sc_hypervisor.c 30 KB

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  1. /* StarPU --- Runtime system for heterogeneous multicore architectures.
  2. *
  3. * Copyright (C) 2011, 2012 INRIA
  4. *
  5. * StarPU is free software; you can redistribute it and/or modify
  6. * it under the terms of the GNU Lesser General Public License as published by
  7. * the Free Software Foundation; either version 2.1 of the License, or (at
  8. * your option) any later version.
  9. *
  10. * StarPU is distributed in the hope that it will be useful, but
  11. * WITHOUT ANY WARRANTY; without even the implied warranty of
  12. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.
  13. *
  14. * See the GNU Lesser General Public License in COPYING.LGPL for more details.
  15. */
  16. #include <sc_hypervisor_intern.h>
  17. #include <sc_hypervisor_policy.h>
  18. #include <common/uthash.h>
  19. #include <starpu_config.h>
  20. unsigned imposed_resize = 0;
  21. unsigned type_of_tasks_known = 0;
  22. struct starpu_sched_ctx_performance_counters* perf_counters = NULL;
  23. static void notify_idle_cycle(unsigned sched_ctx, int worker, double idle_time);
  24. static void notify_pushed_task(unsigned sched_ctx, int worker);
  25. static void notify_poped_task(unsigned sched_ctx, int worker, struct starpu_task *task, size_t data_size, uint32_t footprint);
  26. static void notify_post_exec_hook(unsigned sched_ctx, int taskid);
  27. static void notify_idle_end(unsigned sched_ctx, int worker);
  28. static void notify_submitted_job(struct starpu_task *task, unsigned footprint);
  29. static void notify_delete_context(unsigned sched_ctx);
  30. extern struct sc_hypervisor_policy idle_policy;
  31. extern struct sc_hypervisor_policy app_driven_policy;
  32. extern struct sc_hypervisor_policy gflops_rate_policy;
  33. #ifdef STARPU_HAVE_GLPK_H
  34. extern struct sc_hypervisor_policy feft_lp_policy;
  35. extern struct sc_hypervisor_policy teft_lp_policy;
  36. extern struct sc_hypervisor_policy ispeed_lp_policy;
  37. extern struct sc_hypervisor_policy debit_lp_policy;
  38. #endif // STARPU_HAVE_GLPK_
  39. extern struct sc_hypervisor_policy ispeed_policy;
  40. static struct sc_hypervisor_policy *predefined_policies[] =
  41. {
  42. &idle_policy,
  43. &app_driven_policy,
  44. #ifdef STARPU_HAVE_GLPK_H
  45. &feft_lp_policy,
  46. &teft_lp_policy,
  47. &ispeed_lp_policy,
  48. &debit_lp_policy,
  49. #endif // STARPU_HAVE_GLPK_H
  50. &gflops_rate_policy,
  51. &ispeed_policy
  52. };
  53. static void _load_hypervisor_policy(struct sc_hypervisor_policy *policy)
  54. {
  55. STARPU_ASSERT(policy);
  56. hypervisor.policy.name = policy->name;
  57. hypervisor.policy.size_ctxs = policy->size_ctxs;
  58. hypervisor.policy.handle_poped_task = policy->handle_poped_task;
  59. hypervisor.policy.handle_pushed_task = policy->handle_pushed_task;
  60. hypervisor.policy.handle_idle_cycle = policy->handle_idle_cycle;
  61. hypervisor.policy.handle_idle_end = policy->handle_idle_end;
  62. hypervisor.policy.handle_post_exec_hook = policy->handle_post_exec_hook;
  63. hypervisor.policy.handle_submitted_job = policy->handle_submitted_job;
  64. hypervisor.policy.end_ctx = policy->end_ctx;
  65. }
  66. static struct sc_hypervisor_policy *_find_hypervisor_policy_from_name(const char *policy_name)
