eventdns.c 93 KB

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  1. /* The original version of this module was written by Adam Langley; for
  2. * a history of modifications, check out the subversion logs.
  3. *
  4. * When editing this module, try to keep it re-mergeable by Adam. Don't
  5. * reformat the whitespace, add Tor dependencies, or so on.
  6. *
  7. * TODO:
  8. * - Replace all externally visible magic numbers with #defined constants.
  9. * - Write documentation for APIs of all external functions.
  10. */
  11. /* Async DNS Library
  12. * Adam Langley <agl@imperialviolet.org>
  13. * Public Domain code
  14. *
  15. * This software is Public Domain. To view a copy of the public domain dedication,
  16. * visit http://creativecommons.org/licenses/publicdomain/ or send a letter to
  17. * Creative Commons, 559 Nathan Abbott Way, Stanford, California 94305, USA.
  18. *
  19. * I ask and expect, but do not require, that all derivative works contain an
  20. * attribution similar to:
  21. * Parts developed by Adam Langley <agl@imperialviolet.org>
  22. *
  23. * You may wish to replace the word "Parts" with something else depending on
  24. * the amount of original code.
  25. *
  26. * (Derivative works does not include programs which link against, run or include
  27. * the source verbatim in their source distributions)
  28. *
  29. * Version: 0.1b
  30. */
  31. #include "eventdns_tor.h"
  32. #include "../common/util.h"
  33. #include <sys/types.h>
  34. /* #define NDEBUG */
  35. #ifndef DNS_USE_CPU_CLOCK_FOR_ID
  36. #ifndef DNS_USE_GETTIMEOFDAY_FOR_ID
  37. #ifndef DNS_USE_OPENSSL_FOR_ID
  38. #error Must configure at least one id generation method.
  39. #error Please see the documentation.
  40. #endif
  41. #endif
  42. #endif
  43. /* #define _POSIX_C_SOURCE 200507 */
  44. #define _GNU_SOURCE
  45. #ifdef DNS_USE_CPU_CLOCK_FOR_ID
  46. #ifdef DNS_USE_OPENSSL_FOR_ID
  47. #error Multiple id options selected
  48. #endif
  49. #ifdef DNS_USE_GETTIMEOFDAY_FOR_ID
  50. #error Multiple id options selected
  51. #endif
  52. #include <time.h>
  53. #endif
  54. #ifdef DNS_USE_OPENSSL_FOR_ID
  55. #ifdef DNS_USE_GETTIMEOFDAY_FOR_ID
  56. #error Multiple id options selected
  57. #endif
  58. #include <openssl/rand.h>
  59. #endif
  60. #include <string.h>
  61. #ifdef HAVE_FCNTL_H
  62. #include <fcntl.h>
  63. #endif
  64. #ifdef HAVE_SYS_TIME_H
  65. #include <sys/time.h>
  66. #endif
  67. #ifdef HAVE_STDINT_H
  68. #include <stdint.h>
  69. #endif
  70. #include <stdlib.h>
  71. #include <string.h>
  72. #include <errno.h>
  73. #include <assert.h>
  74. #ifdef HAVE_UNISTD_H
  75. #include <unistd.h>
  76. #endif
  77. #ifdef HAVE_LIMITS_H
  78. #include <limits.h>
  79. #endif
  80. #include <sys/stat.h>
  81. #include <ctype.h>
  82. #include <stdio.h>
  83. #include <stdarg.h>
  84. #include "eventdns.h"
  85. #ifdef WIN32
  86. #include <windows.h>
  87. #include <winsock2.h>
  88. #include <iphlpapi.h>
  89. #else
  90. #include <sys/socket.h>
  91. #include <netinet/in.h>
  92. #include <arpa/inet.h>
  93. #endif
  94. #ifdef HAVE_NETINET_IN6_H
  95. #include <netinet/in6.h>
  96. #endif
  97. #ifdef WIN32
  98. typedef int socklen_t;
  99. #endif
  100. #define EVDNS_LOG_DEBUG 0
  101. #define EVDNS_LOG_WARN 1
  102. #ifndef HOST_NAME_MAX
  103. #define HOST_NAME_MAX 255
  104. #endif
  105. #ifndef NDEBUG
  106. #include <stdio.h>
  107. #endif
  108. /* for debugging possible memory leaks. */
  109. #define mm_malloc(x) tor_malloc(x)
  110. #define mm_realloc(x,y) tor_realloc((x),(y))
  111. #define mm_free(x) tor_free(x)
  112. #define mm_strdup(x) tor_strdup(x)
  113. #define _mm_free(x) _tor_free(x)
  114. #undef MIN
  115. #define MIN(a,b) ((a)<(b)?(a):(b))
  116. #if 0
  117. #ifdef __USE_ISOC99B
  118. /* libevent doesn't work without this */
  119. typedef uint8_t u_char;
  120. typedef unsigned int uint;
  121. #endif
  122. #endif
  123. #include <event.h>
  124. #define u64 uint64_t
  125. #define u32 uint32_t
  126. #define u16 uint16_t
  127. #define u8 uint8_t
  128. #define MAX_ADDRS 4 /* maximum number of addresses from a single packet */
  129. /* which we bother recording */
  130. #define TYPE_A EVDNS_TYPE_A
  131. #define TYPE_CNAME 5
  132. #define TYPE_PTR EVDNS_TYPE_PTR
  133. #define TYPE_AAAA EVDNS_TYPE_AAAA
  134. #define CLASS_INET EVDNS_CLASS_INET
  135. #define CLEAR(x) do { memset((x), 0xF0, sizeof(*(x))); } while(0)
  136. struct evdns_request {
  137. u8 *request; /* the dns packet data */
  138. unsigned int request_len;
  139. int reissue_count;
  140. int tx_count; /* the number of times that this packet has been sent */
  141. unsigned int request_type; /* TYPE_PTR or TYPE_A */
  142. void *user_pointer; /* the pointer given to us for this request */
  143. evdns_callback_type user_callback;
  144. struct nameserver *ns; /* the server which we last sent it */
  145. /* elements used by the searching code */
  146. int search_index;
  147. struct search_state *search_state;
  148. char *search_origname; /* needs to be mm_free()ed */
  149. int search_flags;
  150. /* these objects are kept in a circular list */
  151. struct evdns_request *next, *prev;
  152. struct event timeout_event;
  153. u16 trans_id; /* the transaction id */
  154. char request_appended; /* true if the request pointer is data which follows this struct */
  155. char transmit_me; /* needs to be transmitted */
  156. };
  157. #ifndef HAVE_STRUCT_IN6_ADDR
  158. struct in6_addr {
  159. u8 s6_addr[16];
  160. };
  161. #endif
  162. struct reply {
  163. unsigned int type;
  164. unsigned int have_answer;
  165. union {
  166. struct {
  167. u32 addrcount;
  168. u32 addresses[MAX_ADDRS];
  169. } a;
  170. struct {
  171. u32 addrcount;
  172. struct in6_addr addresses[MAX_ADDRS];
  173. } aaaa;
  174. struct {
  175. char name[HOST_NAME_MAX];
  176. } ptr;
  177. } data;
  178. };
  179. struct nameserver {
  180. int socket; /* a connected UDP socket */
  181. struct sockaddr_storage address;
  182. int failed_times; /* number of times which we have given this server a chance */
  183. int timedout; /* number of times in a row a request has timed out */
  184. struct event event;
  185. /* these objects are kept in a circular list */
  186. struct nameserver *next, *prev;
  187. struct event timeout_event; /* used to keep the timeout for */
  188. /* when we next probe this server. */
  189. /* Valid if state == 0 */
  190. char state; /* zero if we think that this server is down */
  191. char choked; /* true if we have an EAGAIN from this server's socket */
  192. char write_waiting; /* true if we are waiting for EV_WRITE events */
  193. };
  194. static struct evdns_request *req_head = NULL, *req_waiting_head = NULL;
  195. static struct nameserver *server_head = NULL;
  196. /* Represents a local port where we're listening for DNS requests. Right now, */
  197. /* only UDP is supported. */
  198. struct evdns_server_port {
  199. int socket; /* socket we use to read queries and write replies. */
  200. int refcnt; /* reference count. */
  201. char choked; /* Are we currently blocked from writing? */
  202. char closing; /* Are we trying to close this port, pending writes? */
  203. evdns_request_callback_fn_type user_callback; /* Fn to handle requests */
  204. void *user_data; /* Opaque pointer passed to user_callback */
  205. struct event event; /* Read/write event */
  206. /* circular list of replies that we want to write. */
  207. struct server_request *pending_replies;
  208. };
  209. /* Represents part of a reply being built. (That is, a single RR.) */
  210. struct server_reply_item {
  211. struct server_reply_item *next; /* next item in sequence. */
  212. char *name; /* name part of the RR */
  213. u16 type : 16; /* The RR type */
  214. u16 class : 16; /* The RR class (usually CLASS_INET) */
  215. u32 ttl; /* The RR TTL */
  216. char is_name; /* True iff data is a label */
  217. u16 datalen; /* Length of data; -1 if data is a label */
  218. void *data; /* The contents of the RR */
  219. };
  220. /* Represents a request that we've received as a DNS server, and holds */
  221. /* the components of the reply as we're constructing it. */
  222. struct server_request {
  223. /* Pointers to the next and previous entries on the list of replies */
  224. /* that we're waiting to write. Only set if we have tried to respond */
  225. /* and gotten EAGAIN. */
  226. struct server_request *next_pending;
  227. struct server_request *prev_pending;
  228. u16 trans_id; /* Transaction id. */
  229. struct evdns_server_port *port; /* Which port received this request on? */
  230. struct sockaddr_storage addr; /* Where to send the response */
  231. socklen_t addrlen; /* length of addr */
  232. int n_answer; /* how many answer RRs have been set? */
  233. int n_authority; /* how many authority RRs have been set? */
  234. int n_additional; /* how many additional RRs have been set? */
  235. struct server_reply_item *answer; /* linked list of answer RRs */
  236. struct server_reply_item *authority; /* linked list of authority RRs */
  237. struct server_reply_item *additional; /* linked list of additional RRs */
  238. /* Constructed response. Only set once we're ready to send a reply. */
  239. /* Once this is set, the RR fields are cleared, and no more should be set. */
  240. char *response;
  241. size_t response_len;
  242. /* Caller-visible fields: flags, questions. */
  243. struct evdns_server_request base;
  244. };
  245. /* helper macro */
  246. #define OFFSET_OF(st, member) ((off_t) (((char*)&((st*)0)->member)-(char*)0))
  247. /* Given a pointer to an evdns_server_request, get the corresponding */
  248. /* server_request. */
  249. #define TO_SERVER_REQUEST(base_ptr) \
  250. ((struct server_request*) \
  251. (((char*)(base_ptr) - OFFSET_OF(struct server_request, base))))
  252. /* The number of good nameservers that we have */
  253. static int global_good_nameservers = 0;
  254. /* inflight requests are contained in the req_head list */
  255. /* and are actually going out across the network */
  256. static int global_requests_inflight = 0;
  257. /* requests which aren't inflight are in the waiting list */
  258. /* and are counted here */
  259. static int global_requests_waiting = 0;
  260. static int global_max_requests_inflight = 64;
  261. static struct timeval global_timeout = {5, 0}; /* 5 seconds */
  262. static int global_max_reissues = 1; /* a reissue occurs when we get some errors from the server */
  263. static int global_max_retransmits = 3; /* number of times we'll retransmit a request which timed out */
  264. /* number of timeouts in a row before we consider this server to be down */
  265. static int global_max_nameserver_timeout = 3;
  266. /* true iff we should use the 0x20 hack. */
  267. static int global_randomize_case = 1;
  268. /* These are the timeout values for nameservers. If we find a nameserver is down */
  269. /* we try to probe it at intervals as given below. Values are in seconds. */
  270. static const struct timeval global_nameserver_timeouts[] = {{10, 0}, {60, 0}, {300, 0}, {900, 0}, {3600, 0}};
  271. static const int global_nameserver_timeouts_length = (int)(sizeof(global_nameserver_timeouts)/sizeof(struct timeval));
  272. static struct nameserver *nameserver_pick(void);
  273. static void evdns_request_insert(struct evdns_request *req, struct evdns_request **head);
  274. static void nameserver_ready_callback(int fd, short events, void *arg);
  275. static int evdns_transmit(void);
  276. static int evdns_request_transmit(struct evdns_request *req);
  277. static void nameserver_send_probe(struct nameserver *const ns);
  278. static void search_request_finished(struct evdns_request *const);
  279. static int search_try_next(struct evdns_request *const req);
  280. static int search_request_new(int type, const char *const name, int flags, evdns_callback_type user_callback, void *user_arg);
  281. static void evdns_requests_pump_waiting_queue(void);
  282. static u16 transaction_id_pick(void);
  283. static struct evdns_request *request_new(int type, const char *name, int flags, evdns_callback_type callback, void *ptr);
  284. static void request_submit(struct evdns_request *req);
  285. static int server_request_free(struct server_request *req);
  286. static void server_request_free_answers(struct server_request *req);
  287. static void server_port_free(struct evdns_server_port *port);
  288. static void server_port_ready_callback(int fd, short events, void *arg);
  289. static int strtoint(const char *const str);
  290. #ifdef WIN32
  291. static int
  292. last_error(int sock)
  293. {
  294. int optval, optvallen=sizeof(optval);
  295. int err = WSAGetLastError();
  296. if (err == WSAEWOULDBLOCK && sock >= 0) {
  297. if (getsockopt(sock, SOL_SOCKET, SO_ERROR, (void*)&optval,
  298. &optvallen))
  299. return err;
  300. if (optval)
  301. return optval;
  302. }
  303. return err;
  304. }
  305. static int
  306. error_is_eagain(int err)
  307. {
  308. return err == EAGAIN || err == WSAEWOULDBLOCK;
  309. }
  310. #define inet_aton(c, addr) tor_inet_aton((c), (addr))
  311. #define CLOSE_SOCKET(x) closesocket(x)
  312. #else
  313. #define last_error(sock) (errno)
  314. #define error_is_eagain(err) ((err) == EAGAIN)
  315. #define CLOSE_SOCKET(x) close(x)
  316. #endif
  317. #define ISSPACE(c) TOR_ISSPACE(c)
  318. #define ISDIGIT(c) TOR_ISDIGIT(c)
  319. #define ISALPHA(c) TOR_ISALPHA(c)
  320. #define TOLOWER(c) TOR_TOLOWER(c)
  321. #define TOUPPER(c) TOR_TOUPPER(c)
  322. #ifndef NDEBUG
  323. static const char *
  324. debug_ntoa(u32 address)
  325. {
  326. static char buf[32];
  327. u32 a = ntohl(address);
  328. snprintf(buf, sizeof(buf), "%d.%d.%d.%d",
  329. (int)(u8)((a>>24)&0xff),
  330. (int)(u8)((a>>16)&0xff),
  331. (int)(u8)((a>>8 )&0xff),
  332. (int)(u8)((a )&0xff));
  333. return buf;
  334. }
  335. static const char *
  336. debug_ntop(const struct sockaddr *sa)
  337. {
  338. if (sa->sa_family == AF_INET) {
  339. struct sockaddr_in *sin = (struct sockaddr_in *) sa;
  340. return debug_ntoa(sin->sin_addr.s_addr);
  341. }
  342. if (sa->sa_family == AF_INET6) {
  343. /* Tor-specific. In libevent, add more check code. */
  344. static char buf[128];
  345. struct sockaddr_in6 *sin = (struct sockaddr_in6 *) sa;
  346. tor_inet_ntop(AF_INET6, &sin->sin6_addr, buf, sizeof(buf));
  347. return buf;
  348. }
  349. return "<unknown>";
  350. }
  351. #endif
  352. static evdns_debug_log_fn_type evdns_log_fn = NULL;
  353. void
  354. evdns_set_log_fn(evdns_debug_log_fn_type fn)
  355. {
  356. evdns_log_fn = fn;
  357. }
  358. #ifdef __GNUC__
  359. #define EVDNS_LOG_CHECK __attribute__ ((format(printf, 2, 3)))
  360. #else
  361. #define EVDNS_LOG_CHECK
  362. #endif
  363. static void _evdns_log(int warn, const char *fmt, ...) EVDNS_LOG_CHECK;
  364. static void
  365. _evdns_log(int warn, const char *fmt, ...)
