cpuworker.c 12 KB

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  1. /* Copyright 2003-2004 Roger Dingledine. */
  2. /* See LICENSE for licensing information */
  3. /* $Id$ */
  4. /**
  5. * \file cpuworker.c
  6. * \brief Run computation-intensive tasks (generally for crypto) in
  7. * a separate execution context. [OR only.]
  8. *
  9. * Right now, we only use this for processing onionskins.
  10. **/
  11. #include "or.h"
  12. extern or_options_t options; /* command-line and config-file options */
  13. /** The maximum number of cpuworker processes we will keep around. */
  14. #define MAX_CPUWORKERS 16
  15. /** The minimum number of cpuworker processes we will keep around. */
  16. #define MIN_CPUWORKERS 1
  17. /** The tag specifies which circuit this onionskin was from. */
  18. #define TAG_LEN 8
  19. /** How many bytes are sent from tor to the cpuworker? */
  20. #define LEN_ONION_QUESTION (1+TAG_LEN+ONIONSKIN_CHALLENGE_LEN)
  21. /** How many bytes are sent from the cpuworker back to tor? */
  22. #define LEN_ONION_RESPONSE (1+TAG_LEN+ONIONSKIN_REPLY_LEN+40+32)
  23. /** How many cpuworkers we have running right now. */
  24. static int num_cpuworkers=0;
  25. /** How many of the running cpuworkers have an assigned task right now. */
  26. static int num_cpuworkers_busy=0;
  27. /** We need to spawn new cpuworkers whenever we rotate the onion keys
  28. * on platforms where execution contexts==processes. This variable stores
  29. * the last time we got a key rotation event. */
  30. static time_t last_rotation_time=0;
  31. static int cpuworker_main(void *data);
  32. static int spawn_cpuworker(void);
  33. static void spawn_enough_cpuworkers(void);
  34. static void process_pending_task(connection_t *cpuworker);
  35. /** Initialize the cpuworker subsystem.
  36. */
  37. void cpu_init(void) {
  38. last_rotation_time=time(NULL);
  39. spawn_enough_cpuworkers();
  40. }
  41. /** Called when we're done sending a request to a cpuworker. */
  42. int connection_cpu_finished_flushing(connection_t *conn) {
  43. tor_assert(conn && conn->type == CONN_TYPE_CPUWORKER);
  44. connection_stop_writing(conn);
  45. return 0;
  46. }
  47. /** Pack addr,port,and circ_id; set *tag to the result. (See note on
  48. * cpuworker_main for wire format.) */
  49. static void tag_pack(char *tag, uint32_t addr, uint16_t port, uint16_t circ_id) {
  50. *(uint32_t *)tag = addr;
  51. *(uint16_t *)(tag+4) = port;
  52. *(uint16_t *)(tag+6) = circ_id;
  53. }
  54. /** Unpack <b>tag</b> into addr, port, and circ_id.
  55. */
  56. static void tag_unpack(const char *tag, uint32_t *addr, uint16_t *port, uint16_t *circ_id) {
  57. struct in_addr in;
  58. *addr = *(const uint32_t *)tag;
  59. *port = *(const uint16_t *)(tag+4);
  60. *circ_id = *(const uint16_t *)(tag+6);
  61. in.s_addr = htonl(*addr);
  62. log_fn(LOG_DEBUG,"onion was from %s:%d, circ_id %d.", inet_ntoa(in), *port, *circ_id);
  63. }
  64. /** Called when the onion key has changed and we need to spawn new
  65. * cpuworkers. Close all currently idle cpuworkers, and mark the last
  66. * rotation time as now.
  67. */
  68. void cpuworkers_rotate(void)
  69. {
  70. connection_t *cpuworker;
  71. while ((cpuworker = connection_get_by_type_state(CONN_TYPE_CPUWORKER,
  72. CPUWORKER_STATE_IDLE))) {
  73. connection_mark_for_close(cpuworker);
  74. --num_cpuworkers;
  75. }
  76. last_rotation_time = time(NULL);
  77. spawn_enough_cpuworkers();
  78. }
  79. /** Called when we get data from a cpuworker. If the answer is not complete,
  80. * wait for a complete answer. If the cpuworker closes the connection,
  81. * mark it as closed and spawn a new one as needed. If the answer is complete,
  82. * process it as appropriate.
