scheduler_kist.c 34 KB

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  1. /* Copyright (c) 2017-2019, The Tor Project, Inc. */
  2. /* See LICENSE for licensing information */
  3. #define SCHEDULER_KIST_PRIVATE
  4. #include "core/or/or.h"
  5. #include "lib/buf/buffers.h"
  6. #include "app/config/config.h"
  7. #include "core/mainloop/connection.h"
  8. #include "feature/nodelist/networkstatus.h"
  9. #define TOR_CHANNEL_INTERNAL_
  10. #include "core/or/channel.h"
  11. #include "core/or/channeltls.h"
  12. #define SCHEDULER_PRIVATE_
  13. #include "core/or/scheduler.h"
  14. #include "lib/math/fp.h"
  15. #include "core/or/or_connection_st.h"
  16. #include "core/or/connection_or.h"
  17. #ifdef HAVE_SYS_IOCTL_H
  18. #include <sys/ioctl.h>
  19. #endif
  20. #ifdef HAVE_KIST_SUPPORT
  21. /* Kernel interface needed for KIST. */
  22. #include <netinet/tcp.h>
  23. #include <linux/sockios.h>
  24. #endif /* HAVE_KIST_SUPPORT */
  25. /*****************************************************************************
  26. * Data structures and supporting functions
  27. *****************************************************************************/
  28. /* Socket_table hash table stuff. The socket_table keeps track of per-socket
  29. * limit information imposed by kist and used by kist. */
  30. static uint32_t
  31. socket_table_ent_hash(const socket_table_ent_t *ent)
  32. {
  33. return (uint32_t)ent->chan->global_identifier;
  34. }
  35. static unsigned
  36. socket_table_ent_eq(const socket_table_ent_t *a, const socket_table_ent_t *b)
  37. {
  38. return a->chan == b->chan;
  39. }
  40. typedef HT_HEAD(socket_table_s, socket_table_ent_s) socket_table_t;
  41. static socket_table_t socket_table = HT_INITIALIZER();
  42. HT_PROTOTYPE(socket_table_s, socket_table_ent_s, node, socket_table_ent_hash,
  43. socket_table_ent_eq)
  44. HT_GENERATE2(socket_table_s, socket_table_ent_s, node, socket_table_ent_hash,
  45. socket_table_ent_eq, 0.6, tor_reallocarray, tor_free_)
  46. /* outbuf_table hash table stuff. The outbuf_table keeps track of which
  47. * channels have data sitting in their outbuf so the kist scheduler can force
  48. * a write from outbuf to kernel periodically during a run and at the end of a
  49. * run. */
  50. typedef struct outbuf_table_ent_s {
  51. HT_ENTRY(outbuf_table_ent_s) node;
  52. channel_t *chan;
  53. } outbuf_table_ent_t;
  54. static uint32_t
  55. outbuf_table_ent_hash(const outbuf_table_ent_t *ent)
  56. {
  57. return (uint32_t)ent->chan->global_identifier;
  58. }
  59. static unsigned
  60. outbuf_table_ent_eq(const outbuf_table_ent_t *a, const outbuf_table_ent_t *b)
  61. {
  62. return a->chan->global_identifier == b->chan->global_identifier;
  63. }
  64. HT_PROTOTYPE(outbuf_table_s, outbuf_table_ent_s, node, outbuf_table_ent_hash,
  65. outbuf_table_ent_eq)
  66. HT_GENERATE2(outbuf_table_s, outbuf_table_ent_s, node, outbuf_table_ent_hash,
  67. outbuf_table_ent_eq, 0.6, tor_reallocarray, tor_free_)
  68. /*****************************************************************************
  69. * Other internal data
  70. *****************************************************************************/
  71. /* Store the last time the scheduler was run so we can decide when to next run
  72. * the scheduler based on it. */
  73. static monotime_t scheduler_last_run;
  74. /* This is a factor for the extra_space calculation in kist per-socket limits.
  75. * It is the number of extra congestion windows we want to write to the kernel.
  76. */
  77. static double sock_buf_size_factor = 1.0;
  78. /* How often the scheduler runs. */
  79. STATIC int sched_run_interval = KIST_SCHED_RUN_INTERVAL_DEFAULT;
  80. #ifdef HAVE_KIST_SUPPORT
  81. /* Indicate if KIST lite mode is on or off. We can disable it at runtime.