  366. {
  367. va_list args;
  368. static char buf[512];
  369. if (!evdns_log_fn)
  370. return;
  371. va_start(args,fmt);
  372. #ifdef WIN32
  373. _vsnprintf(buf, sizeof(buf), fmt, args);
  374. #else
  375. vsnprintf(buf, sizeof(buf), fmt, args);
  376. #endif
  377. buf[sizeof(buf)-1] = '\0';
  378. evdns_log_fn(warn, buf);
  379. va_end(args);
  380. }
  381. #define log _evdns_log
  382. static int
  383. sockaddr_eq(const struct sockaddr *sa1, const struct sockaddr *sa2,
  384. int include_port)
  385. {
  386. if (sa1->sa_family != sa2->sa_family)
  387. return 0;
  388. if (sa1->sa_family == AF_INET) {
  389. const struct sockaddr_in *sin1, *sin2;
  390. sin1 = (const struct sockaddr_in *)sa1;
  391. sin2 = (const struct sockaddr_in *)sa2;
  392. if (sin1->sin_addr.s_addr != sin2->sin_addr.s_addr)
  393. return 0;
  394. else if (include_port && sin1->sin_port != sin2->sin_port)
  395. return 0;
  396. else
  397. return 1;
  398. }
  399. #ifdef AF_INET6
  400. if (sa1->sa_family == AF_INET6) {
  401. const struct sockaddr_in6 *sin1, *sin2;
  402. sin1 = (const struct sockaddr_in6 *)sa1;
  403. sin2 = (const struct sockaddr_in6 *)sa2;
  404. if (tor_memneq(sin1->sin6_addr.s6_addr, sin2->sin6_addr.s6_addr, 16))
  405. return 0;
  406. else if (include_port && sin1->sin6_port != sin2->sin6_port)
  407. return 0;
  408. else
  409. return 1;
  410. }
  411. #endif
  412. return 1;
  413. }
  414. #define add_timeout_event(s, to) \
  415. (event_add(&(s)->timeout_event, (to)))
  416. #define del_timeout_event(s) \
  417. (event_del(&(s)->timeout_event))
  418. /* This walks the list of inflight requests to find the */
  419. /* one with a matching transaction id. Returns NULL on */
  420. /* failure */
  421. static struct evdns_request *
  422. request_find_from_trans_id(u16 trans_id) {
  423. struct evdns_request *req = req_head, *const started_at = req_head;
  424. if (req) {
  425. do {
  426. if (req->trans_id == trans_id) return req;
  427. req = req->next;
  428. } while (req != started_at);
  429. }
  430. return NULL;
  431. }
  432. /* a libevent callback function which is called when a nameserver */
  433. /* has gone down and we want to test if it has came back to life yet */
  434. static void
  435. nameserver_prod_callback(int fd, short events, void *arg) {
  436. struct nameserver *const ns = (struct nameserver *) arg;
  437. (void)fd;
  438. (void)events;
  439. nameserver_send_probe(ns);
  440. }
  441. /* a libevent callback which is called when a nameserver probe (to see if */
  442. /* it has come back to life) times out. We increment the count of failed_times */
  443. /* and wait longer to send the next probe packet. */
  444. static void
  445. nameserver_probe_failed(struct nameserver *const ns) {
  446. const struct timeval * timeout;
  447. del_timeout_event(ns);
  448. if (ns->state == 1) {
  449. /* This can happen if the nameserver acts in a way which makes us mark */
  450. /* it as bad and then starts sending good replies. */
  451. return;
  452. }
  453. timeout =
  454. &global_nameserver_timeouts[MIN(ns->failed_times,
  455. global_nameserver_timeouts_length - 1)];
  456. ns->failed_times++;
  457. if (add_timeout_event(ns, (struct timeval *) timeout) < 0) {
  458. log(EVDNS_LOG_WARN,
  459. "Error from libevent when adding timer event for %s",
  460. debug_ntop((struct sockaddr *)&ns->address));
  461. /* ???? Do more? */
  462. }
  463. }
  464. /* called when a nameserver has been deemed to have failed. For example, too */
  465. /* many packets have timed out etc */
  466. static void
  467. nameserver_failed(struct nameserver *const ns, const char *msg) {
  468. struct evdns_request *req, *started_at;
  469. /* if this nameserver has already been marked as failed */
  470. /* then don't do anything */
  471. if (!ns->state) return;
  472. log(EVDNS_LOG_WARN, "Nameserver %s has failed: %s",
  473. debug_ntop((struct sockaddr *)&ns->address), msg);
  474. global_good_nameservers--;
  475. assert(global_good_nameservers >= 0);
  476. if (global_good_nameservers == 0) {
  477. log(EVDNS_LOG_WARN, "All nameservers have failed");
  478. }
  479. ns->state = 0;
  480. ns->failed_times = 1;
  481. if (add_timeout_event(ns, (struct timeval *) &global_nameserver_timeouts[0]) < 0) {
  482. log(EVDNS_LOG_WARN,
  483. "Error from libevent when adding timer event for %s",
  484. debug_ntop((struct sockaddr *)&ns->address));
  485. /* ???? Do more? */
  486. }
  487. /* walk the list of inflight requests to see if any can be reassigned to */
  488. /* a different server. Requests in the waiting queue don't have a */
  489. /* nameserver assigned yet */
  490. /* if we don't have *any* good nameservers then there's no point */
  491. /* trying to reassign requests to one */
  492. if (!global_good_nameservers) return;
  493. req = req_head;
  494. started_at = req_head;
  495. if (req) {
  496. do {
  497. if (req->tx_count == 0 && req->ns == ns) {
  498. /* still waiting to go out, can be moved */
  499. /* to another server */
  500. req->ns = nameserver_pick();
  501. }
  502. req = req->next;
  503. } while (req != started_at);
  504. }
  505. }
  506. static void
  507. nameserver_up(struct nameserver *const ns) {
  508. if (ns->state) return;
  509. log(EVDNS_LOG_WARN, "Nameserver %s is back up",
  510. debug_ntop((struct sockaddr *)&ns->address));
  511. del_timeout_event(ns);
  512. ns->state = 1;
  513. ns->failed_times = 0;
  514. ns->timedout = 0;
  515. global_good_nameservers++;
  516. }
  517. static void
  518. request_trans_id_set(struct evdns_request *const req, const u16 trans_id) {
  519. req->trans_id = trans_id;
  520. *((u16 *) req->request) = htons(trans_id);
  521. }
  522. /* Called to remove a request from a list and dealloc it. */
  523. /* head is a pointer to the head of the list it should be */
  524. /* removed from or NULL if the request isn't in a list. */
  525. static void
  526. request_finished(struct evdns_request *const req, struct evdns_request **head) {
  527. if (head) {
  528. if (req->next == req) {
  529. /* only item in the list */
  530. *head = NULL;
  531. } else {
  532. req->next->prev = req->prev;
  533. req->prev->next = req->next;
  534. if (*head == req) *head = req->next;
  535. }
  536. }
  537. log(EVDNS_LOG_DEBUG, "Removing timeout for request %lx",
  538. (unsigned long) req);
  539. del_timeout_event(req);
  540. search_request_finished(req);
  541. global_requests_inflight--;
  542. if (!req->request_appended) {
  543. /* need to free the request data on it's own */
  544. mm_free(req->request);
  545. } else {
  546. /* the request data is appended onto the header */
  547. /* so everything gets mm_free()ed when we: */
  548. }
  549. CLEAR(req);
  550. _mm_free(req);
  551. evdns_requests_pump_waiting_queue();
  552. }
  553. /* This is called when a server returns a funny error code. */
  554. /* We try the request again with another server. */
  555. /* */
  556. /* return: */
  557. /* 0 ok */
  558. /* 1 failed/reissue is pointless */
  559. static int
  560. request_reissue(struct evdns_request *req) {
  561. const struct nameserver *const last_ns = req->ns;
  562. /* the last nameserver should have been marked as failing */
  563. /* by the caller of this function, therefore pick will try */
  564. /* not to return it */
  565. req->ns = nameserver_pick();
  566. if (req->ns == last_ns) {
  567. /* ... but pick did return it */
  568. /* not a lot of point in trying again with the */
  569. /* same server */
  570. return 1;
  571. }
  572. req->reissue_count++;
  573. req->tx_count = 0;
  574. req->transmit_me = 1;
  575. return 0;
  576. }
  577. /* this function looks for space on the inflight queue and promotes */
  578. /* requests from the waiting queue if it can. */
  579. static void
  580. evdns_requests_pump_waiting_queue(void) {
  581. while (global_requests_inflight < global_max_requests_inflight &&
  582. global_requests_waiting) {
  583. struct evdns_request *req;
  584. /* move a request from the waiting queue to the inflight queue */
  585. assert(req_waiting_head);
  586. if (req_waiting_head->next == req_waiting_head) {
  587. /* only one item in the queue */
  588. req = req_waiting_head;
  589. req_waiting_head = NULL;
  590. } else {
  591. req = req_waiting_head;
  592. req->next->prev = req->prev;
  593. req->prev->next = req->next;
  594. req_waiting_head = req->next;
  595. }
  596. global_requests_waiting--;
  597. global_requests_inflight++;
  598. req->ns = nameserver_pick();
  599. request_trans_id_set(req, transaction_id_pick());
  600. evdns_request_insert(req, &req_head);
  601. evdns_request_transmit(req);
  602. evdns_transmit();
  603. }
  604. }
  605. static void
  606. reply_callback(struct evdns_request *const req, u32 ttl, u32 err, struct reply *reply) {
  607. switch (req->request_type) {
  608. case TYPE_A:
  609. if (reply)
  610. req->user_callback(DNS_ERR_NONE, DNS_IPv4_A,
  611. reply->data.a.addrcount, ttl,
  612. reply->data.a.addresses,
  613. req->user_pointer);
  614. else
  615. req->user_callback(err, 0, 0, 0, NULL, req->user_pointer);
  616. return;
  617. case TYPE_PTR:
  618. if (reply) {
  619. char *name = reply->data.ptr.name;
  620. req->user_callback(DNS_ERR_NONE, DNS_PTR, 1, ttl,
  621. &name, req->user_pointer);
  622. } else {
  623. req->user_callback(err, 0, 0, 0, NULL,
  624. req->user_pointer);
  625. }
  626. return;
  627. case TYPE_AAAA:
  628. if (reply)
  629. req->user_callback(DNS_ERR_NONE, DNS_IPv6_AAAA,
  630. reply->data.aaaa.addrcount, ttl,
  631. reply->data.aaaa.addresses,
  632. req->user_pointer);
  633. else
  634. req->user_callback(err, 0, 0, 0, NULL, req->user_pointer);
  635. return;
  636. }
  637. assert(0);
  638. }
  639. /* this processes a parsed reply packet */
  640. static void
  641. reply_handle(struct evdns_request *const req, u16 flags, u32 ttl, struct reply *reply) {
  642. int error;
  643. static const int error_codes[] = {DNS_ERR_FORMAT, DNS_ERR_SERVERFAILED, DNS_ERR_NOTEXIST, DNS_ERR_NOTIMPL, DNS_ERR_REFUSED};
  644. if (flags & 0x020f || !reply || !reply->have_answer) {
  645. /* there was an error */
  646. if (flags & 0x0200) {
  647. error = DNS_ERR_TRUNCATED;
  648. } else {
  649. u16 error_code = (flags & 0x000f) - 1;
  650. if (error_code > 4) {
  651. error = DNS_ERR_UNKNOWN;
  652. } else {
  653. error = error_codes[error_code];
  654. }
  655. }
  656. switch(error) {
  657. case DNS_ERR_NOTIMPL:
  658. case DNS_ERR_REFUSED:
  659. /* we regard these errors as marking a bad nameserver */
  660. if (req->reissue_count < global_max_reissues) {
  661. char msg[64];
  662. snprintf(msg, sizeof(msg), "Bad response %d (%s)",
  663. error, evdns_err_to_string(error));
  664. nameserver_failed(req->ns, msg);
  665. if (!request_reissue(req)) return;
  666. }
  667. break;
  668. case DNS_ERR_SERVERFAILED:
  669. /* rcode 2 (servfailed) sometimes means "we are broken" and
  670. * sometimes (with some binds) means "that request was very
  671. * confusing." Treat this as a timeout, not a failure.
