cpuworker.c 17 KB

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  1. /* Copyright (c) 2003-2004, Roger Dingledine.
  2. * Copyright (c) 2004-2006, Roger Dingledine, Nick Mathewson.
  3. * Copyright (c) 2007-2015, The Tor Project, Inc. */
  4. /* See LICENSE for licensing information */
  5. /**
  6. * \file cpuworker.c
  7. * \brief Uses the workqueue/threadpool code to farm CPU-intensive activities
  8. * out to subprocesses.
  9. *
  10. * Right now, we only use this for processing onionskins.
  11. **/
  12. #include "or.h"
  13. #include "channel.h"
  14. #include "circuitbuild.h"
  15. #include "circuitlist.h"
  16. #include "connection_or.h"
  17. #include "config.h"
  18. #include "cpuworker.h"
  19. #include "main.h"
  20. #include "onion.h"
  21. #include "rephist.h"
  22. #include "router.h"
  23. #include "workqueue.h"
  24. #ifdef HAVE_EVENT2_EVENT_H
  25. #include <event2/event.h>
  26. #else
  27. #include <event.h>
  28. #endif
  29. static void queue_pending_tasks(void);
  30. typedef struct worker_state_s {
  31. int generation;
  32. server_onion_keys_t *onion_keys;
  33. } worker_state_t;
  34. static void *
  35. worker_state_new(void *arg)
  36. {
  37. worker_state_t *ws;
  38. (void)arg;
  39. ws = tor_malloc_zero(sizeof(worker_state_t));
  40. ws->onion_keys = server_onion_keys_new();
  41. return ws;
  42. }
  43. static void
  44. worker_state_free(void *arg)
  45. {
  46. worker_state_t *ws = arg;
  47. server_onion_keys_free(ws->onion_keys);
  48. tor_free(ws);
  49. }
  50. static replyqueue_t *replyqueue = NULL;
  51. static threadpool_t *threadpool = NULL;
  52. static struct event *reply_event = NULL;
  53. static tor_weak_rng_t request_sample_rng = TOR_WEAK_RNG_INIT;
  54. static int total_pending_tasks = 0;
  55. static int max_pending_tasks = 128;
  56. static void
  57. replyqueue_process_cb(evutil_socket_t sock, short events, void *arg)
  58. {
  59. replyqueue_t *rq = arg;
  60. (void) sock;
  61. (void) events;
  62. replyqueue_process(rq);
  63. }
  64. /** Initialize the cpuworker subsystem.
  65. */
  66. void
  67. cpu_init(void)
  68. {
  69. if (!replyqueue) {
  70. replyqueue = replyqueue_new(0);
  71. }
  72. if (!reply_event) {
  73. reply_event = tor_event_new(tor_libevent_get_base(),
  74. replyqueue_get_socket(replyqueue),
  75. EV_READ|EV_PERSIST,
  76. replyqueue_process_cb,
  77. replyqueue);
  78. event_add(reply_event, NULL);
  79. }
  80. if (!threadpool) {
  81. threadpool = threadpool_new(get_num_cpus(get_options()),
  82. replyqueue,
  83. worker_state_new,
  84. worker_state_free,
  85. NULL);
  86. }
  87. /* Total voodoo. Can we make this more sensible? */
  88. max_pending_tasks = get_num_cpus(get_options()) * 64;
  89. crypto_seed_weak_rng(&request_sample_rng);
  90. }
  91. /** Magic numbers to make sure our cpuworker_requests don't grow any
  92. * mis-framing bugs. */
  93. #define CPUWORKER_REQUEST_MAGIC 0xda4afeed
  94. #define CPUWORKER_REPLY_MAGIC 0x5eedf00d
  95. /** A request sent to a cpuworker. */
  96. typedef struct cpuworker_request_t {
  97. /** Magic number; must be CPUWORKER_REQUEST_MAGIC. */
  98. uint32_t magic;
  99. /** Flag: Are we timing this request? */
  100. unsigned timed : 1;
  101. /** If we're timing this request, when was it sent to the cpuworker? */
  102. struct timeval started_at;
  103. /** A create cell for the cpuworker to process. */
  104. create_cell_t create_cell;
  105. /* Turn the above into a tagged union if needed. */
  106. } cpuworker_request_t;
  107. /** A reply sent by a cpuworker. */
  108. typedef struct cpuworker_reply_t {
  109. /** Magic number; must be CPUWORKER_REPLY_MAGIC. */
  110. uint32_t magic;
  111. /** True iff we got a successful request. */
