNS_LISTENER);
  946. dnsserv_configure_listener(conn);
  947. }
  948. return conn;
  949. err:
  950. return NULL;
  951. }
  952. /** Do basic sanity checking on a newly received socket. Return 0
  953. * if it looks ok, else return -1. */
  954. static int
  955. check_sockaddr(struct sockaddr *sa, int len, int level)
  956. {
  957. int ok = 1;
  958. if (sa->sa_family == AF_INET) {
  959. struct sockaddr_in *sin=(struct sockaddr_in*)sa;
  960. if (len != sizeof(struct sockaddr_in)) {
  961. log_fn(level, LD_NET, "Length of address not as expected: %d vs %d",
  962. len,(int)sizeof(struct sockaddr_in));
  963. ok = 0;
  964. }
  965. if (sin->sin_addr.s_addr == 0 || sin->sin_port == 0) {
  966. log_fn(level, LD_NET,
  967. "Address for new connection has address/port equal to zero.");
  968. ok = 0;
  969. }
  970. } else if (sa->sa_family == AF_INET6) {
  971. struct sockaddr_in6 *sin6=(struct sockaddr_in6*)sa;
  972. if (len != sizeof(struct sockaddr_in6)) {
  973. log_fn(level, LD_NET, "Length of address not as expected: %d vs %d",
  974. len,(int)sizeof(struct sockaddr_in6));
  975. ok = 0;
  976. }
  977. if (tor_mem_is_zero((void*)sin6->sin6_addr.s6_addr, 16) ||
  978. sin6->sin6_port == 0) {
  979. log_fn(level, LD_NET,
  980. "Address for new connection has address/port equal to zero.");
  981. ok = 0;
  982. }
  983. } else {
  984. ok = 0;
  985. }
  986. return ok ? 0 : -1;
  987. }
  988. /** Check whether the socket family from an accepted socket <b>got</b> is the
  989. * same as the one that <b>listener</b> is waiting for. If it isn't, log
  990. * a useful message and return -1. Else return 0.
  991. *
  992. * This is annoying, but can apparently happen on some Darwins. */
  993. static int
  994. check_sockaddr_family_match(sa_family_t got, connection_t *listener)
  995. {
  996. if (got != listener->socket_family) {
  997. log_info(LD_BUG, "A listener connection returned a socket with a "
  998. "mismatched family. %s for addr_family %d gave us a socket "
  999. "with address family %d. Dropping.",
  1000. conn_type_to_string(listener->type),
  1001. (int)listener->socket_family,
  1002. (int)got);
  1003. return -1;
  1004. }
  1005. return 0;
  1006. }
  1007. /** The listener connection <b>conn</b> told poll() it wanted to read.
  1008. * Call accept() on conn-\>s, and add the new connection if necessary.
  1009. */
  1010. static int
  1011. connection_handle_listener_read(connection_t *conn, int new_type)
  1012. {
  1013. tor_socket_t news; /* the new socket */
  1014. connection_t *newconn;
  1015. /* information about the remote peer when connecting to other routers */
  1016. char addrbuf[256];
  1017. struct sockaddr *remote = (struct sockaddr*)addrbuf;
  1018. /* length of the remote address. Must be whatever accept() needs. */
  1019. socklen_t remotelen = (socklen_t)sizeof(addrbuf);
  1020. const or_options_t *options = get_options();
  1021. tor_assert((size_t)remotelen >= sizeof(struct sockaddr_in));
  1022. memset(addrbuf, 0, sizeof(addrbuf));
  1023. news = tor_accept_socket(conn->s,remote,&remotelen);
  1024. if (!SOCKET_OK(news)) { /* accept() error */
  1025. int e = tor_socket_errno(conn->s);
  1026. if (ERRNO_IS_ACCEPT_EAGAIN(e)) {
  1027. return 0; /* he hung up before we could accept(). that's fine. */
  1028. } else if (ERRNO_IS_ACCEPT_RESOURCE_LIMIT(e)) {
  1029. warn_too_many_conns();
  1030. return 0;
  1031. }
  1032. /* else there was a real error. */
  1033. log_warn(LD_NET,"accept() failed: %s. Closing listener.",
  1034. tor_socket_strerror(e));
  1035. connection_mark_for_close(conn);
  1036. return -1;
  1037. }
  1038. log_debug(LD_NET,
  1039. "Connection accepted on socket %d (child of fd %d).",
  1040. (int)news,(int)conn->s);
  1041. make_socket_reuseable(news);
  1042. set_socket_nonblocking(news);
  1043. if (options->ConstrainedSockets)
  1044. set_constrained_socket_buffers(news, (int)options->ConstrainedSockSize);
  1045. if (check_sockaddr_family_match(remote->sa_family, conn) < 0) {
  1046. tor_close_socket(news);
  1047. return 0;
  1048. }
  1049. if (conn->socket_family == AF_INET || conn->socket_family == AF_INET6) {
  1050. tor_addr_t addr;
  1051. uint16_t port;
  1052. if (check_sockaddr(remote, remotelen, LOG_INFO)<0) {
  1053. log_info(LD_NET,
  1054. "accept() returned a strange address; trying getsockname().");
  1055. remotelen=sizeof(addrbuf);
  1056. memset(addrbuf, 0, sizeof(addrbuf));
  1057. if (getsockname(news, remote, &remotelen)<0) {
  1058. int e = tor_socket_errno(news);
  1059. log_warn(LD_NET, "getsockname() for new connection failed: %s",
  1060. tor_socket_strerror(e));
  1061. } else {
  1062. if (check_sockaddr((struct sockaddr*)addrbuf, remotelen,
  1063. LOG_WARN) < 0) {
  1064. log_warn(LD_NET,"Something's wrong with this conn. Closing it.");
  1065. tor_close_socket(news);
  1066. return 0;
  1067. }
  1068. }
  1069. }
  1070. if (check_sockaddr_family_match(remote->sa_family, conn) < 0) {
  1071. tor_close_socket(news);
  1072. return 0;
  1073. }
  1074. tor_addr_from_sockaddr(&addr, remote, &port);
  1075. /* process entrance policies here, before we even create the connection */
  1076. if (new_type == CONN_TYPE_AP) {
  1077. /* check sockspolicy to see if we should accept it */
  1078. if (socks_policy_permits_address(&addr) == 0) {
  1079. log_notice(LD_APP,
  1080. "Denying socks connection from untrusted address %s.",
  1081. fmt_addr(&addr));
  1082. tor_close_socket(news);
  1083. return 0;
  1084. }
  1085. }
  1086. if (new_type == CONN_TYPE_DIR) {
  1087. /* check dirpolicy to see if we should accept it */
  1088. if (dir_policy_permits_address(&addr) == 0) {
  1089. log_notice(LD_DIRSERV,"Denying dir connection from address %s.",
  1090. fmt_addr(&addr));
  1091. tor_close_socket(news);
  1092. return 0;
  1093. }
  1094. }
  1095. newconn = connection_new(new_type, conn->socket_family);
  1096. newconn->s = news;
  1097. /* remember the remote address */
  1098. tor_addr_copy(&newconn->addr, &addr);
  1099. newconn->port = port;
  1100. newconn->address = tor_dup_addr(&addr);
  1101. } else if (conn->socket_family == AF_UNIX) {
  1102. /* For now only control ports can be Unix domain sockets
  1103. * and listeners at the same time */
  1104. tor_assert(conn->type == CONN_TYPE_CONTROL_LISTENER);
  1105. newconn = connection_new(new_type, conn->socket_family);
  1106. newconn->s = news;
  1107. /* remember the remote address -- do we have anything sane to put here? */
  1108. tor_addr_make_unspec(&newconn->addr);
  1109. newconn->port = 1;
  1110. newconn->address = tor_strdup(conn->address);
  1111. } else {
  1112. tor_assert(0);
  1113. };
  1114. if (connection_add(newconn) < 0) { /* no space, forget it */
  1115. connection_free(newconn);
  1116. return 0; /* no need to tear down the parent */
  1117. }
  1118. if (connection_init_accepted_conn(newconn, TO_LISTENER_CONN(conn)) < 0) {
  1119. if (! newconn->marked_for_close)
  1120. connection_mark_for_close(newconn);
  1121. return 0;
  1122. }
  1123. return 0;
  1124. }
  1125. /** Initialize states for newly accepted connection <b>conn</b>.
  1126. * If conn is an OR, start the TLS handshake.
  1127. * If conn is a transparent AP, get its original destination
  1128. * and place it in circuit_wait.
  1129. */
  1130. static int
  1131. connection_init_accepted_conn(connection_t *conn,
  1132. const listener_connection_t *listener)
  1133. {
  1134. connection_start_reading(conn);
  1135. switch (conn->type) {
  1136. case CONN_TYPE_OR:
  1137. control_event_or_conn_status(TO_OR_CONN(conn), OR_CONN_EVENT_NEW, 0);
  1138. return connection_tls_start_handshake(TO_OR_CONN(conn), 1);
  1139. case CONN_TYPE_AP:
  1140. TO_EDGE_CONN(conn)->isolation_flags = listener->isolation_flags;
  1141. TO_EDGE_CONN(conn)->session_group = listener->session_group;
  1142. TO_EDGE_CONN(conn)->nym_epoch = get_signewnym_epoch();
  1143. switch (TO_CONN(listener)->type) {
  1144. case CONN_TYPE_AP_LISTENER:
  1145. conn->state = AP_CONN_STATE_SOCKS_WAIT;
  1146. break;
  1147. case CONN_TYPE_AP_TRANS_LISTENER:
  1148. TO_EDGE_CONN(conn)->is_transparent_ap = 1;
  1149. conn->state = AP_CONN_STATE_CIRCUIT_WAIT;
  1150. return connection_ap_process_transparent(TO_EDGE_CONN(conn));
  1151. case CONN_TYPE_AP_NATD_LISTENER:
  1152. TO_EDGE_CONN(conn)->is_transparent_ap = 1;
  1153. conn->state = AP_CONN_STATE_NATD_WAIT;
  1154. break;
  1155. }
  1156. break;
  1157. case CONN_TYPE_DIR:
  1158. conn->purpose = DIR_PURPOSE_SERVER;
  1159. conn->state = DIR_CONN_STATE_SERVER_COMMAND_WAIT;
  1160. break;
  1161. case CONN_TYPE_CONTROL:
  1162. conn->state = CONTROL_CONN_STATE_NEEDAUTH;
  1163. break;
  1164. }
  1165. return 0;
  1166. }
  1167. /** Take conn, make a nonblocking socket; try to connect to
  1168. * addr:port (they arrive in *host order*). If fail, return -1 and if
  1169. * applicable put your best guess about errno into *<b>socket_error</b>.
  1170. * Else assign s to conn-\>s: if connected return 1, if EAGAIN return 0.
  1171. *
  1172. * address is used to make the logs useful.
  1173. *
  1174. * On success, add conn to the list of polled connections.
  1175. */
  1176. int
  1177. connection_connect(connection_t *conn, const char *address,
  1178. const tor_addr_t *addr, uint16_t port, int *socket_error)
  1179. {
  1180. tor_socket_t s;
  1181. int inprogress = 0;
  1182. char addrbuf[256];
  1183. struct sockaddr *dest_addr;
  1184. int dest_addr_len;
  1185. const or_options_t *options = get_options();
  1186. int protocol_family;
  1187. if (get_n_open_sockets() >= get_options()->_ConnLimit-1) {
  1188. warn_too_many_conns();
  1189. return -1;
  1190. }
  1191. if (tor_addr_family(addr) == AF_INET6)
  1192. protocol_family = PF_INET6;
  1193. else
  1194. protocol_family = PF_INET;
  1195. s = tor_open_socket(protocol_family,SOCK_STREAM,IPPROTO_TCP);
  1196. if (s < 0) {
  1197. *socket_error = tor_socket_errno(-1);
  1198. log_warn(LD_NET,"Error creating network socket: %s",
  1199. tor_socket_strerror(*socket_error));
  1200. return -1;
  1201. }
  1202. if (options->OutboundBindAddress && !tor_addr_is_loopback(addr)) {
  1203. struct sockaddr_in ext_addr;
  1204. memset(&ext_addr, 0, sizeof(ext_addr));
  1205. ext_addr.sin_family = AF_INET;
  1206. ext_addr.sin_port = 0;
  1207. if (!tor_inet_aton(options->OutboundBindAddress, &ext_addr.sin_addr)) {
  1208. log_warn(LD_CONFIG,"Outbound bind address '%s' didn't parse. Ignoring.",
  1209. options->OutboundBindAddress);
  1210. } else {
  1211. if (bind(s, (struct sockaddr*)&ext_addr,
  1212. (socklen_t)sizeof(ext_addr)) < 0) {
  1213. *socket_error = tor_socket_errno(s);
  1214. log_warn(LD_NET,"Error binding network socket: %s",
  1215. tor_socket_strerror(*socket_error));
  1216. tor_close_socket(s);
  1217. return -1;
  1218. }
  1219. }
  1220. }
  1221. set_socket_nonblocking(s);
  1222. if (options->ConstrainedSockets)
  1223. set_constrained_socket_buffers(s, (int)options->ConstrainedSockSize);
  1224. memset(addrbuf,0,sizeof(addrbuf));
  1225. dest_addr = (struct sockaddr*) addrbuf;
  1226. dest_addr_len = tor_addr_to_sockaddr(addr, port, dest_addr, sizeof(addrbuf));
  1227. tor_assert(dest_addr_len > 0);
  1228. log_debug(LD_NET, "Connecting to %s:%u.",
  1229. escaped_safe_str_client(address), port);
  1230. make_socket_reuseable(s);
  1231. if (connect(s, dest_addr, (socklen_t)dest_addr_len) < 0) {
  1232. int e = tor_socket_errno(s);
  1233. if (!ERRNO_IS_CONN_EINPROGRESS(e)) {
  1234. /* yuck. kill it. */
  1235. *socket_error = e;
  1236. log_info(LD_NET,
  1237. "connect() to %s:%u failed: %s",
  1238. escaped_safe_str_client(address),
  1239. port, tor_socket_strerror(e));
  1240. tor_close_socket(s);
  1241. return -1;
  1242. } else {
  1243. inprogress = 1;
  1244. }
  1245. }
  1246. if (!server_mode(options))
  1247. client_check_address_changed(s);
  1248. /* it succeeded. we're connected. */
  1249. log_fn(inprogress?LOG_DEBUG:LOG_INFO, LD_NET,
  1250. "Connection to %s:%u %s (sock %d).",
  1251. escaped_safe_str_client(address),
  1252. port, inprogress?"in progress":"established", s);
  1253. conn->s = s;
  1254. if (connection_add_connecting(conn) < 0) /* no space, forget it */
  1255. return -1;
  1256. return inprogress ? 0 : 1;
  1257. }
  1258. /** Convert state number to string representation for logging purposes.
  1259. */
  1260. static const char *
  1261. connection_proxy_state_to_string(int state)
  1262. {
  1263. static const char *unknown = "???";
  1264. static const char *states[] = {
  1265. "PROXY_NONE",
  1266. "PROXY_INFANT",
  1267. "PROXY_HTTPS_WANT_CONNECT_OK",
  1268. "PROXY_SOCKS4_WANT_CONNECT_OK",
  1269. "PROXY_SOCKS5_WANT_AUTH_METHOD_NONE",
  1270. "PROXY_SOCKS5_WANT_AUTH_METHOD_RFC1929",
  1271. "PROXY_SOCKS5_WANT_AUTH_RFC1929_OK",
  1272. "PROXY_SOCKS5_WANT_CONNECT_OK",
  1273. "PROXY_CONNECTED",
  1274. };
  1275. if (state < PROXY_NONE || state > PROXY_CONNECTED)
  1276. return unknown;
  1277. return states[state];
  1278. }
  1279. /** Write a proxy request of <b>type</b> (socks4, socks5, https) to conn
  1280. * for conn->addr:conn->port, authenticating with the auth details given
  1281. * in the configuration (if available). SOCKS 5 and HTTP CONNECT proxies
  1282. * support authentication.
  1283. *
  1284. * Returns -1 if conn->addr is incompatible with the proxy protocol, and
  1285. * 0 otherwise.
  1286. *
  1287. * Use connection_read_proxy_handshake() to complete the handshake.