  82. * Important to have because of the KISTLite -> KIST possible transition. */
  83. static unsigned int kist_lite_mode = 0;
  84. /* Indicate if we don't have the kernel support. This can happen if the kernel
  85. * changed and it doesn't recognized the values passed to the syscalls needed
  86. * by KIST. In that case, fallback to the naive approach. */
  87. static unsigned int kist_no_kernel_support = 0;
  88. #else /* !defined(HAVE_KIST_SUPPORT) */
  89. static unsigned int kist_lite_mode = 1;
  90. #endif /* defined(HAVE_KIST_SUPPORT) */
  91. /*****************************************************************************
  92. * Internally called function implementations
  93. *****************************************************************************/
  94. /* Little helper function to get the length of a channel's output buffer */
  95. static inline size_t
  96. channel_outbuf_length(channel_t *chan)
  97. {
  98. tor_assert(chan);
  99. /* In theory, this can not happen because we can not scheduler a channel
  100. * without a connection that has its outbuf initialized. Just in case, bug
  101. * on this so we can understand a bit more why it happened. */
  102. if (SCHED_BUG(BASE_CHAN_TO_TLS(chan)->conn == NULL, chan)) {
  103. return 0;
  104. }
  105. //return buf_datalen(TO_CONN(BASE_CHAN_TO_TLS(chan)->conn)->outbuf);
  106. //return connection_get_outbuf_len(TO_CONN(BASE_CHAN_TO_TLS(chan)->conn));
  107. size_t len = 0;
  108. // TODO: fix this ugly locking
  109. connection_t *conn = TO_CONN(BASE_CHAN_TO_TLS(chan)->conn);
  110. tor_assert(conn->safe_conn != NULL);
  111. tor_mutex_acquire(&(conn->safe_conn->lock));
  112. len = buf_datalen(conn->safe_conn->outbuf);
  113. tor_mutex_release(&(conn->safe_conn->lock));
  114. return len;
  115. }
  116. /* Little helper function for HT_FOREACH_FN. */
  117. static int
  118. each_channel_wakeup_listeners(outbuf_table_ent_t *ent, void *data)
  119. {
  120. (void) data;
  121. connection_t *conn = TO_CONN(BASE_CHAN_TO_TLS(ent->chan)->conn);
  122. event_source_deliver_silently(conn->event_source,
  123. or_conn_outgoing_packed_cell, false);
  124. event_source_wakeup_listener(conn->event_source,
  125. or_conn_outgoing_packed_cell);
  126. return 0; /* Returning non-zero removes the element from the table. */
  127. }
  128. /* Little helper function for HT_FOREACH_FN. */
  129. static int
  130. each_channel_write_to_kernel(outbuf_table_ent_t *ent, void *data)
  131. {
  132. (void) data; /* Make compiler happy. */
  133. channel_write_to_kernel(ent->chan);
  134. return 0; /* Returning non-zero removes the element from the table. */
  135. }
  136. /* Free the given outbuf table entry ent. */
  137. static int
  138. free_outbuf_info_by_ent(outbuf_table_ent_t *ent, void *data)
  139. {
  140. (void) data; /* Make compiler happy. */
  141. log_debug(LD_SCHED, "Freeing outbuf table entry from chan=%" PRIu64,
  142. ent->chan->global_identifier);
  143. tor_free(ent);
  144. return 1; /* So HT_FOREACH_FN will remove the element */
  145. }
  146. /* Free the given socket table entry ent. */
  147. static int
  148. free_socket_info_by_ent(socket_table_ent_t *ent, void *data)
  149. {
  150. (void) data; /* Make compiler happy. */
  151. log_debug(LD_SCHED, "Freeing socket table entry from chan=%" PRIu64,
  152. ent->chan->global_identifier);
  153. tor_free(ent);
  154. return 1; /* So HT_FOREACH_FN will remove the element */
  155. }
  156. /* Clean up socket_table. Probably because the KIST sched impl is going away */
  157. static void
  158. free_all_socket_info(void)
  159. {
  160. HT_FOREACH_FN(socket_table_s, &socket_table, free_socket_info_by_ent, NULL);
  161. HT_CLEAR(socket_table_s, &socket_table);
  162. }
  163. static socket_table_ent_t *
  164. socket_table_search(socket_table_t *table, const channel_t *chan)
  165. {
  166. socket_table_ent_t search, *ent = NULL;
  167. search.chan = chan;
  168. ent = HT_FIND(socket_table_s, table, &search);
  169. return ent;
  170. }
  171. /* Free a socket entry in table for the given chan. */
  172. static void
  173. free_socket_info_by_chan(socket_table_t *table, const channel_t *chan)
  174. {
  175. socket_table_ent_t *ent = NULL;
  176. ent = socket_table_search(table, chan);
  177. if (!ent)
  178. return;
  179. log_debug(LD_SCHED, "scheduler free socket info for chan=%" PRIu64,
  180. chan->global_identifier);
  181. HT_REMOVE(socket_table_s, table, ent);
  182. free_socket_info_by_ent(ent, NULL);
  183. }
  184. /* Perform system calls for the given socket in order to calculate kist's
  185. * per-socket limit as documented in the function body. */
  186. MOCK_IMPL(void,
  187. update_socket_info_impl, (socket_table_ent_t *ent))
  188. {
  189. #ifdef HAVE_KIST_SUPPORT
  190. int64_t tcp_space, extra_space;
  191. tor_assert(ent);
  192. tor_assert(ent->chan);
  193. //const tor_socket_t sock =
  194. // TO_CONN(BASE_CHAN_TO_TLS((channel_t *) ent->chan)->conn)->s;
