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fuzzy_storage.c 63KB

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  1. /*-
  2. * Copyright 2016 Vsevolod Stakhov
  3. *
  4. * Licensed under the Apache License, Version 2.0 (the "License");
  5. * you may not use this file except in compliance with the License.
  6. * You may obtain a copy of the License at
  7. *
  8. * http://www.apache.org/licenses/LICENSE-2.0
  9. *
  10. * Unless required by applicable law or agreed to in writing, software
  11. * distributed under the License is distributed on an "AS IS" BASIS,
  12. * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  13. * See the License for the specific language governing permissions and
  14. * limitations under the License.
  15. */
  16. /*
  17. * Rspamd fuzzy storage server
  18. */
  19. #include "config.h"
  20. #include "libserver/fuzzy_wire.h"
  21. #include "util.h"
  22. #include "rspamd.h"
  23. #include "libserver/maps/map.h"
  24. #include "libserver/maps/map_helpers.h"
  25. #include "libserver/fuzzy_backend/fuzzy_backend.h"
  26. #include "ottery.h"
  27. #include "ref.h"
  28. #include "xxhash.h"
  29. #include "libserver/worker_util.h"
  30. #include "libserver/rspamd_control.h"
  31. #include "libcryptobox/cryptobox.h"
  32. #include "libcryptobox/keypairs_cache.h"
  33. #include "libcryptobox/keypair.h"
  34. #include "libutil/hash.h"
  35. #include "libserver/maps/map_private.h"
  36. #include "contrib/uthash/utlist.h"
  37. #include "lua/lua_common.h"
  38. #include "unix-std.h"
  39. #include <math.h>
  40. /* Resync value in seconds */
  41. #define DEFAULT_SYNC_TIMEOUT 60.0
  42. #define DEFAULT_KEYPAIR_CACHE_SIZE 512
  43. #define DEFAULT_MASTER_TIMEOUT 10.0
  44. #define DEFAULT_UPDATES_MAXFAIL 3
  45. #define COOKIE_SIZE 128
  46. #define DEFAULT_MAX_BUCKETS 2000
  47. #define DEFAULT_BUCKET_TTL 3600
  48. #define DEFAULT_BUCKET_MASK 24
  49. static const gchar *local_db_name = "local";
  50. #define msg_err_fuzzy_update(...) rspamd_default_log_function (G_LOG_LEVEL_CRITICAL, \
  51. session->name, session->uid, \
  52. G_STRFUNC, \
  53. __VA_ARGS__)
  54. #define msg_warn_fuzzy_update(...) rspamd_default_log_function (G_LOG_LEVEL_WARNING, \
  55. session->name, session->uid, \
  56. G_STRFUNC, \
  57. __VA_ARGS__)
  58. #define msg_info_fuzzy_update(...) rspamd_default_log_function (G_LOG_LEVEL_INFO, \
  59. session->name, session->uid, \
  60. G_STRFUNC, \
  61. __VA_ARGS__)
  62. #define msg_err_fuzzy_collection(...) rspamd_default_log_function (G_LOG_LEVEL_CRITICAL, \
  63. "fuzzy_collection", session->uid, \
  64. G_STRFUNC, \
  65. __VA_ARGS__)
  66. #define msg_warn_fuzzy_collection(...) rspamd_default_log_function (G_LOG_LEVEL_WARNING, \
  67. "fuzzy_collection", session->uid, \
  68. G_STRFUNC, \
  69. __VA_ARGS__)
  70. #define msg_info_fuzzy_collection(...) rspamd_default_log_function (G_LOG_LEVEL_INFO, \
  71. "fuzzy_collection", session->uid, \
  72. G_STRFUNC, \
  73. __VA_ARGS__)
  74. /* Init functions */
  75. gpointer init_fuzzy (struct rspamd_config *cfg);
  76. void start_fuzzy (struct rspamd_worker *worker);
  77. worker_t fuzzy_worker = {
  78. "fuzzy", /* Name */
  79. init_fuzzy, /* Init function */
  80. start_fuzzy, /* Start function */
  81. RSPAMD_WORKER_HAS_SOCKET,
  82. RSPAMD_WORKER_SOCKET_UDP, /* UDP socket */
  83. RSPAMD_WORKER_VER /* Version info */
  84. };
  85. struct fuzzy_global_stat {
  86. guint64 fuzzy_hashes;
  87. /**< number of fuzzy hashes stored */
  88. guint64 fuzzy_hashes_expired;
  89. /**< number of fuzzy hashes expired */
  90. guint64 fuzzy_hashes_checked[RSPAMD_FUZZY_EPOCH_MAX];
  91. /**< amount of check requests for each epoch */
  92. guint64 fuzzy_shingles_checked[RSPAMD_FUZZY_EPOCH_MAX];
  93. /**< amount of shingle check requests for each epoch */
  94. guint64 fuzzy_hashes_found[RSPAMD_FUZZY_EPOCH_MAX];
  95. /**< amount of hashes found by epoch */
  96. guint64 invalid_requests;
  97. };
  98. struct fuzzy_key_stat {
  99. guint64 checked;
  100. guint64 matched;
  101. guint64 added;
  102. guint64 deleted;
  103. guint64 errors;
  104. rspamd_lru_hash_t *last_ips;
  105. ref_entry_t ref;
  106. };
  107. struct rspamd_fuzzy_mirror {
  108. gchar *name;
  109. struct upstream_list *u;
  110. struct rspamd_cryptobox_pubkey *key;
  111. };
  112. struct rspamd_leaky_bucket_elt {
  113. rspamd_inet_addr_t *addr;
  114. gdouble last;
  115. gdouble cur;
  116. };
  117. static const guint64 rspamd_fuzzy_storage_magic = 0x291a3253eb1b3ea5ULL;
  118. struct rspamd_fuzzy_storage_ctx {
  119. guint64 magic;
  120. /* Events base */
  121. struct ev_loop *event_loop;
  122. /* DNS resolver */
  123. struct rspamd_dns_resolver *resolver;
  124. /* Config */
  125. struct rspamd_config *cfg;
  126. /* END OF COMMON PART */
  127. struct fuzzy_global_stat stat;
  128. gdouble expire;
  129. gdouble sync_timeout;
  130. struct rspamd_radix_map_helper *update_ips;
  131. struct rspamd_radix_map_helper *blocked_ips;
  132. struct rspamd_radix_map_helper *ratelimit_whitelist;
  133. const ucl_object_t *update_map;
  134. const ucl_object_t *blocked_map;
  135. const ucl_object_t *ratelimit_whitelist_map;
  136. guint keypair_cache_size;
  137. ev_timer stat_ev;
  138. ev_io peer_ev;
  139. /* Local keypair */
  140. struct rspamd_cryptobox_keypair *default_keypair; /* Bad clash, need for parse keypair */
  141. struct fuzzy_key *default_key;
  142. GHashTable *keys;
  143. gboolean encrypted_only;
  144. gboolean read_only;
  145. gboolean dedicated_update_worker;
  146. struct rspamd_keypair_cache *keypair_cache;
  147. struct rspamd_http_context *http_ctx;
  148. rspamd_lru_hash_t *errors_ips;
  149. rspamd_lru_hash_t *ratelimit_buckets;
  150. struct rspamd_fuzzy_backend *backend;
  151. GArray *updates_pending;
  152. guint updates_failed;
  153. guint updates_maxfail;
  154. /* Used to send data between workers */
  155. gint peer_fd;
  156. /* Ratelimits */
  157. guint leaky_bucket_ttl;
  158. guint leaky_bucket_mask;
  159. guint max_buckets;
  160. gboolean ratelimit_log_only;
  161. gdouble leaky_bucket_burst;
  162. gdouble leaky_bucket_rate;
  163. struct rspamd_worker *worker;
  164. const ucl_object_t *skip_map;
  165. struct rspamd_hash_map_helper *skip_hashes;
  166. gint lua_pre_handler_cbref;
  167. gint lua_post_handler_cbref;
  168. guchar cookie[COOKIE_SIZE];
  169. };
  170. enum fuzzy_cmd_type {
  171. CMD_NORMAL,
  172. CMD_SHINGLE,
  173. CMD_ENCRYPTED_NORMAL,
  174. CMD_ENCRYPTED_SHINGLE
  175. };
  176. struct fuzzy_session {
  177. struct rspamd_worker *worker;
  178. rspamd_inet_addr_t *addr;
  179. struct rspamd_fuzzy_storage_ctx *ctx;
  180. struct rspamd_fuzzy_shingle_cmd cmd; /* Can handle both shingles and non-shingles */
  181. struct rspamd_fuzzy_encrypted_reply reply; /* Again: contains everything */
  182. struct fuzzy_key_stat *ip_stat;
  183. enum rspamd_fuzzy_epoch epoch;
  184. enum fuzzy_cmd_type cmd_type;
  185. gint fd;
  186. guint64 time;
  187. struct ev_io io;
  188. ref_entry_t ref;
  189. struct fuzzy_key_stat *key_stat;
  190. struct rspamd_fuzzy_cmd_extension *extensions;
  191. guchar nm[rspamd_cryptobox_MAX_NMBYTES];
  192. };
  193. struct fuzzy_peer_request {
  194. ev_io io_ev;
  195. struct fuzzy_peer_cmd cmd;
  196. };
  197. struct fuzzy_key {
  198. struct rspamd_cryptobox_keypair *key;
  199. struct rspamd_cryptobox_pubkey *pk;
  200. struct fuzzy_key_stat *stat;
  201. };
  202. struct rspamd_updates_cbdata {
  203. GArray *updates_pending;
  204. struct rspamd_fuzzy_storage_ctx *ctx;
  205. gchar *source;
  206. gboolean final;
  207. };
  208. static void rspamd_fuzzy_write_reply (struct fuzzy_session *session);
  209. static gboolean rspamd_fuzzy_process_updates_queue (
  210. struct rspamd_fuzzy_storage_ctx *ctx,
  211. const gchar *source, gboolean final);
  212. static gboolean
  213. rspamd_fuzzy_check_ratelimit (struct fuzzy_session *session)
  214. {
  215. rspamd_inet_addr_t *masked;
  216. struct rspamd_leaky_bucket_elt *elt;
  217. ev_tstamp now;
  218. if (session->ctx->ratelimit_whitelist != NULL) {
  219. if (rspamd_match_radix_map_addr (session->ctx->ratelimit_whitelist,
  220. session->addr) != NULL) {
  221. return TRUE;
  222. }
  223. }
  224. /*
  225. if (rspamd_inet_address_is_local (session->addr, TRUE)) {
  226. return TRUE;
  227. }
  228. */
  229. masked = rspamd_inet_address_copy (session->addr);
  230. if (rspamd_inet_address_get_af (masked) == AF_INET) {
  231. rspamd_inet_address_apply_mask (masked,
  232. MIN (session->ctx->leaky_bucket_mask, 32));
  233. }
  234. else {
  235. /* Must be at least /64 */
  236. rspamd_inet_address_apply_mask (masked,
  237. MIN (MAX (session->ctx->leaky_bucket_mask * 4, 64), 128));
  238. }
  239. now = ev_now (session->ctx->event_loop);
  240. elt = rspamd_lru_hash_lookup (session->ctx->ratelimit_buckets, masked,
  241. now);
  242. if (elt) {
  243. gboolean ratelimited = FALSE;
  244. if (isnan (elt->cur)) {
  245. /* Ratelimit exceeded, preserve it for the whole ttl */
  246. ratelimited = TRUE;
  247. }
  248. else {
  249. /* Update bucket */
  250. if (elt->last < now) {
  251. elt->cur -= session->ctx->leaky_bucket_rate * (now - elt->last);
  252. elt->last = now;
  253. if (elt->cur < 0) {
  254. elt->cur = 0;
  255. }
  256. }
  257. else {
  258. elt->last = now;
  259. }
  260. /* Check bucket */
  261. if (elt->cur >= session->ctx->leaky_bucket_burst) {
  262. msg_info ("ratelimiting %s (%s), %.1f max elts",
  263. rspamd_inet_address_to_string (session->addr),
  264. rspamd_inet_address_to_string (masked),
  265. session->ctx->leaky_bucket_burst);
  266. elt->cur = NAN;
  267. }
  268. else {
  269. elt->cur ++; /* Allow one more request */
  270. }
  271. }
  272. rspamd_inet_address_free (masked);
  273. return !ratelimited;
  274. }
  275. else {
  276. /* New bucket */
  277. elt = g_malloc (sizeof (*elt));
  278. elt->addr = masked; /* transfer ownership */
  279. elt->cur = 1;
  280. elt->last = now;
  281. rspamd_lru_hash_insert (session->ctx->ratelimit_buckets,
  282. masked,
  283. elt,
  284. now,
  285. session->ctx->leaky_bucket_ttl);
  286. }
  287. return TRUE;
  288. }
  289. static gboolean
  290. rspamd_fuzzy_check_client (struct fuzzy_session *session, gboolean is_write)
  291. {
  292. if (session->ctx->blocked_ips != NULL) {
  293. if (rspamd_match_radix_map_addr (session->ctx->blocked_ips,
  294. session->addr) != NULL) {
  295. return FALSE;