  1288. */
  1289. int
  1290. connection_proxy_connect(connection_t *conn, int type)
  1291. {
  1292. const or_options_t *options;
  1293. tor_assert(conn);
  1294. options = get_options();
  1295. switch (type) {
  1296. case PROXY_CONNECT: {
  1297. char buf[1024];
  1298. char *base64_authenticator=NULL;
  1299. const char *authenticator = options->HTTPSProxyAuthenticator;
  1300. /* Send HTTP CONNECT and authentication (if available) in
  1301. * one request */
  1302. if (authenticator) {
  1303. base64_authenticator = alloc_http_authenticator(authenticator);
  1304. if (!base64_authenticator)
  1305. log_warn(LD_OR, "Encoding https authenticator failed");
  1306. }
  1307. if (base64_authenticator) {
  1308. tor_snprintf(buf, sizeof(buf), "CONNECT %s:%d HTTP/1.1\r\n"
  1309. "Proxy-Authorization: Basic %s\r\n\r\n",
  1310. fmt_addr(&conn->addr),
  1311. conn->port, base64_authenticator);
  1312. tor_free(base64_authenticator);
  1313. } else {
  1314. tor_snprintf(buf, sizeof(buf), "CONNECT %s:%d HTTP/1.0\r\n\r\n",
  1315. fmt_addr(&conn->addr), conn->port);
  1316. }
  1317. connection_write_to_buf(buf, strlen(buf), conn);
  1318. conn->proxy_state = PROXY_HTTPS_WANT_CONNECT_OK;
  1319. break;
  1320. }
  1321. case PROXY_SOCKS4: {
  1322. unsigned char buf[9];
  1323. uint16_t portn;
  1324. uint32_t ip4addr;
  1325. /* Send a SOCKS4 connect request with empty user id */
  1326. if (tor_addr_family(&conn->addr) != AF_INET) {
  1327. log_warn(LD_NET, "SOCKS4 client is incompatible with IPv6");
  1328. return -1;
  1329. }
  1330. ip4addr = tor_addr_to_ipv4n(&conn->addr);
  1331. portn = htons(conn->port);
  1332. buf[0] = 4; /* version */
  1333. buf[1] = SOCKS_COMMAND_CONNECT; /* command */
  1334. memcpy(buf + 2, &portn, 2); /* port */
  1335. memcpy(buf + 4, &ip4addr, 4); /* addr */
  1336. buf[8] = 0; /* userid (empty) */
  1337. connection_write_to_buf((char *)buf, sizeof(buf), conn);
  1338. conn->proxy_state = PROXY_SOCKS4_WANT_CONNECT_OK;
  1339. break;
  1340. }
  1341. case PROXY_SOCKS5: {
  1342. unsigned char buf[4]; /* fields: vers, num methods, method list */
  1343. /* Send a SOCKS5 greeting (connect request must wait) */
  1344. buf[0] = 5; /* version */
  1345. /* number of auth methods */
  1346. if (options->Socks5ProxyUsername) {
  1347. buf[1] = 2;
  1348. buf[2] = 0x00; /* no authentication */
  1349. buf[3] = 0x02; /* rfc1929 Username/Passwd auth */
  1350. conn->proxy_state = PROXY_SOCKS5_WANT_AUTH_METHOD_RFC1929;
  1351. } else {
  1352. buf[1] = 1;
  1353. buf[2] = 0x00; /* no authentication */
  1354. conn->proxy_state = PROXY_SOCKS5_WANT_AUTH_METHOD_NONE;
  1355. }
  1356. connection_write_to_buf((char *)buf, 2 + buf[1], conn);
  1357. break;
  1358. }
  1359. default:
  1360. log_err(LD_BUG, "Invalid proxy protocol, %d", type);
  1361. tor_fragile_assert();
  1362. return -1;
  1363. }
  1364. log_debug(LD_NET, "set state %s",
  1365. connection_proxy_state_to_string(conn->proxy_state));
  1366. return 0;
  1367. }
  1368. /** Read conn's inbuf. If the http response from the proxy is all
  1369. * here, make sure it's good news, then return 1. If it's bad news,
  1370. * return -1. Else return 0 and hope for better luck next time.
  1371. */
  1372. static int
  1373. connection_read_https_proxy_response(connection_t *conn)
  1374. {
  1375. char *headers;
  1376. char *reason=NULL;
  1377. int status_code;
  1378. time_t date_header;
  1379. switch (fetch_from_buf_http(conn->inbuf,
  1380. &headers, MAX_HEADERS_SIZE,
  1381. NULL, NULL, 10000, 0)) {
  1382. case -1: /* overflow */
  1383. log_warn(LD_PROTOCOL,
  1384. "Your https proxy sent back an oversized response. Closing.");
  1385. return -1;
  1386. case 0:
  1387. log_info(LD_NET,"https proxy response not all here yet. Waiting.");
  1388. return 0;
  1389. /* case 1, fall through */
  1390. }
  1391. if (parse_http_response(headers, &status_code, &date_header,
  1392. NULL, &reason) < 0) {
  1393. log_warn(LD_NET,
  1394. "Unparseable headers from proxy (connecting to '%s'). Closing.",
  1395. conn->address);
  1396. tor_free(headers);
  1397. return -1;
  1398. }
  1399. if (!reason) reason = tor_strdup("[no reason given]");
  1400. if (status_code == 200) {
  1401. log_info(LD_NET,
  1402. "HTTPS connect to '%s' successful! (200 %s) Starting TLS.",
  1403. conn->address, escaped(reason));
  1404. tor_free(reason);
  1405. return 1;
  1406. }
  1407. /* else, bad news on the status code */
  1408. switch (status_code) {
  1409. case 403:
  1410. log_warn(LD_NET,
  1411. "The https proxy refused to allow connection to %s "
  1412. "(status code %d, %s). Closing.",
  1413. conn->address, status_code, escaped(reason));
  1414. break;
  1415. default:
  1416. log_warn(LD_NET,
  1417. "The https proxy sent back an unexpected status code %d (%s). "
  1418. "Closing.",
  1419. status_code, escaped(reason));
  1420. break;
  1421. }
  1422. tor_free(reason);
  1423. return -1;
  1424. }
  1425. /** Send SOCKS5 CONNECT command to <b>conn</b>, copying <b>conn->addr</b>
  1426. * and <b>conn->port</b> into the request.
  1427. */
  1428. static void
  1429. connection_send_socks5_connect(connection_t *conn)
  1430. {
  1431. unsigned char buf[1024];
  1432. size_t reqsize = 6;
  1433. uint16_t port = htons(conn->port);
  1434. buf[0] = 5; /* version */
  1435. buf[1] = SOCKS_COMMAND_CONNECT; /* command */
  1436. buf[2] = 0; /* reserved */
  1437. if (tor_addr_family(&conn->addr) == AF_INET) {
  1438. uint32_t addr = tor_addr_to_ipv4n(&conn->addr);
  1439. buf[3] = 1;
  1440. reqsize += 4;
  1441. memcpy(buf + 4, &addr, 4);
  1442. memcpy(buf + 8, &port, 2);
  1443. } else { /* AF_INET6 */
  1444. buf[3] = 4;
  1445. reqsize += 16;
  1446. memcpy(buf + 4, tor_addr_to_in6(&conn->addr), 16);
  1447. memcpy(buf + 20, &port, 2);
  1448. }
  1449. connection_write_to_buf((char *)buf, reqsize, conn);
  1450. conn->proxy_state = PROXY_SOCKS5_WANT_CONNECT_OK;
  1451. }
  1452. /** DOCDOC */
  1453. static int
  1454. connection_fetch_from_buf_socks_client(connection_t *conn,
  1455. int state, char **reason)
  1456. {
  1457. IF_HAS_BUFFEREVENT(conn, {
  1458. struct evbuffer *input = bufferevent_get_input(conn->bufev);
  1459. return fetch_from_evbuffer_socks_client(input, state, reason);
  1460. }) ELSE_IF_NO_BUFFEREVENT {
  1461. return fetch_from_buf_socks_client(conn->inbuf, state, reason);
  1462. }
  1463. }
  1464. /** Call this from connection_*_process_inbuf() to advance the proxy
  1465. * handshake.
  1466. *
  1467. * No matter what proxy protocol is used, if this function returns 1, the
  1468. * handshake is complete, and the data remaining on inbuf may contain the
  1469. * start of the communication with the requested server.
  1470. *
  1471. * Returns 0 if the current buffer contains an incomplete response, and -1
  1472. * on error.
  1473. */
  1474. int
  1475. connection_read_proxy_handshake(connection_t *conn)
  1476. {
  1477. int ret = 0;
  1478. char *reason = NULL;
  1479. log_debug(LD_NET, "enter state %s",
  1480. connection_proxy_state_to_string(conn->proxy_state));
  1481. switch (conn->proxy_state) {
  1482. case PROXY_HTTPS_WANT_CONNECT_OK:
  1483. ret = connection_read_https_proxy_response(conn);
  1484. if (ret == 1)
  1485. conn->proxy_state = PROXY_CONNECTED;
  1486. break;
  1487. case PROXY_SOCKS4_WANT_CONNECT_OK:
  1488. ret = connection_fetch_from_buf_socks_client(conn,
  1489. conn->proxy_state,
  1490. &reason);
  1491. if (ret == 1)
  1492. conn->proxy_state = PROXY_CONNECTED;
  1493. break;
  1494. case PROXY_SOCKS5_WANT_AUTH_METHOD_NONE:
  1495. ret = connection_fetch_from_buf_socks_client(conn,
  1496. conn->proxy_state,
  1497. &reason);
  1498. /* no auth needed, do connect */
  1499. if (ret == 1) {
  1500. connection_send_socks5_connect(conn);
  1501. ret = 0;
  1502. }
  1503. break;
  1504. case PROXY_SOCKS5_WANT_AUTH_METHOD_RFC1929:
  1505. ret = connection_fetch_from_buf_socks_client(conn,
  1506. conn->proxy_state,
  1507. &reason);
  1508. /* send auth if needed, otherwise do connect */
  1509. if (ret == 1) {
  1510. connection_send_socks5_connect(conn);
  1511. ret = 0;
  1512. } else if (ret == 2) {
  1513. unsigned char buf[1024];
  1514. size_t reqsize, usize, psize;
  1515. const char *user, *pass;
  1516. user = get_options()->Socks5ProxyUsername;
  1517. pass = get_options()->Socks5ProxyPassword;
  1518. tor_assert(user && pass);
  1519. /* XXX len of user and pass must be <= 255 !!! */
  1520. usize = strlen(user);
  1521. psize = strlen(pass);
  1522. tor_assert(usize <= 255 && psize <= 255);
  1523. reqsize = 3 + usize + psize;
  1524. buf[0] = 1; /* negotiation version */
  1525. buf[1] = usize;
  1526. memcpy(buf + 2, user, usize);
  1527. buf[2 + usize] = psize;
  1528. memcpy(buf + 3 + usize, pass, psize);
  1529. connection_write_to_buf((char *)buf, reqsize, conn);
  1530. conn->proxy_state = PROXY_SOCKS5_WANT_AUTH_RFC1929_OK;
  1531. ret = 0;
  1532. }
  1533. break;
  1534. case PROXY_SOCKS5_WANT_AUTH_RFC1929_OK:
  1535. ret = connection_fetch_from_buf_socks_client(conn,
  1536. conn->proxy_state,
  1537. &reason);
  1538. /* send the connect request */
  1539. if (ret == 1) {
  1540. connection_send_socks5_connect(conn);
  1541. ret = 0;
  1542. }
  1543. break;
  1544. case PROXY_SOCKS5_WANT_CONNECT_OK:
  1545. ret = connection_fetch_from_buf_socks_client(conn,
  1546. conn->proxy_state,
  1547. &reason);
  1548. if (ret == 1)
  1549. conn->proxy_state = PROXY_CONNECTED;
  1550. break;
  1551. default:
  1552. log_err(LD_BUG, "Invalid proxy_state for reading, %d",
  1553. conn->proxy_state);
  1554. tor_fragile_assert();
  1555. ret = -1;
  1556. break;
  1557. }
  1558. log_debug(LD_NET, "leaving state %s",
  1559. connection_proxy_state_to_string(conn->proxy_state));
  1560. if (ret < 0) {
  1561. if (reason) {
  1562. log_warn(LD_NET, "Proxy Client: unable to connect to %s:%d (%s)",
  1563. conn->address, conn->port, escaped(reason));
  1564. tor_free(reason);
  1565. } else {
  1566. log_warn(LD_NET, "Proxy Client: unable to connect to %s:%d",
  1567. conn->address, conn->port);
  1568. }
  1569. } else if (ret == 1) {
  1570. log_info(LD_NET, "Proxy Client: connection to %s:%d successful",
  1571. conn->address, conn->port);
  1572. }
  1573. return ret;
  1574. }
  1575. /** Given a list of listener connections in <b>old_conns</b>, and list of
  1576. * port_cfg_t entries in <b>ports</b>, open a new listener for every port in
  1577. * <b>ports</b> that does not already have a listener in <b>old_conns</b>.
  1578. *
  1579. * Remove from <b>old_conns</b> every connection that has a corresponding
  1580. * entry in <b>ports</b>. Add to <b>new_conns</b> new every connection we
  1581. * launch.
  1582. *
  1583. * Return 0 on success, -1 on failure.
  1584. **/
  1585. static int
  1586. retry_listener_ports(smartlist_t *old_conns,
  1587. const smartlist_t *ports,
  1588. smartlist_t *new_conns)
  1589. {
  1590. smartlist_t *launch = smartlist_create();
  1591. int r = 0;
  1592. smartlist_add_all(launch, ports);
  1593. /* Iterate through old_conns, comparing it to launch: remove from both lists
  1594. * each pair of elements that corresponds to the same port. */
  1595. SMARTLIST_FOREACH_BEGIN(old_conns, connection_t *, conn) {
  1596. const port_cfg_t *found_port = NULL;
  1597. /* Okay, so this is a listener. Is it configured? */
  1598. SMARTLIST_FOREACH_BEGIN(launch, const port_cfg_t *, wanted) {
  1599. if (conn->type != wanted->type)
  1600. continue;
  1601. if ((conn->socket_family != AF_UNIX && wanted->is_unix_addr) ||
  1602. (conn->socket_family == AF_UNIX && ! wanted->is_unix_addr))
  1603. continue;
  1604. if (wanted->is_unix_addr) {
  1605. if (conn->socket_family == AF_UNIX &&
  1606. !strcmp(wanted->unix_addr, conn->address)) {
  1607. found_port = wanted;
  1608. break;
  1609. }
  1610. } else {
  1611. int port_matches;
  1612. if (wanted->port == CFG_AUTO_PORT) {
  1613. port_matches = 1;
  1614. } else {
  1615. port_matches = (wanted->port == conn->port);
  1616. }
  1617. if (port_matches && tor_addr_eq(&wanted->addr, &conn->addr)) {
  1618. found_port = wanted;
  1619. break;
  1620. }
  1621. }
  1622. } SMARTLIST_FOREACH_END(wanted);
  1623. if (found_port) {
  1624. /* This listener is already running; we don't need to launch it. */
  1625. //log_debug(LD_NET, "Already have %s on %s:%d",
  1626. // conn_type_to_string(found_port->type), conn->address, conn->port);
  1627. smartlist_remove(launch, found_port);
  1628. /* And we can remove the connection from old_conns too. */
  1629. SMARTLIST_DEL_CURRENT(old_conns, conn);
  1630. }
  1631. } SMARTLIST_FOREACH_END(conn);
  1632. /* Now open all the listeners that are configured but not opened. */
  1633. SMARTLIST_FOREACH_BEGIN(launch, const port_cfg_t *, port) {
  1634. struct sockaddr *listensockaddr;
  1635. socklen_t listensocklen = 0;
  1636. char *address=NULL;
  1637. connection_t *conn;
  1638. if (port->is_unix_addr) {
  1639. listensockaddr = (struct sockaddr *)
  1640. create_unix_sockaddr(port->unix_addr,
  1641. &address, &listensocklen);
  1642. } else {
  1643. listensockaddr = tor_malloc(sizeof(struct sockaddr_storage));
  1644. listensocklen = tor_addr_to_sockaddr(&port->addr,
  1645. port->port,
  1646. listensockaddr,
  1647. sizeof(struct sockaddr_storage));
  1648. address = tor_dup_addr(&port->addr);
  1649. }
  1650. if (listensockaddr) {
  1651. conn = connection_create_listener(listensockaddr, listensocklen,
  1652. port->type, address, port);
  1653. tor_free(listensockaddr);
  1654. tor_free(address);
  1655. } else {
  1656. conn = NULL;
  1657. }
  1658. if (!conn) {
  1659. r = -1;
  1660. } else {
  1661. if (new_conns)
  1662. smartlist_add(new_conns, conn);
  1663. }
  1664. } SMARTLIST_FOREACH_END(port);
  1665. smartlist_free(launch);
  1666. return r;
  1667. }
  1668. /**
  1669. * Launch any configured listener connections of type <b>type</b>. (A
  1670. * listener is configured if <b>port_option</b> is non-zero. If any
  1671. * ListenAddress configuration options are given in <b>cfg</b>, create a
  1672. * connection binding to each one. Otherwise, create a single
  1673. * connection binding to the address <b>default_addr</b>.)