  195. connection_t *conn = TO_CONN(BASE_CHAN_TO_TLS((channel_t *) ent->chan)->conn);
  196. const tor_socket_t sock = conn->scheduler_socket_cache;
  197. if (!SOCKET_OK(sock)) {
  198. // the socket is closed, so we should not write anything
  199. log_warn(LD_SCHED, "The socket for %p has been closed.", conn);
  200. // TODO: this should be debug not warn
  201. ent->limit = ent->cwnd = ent->unacked = ent->mss = ent->notsent = 0;
  202. return;
  203. }
  204. struct tcp_info tcp;
  205. socklen_t tcp_info_len = sizeof(tcp);
  206. if (kist_no_kernel_support || kist_lite_mode) {
  207. goto fallback;
  208. }
  209. /* Gather information */
  210. if (getsockopt(sock, SOL_TCP, TCP_INFO, (void *)&(tcp), &tcp_info_len) < 0) {
  211. if (errno == EBADF) {
  212. // there is a race condition where the safe_conn could close the fd after
  213. // we get it, in which case we should set a limit of 0
  214. log_warn(LD_SCHED, "The socket for %p is not a valid file descriptor.",
  215. conn);
  216. // TODO: this should be debug not warn
  217. ent->limit = ent->cwnd = ent->unacked = ent->mss = ent->notsent = 0;
  218. return;
  219. }
  220. if (errno == EINVAL) {
  221. /* Oops, this option is not provided by the kernel, we'll have to
  222. * disable KIST entirely. This can happen if tor was built on a machine
  223. * with the support previously or if the kernel was updated and lost the
  224. * support. */
  225. log_notice(LD_SCHED, "Looks like our kernel doesn't have the support "
  226. "for KIST anymore. We will fallback to the naive "
  227. "approach. Remove KIST from the Schedulers list "
  228. "to disable.");
  229. kist_no_kernel_support = 1;
  230. }
  231. goto fallback;
  232. }
  233. if (ioctl(sock, SIOCOUTQNSD, &(ent->notsent)) < 0) {
  234. if (errno == EBADF) {
  235. // there is a race condition where the safe_conn could close the fd after
  236. // we get it, in which case we should set a limit of 0
  237. log_warn(LD_SCHED, "The socket for %p is not a valid file descriptor.",
  238. conn);
  239. // TODO: this should be debug not warn
  240. ent->limit = ent->cwnd = ent->unacked = ent->mss = ent->notsent = 0;
  241. return;
  242. }
  243. if (errno == EINVAL) {
  244. log_notice(LD_SCHED, "Looks like our kernel doesn't have the support "
  245. "for KIST anymore. We will fallback to the naive "
  246. "approach. Remove KIST from the Schedulers list "
  247. "to disable.");
  248. /* Same reason as the above. */
  249. kist_no_kernel_support = 1;
  250. }
  251. goto fallback;
  252. }
  253. ent->cwnd = tcp.tcpi_snd_cwnd;
  254. ent->unacked = tcp.tcpi_unacked;
  255. ent->mss = tcp.tcpi_snd_mss;
  256. /* In order to reduce outbound kernel queuing delays and thus improve Tor's
  257. * ability to prioritize circuits, KIST wants to set a socket write limit
  258. * that is near the amount that the socket would be able to immediately send
  259. * into the Internet.
  260. *
  261. * We first calculate how much the socket could send immediately (assuming
  262. * completely full packets) according to the congestion window and the number
  263. * of unacked packets.
  264. *
  265. * Then we add a little extra space in a controlled way. We do this so any
  266. * when the kernel gets ACKs back for data currently sitting in the "TCP
  267. * space", it will already have some more data to send immediately. It will
  268. * not have to wait for the scheduler to run again. The amount of extra space
  269. * is a factor of the current congestion window. With the suggested
  270. * sock_buf_size_factor value of 1.0, we allow at most 2*cwnd bytes to sit in
  271. * the kernel: 1 cwnd on the wire waiting for ACKs and 1 cwnd ready and
  272. * waiting to be sent when those ACKs finally come.
  273. *
  274. * In the below diagram, we see some bytes in the TCP-space (denoted by '*')
  275. * that have be sent onto the wire and are waiting for ACKs. We have a little
  276. * more room in "TCP space" that we can fill with data that will be
  277. * immediately sent. We also see the "extra space" KIST calculates. The sum
  278. * of the empty "TCP space" and the "extra space" is the kist-imposed write
  279. * limit for this socket.
  280. *
  281. * <----------------kernel-outbound-socket-queue----------------|
  282. * <*********---------------------------------------------------|
  283. * |----TCP-space-----|----extra-space-----|
  284. * |------------------|
  285. * ^ ((cwnd - unacked) * mss) bytes
  286. * |--------------------|
  287. * ^ ((cwnd * mss) * factor) bytes
  288. */
  289. /* These values from the kernel are uint32_t, they will always fit into a
  290. * int64_t tcp_space variable but if the congestion window cwnd is smaller
  291. * than the unacked packets, the remaining TCP space is set to 0. */
  292. if (ent->cwnd >= ent->unacked) {
  293. tcp_space = (ent->cwnd - ent->unacked) * (int64_t)(ent->mss);
  294. } else {
  295. tcp_space = 0;
  296. }
  297. /* The clamp_double_to_int64 makes sure the first part fits into an int64_t.