  67. {
  68. if (!policy_name)
  69. return NULL;
  70. unsigned i;
  71. for (i = 0; i < sizeof(predefined_policies)/sizeof(predefined_policies[0]); i++)
  72. {
  73. struct sc_hypervisor_policy *p;
  74. p = predefined_policies[i];
  75. if (p->name)
  76. {
  77. if (strcmp(policy_name, p->name) == 0) {
  78. /* we found a policy with the requested name */
  79. return p;
  80. }
  81. }
  82. }
  83. fprintf(stderr, "Warning: hypervisor policy \"%s\" was not found, try \"help\" to get a list\n", policy_name);
  84. /* nothing was found */
  85. return NULL;
  86. }
  87. static struct sc_hypervisor_policy *_select_hypervisor_policy(struct sc_hypervisor_policy* hypervisor_policy)
  88. {
  89. struct sc_hypervisor_policy *selected_policy = NULL;
  90. if(hypervisor_policy && hypervisor_policy->custom)
  91. return hypervisor_policy;
  92. /* we look if the application specified the name of a policy to load */
  93. const char *policy_name;
  94. if (hypervisor_policy && hypervisor_policy->name)
  95. {
  96. policy_name = hypervisor_policy->name;
  97. }
  98. else
  99. {
  100. policy_name = getenv("SC_HYPERVISOR_POLICY");
  101. }
  102. if (policy_name)
  103. selected_policy = _find_hypervisor_policy_from_name(policy_name);
  104. /* Perhaps there was no policy that matched the name */
  105. if (selected_policy)
  106. return selected_policy;
  107. /* If no policy was specified, we use the idle policy as a default */
  108. return &idle_policy;
  109. }
  110. /* initializez the performance counters that starpu will use to retrive hints for resizing */
  111. struct starpu_sched_ctx_performance_counters* sc_hypervisor_init(struct sc_hypervisor_policy *hypervisor_policy)
  112. {
  113. hypervisor.min_tasks = 0;
  114. hypervisor.nsched_ctxs = 0;
  115. char* vel_gap = getenv("SC_HYPERVISOR_MAX_VELOCITY_GAP");
  116. hypervisor.max_velocity_gap = vel_gap ? atof(vel_gap) : SC_VELOCITY_MAX_GAP_DEFAULT;
  117. char* crit = getenv("SC_HYPERVISOR_TRIGGER_RESIZE");
  118. hypervisor.resize_criteria = !crit ? SC_IDLE : strcmp(crit,"idle") == 0 ? SC_IDLE : (strcmp(crit,"speed") == 0 ? SC_VELOCITY : SC_NOTHING);
  119. starpu_pthread_mutex_init(&act_hypervisor_mutex, NULL);
  120. hypervisor.start_executing_time = starpu_timing_now();
  121. int i;
  122. for(i = 0; i < STARPU_NMAX_SCHED_CTXS; i++)
  123. {
  124. hypervisor.resize[i] = 0;
  125. hypervisor.allow_remove[i] = 1;
  126. hypervisor.configurations[i] = NULL;
  127. hypervisor.sr = NULL;
  128. hypervisor.check_min_tasks[i] = 1;
  129. hypervisor.sched_ctxs[i] = STARPU_NMAX_SCHED_CTXS;
  130. hypervisor.sched_ctx_w[i].sched_ctx = STARPU_NMAX_SCHED_CTXS;
  131. hypervisor.sched_ctx_w[i].config = NULL;
  132. hypervisor.sched_ctx_w[i].total_flops = 0.0;
  133. hypervisor.sched_ctx_w[i].submitted_flops = 0.0;
  134. hypervisor.sched_ctx_w[i].remaining_flops = 0.0;
  135. hypervisor.sched_ctx_w[i].start_time = 0.0;
  136. hypervisor.sched_ctx_w[i].real_start_time = 0.0;
  137. hypervisor.sched_ctx_w[i].resize_ack.receiver_sched_ctx = -1;
  138. hypervisor.sched_ctx_w[i].resize_ack.moved_workers = NULL;
  139. hypervisor.sched_ctx_w[i].resize_ack.nmoved_workers = 0;
  140. hypervisor.sched_ctx_w[i].resize_ack.acked_workers = NULL;