  1674. *
  1675. * We assume that we're starting with a list of existing listener connection_t
  1676. * pointers in <b>old_conns</b>: we do not launch listeners that are already
  1677. * in that list. Instead, we just remove them from the list.
  1678. *
  1679. * All new connections we launch are added to <b>new_conns</b>.
  1680. */
  1681. static int
  1682. retry_listeners(smartlist_t *old_conns,
  1683. int type, const config_line_t *cfg,
  1684. int port_option, const char *default_addr,
  1685. smartlist_t *new_conns,
  1686. int is_sockaddr_un)
  1687. {
  1688. smartlist_t *ports = smartlist_create();
  1689. tor_addr_t dflt_addr;
  1690. int retval = 0;
  1691. if (default_addr) {
  1692. tor_addr_from_str(&dflt_addr, default_addr);
  1693. } else {
  1694. tor_addr_make_unspec(&dflt_addr);
  1695. }
  1696. if (port_option) {
  1697. if (!cfg) {
  1698. port_cfg_t *port = tor_malloc_zero(sizeof(port_cfg_t));
  1699. tor_addr_copy(&port->addr, &dflt_addr);
  1700. port->port = port_option;
  1701. port->type = type;
  1702. smartlist_add(ports, port);
  1703. } else {
  1704. const config_line_t *c;
  1705. for (c = cfg; c; c = c->next) {
  1706. port_cfg_t *port;
  1707. tor_addr_t addr;
  1708. uint16_t portval = 0;
  1709. if (is_sockaddr_un) {
  1710. size_t len = strlen(c->value);
  1711. port = tor_malloc_zero(sizeof(port_cfg_t) + len + 1);
  1712. port->is_unix_addr = 1;
  1713. memcpy(port->unix_addr, c->value, len+1);
  1714. } else {
  1715. if (tor_addr_port_parse(c->value, &addr, &portval) < 0) {
  1716. log_warn(LD_CONFIG, "Can't parse/resolve %s %s",
  1717. c->key, c->value);
  1718. retval = -1;
  1719. continue;
  1720. }
  1721. port = tor_malloc_zero(sizeof(port_cfg_t));
  1722. tor_addr_copy(&port->addr, &addr);
  1723. }
  1724. port->type = type;
  1725. port->port = portval ? portval : port_option;
  1726. smartlist_add(ports, port);
  1727. }
  1728. }
  1729. }
  1730. if (retval == -1)
  1731. goto cleanup;
  1732. retval = retry_listener_ports(old_conns, ports, new_conns);
  1733. cleanup:
  1734. SMARTLIST_FOREACH(ports, port_cfg_t *, p, tor_free(p));
  1735. smartlist_free(ports);
  1736. return retval;
  1737. }
  1738. /** Launch listeners for each port you should have open. Only launch
  1739. * listeners who are not already open, and only close listeners we no longer
  1740. * want.
  1741. *
  1742. * Add all old conns that should be closed to <b>replaced_conns</b>.
  1743. * Add all new connections to <b>new_conns</b>.
  1744. */
  1745. int
  1746. retry_all_listeners(smartlist_t *replaced_conns,
  1747. smartlist_t *new_conns)
  1748. {
  1749. smartlist_t *listeners = smartlist_create();
  1750. const or_options_t *options = get_options();
  1751. int retval = 0;
  1752. const uint16_t old_or_port = router_get_advertised_or_port(options);
  1753. const uint16_t old_dir_port = router_get_advertised_dir_port(options, 0);
  1754. SMARTLIST_FOREACH_BEGIN(get_connection_array(), connection_t *, conn) {
  1755. if (connection_is_listener(conn) && !conn->marked_for_close)
  1756. smartlist_add(listeners, conn);
  1757. } SMARTLIST_FOREACH_END(conn);
  1758. if (! options->ClientOnly) {
  1759. if (retry_listeners(listeners,
  1760. CONN_TYPE_OR_LISTENER, options->ORListenAddress,
  1761. options->ORPort, "0.0.0.0",
  1762. new_conns, 0) < 0)
  1763. retval = -1;
  1764. if (retry_listeners(listeners,
  1765. CONN_TYPE_DIR_LISTENER, options->DirListenAddress,
  1766. options->DirPort, "0.0.0.0",
  1767. new_conns, 0) < 0)
  1768. retval = -1;
  1769. }
  1770. if (retry_listener_ports(listeners,
  1771. get_configured_client_ports(),
  1772. new_conns) < 0)
  1773. retval = -1;
  1774. if (retry_listeners(listeners,
  1775. CONN_TYPE_CONTROL_LISTENER,
  1776. options->ControlListenAddress,
  1777. options->ControlPort, "127.0.0.1",
  1778. new_conns, 0) < 0)
  1779. return -1;
  1780. if (retry_listeners(listeners,
  1781. CONN_TYPE_CONTROL_LISTENER,
  1782. options->ControlSocket,
  1783. options->ControlSocket ? 1 : 0, NULL,
  1784. new_conns, 1) < 0)
  1785. return -1;
  1786. /* Any members that were still in 'listeners' don't correspond to
  1787. * any configured port. Kill 'em. */
  1788. SMARTLIST_FOREACH_BEGIN(listeners, connection_t *, conn) {
  1789. log_notice(LD_NET, "Closing no-longer-configured %s on %s:%d",
  1790. conn_type_to_string(conn->type), conn->address, conn->port);
  1791. if (replaced_conns) {
  1792. smartlist_add(replaced_conns, conn);
  1793. } else {
  1794. connection_close_immediate(conn);
  1795. connection_mark_for_close(conn);
  1796. }
  1797. } SMARTLIST_FOREACH_END(conn);
  1798. smartlist_free(listeners);
  1799. if (old_or_port != router_get_advertised_or_port(options) ||
  1800. old_dir_port != router_get_advertised_dir_port(options, 0)) {
  1801. /* Our chosen ORPort or DirPort is not what it used to be: the
  1802. * descriptor we had (if any) should be regenerated. (We won't
  1803. * automatically notice this because of changes in the option,
  1804. * since the value could be "auto".) */
  1805. mark_my_descriptor_dirty("Chosen Or/DirPort changed");
  1806. }
  1807. return retval;
  1808. }
  1809. /** Return 1 if we should apply rate limiting to <b>conn</b>,
  1810. * and 0 otherwise. Right now this just checks if it's an internal
  1811. * IP address or an internal connection. */
  1812. static int
  1813. connection_is_rate_limited(connection_t *conn)
  1814. {
  1815. const or_options_t *options = get_options();
  1816. if (conn->linked)
  1817. return 0; /* Internal connection */
  1818. else if (! options->CountPrivateBandwidth &&
  1819. (tor_addr_family(&conn->addr) == AF_UNSPEC || /* no address */
  1820. tor_addr_is_internal(&conn->addr, 0)))
  1821. return 0; /* Internal address */
  1822. else
  1823. return 1;
  1824. }
  1825. #ifdef USE_BUFFEREVENTS
  1826. static struct bufferevent_rate_limit_group *global_rate_limit = NULL;
  1827. #else
  1828. extern int global_read_bucket, global_write_bucket;
  1829. extern int global_relayed_read_bucket, global_relayed_write_bucket;
  1830. /** Did either global write bucket run dry last second? If so,
  1831. * we are likely to run dry again this second, so be stingy with the
  1832. * tokens we just put in. */
  1833. static int write_buckets_empty_last_second = 0;
  1834. #endif
  1835. /** How many seconds of no active local circuits will make the
  1836. * connection revert to the "relayed" bandwidth class? */
  1837. #define CLIENT_IDLE_TIME_FOR_PRIORITY 30
  1838. #ifndef USE_BUFFEREVENTS
  1839. /** Return 1 if <b>conn</b> should use tokens from the "relayed"
  1840. * bandwidth rates, else 0. Currently, only OR conns with bandwidth
  1841. * class 1, and directory conns that are serving data out, count.
  1842. */
  1843. static int
  1844. connection_counts_as_relayed_traffic(connection_t *conn, time_t now)
  1845. {
  1846. if (conn->type == CONN_TYPE_OR &&
  1847. TO_OR_CONN(conn)->client_used + CLIENT_IDLE_TIME_FOR_PRIORITY < now)
  1848. return 1;
  1849. if (conn->type == CONN_TYPE_DIR && DIR_CONN_IS_SERVER(conn))
  1850. return 1;
  1851. return 0;
  1852. }
  1853. /** Helper function to decide how many bytes out of <b>global_bucket</b>
  1854. * we're willing to use for this transaction. <b>base</b> is the size
  1855. * of a cell on the network; <b>priority</b> says whether we should
  1856. * write many of them or just a few; and <b>conn_bucket</b> (if
  1857. * non-negative) provides an upper limit for our answer. */
  1858. static ssize_t
  1859. connection_bucket_round_robin(int base, int priority,
  1860. ssize_t global_bucket, ssize_t conn_bucket)
  1861. {
  1862. ssize_t at_most;
  1863. ssize_t num_bytes_high = (priority ? 32 : 16) * base;
  1864. ssize_t num_bytes_low = (priority ? 4 : 2) * base;
  1865. /* Do a rudimentary round-robin so one circuit can't hog a connection.
  1866. * Pick at most 32 cells, at least 4 cells if possible, and if we're in
  1867. * the middle pick 1/8 of the available bandwidth. */
  1868. at_most = global_bucket / 8;
  1869. at_most -= (at_most % base); /* round down */
  1870. if (at_most > num_bytes_high) /* 16 KB, or 8 KB for low-priority */
  1871. at_most = num_bytes_high;
  1872. else if (at_most < num_bytes_low) /* 2 KB, or 1 KB for low-priority */
  1873. at_most = num_bytes_low;
  1874. if (at_most > global_bucket)
  1875. at_most = global_bucket;
  1876. if (conn_bucket >= 0 && at_most > conn_bucket)
  1877. at_most = conn_bucket;
  1878. if (at_most < 0)
  1879. return 0;
  1880. return at_most;
  1881. }
  1882. /** How many bytes at most can we read onto this connection? */
  1883. static ssize_t
  1884. connection_bucket_read_limit(connection_t *conn, time_t now)
  1885. {
  1886. int base = connection_speaks_cells(conn) ?
  1887. CELL_NETWORK_SIZE : RELAY_PAYLOAD_SIZE;
  1888. int priority = conn->type != CONN_TYPE_DIR;
  1889. int conn_bucket = -1;
  1890. int global_bucket = global_read_bucket;
  1891. if (connection_speaks_cells(conn)) {
  1892. or_connection_t *or_conn = TO_OR_CONN(conn);
  1893. if (conn->state == OR_CONN_STATE_OPEN)
  1894. conn_bucket = or_conn->read_bucket;
  1895. }
  1896. if (!connection_is_rate_limited(conn)) {
  1897. /* be willing to read on local conns even if our buckets are empty */
  1898. return conn_bucket>=0 ? conn_bucket : 1<<14;
  1899. }
  1900. if (connection_counts_as_relayed_traffic(conn, now) &&
  1901. global_relayed_read_bucket <= global_read_bucket)
  1902. global_bucket = global_relayed_read_bucket;
  1903. return connection_bucket_round_robin(base, priority,
  1904. global_bucket, conn_bucket);
  1905. }
  1906. /** How many bytes at most can we write onto this connection? */
  1907. ssize_t
  1908. connection_bucket_write_limit(connection_t *conn, time_t now)
  1909. {
  1910. int base = connection_speaks_cells(conn) ?
  1911. CELL_NETWORK_SIZE : RELAY_PAYLOAD_SIZE;
  1912. int priority = conn->type != CONN_TYPE_DIR;
  1913. int conn_bucket = (int)conn->outbuf_flushlen;
  1914. int global_bucket = global_write_bucket;
  1915. if (!connection_is_rate_limited(conn)) {
  1916. /* be willing to write to local conns even if our buckets are empty */
  1917. return conn->outbuf_flushlen;
  1918. }
  1919. if (connection_speaks_cells(conn)) {
  1920. /* use the per-conn write limit if it's lower, but if it's less
  1921. * than zero just use zero */
  1922. or_connection_t *or_conn = TO_OR_CONN(conn);
  1923. if (conn->state == OR_CONN_STATE_OPEN)
  1924. if (or_conn->write_bucket < conn_bucket)
  1925. conn_bucket = or_conn->write_bucket >= 0 ?
  1926. or_conn->write_bucket : 0;
  1927. }
  1928. if (connection_counts_as_relayed_traffic(conn, now) &&
  1929. global_relayed_write_bucket <= global_write_bucket)
  1930. global_bucket = global_relayed_write_bucket;
  1931. return connection_bucket_round_robin(base, priority,
  1932. global_bucket, conn_bucket);
  1933. }
  1934. #else
  1935. static ssize_t
  1936. connection_bucket_read_limit(connection_t *conn, time_t now)
  1937. {
  1938. (void) now;
  1939. return bufferevent_get_max_to_read(conn->bufev);
  1940. }
  1941. ssize_t
  1942. connection_bucket_write_limit(connection_t *conn, time_t now)
  1943. {
  1944. (void) now;
  1945. return bufferevent_get_max_to_write(conn->bufev);
  1946. }
  1947. #endif
  1948. /** Return 1 if the global write buckets are low enough that we
  1949. * shouldn't send <b>attempt</b> bytes of low-priority directory stuff
  1950. * out to <b>conn</b>. Else return 0.
  1951. * Priority is 1 for v1 requests (directories and running-routers),
  1952. * and 2 for v2 requests (statuses and descriptors). But see FFFF in
  1953. * directory_handle_command_get() for why we don't use priority 2 yet.
  1954. *
  1955. * There are a lot of parameters we could use here:
  1956. * - global_relayed_write_bucket. Low is bad.
  1957. * - global_write_bucket. Low is bad.
  1958. * - bandwidthrate. Low is bad.
  1959. * - bandwidthburst. Not a big factor?
  1960. * - attempt. High is bad.
  1961. * - total bytes queued on outbufs. High is bad. But I'm wary of
  1962. * using this, since a few slow-flushing queues will pump up the
  1963. * number without meaning what we meant to mean. What we really
  1964. * mean is "total directory bytes added to outbufs recently", but
  1965. * that's harder to quantify and harder to keep track of.
  1966. */
  1967. int
  1968. global_write_bucket_low(connection_t *conn, size_t attempt, int priority)
  1969. {
  1970. #ifdef USE_BUFFEREVENTS
  1971. ssize_t smaller_bucket = bufferevent_get_max_to_write(conn->bufev);
  1972. #else
  1973. int smaller_bucket = global_write_bucket < global_relayed_write_bucket ?