  112. uint8_t success;
  113. /** Are we timing this request? */
  114. unsigned int timed : 1;
  115. /** What handshake type was the request? (Used for timing) */
  116. uint16_t handshake_type;
  117. /** When did we send the request to the cpuworker? */
  118. struct timeval started_at;
  119. /** Once the cpuworker received the request, how many microseconds did it
  120. * take? (This shouldn't overflow; 4 billion micoseconds is over an hour,
  121. * and we'll never have an onion handshake that takes so long.) */
  122. uint32_t n_usec;
  123. /** Output of processing a create cell
  124. *
  125. * @{
  126. */
  127. /** The created cell to send back. */
  128. created_cell_t created_cell;
  129. /** The keys to use on this circuit. */
  130. uint8_t keys[CPATH_KEY_MATERIAL_LEN];
  131. /** Input to use for authenticating introduce1 cells. */
  132. uint8_t rend_auth_material[DIGEST_LEN];
  133. } cpuworker_reply_t;
  134. typedef struct cpuworker_job_u {
  135. or_circuit_t *circ;
  136. union {
  137. cpuworker_request_t request;
  138. cpuworker_reply_t reply;
  139. } u;
  140. } cpuworker_job_t;
  141. static int
  142. update_state_threadfn(void *state_, void *work_)
  143. {
  144. worker_state_t *state = state_;
  145. worker_state_t *update = work_;
  146. server_onion_keys_free(state->onion_keys);
  147. state->onion_keys = update->onion_keys;
  148. update->onion_keys = NULL;
  149. ++state->generation;
  150. return WQ_RPL_REPLY;
  151. }
  152. static void
  153. update_state_replyfn(void *work_)
  154. {
  155. tor_free(work_);
  156. }
  157. /** Called when the onion key has changed and we need to spawn new
  158. * cpuworkers. Close all currently idle cpuworkers, and mark the last
  159. * rotation time as now.
  160. */
  161. void
  162. cpuworkers_rotate_keyinfo(void)
  163. {
  164. if (threadpool_queue_for_all(threadpool,
  165. worker_state_new,
  166. update_state_threadfn,
  167. update_state_replyfn,
  168. NULL)) {
  169. log_warn(LD_OR, "Failed to queue key update for worker threads.");
  170. }
  171. }
  172. /** Indexed by handshake type: how many onionskins have we processed and
  173. * counted of that type? */
  174. static uint64_t onionskins_n_processed[MAX_ONION_HANDSHAKE_TYPE+1];
  175. /** Indexed by handshake type, corresponding to the onionskins counted in
  176. * onionskins_n_processed: how many microseconds have we spent in cpuworkers
  177. * processing that kind of onionskin? */
  178. static uint64_t onionskins_usec_internal[MAX_ONION_HANDSHAKE_TYPE+1];
  179. /** Indexed by handshake type, corresponding to onionskins counted in
  180. * onionskins_n_processed: how many microseconds have we spent waiting for
  181. * cpuworkers to give us answers for that kind of onionskin?
  182. */
  183. static uint64_t onionskins_usec_roundtrip[MAX_ONION_HANDSHAKE_TYPE+1];
  184. /** If any onionskin takes longer than this, we clip them to this
  185. * time. (microseconds) */
  186. #define MAX_BELIEVABLE_ONIONSKIN_DELAY (2*1000*1000)
  187. /** Return true iff we'd like to measure a handshake of type
  188. * <b>onionskin_type</b>. Call only from the main thread. */
  189. static int
  190. should_time_request(uint16_t onionskin_type)
  191. {
  192. /* If we've never heard of this type, we shouldn't even be here. */
  193. if (onionskin_type > MAX_ONION_HANDSHAKE_TYPE)
  194. return 0;
  195. /* Measure the first N handshakes of each type, to ensure we have a
  196. * sample */
  197. if (onionskins_n_processed[onionskin_type] < 4096)
  198. return 1;
  199. /** Otherwise, measure with P=1/128. We avoid doing this for every
  200. * handshake, since the measurement itself can take a little time. */