  83. */
  84. int connection_cpu_process_inbuf(connection_t *conn) {
  85. char success;
  86. unsigned char buf[LEN_ONION_RESPONSE];
  87. uint32_t addr;
  88. uint16_t port;
  89. uint16_t circ_id;
  90. connection_t *p_conn;
  91. circuit_t *circ;
  92. tor_assert(conn && conn->type == CONN_TYPE_CPUWORKER);
  93. if(conn->inbuf_reached_eof) {
  94. log_fn(LOG_WARN,"Read eof. Worker died unexpectedly.");
  95. if(conn->state != CPUWORKER_STATE_IDLE) {
  96. /* the circ associated with this cpuworker will have to wait until
  97. * it gets culled in run_connection_housekeeping(), since we have
  98. * no way to find out which circ it was. */
  99. log_fn(LOG_WARN,"...and it left a circuit queued; abandoning circ.");
  100. num_cpuworkers_busy--;
  101. }
  102. num_cpuworkers--;
  103. spawn_enough_cpuworkers(); /* try to regrow. hope we don't end up spinning. */
  104. connection_mark_for_close(conn);
  105. return 0;
  106. }
  107. if(conn->state == CPUWORKER_STATE_BUSY_ONION) {
  108. if(buf_datalen(conn->inbuf) < LEN_ONION_RESPONSE) /* entire answer available? */
  109. return 0; /* not yet */
  110. tor_assert(buf_datalen(conn->inbuf) == LEN_ONION_RESPONSE);
  111. connection_fetch_from_buf(&success,1,conn);
  112. connection_fetch_from_buf(buf,LEN_ONION_RESPONSE-1,conn);
  113. /* parse out the circ it was talking about */
  114. tag_unpack(buf, &addr, &port, &circ_id);
  115. circ = NULL;
  116. p_conn = connection_exact_get_by_addr_port(addr,port);
  117. if(p_conn)
  118. circ = circuit_get_by_circ_id_conn(circ_id, p_conn);
  119. if(success == 0) {
  120. log_fn(LOG_WARN,"decoding onionskin failed. Closing.");
  121. if(circ)
  122. circuit_mark_for_close(circ);
  123. goto done_processing;
  124. }
  125. if(!circ) {
  126. log_fn(LOG_INFO,"processed onion for a circ that's gone. Dropping.");
  127. goto done_processing;
  128. }
  129. tor_assert(circ->p_conn);
  130. if(onionskin_answer(circ, buf+TAG_LEN, buf+TAG_LEN+ONIONSKIN_REPLY_LEN) < 0) {
  131. log_fn(LOG_WARN,"onionskin_answer failed. Closing.");
  132. circuit_mark_for_close(circ);
  133. goto done_processing;
  134. }
  135. log_fn(LOG_DEBUG,"onionskin_answer succeeded. Yay.");
  136. } else {
  137. tor_assert(0); /* don't ask me to do handshakes yet */
  138. }
  139. done_processing:
  140. conn->state = CPUWORKER_STATE_IDLE;
  141. num_cpuworkers_busy--;
  142. if (conn->timestamp_created < last_rotation_time) {
  143. connection_mark_for_close(conn);
  144. num_cpuworkers--;
  145. spawn_enough_cpuworkers();
  146. } else {
  147. process_pending_task(conn);
  148. }
  149. return 0;
  150. }
  151. /** Implement a cpuworker. 'data' is an fdarray as returned by socketpair.
  152. * Read and writes from fdarray[1]. Reads requests, writes answers.
  153. *
  154. * Request format:
  155. * Task type [1 byte, always CPUWORKER_TASK_ONION]
  156. * Opaque tag TAG_LEN
  157. * Onionskin challenge ONIONSKIN_CHALLENGE_LEN
  158. * Response format:
  159. * Success/failure [1 byte, boolean.]