  672. */
  673. /*XXXX refactor the parts of */
  674. log(EVDNS_LOG_DEBUG, "Got a SERVERFAILED from nameserver %s; "
  675. "will allow the request to time out.",
  676. debug_ntop((struct sockaddr *)&req->ns->address));
  677. break;
  678. default:
  679. /* we got a good reply from the nameserver */
  680. nameserver_up(req->ns);
  681. }
  682. if (req->search_state && req->request_type != TYPE_PTR) {
  683. /* if we have a list of domains to search in, try the next one */
  684. if (!search_try_next(req)) {
  685. /* a new request was issued so this request is finished and */
  686. /* the user callback will be made when that request (or a */
  687. /* child of it) finishes. */
  688. request_finished(req, &req_head);
  689. return;
  690. }
  691. }
  692. /* all else failed. Pass the failure up */
  693. reply_callback(req, 0, error, NULL);
  694. request_finished(req, &req_head);
  695. } else {
  696. /* all ok, tell the user */
  697. reply_callback(req, ttl, 0, reply);
  698. nameserver_up(req->ns);
  699. request_finished(req, &req_head);
  700. }
  701. }
  702. static INLINE int
  703. name_parse(u8 *packet, int length, int *idx, char *name_out, size_t name_out_len) {
  704. int name_end = -1;
  705. int j = *idx;
  706. int ptr_count = 0;
  707. #define GET32(x) do { if (j + 4 > length) goto err; memcpy(&_t32, packet + j, 4); j += 4; x = ntohl(_t32); } while(0)
  708. #define GET16(x) do { if (j + 2 > length) goto err; memcpy(&_t, packet + j, 2); j += 2; x = ntohs(_t); } while(0)
  709. #define GET8(x) do { if (j >= length) goto err; x = packet[j++]; } while(0)
  710. char *cp = name_out;
  711. const char *const end = name_out + name_out_len;
  712. /* Normally, names are a series of length prefixed strings terminated */
  713. /* with a length of 0 (the lengths are u8's < 63). */
  714. /* However, the length can start with a pair of 1 bits and that */
  715. /* means that the next 14 bits are a pointer within the current */
  716. /* packet. */
  717. for(;;) {
  718. u8 label_len;
  719. if (j >= length) return -1;
  720. GET8(label_len);
  721. if (!label_len) break;
  722. if (label_len & 0xc0) {
  723. u8 ptr_low;
  724. GET8(ptr_low);
  725. if (name_end < 0) name_end = j;
  726. j = (((int)label_len & 0x3f) << 8) + ptr_low;
  727. /* Make sure that the target offset is in-bounds. */
  728. if (j < 0 || j >= length) return -1;
  729. /* If we've jumped more times than there are characters in the
  730. * message, we must have a loop. */
  731. if (++ptr_count > length) return -1;
  732. continue;
  733. }
  734. if (label_len > 63) return -1;
  735. if (cp != name_out) {
  736. if (cp + 1 >= end) return -1;
  737. *cp++ = '.';
  738. }
  739. if (cp + label_len >= end) return -1;
  740. memcpy(cp, packet + j, label_len);
  741. cp += label_len;
  742. j += label_len;
  743. }
  744. if (cp >= end) return -1;
  745. *cp = '\0';
  746. if (name_end < 0)
  747. *idx = j;
  748. else
  749. *idx = name_end;
  750. return 0;
  751. err:
  752. return -1;
  753. }
  754. /* parses a raw reply from a nameserver. */
  755. static int
  756. reply_parse(u8 *packet, int length) {
  757. int j = 0; /* index into packet */
  758. int k;
  759. u16 _t; /* used by the macros */
  760. u32 _t32; /* used by the macros */
  761. char tmp_name[256], cmp_name[256]; /* used by the macros */
  762. u16 trans_id, questions, answers, authority, additional, datalength;
  763. u16 flags = 0;
  764. u32 ttl, ttl_r = 0xffffffff;
  765. struct reply reply;
  766. struct evdns_request *req = NULL;
  767. unsigned int i;
  768. int name_matches = 0;
  769. GET16(trans_id);
  770. GET16(flags);
  771. GET16(questions);
  772. GET16(answers);
  773. GET16(authority);
  774. GET16(additional);
  775. (void) authority; /* suppress "unused variable" warnings. */
  776. (void) additional; /* suppress "unused variable" warnings. */
  777. req = request_find_from_trans_id(trans_id);
  778. /* if no request, can't do anything. */
  779. if (!req) return -1;
  780. memset(&reply, 0, sizeof(reply));
  781. /* If it's not an answer, it doesn't go with any of our requests. */
  782. if (!(flags & 0x8000)) return -1; /* must be an answer */
  783. if (flags & 0x020f) {
  784. /* there was an error */
  785. goto err;
  786. }
  787. /* if (!answers) return; */ /* must have an answer of some form */
  788. /* This macro skips a name in the DNS reply. */
  789. #define GET_NAME \
  790. do { tmp_name[0] = '\0'; \
  791. if (name_parse(packet, length, &j, tmp_name, sizeof(tmp_name))<0)\
  792. goto err; \
  793. } while(0)
  794. #define TEST_NAME \
  795. do { tmp_name[0] = '\0'; \
  796. cmp_name[0] = '\0'; \
  797. k = j; \
  798. if (name_parse(packet, length, &j, tmp_name, sizeof(tmp_name))<0)\
  799. goto err; \
  800. if (name_parse(req->request, req->request_len, &k, cmp_name, sizeof(cmp_name))<0) \
  801. goto err; \
  802. if (global_randomize_case) { \
  803. if (strcmp(tmp_name, cmp_name) == 0) \
  804. name_matches = 1; /* we ignore mismatching names */ \
  805. } else { \
  806. if (strcasecmp(tmp_name, cmp_name) == 0) \
  807. name_matches = 1; \
  808. } \
  809. } while(0)
  810. reply.type = req->request_type;
  811. /* skip over each question in the reply */
  812. for (i = 0; i < questions; ++i) {
  813. /* the question looks like
  814. * <label:name><u16:type><u16:class>
  815. */
  816. TEST_NAME;
  817. j += 4;
  818. if (j >= length) goto err;
  819. }
  820. if (!name_matches)
  821. goto err;
  822. /* now we have the answer section which looks like
  823. * <label:name><u16:type><u16:class><u32:ttl><u16:len><data...>
  824. */
  825. for (i = 0; i < answers; ++i) {
  826. u16 type, class;
  827. GET_NAME;
  828. GET16(type);
  829. GET16(class);
  830. GET32(ttl);
  831. GET16(datalength);
  832. if (type == TYPE_A && class == CLASS_INET) {
  833. int addrcount, addrtocopy;
  834. if (req->request_type != TYPE_A) {
  835. j += datalength; continue;
  836. }
  837. if ((datalength & 3) != 0) /* not an even number of As. */
  838. goto err;
  839. addrcount = datalength >> 2;
  840. addrtocopy = MIN(MAX_ADDRS - reply.data.a.addrcount, (unsigned)addrcount);
  841. ttl_r = MIN(ttl_r, ttl);
  842. /* we only bother with the first four addresses. */
  843. if (j + 4*addrtocopy > length) goto err;
  844. memcpy(&reply.data.a.addresses[reply.data.a.addrcount],
  845. packet + j, 4*addrtocopy);
  846. reply.data.a.addrcount += addrtocopy;
  847. reply.have_answer = 1;
  848. if (reply.data.a.addrcount == MAX_ADDRS) break;
  849. j += 4*addrtocopy;
  850. } else if (type == TYPE_PTR && class == CLASS_INET) {
  851. if (req->request_type != TYPE_PTR) {
  852. j += datalength; continue;
  853. }
  854. GET_NAME;
  855. strlcpy(reply.data.ptr.name, tmp_name,
  856. sizeof(reply.data.ptr.name));
  857. ttl_r = MIN(ttl_r, ttl);
  858. reply.have_answer = 1;
  859. break;
  860. } else if (type == TYPE_AAAA && class == CLASS_INET) {
  861. int addrcount, addrtocopy;
  862. if (req->request_type != TYPE_AAAA) {
  863. j += datalength; continue;
  864. }
  865. if ((datalength & 15) != 0) /* not an even number of AAAAs. */
  866. goto err;
  867. addrcount = datalength >> 4; /* each address is 16 bytes long */
  868. addrtocopy = MIN(MAX_ADDRS - reply.data.aaaa.addrcount, (unsigned)addrcount);
  869. ttl_r = MIN(ttl_r, ttl);
  870. /* we only bother with the first four addresses. */
  871. if (j + 16*addrtocopy > length) goto err;
  872. memcpy(&reply.data.aaaa.addresses[reply.data.aaaa.addrcount],
  873. packet + j, 16*addrtocopy);
  874. reply.data.aaaa.addrcount += addrtocopy;
  875. reply.have_answer = 1;
  876. if (reply.data.aaaa.addrcount == MAX_ADDRS) break;
  877. j += 16*addrtocopy;
  878. } else {
  879. /* skip over any other type of resource */
  880. j += datalength;
  881. }
  882. }
  883. reply_handle(req, flags, ttl_r, &reply);
  884. return 0;
  885. err:
  886. if (req)
  887. reply_handle(req, flags, 0, NULL);
  888. return -1;
  889. }
  890. /* Parse a raw request (packet,length) sent to a nameserver port (port) from */
  891. /* a DNS client (addr,addrlen), and if it's well-formed, call the corresponding */
  892. /* callback. */
  893. static int
  894. request_parse(u8 *packet, ssize_t length, struct evdns_server_port *port, struct sockaddr *addr, socklen_t addrlen)
  895. {
  896. int j = 0; /* index into packet */
  897. u16 _t; /* used by the macros */
  898. char tmp_name[256]; /* used by the macros */
  899. int i;
  900. u16 trans_id, flags, questions, answers, authority, additional;
  901. struct server_request *server_req = NULL;
  902. /* Get the header fields */
  903. GET16(trans_id);
  904. GET16(flags);
  905. GET16(questions);
  906. GET16(answers);
  907. GET16(authority);
  908. GET16(additional);
  909. (void)additional;
  910. (void)authority;
  911. (void)answers;
  912. if (flags & 0x8000) return -1; /* Must not be an answer. */
  913. flags &= 0x0110; /* Only RD and CD get preserved. */
  914. if (length > INT_MAX)
  915. return -1;
  916. server_req = mm_malloc(sizeof(struct server_request));
  917. if (server_req == NULL) return -1;
  918. memset(server_req, 0, sizeof(struct server_request));
  919. server_req->trans_id = trans_id;
  920. memcpy(&server_req->addr, addr, addrlen);
  921. server_req->addrlen = addrlen;
  922. server_req->base.flags = flags;
  923. server_req->base.nquestions = 0;
  924. server_req->base.questions = mm_malloc(sizeof(struct evdns_server_question *) * questions);
  925. if (server_req->base.questions == NULL)
  926. goto err;
  927. for (i = 0; i < questions; ++i) {
  928. u16 type, class;
  929. struct evdns_server_question *q;
  930. size_t namelen;
  931. if (name_parse(packet, (int)length, &j, tmp_name, sizeof(tmp_name))<0)
  932. goto err;
  933. GET16(type);
  934. GET16(class);
  935. namelen = strlen(tmp_name);
  936. q = mm_malloc(sizeof(struct evdns_server_question) + namelen);
  937. if (!q)
  938. goto err;
  939. q->type = type;
  940. q->dns_question_class = class;
  941. memcpy(q->name, tmp_name, namelen+1);
  942. server_req->base.questions[server_req->base.nquestions++] = q;
  943. }
  944. /* Ignore answers, authority, and additional. */
  945. server_req->port = port;
  946. port->refcnt++;
  947. /* Only standard queries are supported. */
  948. if (flags & 0x7800) {
  949. evdns_server_request_respond(&(server_req->base), DNS_ERR_NOTIMPL);
  950. return -1;
  951. }
  952. port->user_callback(&(server_req->base), port->user_data);
  953. return 0;
  954. err:
  955. if (server_req) {
  956. if (server_req->base.questions) {
  957. for (i = 0; i < server_req->base.nquestions; ++i)
  958. mm_free(server_req->base.questions[i]);
  959. mm_free(server_req->base.questions);
  960. }
  961. CLEAR(server_req);
  962. mm_free(server_req);
  963. }
  964. return -1;
  965. #undef SKIP_NAME
  966. #undef GET32
  967. #undef GET16
  968. #undef GET8
  969. }
  970. static uint16_t
  971. default_transaction_id_fn(void)
  972. {
  973. u16 trans_id;
  974. #ifdef DNS_USE_CPU_CLOCK_FOR_ID
  975. struct timespec ts;
  976. #ifdef CLOCK_MONOTONIC
  977. if (clock_gettime(CLOCK_MONOTONIC, &ts) == -1)
  978. #else
  979. if (clock_gettime(CLOCK_REALTIME, &ts) == -1)
  980. #endif
  981. event_err(1, "clock_gettime");
  982. trans_id = ts.tv_nsec & 0xffff;
  983. #endif
  984. #ifdef DNS_USE_GETTIMEOFDAY_FOR_ID
  985. struct timeval tv;
  986. gettimeofday(&tv, NULL);
  987. trans_id = tv.tv_usec & 0xffff;
  988. #endif
  989. #ifdef DNS_USE_OPENSSL_FOR_ID
  990. if (RAND_pseudo_bytes((u8 *) &trans_id, 2) == -1) {
  991. /* in the case that the RAND call fails we back */
  992. /* down to using gettimeofday. */
  993. /*
  994. struct timeval tv;
  995. gettimeofday(&tv, NULL);
  996. trans_id = tv.tv_usec & 0xffff;
  997. */
  998. abort();
  999. }
  1000. #endif
  1001. return (unsigned short) trans_id;
  1002. }
  1003. static uint16_t (*trans_id_function)(void) = default_transaction_id_fn;
  1004. static void
  1005. default_random_bytes_fn(char *buf, size_t n)
  1006. {
  1007. unsigned i;
  1008. for (i = 0; i < n; i += 2) {
  1009. u16 tid = trans_id_function();
  1010. buf[i] = (tid >> 8) & 0xff;
  1011. if (i+1<n)
  1012. buf[i+1] = tid & 0xff;
  1013. }
  1014. }
  1015. static void (*rand_bytes_function)(char *buf, size_t n) =
  1016. default_random_bytes_fn;
  1017. static u16
  1018. trans_id_from_random_bytes_fn(void)
  1019. {
  1020. u16 tid;
  1021. rand_bytes_function((char*) &tid, sizeof(tid));
  1022. return tid;
  1023. }
  1024. void
  1025. evdns_set_transaction_id_fn(uint16_t (*fn)(void))
  1026. {
  1027. if (fn)
  1028. trans_id_function = fn;
  1029. else
  1030. trans_id_function = default_transaction_id_fn;
  1031. rand_bytes_function = default_random_bytes_fn;
  1032. }
  1033. void
  1034. evdns_set_random_bytes_fn(void (*fn)(char *, size_t))
  1035. {
  1036. rand_bytes_function = fn;
  1037. trans_id_function = trans_id_from_random_bytes_fn;
  1038. }
  1039. /* Try to choose a strong transaction id which isn't already in flight */
  1040. static u16
  1041. transaction_id_pick(void) {
  1042. for (;;) {
  1043. const struct evdns_request *req = req_head, *started_at;
  1044. u16 trans_id = trans_id_function();
  1045. if (trans_id == 0xffff) continue;
  1046. /* now check to see if that id is already inflight */
  1047. req = started_at = req_head;
  1048. if (req) {
  1049. do {
  1050. if (req->trans_id == trans_id) break;
  1051. req = req->next;
  1052. } while (req != started_at);
  1053. }
  1054. /* we didn't find it, so this is a good id */
  1055. if (req == started_at) return trans_id;
  1056. }
  1057. }
  1058. /* choose a namesever to use. This function will try to ignore */
  1059. /* nameservers which we think are down and load balance across the rest */
  1060. /* by updating the server_head global each time. */
  1061. static struct nameserver *
  1062. nameserver_pick(void) {
  1063. struct nameserver *started_at = server_head, *picked;
  1064. if (!server_head) return NULL;
  1065. /* if we don't have any good nameservers then there's no */
  1066. /* point in trying to find one. */
  1067. if (!global_good_nameservers) {
  1068. server_head = server_head->next;
  1069. return server_head;
  1070. }
  1071. /* remember that nameservers are in a circular list */
  1072. for (;;) {
  1073. if (server_head->state) {
  1074. /* we think this server is currently good */
  1075. picked = server_head;
  1076. server_head = server_head->next;
  1077. return picked;
  1078. }
  1079. server_head = server_head->next;