  201. return tor_weak_random_one_in_n(&request_sample_rng, 128);
  202. }
  203. /** Return an estimate of how many microseconds we will need for a single
  204. * cpuworker to to process <b>n_requests</b> onionskins of type
  205. * <b>onionskin_type</b>. */
  206. uint64_t
  207. estimated_usec_for_onionskins(uint32_t n_requests, uint16_t onionskin_type)
  208. {
  209. if (onionskin_type > MAX_ONION_HANDSHAKE_TYPE) /* should be impossible */
  210. return 1000 * (uint64_t)n_requests;
  211. if (PREDICT_UNLIKELY(onionskins_n_processed[onionskin_type] < 100)) {
  212. /* Until we have 100 data points, just asssume everything takes 1 msec. */
  213. return 1000 * (uint64_t)n_requests;
  214. } else {
  215. /* This can't overflow: we'll never have more than 500000 onionskins
  216. * measured in onionskin_usec_internal, and they won't take anything near
  217. * 1 sec each, and we won't have anything like 1 million queued
  218. * onionskins. But that's 5e5 * 1e6 * 1e6, which is still less than
  219. * UINT64_MAX. */
  220. return (onionskins_usec_internal[onionskin_type] * n_requests) /
  221. onionskins_n_processed[onionskin_type];
  222. }
  223. }
  224. /** Compute the absolute and relative overhead of using the cpuworker
  225. * framework for onionskins of type <b>onionskin_type</b>.*/
  226. static int
  227. get_overhead_for_onionskins(uint32_t *usec_out, double *frac_out,
  228. uint16_t onionskin_type)
  229. {
  230. uint64_t overhead;
  231. *usec_out = 0;
  232. *frac_out = 0.0;
  233. if (onionskin_type > MAX_ONION_HANDSHAKE_TYPE) /* should be impossible */
  234. return -1;
  235. if (onionskins_n_processed[onionskin_type] == 0 ||
  236. onionskins_usec_internal[onionskin_type] == 0 ||
  237. onionskins_usec_roundtrip[onionskin_type] == 0)
  238. return -1;
  239. overhead = onionskins_usec_roundtrip[onionskin_type] -
  240. onionskins_usec_internal[onionskin_type];
  241. *usec_out = (uint32_t)(overhead / onionskins_n_processed[onionskin_type]);
  242. *frac_out = U64_TO_DBL(overhead) / onionskins_usec_internal[onionskin_type];
  243. return 0;
  244. }
  245. /** If we've measured overhead for onionskins of type <b>onionskin_type</b>,
  246. * log it. */
  247. void
  248. cpuworker_log_onionskin_overhead(int severity, int onionskin_type,
  249. const char *onionskin_type_name)
  250. {
  251. uint32_t overhead;
  252. double relative_overhead;
  253. int r;
  254. r = get_overhead_for_onionskins(&overhead, &relative_overhead,
  255. onionskin_type);
  256. if (!overhead || r<0)
  257. return;
  258. log_fn(severity, LD_OR,
  259. "%s onionskins have averaged %u usec overhead (%.2f%%) in "
  260. "cpuworker code ",
  261. onionskin_type_name, (unsigned)overhead, relative_overhead*100);
  262. }
  263. /** Handle a reply from the worker threads. */
  264. static void
  265. cpuworker_onion_handshake_replyfn(void *work_)
  266. {
  267. cpuworker_job_t *job = work_;
  268. cpuworker_reply_t rpl;
  269. or_circuit_t *circ = NULL;
  270. --total_pending_tasks;
  271. /* Could avoid this, but doesn't matter. */
  272. memcpy(&rpl, &job->u.reply, sizeof(rpl));
  273. tor_assert(rpl.magic == CPUWORKER_REPLY_MAGIC);
  274. if (rpl.timed && rpl.success &&
  275. rpl.handshake_type <= MAX_ONION_HANDSHAKE_TYPE) {
  276. /* Time how long this request took. The handshake_type check should be
  277. needless, but let's leave it in to be safe. */
  278. struct timeval tv_end, tv_diff;
  279. int64_t usec_roundtrip;
  280. tor_gettimeofday(&tv_end);
  281. timersub(&tv_end, &rpl.started_at, &tv_diff);
  282. usec_roundtrip = ((int64_t)tv_diff.tv_sec)*1000000 + tv_diff.tv_usec;
  283. if (usec_roundtrip >= 0 &&