  141. starpu_pthread_mutex_init(&hypervisor.sched_ctx_w[i].mutex, NULL);
  142. hypervisor.optimal_v[i] = 0.0;
  143. int j;
  144. for(j = 0; j < STARPU_NMAXWORKERS; j++)
  145. {
  146. hypervisor.sched_ctx_w[i].current_idle_time[j] = 0.0;
  147. hypervisor.sched_ctx_w[i].idle_time[j] = 0.0;
  148. hypervisor.sched_ctx_w[i].idle_start_time[j] = 0.0;
  149. hypervisor.sched_ctx_w[i].pushed_tasks[j] = 0;
  150. hypervisor.sched_ctx_w[i].poped_tasks[j] = 0;
  151. hypervisor.sched_ctx_w[i].elapsed_flops[j] = 0.0;
  152. hypervisor.sched_ctx_w[i].elapsed_data[j] = 0;
  153. hypervisor.sched_ctx_w[i].elapsed_tasks[j] = 0;
  154. hypervisor.sched_ctx_w[i].total_elapsed_flops[j] = 0.0;
  155. hypervisor.sched_ctx_w[i].worker_to_be_removed[j] = 0;
  156. hypervisor.sched_ctx_w[i].ref_velocity[j] = -1.0;
  157. }
  158. }
  159. struct sc_hypervisor_policy *selected_hypervisor_policy = _select_hypervisor_policy(hypervisor_policy);
  160. _load_hypervisor_policy(selected_hypervisor_policy);
  161. perf_counters = (struct starpu_sched_ctx_performance_counters*)malloc(sizeof(struct starpu_sched_ctx_performance_counters));
  162. perf_counters->notify_idle_cycle = notify_idle_cycle;
  163. perf_counters->notify_pushed_task = notify_pushed_task;
  164. perf_counters->notify_poped_task = notify_poped_task;
  165. perf_counters->notify_post_exec_hook = notify_post_exec_hook;
  166. perf_counters->notify_idle_end = notify_idle_end;
  167. perf_counters->notify_submitted_job = notify_submitted_job;
  168. perf_counters->notify_delete_context = notify_delete_context;
  169. starpu_sched_ctx_notify_hypervisor_exists();
  170. return perf_counters;
  171. }
  172. const char* sc_hypervisor_get_policy()
  173. {
  174. return hypervisor.policy.name;
  175. }
  176. /* the user can forbid the resizing process*/
  177. void sc_hypervisor_stop_resize(unsigned sched_ctx)
  178. {
  179. imposed_resize = 1;
  180. hypervisor.resize[sched_ctx] = 0;
  181. }
  182. /* the user can restart the resizing process*/
  183. void sc_hypervisor_start_resize(unsigned sched_ctx)
  184. {
  185. imposed_resize = 1;
  186. hypervisor.resize[sched_ctx] = 1;
  187. }
  188. static void _print_current_time()
  189. {
  190. if(!getenv("SC_HYPERVISOR_STOP_PRINT"))
  191. {
  192. double curr_time = starpu_timing_now();
  193. double elapsed_time = (curr_time - hypervisor.start_executing_time) / 1000000.0; /* in seconds */
  194. fprintf(stdout, "Time: %lf\n", elapsed_time);
  195. int i;
  196. for(i = 0; i < STARPU_NMAX_SCHED_CTXS; i++)
  197. {
  198. if(hypervisor.sched_ctxs[i] != STARPU_NMAX_SCHED_CTXS)
  199. {
  200. struct sc_hypervisor_wrapper *sc_w = &hypervisor.sched_ctx_w[hypervisor.sched_ctxs[i]];
  201. double cpu_speed = sc_hypervisor_get_velocity(sc_w, STARPU_CPU_WORKER);
  202. double cuda_speed = sc_hypervisor_get_velocity(sc_w, STARPU_CUDA_WORKER);
  203. int ncpus = sc_hypervisor_get_nworkers_ctx(sc_w->sched_ctx, STARPU_CPU_WORKER);
  204. int ncuda = sc_hypervisor_get_nworkers_ctx(sc_w->sched_ctx, STARPU_CUDA_WORKER);
  205. fprintf(stdout, "%d: cpu_v = %lf cuda_v = %lf ncpus = %d ncuda = %d\n", hypervisor.sched_ctxs[i], cpu_speed, cuda_speed, ncpus, ncuda);
  206. }
  207. }
  208. }
  209. return;
  210. }
  211. void sc_hypervisor_shutdown(void)
  212. {
  213. // printf("shutdown\n");