  296. }
  297. }
  298. if (is_write) {
  299. if (session->ctx->read_only) {
  300. return FALSE;
  301. }
  302. if (session->ctx->update_ips != NULL) {
  303. if (rspamd_match_radix_map_addr (session->ctx->update_ips,
  304. session->addr) == NULL) {
  305. return FALSE;
  306. }
  307. else {
  308. return TRUE;
  309. }
  310. }
  311. return FALSE;
  312. }
  313. /* Non write */
  314. if (session->ctx->ratelimit_buckets) {
  315. if (session->ctx->ratelimit_log_only) {
  316. (void)rspamd_fuzzy_check_ratelimit (session); /* Check but ignore */
  317. }
  318. else {
  319. return rspamd_fuzzy_check_ratelimit (session);
  320. }
  321. }
  322. return TRUE;
  323. }
  324. static void
  325. fuzzy_key_stat_dtor (gpointer p)
  326. {
  327. struct fuzzy_key_stat *st = p;
  328. if (st->last_ips) {
  329. rspamd_lru_hash_destroy (st->last_ips);
  330. }
  331. g_free (st);
  332. }
  333. static void
  334. fuzzy_key_stat_unref (gpointer p)
  335. {
  336. struct fuzzy_key_stat *st = p;
  337. REF_RELEASE (st);
  338. }
  339. static void
  340. fuzzy_key_dtor (gpointer p)
  341. {
  342. struct fuzzy_key *key = p;
  343. if (key) {
  344. if (key->stat) {
  345. REF_RELEASE (key->stat);
  346. }
  347. g_free (key);
  348. }
  349. }
  350. static void
  351. fuzzy_count_callback (guint64 count, void *ud)
  352. {
  353. struct rspamd_fuzzy_storage_ctx *ctx = ud;
  354. ctx->stat.fuzzy_hashes = count;
  355. }
  356. static void
  357. fuzzy_rl_bucket_free (gpointer p)
  358. {
  359. struct rspamd_leaky_bucket_elt *elt = (struct rspamd_leaky_bucket_elt *)p;
  360. rspamd_inet_address_free (elt->addr);
  361. g_free (elt);
  362. }
  363. static void
  364. fuzzy_stat_count_callback (guint64 count, void *ud)
  365. {
  366. struct rspamd_fuzzy_storage_ctx *ctx = ud;
  367. ev_timer_again (ctx->event_loop, &ctx->stat_ev);
  368. ctx->stat.fuzzy_hashes = count;
  369. }
  370. static void
  371. rspamd_fuzzy_stat_callback (EV_P_ ev_timer *w, int revents)
  372. {
  373. struct rspamd_fuzzy_storage_ctx *ctx =
  374. (struct rspamd_fuzzy_storage_ctx *)w->data;
  375. rspamd_fuzzy_backend_count (ctx->backend, fuzzy_stat_count_callback, ctx);
  376. }
  377. static void
  378. fuzzy_update_version_callback (guint64 ver, void *ud)
  379. {
  380. }
  381. static void
  382. rspamd_fuzzy_updates_cb (gboolean success,
  383. guint nadded,
  384. guint ndeleted,
  385. guint nextended,
  386. guint nignored,
  387. void *ud)
  388. {
  389. struct rspamd_updates_cbdata *cbdata = ud;
  390. struct rspamd_fuzzy_storage_ctx *ctx;
  391. const gchar *source;
  392. ctx = cbdata->ctx;
  393. source = cbdata->source;
  394. if (success) {
  395. rspamd_fuzzy_backend_count (ctx->backend, fuzzy_count_callback, ctx);
  396. msg_info ("successfully updated fuzzy storage %s: %d updates in queue; "
  397. "%d pending currently; "
  398. "%d added; %d deleted; %d extended; %d duplicates",
  399. ctx->worker->cf->bind_conf ?
  400. ctx->worker->cf->bind_conf->bind_line :
  401. "unknown",
  402. cbdata->updates_pending->len,
  403. ctx->updates_pending->len,
  404. nadded, ndeleted, nextended, nignored);
  405. rspamd_fuzzy_backend_version (ctx->backend, source,
  406. fuzzy_update_version_callback, NULL);
  407. ctx->updates_failed = 0;
  408. if (cbdata->final || ctx->worker->state != rspamd_worker_state_running) {
  409. /* Plan exit */
  410. ev_break (ctx->event_loop, EVBREAK_ALL);
  411. }
  412. }
  413. else {
  414. if (++ctx->updates_failed > ctx->updates_maxfail) {
  415. msg_err ("cannot commit update transaction to fuzzy backend %s, discard "
  416. "%ud updates after %d retries",
  417. ctx->worker->cf->bind_conf ?
  418. ctx->worker->cf->bind_conf->bind_line :
  419. "unknown",
  420. cbdata->updates_pending->len,
  421. ctx->updates_maxfail);
  422. ctx->updates_failed = 0;
  423. if (cbdata->final || ctx->worker->state != rspamd_worker_state_running) {
  424. /* Plan exit */
  425. ev_break (ctx->event_loop, EVBREAK_ALL);
  426. }
  427. }
  428. else {
  429. msg_err ("cannot commit update transaction to fuzzy backend %s; "
  430. "%ud updates are still left; %ud currently pending;"
  431. " %d updates left",
  432. ctx->worker->cf->bind_conf ?
  433. ctx->worker->cf->bind_conf->bind_line :
  434. "unknown",
  435. cbdata->updates_pending->len,
  436. ctx->updates_pending->len,
  437. ctx->updates_maxfail - ctx->updates_failed);
  438. /* Move the remaining updates to ctx queue */
  439. g_array_append_vals (ctx->updates_pending,
  440. cbdata->updates_pending->data,
  441. cbdata->updates_pending->len);
  442. if (cbdata->final) {
  443. /* Try one more time */
  444. rspamd_fuzzy_process_updates_queue (cbdata->ctx, cbdata->source,
  445. cbdata->final);
  446. }
  447. }
  448. }
  449. g_array_free (cbdata->updates_pending, TRUE);
  450. g_free (cbdata->source);
  451. g_free (cbdata);
  452. }
  453. static gboolean
  454. rspamd_fuzzy_process_updates_queue (struct rspamd_fuzzy_storage_ctx *ctx,
  455. const gchar *source, gboolean final)
  456. {
  457. struct rspamd_updates_cbdata *cbdata;
  458. if (ctx->updates_pending->len > 0) {
  459. cbdata = g_malloc (sizeof (*cbdata));
  460. cbdata->ctx = ctx;
  461. cbdata->final = final;
  462. cbdata->updates_pending = ctx->updates_pending;
  463. ctx->updates_pending = g_array_sized_new (FALSE, FALSE,
  464. sizeof (struct fuzzy_peer_cmd),
  465. MAX (cbdata->updates_pending->len, 1024));
  466. cbdata->source = g_strdup (source);
  467. rspamd_fuzzy_backend_process_updates (ctx->backend,
  468. cbdata->updates_pending,
  469. source, rspamd_fuzzy_updates_cb, cbdata);
  470. return TRUE;
  471. }
  472. else if (final) {
  473. /* No need to sync */
  474. ev_break (ctx->event_loop, EVBREAK_ALL);
  475. }
  476. return FALSE;
  477. }
  478. static void
  479. rspamd_fuzzy_reply_io (EV_P_ ev_io *w, int revents)
  480. {
  481. struct fuzzy_session *session = (struct fuzzy_session *)w->data;
  482. ev_io_stop (EV_A_ w);
  483. rspamd_fuzzy_write_reply (session);
  484. REF_RELEASE (session);
  485. }
  486. static void
  487. rspamd_fuzzy_write_reply (struct fuzzy_session *session)
  488. {
  489. gssize r;
  490. gsize len;
  491. gconstpointer data;
  492. if (session->cmd_type == CMD_ENCRYPTED_NORMAL ||
  493. session->cmd_type == CMD_ENCRYPTED_SHINGLE) {
  494. /* Encrypted reply */
  495. data = &session->reply;
  496. if (session->epoch > RSPAMD_FUZZY_EPOCH10) {
  497. len = sizeof (session->reply);
  498. }
  499. else {
  500. len = sizeof (session->reply.hdr) + sizeof (session->reply.rep.v1);
  501. }
  502. }
  503. else {
  504. data = &session->reply.rep;
  505. if (session->epoch > RSPAMD_FUZZY_EPOCH10) {
  506. len = sizeof (session->reply.rep);
  507. }
  508. else {
  509. len = sizeof (session->reply.rep.v1);
  510. }
  511. }
  512. r = rspamd_inet_address_sendto (session->fd, data, len, 0,
  513. session->addr);
  514. if (r == -1) {
  515. if (errno == EINTR || errno == EWOULDBLOCK || errno == EAGAIN) {
  516. /* Grab reference to avoid early destruction */
  517. REF_RETAIN (session);
  518. session->io.data = session;
  519. ev_io_init (&session->io,
  520. rspamd_fuzzy_reply_io, session->fd, EV_WRITE);
  521. ev_io_start (session->ctx->event_loop, &session->io);
  522. }
  523. else {
  524. msg_err ("error while writing reply: %s", strerror (errno));
  525. }
  526. }
  527. }
  528. static void
  529. rspamd_fuzzy_update_stats (struct rspamd_fuzzy_storage_ctx *ctx,
  530. enum rspamd_fuzzy_epoch epoch,
  531. gboolean matched,
  532. gboolean is_shingle,
  533. struct fuzzy_key_stat *key_stat,
  534. struct fuzzy_key_stat *ip_stat,
  535. guint cmd, guint reply)
  536. {
  537. ctx->stat.fuzzy_hashes_checked[epoch] ++;
  538. if (matched) {
  539. ctx->stat.fuzzy_hashes_found[epoch]++;
  540. }
  541. if (is_shingle) {
  542. ctx->stat.fuzzy_shingles_checked[epoch]++;
  543. }
  544. if (key_stat) {
  545. if (!matched && reply != 0) {
  546. key_stat->errors ++;
  547. }
  548. else {
  549. if (cmd == FUZZY_CHECK) {
  550. key_stat->checked++;
  551. if (matched) {
  552. key_stat->matched ++;
  553. }
  554. }
  555. else if (cmd == FUZZY_WRITE) {
  556. key_stat->added++;
  557. }
  558. else if (cmd == FUZZY_DEL) {
  559. key_stat->deleted++;
  560. }
  561. }
  562. }
  563. if (ip_stat) {
  564. if (!matched && reply != 0) {
  565. ip_stat->errors++;
  566. }
  567. else {
  568. if (cmd == FUZZY_CHECK) {
  569. ip_stat->checked++;
  570. if (matched) {
  571. ip_stat->matched++;
  572. }
  573. }
  574. else if (cmd == FUZZY_WRITE) {
  575. ip_stat->added++;
  576. }
  577. else if (cmd == FUZZY_DEL) {
  578. ip_stat->deleted++;
  579. }
  580. }
  581. }
  582. }
  583. static void
  584. rspamd_fuzzy_make_reply (struct rspamd_fuzzy_cmd *cmd,
  585. struct rspamd_fuzzy_reply *result,
  586. struct fuzzy_session *session,
  587. gboolean encrypted, gboolean is_shingle)
  588. {
  589. gsize len;
  590. if (cmd) {
  591. result->v1.tag = cmd->tag;
  592. memcpy (&session->reply.rep, result, sizeof (*result));
  593. rspamd_fuzzy_update_stats (session->ctx,
  594. session->epoch,
  595. result->v1.prob > 0.5,
  596. is_shingle,
  597. session->key_stat,
  598. session->ip_stat,
  599. cmd->cmd,
  600. result->v1.value);
  601. if (encrypted) {
  602. /* We need also to encrypt reply */
  603. ottery_rand_bytes (session->reply.hdr.nonce,
  604. sizeof (session->reply.hdr.nonce));
  605. /*
  606. * For old replies we need to encrypt just old part, otherwise
  607. * decryption would fail due to mac verification mistake
  608. */
  609. if (session->epoch > RSPAMD_FUZZY_EPOCH10) {
  610. len = sizeof (session->reply.rep);
  611. }
  612. else {
  613. len = sizeof (session->reply.rep.v1);
  614. }
  615. rspamd_cryptobox_encrypt_nm_inplace ((guchar *)&session->reply.rep,
  616. len,
  617. session->reply.hdr.nonce,
  618. session->nm,
  619. session->reply.hdr.mac,
  620. RSPAMD_CRYPTOBOX_MODE_25519);
  621. }
  622. }
  623. rspamd_fuzzy_write_reply (session);
  624. }
  625. static gboolean
  626. fuzzy_peer_try_send (gint fd, struct fuzzy_peer_request *up_req)
  627. {
  628. gssize r;
  629. r = write (fd, &up_req->cmd, sizeof (up_req->cmd));
  630. if (r != sizeof (up_req->cmd)) {
  631. return FALSE;
  632. }
  633. return TRUE;
  634. }
  635. static void
  636. fuzzy_peer_send_io (EV_P_ ev_io *w, int revents)
  637. {
  638. struct fuzzy_peer_request *up_req = (struct fuzzy_peer_request *)w->data;
