rendcommon.c 14 KB

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  1. /* Copyright 2004 Roger Dingledine, Nick Mathewson. */
  2. /* See LICENSE for licensing information */
  3. /* $Id$ */
  4. const char rendcommon_c_id[] = "$Id$";
  5. /**
  6. * \file rendcommon.c
  7. * \brief Rendezvous implementation: shared code between
  8. * introducers, services, clients, and rendezvous points.
  9. **/
  10. #define NEW_LOG_INTERFACE
  11. #include "or.h"
  12. /** Return 0 if one and two are the same service ids, else -1 or 1 */
  13. int
  14. rend_cmp_service_ids(const char *one, const char *two)
  15. {
  16. return strcasecmp(one,two);
  17. }
  18. /** Free the storage held by the service descriptor <b>desc</b>.
  19. */
  20. void
  21. rend_service_descriptor_free(rend_service_descriptor_t *desc)
  22. {
  23. int i;
  24. if (desc->pk)
  25. crypto_free_pk_env(desc->pk);
  26. if (desc->intro_points) {
  27. for (i=0; i < desc->n_intro_points; ++i) {
  28. tor_free(desc->intro_points[i]);
  29. }
  30. tor_free(desc->intro_points);
  31. }
  32. if (desc->intro_point_extend_info) {
  33. for (i=0; i < desc->n_intro_points; ++i) {
  34. if (desc->intro_point_extend_info[i])
  35. extend_info_free(desc->intro_point_extend_info[i]);
  36. }
  37. tor_free(desc->intro_point_extend_info);
  38. }
  39. tor_free(desc);
  40. }
  41. /** Encode a service descriptor for <b>desc</b>, and sign it with
  42. * <b>key</b>. Store the descriptor in *<b>str_out</b>, and set
  43. * *<b>len_out</b> to its length.
  44. */
  45. int
  46. rend_encode_service_descriptor(rend_service_descriptor_t *desc,
  47. int version,
  48. crypto_pk_env_t *key,
  49. char **str_out, size_t *len_out)
  50. {
  51. char *cp;
  52. char *end;
  53. int i;
  54. size_t asn1len;
  55. cp = *str_out = tor_malloc(PK_BYTES*2*(desc->n_intro_points+2)); /*Too long, but ok*/
  56. end = cp + PK_BYTES*2*(desc->n_intro_points+1);
  57. if (version) {
  58. *(uint8_t*)cp = (uint8_t)0xff;
  59. *(uint8_t*)(cp+1) = (uint8_t)version;
  60. cp += 2;
  61. }
  62. asn1len = crypto_pk_asn1_encode(desc->pk, cp+2, end-(cp+2));
  63. set_uint16(cp, htons((uint16_t)asn1len));
  64. cp += 2+asn1len;
  65. set_uint32(cp, htonl((uint32_t)desc->timestamp));
  66. cp += 4;
  67. if (version == 1) {
  68. set_uint16(cp, htons(desc->protocols));
  69. cp += 2;
  70. }
  71. set_uint16(cp, htons((uint16_t)desc->n_intro_points));
  72. cp += 2;
  73. if (version == 0) {
  74. for (i=0; i < desc->n_intro_points; ++i) {
  75. char *ipoint = (char*)desc->intro_points[i];
  76. strlcpy(cp, ipoint, *len_out-(cp-*str_out));
  77. cp += strlen(ipoint)+1;
  78. }
  79. } else {
  80. if (desc->n_intro_points)
  81. tor_assert(desc->intro_point_extend_info);
  82. for (i=0; i < desc->n_intro_points; ++i) {
  83. extend_info_t *info = desc->intro_point_extend_info[i];
  84. int klen;
  85. set_uint32(cp, htonl(info->addr));
  86. set_uint16(cp+4, htons(info->port));
  87. memcpy(cp+6, info->identity_digest, DIGEST_LEN);
  88. klen = crypto_pk_asn1_encode(info->onion_key, cp+6+DIGEST_LEN+2,
  89. (end-(cp+6+DIGEST_LEN+2)));
  90. set_uint16(cp+6+DIGEST_LEN, htons((uint16_t)klen));
  91. cp += 6+DIGEST_LEN+2+klen;
  92. }
  93. }
  94. i = crypto_pk_private_sign_digest(key, cp, *str_out, cp-*str_out);
  95. if (i<0) {
  96. tor_free(*str_out);
  97. return -1;
  98. }
  99. cp += i;
  100. *len_out = (size_t)(cp-*str_out);
  101. return 0;
  102. }
  103. /** Parse a service descriptor at <b>str</b> (<b>len</b> bytes). On
  104. * success, return a newly alloced service_descriptor_t. On failure,
  105. * return NULL.