  1974. global_write_bucket : global_relayed_write_bucket;
  1975. #endif
  1976. if (authdir_mode(get_options()) && priority>1)
  1977. return 0; /* there's always room to answer v2 if we're an auth dir */
  1978. if (!connection_is_rate_limited(conn))
  1979. return 0; /* local conns don't get limited */
  1980. if (smaller_bucket < (int)attempt)
  1981. return 1; /* not enough space no matter the priority */
  1982. #ifndef USE_BUFFEREVENTS
  1983. if (write_buckets_empty_last_second)
  1984. return 1; /* we're already hitting our limits, no more please */
  1985. #endif
  1986. if (priority == 1) { /* old-style v1 query */
  1987. /* Could we handle *two* of these requests within the next two seconds? */
  1988. const or_options_t *options = get_options();
  1989. int64_t can_write = (int64_t)smaller_bucket
  1990. + 2*(options->RelayBandwidthRate ? options->RelayBandwidthRate :
  1991. options->BandwidthRate);
  1992. if (can_write < 2*(int64_t)attempt)
  1993. return 1;
  1994. } else { /* v2 query */
  1995. /* no further constraints yet */
  1996. }
  1997. return 0;
  1998. }
  1999. #ifndef USE_BUFFEREVENTS
  2000. /** We just read <b>num_read</b> and wrote <b>num_written</b> bytes
  2001. * onto <b>conn</b>. Decrement buckets appropriately. */
  2002. static void
  2003. connection_buckets_decrement(connection_t *conn, time_t now,
  2004. size_t num_read, size_t num_written)
  2005. {
  2006. if (num_written >= INT_MAX || num_read >= INT_MAX) {
  2007. log_err(LD_BUG, "Value out of range. num_read=%lu, num_written=%lu, "
  2008. "connection type=%s, state=%s",
  2009. (unsigned long)num_read, (unsigned long)num_written,
  2010. conn_type_to_string(conn->type),
  2011. conn_state_to_string(conn->type, conn->state));
  2012. if (num_written >= INT_MAX) num_written = 1;
  2013. if (num_read >= INT_MAX) num_read = 1;
  2014. tor_fragile_assert();
  2015. }
  2016. /* Count bytes of answering direct and tunneled directory requests */
  2017. if (conn->type == CONN_TYPE_DIR && conn->purpose == DIR_PURPOSE_SERVER) {
  2018. if (num_read > 0)
  2019. rep_hist_note_dir_bytes_read(num_read, now);
  2020. if (num_written > 0)
  2021. rep_hist_note_dir_bytes_written(num_written, now);
  2022. }
  2023. if (!connection_is_rate_limited(conn))
  2024. return; /* local IPs are free */
  2025. if (conn->type == CONN_TYPE_OR)
  2026. rep_hist_note_or_conn_bytes(conn->global_identifier, num_read,
  2027. num_written, now);
  2028. if (num_read > 0) {
  2029. rep_hist_note_bytes_read(num_read, now);
  2030. }
  2031. if (num_written > 0) {
  2032. rep_hist_note_bytes_written(num_written, now);
  2033. }
  2034. if (conn->type == CONN_TYPE_EXIT)
  2035. rep_hist_note_exit_bytes(conn->port, num_written, num_read);
  2036. if (connection_counts_as_relayed_traffic(conn, now)) {
  2037. global_relayed_read_bucket -= (int)num_read;
  2038. global_relayed_write_bucket -= (int)num_written;
  2039. }
  2040. global_read_bucket -= (int)num_read;
  2041. global_write_bucket -= (int)num_written;
  2042. if (connection_speaks_cells(conn) && conn->state == OR_CONN_STATE_OPEN) {
  2043. TO_OR_CONN(conn)->read_bucket -= (int)num_read;
  2044. TO_OR_CONN(conn)->write_bucket -= (int)num_written;
  2045. }
  2046. }
  2047. /** If we have exhausted our global buckets, or the buckets for conn,
  2048. * stop reading. */
  2049. static void
  2050. connection_consider_empty_read_buckets(connection_t *conn)
  2051. {
  2052. const char *reason;
  2053. if (global_read_bucket <= 0) {
  2054. reason = "global read bucket exhausted. Pausing.";
  2055. } else if (connection_counts_as_relayed_traffic(conn, approx_time()) &&
  2056. global_relayed_read_bucket <= 0) {
  2057. reason = "global relayed read bucket exhausted. Pausing.";
  2058. } else if (connection_speaks_cells(conn) &&
  2059. conn->state == OR_CONN_STATE_OPEN &&
  2060. TO_OR_CONN(conn)->read_bucket <= 0) {
  2061. reason = "connection read bucket exhausted. Pausing.";
  2062. } else
  2063. return; /* all good, no need to stop it */
  2064. LOG_FN_CONN(conn, (LOG_DEBUG, LD_NET, "%s", reason));
  2065. conn->read_blocked_on_bw = 1;
  2066. connection_stop_reading(conn);
  2067. }
  2068. /** If we have exhausted our global buckets, or the buckets for conn,
  2069. * stop writing. */
  2070. static void
  2071. connection_consider_empty_write_buckets(connection_t *conn)
  2072. {
  2073. const char *reason;
  2074. if (global_write_bucket <= 0) {
  2075. reason = "global write bucket exhausted. Pausing.";
  2076. } else if (connection_counts_as_relayed_traffic(conn, approx_time()) &&
  2077. global_relayed_write_bucket <= 0) {
  2078. reason = "global relayed write bucket exhausted. Pausing.";
  2079. } else if (connection_speaks_cells(conn) &&
  2080. conn->state == OR_CONN_STATE_OPEN &&
  2081. TO_OR_CONN(conn)->write_bucket <= 0) {
  2082. reason = "connection write bucket exhausted. Pausing.";
  2083. } else
  2084. return; /* all good, no need to stop it */
  2085. LOG_FN_CONN(conn, (LOG_DEBUG, LD_NET, "%s", reason));
  2086. conn->write_blocked_on_bw = 1;
  2087. connection_stop_writing(conn);
  2088. }
  2089. /** Initialize the global read bucket to options-\>BandwidthBurst. */
  2090. void
  2091. connection_bucket_init(void)
  2092. {
  2093. const or_options_t *options = get_options();
  2094. /* start it at max traffic */
  2095. global_read_bucket = (int)options->BandwidthBurst;
  2096. global_write_bucket = (int)options->BandwidthBurst;
  2097. if (options->RelayBandwidthRate) {
  2098. global_relayed_read_bucket = (int)options->RelayBandwidthBurst;
  2099. global_relayed_write_bucket = (int)options->RelayBandwidthBurst;
  2100. } else {
  2101. global_relayed_read_bucket = (int)options->BandwidthBurst;
  2102. global_relayed_write_bucket = (int)options->BandwidthBurst;
  2103. }
  2104. }
  2105. /** Refill a single <b>bucket</b> called <b>name</b> with bandwidth rate
  2106. * <b>rate</b> and bandwidth burst <b>burst</b>, assuming that
  2107. * <b>seconds_elapsed</b> seconds have passed since the last call.
  2108. **/
  2109. static void
  2110. connection_bucket_refill_helper(int *bucket, int rate, int burst,
  2111. int seconds_elapsed, const char *name)
  2112. {
  2113. int starting_bucket = *bucket;
  2114. if (starting_bucket < burst && seconds_elapsed) {
  2115. if (((burst - starting_bucket)/seconds_elapsed) < rate) {
  2116. *bucket = burst; /* We would overflow the bucket; just set it to
  2117. * the maximum. */
  2118. } else {
  2119. int incr = rate*seconds_elapsed;
  2120. *bucket += incr;
  2121. if (*bucket > burst || *bucket < starting_bucket) {
  2122. /* If we overflow the burst, or underflow our starting bucket,
  2123. * cap the bucket value to burst. */
  2124. /* XXXX this might be redundant now, but it doesn't show up
  2125. * in profiles. Remove it after analysis. */
  2126. *bucket = burst;
  2127. }
  2128. }
  2129. log(LOG_DEBUG, LD_NET,"%s now %d.", name, *bucket);
  2130. }
  2131. }
  2132. /** A second has rolled over; increment buckets appropriately. */
  2133. void
  2134. connection_bucket_refill(int seconds_elapsed, time_t now)
  2135. {
  2136. const or_options_t *options = get_options();
  2137. smartlist_t *conns = get_connection_array();
  2138. int relayrate, relayburst;
  2139. if (options->RelayBandwidthRate) {
  2140. relayrate = (int)options->RelayBandwidthRate;
  2141. relayburst = (int)options->RelayBandwidthBurst;
  2142. } else {
  2143. relayrate = (int)options->BandwidthRate;
  2144. relayburst = (int)options->BandwidthBurst;
  2145. }
  2146. tor_assert(seconds_elapsed >= 0);
  2147. write_buckets_empty_last_second =
  2148. global_relayed_write_bucket <= 0 || global_write_bucket <= 0;
  2149. /* refill the global buckets */
  2150. connection_bucket_refill_helper(&global_read_bucket,
  2151. (int)options->BandwidthRate,
  2152. (int)options->BandwidthBurst,
  2153. seconds_elapsed, "global_read_bucket");
  2154. connection_bucket_refill_helper(&global_write_bucket,
  2155. (int)options->BandwidthRate,
  2156. (int)options->BandwidthBurst,
  2157. seconds_elapsed, "global_write_bucket");
  2158. connection_bucket_refill_helper(&global_relayed_read_bucket,
  2159. relayrate, relayburst, seconds_elapsed,
  2160. "global_relayed_read_bucket");
  2161. connection_bucket_refill_helper(&global_relayed_write_bucket,
  2162. relayrate, relayburst, seconds_elapsed,
  2163. "global_relayed_write_bucket");
  2164. /* refill the per-connection buckets */
  2165. SMARTLIST_FOREACH(conns, connection_t *, conn,
  2166. {
  2167. if (connection_speaks_cells(conn)) {
  2168. or_connection_t *or_conn = TO_OR_CONN(conn);
  2169. if (connection_bucket_should_increase(or_conn->read_bucket, or_conn)) {
  2170. connection_bucket_refill_helper(&or_conn->read_bucket,
  2171. or_conn->bandwidthrate,
  2172. or_conn->bandwidthburst,
  2173. seconds_elapsed,
  2174. "or_conn->read_bucket");
  2175. }
  2176. if (connection_bucket_should_increase(or_conn->write_bucket, or_conn)) {
  2177. connection_bucket_refill_helper(&or_conn->write_bucket,
  2178. or_conn->bandwidthrate,
  2179. or_conn->bandwidthburst,
  2180. seconds_elapsed,
  2181. "or_conn->write_bucket");
  2182. }
  2183. }
  2184. if (conn->read_blocked_on_bw == 1 /* marked to turn reading back on now */
  2185. && global_read_bucket > 0 /* and we're allowed to read */
  2186. && (!connection_counts_as_relayed_traffic(conn, now) ||
  2187. global_relayed_read_bucket > 0) /* even if we're relayed traffic */
  2188. && (!connection_speaks_cells(conn) ||
  2189. conn->state != OR_CONN_STATE_OPEN ||
  2190. TO_OR_CONN(conn)->read_bucket > 0)) {
  2191. /* and either a non-cell conn or a cell conn with non-empty bucket */
  2192. LOG_FN_CONN(conn, (LOG_DEBUG,LD_NET,
  2193. "waking up conn (fd %d) for read", (int)conn->s));
  2194. conn->read_blocked_on_bw = 0;
  2195. connection_start_reading(conn);
  2196. }
  2197. if (conn->write_blocked_on_bw == 1
  2198. && global_write_bucket > 0 /* and we're allowed to write */
  2199. && (!connection_counts_as_relayed_traffic(conn, now) ||
  2200. global_relayed_write_bucket > 0) /* even if it's relayed traffic */
  2201. && (!connection_speaks_cells(conn) ||
  2202. conn->state != OR_CONN_STATE_OPEN ||
  2203. TO_OR_CONN(conn)->write_bucket > 0)) {
  2204. LOG_FN_CONN(conn, (LOG_DEBUG,LD_NET,
  2205. "waking up conn (fd %d) for write", (int)conn->s));
  2206. conn->write_blocked_on_bw = 0;
  2207. connection_start_writing(conn);
  2208. }
  2209. });
  2210. }
  2211. /** Is the <b>bucket</b> for connection <b>conn</b> low enough that we
  2212. * should add another pile of tokens to it?
  2213. */
  2214. static int
  2215. connection_bucket_should_increase(int bucket, or_connection_t *conn)
  2216. {
  2217. tor_assert(conn);
  2218. if (conn->_base.state != OR_CONN_STATE_OPEN)
  2219. return 0; /* only open connections play the rate limiting game */
  2220. if (bucket >= conn->bandwidthburst)
  2221. return 0;
  2222. return 1;
  2223. }
  2224. #else
  2225. static void
  2226. connection_buckets_decrement(connection_t *conn, time_t now,
  2227. size_t num_read, size_t num_written)
  2228. {
  2229. (void) conn;
  2230. (void) now;
  2231. (void) num_read;
  2232. (void) num_written;
  2233. /* Libevent does this for us. */
  2234. }
  2235. void
  2236. connection_bucket_refill(int seconds_elapsed, time_t now)
  2237. {
  2238. (void) seconds_elapsed;
  2239. (void) now;
  2240. /* Libevent does this for us. */
  2241. }
  2242. void
  2243. connection_bucket_init(void)
  2244. {
  2245. const or_options_t *options = get_options();
  2246. const struct timeval *tick = tor_libevent_get_one_tick_timeout();
  2247. struct ev_token_bucket_cfg *bucket_cfg;
  2248. uint64_t rate, burst;
  2249. if (options->RelayBandwidthRate) {
  2250. rate = options->RelayBandwidthRate;
  2251. burst = options->RelayBandwidthBurst;
  2252. } else {
  2253. rate = options->BandwidthRate;
  2254. burst = options->BandwidthBurst;
  2255. }
  2256. rate /= TOR_LIBEVENT_TICKS_PER_SECOND;
  2257. bucket_cfg = ev_token_bucket_cfg_new((uint32_t)rate, (uint32_t)burst,
  2258. (uint32_t)rate, (uint32_t)burst,
  2259. tick);
  2260. if (!global_rate_limit) {
  2261. global_rate_limit =
  2262. bufferevent_rate_limit_group_new(tor_libevent_get_base(), bucket_cfg);
  2263. } else {
  2264. bufferevent_rate_limit_group_set_cfg(global_rate_limit, bucket_cfg);
  2265. }
  2266. ev_token_bucket_cfg_free(bucket_cfg);
  2267. }
  2268. void
  2269. connection_get_rate_limit_totals(uint64_t *read_out, uint64_t *written_out)
  2270. {
  2271. if (global_rate_limit == NULL) {
  2272. *read_out = *written_out = 0;
  2273. } else {
  2274. bufferevent_rate_limit_group_get_totals(
  2275. global_rate_limit, read_out, written_out);
  2276. }
  2277. }
  2278. /** DOCDOC */
  2279. void
  2280. connection_enable_rate_limiting(connection_t *conn)
  2281. {
  2282. if (conn->bufev) {
  2283. if (!global_rate_limit)
  2284. connection_bucket_init();
  2285. bufferevent_add_to_rate_limit_group(conn->bufev, global_rate_limit);
  2286. }
  2287. }
  2288. static void
  2289. connection_consider_empty_write_buckets(connection_t *conn)
  2290. {
  2291. (void) conn;
  2292. }
  2293. static void
  2294. connection_consider_empty_read_buckets(connection_t *conn)
  2295. {
  2296. (void) conn;
  2297. }
  2298. #endif
  2299. /** Read bytes from conn-\>s and process them.
  2300. *
  2301. * This function gets called from conn_read() in main.c, either
  2302. * when poll() has declared that conn wants to read, or (for OR conns)
  2303. * when there are pending TLS bytes.
  2304. *
  2305. * It calls connection_read_to_buf() to bring in any new bytes,
  2306. * and then calls connection_process_inbuf() to process them.
  2307. *
  2308. * Mark the connection and return -1 if you want to close it, else
  2309. * return 0.
  2310. */
  2311. static int
  2312. connection_handle_read_impl(connection_t *conn)
  2313. {
  2314. ssize_t max_to_read=-1, try_to_read;
  2315. size_t before, n_read = 0;
  2316. int socket_error = 0;
  2317. if (conn->marked_for_close)
  2318. return 0; /* do nothing */
  2319. conn->timestamp_lastread = approx_time();
  2320. switch (conn->type) {
  2321. case CONN_TYPE_OR_LISTENER:
  2322. return connection_handle_listener_read(conn, CONN_TYPE_OR);
  2323. case CONN_TYPE_AP_LISTENER:
  2324. case CONN_TYPE_AP_TRANS_LISTENER:
  2325. case CONN_TYPE_AP_NATD_LISTENER:
  2326. return connection_handle_listener_read(conn, CONN_TYPE_AP);
  2327. case CONN_TYPE_DIR_LISTENER:
  2328. return connection_handle_listener_read(conn, CONN_TYPE_DIR);
  2329. case CONN_TYPE_CONTROL_LISTENER:
  2330. return connection_handle_listener_read(conn, CONN_TYPE_CONTROL);
  2331. case CONN_TYPE_AP_DNS_LISTENER:
  2332. /* This should never happen; eventdns.c handles the reads here. */
  2333. tor_fragile_assert();
  2334. return 0;
  2335. }
  2336. loop_again:
  2337. try_to_read = max_to_read;
  2338. tor_assert(!conn->marked_for_close);
  2339. before = buf_datalen(conn->inbuf);
  2340. if (connection_read_to_buf(conn, &max_to_read, &socket_error) < 0) {
  2341. /* There's a read error; kill the connection.*/
  2342. if (conn->type == CONN_TYPE_OR &&
  2343. conn->state == OR_CONN_STATE_CONNECTING) {
  2344. connection_or_connect_failed(TO_OR_CONN(conn),
  2345. errno_to_orconn_end_reason(socket_error),
  2346. tor_socket_strerror(socket_error));
  2347. }
  2348. if (CONN_IS_EDGE(conn)) {
  2349. edge_connection_t *edge_conn = TO_EDGE_CONN(conn);
  2350. connection_edge_end_errno(edge_conn);
  2351. if (edge_conn->socks_request) /* broken, don't send a socks reply back */
  2352. edge_conn->socks_request->has_finished = 1;
  2353. }
  2354. connection_close_immediate(conn); /* Don't flush; connection is dead. */
  2355. connection_mark_for_close(conn);
  2356. return -1;
  2357. }
  2358. n_read += buf_datalen(conn->inbuf) - before;
  2359. if (CONN_IS_EDGE(conn) && try_to_read != max_to_read) {
  2360. /* instruct it not to try to package partial cells. */
  2361. if (connection_process_inbuf(conn, 0) < 0) {
  2362. return -1;
  2363. }
  2364. if (!conn->marked_for_close &&
  2365. connection_is_reading(conn) &&
  2366. !conn->inbuf_reached_eof &&
  2367. max_to_read > 0)
  2368. goto loop_again; /* try reading again, in case more is here now */
  2369. }
  2370. /* one last try, packaging partial cells and all. */
  2371. if (!conn->marked_for_close &&
  2372. connection_process_inbuf(conn, 1) < 0) {
  2373. return -1;
  2374. }
  2375. if (conn->linked_conn) {
  2376. /* The other side's handle_write() will never actually get called, so
  2377. * we need to invoke the appropriate callbacks ourself. */
  2378. connection_t *linked = conn->linked_conn;
  2379. if (n_read) {
  2380. /* Probably a no-op, since linked conns typically don't count for
  2381. * bandwidth rate limiting. But do it anyway so we can keep stats
  2382. * accurately. Note that since we read the bytes from conn, and
  2383. * we're writing the bytes onto the linked connection, we count
  2384. * these as <i>written</i> bytes. */
  2385. connection_buckets_decrement(linked, approx_time(), 0, n_read);
  2386. if (connection_flushed_some(linked) < 0)
  2387. connection_mark_for_close(linked);
  2388. if (!connection_wants_to_flush(linked))
  2389. connection_finished_flushing(linked);
  2390. }
  2391. if (!buf_datalen(linked->outbuf) && conn->active_on_link)
  2392. connection_stop_reading_from_linked_conn(conn);
  2393. }
  2394. /* If we hit the EOF, call connection_reached_eof(). */
  2395. if (!conn->marked_for_close &&
  2396. conn->inbuf_reached_eof &&
  2397. connection_reached_eof(conn) < 0) {
  2398. return -1;
  2399. }
  2400. return 0;
  2401. }
  2402. int
  2403. connection_handle_read(connection_t *conn)
  2404. {
  2405. int res;
  2406. tor_gettimeofday_cache_clear();
  2407. res = connection_handle_read_impl(conn);
  2408. return res;
  2409. }
  2410. /** Pull in new bytes from conn-\>s or conn-\>linked_conn onto conn-\>inbuf,
  2411. * either directly or via TLS. Reduce the token buckets by the number of bytes
  2412. * read.