  298. * In fact, if sock_buf_size_factor is still forced to be >= 0 in config.c,
  299. * then it will be positive for sure. Then we subtract a uint32_t. Getting a
  300. * negative value is OK, see after how it is being handled. */
  301. extra_space =
  302. clamp_double_to_int64(
  303. (ent->cwnd * (int64_t)ent->mss) * sock_buf_size_factor) -
  304. ent->notsent - (int64_t)channel_outbuf_length((channel_t *) ent->chan);
  305. // TODO: this call to channel_outbuf_length() requires a lock, which is bad
  306. if ((tcp_space + extra_space) < 0) {
  307. /* This means that the "notsent" queue is just too big so we shouldn't put
  308. * more in the kernel for now. */
  309. ent->limit = 0;
  310. } else {
  311. /* The positive sum of two int64_t will always fit into an uint64_t.
  312. * And we know this will always be positive, since we checked above. */
  313. ent->limit = (uint64_t)tcp_space + (uint64_t)extra_space;
  314. }
  315. return;
  316. #else /* !defined(HAVE_KIST_SUPPORT) */
  317. goto fallback;
  318. #endif /* defined(HAVE_KIST_SUPPORT) */
  319. fallback:
  320. /* If all of a sudden we don't have kist support, we just zero out all the
  321. * variables for this socket since we don't know what they should be. We
  322. * also allow the socket to write as much as it can from the estimated
  323. * number of cells the lower layer can accept, effectively returning it to
  324. * Vanilla scheduler behavior. */
  325. ent->cwnd = ent->unacked = ent->mss = ent->notsent = 0;
  326. /* This function calls the specialized channel object (currently channeltls)
  327. * and ask how many cells it can write on the outbuf which we then multiply
  328. * by the size of the cells for this channel. The cast is because this
  329. * function requires a non-const channel object, meh. */
  330. ent->limit = channel_num_cells_writeable((channel_t *) ent->chan) *
  331. (get_cell_network_size(ent->chan->wide_circ_ids) +
  332. TLS_PER_CELL_OVERHEAD);
  333. }
  334. /* Given a socket that isn't in the table, add it.
  335. * Given a socket that is in the table, re-init values that need init-ing
  336. * every scheduling run
  337. */
  338. static void
  339. init_socket_info(socket_table_t *table, const channel_t *chan)
  340. {
  341. socket_table_ent_t *ent = NULL;
  342. ent = socket_table_search(table, chan);
  343. if (!ent) {
  344. log_debug(LD_SCHED, "scheduler init socket info for chan=%" PRIu64,
  345. chan->global_identifier);
  346. ent = tor_malloc_zero(sizeof(*ent));
  347. ent->chan = chan;
  348. HT_INSERT(socket_table_s, table, ent);
  349. }
  350. ent->written = 0;
  351. }
  352. /* Add chan to the outbuf table if it isn't already in it. If it is, then don't
  353. * do anything */
  354. static bool
  355. outbuf_table_add(outbuf_table_t *table, channel_t *chan)
  356. {
  357. outbuf_table_ent_t search, *ent;
  358. search.chan = chan;
  359. ent = HT_FIND(outbuf_table_s, table, &search);
  360. if (!ent) {
  361. log_debug(LD_SCHED, "scheduler init outbuf info for chan=%" PRIu64,
  362. chan->global_identifier);
  363. ent = tor_malloc_zero(sizeof(*ent));
  364. ent->chan = chan;
  365. HT_INSERT(outbuf_table_s, table, ent);
  366. return true;
  367. }
  368. return false;
  369. }
  370. static void
  371. outbuf_table_remove(outbuf_table_t *table, channel_t *chan)
  372. {
  373. outbuf_table_ent_t search, *ent;
  374. search.chan = chan;
  375. ent = HT_FIND(outbuf_table_s, table, &search);
  376. if (ent) {
  377. HT_REMOVE(outbuf_table_s, table, ent);
  378. free_outbuf_info_by_ent(ent, NULL);
  379. }
  380. }
  381. /* Set the scheduler running interval. */
  382. static void
  383. set_scheduler_run_interval(void)
  384. {
  385. int old_sched_run_interval = sched_run_interval;
  386. sched_run_interval = kist_scheduler_run_interval();
  387. if (old_sched_run_interval != sched_run_interval) {
  388. log_info(LD_SCHED, "Scheduler KIST changing its running interval "
  389. "from %" PRId32 " to %" PRId32,
  390. old_sched_run_interval, sched_run_interval);
  391. }
  392. }
  393. /* Return true iff the channel hasn't hit its kist-imposed write limit yet */
  394. static int
  395. socket_can_write(socket_table_t *table, const channel_t *chan)
  396. {
  397. socket_table_ent_t *ent = NULL;
  398. ent = socket_table_search(table, chan);
  399. if (SCHED_BUG(!ent, chan)) {
  400. return 1; // Just return true, saying that kist wouldn't limit the socket
  401. }
  402. /* We previously calculated a write limit for this socket. In the below
  403. * calculation, first determine how much room is left in bytes. Then divide
  404. * that by the amount of space a cell takes. If there's room for at least 1
  405. * cell, then KIST will allow the socket to write. */
  406. int64_t kist_limit_space =
  407. (int64_t) (ent->limit - ent->written) /
  408. (CELL_MAX_NETWORK_SIZE + TLS_PER_CELL_OVERHEAD);
  409. return kist_limit_space > 0;
  410. }
  411. /* Update the channel's socket kernel information. */
  412. static void
  413. update_socket_info(socket_table_t *table, const channel_t *chan)
  414. {
  415. socket_table_ent_t *ent = NULL;
  416. ent = socket_table_search(table, chan);
  417. if (SCHED_BUG(!ent, chan)) {
  418. return; // Whelp. Entry didn't exist for some reason so nothing to do.