  106. */
  107. rend_service_descriptor_t *
  108. rend_parse_service_descriptor(const char *str, size_t len)
  109. {
  110. rend_service_descriptor_t *result = NULL;
  111. int i;
  112. size_t keylen, asn1len;
  113. const char *end, *cp, *eos;
  114. int version = 0;
  115. result = tor_malloc_zero(sizeof(rend_service_descriptor_t));
  116. cp = str;
  117. end = str+len;
  118. if (end-cp<2) goto truncated;
  119. if (*(uint8_t*)cp == 0xff) {
  120. result->version = version = *(uint8_t*)(cp+1);
  121. cp += 2;
  122. } else {
  123. result->version = version = 0;
  124. }
  125. if (end-cp < 2) goto truncated;
  126. asn1len = ntohs(get_uint16(cp));
  127. cp += 2;
  128. if ((size_t)(end-cp) < asn1len) goto truncated;
  129. result->pk = crypto_pk_asn1_decode(cp, asn1len);
  130. if (!result->pk) goto truncated;
  131. cp += asn1len;
  132. if (end-cp < 4) goto truncated;
  133. result->timestamp = (time_t) ntohl(get_uint32(cp));
  134. cp += 4;
  135. if (version == 1) {
  136. if (end-cp < 2) goto truncated;
  137. result->protocols = ntohs(get_uint16(cp));
  138. cp += 2;
  139. } else {
  140. result->protocols = 1;
  141. }
  142. if (end-cp < 2) goto truncated;
  143. result->n_intro_points = ntohs(get_uint16(cp));
  144. cp += 2;
  145. if (version == 0 && result->n_intro_points != 0) {
  146. result->intro_points = tor_malloc_zero(sizeof(char*)*result->n_intro_points);
  147. for (i=0;i<result->n_intro_points;++i) {
  148. if (end-cp < 2) goto truncated;
  149. eos = (const char *)memchr(cp,'\0',end-cp);
  150. if (!eos) goto truncated;
  151. result->intro_points[i] = tor_strdup(cp);
  152. cp = eos+1;
  153. }
  154. } else if (version != 0 && result->n_intro_points != 0) {
  155. result->intro_point_extend_info =
  156. tor_malloc_zero(sizeof(extend_info_t*)*result->n_intro_points);
  157. result->intro_points = tor_malloc_zero(sizeof(char*)*result->n_intro_points);
  158. for (i=0;i<result->n_intro_points;++i) {
  159. extend_info_t *info = result->intro_point_extend_info[i] =
  160. tor_malloc_zero(sizeof(extend_info_t));
  161. int klen;
  162. if (end-cp < 8+DIGEST_LEN) goto truncated;
  163. info->addr = ntohl(get_uint32(cp));
  164. info->port = ntohs(get_uint16(cp+4));
  165. memcpy(info->identity_digest, cp+6, DIGEST_LEN);
  166. info->nickname[0] = '$';
  167. base16_encode(info->nickname+1, sizeof(info->nickname)-1,
  168. info->identity_digest, DIGEST_LEN);
  169. result->intro_points[i] = tor_strdup(info->nickname);
  170. klen = ntohs(get_uint16(cp+6+DIGEST_LEN));
  171. cp += 8+DIGEST_LEN;
  172. if (end-cp < klen) goto truncated;
  173. if (!(info->onion_key = crypto_pk_asn1_decode(cp,klen))) {
  174. warn(LD_PROTOCOL, "Internal error decoding onion key for intro point.");
  175. goto error;
  176. }
  177. cp += klen;
  178. }
  179. }
  180. keylen = crypto_pk_keysize(result->pk);
  181. tor_assert(end-cp >= 0);
  182. if ((size_t)(end-cp) < keylen) goto truncated;
  183. if ((size_t)(end-cp) > keylen) {
  184. warn(LD_PROTOCOL, "Signature is %d bytes too long on service descriptor.",
  185. (int)((size_t)(end-cp) - keylen));
  186. goto error;
  187. }
  188. if (crypto_pk_public_checksig_digest(result->pk,
  189. (char*)str,cp-str, /* data */
  190. (char*)cp,end-cp /* signature*/
  191. )<0) {
  192. warn(LD_PROTOCOL, "Bad signature on service descriptor.");
  193. goto error;
  194. }
  195. return result;
  196. truncated:
  197. warn(LD_PROTOCOL, "Truncated service descriptor.");
  198. error:
  199. rend_service_descriptor_free(result);
  200. return NULL;
  201. }
  202. /** Sets <b>out</b> to the first 10 bytes of the digest of <b>pk</b>,
  203. * base32 encoded. NUL-terminates out. (We use this string to
  204. * identify services in directory requests and .onion URLs.)