  2413. *
  2414. * If *max_to_read is -1, then decide it ourselves, else go with the
  2415. * value passed to us. When returning, if it's changed, subtract the
  2416. * number of bytes we read from *max_to_read.
  2417. *
  2418. * Return -1 if we want to break conn, else return 0.
  2419. */
  2420. static int
  2421. connection_read_to_buf(connection_t *conn, ssize_t *max_to_read,
  2422. int *socket_error)
  2423. {
  2424. int result;
  2425. ssize_t at_most = *max_to_read;
  2426. size_t slack_in_buf, more_to_read;
  2427. size_t n_read = 0, n_written = 0;
  2428. if (at_most == -1) { /* we need to initialize it */
  2429. /* how many bytes are we allowed to read? */
  2430. at_most = connection_bucket_read_limit(conn, approx_time());
  2431. }
  2432. slack_in_buf = buf_slack(conn->inbuf);
  2433. again:
  2434. if ((size_t)at_most > slack_in_buf && slack_in_buf >= 1024) {
  2435. more_to_read = at_most - slack_in_buf;
  2436. at_most = slack_in_buf;
  2437. } else {
  2438. more_to_read = 0;
  2439. }
  2440. if (connection_speaks_cells(conn) &&
  2441. conn->state > OR_CONN_STATE_PROXY_HANDSHAKING) {
  2442. int pending;
  2443. or_connection_t *or_conn = TO_OR_CONN(conn);
  2444. size_t initial_size;
  2445. if (conn->state == OR_CONN_STATE_TLS_HANDSHAKING ||
  2446. conn->state == OR_CONN_STATE_TLS_CLIENT_RENEGOTIATING) {
  2447. /* continue handshaking even if global token bucket is empty */
  2448. return connection_tls_continue_handshake(or_conn);
  2449. }
  2450. log_debug(LD_NET,
  2451. "%d: starting, inbuf_datalen %ld (%d pending in tls object)."
  2452. " at_most %ld.",
  2453. (int)conn->s,(long)buf_datalen(conn->inbuf),
  2454. tor_tls_get_pending_bytes(or_conn->tls), (long)at_most);
  2455. initial_size = buf_datalen(conn->inbuf);
  2456. /* else open, or closing */
  2457. result = read_to_buf_tls(or_conn->tls, at_most, conn->inbuf);
  2458. if (TOR_TLS_IS_ERROR(result) || result == TOR_TLS_CLOSE)
  2459. or_conn->tls_error = result;
  2460. else
  2461. or_conn->tls_error = 0;
  2462. switch (result) {
  2463. case TOR_TLS_CLOSE:
  2464. case TOR_TLS_ERROR_IO:
  2465. log_debug(LD_NET,"TLS connection closed %son read. Closing. "
  2466. "(Nickname %s, address %s)",
  2467. result == TOR_TLS_CLOSE ? "cleanly " : "",
  2468. or_conn->nickname ? or_conn->nickname : "not set",
  2469. conn->address);
  2470. return result;
  2471. CASE_TOR_TLS_ERROR_ANY_NONIO:
  2472. log_debug(LD_NET,"tls error [%s]. breaking (nickname %s, address %s).",
  2473. tor_tls_err_to_string(result),
  2474. or_conn->nickname ? or_conn->nickname : "not set",
  2475. conn->address);
  2476. return result;
  2477. case TOR_TLS_WANTWRITE:
  2478. connection_start_writing(conn);
  2479. return 0;
  2480. case TOR_TLS_WANTREAD: /* we're already reading */
  2481. case TOR_TLS_DONE: /* no data read, so nothing to process */
  2482. result = 0;
  2483. break; /* so we call bucket_decrement below */
  2484. default:
  2485. break;
  2486. }
  2487. pending = tor_tls_get_pending_bytes(or_conn->tls);
  2488. if (pending) {
  2489. /* If we have any pending bytes, we read them now. This *can*
  2490. * take us over our read allotment, but really we shouldn't be
  2491. * believing that SSL bytes are the same as TCP bytes anyway. */
  2492. int r2 = read_to_buf_tls(or_conn->tls, pending, conn->inbuf);
  2493. if (r2<0) {
  2494. log_warn(LD_BUG, "apparently, reading pending bytes can fail.");
  2495. return -1;
  2496. }
  2497. }
  2498. result = (int)(buf_datalen(conn->inbuf)-initial_size);
  2499. tor_tls_get_n_raw_bytes(or_conn->tls, &n_read, &n_written);
  2500. log_debug(LD_GENERAL, "After TLS read of %d: %ld read, %ld written",
  2501. result, (long)n_read, (long)n_written);
  2502. } else if (conn->linked) {
  2503. if (conn->linked_conn) {
  2504. result = move_buf_to_buf(conn->inbuf, conn->linked_conn->outbuf,
  2505. &conn->linked_conn->outbuf_flushlen);
  2506. } else {
  2507. result = 0;
  2508. }
  2509. //log_notice(LD_GENERAL, "Moved %d bytes on an internal link!", result);
  2510. /* If the other side has disappeared, or if it's been marked for close and
  2511. * we flushed its outbuf, then we should set our inbuf_reached_eof. */
  2512. if (!conn->linked_conn ||
  2513. (conn->linked_conn->marked_for_close &&
  2514. buf_datalen(conn->linked_conn->outbuf) == 0))
  2515. conn->inbuf_reached_eof = 1;
  2516. n_read = (size_t) result;
  2517. } else {
  2518. /* !connection_speaks_cells, !conn->linked_conn. */
  2519. int reached_eof = 0;
  2520. CONN_LOG_PROTECT(conn,
  2521. result = read_to_buf(conn->s, at_most, conn->inbuf, &reached_eof,
  2522. socket_error));
  2523. if (reached_eof)
  2524. conn->inbuf_reached_eof = 1;
  2525. // log_fn(LOG_DEBUG,"read_to_buf returned %d.",read_result);
  2526. if (result < 0)
  2527. return -1;
  2528. n_read = (size_t) result;
  2529. }
  2530. if (n_read > 0) {
  2531. /* change *max_to_read */
  2532. *max_to_read = at_most - n_read;
  2533. /* Update edge_conn->n_read */
  2534. if (conn->type == CONN_TYPE_AP) {
  2535. edge_connection_t *edge_conn = TO_EDGE_CONN(conn);
  2536. /* Check for overflow: */
  2537. if (PREDICT_LIKELY(UINT32_MAX - edge_conn->n_read > n_read))
  2538. edge_conn->n_read += (int)n_read;
  2539. else
  2540. edge_conn->n_read = UINT32_MAX;
  2541. }
  2542. }
  2543. connection_buckets_decrement(conn, approx_time(), n_read, n_written);
  2544. if (more_to_read && result == at_most) {
  2545. slack_in_buf = buf_slack(conn->inbuf);
  2546. at_most = more_to_read;
  2547. goto again;
  2548. }
  2549. /* Call even if result is 0, since the global read bucket may
  2550. * have reached 0 on a different conn, and this guy needs to
  2551. * know to stop reading. */
  2552. connection_consider_empty_read_buckets(conn);
  2553. if (n_written > 0 && connection_is_writing(conn))
  2554. connection_consider_empty_write_buckets(conn);
  2555. return 0;
  2556. }
  2557. #ifdef USE_BUFFEREVENTS
  2558. /* XXXX These generic versions could be simplified by making them
  2559. type-specific */
  2560. /** Callback: Invoked whenever bytes are added to or drained from an input
  2561. * evbuffer. Used to track the number of bytes read. */
  2562. static void
  2563. evbuffer_inbuf_callback(struct evbuffer *buf,
  2564. const struct evbuffer_cb_info *info, void *arg)
  2565. {
  2566. connection_t *conn = arg;
  2567. (void) buf;
  2568. /* XXXX These need to get real counts on the non-nested TLS case. - NM */
  2569. if (info->n_added) {
  2570. time_t now = approx_time();
  2571. conn->timestamp_lastread = now;
  2572. connection_buckets_decrement(conn, now, info->n_added, 0);
  2573. connection_consider_empty_read_buckets(conn);
  2574. if (conn->type == CONN_TYPE_AP) {
  2575. edge_connection_t *edge_conn = TO_EDGE_CONN(conn);
  2576. /*XXXX022 check for overflow*/
  2577. edge_conn->n_read += (int)info->n_added;
  2578. }
  2579. }
  2580. }
  2581. /** Callback: Invoked whenever bytes are added to or drained from an output
  2582. * evbuffer. Used to track the number of bytes written. */
  2583. static void
  2584. evbuffer_outbuf_callback(struct evbuffer *buf,
  2585. const struct evbuffer_cb_info *info, void *arg)
  2586. {
  2587. connection_t *conn = arg;
  2588. (void)buf;
  2589. if (info->n_deleted) {
  2590. time_t now = approx_time();
  2591. conn->timestamp_lastwritten = now;
  2592. connection_buckets_decrement(conn, now, 0, info->n_deleted);
  2593. connection_consider_empty_write_buckets(conn);
  2594. if (conn->type == CONN_TYPE_AP) {
  2595. edge_connection_t *edge_conn = TO_EDGE_CONN(conn);
  2596. /*XXXX022 check for overflow*/
  2597. edge_conn->n_written += (int)info->n_deleted;
  2598. }
  2599. }
  2600. }
  2601. /** Callback: invoked whenever a bufferevent has read data. */
  2602. void
  2603. connection_handle_read_cb(struct bufferevent *bufev, void *arg)
  2604. {
  2605. connection_t *conn = arg;
  2606. (void) bufev;
  2607. if (!conn->marked_for_close) {
  2608. if (connection_process_inbuf(conn, 1)<0) /* XXXX Always 1? */
  2609. if (!conn->marked_for_close)
  2610. connection_mark_for_close(conn);
  2611. }
  2612. }
  2613. /** Callback: invoked whenever a bufferevent has written data. */
  2614. void
  2615. connection_handle_write_cb(struct bufferevent *bufev, void *arg)
  2616. {
  2617. connection_t *conn = arg;
  2618. struct evbuffer *output;
  2619. if (connection_flushed_some(conn)<0) {
  2620. if (!conn->marked_for_close)
  2621. connection_mark_for_close(conn);
  2622. return;
  2623. }
  2624. output = bufferevent_get_output(bufev);
  2625. if (!evbuffer_get_length(output)) {
  2626. connection_finished_flushing(conn);
  2627. if (conn->marked_for_close && conn->hold_open_until_flushed) {
  2628. conn->hold_open_until_flushed = 0;
  2629. if (conn->linked) {
  2630. /* send eof */
  2631. bufferevent_flush(conn->bufev, EV_WRITE, BEV_FINISHED);
  2632. }
  2633. }
  2634. }
  2635. }
  2636. /** Callback: invoked whenever a bufferevent has had an event (like a
  2637. * connection, or an eof, or an error) occur. */
  2638. void
  2639. connection_handle_event_cb(struct bufferevent *bufev, short event, void *arg)
  2640. {
  2641. connection_t *conn = arg;
  2642. (void) bufev;
  2643. if (event & BEV_EVENT_CONNECTED) {
  2644. tor_assert(connection_state_is_connecting(conn));
  2645. if (connection_finished_connecting(conn)<0)
  2646. return;
  2647. }
  2648. if (event & BEV_EVENT_EOF) {
  2649. if (!conn->marked_for_close) {
  2650. conn->inbuf_reached_eof = 1;
  2651. if (connection_reached_eof(conn)<0)
  2652. return;
  2653. }
  2654. }
  2655. if (event & BEV_EVENT_ERROR) {
  2656. int socket_error = evutil_socket_geterror(conn->s);
  2657. if (conn->type == CONN_TYPE_OR &&
  2658. conn->state == OR_CONN_STATE_CONNECTING) {
  2659. connection_or_connect_failed(TO_OR_CONN(conn),
  2660. errno_to_orconn_end_reason(socket_error),
  2661. tor_socket_strerror(socket_error));
  2662. } else if (CONN_IS_EDGE(conn)) {
  2663. edge_connection_t *edge_conn = TO_EDGE_CONN(conn);
  2664. if (!edge_conn->edge_has_sent_end)
  2665. connection_edge_end_errno(edge_conn);
  2666. if (edge_conn->socks_request) /* broken, don't send a socks reply back */
  2667. edge_conn->socks_request->has_finished = 1;
  2668. }
  2669. connection_close_immediate(conn); /* Connection is dead. */
  2670. if (!conn->marked_for_close)
  2671. connection_mark_for_close(conn);
  2672. }
  2673. }
  2674. /** Set up the generic callbacks for the bufferevent on <b>conn</b>. */
  2675. void
  2676. connection_configure_bufferevent_callbacks(connection_t *conn)
  2677. {
  2678. struct bufferevent *bufev;
  2679. struct evbuffer *input, *output;
  2680. tor_assert(conn->bufev);
  2681. bufev = conn->bufev;
  2682. bufferevent_setcb(bufev,
  2683. connection_handle_read_cb,
  2684. connection_handle_write_cb,
  2685. connection_handle_event_cb,
  2686. conn);
  2687. input = bufferevent_get_input(bufev);
  2688. output = bufferevent_get_output(bufev);
  2689. evbuffer_add_cb(input, evbuffer_inbuf_callback, conn);
  2690. evbuffer_add_cb(output, evbuffer_outbuf_callback, conn);
  2691. }
  2692. #endif
  2693. /** A pass-through to fetch_from_buf. */
  2694. int
  2695. connection_fetch_from_buf(char *string, size_t len, connection_t *conn)
  2696. {
  2697. IF_HAS_BUFFEREVENT(conn, {
  2698. /* XXX overflow -seb */
  2699. return (int)bufferevent_read(conn->bufev, string, len);
  2700. }) ELSE_IF_NO_BUFFEREVENT {
  2701. return fetch_from_buf(string, len, conn->inbuf);
  2702. }
  2703. }
  2704. /** As fetch_from_buf_line(), but read from a connection's input buffer. */
  2705. int
  2706. connection_fetch_from_buf_line(connection_t *conn, char *data,
  2707. size_t *data_len)
  2708. {
  2709. IF_HAS_BUFFEREVENT(conn, {
  2710. int r;
  2711. size_t eol_len=0;
  2712. struct evbuffer *input = bufferevent_get_input(conn->bufev);
  2713. struct evbuffer_ptr ptr =
  2714. evbuffer_search_eol(input, NULL, &eol_len, EVBUFFER_EOL_LF);
  2715. if (ptr.pos == -1)
  2716. return 0; /* No EOL found. */
  2717. if ((size_t)ptr.pos+eol_len >= *data_len) {
  2718. return -1; /* Too long */
  2719. }
  2720. *data_len = ptr.pos+eol_len;
  2721. r = evbuffer_remove(input, data, ptr.pos+eol_len);
  2722. tor_assert(r >= 0);
  2723. data[ptr.pos+eol_len] = '\0';
  2724. return 1;
  2725. }) ELSE_IF_NO_BUFFEREVENT {
  2726. return fetch_from_buf_line(conn->inbuf, data, data_len);
  2727. }
  2728. }
  2729. /** As fetch_from_buf_http, but fetches from a conncetion's input buffer_t or
  2730. * its bufferevent as appropriate. */
  2731. int
  2732. connection_fetch_from_buf_http(connection_t *conn,
  2733. char **headers_out, size_t max_headerlen,
  2734. char **body_out, size_t *body_used,
  2735. size_t max_bodylen, int force_complete)
  2736. {
  2737. IF_HAS_BUFFEREVENT(conn, {
  2738. struct evbuffer *input = bufferevent_get_input(conn->bufev);
  2739. return fetch_from_evbuffer_http(input, headers_out, max_headerlen,
  2740. body_out, body_used, max_bodylen, force_complete);
  2741. }) ELSE_IF_NO_BUFFEREVENT {
  2742. return fetch_from_buf_http(conn->inbuf, headers_out, max_headerlen,
  2743. body_out, body_used, max_bodylen, force_complete);
  2744. }
  2745. }
  2746. /** Return conn-\>outbuf_flushlen: how many bytes conn wants to flush
  2747. * from its outbuf. */
  2748. int
  2749. connection_wants_to_flush(connection_t *conn)
  2750. {
  2751. return conn->outbuf_flushlen > 0;
  2752. }
  2753. /** Are there too many bytes on edge connection <b>conn</b>'s outbuf to
  2754. * send back a relay-level sendme yet? Return 1 if so, 0 if not. Used by
  2755. * connection_edge_consider_sending_sendme().