  1080. if (server_head == started_at) {
  1081. /* all the nameservers seem to be down */
  1082. /* so we just return this one and hope for the */
  1083. /* best */
  1084. assert(global_good_nameservers == 0);
  1085. picked = server_head;
  1086. server_head = server_head->next;
  1087. return picked;
  1088. }
  1089. }
  1090. }
  1091. /* this is called when a namesever socket is ready for reading */
  1092. static void
  1093. nameserver_read(struct nameserver *ns) {
  1094. struct sockaddr_storage ss;
  1095. struct sockaddr *sa = (struct sockaddr *) &ss;
  1096. socklen_t addrlen = sizeof(ss);
  1097. u8 packet[1500];
  1098. for (;;) {
  1099. const int r =
  1100. (int)recvfrom(ns->socket, (void*)packet,
  1101. (socklen_t)sizeof(packet), 0,
  1102. sa, &addrlen);
  1103. if (r < 0) {
  1104. int err = last_error(ns->socket);
  1105. if (error_is_eagain(err)) return;
  1106. nameserver_failed(ns, tor_socket_strerror(err));
  1107. return;
  1108. }
  1109. /* XXX Match port too? */
  1110. if (!sockaddr_eq(sa, (struct sockaddr*)&ns->address, 0)) {
  1111. log(EVDNS_LOG_WARN,
  1112. "Address mismatch on received DNS packet. Address was %s",
  1113. debug_ntop(sa));
  1114. return;
  1115. }
  1116. ns->timedout = 0;
  1117. reply_parse(packet, r);
  1118. }
  1119. }
  1120. /* Read a packet from a DNS client on a server port s, parse it, and */
  1121. /* act accordingly. */
  1122. static void
  1123. server_port_read(struct evdns_server_port *s) {
  1124. u8 packet[1500];
  1125. struct sockaddr_storage addr;
  1126. socklen_t addrlen;
  1127. ssize_t r;
  1128. for (;;) {
  1129. addrlen = (socklen_t)sizeof(struct sockaddr_storage);
  1130. r = recvfrom(s->socket, (void*)packet, sizeof(packet), 0,
  1131. (struct sockaddr*) &addr, &addrlen);
  1132. if (r < 0) {
  1133. int err = last_error(s->socket);
  1134. if (error_is_eagain(err)) return;
  1135. log(EVDNS_LOG_WARN, "Error %s (%d) while reading request.",
  1136. tor_socket_strerror(err), err);
  1137. return;
  1138. }
  1139. request_parse(packet, r, s, (struct sockaddr*) &addr, addrlen);
  1140. }
  1141. }
  1142. /* Try to write all pending replies on a given DNS server port. */
  1143. static void
  1144. server_port_flush(struct evdns_server_port *port)
  1145. {
  1146. struct server_request *req = port->pending_replies;
  1147. while (req) {
  1148. ssize_t r = sendto(port->socket, req->response, req->response_len, 0,
  1149. (struct sockaddr*) &req->addr, (socklen_t)req->addrlen);
  1150. if (r < 0) {
  1151. int err = last_error(port->socket);
  1152. if (error_is_eagain(err))
  1153. return;
  1154. log(EVDNS_LOG_WARN, "Error %s (%d) while writing response to port; dropping", tor_socket_strerror(err), err);
  1155. }
  1156. if (server_request_free(req)) {
  1157. /* we released the last reference to req->port. */
  1158. return;
  1159. } else {
  1160. assert(port->pending_replies != req);
  1161. req = port->pending_replies;
  1162. }
  1163. }
  1164. /* We have no more pending requests; stop listening for 'writeable' events. */
  1165. (void) event_del(&port->event);
  1166. CLEAR(&port->event);
  1167. event_set(&port->event, port->socket, EV_READ | EV_PERSIST,
  1168. server_port_ready_callback, port);
  1169. if (event_add(&port->event, NULL) < 0) {
  1170. log(EVDNS_LOG_WARN, "Error from libevent when adding event for DNS server.");
  1171. /* ???? Do more? */
  1172. }
  1173. }
  1174. /* set if we are waiting for the ability to write to this server. */
  1175. /* if waiting is true then we ask libevent for EV_WRITE events, otherwise */
  1176. /* we stop these events. */
  1177. static void
  1178. nameserver_write_waiting(struct nameserver *ns, char waiting) {
  1179. if (ns->write_waiting == waiting) return;
  1180. ns->write_waiting = waiting;
  1181. (void) event_del(&ns->event);
  1182. CLEAR(&ns->event);
  1183. event_set(&ns->event, ns->socket, EV_READ | (waiting ? EV_WRITE : 0) | EV_PERSIST,
  1184. nameserver_ready_callback, ns);
  1185. if (event_add(&ns->event, NULL) < 0) {
  1186. log(EVDNS_LOG_WARN, "Error from libevent when adding event for %s",
  1187. debug_ntop((struct sockaddr *)&ns->address));
  1188. /* ???? Do more? */
  1189. }
  1190. }
  1191. /* a callback function. Called by libevent when the kernel says that */
  1192. /* a nameserver socket is ready for writing or reading */
  1193. static void
  1194. nameserver_ready_callback(int fd, short events, void *arg) {
  1195. struct nameserver *ns = (struct nameserver *) arg;
  1196. (void)fd;
  1197. if (events & EV_WRITE) {
  1198. ns->choked = 0;
  1199. if (!evdns_transmit()) {
  1200. nameserver_write_waiting(ns, 0);
  1201. }
  1202. }
  1203. if (events & EV_READ) {
  1204. nameserver_read(ns);
  1205. }
  1206. }
  1207. /* a callback function. Called by libevent when the kernel says that */
  1208. /* a server socket is ready for writing or reading. */
  1209. static void
  1210. server_port_ready_callback(int fd, short events, void *arg) {
  1211. struct evdns_server_port *port = (struct evdns_server_port *) arg;
  1212. (void) fd;
  1213. if (events & EV_WRITE) {
  1214. port->choked = 0;
  1215. server_port_flush(port);
  1216. }
  1217. if (events & EV_READ) {
  1218. server_port_read(port);
  1219. }
  1220. }
  1221. /* This is an inefficient representation; only use it via the dnslabel_table_*
  1222. * functions, so that is can be safely replaced with something smarter later. */
  1223. #define MAX_LABELS 128
  1224. /* Structures used to implement name compression */
  1225. struct dnslabel_entry { char *v; off_t pos; };
  1226. struct dnslabel_table {
  1227. int n_labels; /* number of current entries */
  1228. /* map from name to position in message */
  1229. struct dnslabel_entry labels[MAX_LABELS];
  1230. };
  1231. /* Initialize dnslabel_table. */
  1232. static void
  1233. dnslabel_table_init(struct dnslabel_table *table)
  1234. {
  1235. table->n_labels = 0;
  1236. }
  1237. /* Free all storage held by table, but not the table itself. */
  1238. static void
  1239. dnslabel_clear(struct dnslabel_table *table)
  1240. {
  1241. int i;
  1242. for (i = 0; i < table->n_labels; ++i)
  1243. mm_free(table->labels[i].v);
  1244. table->n_labels = 0;
  1245. }
  1246. /* return the position of the label in the current message, or -1 if the label */
  1247. /* hasn't been used yet. */
  1248. static int
  1249. dnslabel_table_get_pos(const struct dnslabel_table *table, const char *label)
  1250. {
  1251. int i;
  1252. for (i = 0; i < table->n_labels; ++i) {
  1253. if (!strcmp(label, table->labels[i].v)) {
  1254. off_t pos = table->labels[i].pos;
  1255. if (pos > 65535)
  1256. return -1;
  1257. return (int)pos;
  1258. }
  1259. }
  1260. return -1;
  1261. }
  1262. /* remember that we've used the label at position pos */
  1263. static int
  1264. dnslabel_table_add(struct dnslabel_table *table, const char *label, off_t pos)
  1265. {
  1266. char *v;
  1267. int p;
  1268. if (table->n_labels == MAX_LABELS)
  1269. return (-1);
  1270. v = mm_strdup(label);
  1271. if (v == NULL)
  1272. return (-1);
  1273. p = table->n_labels++;
  1274. table->labels[p].v = v;
  1275. table->labels[p].pos = pos;
  1276. return (0);
  1277. }
  1278. /* Converts a string to a length-prefixed set of DNS labels, starting */
  1279. /* at buf[j]. name and buf must not overlap. name_len should be the length */
  1280. /* of name. table is optional, and is used for compression. */
  1281. /* */
  1282. /* Input: abc.def */
  1283. /* Output: <3>abc<3>def<0> */
  1284. /* */
  1285. /* Returns the first index after the encoded name, or negative on error. */
  1286. /* -1 label was > 63 bytes */
  1287. /* -2 name too long to fit in buffer. */
  1288. /* */
  1289. static off_t
  1290. dnsname_to_labels(u8 *const buf, size_t buf_len, off_t j,
  1291. const char *name, const size_t name_len,
  1292. struct dnslabel_table *table) {
  1293. const char *end = name + name_len;
  1294. int ref = 0;
  1295. u16 _t;
  1296. #define APPEND16(x) do { \
  1297. if (j + 2 > (off_t)buf_len) \
  1298. goto overflow; \
  1299. _t = htons(x); \
  1300. memcpy(buf + j, &_t, 2); \
  1301. j += 2; \
  1302. } while (0)
  1303. #define APPEND32(x) do { \
  1304. if (j + 4 > (off_t)buf_len) \
  1305. goto overflow; \
  1306. _t32 = htonl(x); \
  1307. memcpy(buf + j, &_t32, 4); \
  1308. j += 4; \
  1309. } while (0)
  1310. if (name_len > 255) return -2;
  1311. for (;;) {
  1312. const char *const start = name;
  1313. if (table && (ref = dnslabel_table_get_pos(table, name)) >= 0) {
  1314. APPEND16(ref | 0xc000);
  1315. return j;
  1316. }
  1317. name = strchr(name, '.');
  1318. if (!name) {
  1319. const size_t label_len = end - start;
  1320. if (label_len > 63) return -1;
  1321. if ((size_t)(j+label_len+1) > buf_len) return -2;
  1322. if (table) dnslabel_table_add(table, start, j);
  1323. buf[j++] = (uint8_t)label_len;
  1324. memcpy(buf + j, start, label_len);
  1325. j += end - start;
  1326. break;
  1327. } else {
  1328. /* append length of the label. */
  1329. const size_t label_len = name - start;
  1330. if (label_len > 63) return -1;
  1331. if ((size_t)(j+label_len+1) > buf_len) return -2;
  1332. if (table) dnslabel_table_add(table, start, j);
  1333. buf[j++] = (uint8_t)label_len;
  1334. memcpy(buf + j, start, name - start);
  1335. j += name - start;
  1336. /* hop over the '.' */
  1337. name++;
  1338. }
  1339. }
  1340. /* the labels must be terminated by a 0. */
  1341. /* It's possible that the name ended in a . */
  1342. /* in which case the zero is already there */
  1343. if (!j || buf[j-1]) buf[j++] = 0;
  1344. return j;
  1345. overflow:
  1346. return (-2);
  1347. }
  1348. /* Finds the length of a dns request for a DNS name of the given */
  1349. /* length. The actual request may be smaller than the value returned */
  1350. /* here */
  1351. static size_t
  1352. evdns_request_len(const size_t name_len) {
  1353. return 96 + /* length of the DNS standard header */
  1354. name_len + 2 +
  1355. 4; /* space for the resource type */
  1356. }
  1357. /* build a dns request packet into buf. buf should be at least as long */
  1358. /* as evdns_request_len told you it should be. */
  1359. /* */
  1360. /* Returns the amount of space used. Negative on error. */
  1361. static int
  1362. evdns_request_data_build(const char *const name, const size_t name_len,
  1363. const u16 trans_id, const u16 type, const u16 class,
  1364. u8 *const buf, size_t buf_len) {
  1365. off_t j = 0; /* current offset into buf */
  1366. u16 _t; /* used by the macros */
  1367. APPEND16(trans_id);
  1368. APPEND16(0x0100); /* standard query, recusion needed */
  1369. APPEND16(1); /* one question */
  1370. APPEND16(0); /* no answers */
  1371. APPEND16(0); /* no authority */
  1372. APPEND16(0); /* no additional */
  1373. j = dnsname_to_labels(buf, buf_len, j, name, name_len, NULL);
  1374. if (j < 0) {
  1375. return (int)j;
  1376. }
  1377. APPEND16(type);
  1378. APPEND16(class);
  1379. return (int)j;
  1380. overflow:
  1381. return (-1);
  1382. }
  1383. /* exported function */
  1384. struct evdns_server_port *
  1385. evdns_add_server_port(tor_socket_t socket, int is_tcp, evdns_request_callback_fn_type cb, void *user_data)
  1386. {
  1387. struct evdns_server_port *port;
  1388. if (!(port = mm_malloc(sizeof(struct evdns_server_port))))
  1389. return NULL;
  1390. memset(port, 0, sizeof(struct evdns_server_port));
  1391. assert(!is_tcp); /* TCP sockets not yet implemented */
  1392. port->socket = socket;
  1393. port->refcnt = 1;
  1394. port->choked = 0;
  1395. port->closing = 0;
  1396. port->user_callback = cb;
  1397. port->user_data = user_data;
  1398. port->pending_replies = NULL;
  1399. event_set(&port->event, port->socket, EV_READ | EV_PERSIST,
  1400. server_port_ready_callback, port);
  1401. if (event_add(&port->event, NULL)<0) {
  1402. mm_free(port);
  1403. return NULL;
  1404. }
  1405. return port;
  1406. }
  1407. /* exported function */
  1408. void
  1409. evdns_close_server_port(struct evdns_server_port *port)
  1410. {
  1411. port->closing = 1;
  1412. if (--port->refcnt == 0)
  1413. server_port_free(port);
  1414. }
  1415. /* exported function */
  1416. int
  1417. evdns_server_request_add_reply(struct evdns_server_request *_req, int section, const char *name, int type, int class, int ttl, int datalen, int is_name, const char *data)
  1418. {
  1419. struct server_request *req = TO_SERVER_REQUEST(_req);
  1420. struct server_reply_item **itemp, *item;
  1421. int *countp;
  1422. if (req->response) /* have we already answered? */
  1423. return (-1);
  1424. switch (section) {
  1425. case EVDNS_ANSWER_SECTION:
  1426. itemp = &req->answer;
  1427. countp = &req->n_answer;
  1428. break;
  1429. case EVDNS_AUTHORITY_SECTION:
  1430. itemp = &req->authority;
  1431. countp = &req->n_authority;
  1432. break;
  1433. case EVDNS_ADDITIONAL_SECTION:
  1434. itemp = &req->additional;
  1435. countp = &req->n_additional;
  1436. break;
  1437. default:
  1438. return (-1);
  1439. }
  1440. while (*itemp) {
  1441. itemp = &((*itemp)->next);
  1442. }
  1443. item = mm_malloc(sizeof(struct server_reply_item));
  1444. if (!item)
  1445. return -1;
  1446. CLEAR(item);
  1447. item->next = NULL;
  1448. if (!(item->name = mm_strdup(name))) {
  1449. CLEAR(item);
  1450. mm_free(item);
  1451. return -1;
  1452. }
  1453. item->type = type;
  1454. item->class = class;
  1455. item->ttl = ttl;
  1456. item->is_name = is_name != 0;
  1457. item->datalen = 0;
  1458. item->data = NULL;
  1459. if (data) {
  1460. if (item->is_name) {
  1461. if (!(item->data = mm_strdup(data))) {
  1462. mm_free(item->name);
  1463. CLEAR(item);
  1464. mm_free(item);
  1465. return -1;
  1466. }
  1467. item->datalen = (u16)-1;
  1468. } else {
  1469. if (!(item->data = mm_malloc(datalen))) {
  1470. mm_free(item->name);
  1471. CLEAR(item);
  1472. mm_free(item);
  1473. return -1;
  1474. }
  1475. item->datalen = datalen;
  1476. memcpy(item->data, data, datalen);
  1477. }
  1478. }
  1479. *itemp = item;
  1480. ++(*countp);
  1481. return 0;
  1482. }
  1483. /* exported function */
  1484. int
  1485. evdns_server_request_add_a_reply(struct evdns_server_request *req, const char *name, int n, const void *addrs, int ttl)
  1486. {
  1487. return evdns_server_request_add_reply(
  1488. req, EVDNS_ANSWER_SECTION, name, TYPE_A, CLASS_INET,
  1489. ttl, n*4, 0, addrs);
  1490. }
  1491. /* exported function */
