relay_crypto.c 10 KB

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  1. /* Copyright (c) 2001 Matej Pfajfar.
  2. * Copyright (c) 2001-2004, Roger Dingledine.
  3. * Copyright (c) 2004-2006, Roger Dingledine, Nick Mathewson.
  4. * Copyright (c) 2007-2018, The Tor Project, Inc. */
  5. /* See LICENSE for licensing information */
  6. #include "or/or.h"
  7. #include "or/circuitlist.h"
  8. #include "or/config.h"
  9. #include "lib/crypt_ops/crypto_util.h"
  10. #include "or/hs_ntor.h" // for HS_NTOR_KEY_EXPANSION_KDF_OUT_LEN
  11. #include "or/relay.h"
  12. #include "or/relay_crypto.h"
  13. #include "or/cell_st.h"
  14. #include "or/or_circuit_st.h"
  15. #include "or/origin_circuit_st.h"
  16. /** Update digest from the payload of cell. Assign integrity part to
  17. * cell.
  18. */
  19. static void
  20. relay_set_digest(crypto_digest_t *digest, cell_t *cell)
  21. {
  22. char integrity[4];
  23. relay_header_t rh;
  24. crypto_digest_add_bytes(digest, (char*)cell->payload, CELL_PAYLOAD_SIZE);
  25. crypto_digest_get_digest(digest, integrity, 4);
  26. // log_fn(LOG_DEBUG,"Putting digest of %u %u %u %u into relay cell.",
  27. // integrity[0], integrity[1], integrity[2], integrity[3]);
  28. relay_header_unpack(&rh, cell->payload);
  29. memcpy(rh.integrity, integrity, 4);
  30. relay_header_pack(cell->payload, &rh);
  31. }
  32. /** Does the digest for this circuit indicate that this cell is for us?
  33. *
  34. * Update digest from the payload of cell (with the integrity part set
  35. * to 0). If the integrity part is valid, return 1, else restore digest
  36. * and cell to their original state and return 0.
  37. */
  38. static int
  39. relay_digest_matches(crypto_digest_t *digest, cell_t *cell)
  40. {
  41. uint32_t received_integrity, calculated_integrity;
  42. relay_header_t rh;
  43. crypto_digest_checkpoint_t backup_digest;
  44. crypto_digest_checkpoint(&backup_digest, digest);
  45. relay_header_unpack(&rh, cell->payload);
  46. memcpy(&received_integrity, rh.integrity, 4);
  47. memset(rh.integrity, 0, 4);
  48. relay_header_pack(cell->payload, &rh);
  49. // log_fn(LOG_DEBUG,"Reading digest of %u %u %u %u from relay cell.",
  50. // received_integrity[0], received_integrity[1],
  51. // received_integrity[2], received_integrity[3]);
  52. crypto_digest_add_bytes(digest, (char*) cell->payload, CELL_PAYLOAD_SIZE);
  53. crypto_digest_get_digest(digest, (char*) &calculated_integrity, 4);
  54. int rv = 1;
  55. if (calculated_integrity != received_integrity) {
  56. // log_fn(LOG_INFO,"Recognized=0 but bad digest. Not recognizing.");
  57. // (%d vs %d).", received_integrity, calculated_integrity);
  58. /* restore digest to its old form */
  59. crypto_digest_restore(digest, &backup_digest);
  60. /* restore the relay header */
  61. memcpy(rh.integrity, &received_integrity, 4);
  62. relay_header_pack(cell->payload, &rh);
  63. rv = 0;
  64. }
  65. memwipe(&backup_digest, 0, sizeof(backup_digest));
  66. return rv;
  67. }
  68. /** Apply <b>cipher</b> to CELL_PAYLOAD_SIZE bytes of <b>in</b>
  69. * (in place).
  70. *
  71. * Note that we use the same operation for encrypting and for decrypting.
  72. */
  73. static void
  74. relay_crypt_one_payload(crypto_cipher_t *cipher, uint8_t *in)
  75. {
  76. crypto_cipher_crypt_inplace(cipher, (char*) in, CELL_PAYLOAD_SIZE);
  77. }
  78. /** Do the appropriate en/decryptions for <b>cell</b> arriving on
  79. * <b>circ</b> in direction <b>cell_direction</b>.
  80. *
  81. * If cell_direction == CELL_DIRECTION_IN:
  82. * - If we're at the origin (we're the OP), for hops 1..N,
  83. * decrypt cell. If recognized, stop.
  84. * - Else (we're not the OP), encrypt one hop. Cell is not recognized.
  85. *
  86. * If cell_direction == CELL_DIRECTION_OUT:
  87. * - decrypt one hop. Check if recognized.
  88. *
  89. * If cell is recognized, set *recognized to 1, and set
  90. * *layer_hint to the hop that recognized it.