  2756. */
  2757. int
  2758. connection_outbuf_too_full(connection_t *conn)
  2759. {
  2760. return (conn->outbuf_flushlen > 10*CELL_PAYLOAD_SIZE);
  2761. }
  2762. /** Try to flush more bytes onto <b>conn</b>-\>s.
  2763. *
  2764. * This function gets called either from conn_write() in main.c
  2765. * when poll() has declared that conn wants to write, or below
  2766. * from connection_write_to_buf() when an entire TLS record is ready.
  2767. *
  2768. * Update <b>conn</b>-\>timestamp_lastwritten to now, and call flush_buf
  2769. * or flush_buf_tls appropriately. If it succeeds and there are no more
  2770. * more bytes on <b>conn</b>-\>outbuf, then call connection_finished_flushing
  2771. * on it too.
  2772. *
  2773. * If <b>force</b>, then write as many bytes as possible, ignoring bandwidth
  2774. * limits. (Used for flushing messages to controller connections on fatal
  2775. * errors.)
  2776. *
  2777. * Mark the connection and return -1 if you want to close it, else
  2778. * return 0.
  2779. */
  2780. static int
  2781. connection_handle_write_impl(connection_t *conn, int force)
  2782. {
  2783. int e;
  2784. socklen_t len=(socklen_t)sizeof(e);
  2785. int result;
  2786. ssize_t max_to_write;
  2787. time_t now = approx_time();
  2788. size_t n_read = 0, n_written = 0;
  2789. tor_assert(!connection_is_listener(conn));
  2790. if (conn->marked_for_close || !SOCKET_OK(conn->s))
  2791. return 0; /* do nothing */
  2792. if (conn->in_flushed_some) {
  2793. log_warn(LD_BUG, "called recursively from inside conn->in_flushed_some");
  2794. return 0;
  2795. }
  2796. conn->timestamp_lastwritten = now;
  2797. /* Sometimes, "writable" means "connected". */
  2798. if (connection_state_is_connecting(conn)) {
  2799. if (getsockopt(conn->s, SOL_SOCKET, SO_ERROR, (void*)&e, &len) < 0) {
  2800. log_warn(LD_BUG,
  2801. "getsockopt() syscall failed?! Please report to tor-ops.");
  2802. if (CONN_IS_EDGE(conn))
  2803. connection_edge_end_errno(TO_EDGE_CONN(conn));
  2804. connection_mark_for_close(conn);
  2805. return -1;
  2806. }
  2807. if (e) {
  2808. /* some sort of error, but maybe just inprogress still */
  2809. if (!ERRNO_IS_CONN_EINPROGRESS(e)) {
  2810. log_info(LD_NET,"in-progress connect failed. Removing. (%s)",
  2811. tor_socket_strerror(e));
  2812. if (CONN_IS_EDGE(conn))
  2813. connection_edge_end_errno(TO_EDGE_CONN(conn));
  2814. if (conn->type == CONN_TYPE_OR)
  2815. connection_or_connect_failed(TO_OR_CONN(conn),
  2816. errno_to_orconn_end_reason(e),
  2817. tor_socket_strerror(e));
  2818. connection_close_immediate(conn);
  2819. connection_mark_for_close(conn);
  2820. return -1;
  2821. } else {
  2822. return 0; /* no change, see if next time is better */
  2823. }
  2824. }
  2825. /* The connection is successful. */
  2826. if (connection_finished_connecting(conn)<0)
  2827. return -1;
  2828. }
  2829. max_to_write = force ? (ssize_t)conn->outbuf_flushlen
  2830. : connection_bucket_write_limit(conn, now);
  2831. if (connection_speaks_cells(conn) &&
  2832. conn->state > OR_CONN_STATE_PROXY_HANDSHAKING) {
  2833. or_connection_t *or_conn = TO_OR_CONN(conn);
  2834. if (conn->state == OR_CONN_STATE_TLS_HANDSHAKING ||
  2835. conn->state == OR_CONN_STATE_TLS_CLIENT_RENEGOTIATING) {
  2836. connection_stop_writing(conn);
  2837. if (connection_tls_continue_handshake(or_conn) < 0) {
  2838. /* Don't flush; connection is dead. */
  2839. connection_close_immediate(conn);
  2840. connection_mark_for_close(conn);
  2841. return -1;
  2842. }
  2843. return 0;
  2844. } else if (conn->state == OR_CONN_STATE_TLS_SERVER_RENEGOTIATING) {
  2845. return connection_handle_read(conn);
  2846. }
  2847. /* else open, or closing */
  2848. result = flush_buf_tls(or_conn->tls, conn->outbuf,
  2849. max_to_write, &conn->outbuf_flushlen);
  2850. /* If we just flushed the last bytes, check if this tunneled dir
  2851. * request is done. */
  2852. /* XXXX move this to flushed_some or finished_flushing -NM */
  2853. if (buf_datalen(conn->outbuf) == 0 && conn->dirreq_id)
  2854. geoip_change_dirreq_state(conn->dirreq_id, DIRREQ_TUNNELED,
  2855. DIRREQ_OR_CONN_BUFFER_FLUSHED);
  2856. switch (result) {
  2857. CASE_TOR_TLS_ERROR_ANY:
  2858. case TOR_TLS_CLOSE:
  2859. log_info(LD_NET,result!=TOR_TLS_CLOSE?
  2860. "tls error. breaking.":"TLS connection closed on flush");
  2861. /* Don't flush; connection is dead. */
  2862. connection_close_immediate(conn);
  2863. connection_mark_for_close(conn);
  2864. return -1;
  2865. case TOR_TLS_WANTWRITE:
  2866. log_debug(LD_NET,"wanted write.");
  2867. /* we're already writing */
  2868. return 0;
  2869. case TOR_TLS_WANTREAD:
  2870. /* Make sure to avoid a loop if the receive buckets are empty. */
  2871. log_debug(LD_NET,"wanted read.");
  2872. if (!connection_is_reading(conn)) {
  2873. connection_stop_writing(conn);
  2874. conn->write_blocked_on_bw = 1;
  2875. /* we'll start reading again when we get more tokens in our
  2876. * read bucket; then we'll start writing again too.
  2877. */
  2878. }
  2879. /* else no problem, we're already reading */
  2880. return 0;
  2881. /* case TOR_TLS_DONE:
  2882. * for TOR_TLS_DONE, fall through to check if the flushlen
  2883. * is empty, so we can stop writing.
  2884. */
  2885. }
  2886. tor_tls_get_n_raw_bytes(or_conn->tls, &n_read, &n_written);
  2887. log_debug(LD_GENERAL, "After TLS write of %d: %ld read, %ld written",
  2888. result, (long)n_read, (long)n_written);
  2889. } else {
  2890. CONN_LOG_PROTECT(conn,
  2891. result = flush_buf(conn->s, conn->outbuf,
  2892. max_to_write, &conn->outbuf_flushlen));
  2893. if (result < 0) {
  2894. if (CONN_IS_EDGE(conn))
  2895. connection_edge_end_errno(TO_EDGE_CONN(conn));
  2896. connection_close_immediate(conn); /* Don't flush; connection is dead. */
  2897. connection_mark_for_close(conn);
  2898. return -1;
  2899. }
  2900. n_written = (size_t) result;
  2901. }
  2902. if (n_written && conn->type == CONN_TYPE_AP) {
  2903. edge_connection_t *edge_conn = TO_EDGE_CONN(conn);
  2904. /* Check for overflow: */
  2905. if (PREDICT_LIKELY(UINT32_MAX - edge_conn->n_written > n_written))
  2906. edge_conn->n_written += (int)n_written;
  2907. else
  2908. edge_conn->n_written = UINT32_MAX;
  2909. }
  2910. connection_buckets_decrement(conn, approx_time(), n_read, n_written);
  2911. if (result > 0) {
  2912. /* If we wrote any bytes from our buffer, then call the appropriate
  2913. * functions. */
  2914. if (connection_flushed_some(conn) < 0)
  2915. connection_mark_for_close(conn);
  2916. }
  2917. if (!connection_wants_to_flush(conn)) { /* it's done flushing */
  2918. if (connection_finished_flushing(conn) < 0) {
  2919. /* already marked */
  2920. return -1;
  2921. }
  2922. return 0;
  2923. }
  2924. /* Call even if result is 0, since the global write bucket may
  2925. * have reached 0 on a different conn, and this guy needs to
  2926. * know to stop writing. */
  2927. connection_consider_empty_write_buckets(conn);
  2928. if (n_read > 0 && connection_is_reading(conn))
  2929. connection_consider_empty_read_buckets(conn);
  2930. return 0;
  2931. }
  2932. int
  2933. connection_handle_write(connection_t *conn, int force)
  2934. {
  2935. int res;
  2936. tor_gettimeofday_cache_clear();
  2937. res = connection_handle_write_impl(conn, force);
  2938. return res;
  2939. }
  2940. /**
  2941. * Try to flush data that's waiting for a write on <b>conn</b>. Return
  2942. * -1 on failure, 0 on success.
  2943. *
  2944. * Don't use this function for regular writing; the buffers/bufferevents
  2945. * system should be good enough at scheduling writes there. Instead, this
  2946. * function is for cases when we're about to exit or something and we want
  2947. * to report it right away.
  2948. */
  2949. int
  2950. connection_flush(connection_t *conn)
  2951. {
  2952. IF_HAS_BUFFEREVENT(conn, {
  2953. int r = bufferevent_flush(conn->bufev, EV_WRITE, BEV_FLUSH);
  2954. return (r < 0) ? -1 : 0;
  2955. });
  2956. return connection_handle_write(conn, 1);
  2957. }
  2958. /** OpenSSL TLS record size is 16383; this is close. The goal here is to
  2959. * push data out as soon as we know there's enough for a TLS record, so
  2960. * during periods of high load we won't read entire megabytes from
  2961. * input before pushing any data out. It also has the feature of not
  2962. * growing huge outbufs unless something is slow. */
  2963. #define MIN_TLS_FLUSHLEN 15872
  2964. /** Append <b>len</b> bytes of <b>string</b> onto <b>conn</b>'s
  2965. * outbuf, and ask it to start writing.
  2966. *
  2967. * If <b>zlib</b> is nonzero, this is a directory connection that should get
  2968. * its contents compressed or decompressed as they're written. If zlib is
  2969. * negative, this is the last data to be compressed, and the connection's zlib
  2970. * state should be flushed.
  2971. *
  2972. * If it's an OR conn and an entire TLS record is ready, then try to
  2973. * flush the record now. Similarly, if it's a local control connection
  2974. * and a 64k chunk is ready, try to flush it all, so we don't end up with
  2975. * many megabytes of controller info queued at once.
  2976. */
  2977. void
  2978. _connection_write_to_buf_impl(const char *string, size_t len,
  2979. connection_t *conn, int zlib)
  2980. {
  2981. /* XXXX This function really needs to return -1 on failure. */
  2982. int r;
  2983. size_t old_datalen;
  2984. if (!len && !(zlib<0))
  2985. return;
  2986. /* if it's marked for close, only allow write if we mean to flush it */
  2987. if (conn->marked_for_close && !conn->hold_open_until_flushed)
  2988. return;
  2989. IF_HAS_BUFFEREVENT(conn, {
  2990. if (zlib) {
  2991. int done = zlib < 0;
  2992. r = write_to_evbuffer_zlib(bufferevent_get_output(conn->bufev),
  2993. TO_DIR_CONN(conn)->zlib_state,
  2994. string, len, done);
  2995. } else {
  2996. r = bufferevent_write(conn->bufev, string, len);
  2997. }
  2998. if (r < 0) {
  2999. /* XXXX mark for close? */
  3000. log_warn(LD_NET, "bufferevent_write failed! That shouldn't happen.");
  3001. }
  3002. return;
  3003. });
  3004. old_datalen = buf_datalen(conn->outbuf);
  3005. if (zlib) {
  3006. dir_connection_t *dir_conn = TO_DIR_CONN(conn);
  3007. int done = zlib < 0;
  3008. CONN_LOG_PROTECT(conn, r = write_to_buf_zlib(conn->outbuf,
  3009. dir_conn->zlib_state,
  3010. string, len, done));
  3011. } else {
  3012. CONN_LOG_PROTECT(conn, r = write_to_buf(string, len, conn->outbuf));
  3013. }
  3014. if (r < 0) {
  3015. if (CONN_IS_EDGE(conn)) {
  3016. /* if it failed, it means we have our package/delivery windows set
  3017. wrong compared to our max outbuf size. close the whole circuit. */
  3018. log_warn(LD_NET,
  3019. "write_to_buf failed. Closing circuit (fd %d).", (int)conn->s);
  3020. circuit_mark_for_close(circuit_get_by_edge_conn(TO_EDGE_CONN(conn)),
  3021. END_CIRC_REASON_INTERNAL);
  3022. } else {
  3023. log_warn(LD_NET,
  3024. "write_to_buf failed. Closing connection (fd %d).",
  3025. (int)conn->s);
  3026. connection_mark_for_close(conn);
  3027. }
  3028. return;
  3029. }
  3030. /* If we receive optimistic data in the EXIT_CONN_STATE_RESOLVING
  3031. * state, we don't want to try to write it right away, since
  3032. * conn->write_event won't be set yet. Otherwise, write data from
  3033. * this conn as the socket is available. */
  3034. if (conn->write_event) {
  3035. connection_start_writing(conn);
  3036. }
  3037. if (zlib) {
  3038. conn->outbuf_flushlen += buf_datalen(conn->outbuf) - old_datalen;
  3039. } else {
  3040. ssize_t extra = 0;
  3041. conn->outbuf_flushlen += len;
  3042. /* Should we try flushing the outbuf now? */
  3043. if (conn->in_flushed_some) {
  3044. /* Don't flush the outbuf when the reason we're writing more stuff is
  3045. * _because_ we flushed the outbuf. That's unfair. */
  3046. return;
  3047. }
  3048. if (conn->type == CONN_TYPE_OR &&
  3049. conn->outbuf_flushlen-len < MIN_TLS_FLUSHLEN &&
  3050. conn->outbuf_flushlen >= MIN_TLS_FLUSHLEN) {
  3051. /* We just pushed outbuf_flushlen to MIN_TLS_FLUSHLEN or above;
  3052. * we can send out a full TLS frame now if we like. */
  3053. extra = conn->outbuf_flushlen - MIN_TLS_FLUSHLEN;
  3054. conn->outbuf_flushlen = MIN_TLS_FLUSHLEN;
  3055. } else if (conn->type == CONN_TYPE_CONTROL &&
  3056. !connection_is_rate_limited(conn) &&
  3057. conn->outbuf_flushlen-len < 1<<16 &&
  3058. conn->outbuf_flushlen >= 1<<16) {
  3059. /* just try to flush all of it */
  3060. } else
  3061. return; /* no need to try flushing */
  3062. if (connection_handle_write(conn, 0) < 0) {
  3063. if (!conn->marked_for_close) {
  3064. /* this connection is broken. remove it. */
  3065. log_warn(LD_BUG, "unhandled error on write for "
  3066. "conn (type %d, fd %d); removing",
  3067. conn->type, (int)conn->s);
  3068. tor_fragile_assert();
  3069. /* do a close-immediate here, so we don't try to flush */
  3070. connection_close_immediate(conn);
  3071. }
  3072. return;
  3073. }
  3074. if (extra) {
  3075. conn->outbuf_flushlen += extra;
  3076. connection_start_writing(conn);
  3077. }
  3078. }
  3079. }
  3080. /** Return a connection with given type, address, port, and purpose;
  3081. * or NULL if no such connection exists. */
  3082. connection_t *
  3083. connection_get_by_type_addr_port_purpose(int type,
  3084. const tor_addr_t *addr, uint16_t port,
  3085. int purpose)
  3086. {
  3087. smartlist_t *conns = get_connection_array();
  3088. SMARTLIST_FOREACH(conns, connection_t *, conn,
  3089. {
  3090. if (conn->type == type &&
  3091. tor_addr_eq(&conn->addr, addr) &&
  3092. conn->port == port &&
  3093. conn->purpose == purpose &&
  3094. !conn->marked_for_close)
  3095. return conn;
  3096. });
  3097. return NULL;
  3098. }
  3099. /** Return the stream with id <b>id</b> if it is not already marked for
  3100. * close.