  1492. int
  1493. evdns_server_request_add_aaaa_reply(struct evdns_server_request *req, const char *name, int n, const void *addrs, int ttl)
  1494. {
  1495. return evdns_server_request_add_reply(
  1496. req, EVDNS_ANSWER_SECTION, name, TYPE_AAAA, CLASS_INET,
  1497. ttl, n*16, 0, addrs);
  1498. }
  1499. /* exported function */
  1500. int
  1501. evdns_server_request_add_ptr_reply(struct evdns_server_request *req, struct in_addr *in, const char *inaddr_name, const char *hostname, int ttl)
  1502. {
  1503. u32 a;
  1504. char buf[32];
  1505. assert(in || inaddr_name);
  1506. assert(!(in && inaddr_name));
  1507. if (in) {
  1508. a = ntohl(in->s_addr);
  1509. snprintf(buf, sizeof(buf), "%d.%d.%d.%d.in-addr.arpa",
  1510. (int)(u8)((a )&0xff),
  1511. (int)(u8)((a>>8 )&0xff),
  1512. (int)(u8)((a>>16)&0xff),
  1513. (int)(u8)((a>>24)&0xff));
  1514. inaddr_name = buf;
  1515. }
  1516. return evdns_server_request_add_reply(
  1517. req, EVDNS_ANSWER_SECTION, inaddr_name, TYPE_PTR, CLASS_INET,
  1518. ttl, -1, 1, hostname);
  1519. }
  1520. /* exported function */
  1521. int
  1522. evdns_server_request_add_cname_reply(struct evdns_server_request *req, const char *name, const char *cname, int ttl)
  1523. {
  1524. return evdns_server_request_add_reply(
  1525. req, EVDNS_ANSWER_SECTION, name, TYPE_CNAME, CLASS_INET,
  1526. ttl, -1, 1, cname);
  1527. }
  1528. static int
  1529. evdns_server_request_format_response(struct server_request *req, int err)
  1530. {
  1531. unsigned char buf[1500];
  1532. size_t buf_len = sizeof(buf);
  1533. off_t j = 0, r;
  1534. u16 _t;
  1535. u32 _t32;
  1536. int i;
  1537. u16 flags;
  1538. struct dnslabel_table table;
  1539. if (err < 0 || err > 15) return -1;
  1540. /* Set response bit and error code; copy OPCODE and RD fields from
  1541. * question; copy RA and AA if set by caller. */
  1542. flags = req->base.flags;
  1543. flags |= (0x8000 | err);
  1544. dnslabel_table_init(&table);
  1545. APPEND16(req->trans_id);
  1546. APPEND16(flags);
  1547. APPEND16(req->base.nquestions);
  1548. APPEND16(req->n_answer);
  1549. APPEND16(req->n_authority);
  1550. APPEND16(req->n_additional);
  1551. /* Add questions. */
  1552. for (i=0; i < req->base.nquestions; ++i) {
  1553. const char *s = req->base.questions[i]->name;
  1554. j = dnsname_to_labels(buf, buf_len, j, s, strlen(s), &table);
  1555. if (j < 0) {
  1556. dnslabel_clear(&table);
  1557. return (int) j;
  1558. }
  1559. APPEND16(req->base.questions[i]->type);
  1560. APPEND16(req->base.questions[i]->dns_question_class);
  1561. }
  1562. /* Add answer, authority, and additional sections. */
  1563. for (i=0; i<3; ++i) {
  1564. struct server_reply_item *item;
  1565. if (i==0)
  1566. item = req->answer;
  1567. else if (i==1)
  1568. item = req->authority;
  1569. else
  1570. item = req->additional;
  1571. while (item) {
  1572. r = dnsname_to_labels(buf, buf_len, j, item->name, strlen(item->name), &table);
  1573. if (r < 0)
  1574. goto overflow;
  1575. j = r;
  1576. APPEND16(item->type);
  1577. APPEND16(item->class);
  1578. APPEND32(item->ttl);
  1579. if (item->is_name) {
  1580. off_t len_idx = j, name_start;
  1581. j += 2;
  1582. name_start = j;
  1583. r = dnsname_to_labels(buf, buf_len, j, item->data, strlen(item->data), &table);
  1584. if (r < 0)
  1585. goto overflow;
  1586. j = r;
  1587. _t = htons( (j-name_start) );
  1588. memcpy(buf+len_idx, &_t, 2);
  1589. } else {
  1590. APPEND16(item->datalen);
  1591. if (j+item->datalen > (off_t)buf_len)
  1592. goto overflow;
  1593. memcpy(buf+j, item->data, item->datalen);
  1594. j += item->datalen;
  1595. }
  1596. item = item->next;
  1597. }
  1598. }
  1599. if (j > 512) {
  1600. overflow:
  1601. j = 512;
  1602. buf[2] |= 0x02; /* set the truncated bit. */
  1603. }
  1604. req->response_len = (size_t)j;
  1605. if (!(req->response = mm_malloc(req->response_len))) {
  1606. server_request_free_answers(req);
  1607. dnslabel_clear(&table);
  1608. return (-1);
  1609. }
  1610. memcpy(req->response, buf, req->response_len);
  1611. server_request_free_answers(req);
  1612. dnslabel_clear(&table);
  1613. return (0);
  1614. }
  1615. /* exported function */
  1616. int
  1617. evdns_server_request_respond(struct evdns_server_request *_req, int err)
  1618. {
  1619. struct server_request *req = TO_SERVER_REQUEST(_req);
  1620. struct evdns_server_port *port = req->port;
  1621. ssize_t r;
  1622. if (!req->response) {
  1623. if ((r = evdns_server_request_format_response(req, err))<0)
  1624. return (int)r;
  1625. }
  1626. r = sendto(port->socket, req->response, req->response_len, 0,
  1627. (struct sockaddr*) &req->addr, req->addrlen);
  1628. if (r<0) {
  1629. int error = last_error(port->socket);
  1630. if (! error_is_eagain(error))
  1631. return -1;
  1632. if (port->pending_replies) {
  1633. req->prev_pending = port->pending_replies->prev_pending;
  1634. req->next_pending = port->pending_replies;
  1635. req->prev_pending->next_pending =
  1636. req->next_pending->prev_pending = req;
  1637. } else {
  1638. req->prev_pending = req->next_pending = req;
  1639. port->pending_replies = req;
  1640. port->choked = 1;
  1641. (void) event_del(&port->event);
  1642. CLEAR(&port->event);
  1643. event_set(&port->event, port->socket, (port->closing?0:EV_READ) | EV_WRITE | EV_PERSIST, server_port_ready_callback, port);
  1644. if (event_add(&port->event, NULL) < 0) {
  1645. log(EVDNS_LOG_WARN, "Error from libevent when adding event for DNS server");
  1646. }
  1647. }
  1648. return 1;
  1649. }
  1650. if (server_request_free(req))
  1651. return 0;
  1652. if (port->pending_replies)
  1653. server_port_flush(port);
  1654. return 0;
  1655. }
  1656. /* Free all storage held by RRs in req. */
  1657. static void
  1658. server_request_free_answers(struct server_request *req)
  1659. {
  1660. struct server_reply_item *victim, *next, **list;
  1661. int i;
  1662. for (i = 0; i < 3; ++i) {
  1663. if (i==0)
  1664. list = &req->answer;
  1665. else if (i==1)
  1666. list = &req->authority;
  1667. else
  1668. list = &req->additional;
  1669. victim = *list;
  1670. while (victim) {
  1671. next = victim->next;
  1672. mm_free(victim->name);
  1673. if (victim->data)
  1674. mm_free(victim->data);
  1675. mm_free(victim);
  1676. victim = next;
  1677. }
  1678. *list = NULL;
  1679. }
  1680. }
  1681. /* Free all storage held by req, and remove links to it. */
  1682. /* return true iff we just wound up freeing the server_port. */
  1683. static int
  1684. server_request_free(struct server_request *req)
  1685. {
  1686. int i, rc=1;
  1687. if (req->base.questions) {
  1688. for (i = 0; i < req->base.nquestions; ++i)
  1689. mm_free(req->base.questions[i]);
  1690. mm_free(req->base.questions);
  1691. }
  1692. if (req->port) {
  1693. if (req->port->pending_replies == req) {
  1694. if (req->next_pending && req->next_pending != req)
  1695. req->port->pending_replies = req->next_pending;
  1696. else
  1697. req->port->pending_replies = NULL;
  1698. }
  1699. rc = --req->port->refcnt;
  1700. }
  1701. if (req->response) {
  1702. mm_free(req->response);
  1703. }
  1704. server_request_free_answers(req);
  1705. if (req->next_pending && req->next_pending != req) {
  1706. req->next_pending->prev_pending = req->prev_pending;
  1707. req->prev_pending->next_pending = req->next_pending;
  1708. }
  1709. if (rc == 0) {
  1710. server_port_free(req->port);
  1711. CLEAR(req);
  1712. mm_free(req);
  1713. return (1);
  1714. }
  1715. CLEAR(req);
  1716. mm_free(req);
  1717. return (0);
  1718. }
  1719. /* Free all storage held by an evdns_server_port. Only called when the
  1720. * reference count is down to 0. */
  1721. static void
  1722. server_port_free(struct evdns_server_port *port)
  1723. {
  1724. assert(port);
  1725. assert(!port->refcnt);
  1726. assert(!port->pending_replies);
  1727. if (port->socket > 0) {
  1728. CLOSE_SOCKET(port->socket);
  1729. port->socket = -1;
  1730. }
  1731. (void) event_del(&port->event);
  1732. CLEAR(&port->event);
  1733. CLEAR(port);
  1734. mm_free(port);
  1735. }
  1736. /* exported function */
  1737. int
  1738. evdns_server_request_drop(struct evdns_server_request *_req)
  1739. {
  1740. struct server_request *req = TO_SERVER_REQUEST(_req);
  1741. server_request_free(req);
  1742. return 0;
  1743. }
  1744. /* exported function */
  1745. int
  1746. evdns_server_request_get_requesting_addr(struct evdns_server_request *_req, struct sockaddr *sa, int addr_len)
  1747. {
  1748. struct server_request *req = TO_SERVER_REQUEST(_req);
  1749. if (addr_len < (int)req->addrlen)
  1750. return -1;
  1751. memcpy(sa, &(req->addr), req->addrlen);
  1752. return req->addrlen;
  1753. }
  1754. #undef APPEND16
  1755. #undef APPEND32
  1756. /* this is a libevent callback function which is called when a request */
  1757. /* has timed out. */
  1758. static void
  1759. evdns_request_timeout_callback(int fd, short events, void *arg) {
  1760. struct evdns_request *const req = (struct evdns_request *) arg;
  1761. (void) fd;
  1762. (void) events;
  1763. log(EVDNS_LOG_DEBUG, "Request %lx timed out", (unsigned long) arg);
  1764. req->ns->timedout++;
  1765. if (req->ns->timedout > global_max_nameserver_timeout) {
  1766. req->ns->timedout = 0;
  1767. nameserver_failed(req->ns, "request timed out.");
  1768. }
  1769. if (req->tx_count >= global_max_retransmits) {
  1770. /* this request has failed */
  1771. reply_callback(req, 0, DNS_ERR_TIMEOUT, NULL);
  1772. request_finished(req, &req_head);
  1773. } else {
  1774. /* retransmit it */
  1775. /* Stop waiting for the timeout. No need to do this in
  1776. * request_finished; that one already deletes the timeout event.
  1777. * XXXX023 port this change to libevent. */
  1778. del_timeout_event(req);
  1779. evdns_request_transmit(req);
  1780. }
  1781. }
  1782. /* try to send a request to a given server. */
  1783. /* */
  1784. /* return: */
  1785. /* 0 ok */
  1786. /* 1 temporary failure */
  1787. /* 2 other failure */
  1788. static int
  1789. evdns_request_transmit_to(struct evdns_request *req, struct nameserver *server) {
  1790. const ssize_t r = send(server->socket, (void*)req->request,
  1791. req->request_len, 0);
  1792. if (r < 0) {
  1793. int err = last_error(server->socket);
  1794. if (error_is_eagain(err)) return 1;
  1795. nameserver_failed(req->ns, tor_socket_strerror(err));
  1796. return 2;
  1797. } else if (r != (ssize_t)req->request_len) {
  1798. return 1; /* short write */
  1799. } else {
  1800. return 0;
  1801. }
  1802. }
  1803. /* try to send a request, updating the fields of the request */
  1804. /* as needed */
  1805. /* */
  1806. /* return: */
  1807. /* 0 ok */
  1808. /* 1 failed */
  1809. static int
  1810. evdns_request_transmit(struct evdns_request *req) {
  1811. int retcode = 0, r;
  1812. /* if we fail to send this packet then this flag marks it */
  1813. /* for evdns_transmit */
  1814. req->transmit_me = 1;
  1815. if (req->trans_id == 0xffff) abort();
  1816. if (req->ns->choked) {
  1817. /* don't bother trying to write to a socket */
  1818. /* which we have had EAGAIN from */
  1819. return 1;
  1820. }
  1821. r = evdns_request_transmit_to(req, req->ns);
  1822. switch (r) {
  1823. case 1:
  1824. /* temp failure */
  1825. req->ns->choked = 1;
  1826. nameserver_write_waiting(req->ns, 1);
  1827. return 1;
  1828. case 2:
  1829. /* failed to transmit the request entirely. */
  1830. retcode = 1;
  1831. /* fall through: we'll set a timeout, which will time out,
  1832. * and make us retransmit the request anyway. */
  1833. default:
  1834. /* transmitted; we need to check for timeout. */
  1835. log(EVDNS_LOG_DEBUG,
  1836. "Setting timeout for request %lx", (unsigned long) req);
  1837. if (add_timeout_event(req, &global_timeout) < 0) {
  1838. log(EVDNS_LOG_WARN,
  1839. "Error from libevent when adding timer for request %lx",
  1840. (unsigned long) req);
  1841. /* ???? Do more? */
  1842. }
  1843. req->tx_count++;
  1844. req->transmit_me = 0;
  1845. return retcode;
  1846. }
  1847. }
  1848. static void
  1849. nameserver_probe_callback(int result, char type, int count, int ttl, void *addresses, void *arg) {
  1850. struct sockaddr *addr = arg;
  1851. struct nameserver *server;
  1852. (void) type;
  1853. (void) count;
  1854. (void) ttl;
  1855. (void) addresses;
  1856. for (server = server_head; server; server = server->next) {
  1857. if (sockaddr_eq(addr, (struct sockaddr*) &server->address, 1)) {
  1858. if (result == DNS_ERR_NONE || result == DNS_ERR_NOTEXIST) {
  1859. /* this is a good reply */
  1860. nameserver_up(server);
  1861. } else {
  1862. nameserver_probe_failed(server);
  1863. }
  1864. }
  1865. if (server->next == server_head)
  1866. break;
  1867. }
  1868. mm_free(addr);
  1869. }
  1870. static void
  1871. nameserver_send_probe(struct nameserver *const ns) {
  1872. struct evdns_request *req;
  1873. struct sockaddr_storage *addr;
  1874. /* here we need to send a probe to a given nameserver */
  1875. /* in the hope that it is up now. */
  1876. /* We identify the nameserver by its address, in case it is removed before
  1877. * our probe comes back. */
  1878. addr = mm_malloc(sizeof(struct sockaddr_storage));
  1879. memcpy(addr, &ns->address, sizeof(struct sockaddr_storage));
  1880. log(EVDNS_LOG_DEBUG, "Sending probe to %s", debug_ntop((struct sockaddr *)&ns->address));
  1881. req = request_new(TYPE_A, "www.google.com", DNS_QUERY_NO_SEARCH, nameserver_probe_callback, addr);
  1882. if (!req) {
  1883. mm_free(addr);
  1884. return;
  1885. }
  1886. /* we force this into the inflight queue no matter what */
  1887. request_trans_id_set(req, transaction_id_pick());
  1888. req->ns = ns;
  1889. request_submit(req);
  1890. }
  1891. /* returns: */
  1892. /* 0 didn't try to transmit anything */
  1893. /* 1 tried to transmit something */
  1894. static int
  1895. evdns_transmit(void) {
  1896. char did_try_to_transmit = 0;
  1897. if (req_head) {
  1898. struct evdns_request *const started_at = req_head, *req = req_head;
  1899. /* first transmit all the requests which are currently waiting */
  1900. do {
  1901. if (req->transmit_me) {
  1902. did_try_to_transmit = 1;
  1903. evdns_request_transmit(req);
  1904. }
  1905. req = req->next;
  1906. } while (req != started_at);
  1907. }
  1908. return did_try_to_transmit;
  1909. }
  1910. /* exported function */
  1911. int
  1912. evdns_count_nameservers(void)