  419. }
  420. update_socket_info_impl(ent);
  421. log_debug(LD_SCHED, "chan=%" PRIu64 " updated socket info, limit: %" PRIu64
  422. ", cwnd: %" PRIu32 ", unacked: %" PRIu32
  423. ", notsent: %" PRIu32 ", mss: %" PRIu32,
  424. ent->chan->global_identifier, ent->limit, ent->cwnd, ent->unacked,
  425. ent->notsent, ent->mss);
  426. }
  427. /* Increment the channel's socket written value by the number of bytes. */
  428. static void
  429. update_socket_written(socket_table_t *table, channel_t *chan, size_t bytes)
  430. {
  431. socket_table_ent_t *ent = NULL;
  432. ent = socket_table_search(table, chan);
  433. if (SCHED_BUG(!ent, chan)) {
  434. return; // Whelp. Entry didn't exist so nothing to do.
  435. }
  436. log_debug(LD_SCHED, "chan=%" PRIu64 " wrote %lu bytes, old was %" PRIi64,
  437. chan->global_identifier, (unsigned long) bytes, ent->written);
  438. ent->written += bytes;
  439. }
  440. /*
  441. * A naive KIST impl would write every single cell all the way to the kernel.
  442. * That would take a lot of system calls. A less bad KIST impl would write a
  443. * channel's outbuf to the kernel only when we are switching to a different
  444. * channel. But if we have two channels with equal priority, we end up writing
  445. * one cell for each and bouncing back and forth. This KIST impl avoids that
  446. * by only writing a channel's outbuf to the kernel if it has 8 cells or more
  447. * in it.
  448. */
  449. //MOCK_IMPL(int, channel_should_write_to_kernel,
  450. // (outbuf_table_t *table, channel_t *chan))
  451. //{
  452. // outbuf_table_add(table, chan);
  453. // /* CELL_MAX_NETWORK_SIZE * 8 because we only want to write the outbuf to the
  454. // * kernel if there's 8 or more cells waiting */
  455. // return channel_outbuf_length(chan) > (CELL_MAX_NETWORK_SIZE * 8);
  456. //}
  457. /* Little helper function to write a channel's outbuf all the way to the
  458. * kernel */
  459. MOCK_IMPL(void, channel_write_to_kernel, (channel_t *chan))
  460. {
  461. tor_assert(chan);
  462. log_debug(LD_SCHED, "Writing %lu bytes to kernel for chan %" PRIu64,
  463. (unsigned long)channel_outbuf_length(chan),
  464. chan->global_identifier);
  465. connection_handle_write(TO_CONN(BASE_CHAN_TO_TLS(chan)->conn), 0);
  466. }
  467. /* Return true iff the scheduler has work to perform. */
  468. static int
  469. have_work(void)
  470. {
  471. smartlist_t *cp = get_channels_pending();
  472. IF_BUG_ONCE(!cp) {
  473. return 0; // channels_pending doesn't exist so... no work?
  474. }
  475. return smartlist_len(cp) > 0;
  476. }
  477. /* Function of the scheduler interface: free_all() */
  478. static void
  479. kist_free_all(void)
  480. {
  481. free_all_socket_info();
  482. }
  483. /* Function of the scheduler interface: on_channel_free() */
  484. static void
  485. kist_on_channel_free_fn(const channel_t *chan)
  486. {
  487. free_socket_info_by_chan(&socket_table, chan);
  488. }
  489. /* Function of the scheduler interface: on_new_consensus() */
  490. static void
  491. kist_scheduler_on_new_consensus(void)
  492. {
  493. set_scheduler_run_interval();
  494. }
  495. /* Function of the scheduler interface: on_new_options() */
  496. static void
  497. kist_scheduler_on_new_options(void)
  498. {
  499. sock_buf_size_factor = get_options()->KISTSockBufSizeFactor;
  500. /* Calls kist_scheduler_run_interval which calls get_options(). */
  501. set_scheduler_run_interval();
  502. }
  503. /* Function of the scheduler interface: init() */
  504. static void
  505. kist_scheduler_init(void)
  506. {
  507. /* When initializing the scheduler, the last run could be 0 because it is
  508. * declared static or a value in the past that was set when it was last
  509. * used. In both cases, we want to initialize it to now so we don't risk
  510. * using the value 0 which doesn't play well with our monotonic time
  511. * interface.