  639. if (!fuzzy_peer_try_send (w->fd, up_req)) {
  640. msg_err ("cannot send update request to the peer: %s", strerror (errno));
  641. }
  642. ev_io_stop (EV_A_ w);
  643. g_free (up_req);
  644. }
  645. static void
  646. rspamd_fuzzy_check_callback (struct rspamd_fuzzy_reply *result, void *ud)
  647. {
  648. struct fuzzy_session *session = ud;
  649. gboolean encrypted = FALSE, is_shingle = FALSE;
  650. struct rspamd_fuzzy_cmd *cmd = NULL;
  651. const struct rspamd_shingle *shingle = NULL;
  652. struct rspamd_shingle sgl_cpy;
  653. switch (session->cmd_type) {
  654. case CMD_ENCRYPTED_NORMAL:
  655. encrypted = TRUE;
  656. /* Fallthrough */
  657. case CMD_NORMAL:
  658. cmd = &session->cmd.basic;
  659. break;
  660. case CMD_ENCRYPTED_SHINGLE:
  661. encrypted = TRUE;
  662. /* Fallthrough */
  663. case CMD_SHINGLE:
  664. cmd = &session->cmd.basic;
  665. memcpy (&sgl_cpy, &session->cmd.sgl, sizeof (sgl_cpy));
  666. shingle = &sgl_cpy;
  667. is_shingle = TRUE;
  668. break;
  669. }
  670. if (session->ctx->lua_pre_handler_cbref != -1) {
  671. /* Start lua post handler */
  672. lua_State *L = session->ctx->cfg->lua_state;
  673. gint err_idx, ret;
  674. lua_pushcfunction (L, &rspamd_lua_traceback);
  675. err_idx = lua_gettop (L);
  676. /* Preallocate stack (small opt) */
  677. lua_checkstack (L, err_idx + 9);
  678. /* function */
  679. lua_rawgeti (L, LUA_REGISTRYINDEX, session->ctx->lua_post_handler_cbref);
  680. /* client IP */
  681. rspamd_lua_ip_push (L, session->addr);
  682. /* client command */
  683. lua_pushinteger (L, cmd->cmd);
  684. /* command value (push as rspamd_text) */
  685. (void)lua_new_text (L, result->digest, sizeof (result->digest), FALSE);
  686. /* is shingle */
  687. lua_pushboolean (L, is_shingle);
  688. /* result value */
  689. lua_pushinteger (L, result->v1.value);
  690. /* result probability */
  691. lua_pushnumber (L, result->v1.prob);
  692. /* result flag */
  693. lua_pushinteger (L, result->v1.flag);
  694. /* result timestamp */
  695. lua_pushinteger (L, result->ts);
  696. /* TODO: add additional data maybe (encryption, pubkey, etc) */
  697. if ((ret = lua_pcall (L, 8, LUA_MULTRET, err_idx)) != 0) {
  698. msg_err ("call to lua_post_handler lua "
  699. "script failed (%d): %s", ret, lua_tostring (L, -1));
  700. }
  701. else {
  702. /* Return values order:
  703. * the first reply will be on err_idx + 1
  704. * if it is true, then we need to read the former ones:
  705. * 2-nd will be reply code
  706. * 3-rd will be probability (or 0.0 if missing)
  707. * 4-th value is flag (or default flag if missing)
  708. */
  709. ret = lua_toboolean (L, err_idx + 1);
  710. if (ret) {
  711. /* Artificial reply */
  712. result->v1.value = lua_tointeger (L, err_idx + 2);
  713. if (lua_isnumber (L, err_idx + 3)) {
  714. result->v1.prob = lua_tonumber (L, err_idx + 3);
  715. }
  716. else {
  717. result->v1.prob = 0.0f;
  718. }
  719. if (lua_isnumber (L, err_idx + 4)) {
  720. result->v1.flag = lua_tointeger (L, err_idx + 4);
  721. }
  722. lua_settop (L, 0);
  723. rspamd_fuzzy_make_reply (cmd, result, session, encrypted, is_shingle);
  724. REF_RELEASE (session);
  725. return;
  726. }
  727. }
  728. lua_settop (L, 0);
  729. }
  730. rspamd_fuzzy_make_reply (cmd, result, session, encrypted, is_shingle);
  731. /* Refresh hash if found with strong confidence */
  732. if (result->v1.prob > 0.9 && !session->ctx->read_only) {
  733. struct fuzzy_peer_cmd up_cmd;
  734. struct fuzzy_peer_request *up_req;
  735. if (session->worker->index == 0) {
  736. /* Just add to the queue */
  737. memset (&up_cmd, 0, sizeof (up_cmd));
  738. up_cmd.is_shingle = is_shingle;
  739. memcpy (up_cmd.cmd.normal.digest, result->digest,
  740. sizeof (up_cmd.cmd.normal.digest));
  741. up_cmd.cmd.normal.flag = result->v1.flag;
  742. up_cmd.cmd.normal.cmd = FUZZY_REFRESH;
  743. up_cmd.cmd.normal.shingles_count = cmd->shingles_count;
  744. if (is_shingle && shingle) {
  745. memcpy (&up_cmd.cmd.shingle.sgl, shingle,
  746. sizeof (up_cmd.cmd.shingle.sgl));
  747. }
  748. g_array_append_val (session->ctx->updates_pending, up_cmd);
  749. }
  750. else {
  751. /* We need to send request to the peer */
  752. up_req = g_malloc0 (sizeof (*up_req));
  753. up_req->cmd.is_shingle = is_shingle;
  754. memcpy (up_req->cmd.cmd.normal.digest, result->digest,
  755. sizeof (up_req->cmd.cmd.normal.digest));
  756. up_req->cmd.cmd.normal.flag = result->v1.flag;
  757. up_req->cmd.cmd.normal.cmd = FUZZY_REFRESH;
  758. up_req->cmd.cmd.normal.shingles_count = cmd->shingles_count;
  759. if (is_shingle && shingle) {
  760. memcpy (&up_req->cmd.cmd.shingle.sgl, shingle,
  761. sizeof (up_req->cmd.cmd.shingle.sgl));
  762. }
  763. if (!fuzzy_peer_try_send (session->ctx->peer_fd, up_req)) {
  764. up_req->io_ev.data = up_req;
  765. ev_io_init (&up_req->io_ev, fuzzy_peer_send_io,
  766. session->ctx->peer_fd, EV_WRITE);
  767. ev_io_start (session->ctx->event_loop, &up_req->io_ev);
  768. }
  769. else {
  770. g_free (up_req);
  771. }
  772. }
  773. }
  774. REF_RELEASE (session);
  775. }
  776. static void
  777. rspamd_fuzzy_process_command (struct fuzzy_session *session)
  778. {
  779. gboolean encrypted = FALSE, is_shingle = FALSE;
  780. struct rspamd_fuzzy_cmd *cmd = NULL;
  781. struct rspamd_fuzzy_reply result;
  782. struct fuzzy_peer_cmd up_cmd;
  783. struct fuzzy_peer_request *up_req;
  784. struct fuzzy_key_stat *ip_stat = NULL;
  785. gchar hexbuf[rspamd_cryptobox_HASHBYTES * 2 + 1];
  786. rspamd_inet_addr_t *naddr;
  787. gpointer ptr;
  788. gsize up_len = 0;
  789. cmd = &session->cmd.basic;
  790. switch (session->cmd_type) {
  791. case CMD_NORMAL:
  792. up_len = sizeof (session->cmd.basic);
  793. break;
  794. case CMD_SHINGLE:
  795. up_len = sizeof (session->cmd);
  796. is_shingle = TRUE;
  797. break;
  798. case CMD_ENCRYPTED_NORMAL:
  799. up_len = sizeof (session->cmd.basic);
  800. encrypted = TRUE;
  801. break;
  802. case CMD_ENCRYPTED_SHINGLE:
  803. up_len = sizeof (session->cmd);
  804. encrypted = TRUE;
  805. is_shingle = TRUE;
  806. break;
  807. default:
  808. msg_err ("invalid command type: %d", session->cmd_type);
  809. return;
  810. }
  811. memset (&result, 0, sizeof (result));
  812. memcpy (result.digest, cmd->digest, sizeof (result.digest));
  813. result.v1.flag = cmd->flag;
  814. result.v1.tag = cmd->tag;
  815. if (session->ctx->lua_pre_handler_cbref != -1) {
  816. /* Start lua pre handler */
  817. lua_State *L = session->ctx->cfg->lua_state;
  818. gint err_idx, ret;
  819. lua_pushcfunction (L, &rspamd_lua_traceback);
  820. err_idx = lua_gettop (L);
  821. /* Preallocate stack (small opt) */
  822. lua_checkstack (L, err_idx + 5);
  823. /* function */
  824. lua_rawgeti (L, LUA_REGISTRYINDEX, session->ctx->lua_pre_handler_cbref);
  825. /* client IP */
  826. rspamd_lua_ip_push (L, session->addr);
  827. /* client command */
  828. lua_pushinteger (L, cmd->cmd);
  829. /* command value (push as rspamd_text) */
  830. (void)lua_new_text (L, cmd->digest, sizeof (cmd->digest), FALSE);
  831. /* is shingle */
  832. lua_pushboolean (L, is_shingle);
  833. /* TODO: add additional data maybe (encryption, pubkey, etc) */
  834. if ((ret = lua_pcall (L, 4,LUA_MULTRET, err_idx)) != 0) {
  835. msg_err ("call to lua_pre_handler lua "
  836. "script failed (%d): %s", ret, lua_tostring (L, -1));
  837. }
  838. else {
  839. /* Return values order:
  840. * the first reply will be on err_idx + 1
  841. * if it is true, then we need to read the former ones:
  842. * 2-nd will be reply code
  843. * 3-rd will be probability (or 0.0 if missing)
  844. */
  845. ret = lua_toboolean (L, err_idx + 1);
  846. if (ret) {
  847. /* Artificial reply */
  848. result.v1.value = lua_tointeger (L, err_idx + 2);
  849. if (lua_isnumber (L, err_idx + 3)) {
  850. result.v1.prob = lua_tonumber (L, err_idx + 3);
  851. }
  852. else {
  853. result.v1.prob = 0.0f;
  854. }
  855. lua_settop (L, 0);
  856. rspamd_fuzzy_make_reply (cmd, &result, session, encrypted, is_shingle);
  857. return;
  858. }
  859. }
  860. lua_settop (L, 0);
  861. }
  862. if (G_UNLIKELY (cmd == NULL || up_len == 0)) {
  863. result.v1.value = 500;
  864. result.v1.prob = 0.0f;
  865. rspamd_fuzzy_make_reply (cmd, &result, session, encrypted, is_shingle);
  866. return;
  867. }
  868. if (session->ctx->encrypted_only && !encrypted) {
  869. /* Do not accept unencrypted commands */
  870. result.v1.value = 403;
  871. result.v1.prob = 0.0f;
  872. rspamd_fuzzy_make_reply (cmd, &result, session, encrypted, is_shingle);
  873. return;
  874. }
  875. if (session->key_stat) {
  876. ip_stat = rspamd_lru_hash_lookup (session->key_stat->last_ips,
  877. session->addr, -1);
  878. if (ip_stat == NULL) {
  879. naddr = rspamd_inet_address_copy (session->addr);
  880. ip_stat = g_malloc0 (sizeof (*ip_stat));
  881. REF_INIT_RETAIN (ip_stat, fuzzy_key_stat_dtor);
  882. rspamd_lru_hash_insert (session->key_stat->last_ips,
  883. naddr, ip_stat, -1, 0);
  884. }
  885. REF_RETAIN (ip_stat);
  886. session->ip_stat = ip_stat;
  887. }
  888. if (cmd->cmd == FUZZY_CHECK) {
  889. if (rspamd_fuzzy_check_client (session, FALSE)) {
  890. REF_RETAIN (session);
  891. rspamd_fuzzy_backend_check (session->ctx->backend, cmd,
  892. rspamd_fuzzy_check_callback, session);
  893. }
  894. else {
  895. result.v1.value = 403;
  896. result.v1.prob = 0.0f;
  897. result.v1.flag = 0;
  898. rspamd_fuzzy_make_reply (cmd, &result, session, encrypted, is_shingle);
  899. }
  900. }
  901. else if (cmd->cmd == FUZZY_STAT) {
  902. result.v1.prob = 1.0f;
  903. result.v1.value = 0;
  904. result.v1.flag = session->ctx->stat.fuzzy_hashes;
  905. rspamd_fuzzy_make_reply (cmd, &result, session, encrypted, is_shingle);
  906. }
  907. else {
  908. if (rspamd_fuzzy_check_client (session, TRUE)) {
  909. /* Check whitelist */
  910. if (session->ctx->skip_hashes && cmd->cmd == FUZZY_WRITE) {
  911. rspamd_encode_hex_buf (cmd->digest, sizeof (cmd->digest),
  912. hexbuf, sizeof (hexbuf) - 1);
  913. hexbuf[sizeof (hexbuf) - 1] = '\0';
  914. if (rspamd_match_hash_map (session->ctx->skip_hashes,
  915. hexbuf, sizeof (hexbuf) - 1)) {
  916. result.v1.value = 401;
  917. result.v1.prob = 0.0f;
  918. goto reply;
  919. }
  920. }
  921. if (session->worker->index == 0 || session->ctx->peer_fd == -1) {
  922. /* Just add to the queue */
  923. up_cmd.is_shingle = is_shingle;
  924. ptr = is_shingle ?