  160. * Opaque tag TAG_LEN
  161. * Onionskin challenge ONIONSKIN_REPLY_LEN
  162. * Negotiated keys KEY_LEN*2+DIGEST_LEN*2
  163. */
  164. static int cpuworker_main(void *data) {
  165. unsigned char question[ONIONSKIN_CHALLENGE_LEN];
  166. unsigned char question_type;
  167. int *fdarray = data;
  168. int fd;
  169. /* variables for onion processing */
  170. unsigned char keys[40+32];
  171. unsigned char reply_to_proxy[ONIONSKIN_REPLY_LEN];
  172. unsigned char buf[LEN_ONION_RESPONSE];
  173. char tag[TAG_LEN];
  174. crypto_pk_env_t *onion_key = NULL, *last_onion_key = NULL;
  175. tor_close_socket(fdarray[0]); /* this is the side of the socketpair the parent uses */
  176. fd = fdarray[1]; /* this side is ours */
  177. #ifndef MS_WINDOWS
  178. connection_free_all(); /* so the child doesn't hold the parent's fd's open */
  179. #endif
  180. dup_onion_keys(&onion_key, &last_onion_key);
  181. for(;;) {
  182. if(recv(fd, &question_type, 1, 0) != 1) {
  183. // log_fn(LOG_ERR,"read type failed. Exiting.");
  184. log_fn(LOG_INFO,"cpuworker exiting because tor process closed connection (either rotated keys or died).");
  185. goto end;
  186. }
  187. tor_assert(question_type == CPUWORKER_TASK_ONION);
  188. if(read_all(fd, tag, TAG_LEN, 1) != TAG_LEN) {
  189. log_fn(LOG_ERR,"read tag failed. Exiting.");
  190. goto end;
  191. }
  192. if(read_all(fd, question, ONIONSKIN_CHALLENGE_LEN, 1) != ONIONSKIN_CHALLENGE_LEN) {
  193. log_fn(LOG_ERR,"read question failed. Exiting.");
  194. goto end;
  195. }
  196. if(question_type == CPUWORKER_TASK_ONION) {
  197. if(onion_skin_server_handshake(question, onion_key, last_onion_key,
  198. reply_to_proxy, keys, 40+32) < 0) {
  199. /* failure */
  200. log_fn(LOG_WARN,"onion_skin_server_handshake failed.");
  201. memset(buf,0,LEN_ONION_RESPONSE); /* send all zeros for failure */
  202. } else {
  203. /* success */
  204. log_fn(LOG_DEBUG,"onion_skin_server_handshake succeeded.");
  205. buf[0] = 1; /* 1 means success */
  206. memcpy(buf+1,tag,TAG_LEN);
  207. memcpy(buf+1+TAG_LEN,reply_to_proxy,ONIONSKIN_REPLY_LEN);
  208. memcpy(buf+1+TAG_LEN+ONIONSKIN_REPLY_LEN,keys,40+32);
  209. }
  210. if(write_all(fd, buf, LEN_ONION_RESPONSE, 1) != LEN_ONION_RESPONSE) {
  211. log_fn(LOG_ERR,"writing response buf failed. Exiting.");
  212. spawn_exit();
  213. }
  214. log_fn(LOG_DEBUG,"finished writing response.");
  215. }
  216. }
  217. end:
  218. if (onion_key)
  219. crypto_free_pk_env(onion_key);
  220. if (last_onion_key)
  221. crypto_free_pk_env(last_onion_key);
  222. spawn_exit();
  223. return 0; /* windows wants this function to return an int */
  224. }
  225. /** Launch a new cpuworker.