  1913. {
  1914. const struct nameserver *server = server_head;
  1915. int n = 0;
  1916. if (!server)
  1917. return 0;
  1918. do {
  1919. ++n;
  1920. server = server->next;
  1921. } while (server != server_head);
  1922. return n;
  1923. }
  1924. /* exported function */
  1925. int
  1926. evdns_clear_nameservers_and_suspend(void)
  1927. {
  1928. struct nameserver *server = server_head, *started_at = server_head;
  1929. struct evdns_request *req = req_head, *req_started_at = req_head;
  1930. if (!server)
  1931. return 0;
  1932. while (1) {
  1933. struct nameserver *next = server->next;
  1934. (void) event_del(&server->event);
  1935. CLEAR(&server->event);
  1936. del_timeout_event(server);
  1937. if (server->socket >= 0)
  1938. CLOSE_SOCKET(server->socket);
  1939. CLEAR(server);
  1940. mm_free(server);
  1941. if (next == started_at)
  1942. break;
  1943. server = next;
  1944. }
  1945. server_head = NULL;
  1946. global_good_nameservers = 0;
  1947. while (req) {
  1948. struct evdns_request *next = req->next;
  1949. req->tx_count = req->reissue_count = 0;
  1950. req->ns = NULL;
  1951. /* ???? What to do about searches? */
  1952. del_timeout_event(req);
  1953. req->trans_id = 0;
  1954. req->transmit_me = 0;
  1955. global_requests_waiting++;
  1956. evdns_request_insert(req, &req_waiting_head);
  1957. /* We want to insert these suspended elements at the front of
  1958. * the waiting queue, since they were pending before any of
  1959. * the waiting entries were added. This is a circular list,
  1960. * so we can just shift the start back by one.*/
  1961. req_waiting_head = req_waiting_head->prev;
  1962. if (next == req_started_at)
  1963. break;
  1964. req = next;
  1965. }
  1966. req_head = NULL;
  1967. global_requests_inflight = 0;
  1968. return 0;
  1969. }
  1970. static struct sockaddr_storage global_bind_address;
  1971. static socklen_t global_bind_addrlen = 0;
  1972. static int global_bind_addr_is_set = 0;
  1973. void
  1974. evdns_set_default_outgoing_bind_address(const struct sockaddr *addr,
  1975. socklen_t addrlen)
  1976. {
  1977. memset(&global_bind_address, 0, sizeof(global_bind_address));
  1978. if (addr) {
  1979. assert(addrlen <= (socklen_t)sizeof(global_bind_address));
  1980. memcpy(&global_bind_address, addr, addrlen);
  1981. global_bind_addrlen = addrlen;
  1982. global_bind_addr_is_set = 1;
  1983. } else {
  1984. global_bind_addr_is_set = 0;
  1985. }
  1986. }
  1987. /* exported function */
  1988. int
  1989. evdns_resume(void)
  1990. {
  1991. evdns_requests_pump_waiting_queue();
  1992. return 0;
  1993. }
  1994. static int
  1995. sockaddr_is_loopback(const struct sockaddr *addr)
  1996. {
  1997. static const char LOOPBACK_S6[16] =
  1998. "\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\1";
  1999. if (addr->sa_family == AF_INET) {
  2000. struct sockaddr_in *sin = (struct sockaddr_in *)addr;
  2001. return (ntohl(sin->sin_addr.s_addr) & 0xff000000) == 0x7f000000;
  2002. } else if (addr->sa_family == AF_INET6) {
  2003. struct sockaddr_in6 *sin6 = (struct sockaddr_in6 *)addr;
  2004. return fast_memeq(sin6->sin6_addr.s6_addr, LOOPBACK_S6, 16);
  2005. }
  2006. return 0;
  2007. }
  2008. static int
  2009. _evdns_nameserver_add_impl(const struct sockaddr *address,
  2010. socklen_t addrlen) {
  2011. /* first check to see if we already have this nameserver */
  2012. const struct nameserver *server = server_head, *const started_at = server_head;
  2013. struct nameserver *ns;
  2014. int err = 0;
  2015. if (server) {
  2016. do {
  2017. if (sockaddr_eq(address, (struct sockaddr *)&server->address, 1)) {
  2018. log(EVDNS_LOG_DEBUG, "Duplicate nameserver.");
  2019. return 3;
  2020. }
  2021. server = server->next;
  2022. } while (server != started_at);
  2023. }
  2024. if (addrlen > (int)sizeof(ns->address)) {
  2025. log(EVDNS_LOG_DEBUG, "Addrlen %d too long.", (int)addrlen);
  2026. return 2;
  2027. }
  2028. ns = (struct nameserver *) mm_malloc(sizeof(struct nameserver));
  2029. if (!ns) return -1;
  2030. memset(ns, 0, sizeof(struct nameserver));
  2031. evtimer_set(&ns->timeout_event, nameserver_prod_callback, ns);
  2032. ns->socket = tor_open_socket(address->sa_family, SOCK_DGRAM, 0);
  2033. if (ns->socket < 0) { err = 1; goto out1; }
  2034. #ifdef WIN32
  2035. {
  2036. u_long nonblocking = 1;
  2037. ioctlsocket(ns->socket, FIONBIO, &nonblocking);
  2038. }
  2039. #else
  2040. fcntl(ns->socket, F_SETFL, O_NONBLOCK);
  2041. #endif
  2042. if (global_bind_addr_is_set &&
  2043. !sockaddr_is_loopback((struct sockaddr*)&global_bind_address)) {
  2044. if (bind(ns->socket, (struct sockaddr *)&global_bind_address,
  2045. global_bind_addrlen) < 0) {
  2046. log(EVDNS_LOG_DEBUG, "Couldn't bind to outgoing address.");
  2047. err = 2;
  2048. goto out2;
  2049. }
  2050. }
  2051. if (connect(ns->socket, address, addrlen) != 0) {
  2052. log(EVDNS_LOG_DEBUG, "Couldn't open socket to nameserver.");
  2053. err = 2;
  2054. goto out2;
  2055. }
  2056. memcpy(&ns->address, address, addrlen);
  2057. ns->state = 1;
  2058. event_set(&ns->event, ns->socket, EV_READ | EV_PERSIST, nameserver_ready_callback, ns);
  2059. if (event_add(&ns->event, NULL) < 0) {
  2060. log(EVDNS_LOG_DEBUG, "Couldn't add event for nameserver.");
  2061. err = 2;
  2062. goto out2;
  2063. }
  2064. log(EVDNS_LOG_DEBUG, "Added nameserver %s", debug_ntop(address));
  2065. /* insert this nameserver into the list of them */
  2066. if (!server_head) {
  2067. ns->next = ns->prev = ns;
  2068. server_head = ns;
  2069. } else {
  2070. ns->next = server_head->next;
  2071. ns->prev = server_head;
  2072. server_head->next = ns;
  2073. if (server_head->prev == server_head) {
  2074. server_head->prev = ns;
  2075. }
  2076. }
  2077. global_good_nameservers++;
  2078. return 0;
  2079. out2:
  2080. CLOSE_SOCKET(ns->socket);
  2081. out1:
  2082. CLEAR(ns);
  2083. mm_free(ns);
  2084. log(EVDNS_LOG_WARN, "Unable to add nameserver %s: error %d", debug_ntop(address), err);
  2085. return err;
  2086. }
  2087. /* exported function */
  2088. int
  2089. evdns_nameserver_add(uint32_t address) {
  2090. struct sockaddr_in sin;
  2091. memset(&sin, 0, sizeof(sin));
  2092. sin.sin_family = AF_INET;
  2093. #ifdef HAVE_STRUCT_SOCKADDR_IN_SIN_LEN
  2094. sin.sin_len = sizeof(sin);
  2095. #endif
  2096. sin.sin_addr.s_addr = htonl(address);
  2097. sin.sin_port = 53;
  2098. return _evdns_nameserver_add_impl((struct sockaddr*) &sin, sizeof(sin));
  2099. }
  2100. /* exported function */
  2101. int
  2102. evdns_nameserver_ip_add(const char *ip_as_string) {
  2103. int port;
  2104. char buf[128];
  2105. const char *cp, *addr_part, *port_part;
  2106. int is_ipv6;
  2107. /* recognized formats are:
  2108. * [ipv6]:port
  2109. * ipv6
  2110. * [ipv6]
  2111. * ipv4:port
  2112. * ipv4
  2113. */
  2114. log(EVDNS_LOG_DEBUG, "Trying to add nameserver <%s>", ip_as_string);
  2115. cp = strchr(ip_as_string, ':');
  2116. if (*ip_as_string == '[') {
  2117. size_t len;
  2118. if (!(cp = strchr(ip_as_string, ']'))) {
  2119. log(EVDNS_LOG_DEBUG, "Nameserver missing closing ]");
  2120. return 4;
  2121. }
  2122. len = cp-(ip_as_string + 1);
  2123. if (len > sizeof(buf)-1) {
  2124. log(EVDNS_LOG_DEBUG, "[Nameserver] does not fit in buffer.");
  2125. return 4;
  2126. }
  2127. memcpy(buf, ip_as_string+1, len);
  2128. buf[len] = '\0';
  2129. addr_part = buf;
  2130. if (cp[1] == ':')
  2131. port_part = cp+2;
  2132. else
  2133. port_part = NULL;
  2134. is_ipv6 = 1;
  2135. } else if (cp && strchr(cp+1, ':')) {
  2136. is_ipv6 = 1;
  2137. addr_part = ip_as_string;
  2138. port_part = NULL;
  2139. } else if (cp) {
  2140. is_ipv6 = 0;
  2141. if (cp - ip_as_string > (int)sizeof(buf)-1) {
  2142. log(EVDNS_LOG_DEBUG, "Nameserver does not fit in buffer.");
  2143. return 4;
  2144. }
  2145. memcpy(buf, ip_as_string, cp-ip_as_string);
  2146. buf[cp-ip_as_string] = '\0';
  2147. addr_part = buf;
  2148. port_part = cp+1;
  2149. } else {
  2150. addr_part = ip_as_string;
  2151. port_part = NULL;
  2152. is_ipv6 = 0;
  2153. }
  2154. if (port_part == NULL) {
  2155. port = 53;
  2156. } else {
  2157. port = strtoint(port_part);
  2158. if (port <= 0 || port > 65535) {
  2159. log(EVDNS_LOG_DEBUG, "Nameserver port <%s> out of range",
  2160. port_part);
  2161. return 4;
  2162. }
  2163. }
  2164. /* Tor-only. needs a more general fix. */
  2165. assert(addr_part);
  2166. if (is_ipv6) {
  2167. struct sockaddr_in6 sin6;
  2168. memset(&sin6, 0, sizeof(sin6));
  2169. #ifdef HAVE_STRUCT_SOCKADDR_IN6_SIN6_LEN
  2170. sin6.sin6_len = sizeof(sin6);
  2171. #endif
  2172. sin6.sin6_family = AF_INET6;
  2173. sin6.sin6_port = htons(port);
  2174. if (1 != tor_inet_pton(AF_INET6, addr_part, &sin6.sin6_addr)) {
  2175. log(EVDNS_LOG_DEBUG, "inet_pton(%s) failed", addr_part);
  2176. return 4;
  2177. }
  2178. return _evdns_nameserver_add_impl((struct sockaddr*)&sin6,
  2179. sizeof(sin6));
  2180. } else {
  2181. struct sockaddr_in sin;
  2182. memset(&sin, 0, sizeof(sin));
  2183. #ifdef HAVE_STRUCT_SOCKADDR_IN_SIN_LEN
  2184. sin.sin_len = sizeof(sin);
  2185. #endif
  2186. sin.sin_family = AF_INET;
  2187. sin.sin_port = htons(port);
  2188. if (!inet_aton(addr_part, &sin.sin_addr)) {
  2189. log(EVDNS_LOG_DEBUG, "inet_pton(%s) failed", addr_part);
  2190. return 4;
  2191. }
  2192. return _evdns_nameserver_add_impl((struct sockaddr*)&sin,
  2193. sizeof(sin));
  2194. }
  2195. }
  2196. int
  2197. evdns_nameserver_sockaddr_add(const struct sockaddr *sa, socklen_t len)
  2198. {
  2199. return _evdns_nameserver_add_impl(sa, len);
  2200. }
  2201. /* insert into the tail of the queue */
  2202. static void
  2203. evdns_request_insert(struct evdns_request *req, struct evdns_request **head) {
  2204. if (!*head) {
  2205. *head = req;
  2206. req->next = req->prev = req;
  2207. return;
  2208. }
  2209. req->prev = (*head)->prev;
  2210. req->prev->next = req;
  2211. req->next = *head;
  2212. (*head)->prev = req;
  2213. }
  2214. static int
  2215. string_num_dots(const char *s) {
  2216. int count = 0;
  2217. while ((s = strchr(s, '.'))) {
  2218. s++;
  2219. count++;
  2220. }
  2221. return count;
  2222. }
  2223. static struct evdns_request *
  2224. request_new(int type, const char *name, int flags,
  2225. evdns_callback_type callback, void *user_ptr) {
  2226. const char issuing_now =
  2227. (global_requests_inflight < global_max_requests_inflight) ? 1 : 0;
  2228. const size_t name_len = strlen(name);
  2229. const size_t request_max_len = evdns_request_len(name_len);
  2230. const u16 trans_id = issuing_now ? transaction_id_pick() : 0xffff;
  2231. /* the request data is alloced in a single block with the header */
  2232. struct evdns_request *const req =
  2233. (struct evdns_request *) mm_malloc(sizeof(struct evdns_request) + request_max_len);
  2234. char namebuf[256];
  2235. int rlen;
  2236. (void) flags;
  2237. if (!req) return NULL;
  2238. if (name_len >= sizeof(namebuf)) {
  2239. _mm_free(req);
  2240. return NULL;
  2241. }
  2242. memset(req, 0, sizeof(struct evdns_request));
  2243. evtimer_set(&req->timeout_event, evdns_request_timeout_callback, req);
  2244. if (global_randomize_case) {
  2245. unsigned i;
  2246. char randbits[32];
  2247. strlcpy(namebuf, name, sizeof(namebuf));
  2248. rand_bytes_function(randbits, (name_len+7)/8);
  2249. for (i = 0; i < name_len; ++i) {
  2250. if (ISALPHA(namebuf[i])) {
  2251. if ((randbits[i >> 3] & (1<<(i%7))))
  2252. namebuf[i] = TOLOWER(namebuf[i]);
  2253. else
  2254. namebuf[i] = TOUPPER(namebuf[i]);
  2255. }
  2256. }
  2257. name = namebuf;
  2258. }
  2259. /* request data lives just after the header */
  2260. req->request = ((u8 *) req) + sizeof(struct evdns_request);
  2261. /* denotes that the request data shouldn't be mm_free()ed */
  2262. req->request_appended = 1;
  2263. rlen = evdns_request_data_build(name, name_len, trans_id,
  2264. type, CLASS_INET, req->request, request_max_len);
  2265. if (rlen < 0)
  2266. goto err1;
  2267. req->request_len = rlen;
  2268. req->trans_id = trans_id;
  2269. req->tx_count = 0;
  2270. req->request_type = type;
  2271. req->user_pointer = user_ptr;
  2272. req->user_callback = callback;
  2273. req->ns = issuing_now ? nameserver_pick() : NULL;
  2274. req->next = req->prev = NULL;
  2275. return req;
  2276. err1:
  2277. CLEAR(req);
  2278. _mm_free(req);
  2279. return NULL;
  2280. }
  2281. static void
  2282. request_submit(struct evdns_request *const req) {
  2283. if (req->ns) {
  2284. /* if it has a nameserver assigned then this is going */
  2285. /* straight into the inflight queue */
  2286. evdns_request_insert(req, &req_head);
  2287. global_requests_inflight++;
  2288. evdns_request_transmit(req);
  2289. } else {
  2290. evdns_request_insert(req, &req_waiting_head);
  2291. global_requests_waiting++;
  2292. }
  2293. }
  2294. /* exported function */
  2295. int evdns_resolve_ipv4(const char *name, int flags,
  2296. evdns_callback_type callback, void *ptr) {
  2297. log(EVDNS_LOG_DEBUG, "Resolve requested for %s", name);
  2298. if (flags & DNS_QUERY_NO_SEARCH) {
  2299. struct evdns_request *const req =
  2300. request_new(TYPE_A, name, flags, callback, ptr);
  2301. if (req == NULL)
  2302. return (1);
  2303. request_submit(req);
  2304. return (0);
  2305. } else {
  2306. return (search_request_new(TYPE_A, name, flags, callback, ptr));
  2307. }
  2308. }
  2309. /* exported function */
  2310. int evdns_resolve_ipv6(const char *name, int flags,
  2311. evdns_callback_type callback, void *ptr) {
  2312. log(EVDNS_LOG_DEBUG, "Resolve requested for %s", name);
  2313. if (flags & DNS_QUERY_NO_SEARCH) {
  2314. struct evdns_request *const req =
  2315. request_new(TYPE_AAAA, name, flags, callback, ptr);
  2316. if (req == NULL)
  2317. return (1);
  2318. request_submit(req);
  2319. return (0);
  2320. } else {
  2321. return (search_request_new(TYPE_AAAA, name, flags, callback, ptr));
  2322. }
  2323. }
  2324. int evdns_resolve_reverse(const struct in_addr *in, int flags, evdns_callback_type callback, void *ptr) {
  2325. char buf[32];
  2326. struct evdns_request *req;
  2327. u32 a;
  2328. assert(in);
  2329. a = ntohl(in->s_addr);
  2330. snprintf(buf, sizeof(buf), "%d.%d.%d.%d.in-addr.arpa",
  2331. (int)(u8)((a )&0xff),
  2332. (int)(u8)((a>>8 )&0xff),
  2333. (int)(u8)((a>>16)&0xff),
  2334. (int)(u8)((a>>24)&0xff));
  2335. log(EVDNS_LOG_DEBUG, "Resolve requested for %s (reverse)", buf);