  925. (gpointer)&up_cmd.cmd.shingle :
  926. (gpointer)&up_cmd.cmd.normal;
  927. memcpy (ptr, cmd, up_len);
  928. g_array_append_val (session->ctx->updates_pending, up_cmd);
  929. }
  930. else {
  931. /* We need to send request to the peer */
  932. up_req = g_malloc0 (sizeof (*up_req));
  933. up_req->cmd.is_shingle = is_shingle;
  934. ptr = is_shingle ?
  935. (gpointer)&up_req->cmd.cmd.shingle :
  936. (gpointer)&up_req->cmd.cmd.normal;
  937. memcpy (ptr, cmd, up_len);
  938. if (!fuzzy_peer_try_send (session->ctx->peer_fd, up_req)) {
  939. up_req->io_ev.data = up_req;
  940. ev_io_init (&up_req->io_ev, fuzzy_peer_send_io,
  941. session->ctx->peer_fd, EV_WRITE);
  942. ev_io_start (session->ctx->event_loop, &up_req->io_ev);
  943. }
  944. else {
  945. g_free (up_req);
  946. }
  947. }
  948. result.v1.value = 0;
  949. result.v1.prob = 1.0f;
  950. }
  951. else {
  952. result.v1.value = 403;
  953. result.v1.prob = 0.0f;
  954. }
  955. reply:
  956. rspamd_fuzzy_make_reply (cmd, &result, session, encrypted, is_shingle);
  957. }
  958. }
  959. static enum rspamd_fuzzy_epoch
  960. rspamd_fuzzy_command_valid (struct rspamd_fuzzy_cmd *cmd, gint r)
  961. {
  962. enum rspamd_fuzzy_epoch ret = RSPAMD_FUZZY_EPOCH_MAX;
  963. switch (cmd->version) {
  964. case 4:
  965. if (cmd->shingles_count > 0) {
  966. if (r >= sizeof (struct rspamd_fuzzy_shingle_cmd)) {
  967. ret = RSPAMD_FUZZY_EPOCH11;
  968. }
  969. }
  970. else {
  971. if (r >= sizeof (*cmd)) {
  972. ret = RSPAMD_FUZZY_EPOCH11;
  973. }
  974. }
  975. break;
  976. case 3:
  977. if (cmd->shingles_count > 0) {
  978. if (r == sizeof (struct rspamd_fuzzy_shingle_cmd)) {
  979. ret = RSPAMD_FUZZY_EPOCH10;
  980. }
  981. }
  982. else {
  983. if (r == sizeof (*cmd)) {
  984. ret = RSPAMD_FUZZY_EPOCH10;
  985. }
  986. }
  987. break;
  988. case 2:
  989. /*
  990. * rspamd 0.8 has slightly different tokenizer then it might be not
  991. * 100% compatible
  992. */
  993. if (cmd->shingles_count > 0) {
  994. if (r == sizeof (struct rspamd_fuzzy_shingle_cmd)) {
  995. ret = RSPAMD_FUZZY_EPOCH8;
  996. }
  997. }
  998. else {
  999. ret = RSPAMD_FUZZY_EPOCH8;
  1000. }
  1001. break;
  1002. default:
  1003. break;
  1004. }
  1005. return ret;
  1006. }
  1007. static gboolean
  1008. rspamd_fuzzy_decrypt_command (struct fuzzy_session *s, guchar *buf, gsize buflen)
  1009. {
  1010. struct rspamd_fuzzy_encrypted_req_hdr hdr;
  1011. struct rspamd_cryptobox_pubkey *rk;
  1012. struct fuzzy_key *key;
  1013. if (s->ctx->default_key == NULL) {
  1014. msg_warn ("received encrypted request when encryption is not enabled");
  1015. return FALSE;
  1016. }
  1017. if (buflen < sizeof (hdr)) {
  1018. msg_warn ("XXX: should not be reached");
  1019. return FALSE;
  1020. }
  1021. memcpy (&hdr, buf, sizeof (hdr));
  1022. buf += sizeof (hdr);
  1023. buflen -= sizeof (hdr);
  1024. /* Try to find the desired key */
  1025. key = g_hash_table_lookup (s->ctx->keys, hdr.key_id);
  1026. if (key == NULL) {
  1027. /* Unknown key, assume default one */
  1028. key = s->ctx->default_key;
  1029. }
  1030. s->key_stat = key->stat;
  1031. /* Now process keypair */
  1032. rk = rspamd_pubkey_from_bin (hdr.pubkey, sizeof (hdr.pubkey),
  1033. RSPAMD_KEYPAIR_KEX, RSPAMD_CRYPTOBOX_MODE_25519);
  1034. if (rk == NULL) {
  1035. msg_err ("bad key");
  1036. return FALSE;
  1037. }
  1038. rspamd_keypair_cache_process (s->ctx->keypair_cache, key->key, rk);
  1039. /* Now decrypt request */
  1040. if (!rspamd_cryptobox_decrypt_nm_inplace (buf, buflen, hdr.nonce,
  1041. rspamd_pubkey_get_nm (rk, key->key),
  1042. hdr.mac, RSPAMD_CRYPTOBOX_MODE_25519)) {
  1043. msg_err ("decryption failed");
  1044. rspamd_pubkey_unref (rk);
  1045. return FALSE;
  1046. }
  1047. memcpy (s->nm, rspamd_pubkey_get_nm (rk, key->key), sizeof (s->nm));
  1048. rspamd_pubkey_unref (rk);
  1049. return TRUE;
  1050. }
  1051. static gboolean
  1052. rspamd_fuzzy_extensions_from_wire (struct fuzzy_session *s, guchar *buf, gsize buflen)
  1053. {
  1054. struct rspamd_fuzzy_cmd_extension *ext, *prev_ext;
  1055. guchar *storage, *p = buf, *end = buf + buflen;
  1056. gsize st_len = 0, n_ext = 0;
  1057. /* Read number of extensions to allocate array */
  1058. while (p < end) {
  1059. guchar cmd = *p++;
  1060. if (p < end) {
  1061. if (cmd == RSPAMD_FUZZY_EXT_SOURCE_DOMAIN) {
  1062. /* Next byte is buf length */
  1063. guchar dom_len = *p++;
  1064. if (dom_len <= (end - p)) {
  1065. st_len += dom_len;
  1066. n_ext ++;
  1067. }
  1068. else {
  1069. /* Truncation */
  1070. return FALSE;
  1071. }
  1072. p += dom_len;
  1073. }
  1074. else if (cmd == RSPAMD_FUZZY_EXT_SOURCE_IP4) {
  1075. if (end - p >= sizeof (in_addr_t)) {
  1076. p += sizeof (in_addr_t);
  1077. n_ext ++;
  1078. st_len += sizeof (in_addr_t);
  1079. }
  1080. else {
  1081. /* Truncation */
  1082. return FALSE;
  1083. }
  1084. p += sizeof (in_addr_t);
  1085. }
  1086. else if (cmd == RSPAMD_FUZZY_EXT_SOURCE_IP6) {
  1087. if (end - p >= sizeof (struct in6_addr)) {
  1088. p += sizeof (struct in6_addr);
  1089. n_ext ++;
  1090. st_len += sizeof (struct in6_addr);
  1091. }
  1092. else {
  1093. /* Truncation */
  1094. return FALSE;
  1095. }
  1096. p += sizeof (struct in6_addr);
  1097. }
  1098. }
  1099. else {
  1100. /* Truncated extension */
  1101. return FALSE;
  1102. }
  1103. }
  1104. if (n_ext > 0) {
  1105. p = buf;
  1106. /*
  1107. * Memory layout: n_ext of struct rspamd_fuzzy_cmd_extension
  1108. * payload for each extension in a continious data segment
  1109. */
  1110. storage = g_malloc (n_ext * sizeof (struct rspamd_fuzzy_cmd_extension) +
  1111. st_len);
  1112. guchar *data_buf = storage +
  1113. n_ext * sizeof (struct rspamd_fuzzy_cmd_extension);
  1114. ext = (struct rspamd_fuzzy_cmd_extension *)storage;
  1115. /* All validation has been done, so we can just go further */
  1116. while (p < end) {
  1117. prev_ext = ext;
  1118. guchar cmd = *p++;
  1119. if (cmd == RSPAMD_FUZZY_EXT_SOURCE_DOMAIN) {
  1120. /* Next byte is buf length */
  1121. guchar dom_len = *p++;
  1122. guchar *dest = data_buf;
  1123. ext->ext = RSPAMD_FUZZY_EXT_SOURCE_DOMAIN;
  1124. ext->next = ext + 1;
  1125. ext->length = dom_len;
  1126. ext->payload = dest;
  1127. memcpy (dest, p, dom_len);
  1128. p += dom_len;
  1129. data_buf += dom_len;
  1130. ext = ext->next;
  1131. }
  1132. else if (cmd == RSPAMD_FUZZY_EXT_SOURCE_IP4) {
  1133. guchar *dest = data_buf;
  1134. ext->ext = RSPAMD_FUZZY_EXT_SOURCE_IP4;
  1135. ext->next = ext + 1;
  1136. ext->length = sizeof (in_addr_t);
  1137. ext->payload = dest;
  1138. memcpy (dest, p, sizeof (in_addr_t));
  1139. p += sizeof (in_addr_t);
  1140. data_buf += sizeof (in_addr_t);
  1141. ext = ext->next;
  1142. }
  1143. else if (cmd == RSPAMD_FUZZY_EXT_SOURCE_IP6) {
  1144. guchar *dest = data_buf;
  1145. ext->ext = RSPAMD_FUZZY_EXT_SOURCE_IP6;
  1146. ext->next = ext + 1;
  1147. ext->length = sizeof (struct in6_addr);
  1148. ext->payload = dest;
  1149. memcpy (dest, p, sizeof (struct in6_addr));
  1150. p += sizeof (in_addr_t);
  1151. data_buf += sizeof (struct in6_addr);
  1152. ext = ext->next;
  1153. }
  1154. }
  1155. /* Last next should be NULL */
  1156. prev_ext->next = NULL;
  1157. /* Rewind to the begin */
  1158. ext = (struct rspamd_fuzzy_cmd_extension *)storage;
  1159. s->extensions = ext;
  1160. }
  1161. return TRUE;
  1162. }
  1163. static gboolean
  1164. rspamd_fuzzy_cmd_from_wire (guchar *buf, guint buflen, struct fuzzy_session *s)
  1165. {
  1166. enum rspamd_fuzzy_epoch epoch;
  1167. gboolean encrypted = FALSE;
  1168. if (buflen < sizeof (struct rspamd_fuzzy_cmd)) {
  1169. msg_debug ("truncated fuzzy command of size %d received", buflen);
  1170. return FALSE;
  1171. }
  1172. /* Now check encryption */
  1173. if (buflen >= sizeof (struct rspamd_fuzzy_encrypted_cmd)) {
  1174. if (memcmp (buf, fuzzy_encrypted_magic, sizeof (fuzzy_encrypted_magic)) == 0) {
  1175. /* Encrypted command */
  1176. encrypted = TRUE;
  1177. }
  1178. }
  1179. if (encrypted) {
  1180. /* Decrypt first */
  1181. if (!rspamd_fuzzy_decrypt_command (s, buf, buflen)) {
  1182. return FALSE;
  1183. }
  1184. else {
  1185. /*
  1186. * Advance buffer to skip encrypted header.