  205. */
  206. int
  207. rend_get_service_id(crypto_pk_env_t *pk, char *out)
  208. {
  209. char buf[DIGEST_LEN];
  210. tor_assert(pk);
  211. if (crypto_pk_get_digest(pk, buf) < 0)
  212. return -1;
  213. base32_encode(out, REND_SERVICE_ID_LEN+1, buf, 10);
  214. return 0;
  215. }
  216. /* ==== Rendezvous service descriptor cache. */
  217. #define REND_CACHE_MAX_AGE (48*60*60)
  218. #define REND_CACHE_MAX_SKEW (24*60*60)
  219. /** Map from service id (as generated by rend_get_service_id) to
  220. * rend_cache_entry_t. */
  221. static strmap_t *rend_cache = NULL;
  222. /** Initializes the service descriptor cache.
  223. */
  224. void
  225. rend_cache_init(void)
  226. {
  227. rend_cache = strmap_new();
  228. }
  229. /** Helper: free storage held by a single service descriptor cache entry. */
  230. static void
  231. _rend_cache_entry_free(void *p)
  232. {
  233. rend_cache_entry_t *e = p;
  234. rend_service_descriptor_free(e->parsed);
  235. tor_free(e->desc);
  236. tor_free(e);
  237. }
  238. /** Free all storage held by the service descriptor cache. */
  239. void
  240. rend_cache_free_all(void)
  241. {
  242. strmap_free(rend_cache, _rend_cache_entry_free);
  243. rend_cache = NULL;
  244. }
  245. /** Removes all old entries from the service descriptor cache.
  246. */
  247. void
  248. rend_cache_clean(void)
  249. {
  250. strmap_iter_t *iter;
  251. const char *key;
  252. void *val;
  253. rend_cache_entry_t *ent;
  254. time_t cutoff;
  255. cutoff = time(NULL) - REND_CACHE_MAX_AGE - REND_CACHE_MAX_SKEW;
  256. for (iter = strmap_iter_init(rend_cache); !strmap_iter_done(iter); ) {
  257. strmap_iter_get(iter, &key, &val);
  258. ent = (rend_cache_entry_t*)val;
  259. if (ent->parsed->timestamp < cutoff) {
  260. iter = strmap_iter_next_rmv(rend_cache, iter);
  261. _rend_cache_entry_free(ent);
  262. } else {
  263. iter = strmap_iter_next(rend_cache, iter);
  264. }
  265. }
  266. }
  267. /** Return true iff <b>query</b> is a syntactically valid service ID (as
  268. * generated by rend_get_service_id). */
  269. int
  270. rend_valid_service_id(const char *query)
  271. {
  272. if (strlen(query) != REND_SERVICE_ID_LEN)
  273. return 0;
  274. if (strspn(query, BASE32_CHARS) != REND_SERVICE_ID_LEN)
  275. return 0;
  276. return 1;
  277. }
  278. /** If we have a cached rend_cache_entry_t for the service ID <b>query</b>,
  279. * set *<b>e</b> to that entry and return 1. Else return 0. If
  280. * <b>version</b> is nonnegative, only return an entry in that descriptor
  281. * format version. Otherwise (if <b>version</b> is negative), return the most
  282. * recent format we have.
  283. */
  284. int
  285. rend_cache_lookup_entry(const char *query, int version, rend_cache_entry_t **e)
  286. {
  287. char key[REND_SERVICE_ID_LEN+2];
  288. tor_assert(rend_cache);
  289. if (!rend_valid_service_id(query))
  290. return -1;
  291. *e = NULL;
  292. if (version != 0) {
  293. tor_snprintf(key, sizeof(key), "1%s", query);
  294. *e = strmap_get_lc(rend_cache, key);
  295. }
  296. if (!*e && version != 1) {
  297. tor_snprintf(key, sizeof(key), "0%s", query);
  298. *e = strmap_get_lc(rend_cache, key);
  299. }
  300. if (!*e)
  301. return 0;
  302. return 1;
  303. }
  304. /** <b>query</b> is a base-32'ed service id. If it's malformed, return -1.
  305. * Else look it up.
  306. * - If it is found, point *desc to it, and write its length into
  307. * *desc_len, and return 1.
  308. * - If it is not found, return 0.
  309. * Note: calls to rend_cache_clean or rend_cache_store may invalidate
  310. * *desc.
  311. */
  312. int
  313. rend_cache_lookup_desc(const char *query, int version, const char **desc, size_t *desc_len)
  314. {
  315. rend_cache_entry_t *e;
  316. int r;
  317. r = rend_cache_lookup_entry(query,version,&e);
  318. if (r <= 0) return r;
  319. *desc = e->desc;
  320. *desc_len = e->len;
  321. return 1;
  322. }
  323. /** Parse *desc, calculate its service id, and store it in the cache.
  324. * If we have a newer descriptor with the same ID, ignore this one.
  325. * If we have an older descriptor with the same ID, replace it.