  214. int i;
  215. for(i = 0; i < STARPU_NMAX_SCHED_CTXS; i++)
  216. {
  217. if(hypervisor.sched_ctxs[i] != STARPU_NMAX_SCHED_CTXS && hypervisor.nsched_ctxs > 0)
  218. {
  219. sc_hypervisor_stop_resize(hypervisor.sched_ctxs[i]);
  220. sc_hypervisor_unregister_ctx(hypervisor.sched_ctxs[i]);
  221. starpu_pthread_mutex_destroy(&hypervisor.sched_ctx_w[i].mutex);
  222. }
  223. }
  224. perf_counters->notify_idle_cycle = NULL;
  225. perf_counters->notify_pushed_task = NULL;
  226. perf_counters->notify_poped_task = NULL;
  227. perf_counters->notify_post_exec_hook = NULL;
  228. perf_counters->notify_idle_end = NULL;
  229. perf_counters->notify_delete_context = NULL;
  230. free(perf_counters);
  231. perf_counters = NULL;
  232. starpu_pthread_mutex_destroy(&act_hypervisor_mutex);
  233. }
  234. /* the hypervisor is in charge only of the contexts registered to it*/
  235. void sc_hypervisor_register_ctx(unsigned sched_ctx, double total_flops)
  236. {
  237. starpu_pthread_mutex_lock(&act_hypervisor_mutex);
  238. hypervisor.configurations[sched_ctx] = NULL;
  239. hypervisor.resize_requests[sched_ctx] = NULL;
  240. starpu_pthread_mutex_init(&hypervisor.conf_mut[sched_ctx], NULL);
  241. starpu_pthread_mutex_init(&hypervisor.resize_mut[sched_ctx], NULL);
  242. _add_config(sched_ctx);
  243. hypervisor.sched_ctx_w[sched_ctx].sched_ctx = sched_ctx;
  244. hypervisor.sched_ctxs[hypervisor.nsched_ctxs++] = sched_ctx;
  245. hypervisor.sched_ctx_w[sched_ctx].total_flops = total_flops;
  246. hypervisor.sched_ctx_w[sched_ctx].remaining_flops = total_flops;
  247. if(strcmp(hypervisor.policy.name, "app_driven") == 0)
  248. hypervisor.resize[sched_ctx] = 1;
  249. starpu_pthread_mutex_unlock(&act_hypervisor_mutex);
  250. }
  251. static int _get_first_free_sched_ctx(int *sched_ctxs, int nsched_ctxs)
  252. {
  253. int i;
  254. for(i = 0; i < nsched_ctxs; i++)
  255. if(sched_ctxs[i] == STARPU_NMAX_SCHED_CTXS)
  256. return i;
  257. return STARPU_NMAX_SCHED_CTXS;
  258. }
  259. /* rearange array of sched_ctxs in order not to have {MAXVAL, MAXVAL, 5, MAXVAL, 7}
  260. and have instead {5, 7, MAXVAL, MAXVAL, MAXVAL}
  261. it is easier afterwards to iterate the array
  262. */
  263. static void _rearange_sched_ctxs(int *sched_ctxs, int old_nsched_ctxs)
  264. {
  265. int first_free_id = STARPU_NMAX_SCHED_CTXS;
  266. int i;
  267. for(i = 0; i < old_nsched_ctxs; i++)
  268. {
  269. if(sched_ctxs[i] != STARPU_NMAX_SCHED_CTXS)
  270. {
  271. first_free_id = _get_first_free_sched_ctx(sched_ctxs, old_nsched_ctxs);
  272. if(first_free_id != STARPU_NMAX_SCHED_CTXS)
  273. {
  274. sched_ctxs[first_free_id] = sched_ctxs[i];
  275. sched_ctxs[i] = STARPU_NMAX_SCHED_CTXS;
  276. }
  277. }
  278. }
  279. }
  280. /* unregistered contexts will no longer be resized */
  281. void sc_hypervisor_unregister_ctx(unsigned sched_ctx)
  282. {
  283. if(hypervisor.policy.end_ctx)
  284. hypervisor.policy.end_ctx(sched_ctx);
  285. starpu_pthread_mutex_lock(&act_hypervisor_mutex);
  286. unsigned i;
  287. for(i = 0; i < hypervisor.nsched_ctxs; i++)
  288. {
  289. if(hypervisor.sched_ctxs[i] == (int)sched_ctx)
  290. {
  291. hypervisor.sched_ctxs[i] = STARPU_NMAX_SCHED_CTXS;
  292. break;
  293. }
  294. }