  1187. * Note that after rspamd_fuzzy_decrypt_command buf is unencrypted
  1188. */
  1189. buf += sizeof (struct rspamd_fuzzy_encrypted_req_hdr);
  1190. buflen -= sizeof (struct rspamd_fuzzy_encrypted_req_hdr);
  1191. }
  1192. }
  1193. /* Fill the normal command */
  1194. if (buflen < sizeof (s->cmd.basic)) {
  1195. msg_debug ("truncated normal fuzzy command of size %d received", buflen);
  1196. return FALSE;
  1197. }
  1198. memcpy (&s->cmd.basic, buf, sizeof (s->cmd.basic));
  1199. epoch = rspamd_fuzzy_command_valid (&s->cmd.basic, buflen);
  1200. if (epoch == RSPAMD_FUZZY_EPOCH_MAX) {
  1201. msg_debug ("invalid fuzzy command of size %d received", buflen);
  1202. return FALSE;
  1203. }
  1204. s->epoch = epoch;
  1205. /* Advance buf */
  1206. buf += sizeof (s->cmd.basic);
  1207. buflen -= sizeof (s->cmd.basic);
  1208. if (s->cmd.basic.shingles_count > 0) {
  1209. if (buflen >= sizeof (s->cmd.sgl)) {
  1210. /* Copy the shingles part */
  1211. memcpy (&s->cmd.sgl, buf, sizeof (s->cmd.sgl));
  1212. }
  1213. else {
  1214. /* Truncated stuff */
  1215. msg_debug ("truncated fuzzy shingles command of size %d received", buflen);
  1216. return FALSE;
  1217. }
  1218. buf += sizeof (s->cmd.sgl);
  1219. buflen -= sizeof (s->cmd.sgl);
  1220. if (encrypted) {
  1221. s->cmd_type = CMD_ENCRYPTED_SHINGLE;
  1222. }
  1223. else {
  1224. s->cmd_type = CMD_SHINGLE;
  1225. }
  1226. }
  1227. else {
  1228. if (encrypted) {
  1229. s->cmd_type = CMD_ENCRYPTED_NORMAL;
  1230. }
  1231. else {
  1232. s->cmd_type = CMD_NORMAL;
  1233. }
  1234. }
  1235. if (buflen > 0) {
  1236. /* Process possible extensions */
  1237. if (!rspamd_fuzzy_extensions_from_wire (s, buf, buflen)) {
  1238. msg_debug ("truncated fuzzy shingles command of size %d received", buflen);
  1239. return FALSE;
  1240. }
  1241. }
  1242. return TRUE;
  1243. }
  1244. static void
  1245. fuzzy_session_destroy (gpointer d)
  1246. {
  1247. struct fuzzy_session *session = d;
  1248. rspamd_inet_address_free (session->addr);
  1249. rspamd_explicit_memzero (session->nm, sizeof (session->nm));
  1250. session->worker->nconns--;
  1251. if (session->ip_stat) {
  1252. REF_RELEASE (session->ip_stat);
  1253. }
  1254. if (session->extensions) {
  1255. g_free (session->extensions);
  1256. }
  1257. g_free (session);
  1258. }
  1259. #define FUZZY_INPUT_BUFLEN 1024
  1260. #ifdef HAVE_RECVMMSG
  1261. #define MSGVEC_LEN 16
  1262. #else
  1263. #define MSGVEC_LEN 1
  1264. #endif
  1265. /*
  1266. * Accept new connection and construct task
  1267. */
  1268. static void
  1269. accept_fuzzy_socket (EV_P_ ev_io *w, int revents)
  1270. {
  1271. struct rspamd_worker *worker = (struct rspamd_worker *)w->data;
  1272. struct fuzzy_session *session;
  1273. gssize r, msg_len;
  1274. guint64 *nerrors;
  1275. struct iovec iovs[MSGVEC_LEN];
  1276. guint8 bufs[MSGVEC_LEN][FUZZY_INPUT_BUFLEN];
  1277. struct sockaddr_storage peer_sa[MSGVEC_LEN];
  1278. socklen_t salen = sizeof (peer_sa[0]);
  1279. #ifdef HAVE_RECVMMSG
  1280. #define MSG_FIELD(msg, field) msg.msg_hdr.field
  1281. struct mmsghdr msg[MSGVEC_LEN];
  1282. #else
  1283. #define MSG_FIELD(msg, field) msg.field
  1284. struct msghdr msg[MSGVEC_LEN];
  1285. #endif
  1286. memset (msg, 0, sizeof (*msg) * MSGVEC_LEN);
  1287. /* Prepare messages to receive */
  1288. for (int i = 0; i < MSGVEC_LEN; i ++) {
  1289. /* Prepare msghdr structs */
  1290. iovs[i].iov_base = bufs[i];
  1291. iovs[i].iov_len = sizeof (bufs[i]);
  1292. MSG_FIELD(msg[i], msg_name) = (void *)&peer_sa[i];
  1293. MSG_FIELD(msg[i], msg_namelen) = salen;
  1294. MSG_FIELD(msg[i], msg_iov) = &iovs[i];
  1295. MSG_FIELD(msg[i], msg_iovlen) = 1;
  1296. }
  1297. /* Got some data */
  1298. if (revents == EV_READ) {
  1299. for (;;) {
  1300. #ifdef HAVE_RECVMMSG
  1301. r = recvmmsg (w->fd, msg, MSGVEC_LEN, 0, NULL);
  1302. #else
  1303. r = recvmsg (w->fd, msg, 0);
  1304. #endif
  1305. if (r == -1) {
  1306. if (errno == EINTR) {
  1307. continue;
  1308. }
  1309. else if (errno == EAGAIN || errno == EWOULDBLOCK) {
  1310. return;
  1311. }
  1312. msg_err ("got error while reading from socket: %d, %s",
  1313. errno,
  1314. strerror (errno));
  1315. return;
  1316. }
  1317. #ifndef HAVE_RECVMMSG
  1318. msg_len = r; /* Save real length in bytes here */
  1319. r = 1; /* Assume that we have received a single message */
  1320. #endif
  1321. for (int i = 0; i < r; i ++) {
  1322. session = g_malloc0 (sizeof (*session));
  1323. REF_INIT_RETAIN (session, fuzzy_session_destroy);
  1324. session->worker = worker;
  1325. session->fd = w->fd;
  1326. session->ctx = worker->ctx;
  1327. session->time = (guint64) time (NULL);
  1328. session->addr = rspamd_inet_address_from_sa (MSG_FIELD(msg[i], msg_name),
  1329. MSG_FIELD(msg[i], msg_namelen));
  1330. worker->nconns++;
  1331. /* Each message can have its length in case of recvmmsg */
  1332. #ifdef HAVE_RECVMMSG
  1333. msg_len = msg[i].msg_len;
  1334. #endif
  1335. if (rspamd_fuzzy_cmd_from_wire (iovs[i].iov_base,
  1336. msg_len, session)) {
  1337. /* Check shingles count sanity */
  1338. rspamd_fuzzy_process_command (session);
  1339. }
  1340. else {
  1341. /* Discard input */
  1342. session->ctx->stat.invalid_requests ++;
  1343. msg_debug ("invalid fuzzy command of size %z received", r);
  1344. nerrors = rspamd_lru_hash_lookup (session->ctx->errors_ips,
  1345. session->addr, -1);
  1346. if (nerrors == NULL) {
  1347. nerrors = g_malloc (sizeof (*nerrors));
  1348. *nerrors = 1;
  1349. rspamd_lru_hash_insert (session->ctx->errors_ips,
  1350. rspamd_inet_address_copy (session->addr),
  1351. nerrors, -1, -1);
  1352. }
  1353. else {
  1354. *nerrors = *nerrors + 1;
  1355. }
  1356. }
  1357. REF_RELEASE (session);
  1358. }
  1359. #ifdef HAVE_RECVMMSG
  1360. /* Stop reading as we are using recvmmsg instead of recvmsg */
  1361. break;
  1362. #endif
  1363. }
  1364. }
  1365. }
  1366. static gboolean
  1367. rspamd_fuzzy_storage_periodic_callback (void *ud)
  1368. {
  1369. struct rspamd_fuzzy_storage_ctx *ctx = ud;
  1370. if (ctx->updates_pending->len > 0) {
  1371. rspamd_fuzzy_process_updates_queue (ctx, local_db_name, FALSE);
  1372. return TRUE;
  1373. }
  1374. return FALSE;
  1375. }
  1376. static gboolean
  1377. rspamd_fuzzy_storage_sync (struct rspamd_main *rspamd_main,
  1378. struct rspamd_worker *worker, gint fd,
  1379. gint attached_fd,
  1380. struct rspamd_control_command *cmd,
  1381. gpointer ud)
  1382. {
  1383. struct rspamd_fuzzy_storage_ctx *ctx = ud;
  1384. struct rspamd_control_reply rep;
  1385. rep.reply.fuzzy_sync.status = 0;
  1386. if (ctx->backend && worker->index == 0) {
  1387. rspamd_fuzzy_process_updates_queue (ctx, local_db_name, FALSE);
  1388. rspamd_fuzzy_backend_start_update (ctx->backend, ctx->sync_timeout,
  1389. rspamd_fuzzy_storage_periodic_callback, ctx);
  1390. }
  1391. if (write (fd, &rep, sizeof (rep)) != sizeof (rep)) {
  1392. msg_err ("cannot write reply to the control socket: %s",
  1393. strerror (errno));
  1394. }
  1395. return TRUE;
  1396. }
  1397. static gboolean
  1398. rspamd_fuzzy_storage_reload (struct rspamd_main *rspamd_main,
  1399. struct rspamd_worker *worker, gint fd,
  1400. gint attached_fd,
  1401. struct rspamd_control_command *cmd,
  1402. gpointer ud)
  1403. {
  1404. struct rspamd_fuzzy_storage_ctx *ctx = ud;
  1405. GError *err = NULL;
  1406. struct rspamd_control_reply rep;
  1407. msg_info ("reloading fuzzy storage after receiving reload command");
  1408. if (ctx->backend) {
  1409. /* Close backend and reopen it one more time */
  1410. rspamd_fuzzy_backend_close (ctx->backend);
  1411. }
  1412. memset (&rep, 0, sizeof (rep));
  1413. rep.type = RSPAMD_CONTROL_RELOAD;
  1414. if ((ctx->backend = rspamd_fuzzy_backend_create (ctx->event_loop,
  1415. worker->cf->options, rspamd_main->cfg,
  1416. &err)) == NULL) {
  1417. msg_err ("cannot open backend after reload: %e", err);
  1418. g_error_free (err);
  1419. rep.reply.reload.status = err->code;
  1420. }
  1421. else {
  1422. rep.reply.reload.status = 0;
  1423. }
  1424. if (ctx->backend && worker->index == 0) {
  1425. rspamd_fuzzy_backend_start_update (ctx->backend, ctx->sync_timeout,
  1426. rspamd_fuzzy_storage_periodic_callback, ctx);
  1427. }
  1428. if (write (fd, &rep, sizeof (rep)) != sizeof (rep)) {
  1429. msg_err ("cannot write reply to the control socket: %s",
  1430. strerror (errno));
  1431. }
  1432. return TRUE;
  1433. }
  1434. static ucl_object_t *
  1435. rspamd_fuzzy_storage_stat_key (struct fuzzy_key_stat *key_stat)
  1436. {
  1437. ucl_object_t *res;
  1438. res = ucl_object_typed_new (UCL_OBJECT);
  1439. ucl_object_insert_key (res, ucl_object_fromint (key_stat->checked),
  1440. "checked", 0, false);
  1441. ucl_object_insert_key (res, ucl_object_fromint (key_stat->matched),
  1442. "matched", 0, false);
  1443. ucl_object_insert_key (res, ucl_object_fromint (key_stat->added),
  1444. "added", 0, false);
  1445. ucl_object_insert_key (res, ucl_object_fromint (key_stat->deleted),