  91. *
  92. * Return -1 to indicate that we should mark the circuit for close,
  93. * else return 0.
  94. */
  95. int
  96. relay_decrypt_cell(circuit_t *circ, cell_t *cell,
  97. cell_direction_t cell_direction,
  98. crypt_path_t **layer_hint, char *recognized)
  99. {
  100. relay_header_t rh;
  101. tor_assert(circ);
  102. tor_assert(cell);
  103. tor_assert(recognized);
  104. tor_assert(cell_direction == CELL_DIRECTION_IN ||
  105. cell_direction == CELL_DIRECTION_OUT);
  106. if (cell_direction == CELL_DIRECTION_IN) {
  107. if (CIRCUIT_IS_ORIGIN(circ)) { /* We're at the beginning of the circuit.
  108. * We'll want to do layered decrypts. */
  109. crypt_path_t *thishop, *cpath = TO_ORIGIN_CIRCUIT(circ)->cpath;
  110. thishop = cpath;
  111. if (thishop->state != CPATH_STATE_OPEN) {
  112. log_fn(LOG_PROTOCOL_WARN, LD_PROTOCOL,
  113. "Relay cell before first created cell? Closing.");
  114. return -1;
  115. }
  116. do { /* Remember: cpath is in forward order, that is, first hop first. */
  117. tor_assert(thishop);
  118. /* decrypt one layer */
  119. relay_crypt_one_payload(thishop->crypto.b_crypto, cell->payload);
  120. relay_header_unpack(&rh, cell->payload);
  121. if (rh.recognized == 0) {
  122. /* it's possibly recognized. have to check digest to be sure. */
  123. if (relay_digest_matches(thishop->crypto.b_digest, cell)) {
  124. *recognized = 1;
  125. *layer_hint = thishop;
  126. return 0;
  127. }
  128. }
  129. thishop = thishop->next;
  130. } while (thishop != cpath && thishop->state == CPATH_STATE_OPEN);
  131. log_fn(LOG_PROTOCOL_WARN, LD_OR,
  132. "Incoming cell at client not recognized. Closing.");
  133. return -1;
  134. } else {
  135. relay_crypto_t *crypto = &TO_OR_CIRCUIT(circ)->crypto;
  136. /* We're in the middle. Encrypt one layer. */
  137. relay_crypt_one_payload(crypto->b_crypto, cell->payload);
  138. }
  139. } else /* cell_direction == CELL_DIRECTION_OUT */ {
  140. /* We're in the middle. Decrypt one layer. */
  141. relay_crypto_t *crypto = &TO_OR_CIRCUIT(circ)->crypto;
  142. relay_crypt_one_payload(crypto->f_crypto, cell->payload);
  143. relay_header_unpack(&rh, cell->payload);
  144. if (rh.recognized == 0) {
  145. /* it's possibly recognized. have to check digest to be sure. */
  146. if (relay_digest_matches(crypto->f_digest, cell)) {
  147. *recognized = 1;
  148. return 0;
  149. }
  150. }
  151. }
  152. return 0;
  153. }
  154. /**
  155. * Encrypt a cell <b>cell</b> that we are creating, and sending outbound on
  156. * <b>circ</b> until the hop corresponding to <b>layer_hint</b>.
  157. *
  158. * The integrity field and recognized field of <b>cell</b>'s relay headers
  159. * must be set to zero.
  160. */
  161. void
  162. relay_encrypt_cell_outbound(cell_t *cell,
  163. origin_circuit_t *circ,
  164. crypt_path_t *layer_hint)
  165. {
  166. crypt_path_t *thishop; /* counter for repeated crypts */
  167. relay_set_digest(layer_hint->crypto.f_digest, cell);
  168. thishop = layer_hint;
  169. /* moving from farthest to nearest hop */
  170. do {
  171. tor_assert(thishop);
  172. log_debug(LD_OR,"encrypting a layer of the relay cell.");
  173. relay_crypt_one_payload(thishop->crypto.f_crypto, cell->payload);
  174. thishop = thishop->prev;
  175. } while (thishop != circ->cpath->prev);
  176. }
  177. /**
  178. * Encrypt a cell <b>cell</b> that we are creating, and sending on
  179. * <b>circuit</b> to the origin.
  180. *
  181. * The integrity field and recognized field of <b>cell</b>'s relay headers
  182. * must be set to zero.
  183. */
  184. void
  185. relay_encrypt_cell_inbound(cell_t *cell,
  186. or_circuit_t *or_circ)
  187. {
  188. relay_set_digest(or_circ->crypto.b_digest, cell);
  189. /* encrypt one layer */
  190. relay_crypt_one_payload(or_circ->crypto.b_crypto, cell->payload);
  191. }
  192. /**
  193. * Release all storage held inside <b>crypto</b>, but do not free
  194. * <b>crypto</b> itself: it lives inside another object.