  512. *
  513. * One side effect is that the first scheduler run will be at the next tick
  514. * that is in now + 10 msec (KIST_SCHED_RUN_INTERVAL_DEFAULT) by default. */
  515. monotime_get(&scheduler_last_run);
  516. kist_scheduler_on_new_options();
  517. IF_BUG_ONCE(sched_run_interval == 0) {
  518. log_warn(LD_SCHED, "We are initing the KIST scheduler and noticed the "
  519. "KISTSchedRunInterval is telling us to not use KIST. That's "
  520. "weird! We'll continue using KIST, but at %" PRId32 "ms.",
  521. KIST_SCHED_RUN_INTERVAL_DEFAULT);
  522. sched_run_interval = KIST_SCHED_RUN_INTERVAL_DEFAULT;
  523. }
  524. }
  525. /* Function of the scheduler interface: schedule() */
  526. static void
  527. kist_scheduler_schedule(void)
  528. {
  529. struct monotime_t now;
  530. struct timeval next_run;
  531. int64_t diff;
  532. if (!have_work()) {
  533. return;
  534. }
  535. monotime_get(&now);
  536. /* If time is really monotonic, we can never have now being smaller than the
  537. * last scheduler run. The scheduler_last_run at first is set to 0.
  538. * Unfortunately, not all platforms guarantee monotonic time so we log at
  539. * info level but don't make it more noisy. */
  540. diff = monotime_diff_msec(&scheduler_last_run, &now);
  541. if (diff < 0) {
  542. log_info(LD_SCHED, "Monotonic time between now and last run of scheduler "
  543. "is negative: %" PRId64 ". Setting diff to 0.", diff);
  544. diff = 0;
  545. }
  546. if (diff < sched_run_interval) {
  547. next_run.tv_sec = 0;
  548. /* Takes 1000 ms -> us. This will always be valid because diff can NOT be
  549. * negative and can NOT be bigger than sched_run_interval so values can
  550. * only go from 1000 usec (diff set to interval - 1) to 100000 usec (diff
  551. * set to 0) for the maximum allowed run interval (100ms). */
  552. next_run.tv_usec = (int) ((sched_run_interval - diff) * 1000);
  553. /* Re-adding an event reschedules it. It does not duplicate it. */
  554. scheduler_ev_add(&next_run);
  555. } else {
  556. scheduler_ev_active();
  557. }
  558. }
  559. /* Function of the scheduler interface: run() */
  560. static void
  561. kist_scheduler_run(void)
  562. {
  563. /* Define variables */
  564. channel_t *chan = NULL; // current working channel
  565. /* The last distinct chan served in a sched loop. */
  566. channel_t *prev_chan = NULL;
  567. int flush_result; // temporarily store results from flush calls
  568. /* Channels to be re-adding to pending at the end */
  569. smartlist_t *to_readd = NULL;
  570. smartlist_t *cp = get_channels_pending();
  571. outbuf_table_t outbuf_table = HT_INITIALIZER();
  572. /* For each pending channel, collect new kernel information */
  573. SMARTLIST_FOREACH_BEGIN(cp, const channel_t *, pchan) {
  574. init_socket_info(&socket_table, pchan);
  575. update_socket_info(&socket_table, pchan);
  576. } SMARTLIST_FOREACH_END(pchan);
  577. log_debug(LD_SCHED, "Running the scheduler. %d channels pending",
  578. smartlist_len(cp));
  579. /* The main scheduling loop. Loop until there are no more pending channels */
  580. while (smartlist_len(cp) > 0) {
  581. /* get best channel */
  582. chan = smartlist_pqueue_pop(cp, scheduler_compare_channels,
  583. offsetof(channel_t, sched_heap_idx));
  584. if (SCHED_BUG(!chan, NULL)) {
  585. /* Some-freaking-how a NULL got into the channels_pending. That should
  586. * never happen, but it should be harmless to ignore it and keep looping.