  1446. "deleted", 0, false);
  1447. ucl_object_insert_key (res, ucl_object_fromint (key_stat->errors),
  1448. "errors", 0, false);
  1449. return res;
  1450. }
  1451. static ucl_object_t *
  1452. rspamd_fuzzy_stat_to_ucl (struct rspamd_fuzzy_storage_ctx *ctx, gboolean ip_stat)
  1453. {
  1454. struct fuzzy_key_stat *key_stat;
  1455. GHashTableIter it;
  1456. struct fuzzy_key *key;
  1457. ucl_object_t *obj, *keys_obj, *elt, *ip_elt, *ip_cur;
  1458. gpointer k, v;
  1459. gint i;
  1460. gchar keyname[17];
  1461. obj = ucl_object_typed_new (UCL_OBJECT);
  1462. keys_obj = ucl_object_typed_new (UCL_OBJECT);
  1463. g_hash_table_iter_init (&it, ctx->keys);
  1464. while (g_hash_table_iter_next (&it, &k, &v)) {
  1465. key = v;
  1466. key_stat = key->stat;
  1467. if (key_stat) {
  1468. rspamd_snprintf (keyname, sizeof (keyname), "%8bs", k);
  1469. elt = rspamd_fuzzy_storage_stat_key (key_stat);
  1470. if (key_stat->last_ips && ip_stat) {
  1471. i = 0;
  1472. ip_elt = ucl_object_typed_new (UCL_OBJECT);
  1473. while ((i = rspamd_lru_hash_foreach (key_stat->last_ips,
  1474. i, &k, &v)) != -1) {
  1475. ip_cur = rspamd_fuzzy_storage_stat_key (v);
  1476. ucl_object_insert_key (ip_elt, ip_cur,
  1477. rspamd_inet_address_to_string (k), 0, true);
  1478. }
  1479. ucl_object_insert_key (elt, ip_elt, "ips", 0, false);
  1480. }
  1481. ucl_object_insert_key (keys_obj, elt, keyname, 0, true);
  1482. }
  1483. }
  1484. ucl_object_insert_key (obj, keys_obj, "keys", 0, false);
  1485. /* Now generic stats */
  1486. ucl_object_insert_key (obj,
  1487. ucl_object_fromint (ctx->stat.fuzzy_hashes),
  1488. "fuzzy_stored",
  1489. 0,
  1490. false);
  1491. ucl_object_insert_key (obj,
  1492. ucl_object_fromint (ctx->stat.fuzzy_hashes_expired),
  1493. "fuzzy_expired",
  1494. 0,
  1495. false);
  1496. ucl_object_insert_key (obj,
  1497. ucl_object_fromint (ctx->stat.invalid_requests),
  1498. "invalid_requests",
  1499. 0,
  1500. false);
  1501. if (ctx->errors_ips && ip_stat) {
  1502. i = 0;
  1503. ip_elt = ucl_object_typed_new (UCL_OBJECT);
  1504. while ((i = rspamd_lru_hash_foreach (ctx->errors_ips, i, &k, &v)) != -1) {
  1505. ucl_object_insert_key (ip_elt,
  1506. ucl_object_fromint (*(guint64 *)v),
  1507. rspamd_inet_address_to_string (k), 0, true);
  1508. }
  1509. ucl_object_insert_key (obj,
  1510. ip_elt,
  1511. "errors_ips",
  1512. 0,
  1513. false);
  1514. }
  1515. /* Checked by epoch */
  1516. elt = ucl_object_typed_new (UCL_ARRAY);
  1517. for (i = RSPAMD_FUZZY_EPOCH6; i < RSPAMD_FUZZY_EPOCH_MAX; i++) {
  1518. ucl_array_append (elt,
  1519. ucl_object_fromint (ctx->stat.fuzzy_hashes_checked[i]));
  1520. }
  1521. ucl_object_insert_key (obj, elt, "fuzzy_checked", 0, false);
  1522. /* Shingles by epoch */
  1523. elt = ucl_object_typed_new (UCL_ARRAY);
  1524. for (i = RSPAMD_FUZZY_EPOCH6; i < RSPAMD_FUZZY_EPOCH_MAX; i++) {
  1525. ucl_array_append (elt,
  1526. ucl_object_fromint (ctx->stat.fuzzy_shingles_checked[i]));
  1527. }
  1528. ucl_object_insert_key (obj, elt, "fuzzy_shingles", 0, false);
  1529. /* Matched by epoch */
  1530. elt = ucl_object_typed_new (UCL_ARRAY);
  1531. for (i = RSPAMD_FUZZY_EPOCH6; i < RSPAMD_FUZZY_EPOCH_MAX; i++) {
  1532. ucl_array_append (elt,
  1533. ucl_object_fromint (ctx->stat.fuzzy_hashes_found[i]));
  1534. }
  1535. ucl_object_insert_key (obj, elt, "fuzzy_found", 0, false);
  1536. return obj;
  1537. }
  1538. static int
  1539. lua_fuzzy_add_pre_handler (lua_State *L)
  1540. {
  1541. struct rspamd_worker *wrk = *(struct rspamd_worker **)
  1542. rspamd_lua_check_udata (L, 1, "rspamd{worker}");
  1543. struct rspamd_fuzzy_storage_ctx *ctx;
  1544. if (wrk && lua_isfunction (L, 2)) {
  1545. ctx = (struct rspamd_fuzzy_storage_ctx *)wrk->ctx;
  1546. if (ctx->lua_pre_handler_cbref != -1) {
  1547. /* Should not happen */
  1548. luaL_unref (L, LUA_REGISTRYINDEX, ctx->lua_pre_handler_cbref);
  1549. }
  1550. lua_pushvalue (L, 2);
  1551. ctx->lua_pre_handler_cbref = luaL_ref (L, LUA_REGISTRYINDEX);
  1552. }
  1553. else {
  1554. return luaL_error (L, "invalid arguments, worker + function are expected");
  1555. }
  1556. return 0;
  1557. }
  1558. static int
  1559. lua_fuzzy_add_post_handler (lua_State *L)
  1560. {
  1561. struct rspamd_worker *wrk = *(struct rspamd_worker **)
  1562. rspamd_lua_check_udata (L, 1, "rspamd{worker}");
  1563. struct rspamd_fuzzy_storage_ctx *ctx;
  1564. if (wrk && lua_isfunction (L, 2)) {
  1565. ctx = (struct rspamd_fuzzy_storage_ctx *)wrk->ctx;
  1566. if (ctx->lua_post_handler_cbref != -1) {
  1567. /* Should not happen */
  1568. luaL_unref (L, LUA_REGISTRYINDEX, ctx->lua_post_handler_cbref);
  1569. }
  1570. lua_pushvalue (L, 2);
  1571. ctx->lua_post_handler_cbref = luaL_ref (L, LUA_REGISTRYINDEX);
  1572. }
  1573. else {
  1574. return luaL_error (L, "invalid arguments, worker + function are expected");
  1575. }
  1576. return 0;
  1577. }
  1578. static gboolean
  1579. rspamd_fuzzy_storage_stat (struct rspamd_main *rspamd_main,
  1580. struct rspamd_worker *worker, gint fd,
  1581. gint attached_fd,
  1582. struct rspamd_control_command *cmd,
  1583. gpointer ud)
  1584. {
  1585. struct rspamd_fuzzy_storage_ctx *ctx = ud;
  1586. struct rspamd_control_reply rep;
  1587. ucl_object_t *obj;
  1588. struct ucl_emitter_functions *emit_subr;
  1589. guchar fdspace[CMSG_SPACE(sizeof (int))];
  1590. struct iovec iov;
  1591. struct msghdr msg;
  1592. struct cmsghdr *cmsg;
  1593. gint outfd = -1;
  1594. gchar tmppath[PATH_MAX];
  1595. memset (&rep, 0, sizeof (rep));
  1596. rep.type = RSPAMD_CONTROL_FUZZY_STAT;
  1597. rspamd_snprintf (tmppath, sizeof (tmppath), "%s%c%s-XXXXXXXXXX",
  1598. rspamd_main->cfg->temp_dir, G_DIR_SEPARATOR, "fuzzy-stat");
  1599. if ((outfd = mkstemp (tmppath)) == -1) {
  1600. rep.reply.fuzzy_stat.status = errno;
  1601. msg_info_main ("cannot make temporary stat file for fuzzy stat: %s",
  1602. strerror (errno));
  1603. }
  1604. else {
  1605. rep.reply.fuzzy_stat.status = 0;
  1606. memcpy (rep.reply.fuzzy_stat.storage_id,
  1607. rspamd_fuzzy_backend_id (ctx->backend),
  1608. sizeof (rep.reply.fuzzy_stat.storage_id));
  1609. obj = rspamd_fuzzy_stat_to_ucl (ctx, TRUE);
  1610. emit_subr = ucl_object_emit_fd_funcs (outfd);
  1611. ucl_object_emit_full (obj, UCL_EMIT_JSON_COMPACT, emit_subr, NULL);
  1612. ucl_object_emit_funcs_free (emit_subr);
  1613. ucl_object_unref (obj);
  1614. /* Rewind output file */
  1615. close (outfd);
  1616. outfd = open (tmppath, O_RDONLY);
  1617. unlink (tmppath);
  1618. }
  1619. /* Now we can send outfd and status message */
  1620. memset (&msg, 0, sizeof (msg));
  1621. /* Attach fd to the message */
  1622. if (outfd != -1) {
  1623. memset (fdspace, 0, sizeof (fdspace));
  1624. msg.msg_control = fdspace;
  1625. msg.msg_controllen = sizeof (fdspace);
  1626. cmsg = CMSG_FIRSTHDR (&msg);
  1627. if (cmsg) {
  1628. cmsg->cmsg_level = SOL_SOCKET;
  1629. cmsg->cmsg_type = SCM_RIGHTS;
  1630. cmsg->cmsg_len = CMSG_LEN (sizeof (int));
  1631. memcpy (CMSG_DATA (cmsg), &outfd, sizeof (int));
  1632. }
  1633. }
  1634. iov.iov_base = &rep;
  1635. iov.iov_len = sizeof (rep);
  1636. msg.msg_iov = &iov;
  1637. msg.msg_iovlen = 1;
  1638. if (sendmsg (fd, &msg, 0) == -1) {
  1639. msg_err_main ("cannot send fuzzy stat: %s", strerror (errno));
  1640. }
  1641. if (outfd != -1) {
  1642. close (outfd);
  1643. }
  1644. return TRUE;
  1645. }
  1646. static gboolean
  1647. fuzzy_parse_keypair (rspamd_mempool_t *pool,
  1648. const ucl_object_t *obj,
  1649. gpointer ud,
  1650. struct rspamd_rcl_section *section,
  1651. GError **err)
  1652. {
  1653. struct rspamd_rcl_struct_parser *pd = ud;
  1654. struct rspamd_fuzzy_storage_ctx *ctx;
  1655. struct rspamd_cryptobox_keypair *kp;
  1656. struct fuzzy_key_stat *keystat;
  1657. struct fuzzy_key *key;
  1658. const ucl_object_t *cur;
  1659. const guchar *pk;
  1660. ucl_object_iter_t it = NULL;
  1661. gboolean ret;
  1662. ctx = pd->user_struct;
  1663. pd->offset = G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx, default_keypair);
  1664. /*
  1665. * Single key
  1666. */
  1667. if (ucl_object_type (obj) == UCL_STRING || ucl_object_type (obj)
  1668. == UCL_OBJECT) {
  1669. ret = rspamd_rcl_parse_struct_keypair (pool, obj, pd, section, err);
  1670. if (!ret) {
  1671. return ret;
  1672. }
  1673. /* Insert key to the hash table */
  1674. kp = ctx->default_keypair;
  1675. if (kp == NULL) {
  1676. return FALSE;
  1677. }
  1678. if (rspamd_keypair_alg (kp) != RSPAMD_CRYPTOBOX_MODE_25519 ||
  1679. rspamd_keypair_type (kp) != RSPAMD_KEYPAIR_KEX) {
  1680. return FALSE;
  1681. }
  1682. key = g_malloc0 (sizeof (*key));
  1683. key->key = kp;
  1684. keystat = g_malloc0 (sizeof (*keystat));
  1685. REF_INIT_RETAIN (keystat, fuzzy_key_stat_dtor);
  1686. /* Hash of ip -> fuzzy_key_stat */
  1687. keystat->last_ips = rspamd_lru_hash_new_full (1024,
  1688. (GDestroyNotify) rspamd_inet_address_free,
  1689. fuzzy_key_stat_unref,
  1690. rspamd_inet_address_hash, rspamd_inet_address_equal);