  326. * Return -1 if it's malformed or otherwise rejected; return 0 if
  327. * it's the same or older than one we've already got; return 1 if
  328. * it's novel.
  329. */
  330. int
  331. rend_cache_store(const char *desc, size_t desc_len)
  332. {
  333. rend_cache_entry_t *e;
  334. rend_service_descriptor_t *parsed;
  335. char query[REND_SERVICE_ID_LEN+1];
  336. char key[REND_SERVICE_ID_LEN+2];
  337. time_t now;
  338. tor_assert(rend_cache);
  339. parsed = rend_parse_service_descriptor(desc,desc_len);
  340. if (!parsed) {
  341. warn(LD_PROTOCOL,"Couldn't parse service descriptor.");
  342. return -1;
  343. }
  344. if (rend_get_service_id(parsed->pk, query)<0) {
  345. warn(LD_BUG,"Couldn't compute service ID.");
  346. rend_service_descriptor_free(parsed);
  347. return -1;
  348. }
  349. tor_snprintf(key, sizeof(key), "%c%s", parsed->version?'1':'0', query);
  350. now = time(NULL);
  351. if (parsed->timestamp < now-REND_CACHE_MAX_AGE-REND_CACHE_MAX_SKEW) {
  352. warn(LD_REND,"Service descriptor %s is too old.", safe_str(query));
  353. rend_service_descriptor_free(parsed);
  354. return -1;
  355. }
  356. if (parsed->timestamp > now+REND_CACHE_MAX_SKEW) {
  357. warn(LD_REND,"Service descriptor %s is too far in the future.",
  358. safe_str(query));
  359. rend_service_descriptor_free(parsed);
  360. return -1;
  361. }
  362. e = (rend_cache_entry_t*) strmap_get_lc(rend_cache, key);
  363. if (e && e->parsed->timestamp > parsed->timestamp) {
  364. info(LD_REND,"We already have a newer service descriptor %s with the same ID and version.", safe_str(query));
  365. rend_service_descriptor_free(parsed);
  366. return 0;
  367. }
  368. if (e && e->len == desc_len && !memcmp(desc,e->desc,desc_len)) {
  369. info(LD_REND,"We already have this service descriptor %s.", safe_str(query));
  370. e->received = time(NULL);
  371. rend_service_descriptor_free(parsed);
  372. return 0;
  373. }
  374. if (!e) {
  375. e = tor_malloc_zero(sizeof(rend_cache_entry_t));
  376. strmap_set_lc(rend_cache, key, e);
  377. } else {
  378. rend_service_descriptor_free(e->parsed);
  379. tor_free(e->desc);
  380. }
  381. e->received = time(NULL);
  382. e->parsed = parsed;
  383. e->len = desc_len;
  384. e->desc = tor_malloc(desc_len);
  385. memcpy(e->desc, desc, desc_len);
  386. debug(LD_REND,"Successfully stored rend desc '%s', len %d.",
  387. safe_str(query), (int)desc_len);
  388. return 1;
  389. }
  390. /** Called when we get a rendezvous-related relay cell on circuit
  391. * <b>circ</b>. Dispatch on rendezvous relay command. */
  392. void
  393. rend_process_relay_cell(circuit_t *circ, int command, size_t length,
  394. const char *payload)
  395. {
  396. int r;
  397. switch (command) {
  398. case RELAY_COMMAND_ESTABLISH_INTRO:
  399. r = rend_mid_establish_intro(circ,payload,length);
  400. break;
  401. case RELAY_COMMAND_ESTABLISH_RENDEZVOUS:
  402. r = rend_mid_establish_rendezvous(circ,payload,length);
  403. break;
  404. case RELAY_COMMAND_INTRODUCE1:
  405. r = rend_mid_introduce(circ,payload,length);
  406. break;
  407. case RELAY_COMMAND_INTRODUCE2:
  408. r = rend_service_introduce(circ,payload,length);
  409. break;
  410. case RELAY_COMMAND_INTRODUCE_ACK:
  411. r = rend_client_introduction_acked(circ,payload,length);
  412. break;
  413. case RELAY_COMMAND_RENDEZVOUS1:
  414. r = rend_mid_rendezvous(circ,payload,length);
  415. break;
  416. case RELAY_COMMAND_RENDEZVOUS2:
  417. r = rend_client_receive_rendezvous(circ,payload,length);
  418. break;
  419. case RELAY_COMMAND_INTRO_ESTABLISHED:
  420. r = rend_service_intro_established(circ,payload,length);
  421. break;
  422. case RELAY_COMMAND_RENDEZVOUS_ESTABLISHED:
  423. r = rend_client_rendezvous_acked(circ,payload,length);
  424. break;
  425. default:
  426. tor_assert(0);
  427. }
  428. }