  587. */
  588. continue;
  589. }
  590. bool added_new = outbuf_table_add(&outbuf_table, chan);
  591. if (added_new) {
  592. connection_t *conn = TO_CONN(BASE_CHAN_TO_TLS(chan)->conn);
  593. event_source_deliver_silently(conn->event_source,
  594. or_conn_outgoing_packed_cell, true);
  595. //tor_assert(conn->safe_conn != NULL);
  596. //safe_connection_stop_caring_about_modified(conn->safe_conn);
  597. }
  598. /* if we have switched to a new channel, consider writing the previous
  599. * channel's outbuf to the kernel. */
  600. if (!prev_chan) {
  601. prev_chan = chan;
  602. }
  603. if (prev_chan != chan) {
  604. //if (channel_should_write_to_kernel(&outbuf_table, prev_chan)) {
  605. // channel_write_to_kernel(prev_chan);
  606. // outbuf_table_remove(&outbuf_table, prev_chan);
  607. //}
  608. prev_chan = chan;
  609. }
  610. /* Only flush and write if the per-socket limit hasn't been hit */
  611. if (socket_can_write(&socket_table, chan)) {
  612. /* flush to channel queue/outbuf */
  613. flush_result = (int)channel_flush_some_cells(chan, 1); // 1 for num cells
  614. /* XXX: While flushing cells, it is possible that the connection write
  615. * fails leading to the channel to be closed which triggers a release
  616. * and free its entry in the socket table. And because of a engineering
  617. * design issue, the error is not propagated back so we don't get an
  618. * error at this point. So before we continue, make sure the channel is
  619. * open and if not just ignore it. See #23751. */
  620. if (!CHANNEL_IS_OPEN(chan)) {
  621. /* Channel isn't open so we put it back in IDLE mode. It is either
  622. * renegotiating its TLS session or about to be released. */
  623. scheduler_set_channel_state(chan, SCHED_CHAN_IDLE);
  624. continue;
  625. }
  626. /* flush_result has the # cells flushed */
  627. if (flush_result > 0) {
  628. update_socket_written(&socket_table, chan, flush_result *
  629. (CELL_MAX_NETWORK_SIZE + TLS_PER_CELL_OVERHEAD));
  630. } else {
  631. /* XXX: This can happen because tor sometimes does flush in an
  632. * opportunistic way cells from the circuit to the outbuf so the
  633. * channel can end up here without having anything to flush nor needed
  634. * to write to the kernel. Hopefully we'll fix that soon but for now
  635. * we have to handle this case which happens kind of often. */
  636. log_debug(LD_SCHED,
  637. "We didn't flush anything on a chan that we think "
  638. "can write and wants to write. The channel's state is '%s' "
  639. "and in scheduler state '%s'. We're going to mark it as "
  640. "waiting_for_cells (as that's most likely the issue) and "
  641. "stop scheduling it this round.",
  642. channel_state_to_string(chan->state),
  643. get_scheduler_state_string(chan->scheduler_state));
  644. scheduler_set_channel_state(chan, SCHED_CHAN_WAITING_FOR_CELLS);
  645. continue;
  646. }
  647. }
  648. /* Decide what to do with the channel now */
  649. if (!channel_more_to_flush(chan) &&
  650. !socket_can_write(&socket_table, chan)) {
  651. /* Case 1: no more cells to send, and cannot write */
  652. /*
  653. * You might think we should put the channel in SCHED_CHAN_IDLE. And
  654. * you're probably correct. While implementing KIST, we found that the
  655. * scheduling system would sometimes lose track of channels when we did
  656. * that. We suspect it has to do with the difference between "can't
  657. * write because socket/outbuf is full" and KIST's "can't write because
  658. * we've arbitrarily decided that that's enough for now." Sometimes
  659. * channels run out of cells at the same time they hit their
  660. * kist-imposed write limit and maybe the rest of Tor doesn't put the
  661. * channel back in pending when it is supposed to.
  662. *
  663. * This should be investigated again. It is as simple as changing
  664. * SCHED_CHAN_WAITING_FOR_CELLS to SCHED_CHAN_IDLE and seeing if Tor
  665. * starts having serious throughput issues. Best done in shadow/chutney.
  666. */
  667. scheduler_set_channel_state(chan, SCHED_CHAN_WAITING_FOR_CELLS);
  668. } else if (!channel_more_to_flush(chan)) {
  669. /* Case 2: no more cells to send, but still open for writes */
  670. scheduler_set_channel_state(chan, SCHED_CHAN_WAITING_FOR_CELLS);
  671. } else if (!socket_can_write(&socket_table, chan)) {
  672. /* Case 3: cells to send, but cannot write */
  673. /*
  674. * We want to write, but can't. If we left the channel in
  675. * channels_pending, we would never exit the scheduling loop. We need to
  676. * add it to a temporary list of channels to be added to channels_pending
  677. * after the scheduling loop is over. They can hopefully be taken care of
  678. * in the next scheduling round.