  1691. key->stat = keystat;
  1692. pk = rspamd_keypair_component (kp, RSPAMD_KEYPAIR_COMPONENT_PK,
  1693. NULL);
  1694. g_hash_table_insert (ctx->keys, (gpointer)pk, key);
  1695. ctx->default_key = key;
  1696. msg_info_pool ("loaded keypair %*xs", 8, pk);
  1697. }
  1698. else if (ucl_object_type (obj) == UCL_ARRAY) {
  1699. while ((cur = ucl_object_iterate (obj, &it, true)) != NULL) {
  1700. if (!fuzzy_parse_keypair (pool, cur, pd, section, err)) {
  1701. msg_err_pool ("cannot parse keypair");
  1702. }
  1703. }
  1704. }
  1705. return TRUE;
  1706. }
  1707. static guint
  1708. fuzzy_kp_hash (gconstpointer p)
  1709. {
  1710. return *(guint *)p;
  1711. }
  1712. static gboolean
  1713. fuzzy_kp_equal (gconstpointer a, gconstpointer b)
  1714. {
  1715. const guchar *pa = a, *pb = b;
  1716. return (memcmp (pa, pb, RSPAMD_FUZZY_KEYLEN) == 0);
  1717. }
  1718. gpointer
  1719. init_fuzzy (struct rspamd_config *cfg)
  1720. {
  1721. struct rspamd_fuzzy_storage_ctx *ctx;
  1722. GQuark type;
  1723. type = g_quark_try_string ("fuzzy");
  1724. ctx = rspamd_mempool_alloc0 (cfg->cfg_pool,
  1725. sizeof (struct rspamd_fuzzy_storage_ctx));
  1726. ctx->magic = rspamd_fuzzy_storage_magic;
  1727. ctx->sync_timeout = DEFAULT_SYNC_TIMEOUT;
  1728. ctx->keypair_cache_size = DEFAULT_KEYPAIR_CACHE_SIZE;
  1729. ctx->lua_pre_handler_cbref = -1;
  1730. ctx->lua_post_handler_cbref = -1;
  1731. ctx->keys = g_hash_table_new_full (fuzzy_kp_hash, fuzzy_kp_equal,
  1732. NULL, fuzzy_key_dtor);
  1733. rspamd_mempool_add_destructor (cfg->cfg_pool,
  1734. (rspamd_mempool_destruct_t)g_hash_table_unref, ctx->keys);
  1735. ctx->errors_ips = rspamd_lru_hash_new_full (1024,
  1736. (GDestroyNotify) rspamd_inet_address_free, g_free,
  1737. rspamd_inet_address_hash, rspamd_inet_address_equal);
  1738. rspamd_mempool_add_destructor (cfg->cfg_pool,
  1739. (rspamd_mempool_destruct_t)rspamd_lru_hash_destroy, ctx->errors_ips);
  1740. ctx->cfg = cfg;
  1741. ctx->updates_maxfail = DEFAULT_UPDATES_MAXFAIL;
  1742. ctx->leaky_bucket_mask = DEFAULT_BUCKET_MASK;
  1743. ctx->leaky_bucket_ttl = DEFAULT_BUCKET_TTL;
  1744. ctx->max_buckets = DEFAULT_MAX_BUCKETS;
  1745. ctx->leaky_bucket_burst = NAN;
  1746. ctx->leaky_bucket_rate = NAN;
  1747. rspamd_rcl_register_worker_option (cfg,
  1748. type,
  1749. "sync",
  1750. rspamd_rcl_parse_struct_time,
  1751. ctx,
  1752. G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx,
  1753. sync_timeout),
  1754. RSPAMD_CL_FLAG_TIME_FLOAT,
  1755. "Time to perform database sync, default: "
  1756. G_STRINGIFY (DEFAULT_SYNC_TIMEOUT) " seconds");
  1757. rspamd_rcl_register_worker_option (cfg,
  1758. type,
  1759. "expire",
  1760. rspamd_rcl_parse_struct_time,
  1761. ctx,
  1762. G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx,
  1763. expire),
  1764. RSPAMD_CL_FLAG_TIME_FLOAT,
  1765. "Default expire time for hashes, default: "
  1766. G_STRINGIFY (DEFAULT_EXPIRE) " seconds");
  1767. rspamd_rcl_register_worker_option (cfg,
  1768. type,
  1769. "allow_update",
  1770. rspamd_rcl_parse_struct_ucl,
  1771. ctx,
  1772. G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx, update_map),
  1773. 0,
  1774. "Allow modifications from the following IP addresses");
  1775. rspamd_rcl_register_worker_option (cfg,
  1776. type,
  1777. "keypair",
  1778. fuzzy_parse_keypair,
  1779. ctx,
  1780. 0,
  1781. RSPAMD_CL_FLAG_MULTIPLE,
  1782. "Encryption keypair (can be repeated for different keys)");
  1783. rspamd_rcl_register_worker_option (cfg,
  1784. type,
  1785. "keypair_cache_size",
  1786. rspamd_rcl_parse_struct_integer,
  1787. ctx,
  1788. G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx,
  1789. keypair_cache_size),
  1790. RSPAMD_CL_FLAG_UINT,
  1791. "Size of keypairs cache, default: "
  1792. G_STRINGIFY (DEFAULT_KEYPAIR_CACHE_SIZE));
  1793. rspamd_rcl_register_worker_option (cfg,
  1794. type,
  1795. "encrypted_only",
  1796. rspamd_rcl_parse_struct_boolean,
  1797. ctx,
  1798. G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx, encrypted_only),
  1799. 0,
  1800. "Allow encrypted requests only (and forbid all unknown keys or plaintext requests)");
  1801. rspamd_rcl_register_worker_option (cfg,
  1802. type,
  1803. "dedicated_update_worker",
  1804. rspamd_rcl_parse_struct_boolean,
  1805. ctx,
  1806. G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx, dedicated_update_worker),
  1807. 0,
  1808. "Use worker 0 for updates only");
  1809. rspamd_rcl_register_worker_option (cfg,
  1810. type,
  1811. "read_only",
  1812. rspamd_rcl_parse_struct_boolean,
  1813. ctx,
  1814. G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx, read_only),
  1815. 0,
  1816. "Work in read only mode");
  1817. rspamd_rcl_register_worker_option (cfg,
  1818. type,
  1819. "blocked",
  1820. rspamd_rcl_parse_struct_ucl,
  1821. ctx,
  1822. G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx, blocked_map),
  1823. 0,
  1824. "Block requests from specific networks");
  1825. rspamd_rcl_register_worker_option (cfg,
  1826. type,
  1827. "updates_maxfail",
  1828. rspamd_rcl_parse_struct_integer,
  1829. ctx,
  1830. G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx, updates_maxfail),
  1831. RSPAMD_CL_FLAG_UINT,
  1832. "Maximum number of updates to be failed before discarding");
  1833. rspamd_rcl_register_worker_option (cfg,
  1834. type,
  1835. "skip_hashes",
  1836. rspamd_rcl_parse_struct_ucl,
  1837. ctx,
  1838. G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx, skip_map),
  1839. 0,
  1840. "Skip specific hashes from the map");
  1841. /* Ratelimits */
  1842. rspamd_rcl_register_worker_option (cfg,
  1843. type,
  1844. "ratelimit_whitelist",
  1845. rspamd_rcl_parse_struct_ucl,
  1846. ctx,
  1847. G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx, ratelimit_whitelist_map),
  1848. 0,
  1849. "Skip specific addresses from rate limiting");
  1850. rspamd_rcl_register_worker_option (cfg,
  1851. type,
  1852. "ratelimit_max_buckets",
  1853. rspamd_rcl_parse_struct_integer,
  1854. ctx,
  1855. G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx, max_buckets),
  1856. RSPAMD_CL_FLAG_UINT,
  1857. "Maximum number of leaky buckets (default: " G_STRINGIFY(DEFAULT_MAX_BUCKETS) ")");
  1858. rspamd_rcl_register_worker_option (cfg,
  1859. type,
  1860. "ratelimit_network_mask",
  1861. rspamd_rcl_parse_struct_integer,
  1862. ctx,
  1863. G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx, leaky_bucket_mask),
  1864. RSPAMD_CL_FLAG_UINT,
  1865. "Network mask to apply for IPv4 rate addresses (default: " G_STRINGIFY(DEFAULT_BUCKET_MASK) ")");
  1866. rspamd_rcl_register_worker_option (cfg,
  1867. type,
  1868. "ratelimit_bucket_ttl",
  1869. rspamd_rcl_parse_struct_time,
  1870. ctx,
  1871. G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx, leaky_bucket_ttl),
  1872. RSPAMD_CL_FLAG_TIME_INTEGER,
  1873. "Time to live for ratelimit element (default: " G_STRINGIFY(DEFAULT_BUCKET_TTL) ")");
  1874. rspamd_rcl_register_worker_option (cfg,
  1875. type,
  1876. "ratelimit_rate",
  1877. rspamd_rcl_parse_struct_double,
  1878. ctx,
  1879. G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx, leaky_bucket_rate),
  1880. 0,
  1881. "Leak rate in requests per second");
  1882. rspamd_rcl_register_worker_option (cfg,
  1883. type,
  1884. "ratelimit_burst",
  1885. rspamd_rcl_parse_struct_double,
  1886. ctx,
  1887. G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx, leaky_bucket_burst),
  1888. 0,
  1889. "Peak value for ratelimit bucket");
  1890. rspamd_rcl_register_worker_option (cfg,
  1891. type,
  1892. "ratelimit_log_only",
  1893. rspamd_rcl_parse_struct_boolean,
  1894. ctx,
  1895. G_STRUCT_OFFSET (struct rspamd_fuzzy_storage_ctx, ratelimit_log_only),
  1896. 0,
  1897. "Don't really ban on ratelimit reaching, just log");
  1898. return ctx;
  1899. }
  1900. static void
  1901. rspamd_fuzzy_peer_io (EV_P_ ev_io *w, int revents)
  1902. {
  1903. struct fuzzy_peer_cmd cmd;
  1904. struct rspamd_fuzzy_storage_ctx *ctx =
  1905. (struct rspamd_fuzzy_storage_ctx *)w->data;
  1906. gssize r;
  1907. for (;;) {
  1908. r = read (w->fd, &cmd, sizeof (cmd));
  1909. if (r != sizeof (cmd)) {
  1910. if (errno == EINTR) {
  1911. continue;
  1912. }
  1913. if (errno != EAGAIN) {
  1914. msg_err ("cannot read command from peers: %s", strerror (errno));
  1915. }
  1916. break;
  1917. }
  1918. else {
  1919. g_array_append_val (ctx->updates_pending, cmd);
  1920. }
  1921. }
  1922. }
  1923. static void
  1924. fuzzy_peer_rep (struct rspamd_worker *worker,
  1925. struct rspamd_srv_reply *rep, gint rep_fd,
  1926. gpointer ud)
  1927. {
  1928. struct rspamd_fuzzy_storage_ctx *ctx = ud;
  1929. GList *cur;
  1930. struct rspamd_worker_listen_socket *ls;
  1931. struct rspamd_worker_accept_event *ac_ev;
  1932. ctx->peer_fd = rep_fd;
  1933. if (rep_fd == -1) {
  1934. msg_err ("cannot receive peer fd from the main process");
  1935. exit (EXIT_FAILURE);
  1936. }
  1937. else {
  1938. rspamd_socket_nonblocking (rep_fd);
  1939. }