  195. */
  196. void
  197. relay_crypto_clear(relay_crypto_t *crypto)
  198. {
  199. if (BUG(!crypto))
  200. return;
  201. crypto_cipher_free(crypto->f_crypto);
  202. crypto_cipher_free(crypto->b_crypto);
  203. crypto_digest_free(crypto->f_digest);
  204. crypto_digest_free(crypto->b_digest);
  205. }
  206. /** Initialize <b>crypto</b> from the key material in key_data.
  207. *
  208. * If <b>is_hs_v3</b> is set, this cpath will be used for next gen hidden
  209. * service circuits and <b>key_data</b> must be at least
  210. * HS_NTOR_KEY_EXPANSION_KDF_OUT_LEN bytes in length.
  211. *
  212. * If <b>is_hs_v3</b> is not set, key_data must contain CPATH_KEY_MATERIAL_LEN
  213. * bytes, which are used as follows:
  214. * - 20 to initialize f_digest
  215. * - 20 to initialize b_digest
  216. * - 16 to key f_crypto
  217. * - 16 to key b_crypto
  218. *
  219. * (If 'reverse' is true, then f_XX and b_XX are swapped.)
  220. *
  221. * Return 0 if init was successful, else -1 if it failed.
  222. */
  223. int
  224. relay_crypto_init(relay_crypto_t *crypto,
  225. const char *key_data, size_t key_data_len,
  226. int reverse, int is_hs_v3)
  227. {
  228. crypto_digest_t *tmp_digest;
  229. crypto_cipher_t *tmp_crypto;
  230. size_t digest_len = 0;
  231. size_t cipher_key_len = 0;
  232. tor_assert(crypto);
  233. tor_assert(key_data);
  234. tor_assert(!(crypto->f_crypto || crypto->b_crypto ||
  235. crypto->f_digest || crypto->b_digest));
  236. /* Basic key size validation */
  237. if (is_hs_v3 && BUG(key_data_len != HS_NTOR_KEY_EXPANSION_KDF_OUT_LEN)) {
  238. goto err;
  239. } else if (!is_hs_v3 && BUG(key_data_len != CPATH_KEY_MATERIAL_LEN)) {
  240. goto err;
  241. }
  242. /* If we are using this crypto for next gen onion services use SHA3-256,
  243. otherwise use good ol' SHA1 */
  244. if (is_hs_v3) {
  245. digest_len = DIGEST256_LEN;
  246. cipher_key_len = CIPHER256_KEY_LEN;
  247. crypto->f_digest = crypto_digest256_new(DIGEST_SHA3_256);
  248. crypto->b_digest = crypto_digest256_new(DIGEST_SHA3_256);
  249. } else {
  250. digest_len = DIGEST_LEN;
  251. cipher_key_len = CIPHER_KEY_LEN;
  252. crypto->f_digest = crypto_digest_new();
  253. crypto->b_digest = crypto_digest_new();
  254. }
  255. tor_assert(digest_len != 0);
  256. tor_assert(cipher_key_len != 0);
  257. const int cipher_key_bits = (int) cipher_key_len * 8;
  258. crypto_digest_add_bytes(crypto->f_digest, key_data, digest_len);
  259. crypto_digest_add_bytes(crypto->b_digest, key_data+digest_len, digest_len);
  260. crypto->f_crypto = crypto_cipher_new_with_bits(key_data+(2*digest_len),
  261. cipher_key_bits);
  262. if (!crypto->f_crypto) {
  263. log_warn(LD_BUG,"Forward cipher initialization failed.");
  264. goto err;
  265. }
  266. crypto->b_crypto = crypto_cipher_new_with_bits(
  267. key_data+(2*digest_len)+cipher_key_len,
  268. cipher_key_bits);
  269. if (!crypto->b_crypto) {
  270. log_warn(LD_BUG,"Backward cipher initialization failed.");
  271. goto err;
  272. }
  273. if (reverse) {
  274. tmp_digest = crypto->f_digest;
  275. crypto->f_digest = crypto->b_digest;
  276. crypto->b_digest = tmp_digest;
  277. tmp_crypto = crypto->f_crypto;
  278. crypto->f_crypto = crypto->b_crypto;
  279. crypto->b_crypto = tmp_crypto;
  280. }
  281. return 0;
  282. err:
  283. relay_crypto_clear(crypto);
  284. return -1;
  285. }
  286. /** Assert that <b>crypto</b> is valid and set. */
  287. void
  288. relay_crypto_assert_ok(const relay_crypto_t *crypto)
  289. {
  290. tor_assert(crypto->f_crypto);
  291. tor_assert(crypto->b_crypto);
  292. tor_assert(crypto->f_digest);
  293. tor_assert(crypto->b_digest);
  294. }