  3101. */
  3102. connection_t *
  3103. connection_get_by_global_id(uint64_t id)
  3104. {
  3105. smartlist_t *conns = get_connection_array();
  3106. SMARTLIST_FOREACH(conns, connection_t *, conn,
  3107. {
  3108. if (conn->global_identifier == id)
  3109. return conn;
  3110. });
  3111. return NULL;
  3112. }
  3113. /** Return a connection of type <b>type</b> that is not marked for close.
  3114. */
  3115. connection_t *
  3116. connection_get_by_type(int type)
  3117. {
  3118. smartlist_t *conns = get_connection_array();
  3119. SMARTLIST_FOREACH(conns, connection_t *, conn,
  3120. {
  3121. if (conn->type == type && !conn->marked_for_close)
  3122. return conn;
  3123. });
  3124. return NULL;
  3125. }
  3126. /** Return a connection of type <b>type</b> that is in state <b>state</b>,
  3127. * and that is not marked for close.
  3128. */
  3129. connection_t *
  3130. connection_get_by_type_state(int type, int state)
  3131. {
  3132. smartlist_t *conns = get_connection_array();
  3133. SMARTLIST_FOREACH(conns, connection_t *, conn,
  3134. {
  3135. if (conn->type == type && conn->state == state && !conn->marked_for_close)
  3136. return conn;
  3137. });
  3138. return NULL;
  3139. }
  3140. /** Return a connection of type <b>type</b> that has rendquery equal
  3141. * to <b>rendquery</b>, and that is not marked for close. If state
  3142. * is non-zero, conn must be of that state too.
  3143. */
  3144. connection_t *
  3145. connection_get_by_type_state_rendquery(int type, int state,
  3146. const char *rendquery)
  3147. {
  3148. smartlist_t *conns = get_connection_array();
  3149. tor_assert(type == CONN_TYPE_DIR ||
  3150. type == CONN_TYPE_AP || type == CONN_TYPE_EXIT);
  3151. tor_assert(rendquery);
  3152. SMARTLIST_FOREACH(conns, connection_t *, conn,
  3153. {
  3154. if (conn->type == type &&
  3155. !conn->marked_for_close &&
  3156. (!state || state == conn->state)) {
  3157. if (type == CONN_TYPE_DIR &&
  3158. TO_DIR_CONN(conn)->rend_data &&
  3159. !rend_cmp_service_ids(rendquery,
  3160. TO_DIR_CONN(conn)->rend_data->onion_address))
  3161. return conn;
  3162. else if (CONN_IS_EDGE(conn) &&
  3163. TO_EDGE_CONN(conn)->rend_data &&
  3164. !rend_cmp_service_ids(rendquery,
  3165. TO_EDGE_CONN(conn)->rend_data->onion_address))
  3166. return conn;
  3167. }
  3168. });
  3169. return NULL;
  3170. }
  3171. /** Return a directory connection (if any one exists) that is fetching
  3172. * the item described by <b>state</b>/<b>resource</b> */
  3173. dir_connection_t *
  3174. connection_dir_get_by_purpose_and_resource(int purpose,
  3175. const char *resource)
  3176. {
  3177. smartlist_t *conns = get_connection_array();
  3178. SMARTLIST_FOREACH_BEGIN(conns, connection_t *, conn) {
  3179. dir_connection_t *dirconn;
  3180. if (conn->type != CONN_TYPE_DIR || conn->marked_for_close ||
  3181. conn->purpose != purpose)
  3182. continue;
  3183. dirconn = TO_DIR_CONN(conn);
  3184. if (dirconn->requested_resource == NULL) {
  3185. if (resource == NULL)
  3186. return dirconn;
  3187. } else if (resource) {
  3188. if (0 == strcmp(resource, dirconn->requested_resource))
  3189. return dirconn;
  3190. }
  3191. } SMARTLIST_FOREACH_END(conn);
  3192. return NULL;
  3193. }
  3194. /** Return an open, non-marked connection of a given type and purpose, or NULL
  3195. * if no such connection exists. */
  3196. connection_t *
  3197. connection_get_by_type_purpose(int type, int purpose)
  3198. {
  3199. smartlist_t *conns = get_connection_array();
  3200. SMARTLIST_FOREACH(conns, connection_t *, conn,
  3201. {
  3202. if (conn->type == type &&
  3203. !conn->marked_for_close &&
  3204. (purpose == conn->purpose))
  3205. return conn;
  3206. });
  3207. return NULL;
  3208. }
  3209. /** Return 1 if <b>conn</b> is a listener conn, else return 0. */
  3210. int
  3211. connection_is_listener(connection_t *conn)
  3212. {
  3213. if (conn->type == CONN_TYPE_OR_LISTENER ||
  3214. conn->type == CONN_TYPE_AP_LISTENER ||
  3215. conn->type == CONN_TYPE_AP_TRANS_LISTENER ||
  3216. conn->type == CONN_TYPE_AP_DNS_LISTENER ||
  3217. conn->type == CONN_TYPE_AP_NATD_LISTENER ||
  3218. conn->type == CONN_TYPE_DIR_LISTENER ||
  3219. conn->type == CONN_TYPE_CONTROL_LISTENER)
  3220. return 1;
  3221. return 0;
  3222. }
  3223. /** Return 1 if <b>conn</b> is in state "open" and is not marked
  3224. * for close, else return 0.
  3225. */
  3226. int
  3227. connection_state_is_open(connection_t *conn)
  3228. {
  3229. tor_assert(conn);
  3230. if (conn->marked_for_close)
  3231. return 0;
  3232. if ((conn->type == CONN_TYPE_OR && conn->state == OR_CONN_STATE_OPEN) ||
  3233. (conn->type == CONN_TYPE_AP && conn->state == AP_CONN_STATE_OPEN) ||
  3234. (conn->type == CONN_TYPE_EXIT && conn->state == EXIT_CONN_STATE_OPEN) ||
  3235. (conn->type == CONN_TYPE_CONTROL &&
  3236. conn->state == CONTROL_CONN_STATE_OPEN))
  3237. return 1;
  3238. return 0;
  3239. }
  3240. /** Return 1 if conn is in 'connecting' state, else return 0. */
  3241. int
  3242. connection_state_is_connecting(connection_t *conn)
  3243. {
  3244. tor_assert(conn);
  3245. if (conn->marked_for_close)
  3246. return 0;
  3247. switch (conn->type)
  3248. {
  3249. case CONN_TYPE_OR:
  3250. return conn->state == OR_CONN_STATE_CONNECTING;
  3251. case CONN_TYPE_EXIT:
  3252. return conn->state == EXIT_CONN_STATE_CONNECTING;
  3253. case CONN_TYPE_DIR:
  3254. return conn->state == DIR_CONN_STATE_CONNECTING;
  3255. }
  3256. return 0;
  3257. }
  3258. /** Allocates a base64'ed authenticator for use in http or https
  3259. * auth, based on the input string <b>authenticator</b>. Returns it
  3260. * if success, else returns NULL. */
  3261. char *
  3262. alloc_http_authenticator(const char *authenticator)
  3263. {
  3264. /* an authenticator in Basic authentication
  3265. * is just the string "username:password" */
  3266. const size_t authenticator_length = strlen(authenticator);
  3267. /* The base64_encode function needs a minimum buffer length
  3268. * of 66 bytes. */
  3269. const size_t base64_authenticator_length = (authenticator_length/48+1)*66;
  3270. char *base64_authenticator = tor_malloc(base64_authenticator_length);
  3271. if (base64_encode(base64_authenticator, base64_authenticator_length,
  3272. authenticator, authenticator_length) < 0) {
  3273. tor_free(base64_authenticator); /* free and set to null */
  3274. } else {
  3275. int i = 0, j = 0;
  3276. ssize_t len = strlen(base64_authenticator);
  3277. /* remove all newline occurrences within the string */
  3278. for (i=0; i < len; ++i) {
  3279. if ('\n' != base64_authenticator[i]) {
  3280. base64_authenticator[j] = base64_authenticator[i];
  3281. ++j;
  3282. }
  3283. }
  3284. base64_authenticator[j]='\0';
  3285. }
  3286. return base64_authenticator;
  3287. }
  3288. /** Given a socket handle, check whether the local address (sockname) of the
  3289. * socket is one that we've connected from before. If so, double-check
  3290. * whether our address has changed and we need to generate keys. If we do,
  3291. * call init_keys().
  3292. */
  3293. static void
  3294. client_check_address_changed(tor_socket_t sock)
  3295. {
  3296. uint32_t iface_ip, ip_out; /* host order */
  3297. struct sockaddr_in out_addr;
  3298. socklen_t out_addr_len = (socklen_t) sizeof(out_addr);
  3299. uint32_t *ip; /* host order */
  3300. if (!last_interface_ip)
  3301. get_interface_address(LOG_INFO, &last_interface_ip);
  3302. if (!outgoing_addrs)
  3303. outgoing_addrs = smartlist_create();
  3304. if (getsockname(sock, (struct sockaddr*)&out_addr, &out_addr_len)<0) {
  3305. int e = tor_socket_errno(sock);
  3306. log_warn(LD_NET, "getsockname() to check for address change failed: %s",
  3307. tor_socket_strerror(e));
  3308. return;
  3309. }
  3310. /* If we've used this address previously, we're okay. */
  3311. ip_out = ntohl(out_addr.sin_addr.s_addr);
  3312. SMARTLIST_FOREACH(outgoing_addrs, uint32_t*, ip_ptr,
  3313. if (*ip_ptr == ip_out) return;
  3314. );
  3315. /* Uh-oh. We haven't connected from this address before. Has the interface
  3316. * address changed? */
  3317. if (get_interface_address(LOG_INFO, &iface_ip)<0)
  3318. return;
  3319. ip = tor_malloc(sizeof(uint32_t));
  3320. *ip = ip_out;
  3321. if (iface_ip == last_interface_ip) {
  3322. /* Nope, it hasn't changed. Add this address to the list. */
  3323. smartlist_add(outgoing_addrs, ip);
  3324. } else {
  3325. /* The interface changed. We're a client, so we need to regenerate our
  3326. * keys. First, reset the state. */
  3327. log(LOG_NOTICE, LD_NET, "Our IP address has changed. Rotating keys...");
  3328. last_interface_ip = iface_ip;
  3329. SMARTLIST_FOREACH(outgoing_addrs, void*, ip_ptr, tor_free(ip_ptr));
  3330. smartlist_clear(outgoing_addrs);
  3331. smartlist_add(outgoing_addrs, ip);
  3332. /* Okay, now change our keys. */
  3333. ip_address_changed(1);
  3334. }
  3335. }
  3336. /** Some systems have limited system buffers for recv and xmit on
  3337. * sockets allocated in a virtual server or similar environment. For a Tor
  3338. * server this can produce the "Error creating network socket: No buffer
  3339. * space available" error once all available TCP buffer space is consumed.
  3340. * This method will attempt to constrain the buffers allocated for the socket
  3341. * to the desired size to stay below system TCP buffer limits.
  3342. */
  3343. static void
  3344. set_constrained_socket_buffers(tor_socket_t sock, int size)
  3345. {
  3346. void *sz = (void*)&size;
  3347. socklen_t sz_sz = (socklen_t) sizeof(size);
  3348. if (setsockopt(sock, SOL_SOCKET, SO_SNDBUF, sz, sz_sz) < 0) {
  3349. int e = tor_socket_errno(sock);
  3350. log_warn(LD_NET, "setsockopt() to constrain send "
  3351. "buffer to %d bytes failed: %s", size, tor_socket_strerror(e));
  3352. }
  3353. if (setsockopt(sock, SOL_SOCKET, SO_RCVBUF, sz, sz_sz) < 0) {
  3354. int e = tor_socket_errno(sock);
  3355. log_warn(LD_NET, "setsockopt() to constrain recv "
  3356. "buffer to %d bytes failed: %s", size, tor_socket_strerror(e));
  3357. }
  3358. }
  3359. /** Process new bytes that have arrived on conn-\>inbuf.
  3360. *
  3361. * This function just passes conn to the connection-specific
  3362. * connection_*_process_inbuf() function. It also passes in
  3363. * package_partial if wanted.
  3364. */
  3365. static int
  3366. connection_process_inbuf(connection_t *conn, int package_partial)
  3367. {
  3368. tor_assert(conn);
  3369. switch (conn->type) {
  3370. case CONN_TYPE_OR:
  3371. return connection_or_process_inbuf(TO_OR_CONN(conn));
  3372. case CONN_TYPE_EXIT:
  3373. case CONN_TYPE_AP:
  3374. return connection_edge_process_inbuf(TO_EDGE_CONN(conn),
  3375. package_partial);
  3376. case CONN_TYPE_DIR:
  3377. return connection_dir_process_inbuf(TO_DIR_CONN(conn));
  3378. case CONN_TYPE_CPUWORKER:
  3379. return connection_cpu_process_inbuf(conn);
  3380. case CONN_TYPE_CONTROL:
  3381. return connection_control_process_inbuf(TO_CONTROL_CONN(conn));
  3382. default:
  3383. log_err(LD_BUG,"got unexpected conn type %d.", conn->type);
  3384. tor_fragile_assert();
  3385. return -1;
  3386. }
  3387. }
  3388. /** Called whenever we've written data on a connection. */
  3389. static int
  3390. connection_flushed_some(connection_t *conn)
  3391. {
  3392. int r = 0;
  3393. tor_assert(!conn->in_flushed_some);
  3394. conn->in_flushed_some = 1;
  3395. if (conn->type == CONN_TYPE_DIR &&
  3396. conn->state == DIR_CONN_STATE_SERVER_WRITING) {
  3397. r = connection_dirserv_flushed_some(TO_DIR_CONN(conn));
  3398. } else if (conn->type == CONN_TYPE_OR) {
  3399. r = connection_or_flushed_some(TO_OR_CONN(conn));
  3400. } else if (CONN_IS_EDGE(conn)) {
  3401. r = connection_edge_flushed_some(TO_EDGE_CONN(conn));
  3402. }
  3403. conn->in_flushed_some = 0;
  3404. return r;
  3405. }
  3406. /** We just finished flushing bytes from conn-\>outbuf, and there
  3407. * are no more bytes remaining.
  3408. *
  3409. * This function just passes conn to the connection-specific
  3410. * connection_*_finished_flushing() function.