  1940. msg_info ("got peer fd reply from the main process");
  1941. /* Start listening */
  1942. cur = worker->cf->listen_socks;
  1943. while (cur) {
  1944. ls = cur->data;
  1945. if (ls->fd != -1) {
  1946. msg_info ("start listening on %s",
  1947. rspamd_inet_address_to_string_pretty (ls->addr));
  1948. if (ls->type == RSPAMD_WORKER_SOCKET_UDP) {
  1949. ac_ev = g_malloc0 (sizeof (*ac_ev));
  1950. ac_ev->accept_ev.data = worker;
  1951. ac_ev->event_loop = ctx->event_loop;
  1952. ev_io_init (&ac_ev->accept_ev, accept_fuzzy_socket, ls->fd,
  1953. EV_READ);
  1954. ev_io_start (ctx->event_loop, &ac_ev->accept_ev);
  1955. DL_APPEND (worker->accept_events, ac_ev);
  1956. }
  1957. else {
  1958. /* We allow TCP listeners only for a update worker */
  1959. g_assert_not_reached ();
  1960. }
  1961. }
  1962. cur = g_list_next (cur);
  1963. }
  1964. if (ctx->peer_fd != -1) {
  1965. if (worker->index == 0) {
  1966. /* Listen for peer requests */
  1967. shutdown (ctx->peer_fd, SHUT_WR);
  1968. ctx->peer_ev.data = ctx;
  1969. ev_io_init (&ctx->peer_ev, rspamd_fuzzy_peer_io, ctx->peer_fd, EV_READ);
  1970. ev_io_start (ctx->event_loop, &ctx->peer_ev);
  1971. }
  1972. else {
  1973. shutdown (ctx->peer_fd, SHUT_RD);
  1974. }
  1975. }
  1976. }
  1977. /*
  1978. * Start worker process
  1979. */
  1980. __attribute__((noreturn))
  1981. void
  1982. start_fuzzy (struct rspamd_worker *worker)
  1983. {
  1984. struct rspamd_fuzzy_storage_ctx *ctx = worker->ctx;
  1985. GError *err = NULL;
  1986. struct rspamd_srv_command srv_cmd;
  1987. struct rspamd_config *cfg = worker->srv->cfg;
  1988. g_assert (rspamd_worker_check_context (worker->ctx, rspamd_fuzzy_storage_magic));
  1989. ctx->event_loop = rspamd_prepare_worker (worker,
  1990. "fuzzy",
  1991. NULL);
  1992. ctx->peer_fd = -1;
  1993. ctx->worker = worker;
  1994. ctx->cfg = worker->srv->cfg;
  1995. ctx->resolver = rspamd_dns_resolver_init (worker->srv->logger,
  1996. ctx->event_loop,
  1997. worker->srv->cfg);
  1998. rspamd_upstreams_library_config (worker->srv->cfg, ctx->cfg->ups_ctx,
  1999. ctx->event_loop, ctx->resolver->r);
  2000. /* Since this worker uses maps it needs a valid HTTP context */
  2001. ctx->http_ctx = rspamd_http_context_create (ctx->cfg, ctx->event_loop,
  2002. ctx->cfg->ups_ctx);
  2003. if (ctx->keypair_cache_size > 0) {
  2004. /* Create keypairs cache */
  2005. ctx->keypair_cache = rspamd_keypair_cache_new (ctx->keypair_cache_size);
  2006. }
  2007. if ((ctx->backend = rspamd_fuzzy_backend_create (ctx->event_loop,
  2008. worker->cf->options, cfg, &err)) == NULL) {
  2009. msg_err ("cannot open backend: %e", err);
  2010. if (err) {
  2011. g_error_free (err);
  2012. }
  2013. exit (EXIT_SUCCESS);
  2014. }
  2015. rspamd_fuzzy_backend_count (ctx->backend, fuzzy_count_callback, ctx);
  2016. if (worker->index == 0) {
  2017. ctx->updates_pending = g_array_sized_new (FALSE, FALSE,
  2018. sizeof (struct fuzzy_peer_cmd), 1024);
  2019. rspamd_fuzzy_backend_start_update (ctx->backend, ctx->sync_timeout,
  2020. rspamd_fuzzy_storage_periodic_callback, ctx);
  2021. if (ctx->dedicated_update_worker && worker->cf->count > 1) {
  2022. msg_info_config ("stop serving clients request in dedicated update mode");
  2023. rspamd_worker_stop_accept (worker);
  2024. GList *cur = worker->cf->listen_socks;
  2025. while (cur) {
  2026. struct rspamd_worker_listen_socket *ls =
  2027. (struct rspamd_worker_listen_socket *)cur->data;
  2028. if (ls->fd != -1) {
  2029. close (ls->fd);
  2030. }
  2031. cur = g_list_next (cur);
  2032. }
  2033. }
  2034. }
  2035. ctx->stat_ev.data = ctx;
  2036. ev_timer_init (&ctx->stat_ev, rspamd_fuzzy_stat_callback, ctx->sync_timeout,
  2037. ctx->sync_timeout);
  2038. ev_timer_start (ctx->event_loop, &ctx->stat_ev);
  2039. /* Register custom reload and stat commands for the control socket */
  2040. rspamd_control_worker_add_cmd_handler (worker, RSPAMD_CONTROL_RELOAD,
  2041. rspamd_fuzzy_storage_reload, ctx);
  2042. rspamd_control_worker_add_cmd_handler (worker, RSPAMD_CONTROL_FUZZY_STAT,
  2043. rspamd_fuzzy_storage_stat, ctx);
  2044. rspamd_control_worker_add_cmd_handler (worker, RSPAMD_CONTROL_FUZZY_SYNC,
  2045. rspamd_fuzzy_storage_sync, ctx);
  2046. /* Create radix trees */
  2047. if (ctx->update_map != NULL) {
  2048. rspamd_config_radix_from_ucl (worker->srv->cfg, ctx->update_map,
  2049. "Allow fuzzy updates from specified addresses",
  2050. &ctx->update_ips, NULL, worker);
  2051. }
  2052. if (ctx->skip_map != NULL) {
  2053. struct rspamd_map *m;
  2054. if ((m = rspamd_map_add_from_ucl (cfg, ctx->skip_map,
  2055. "Skip hashes",
  2056. rspamd_kv_list_read,
  2057. rspamd_kv_list_fin,
  2058. rspamd_kv_list_dtor,
  2059. (void **)&ctx->skip_hashes,
  2060. worker, RSPAMD_MAP_DEFAULT)) == NULL) {
  2061. msg_warn_config ("cannot load hashes list from %s",
  2062. ucl_object_tostring (ctx->skip_map));
  2063. }
  2064. else {
  2065. m->active_http = TRUE;
  2066. }
  2067. }
  2068. if (ctx->blocked_map != NULL) {
  2069. rspamd_config_radix_from_ucl (worker->srv->cfg, ctx->blocked_map,
  2070. "Block fuzzy requests from the specific IPs",
  2071. &ctx->blocked_ips,
  2072. NULL,
  2073. worker);
  2074. }
  2075. /* Create radix trees */
  2076. if (ctx->ratelimit_whitelist_map != NULL) {
  2077. rspamd_config_radix_from_ucl (worker->srv->cfg, ctx->ratelimit_whitelist_map,
  2078. "Skip ratelimits from specific ip addresses/networks",
  2079. &ctx->ratelimit_whitelist,
  2080. NULL,
  2081. worker);
  2082. }
  2083. /* Ratelimits */
  2084. if (!isnan (ctx->leaky_bucket_rate) && !isnan (ctx->leaky_bucket_burst)) {
  2085. ctx->ratelimit_buckets = rspamd_lru_hash_new_full (ctx->max_buckets,
  2086. NULL, fuzzy_rl_bucket_free,
  2087. rspamd_inet_address_hash, rspamd_inet_address_equal);
  2088. }
  2089. /* Maps events */
  2090. ctx->resolver = rspamd_dns_resolver_init (worker->srv->logger,
  2091. ctx->event_loop,
  2092. worker->srv->cfg);
  2093. rspamd_map_watch (worker->srv->cfg, ctx->event_loop,
  2094. ctx->resolver, worker, RSPAMD_MAP_WATCH_WORKER);
  2095. /* Get peer pipe */
  2096. memset (&srv_cmd, 0, sizeof (srv_cmd));
  2097. srv_cmd.type = RSPAMD_SRV_SOCKETPAIR;
  2098. srv_cmd.cmd.spair.af = SOCK_DGRAM;
  2099. srv_cmd.cmd.spair.pair_num = worker->index;
  2100. memset (srv_cmd.cmd.spair.pair_id, 0, sizeof (srv_cmd.cmd.spair.pair_id));
  2101. /* 6 bytes of id (including \0) and bind_conf id */
  2102. G_STATIC_ASSERT (sizeof (srv_cmd.cmd.spair.pair_id) >=
  2103. sizeof ("fuzzy") + sizeof (guint64));
  2104. memcpy (srv_cmd.cmd.spair.pair_id, "fuzzy", sizeof ("fuzzy"));
  2105. /* Distinguish workers from each others... */
  2106. if (worker->cf->bind_conf && worker->cf->bind_conf->bind_line) {
  2107. guint64 bind_hash = rspamd_cryptobox_fast_hash (worker->cf->bind_conf->bind_line,
  2108. strlen (worker->cf->bind_conf->bind_line), 0xdeadbabe);
  2109. /* 8 more bytes */
  2110. memcpy (srv_cmd.cmd.spair.pair_id + sizeof ("fuzzy"), &bind_hash,
  2111. sizeof (bind_hash));
  2112. }
  2113. rspamd_srv_send_command (worker, ctx->event_loop, &srv_cmd, -1,
  2114. fuzzy_peer_rep, ctx);
  2115. luaL_Reg fuzzy_lua_reg = {
  2116. .name = "add_fuzzy_pre_handler",
  2117. .func = lua_fuzzy_add_pre_handler,
  2118. };
  2119. rspamd_lua_add_metamethod (ctx->cfg->lua_state, "rspamd{worker}", &fuzzy_lua_reg);
  2120. fuzzy_lua_reg = (luaL_Reg){
  2121. .name = "add_fuzzy_post_handler",
  2122. .func = lua_fuzzy_add_post_handler,
  2123. };
  2124. rspamd_lua_add_metamethod (ctx->cfg->lua_state, "rspamd{worker}", &fuzzy_lua_reg);
  2125. rspamd_lua_run_postloads (ctx->cfg->lua_state, ctx->cfg, ctx->event_loop,
  2126. worker);
  2127. ev_loop (ctx->event_loop, 0);
  2128. rspamd_worker_block_signals ();
  2129. if (ctx->peer_fd != -1) {
  2130. if (worker->index == 0) {
  2131. ev_io_stop (ctx->event_loop, &ctx->peer_ev);
  2132. }
  2133. close (ctx->peer_fd);
  2134. }
  2135. if (worker->index == 0 && ctx->updates_pending->len > 0) {
  2136. msg_info_config ("start another event loop to sync fuzzy storage");
  2137. if (rspamd_fuzzy_process_updates_queue (ctx, local_db_name, TRUE)) {
  2138. ev_loop (ctx->event_loop, 0);
  2139. msg_info_config ("sync cycle is done");
  2140. }
  2141. else {
  2142. msg_info_config ("no need to sync");
  2143. }
  2144. }
  2145. rspamd_fuzzy_backend_close (ctx->backend);
  2146. if (worker->index == 0) {
  2147. g_array_free (ctx->updates_pending, TRUE);
  2148. }
  2149. if (ctx->keypair_cache) {
  2150. rspamd_keypair_cache_destroy (ctx->keypair_cache);
  2151. }
  2152. if (ctx->ratelimit_buckets) {
  2153. rspamd_lru_hash_destroy (ctx->ratelimit_buckets);
  2154. }
  2155. if (ctx->lua_pre_handler_cbref != -1) {
  2156. luaL_unref (ctx->cfg->lua_state, LUA_REGISTRYINDEX, ctx->lua_pre_handler_cbref);
  2157. }
  2158. if (ctx->lua_post_handler_cbref != -1) {
  2159. luaL_unref (ctx->cfg->lua_state, LUA_REGISTRYINDEX, ctx->lua_post_handler_cbref);
  2160. }
  2161. REF_RELEASE (ctx->cfg);
  2162. rspamd_log_close (worker->srv->logger);
  2163. exit (EXIT_SUCCESS);
  2164. }