  679. */
  680. if (!to_readd) {
  681. to_readd = smartlist_new();
  682. }
  683. smartlist_add(to_readd, chan);
  684. } else {
  685. /* Case 4: cells to send, and still open for writes */
  686. scheduler_set_channel_state(chan, SCHED_CHAN_PENDING);
  687. if (!SCHED_BUG(chan->sched_heap_idx != -1, chan)) {
  688. smartlist_pqueue_add(cp, scheduler_compare_channels,
  689. offsetof(channel_t, sched_heap_idx), chan);
  690. }
  691. }
  692. } /* End of main scheduling loop */
  693. /* Write the outbuf of any channels that still have data */
  694. //HT_FOREACH_FN(outbuf_table_s, &outbuf_table, each_channel_write_to_kernel,
  695. // NULL);
  696. HT_FOREACH_FN(outbuf_table_s, &outbuf_table, each_channel_wakeup_listeners,
  697. NULL);
  698. /* We are done with it. */
  699. HT_FOREACH_FN(outbuf_table_s, &outbuf_table, free_outbuf_info_by_ent, NULL);
  700. HT_CLEAR(outbuf_table_s, &outbuf_table);
  701. log_debug(LD_SCHED, "len pending=%d, len to_readd=%d",
  702. smartlist_len(cp),
  703. (to_readd ? smartlist_len(to_readd) : -1));
  704. /* Re-add any channels we need to */
  705. if (to_readd) {
  706. SMARTLIST_FOREACH_BEGIN(to_readd, channel_t *, readd_chan) {
  707. scheduler_set_channel_state(readd_chan, SCHED_CHAN_PENDING);
  708. if (!smartlist_contains(cp, readd_chan)) {
  709. if (!SCHED_BUG(readd_chan->sched_heap_idx != -1, readd_chan)) {
  710. /* XXXX Note that the check above is in theory redundant with
  711. * the smartlist_contains check. But let's make sure we're
  712. * not messing anything up, and leave them both for now. */
  713. smartlist_pqueue_add(cp, scheduler_compare_channels,
  714. offsetof(channel_t, sched_heap_idx), readd_chan);
  715. }
  716. }
  717. } SMARTLIST_FOREACH_END(readd_chan);
  718. smartlist_free(to_readd);
  719. }
  720. monotime_get(&scheduler_last_run);
  721. }
  722. /*****************************************************************************
  723. * Externally called function implementations not called through scheduler_t
  724. *****************************************************************************/
  725. /* Stores the kist scheduler function pointers. */
  726. static scheduler_t kist_scheduler = {
  727. .type = SCHEDULER_KIST,
  728. .free_all = kist_free_all,
  729. .on_channel_free = kist_on_channel_free_fn,
  730. .init = kist_scheduler_init,
  731. .on_new_consensus = kist_scheduler_on_new_consensus,
  732. .schedule = kist_scheduler_schedule,
  733. .run = kist_scheduler_run,
  734. .on_new_options = kist_scheduler_on_new_options,
  735. };
  736. /* Return the KIST scheduler object. If it didn't exists, return a newly
  737. * allocated one but init() is not called. */
  738. scheduler_t *
  739. get_kist_scheduler(void)
  740. {
  741. return &kist_scheduler;
  742. }
  743. /* Check the torrc (and maybe consensus) for the configured KIST scheduler run
  744. * interval.
  745. * - If torrc > 0, then return the positive torrc value (should use KIST, and
  746. * should use the set value)
  747. * - If torrc == 0, then look in the consensus for what the value should be.
  748. * - If == 0, then return 0 (don't use KIST)
  749. * - If > 0, then return the positive consensus value
  750. * - If consensus doesn't say anything, return 10 milliseconds, default.
  751. */
  752. int
  753. kist_scheduler_run_interval(void)
  754. {
  755. int run_interval = get_options()->KISTSchedRunInterval;
  756. if (run_interval != 0) {
  757. log_debug(LD_SCHED, "Found KISTSchedRunInterval=%" PRId32 " in torrc. "
  758. "Using that.", run_interval);
  759. return run_interval;
  760. }
  761. log_debug(LD_SCHED, "KISTSchedRunInterval=0, turning to the consensus.");
  762. /* Will either be the consensus value or the default. Note that 0 can be
  763. * returned which means the consensus wants us to NOT use KIST. */
  764. return networkstatus_get_param(NULL, "KISTSchedRunInterval",
  765. KIST_SCHED_RUN_INTERVAL_DEFAULT,
  766. KIST_SCHED_RUN_INTERVAL_MIN,
  767. KIST_SCHED_RUN_INTERVAL_MAX);
  768. }
  769. /* Set KISTLite mode that is KIST without kernel support. */
  770. void
  771. scheduler_kist_set_lite_mode(void)
  772. {
  773. kist_lite_mode = 1;
  774. kist_scheduler.type = SCHEDULER_KIST_LITE;
  775. log_info(LD_SCHED,
  776. "Setting KIST scheduler without kernel support (KISTLite mode)");
  777. }
  778. /* Set KIST mode that is KIST with kernel support. */
  779. void
  780. scheduler_kist_set_full_mode(void)
  781. {
  782. kist_lite_mode = 0;
  783. kist_scheduler.type = SCHEDULER_KIST;
  784. log_info(LD_SCHED,
  785. "Setting KIST scheduler with kernel support (KIST mode)");
  786. }
  787. #ifdef HAVE_KIST_SUPPORT
  788. /* Return true iff the scheduler subsystem should use KIST. */
  789. int
  790. scheduler_can_use_kist(void)
  791. {
  792. if (kist_no_kernel_support) {
  793. /* We have no kernel support so we can't use KIST. */
  794. return 0;
  795. }
  796. /* We do have the support, time to check if we can get the interval that the
  797. * consensus can be disabling. */
  798. int run_interval = kist_scheduler_run_interval();
  799. log_debug(LD_SCHED, "Determined KIST sched_run_interval should be "
  800. "%" PRId32 ". Can%s use KIST.",
  801. run_interval, (run_interval > 0 ? "" : " not"));
  802. return run_interval > 0;
  803. }
  804. #else /* !defined(HAVE_KIST_SUPPORT) */
  805. int
  806. scheduler_can_use_kist(void)
  807. {
  808. return 0;
  809. }
  810. #endif /* defined(HAVE_KIST_SUPPORT) */