  284. usec_roundtrip < MAX_BELIEVABLE_ONIONSKIN_DELAY) {
  285. ++onionskins_n_processed[rpl.handshake_type];
  286. onionskins_usec_internal[rpl.handshake_type] += rpl.n_usec;
  287. onionskins_usec_roundtrip[rpl.handshake_type] += usec_roundtrip;
  288. if (onionskins_n_processed[rpl.handshake_type] >= 500000) {
  289. /* Scale down every 500000 handshakes. On a busy server, that's
  290. * less impressive than it sounds. */
  291. onionskins_n_processed[rpl.handshake_type] /= 2;
  292. onionskins_usec_internal[rpl.handshake_type] /= 2;
  293. onionskins_usec_roundtrip[rpl.handshake_type] /= 2;
  294. }
  295. }
  296. }
  297. circ = job->circ;
  298. log_debug(LD_OR,
  299. "Unpacking cpuworker reply %p, circ=%p, success=%d",
  300. job, circ, rpl.success);
  301. if (circ->base_.magic == DEAD_CIRCUIT_MAGIC) {
  302. /* The circuit was supposed to get freed while the reply was
  303. * pending. Instead, it got left for us to free so that we wouldn't freak
  304. * out when the job->circ field wound up pointing to nothing. */
  305. log_debug(LD_OR, "Circuit died while reply was pending. Freeing memory.");
  306. circ->base_.magic = 0;
  307. tor_free(circ);
  308. goto done_processing;
  309. }
  310. circ->workqueue_entry = NULL;
  311. if (rpl.success == 0) {
  312. log_debug(LD_OR,
  313. "decoding onionskin failed. "
  314. "(Old key or bad software.) Closing.");
  315. if (circ)
  316. circuit_mark_for_close(TO_CIRCUIT(circ), END_CIRC_REASON_TORPROTOCOL);
  317. goto done_processing;
  318. }
  319. if (onionskin_answer(circ,
  320. &rpl.created_cell,
  321. (const char*)rpl.keys,
  322. rpl.rend_auth_material) < 0) {
  323. log_warn(LD_OR,"onionskin_answer failed. Closing.");
  324. circuit_mark_for_close(TO_CIRCUIT(circ), END_CIRC_REASON_INTERNAL);
  325. goto done_processing;
  326. }
  327. log_debug(LD_OR,"onionskin_answer succeeded. Yay.");
  328. done_processing:
  329. memwipe(&rpl, 0, sizeof(rpl));
  330. memwipe(job, 0, sizeof(*job));
  331. tor_free(job);
  332. queue_pending_tasks();
  333. }
  334. /** Implementation function for onion handshake requests. */
  335. static int
  336. cpuworker_onion_handshake_threadfn(void *state_, void *work_)
  337. {
  338. worker_state_t *state = state_;
  339. cpuworker_job_t *job = work_;
  340. /* variables for onion processing */
  341. server_onion_keys_t *onion_keys = state->onion_keys;
  342. cpuworker_request_t req;
  343. cpuworker_reply_t rpl;
  344. memcpy(&req, &job->u.request, sizeof(req));
  345. tor_assert(req.magic == CPUWORKER_REQUEST_MAGIC);
  346. memset(&rpl, 0, sizeof(rpl));
  347. const create_cell_t *cc = &req.create_cell;
  348. created_cell_t *cell_out = &rpl.created_cell;
  349. struct timeval tv_start = {0,0}, tv_end;
  350. int n;
  351. rpl.timed = req.timed;
  352. rpl.started_at = req.started_at;
  353. rpl.handshake_type = cc->handshake_type;
  354. if (req.timed)
  355. tor_gettimeofday(&tv_start);
  356. n = onion_skin_server_handshake(cc->handshake_type,
  357. cc->onionskin, cc->handshake_len,
  358. onion_keys,
  359. cell_out->reply,
  360. rpl.keys, CPATH_KEY_MATERIAL_LEN,
  361. rpl.rend_auth_material);
  362. if (n < 0) {
  363. /* failure */
  364. log_debug(LD_OR,"onion_skin_server_handshake failed.");
  365. memset(&rpl, 0, sizeof(rpl));
  366. rpl.success = 0;
  367. } else {
  368. /* success */
  369. log_debug(LD_OR,"onion_skin_server_handshake succeeded.");
  370. cell_out->handshake_len = n;
  371. switch (cc->cell_type) {
  372. case CELL_CREATE:
  373. cell_out->cell_type = CELL_CREATED; break;
  374. case CELL_CREATE2:
  375. cell_out->cell_type = CELL_CREATED2; break;
  376. case CELL_CREATE_FAST:
  377. cell_out->cell_type = CELL_CREATED_FAST; break;
  378. default:
  379. tor_assert(0);
  380. return WQ_RPL_SHUTDOWN;
  381. }
  382. rpl.success = 1;
  383. }
  384. rpl.magic = CPUWORKER_REPLY_MAGIC;
  385. if (req.timed) {
  386. struct timeval tv_diff;
  387. int64_t usec;
  388. tor_gettimeofday(&tv_end);
  389. timersub(&tv_end, &tv_start, &tv_diff);
  390. usec = ((int64_t)tv_diff.tv_sec)*1000000 + tv_diff.tv_usec;
  391. if (usec < 0 || usec > MAX_BELIEVABLE_ONIONSKIN_DELAY)
  392. rpl.n_usec = MAX_BELIEVABLE_ONIONSKIN_DELAY;
  393. else
  394. rpl.n_usec = (uint32_t) usec;
  395. }
  396. memcpy(&job->u.reply, &rpl, sizeof(rpl));
  397. memwipe(&req, 0, sizeof(req));
  398. memwipe(&rpl, 0, sizeof(req));
  399. return WQ_RPL_REPLY;
  400. }
  401. /** Take pending tasks from the queue and assign them to cpuworkers. */
  402. static void
  403. queue_pending_tasks(void)
  404. {
  405. or_circuit_t *circ;
  406. create_cell_t *onionskin = NULL;
  407. while (total_pending_tasks < max_pending_tasks) {
  408. circ = onion_next_task(&onionskin);
  409. if (!circ)
  410. return;
  411. if (assign_onionskin_to_cpuworker(circ, onionskin))
  412. log_warn(LD_OR,"assign_to_cpuworker failed. Ignoring.");
  413. }
  414. }
  415. /** Try to tell a cpuworker to perform the public key operations necessary to
  416. * respond to <b>onionskin</b> for the circuit <b>circ</b>.
  417. *
  418. * Return 0 if we successfully assign the task, or -1 on failure.
  419. */
  420. int
  421. assign_onionskin_to_cpuworker(or_circuit_t *circ,
  422. create_cell_t *onionskin)
  423. {
  424. workqueue_entry_t *queue_entry;
  425. cpuworker_job_t *job;
  426. cpuworker_request_t req;
  427. int should_time;
  428. if (!circ->p_chan) {
  429. log_info(LD_OR,"circ->p_chan gone. Failing circ.");
  430. tor_free(onionskin);
  431. return -1;
  432. }
  433. if (total_pending_tasks >= max_pending_tasks) {
  434. log_debug(LD_OR,"No idle cpuworkers. Queuing.");
  435. if (onion_pending_add(circ, onionskin) < 0) {
  436. tor_free(onionskin);
  437. return -1;
  438. }
  439. return 0;
  440. }
  441. if (connection_or_digest_is_known_relay(circ->p_chan->identity_digest))
  442. rep_hist_note_circuit_handshake_assigned(onionskin->handshake_type);
  443. should_time = should_time_request(onionskin->handshake_type);
  444. memset(&req, 0, sizeof(req));
  445. req.magic = CPUWORKER_REQUEST_MAGIC;
  446. req.timed = should_time;
  447. memcpy(&req.create_cell, onionskin, sizeof(create_cell_t));
  448. tor_free(onionskin);
  449. if (should_time)
  450. tor_gettimeofday(&req.started_at);
  451. job = tor_malloc_zero(sizeof(cpuworker_job_t));
  452. job->circ = circ;
  453. memcpy(&job->u.request, &req, sizeof(req));
  454. memwipe(&req, 0, sizeof(req));
  455. ++total_pending_tasks;
  456. queue_entry = threadpool_queue_work(threadpool,
  457. cpuworker_onion_handshake_threadfn,
  458. cpuworker_onion_handshake_replyfn,
  459. job);
  460. if (!queue_entry) {
  461. log_warn(LD_BUG, "Couldn't queue work on threadpool");
  462. tor_free(job);
  463. return -1;
  464. }
  465. log_debug(LD_OR, "Queued task %p (qe=%p, circ=%p)",
  466. job, queue_entry, job->circ);
  467. circ->workqueue_entry = queue_entry;
  468. return 0;
  469. }
  470. /** If <b>circ</b> has a pending handshake that hasn't been processed yet,
  471. * remove it from the worker queue. */
  472. void
  473. cpuworker_cancel_circ_handshake(or_circuit_t *circ)
  474. {
  475. cpuworker_job_t *job;
  476. if (circ->workqueue_entry == NULL)
  477. return;
  478. job = workqueue_entry_cancel(circ->workqueue_entry);
  479. if (job) {
  480. /* It successfully cancelled. */
  481. memwipe(job, 0xe0, sizeof(*job));
  482. tor_free(job);
  483. }
  484. circ->workqueue_entry = NULL;
  485. }