  226. */
  227. static int spawn_cpuworker(void) {
  228. int fd[2];
  229. connection_t *conn;
  230. if(tor_socketpair(AF_UNIX, SOCK_STREAM, 0, fd) < 0) {
  231. log(LOG_ERR, "Couldn't construct socketpair: %s",
  232. tor_socket_strerror(tor_socket_errno(-1)));
  233. exit(1);
  234. }
  235. spawn_func(cpuworker_main, (void*)fd);
  236. log_fn(LOG_DEBUG,"just spawned a worker.");
  237. tor_close_socket(fd[1]); /* we don't need the worker's side of the pipe */
  238. conn = connection_new(CONN_TYPE_CPUWORKER);
  239. set_socket_nonblocking(fd[0]);
  240. /* set up conn so it's got all the data we need to remember */
  241. conn->s = fd[0];
  242. conn->address = tor_strdup("localhost");
  243. if(connection_add(conn) < 0) { /* no space, forget it */
  244. log_fn(LOG_WARN,"connection_add failed. Giving up.");
  245. connection_free(conn); /* this closes fd[0] */
  246. return -1;
  247. }
  248. conn->state = CPUWORKER_STATE_IDLE;
  249. connection_start_reading(conn);
  250. return 0; /* success */
  251. }
  252. /** If we have too few or too many active cpuworkers, try to spawn new ones
  253. * or kill idle ones.
  254. */
  255. static void spawn_enough_cpuworkers(void) {
  256. int num_cpuworkers_needed = options.NumCpus;
  257. if(num_cpuworkers_needed < MIN_CPUWORKERS)
  258. num_cpuworkers_needed = MIN_CPUWORKERS;
  259. if(num_cpuworkers_needed > MAX_CPUWORKERS)
  260. num_cpuworkers_needed = MAX_CPUWORKERS;
  261. while(num_cpuworkers < num_cpuworkers_needed) {
  262. if(spawn_cpuworker() < 0) {
  263. log_fn(LOG_WARN,"spawn failed!");
  264. return;
  265. }
  266. num_cpuworkers++;
  267. }
  268. }
  269. /** Take a pending task from the queue and assign it to 'cpuworker'. */
  270. static void process_pending_task(connection_t *cpuworker) {
  271. circuit_t *circ;
  272. tor_assert(cpuworker);
  273. /* for now only process onion tasks */
  274. circ = onion_next_task();
  275. if(!circ)
  276. return;
  277. if(assign_to_cpuworker(cpuworker, CPUWORKER_TASK_ONION, circ) < 0)
  278. log_fn(LOG_WARN,"assign_to_cpuworker failed. Ignoring.");
  279. }
  280. /** if cpuworker is defined, assert that he's idle, and use him. else,
  281. * look for an idle cpuworker and use him. if none idle, queue task onto
  282. * the pending onion list and return.
  283. * If question_type is CPUWORKER_TASK_ONION then task is a circ.
  284. * No other question_types are allowed.
  285. */
  286. int assign_to_cpuworker(connection_t *cpuworker, unsigned char question_type,
  287. void *task) {
  288. circuit_t *circ;
  289. char tag[TAG_LEN];
  290. tor_assert(question_type == CPUWORKER_TASK_ONION);
  291. if(question_type == CPUWORKER_TASK_ONION) {
  292. circ = task;
  293. if(num_cpuworkers_busy == num_cpuworkers) {
  294. log_fn(LOG_DEBUG,"No idle cpuworkers. Queuing.");
  295. if(onion_pending_add(circ) < 0)
  296. return -1;
  297. return 0;
  298. }
  299. if (!cpuworker)
  300. cpuworker = connection_get_by_type_state(CONN_TYPE_CPUWORKER, CPUWORKER_STATE_IDLE);
  301. tor_assert(cpuworker);
  302. if(!circ->p_conn) {
  303. log_fn(LOG_INFO,"circ->p_conn gone. Failing circ.");
  304. return -1;
  305. }
  306. tag_pack(tag, circ->p_conn->addr, circ->p_conn->port, circ->p_circ_id);
  307. cpuworker->state = CPUWORKER_STATE_BUSY_ONION;
  308. num_cpuworkers_busy++;
  309. connection_write_to_buf(&question_type, 1, cpuworker);
  310. connection_write_to_buf(tag, sizeof(tag), cpuworker);
  311. connection_write_to_buf(circ->onionskin, ONIONSKIN_CHALLENGE_LEN, cpuworker);
  312. }
  313. return 0;
  314. }
  315. /*
  316. Local Variables:
  317. mode:c
  318. indent-tabs-mode:nil
  319. c-basic-offset:2
  320. End:
  321. */