  2336. req = request_new(TYPE_PTR, buf, flags, callback, ptr);
  2337. if (!req) return 1;
  2338. request_submit(req);
  2339. return 0;
  2340. }
  2341. int evdns_resolve_reverse_ipv6(const struct in6_addr *in, int flags, evdns_callback_type callback, void *ptr) {
  2342. /* 32 nybbles, 32 periods, "ip6.arpa", NUL. */
  2343. char buf[73];
  2344. char *cp;
  2345. struct evdns_request *req;
  2346. int i;
  2347. assert(in);
  2348. cp = buf;
  2349. for (i=15; i >= 0; --i) {
  2350. u8 byte = in->s6_addr[i];
  2351. *cp++ = "0123456789abcdef"[byte & 0x0f];
  2352. *cp++ = '.';
  2353. *cp++ = "0123456789abcdef"[byte >> 4];
  2354. *cp++ = '.';
  2355. }
  2356. assert(cp + strlen("ip6.arpa") < buf+sizeof(buf));
  2357. memcpy(cp, "ip6.arpa", strlen("ip6.arpa")+1);
  2358. log(EVDNS_LOG_DEBUG, "Resolve requested for %s (reverse)", buf);
  2359. req = request_new(TYPE_PTR, buf, flags, callback, ptr);
  2360. if (!req) return 1;
  2361. request_submit(req);
  2362. return 0;
  2363. }
  2364. /*/////////////////////////////////////////////////////////////////// */
  2365. /* Search support */
  2366. /* */
  2367. /* the libc resolver has support for searching a number of domains */
  2368. /* to find a name. If nothing else then it takes the single domain */
  2369. /* from the gethostname() call. */
  2370. /* */
  2371. /* It can also be configured via the domain and search options in a */
  2372. /* resolv.conf. */
  2373. /* */
  2374. /* The ndots option controls how many dots it takes for the resolver */
  2375. /* to decide that a name is non-local and so try a raw lookup first. */
  2376. struct search_domain {
  2377. size_t len;
  2378. struct search_domain *next;
  2379. /* the text string is appended to this structure */
  2380. };
  2381. struct search_state {
  2382. int refcount;
  2383. int ndots;
  2384. int num_domains;
  2385. struct search_domain *head;
  2386. };
  2387. static struct search_state *global_search_state = NULL;
  2388. static void
  2389. search_state_decref(struct search_state *const state) {
  2390. if (!state) return;
  2391. state->refcount--;
  2392. if (!state->refcount) {
  2393. struct search_domain *next, *dom;
  2394. for (dom = state->head; dom; dom = next) {
  2395. next = dom->next;
  2396. CLEAR(dom);
  2397. _mm_free(dom);
  2398. }
  2399. CLEAR(state);
  2400. _mm_free(state);
  2401. }
  2402. }
  2403. static struct search_state *
  2404. search_state_new(void) {
  2405. struct search_state *state = (struct search_state *) mm_malloc(sizeof(struct search_state));
  2406. if (!state) return NULL;
  2407. memset(state, 0, sizeof(struct search_state));
  2408. state->refcount = 1;
  2409. state->ndots = 1;
  2410. return state;
  2411. }
  2412. static void
  2413. search_postfix_clear(void) {
  2414. search_state_decref(global_search_state);
  2415. global_search_state = search_state_new();
  2416. }
  2417. /* exported function */
  2418. void
  2419. evdns_search_clear(void) {
  2420. search_postfix_clear();
  2421. }
  2422. static void
  2423. search_postfix_add(const char *domain) {
  2424. size_t domain_len;
  2425. struct search_domain *sdomain;
  2426. while (domain[0] == '.') domain++;
  2427. domain_len = strlen(domain);
  2428. if (!global_search_state) global_search_state = search_state_new();
  2429. if (!global_search_state) return;
  2430. global_search_state->num_domains++;
  2431. sdomain = (struct search_domain *) mm_malloc(sizeof(struct search_domain) + domain_len);
  2432. if (!sdomain) return;
  2433. memcpy( ((u8 *) sdomain) + sizeof(struct search_domain), domain, domain_len);
  2434. sdomain->next = global_search_state->head;
  2435. sdomain->len = domain_len;
  2436. global_search_state->head = sdomain;
  2437. }
  2438. /* reverse the order of members in the postfix list. This is needed because, */
  2439. /* when parsing resolv.conf we push elements in the wrong order */
  2440. static void
  2441. search_reverse(void) {
  2442. struct search_domain *cur, *prev = NULL, *next;
  2443. cur = global_search_state->head;
  2444. while (cur) {
  2445. next = cur->next;
  2446. cur->next = prev;
  2447. prev = cur;
  2448. cur = next;
  2449. }
  2450. global_search_state->head = prev;
  2451. }
  2452. /* exported function */
  2453. void
  2454. evdns_search_add(const char *domain) {
  2455. search_postfix_add(domain);
  2456. }
  2457. /* exported function */
  2458. void
  2459. evdns_search_ndots_set(const int ndots) {
  2460. if (!global_search_state) global_search_state = search_state_new();
  2461. if (!global_search_state) return;
  2462. global_search_state->ndots = ndots;
  2463. }
  2464. static void
  2465. search_set_from_hostname(void) {
  2466. char hostname[HOST_NAME_MAX + 1], *domainname;
  2467. search_postfix_clear();
  2468. if (gethostname(hostname, sizeof(hostname))) return;
  2469. domainname = strchr(hostname, '.');
  2470. if (!domainname) return;
  2471. search_postfix_add(domainname);
  2472. }
  2473. /* warning: returns malloced string */
  2474. static char *
  2475. search_make_new(const struct search_state *const state, int n, const char *const base_name) {
  2476. const size_t base_len = strlen(base_name);
  2477. const char need_to_append_dot = base_name[base_len - 1] == '.' ? 0 : 1;
  2478. struct search_domain *dom;
  2479. for (dom = state->head; dom; dom = dom->next) {
  2480. if (!n--) {
  2481. /* this is the postfix we want */
  2482. /* the actual postfix string is kept at the end of the structure */
  2483. const u8 *const postfix = ((u8 *) dom) + sizeof(struct search_domain);
  2484. const size_t postfix_len = dom->len;
  2485. char *const newname = (char *) mm_malloc(base_len + need_to_append_dot + postfix_len + 1);
  2486. if (!newname) return NULL;
  2487. memcpy(newname, base_name, base_len);
  2488. if (need_to_append_dot) newname[base_len] = '.';
  2489. memcpy(newname + base_len + need_to_append_dot, postfix, postfix_len);
  2490. newname[base_len + need_to_append_dot + postfix_len] = 0;
  2491. return newname;
  2492. }
  2493. }
  2494. /* we ran off the end of the list and still didn't find the requested string */
  2495. abort();
  2496. return NULL; /* unreachable; stops warnings in some compilers. */
  2497. }
  2498. static int
  2499. search_request_new(int type, const char *const name, int flags, evdns_callback_type user_callback, void *user_arg) {
  2500. assert(type == TYPE_A || type == TYPE_AAAA);
  2501. if ( ((flags & DNS_QUERY_NO_SEARCH) == 0) &&
  2502. global_search_state &&
  2503. global_search_state->num_domains) {
  2504. /* we have some domains to search */
  2505. struct evdns_request *req;
  2506. if (string_num_dots(name) >= global_search_state->ndots) {
  2507. req = request_new(type, name, flags, user_callback, user_arg);
  2508. if (!req) return 1;
  2509. req->search_index = -1;
  2510. } else {
  2511. char *const new_name = search_make_new(global_search_state, 0, name);
  2512. if (!new_name) return 1;
  2513. req = request_new(type, new_name, flags, user_callback, user_arg);
  2514. _mm_free(new_name);
  2515. if (!req) return 1;
  2516. req->search_index = 0;
  2517. }
  2518. req->search_origname = mm_strdup(name);
  2519. req->search_state = global_search_state;
  2520. req->search_flags = flags;
  2521. global_search_state->refcount++;
  2522. request_submit(req);
  2523. return 0;
  2524. } else {
  2525. struct evdns_request *const req = request_new(type, name, flags, user_callback, user_arg);
  2526. if (!req) return 1;
  2527. request_submit(req);
  2528. return 0;
  2529. }
  2530. }
  2531. /* this is called when a request has failed to find a name. We need to check */
  2532. /* if it is part of a search and, if so, try the next name in the list */
  2533. /* returns: */
  2534. /* 0 another request has been submitted */
  2535. /* 1 no more requests needed */
  2536. static int
  2537. search_try_next(struct evdns_request *const req) {
  2538. if (req->search_state) {
  2539. /* it is part of a search */
  2540. char *new_name;
  2541. struct evdns_request *newreq;
  2542. req->search_index++;
  2543. if (req->search_index >= req->search_state->num_domains) {
  2544. /* no more postfixes to try, however we may need to try */
  2545. /* this name without a postfix */
  2546. if (string_num_dots(req->search_origname) < req->search_state->ndots) {
  2547. /* yep, we need to try it raw */
  2548. struct evdns_request *const newreq = request_new(req->request_type, req->search_origname, req->search_flags, req->user_callback, req->user_pointer);
  2549. log(EVDNS_LOG_DEBUG, "Search: trying raw query %s", req->search_origname);
  2550. if (newreq) {
  2551. request_submit(newreq);
  2552. return 0;
  2553. }
  2554. }
  2555. return 1;
  2556. }
  2557. new_name = search_make_new(req->search_state, req->search_index, req->search_origname);
  2558. if (!new_name) return 1;
  2559. log(EVDNS_LOG_DEBUG, "Search: now trying %s (%d)", new_name, req->search_index);
  2560. newreq = request_new(req->request_type, new_name, req->search_flags, req->user_callback, req->user_pointer);
  2561. mm_free(new_name);
  2562. if (!newreq) return 1;
  2563. newreq->search_origname = req->search_origname;
  2564. req->search_origname = NULL;
  2565. newreq->search_state = req->search_state;
  2566. newreq->search_flags = req->search_flags;
  2567. newreq->search_index = req->search_index;
  2568. newreq->search_state->refcount++;
  2569. request_submit(newreq);
  2570. return 0;
  2571. }
  2572. return 1;
  2573. }
  2574. static void
  2575. search_request_finished(struct evdns_request *const req) {
  2576. if (req->search_state) {
  2577. search_state_decref(req->search_state);
  2578. req->search_state = NULL;
  2579. }
  2580. if (req->search_origname) {
  2581. mm_free(req->search_origname);
  2582. req->search_origname = NULL;
  2583. }
  2584. }
  2585. /*/////////////////////////////////////////////////////////////////// */
  2586. /* Parsing resolv.conf files */
  2587. static void
  2588. evdns_resolv_set_defaults(int flags) {
  2589. /* if the file isn't found then we assume a local resolver */
  2590. if (flags & DNS_OPTION_SEARCH) search_set_from_hostname();
  2591. if (flags & DNS_OPTION_NAMESERVERS) evdns_nameserver_ip_add("127.0.0.1");
  2592. }
  2593. /* helper version of atoi which returns -1 on error */
  2594. static int
  2595. strtoint(const char *const str) {
  2596. char *endptr;
  2597. const long r = strtol(str, &endptr, 10);
  2598. if (*endptr || r > INT_MAX) return -1;
  2599. return (int)r;
  2600. }
  2601. /* helper version of atoi that returns -1 on error and clips to bounds. */
  2602. static int
  2603. strtoint_clipped(const char *const str, int min, int max)
  2604. {
  2605. int r = strtoint(str);
  2606. if (r == -1)
  2607. return r;
  2608. else if (r<min)
  2609. return min;
  2610. else if (r>max)
  2611. return max;
  2612. else
  2613. return r;
  2614. }
  2615. /* exported function */
  2616. int
  2617. evdns_set_option(const char *option, const char *val, int flags)
  2618. {
  2619. if (!strncmp(option, "ndots:", 6)) {
  2620. const int ndots = strtoint(val);
  2621. if (ndots == -1) return -1;
  2622. if (!(flags & DNS_OPTION_SEARCH)) return 0;
  2623. log(EVDNS_LOG_DEBUG, "Setting ndots to %d", ndots);
  2624. if (!global_search_state) global_search_state = search_state_new();
  2625. if (!global_search_state) return -1;
  2626. global_search_state->ndots = ndots;
  2627. } else if (!strncmp(option, "timeout:", 8)) {
  2628. const int timeout = strtoint(val);
  2629. if (timeout == -1) return -1;
  2630. if (!(flags & DNS_OPTION_MISC)) return 0;
  2631. log(EVDNS_LOG_DEBUG, "Setting timeout to %d", timeout);
  2632. global_timeout.tv_sec = timeout;
  2633. } else if (!strncmp(option, "max-timeouts:", 12)) {
  2634. const int maxtimeout = strtoint_clipped(val, 1, 255);
  2635. if (maxtimeout == -1) return -1;
  2636. if (!(flags & DNS_OPTION_MISC)) return 0;
  2637. log(EVDNS_LOG_DEBUG, "Setting maximum allowed timeouts to %d",
  2638. maxtimeout);
  2639. global_max_nameserver_timeout = maxtimeout;
  2640. } else if (!strncmp(option, "max-inflight:", 13)) {
  2641. const int maxinflight = strtoint_clipped(val, 1, 65000);
  2642. if (maxinflight == -1) return -1;
  2643. if (!(flags & DNS_OPTION_MISC)) return 0;
  2644. log(EVDNS_LOG_DEBUG, "Setting maximum inflight requests to %d",
  2645. maxinflight);
  2646. global_max_requests_inflight = maxinflight;
  2647. } else if (!strncmp(option, "attempts:", 9)) {
  2648. int retries = strtoint(val);
  2649. if (retries == -1) return -1;
  2650. if (retries > 255) retries = 255;
  2651. if (!(flags & DNS_OPTION_MISC)) return 0;
  2652. log(EVDNS_LOG_DEBUG, "Setting retries to %d", retries);
  2653. global_max_retransmits = retries;
  2654. } else if (!strncmp(option, "randomize-case:", 15)) {
  2655. int randcase = strtoint(val);
  2656. if (!(flags & DNS_OPTION_MISC)) return 0;
  2657. log(EVDNS_LOG_DEBUG, "Setting randomize_case to %d", randcase);
  2658. global_randomize_case = randcase;
  2659. }
  2660. return 0;
  2661. }
  2662. static void
  2663. resolv_conf_parse_line(char *const start, int flags) {
  2664. char *strtok_state;
  2665. static const char *const delims = " \t";
  2666. #define NEXT_TOKEN tor_strtok_r(NULL, delims, &strtok_state)
  2667. char *const first_token = tor_strtok_r(start, delims, &strtok_state);
  2668. if (!first_token) return;
  2669. if (!strcmp(first_token, "nameserver") && (flags & DNS_OPTION_NAMESERVERS)) {
  2670. const char *const nameserver = NEXT_TOKEN;
  2671. evdns_nameserver_ip_add(nameserver);
  2672. } else if (!strcmp(first_token, "domain") && (flags & DNS_OPTION_SEARCH)) {
  2673. const char *const domain = NEXT_TOKEN;
  2674. if (domain) {
  2675. search_postfix_clear();
  2676. search_postfix_add(domain);
  2677. }
  2678. } else if (!strcmp(first_token, "search") && (flags & DNS_OPTION_SEARCH)) {
  2679. const char *domain;
  2680. search_postfix_clear();
  2681. while ((domain = NEXT_TOKEN)) {
  2682. search_postfix_add(domain);
  2683. }
  2684. search_reverse();
  2685. } else if (!strcmp(first_token, "options")) {
  2686. const char *option;
  2687. while ((option = NEXT_TOKEN)) {
  2688. const char *val = strchr(option, ':');
  2689. evdns_set_option(option, val ? val+1 : "", flags);
  2690. }
  2691. }
  2692. #undef NEXT_TOKEN
  2693. }
  2694. /* exported function */
  2695. /* returns: */
  2696. /* 0 no errors */
  2697. /* 1 failed to open file */
  2698. /* 2 failed to stat file */