  3411. */
  3412. static int
  3413. connection_finished_flushing(connection_t *conn)
  3414. {
  3415. tor_assert(conn);
  3416. /* If the connection is closed, don't try to do anything more here. */
  3417. if (CONN_IS_CLOSED(conn))
  3418. return 0;
  3419. // log_fn(LOG_DEBUG,"entered. Socket %u.", conn->s);
  3420. IF_HAS_NO_BUFFEREVENT(conn)
  3421. connection_stop_writing(conn);
  3422. switch (conn->type) {
  3423. case CONN_TYPE_OR:
  3424. return connection_or_finished_flushing(TO_OR_CONN(conn));
  3425. case CONN_TYPE_AP:
  3426. case CONN_TYPE_EXIT:
  3427. return connection_edge_finished_flushing(TO_EDGE_CONN(conn));
  3428. case CONN_TYPE_DIR:
  3429. return connection_dir_finished_flushing(TO_DIR_CONN(conn));
  3430. case CONN_TYPE_CPUWORKER:
  3431. return connection_cpu_finished_flushing(conn);
  3432. case CONN_TYPE_CONTROL:
  3433. return connection_control_finished_flushing(TO_CONTROL_CONN(conn));
  3434. default:
  3435. log_err(LD_BUG,"got unexpected conn type %d.", conn->type);
  3436. tor_fragile_assert();
  3437. return -1;
  3438. }
  3439. }
  3440. /** Called when our attempt to connect() to another server has just
  3441. * succeeded.
  3442. *
  3443. * This function just passes conn to the connection-specific
  3444. * connection_*_finished_connecting() function.
  3445. */
  3446. static int
  3447. connection_finished_connecting(connection_t *conn)
  3448. {
  3449. tor_assert(conn);
  3450. switch (conn->type)
  3451. {
  3452. case CONN_TYPE_OR:
  3453. return connection_or_finished_connecting(TO_OR_CONN(conn));
  3454. case CONN_TYPE_EXIT:
  3455. return connection_edge_finished_connecting(TO_EDGE_CONN(conn));
  3456. case CONN_TYPE_DIR:
  3457. return connection_dir_finished_connecting(TO_DIR_CONN(conn));
  3458. default:
  3459. log_err(LD_BUG,"got unexpected conn type %d.", conn->type);
  3460. tor_fragile_assert();
  3461. return -1;
  3462. }
  3463. }
  3464. /** Callback: invoked when a connection reaches an EOF event. */
  3465. static int
  3466. connection_reached_eof(connection_t *conn)
  3467. {
  3468. switch (conn->type) {
  3469. case CONN_TYPE_OR:
  3470. return connection_or_reached_eof(TO_OR_CONN(conn));
  3471. case CONN_TYPE_AP:
  3472. case CONN_TYPE_EXIT:
  3473. return connection_edge_reached_eof(TO_EDGE_CONN(conn));
  3474. case CONN_TYPE_DIR:
  3475. return connection_dir_reached_eof(TO_DIR_CONN(conn));
  3476. case CONN_TYPE_CPUWORKER:
  3477. return connection_cpu_reached_eof(conn);
  3478. case CONN_TYPE_CONTROL:
  3479. return connection_control_reached_eof(TO_CONTROL_CONN(conn));
  3480. default:
  3481. log_err(LD_BUG,"got unexpected conn type %d.", conn->type);
  3482. tor_fragile_assert();
  3483. return -1;
  3484. }
  3485. }
  3486. /** Log how many bytes are used by buffers of different kinds and sizes. */
  3487. void
  3488. connection_dump_buffer_mem_stats(int severity)
  3489. {
  3490. uint64_t used_by_type[_CONN_TYPE_MAX+1];
  3491. uint64_t alloc_by_type[_CONN_TYPE_MAX+1];
  3492. int n_conns_by_type[_CONN_TYPE_MAX+1];
  3493. uint64_t total_alloc = 0;
  3494. uint64_t total_used = 0;
  3495. int i;
  3496. smartlist_t *conns = get_connection_array();
  3497. memset(used_by_type, 0, sizeof(used_by_type));
  3498. memset(alloc_by_type, 0, sizeof(alloc_by_type));
  3499. memset(n_conns_by_type, 0, sizeof(n_conns_by_type));
  3500. SMARTLIST_FOREACH(conns, connection_t *, c,
  3501. {
  3502. int tp = c->type;
  3503. ++n_conns_by_type[tp];
  3504. if (c->inbuf) {
  3505. used_by_type[tp] += buf_datalen(c->inbuf);
  3506. alloc_by_type[tp] += buf_allocation(c->inbuf);
  3507. }
  3508. if (c->outbuf) {
  3509. used_by_type[tp] += buf_datalen(c->outbuf);
  3510. alloc_by_type[tp] += buf_allocation(c->outbuf);
  3511. }
  3512. });
  3513. for (i=0; i <= _CONN_TYPE_MAX; ++i) {
  3514. total_used += used_by_type[i];
  3515. total_alloc += alloc_by_type[i];
  3516. }
  3517. log(severity, LD_GENERAL,
  3518. "In buffers for %d connections: "U64_FORMAT" used/"U64_FORMAT" allocated",
  3519. smartlist_len(conns),
  3520. U64_PRINTF_ARG(total_used), U64_PRINTF_ARG(total_alloc));
  3521. for (i=_CONN_TYPE_MIN; i <= _CONN_TYPE_MAX; ++i) {
  3522. if (!n_conns_by_type[i])
  3523. continue;
  3524. log(severity, LD_GENERAL,
  3525. " For %d %s connections: "U64_FORMAT" used/"U64_FORMAT" allocated",
  3526. n_conns_by_type[i], conn_type_to_string(i),
  3527. U64_PRINTF_ARG(used_by_type[i]), U64_PRINTF_ARG(alloc_by_type[i]));
  3528. }
  3529. }
  3530. /** Verify that connection <b>conn</b> has all of its invariants
  3531. * correct. Trigger an assert if anything is invalid.
  3532. */
  3533. void
  3534. assert_connection_ok(connection_t *conn, time_t now)
  3535. {
  3536. (void) now; /* XXXX unused. */
  3537. tor_assert(conn);
  3538. tor_assert(conn->type >= _CONN_TYPE_MIN);
  3539. tor_assert(conn->type <= _CONN_TYPE_MAX);
  3540. #ifdef USE_BUFFEREVENTS
  3541. if (conn->bufev) {
  3542. tor_assert(conn->read_event == NULL);
  3543. tor_assert(conn->write_event == NULL);
  3544. tor_assert(conn->inbuf == NULL);
  3545. tor_assert(conn->outbuf == NULL);
  3546. }
  3547. #endif
  3548. switch (conn->type) {
  3549. case CONN_TYPE_OR:
  3550. tor_assert(conn->magic == OR_CONNECTION_MAGIC);
  3551. break;
  3552. case CONN_TYPE_AP:
  3553. tor_assert(conn->magic == ENTRY_CONNECTION_MAGIC);
  3554. break;
  3555. case CONN_TYPE_EXIT:
  3556. tor_assert(conn->magic == EDGE_CONNECTION_MAGIC);
  3557. break;
  3558. case CONN_TYPE_DIR:
  3559. tor_assert(conn->magic == DIR_CONNECTION_MAGIC);
  3560. break;
  3561. case CONN_TYPE_CONTROL:
  3562. tor_assert(conn->magic == CONTROL_CONNECTION_MAGIC);
  3563. break;
  3564. CASE_ANY_LISTENER_TYPE:
  3565. tor_assert(conn->magic == LISTENER_CONNECTION_MAGIC);
  3566. break;
  3567. default:
  3568. tor_assert(conn->magic == BASE_CONNECTION_MAGIC);
  3569. break;
  3570. }
  3571. if (conn->linked_conn) {
  3572. tor_assert(conn->linked_conn->linked_conn == conn);
  3573. tor_assert(conn->linked);
  3574. }
  3575. if (conn->linked)
  3576. tor_assert(!SOCKET_OK(conn->s));
  3577. if (conn->outbuf_flushlen > 0) {
  3578. /* With optimistic data, we may have queued data in
  3579. * EXIT_CONN_STATE_RESOLVING while the conn is not yet marked to writing.
  3580. * */
  3581. tor_assert((conn->type == CONN_TYPE_EXIT &&
  3582. conn->state == EXIT_CONN_STATE_RESOLVING) ||
  3583. connection_is_writing(conn) ||
  3584. conn->write_blocked_on_bw ||
  3585. (CONN_IS_EDGE(conn) &&
  3586. TO_EDGE_CONN(conn)->edge_blocked_on_circ));
  3587. }
  3588. if (conn->hold_open_until_flushed)
  3589. tor_assert(conn->marked_for_close);
  3590. /* XXXX check: read_blocked_on_bw, write_blocked_on_bw, s, conn_array_index,
  3591. * marked_for_close. */
  3592. /* buffers */
  3593. if (conn->inbuf)
  3594. assert_buf_ok(conn->inbuf);
  3595. if (conn->outbuf)
  3596. assert_buf_ok(conn->outbuf);
  3597. if (conn->type == CONN_TYPE_OR) {
  3598. or_connection_t *or_conn = TO_OR_CONN(conn);
  3599. if (conn->state == OR_CONN_STATE_OPEN) {
  3600. /* tor_assert(conn->bandwidth > 0); */
  3601. /* the above isn't necessarily true: if we just did a TLS
  3602. * handshake but we didn't recognize the other peer, or it
  3603. * gave a bad cert/etc, then we won't have assigned bandwidth,
  3604. * yet it will be open. -RD
  3605. */
  3606. // tor_assert(conn->read_bucket >= 0);
  3607. }
  3608. // tor_assert(conn->addr && conn->port);
  3609. tor_assert(conn->address);
  3610. if (conn->state > OR_CONN_STATE_PROXY_HANDSHAKING)
  3611. tor_assert(or_conn->tls);
  3612. }
  3613. if (CONN_IS_EDGE(conn)) {
  3614. edge_connection_t *edge_conn = TO_EDGE_CONN(conn);
  3615. if (edge_conn->chosen_exit_optional || edge_conn->chosen_exit_retries) {
  3616. tor_assert(conn->type == CONN_TYPE_AP);
  3617. tor_assert(edge_conn->chosen_exit_name);
  3618. }
  3619. /* XXX unchecked: package window, deliver window. */
  3620. if (conn->type == CONN_TYPE_AP) {
  3621. tor_assert(edge_conn->socks_request);
  3622. if (conn->state == AP_CONN_STATE_OPEN) {
  3623. tor_assert(edge_conn->socks_request->has_finished);
  3624. if (!conn->marked_for_close) {
  3625. tor_assert(edge_conn->cpath_layer);
  3626. assert_cpath_layer_ok(edge_conn->cpath_layer);
  3627. }
  3628. }
  3629. }
  3630. if (conn->type == CONN_TYPE_EXIT) {
  3631. tor_assert(conn->purpose == EXIT_PURPOSE_CONNECT ||
  3632. conn->purpose == EXIT_PURPOSE_RESOLVE);
  3633. }
  3634. } else if (conn->type == CONN_TYPE_DIR) {
  3635. } else {
  3636. /* Purpose is only used for dir and exit types currently */
  3637. tor_assert(!conn->purpose);
  3638. }
  3639. switch (conn->type)
  3640. {
  3641. CASE_ANY_LISTENER_TYPE:
  3642. tor_assert(conn->state == LISTENER_STATE_READY);
  3643. break;
  3644. case CONN_TYPE_OR:
  3645. tor_assert(conn->state >= _OR_CONN_STATE_MIN);
  3646. tor_assert(conn->state <= _OR_CONN_STATE_MAX);
  3647. tor_assert(TO_OR_CONN(conn)->n_circuits >= 0);
  3648. break;
  3649. case CONN_TYPE_EXIT:
  3650. tor_assert(conn->state >= _EXIT_CONN_STATE_MIN);
  3651. tor_assert(conn->state <= _EXIT_CONN_STATE_MAX);
  3652. tor_assert(conn->purpose >= _EXIT_PURPOSE_MIN);
  3653. tor_assert(conn->purpose <= _EXIT_PURPOSE_MAX);
  3654. break;
  3655. case CONN_TYPE_AP:
  3656. tor_assert(conn->state >= _AP_CONN_STATE_MIN);
  3657. tor_assert(conn->state <= _AP_CONN_STATE_MAX);
  3658. tor_assert(TO_EDGE_CONN(conn)->socks_request);
  3659. break;
  3660. case CONN_TYPE_DIR:
  3661. tor_assert(conn->state >= _DIR_CONN_STATE_MIN);
  3662. tor_assert(conn->state <= _DIR_CONN_STATE_MAX);
  3663. tor_assert(conn->purpose >= _DIR_PURPOSE_MIN);
  3664. tor_assert(conn->purpose <= _DIR_PURPOSE_MAX);
  3665. break;
  3666. case CONN_TYPE_CPUWORKER:
  3667. tor_assert(conn->state >= _CPUWORKER_STATE_MIN);
  3668. tor_assert(conn->state <= _CPUWORKER_STATE_MAX);
  3669. break;
  3670. case CONN_TYPE_CONTROL:
  3671. tor_assert(conn->state >= _CONTROL_CONN_STATE_MIN);
  3672. tor_assert(conn->state <= _CONTROL_CONN_STATE_MAX);
  3673. break;
  3674. default:
  3675. tor_assert(0);
  3676. }
  3677. }
  3678. /** Fills <b>addr</b> and <b>port</b> with the details of the global
  3679. * proxy server we are using.
  3680. * <b>conn</b> contains the connection we are using the proxy for.
  3681. *
  3682. * Return 0 on success, -1 on failure.
  3683. */
  3684. int
  3685. get_proxy_addrport(tor_addr_t *addr, uint16_t *port, int *proxy_type,
  3686. const connection_t *conn)
  3687. {
  3688. const or_options_t *options = get_options();
  3689. if (options->HTTPSProxy) {
  3690. tor_addr_copy(addr, &options->HTTPSProxyAddr);
  3691. *port = options->HTTPSProxyPort;
  3692. *proxy_type = PROXY_CONNECT;
  3693. return 0;
  3694. } else if (options->Socks4Proxy) {
  3695. tor_addr_copy(addr, &options->Socks4ProxyAddr);
  3696. *port = options->Socks4ProxyPort;
  3697. *proxy_type = PROXY_SOCKS4;
  3698. return 0;
  3699. } else if (options->Socks5Proxy) {
  3700. tor_addr_copy(addr, &options->Socks5ProxyAddr);
  3701. *port = options->Socks5ProxyPort;
  3702. *proxy_type = PROXY_SOCKS5;
  3703. return 0;
  3704. } else if (options->ClientTransportPlugin ||
  3705. options->Bridges) {
  3706. const transport_t *transport = NULL;
  3707. int r;
  3708. r = find_transport_by_bridge_addrport(&conn->addr, conn->port, &transport);
  3709. if (r<0)
  3710. return -1;
  3711. if (transport) { /* transport found */
  3712. tor_addr_copy(addr, &transport->addr);
  3713. *port = transport->port;
  3714. *proxy_type = transport->socks_version;
  3715. return 0;
  3716. }
  3717. }
  3718. *proxy_type = PROXY_NONE;
  3719. return 0;
  3720. }
  3721. /** Returns the global proxy type used by tor. */
  3722. static int
  3723. get_proxy_type(void)
  3724. {
  3725. const or_options_t *options = get_options();
  3726. if (options->HTTPSProxy)
  3727. return PROXY_CONNECT;
  3728. else if (options->Socks4Proxy)
  3729. return PROXY_SOCKS4;
  3730. else if (options->Socks5Proxy)
  3731. return PROXY_SOCKS5;
  3732. else if (options->ClientTransportPlugin)
  3733. return PROXY_PLUGGABLE;
  3734. else
  3735. return PROXY_NONE;
  3736. }
  3737. /** Log a failed connection to a proxy server.
  3738. * <b>conn</b> is the connection we use the proxy server for. */
  3739. void
  3740. log_failed_proxy_connection(connection_t *conn)
  3741. {
  3742. tor_addr_t proxy_addr;
  3743. uint16_t proxy_port;
  3744. int proxy_type;
  3745. if (get_proxy_addrport(&proxy_addr, &proxy_port, &proxy_type, conn) != 0)
  3746. return; /* if we have no proxy set up, leave this function. */
  3747. log_warn(LD_NET,
  3748. "The connection to the %s proxy server at %s:%u just failed. "
  3749. "Make sure that the proxy server is up and running.",
  3750. proxy_type_to_string(get_proxy_type()), fmt_addr(&proxy_addr),
  3751. proxy_port);
  3752. }
  3753. /** Return string representation of <b>proxy_type</b>. */
  3754. static const char *
  3755. proxy_type_to_string(int proxy_type)
  3756. {
  3757. switch (proxy_type) {
  3758. case PROXY_CONNECT: return "HTTP";
  3759. case PROXY_SOCKS4: return "SOCKS4";
  3760. case PROXY_SOCKS5: return "SOCKS5";
  3761. case PROXY_PLUGGABLE: return "pluggable transports SOCKS";
  3762. case PROXY_NONE: return "NULL";
  3763. default: tor_assert(0);
  3764. }
  3765. return NULL; /*Unreached*/
  3766. }