  2699. /* 3 file too large */
  2700. /* 4 out of memory */
  2701. /* 5 short read from file */
  2702. int
  2703. evdns_resolv_conf_parse(int flags, const char *const filename) {
  2704. struct stat st;
  2705. int fd, n, r;
  2706. u8 *resolv;
  2707. char *start;
  2708. int err = 0;
  2709. log(EVDNS_LOG_DEBUG, "Parsing resolv.conf file %s", filename);
  2710. fd = tor_open_cloexec(filename, O_RDONLY, 0);
  2711. if (fd < 0) {
  2712. evdns_resolv_set_defaults(flags);
  2713. return 1;
  2714. }
  2715. if (fstat(fd, &st)) { err = 2; goto out1; }
  2716. if (!st.st_size) {
  2717. evdns_resolv_set_defaults(flags);
  2718. err = (flags & DNS_OPTION_NAMESERVERS) ? 6 : 0;
  2719. goto out1;
  2720. }
  2721. if (st.st_size > 65535) { err = 3; goto out1; } /* no resolv.conf should be any bigger */
  2722. resolv = (u8 *) mm_malloc((size_t)st.st_size + 1);
  2723. if (!resolv) { err = 4; goto out1; }
  2724. n = 0;
  2725. while ((r = (int)read(fd, resolv+n, (size_t)st.st_size-n)) > 0) {
  2726. n += r;
  2727. if (n == st.st_size)
  2728. break;
  2729. assert(n < st.st_size);
  2730. }
  2731. if (r < 0) { err = 5; goto out2; }
  2732. resolv[n] = 0; /* we malloced an extra byte; this should be fine. */
  2733. start = (char *) resolv;
  2734. for (;;) {
  2735. char *const newline = strchr(start, '\n');
  2736. if (!newline) {
  2737. resolv_conf_parse_line(start, flags);
  2738. break;
  2739. } else {
  2740. *newline = 0;
  2741. resolv_conf_parse_line(start, flags);
  2742. start = newline + 1;
  2743. }
  2744. }
  2745. if (!server_head && (flags & DNS_OPTION_NAMESERVERS)) {
  2746. /* no nameservers were configured. */
  2747. evdns_nameserver_ip_add("127.0.0.1");
  2748. err = 6;
  2749. }
  2750. if (flags & DNS_OPTION_SEARCH && (!global_search_state || global_search_state->num_domains == 0)) {
  2751. search_set_from_hostname();
  2752. }
  2753. out2:
  2754. mm_free(resolv);
  2755. out1:
  2756. close(fd);
  2757. return err;
  2758. }
  2759. #ifdef WIN32
  2760. /* Add multiple nameservers from a space-or-comma-separated list. */
  2761. static int
  2762. evdns_nameserver_ip_add_line(const char *ips) {
  2763. const char *addr;
  2764. char *buf;
  2765. int r;
  2766. while (*ips) {
  2767. while (ISSPACE(*ips) || *ips == ',' || *ips == '\t')
  2768. ++ips;
  2769. addr = ips;
  2770. while (ISDIGIT(*ips) || *ips == '.' || *ips == ':' || *ips == '[' || *ips == ']')
  2771. ++ips;
  2772. buf = mm_malloc(ips-addr+1);
  2773. if (!buf) return 4;
  2774. memcpy(buf, addr, ips-addr);
  2775. buf[ips-addr] = '\0';
  2776. r = evdns_nameserver_ip_add(buf);
  2777. mm_free(buf);
  2778. if (r) return r;
  2779. }
  2780. return 0;
  2781. }
  2782. typedef DWORD(WINAPI *GetNetworkParams_fn_t)(FIXED_INFO *, DWORD*);
  2783. /* Use the windows GetNetworkParams interface in iphlpapi.dll to */
  2784. /* figure out what our nameservers are. */
  2785. static int
  2786. load_nameservers_with_getnetworkparams(void)
  2787. {
  2788. /* Based on MSDN examples and inspection of c-ares code. */
  2789. FIXED_INFO *fixed;
  2790. HMODULE handle = 0;
  2791. ULONG size = sizeof(FIXED_INFO);
  2792. void *buf = NULL;
  2793. int status = 0, r, added_any;
  2794. IP_ADDR_STRING *ns;
  2795. GetNetworkParams_fn_t fn;
  2796. if (!(handle = load_windows_system_library(TEXT("iphlpapi.dll")))) {
  2797. log(EVDNS_LOG_WARN, "Could not open iphlpapi.dll");
  2798. /* right now status = 0, doesn't that mean "good" - mikec */
  2799. status = -1;
  2800. goto done;
  2801. }
  2802. if (!(fn = (GetNetworkParams_fn_t) GetProcAddress(handle, TEXT("GetNetworkParams")))) {
  2803. log(EVDNS_LOG_WARN, "Could not get address of function.");
  2804. /* same as above */
  2805. status = -1;
  2806. goto done;
  2807. }
  2808. buf = mm_malloc(size);
  2809. if (!buf) { status = 4; goto done; }
  2810. fixed = buf;
  2811. r = fn(fixed, &size);
  2812. if (r != ERROR_SUCCESS && r != ERROR_BUFFER_OVERFLOW) {
  2813. status = -1;
  2814. goto done;
  2815. }
  2816. if (r != ERROR_SUCCESS) {
  2817. mm_free(buf);
  2818. buf = mm_malloc(size);
  2819. if (!buf) { status = 4; goto done; }
  2820. fixed = buf;
  2821. r = fn(fixed, &size);
  2822. if (r != ERROR_SUCCESS) {
  2823. log(EVDNS_LOG_DEBUG, "fn() failed.");
  2824. status = -1;
  2825. goto done;
  2826. }
  2827. }
  2828. assert(fixed);
  2829. added_any = 0;
  2830. ns = &(fixed->DnsServerList);
  2831. while (ns) {
  2832. r = evdns_nameserver_ip_add_line(ns->IpAddress.String);
  2833. if (r) {
  2834. log(EVDNS_LOG_DEBUG,"Could not add nameserver %s to list, "
  2835. "error: %d; status: %d",
  2836. (ns->IpAddress.String),(int)GetLastError(), r);
  2837. status = r;
  2838. } else {
  2839. log(EVDNS_LOG_DEBUG,"Successfully added %s as nameserver",ns->IpAddress.String);
  2840. added_any++;
  2841. }
  2842. ns = ns->Next;
  2843. }
  2844. if (!added_any) {
  2845. log(EVDNS_LOG_DEBUG, "No nameservers added.");
  2846. if (status == 0)
  2847. status = -1;
  2848. } else {
  2849. status = 0;
  2850. }
  2851. done:
  2852. if (buf)
  2853. mm_free(buf);
  2854. if (handle)
  2855. FreeLibrary(handle);
  2856. return status;
  2857. }
  2858. static int
  2859. config_nameserver_from_reg_key(HKEY key, const TCHAR *subkey)
  2860. {
  2861. char *buf;
  2862. char ansibuf[MAX_PATH] = {0};
  2863. DWORD bufsz = 0, type = 0;
  2864. int status = 0;
  2865. if (RegQueryValueEx(key, subkey, 0, &type, NULL, &bufsz)
  2866. != ERROR_MORE_DATA)
  2867. return -1;
  2868. if (!(buf = mm_malloc(bufsz)))
  2869. return -1;
  2870. if (RegQueryValueEx(key, subkey, 0, &type, (LPBYTE)buf, &bufsz)
  2871. == ERROR_SUCCESS && bufsz > 1) {
  2872. wcstombs(ansibuf,(wchar_t*)buf,MAX_PATH);/*XXXX UNICODE */
  2873. status = evdns_nameserver_ip_add_line(ansibuf);
  2874. }
  2875. mm_free(buf);
  2876. return status;
  2877. }
  2878. #define SERVICES_KEY TEXT("System\\CurrentControlSet\\Services\\")
  2879. #define WIN_NS_9X_KEY SERVICES_KEY TEXT("VxD\\MSTCP")
  2880. #define WIN_NS_NT_KEY SERVICES_KEY TEXT("Tcpip\\Parameters")
  2881. static int
  2882. load_nameservers_from_registry(void)
  2883. {
  2884. int found = 0;
  2885. int r;
  2886. OSVERSIONINFO info;
  2887. memset(&info, 0, sizeof(info));
  2888. info.dwOSVersionInfoSize = sizeof (info);
  2889. GetVersionEx(&info);
  2890. #define TRY(k, name) \
  2891. if (!found && config_nameserver_from_reg_key(k,TEXT(name)) == 0) { \
  2892. log(EVDNS_LOG_DEBUG,"Found nameservers in %s/%s",#k,name); \
  2893. found = 1; \
  2894. } else if (!found) { \
  2895. log(EVDNS_LOG_DEBUG,"Didn't find nameservers in %s/%s", \
  2896. #k,#name); \
  2897. }
  2898. if (info.dwMajorVersion >= 5) { /* NT */
  2899. HKEY nt_key = 0, interfaces_key = 0;
  2900. if (RegOpenKeyEx(HKEY_LOCAL_MACHINE, WIN_NS_NT_KEY, 0,
  2901. KEY_READ, &nt_key) != ERROR_SUCCESS) {
  2902. log(EVDNS_LOG_DEBUG,"Couldn't open nt key, %d",(int)GetLastError());
  2903. return -1;
  2904. }
  2905. r = RegOpenKeyEx(nt_key, TEXT("Interfaces"), 0,
  2906. KEY_QUERY_VALUE|KEY_ENUMERATE_SUB_KEYS,
  2907. &interfaces_key);
  2908. if (r != ERROR_SUCCESS) {
  2909. log(EVDNS_LOG_DEBUG,"Couldn't open interfaces key, %d",(int)GetLastError());
  2910. return -1;
  2911. }
  2912. TRY(nt_key, "NameServer");
  2913. TRY(nt_key, "DhcpNameServer");
  2914. TRY(interfaces_key, "NameServer");
  2915. TRY(interfaces_key, "DhcpNameServer");
  2916. RegCloseKey(interfaces_key);
  2917. RegCloseKey(nt_key);
  2918. } else {
  2919. HKEY win_key = 0;
  2920. if (RegOpenKeyEx(HKEY_LOCAL_MACHINE, WIN_NS_9X_KEY, 0,
  2921. KEY_READ, &win_key) != ERROR_SUCCESS) {
  2922. log(EVDNS_LOG_DEBUG, "Couldn't open registry key, %d", (int)GetLastError());
  2923. return -1;
  2924. }
  2925. TRY(win_key, "NameServer");
  2926. RegCloseKey(win_key);
  2927. }
  2928. if (found == 0) {
  2929. log(EVDNS_LOG_WARN,"Didn't find any nameservers.");
  2930. }
  2931. return found ? 0 : -1;
  2932. #undef TRY
  2933. }
  2934. int
  2935. evdns_config_windows_nameservers(void)
  2936. {
  2937. if (load_nameservers_with_getnetworkparams() == 0)
  2938. return 0;
  2939. return load_nameservers_from_registry();
  2940. }
  2941. #endif
  2942. int
  2943. evdns_init(void)
  2944. {
  2945. int res = 0;
  2946. #ifdef WIN32
  2947. evdns_config_windows_nameservers();
  2948. #else
  2949. res = evdns_resolv_conf_parse(DNS_OPTIONS_ALL, "/etc/resolv.conf");
  2950. #endif
  2951. return (res);
  2952. }
  2953. const char *
  2954. evdns_err_to_string(int err)
  2955. {
  2956. switch (err) {
  2957. case DNS_ERR_NONE: return "no error";
  2958. case DNS_ERR_FORMAT: return "misformatted query";
  2959. case DNS_ERR_SERVERFAILED: return "server failed";
  2960. case DNS_ERR_NOTEXIST: return "name does not exist";
  2961. case DNS_ERR_NOTIMPL: return "query not implemented";
  2962. case DNS_ERR_REFUSED: return "refused";
  2963. case DNS_ERR_TRUNCATED: return "reply truncated or ill-formed";
  2964. case DNS_ERR_UNKNOWN: return "unknown";
  2965. case DNS_ERR_TIMEOUT: return "request timed out";
  2966. case DNS_ERR_SHUTDOWN: return "dns subsystem shut down";
  2967. default: return "[Unknown error code]";
  2968. }
  2969. }
  2970. void
  2971. evdns_shutdown(int fail_requests)
  2972. {
  2973. struct nameserver *server, *server_next;
  2974. struct search_domain *dom, *dom_next;
  2975. while (req_head) {
  2976. if (fail_requests)
  2977. reply_callback(req_head, 0, DNS_ERR_SHUTDOWN, NULL);
  2978. request_finished(req_head, &req_head);
  2979. }
  2980. while (req_waiting_head) {
  2981. if (fail_requests)
  2982. reply_callback(req_waiting_head, 0, DNS_ERR_SHUTDOWN, NULL);
  2983. request_finished(req_waiting_head, &req_waiting_head);
  2984. }
  2985. global_requests_inflight = global_requests_waiting = 0;
  2986. for (server = server_head; server; server = server_next) {
  2987. server_next = server->next;
  2988. if (server->socket >= 0)
  2989. CLOSE_SOCKET(server->socket);
  2990. (void) event_del(&server->event);
  2991. del_timeout_event(server);
  2992. CLEAR(server);
  2993. mm_free(server);
  2994. if (server_next == server_head)
  2995. break;
  2996. }
  2997. server_head = NULL;
  2998. global_good_nameservers = 0;
  2999. if (global_search_state) {
  3000. for (dom = global_search_state->head; dom; dom = dom_next) {
  3001. dom_next = dom->next;
  3002. CLEAR(dom);
  3003. mm_free(dom);
  3004. }
  3005. CLEAR(global_search_state);
  3006. mm_free(global_search_state);
  3007. global_search_state = NULL;
  3008. }
  3009. evdns_log_fn = NULL;
  3010. }
  3011. #ifdef EVDNS_MAIN
  3012. void
  3013. main_callback(int result, char type, int count, int ttl,
  3014. void *addrs, void *orig) {
  3015. char *n = (char*)orig;
  3016. int i;
  3017. for (i = 0; i < count; ++i) {
  3018. if (type == DNS_IPv4_A) {
  3019. printf("%s: %s\n", n, debug_ntoa(((u32*)addrs)[i]));
  3020. } else if (type == DNS_PTR) {
  3021. printf("%s: %s\n", n, ((char**)addrs)[i]);
  3022. }
  3023. }
  3024. if (!count) {
  3025. printf("%s: No answer (%d)\n", n, result);
  3026. }
  3027. fflush(stdout);
  3028. }
  3029. void
  3030. evdns_server_callback(struct evdns_server_request *req, void *data)
  3031. {
  3032. int i, r;
  3033. (void)data;
  3034. /* dummy; give 192.168.11.11 as an answer for all A questions,
  3035. * give foo.bar.example.com as an answer for all PTR questions. */
  3036. for (i = 0; i < req->nquestions; ++i) {
  3037. u32 ans = htonl(0xc0a80b0bUL);
  3038. if (req->questions[i]->type == EVDNS_TYPE_A &&
  3039. req->questions[i]->dns_question_class == EVDNS_CLASS_INET) {
  3040. printf(" -- replying for %s (A)\n", req->questions[i]->name);
  3041. r = evdns_server_request_add_a_reply(req, req->questions[i]->name,
  3042. 1, &ans, 10);
  3043. if (r<0)
  3044. printf("eeep, didn't work.\n");
  3045. } else if (req->questions[i]->type == EVDNS_TYPE_PTR &&
  3046. req->questions[i]->dns_question_class == EVDNS_CLASS_INET) {
  3047. printf(" -- replying for %s (PTR)\n", req->questions[i]->name);
  3048. r = evdns_server_request_add_ptr_reply(req, NULL, req->questions[i]->name,
  3049. "foo.bar.example.com", 10);
  3050. } else {
  3051. printf(" -- skipping %s [%d %d]\n", req->questions[i]->name,
  3052. req->questions[i]->type, req->questions[i]->dns_question_class);
  3053. }
  3054. }
  3055. r = evdns_server_request_respond(req, 0);
  3056. if (r<0)
  3057. printf("eeek, couldn't send reply.\n");
  3058. }
  3059. void
  3060. logfn(int is_warn, const char *msg) {
  3061. (void) is_warn;
  3062. fprintf(stderr, "%s\n", msg);
  3063. }
  3064. int
  3065. main(int c, char **v) {
  3066. int idx;
  3067. int reverse = 0, verbose = 1, servertest = 0;
  3068. if (c<2) {
  3069. fprintf(stderr, "syntax: %s [-x] [-v] hostname\n", v[0]);
  3070. fprintf(stderr, "syntax: %s [-servertest]\n", v[0]);
  3071. return 1;
  3072. }
  3073. idx = 1;
  3074. while (idx < c && v[idx][0] == '-') {
  3075. if (!strcmp(v[idx], "-x"))
  3076. reverse = 1;
  3077. else if (!strcmp(v[idx], "-v"))
  3078. verbose = 1;
  3079. else if (!strcmp(v[idx], "-servertest"))
  3080. servertest = 1;
  3081. else
  3082. fprintf(stderr, "Unknown option %s\n", v[idx]);
  3083. ++idx;
  3084. }
  3085. event_init();
  3086. if (verbose)
  3087. evdns_set_log_fn(logfn);
  3088. evdns_resolv_conf_parse(DNS_OPTION_NAMESERVERS, "/etc/resolv.conf");
  3089. if (servertest) {
  3090. int sock;
  3091. struct sockaddr_in my_addr;
  3092. sock = tor_open_socket(PF_INET, SOCK_DGRAM, 0);
  3093. fcntl(sock, F_SETFL, O_NONBLOCK);
  3094. my_addr.sin_family = AF_INET;
  3095. my_addr.sin_port = htons(10053);
  3096. my_addr.sin_addr.s_addr = INADDR_ANY;
  3097. if (bind(sock, (struct sockaddr*)&my_addr, sizeof(my_addr))<0) {
  3098. perror("bind");
  3099. exit(1);
  3100. }
  3101. evdns_add_server_port(sock, 0, evdns_server_callback, NULL);
  3102. }
  3103. for (; idx < c; ++idx) {
  3104. if (reverse) {
  3105. struct in_addr addr;
  3106. if (!inet_aton(v[idx], &addr)) {
  3107. fprintf(stderr, "Skipping non-IP %s\n", v[idx]);
  3108. continue;
  3109. }
  3110. fprintf(stderr, "resolving %s...\n",v[idx]);
  3111. evdns_resolve_reverse(&addr, 0, main_callback, v[idx]);
  3112. } else {
  3113. fprintf(stderr, "resolving (fwd) %s...\n",v[idx]);
  3114. evdns_resolve_ipv4(v[idx], 0, main_callback, v[idx]);
  3115. }
  3116. }
  3117. fflush(stdout);
  3118. event_dispatch();
  3119. return 0;
  3120. }
  3121. #endif
  3122. /* Local Variables: */
  3123. /* tab-width: 4 */
  3124. /* c-basic-offset: 4 */
  3125. /* indent-tabs-mode: t */
  3126. /* End: */