  295. _rearange_sched_ctxs(hypervisor.sched_ctxs, hypervisor.nsched_ctxs);
  296. hypervisor.nsched_ctxs--;
  297. hypervisor.sched_ctx_w[sched_ctx].sched_ctx = STARPU_NMAX_SCHED_CTXS;
  298. _remove_config(sched_ctx);
  299. /* free(hypervisor.configurations[sched_ctx]); */
  300. /* free(hypervisor.resize_requests[sched_ctx]); */
  301. starpu_pthread_mutex_destroy(&hypervisor.conf_mut[sched_ctx]);
  302. starpu_pthread_mutex_destroy(&hypervisor.resize_mut[sched_ctx]);
  303. if(hypervisor.nsched_ctxs == 1)
  304. sc_hypervisor_stop_resize(hypervisor.sched_ctxs[0]);
  305. starpu_pthread_mutex_unlock(&act_hypervisor_mutex);
  306. }
  307. double _get_max_velocity_gap()
  308. {
  309. return hypervisor.max_velocity_gap;
  310. }
  311. unsigned sc_hypervisor_get_resize_criteria()
  312. {
  313. return hypervisor.resize_criteria;
  314. }
  315. static int get_ntasks( int *tasks)
  316. {
  317. int ntasks = 0;
  318. int j;
  319. for(j = 0; j < STARPU_NMAXWORKERS; j++)
  320. {
  321. ntasks += tasks[j];
  322. }
  323. return ntasks;
  324. }
  325. static void _get_cpus(int *workers, int nworkers, int *cpus, int *ncpus)
  326. {
  327. int i, worker;
  328. *ncpus = 0;
  329. for(i = 0; i < nworkers; i++)
  330. {
  331. worker = workers[i];
  332. enum starpu_worker_archtype arch = starpu_worker_get_type(worker);
  333. if(arch == STARPU_CPU_WORKER)
  334. cpus[(*ncpus)++] = worker;
  335. }
  336. }
  337. int sc_hypervisor_get_nworkers_ctx(unsigned sched_ctx, enum starpu_worker_archtype arch)
  338. {
  339. int nworkers_ctx = 0;
  340. struct starpu_worker_collection *workers = starpu_sched_ctx_get_worker_collection(sched_ctx);
  341. int worker;
  342. struct starpu_sched_ctx_iterator it;
  343. if(workers->init_iterator)
  344. workers->init_iterator(workers, &it);
  345. while(workers->has_next(workers, &it))
  346. {
  347. worker = workers->get_next(workers, &it);
  348. enum starpu_worker_archtype curr_arch = starpu_worker_get_type(worker);
  349. if(curr_arch == arch || arch == STARPU_ANY_WORKER)
  350. nworkers_ctx++;
  351. }
  352. return nworkers_ctx;
  353. }
  354. static void _set_elapsed_flops_per_sched_ctx(unsigned sched_ctx, double val)
  355. {
  356. int i;
  357. for(i = 0; i < STARPU_NMAXWORKERS; i++)
  358. {
  359. hypervisor.sched_ctx_w[sched_ctx].elapsed_flops[i] = val;
  360. if(val == 0)
  361. {
  362. hypervisor.sched_ctx_w[sched_ctx].elapsed_data[i] = 0;
  363. hypervisor.sched_ctx_w[sched_ctx].elapsed_tasks[i] = 0;
  364. }
  365. }
  366. }
  367. double sc_hypervisor_get_elapsed_flops_per_sched_ctx(struct sc_hypervisor_wrapper* sc_w)
  368. {
  369. double ret_val = 0.0;
  370. int i;
  371. for(i = 0; i < STARPU_NMAXWORKERS; i++)
  372. ret_val += sc_w->elapsed_flops[i];
  373. return ret_val;
  374. }
  375. double sc_hypervisor_get_total_elapsed_flops_per_sched_ctx(struct sc_hypervisor_wrapper* sc_w)
  376. {
  377. double ret_val = 0.0;
  378. int i;
  379. for(i = 0; i < STARPU_NMAXWORKERS; i++)
  380. ret_val += sc_w->total_elapsed_flops[i];
  381. return ret_val;
  382. }
  383. void _reset_resize_sample_info(unsigned sender_sched_ctx, unsigned receiver_sched_ctx)
  384. {
  385. /* info concerning only the gflops_rate strateg */
  386. struct sc_hypervisor_wrapper *sender_sc_w = &hypervisor.sched_ctx_w[sender_sched_ctx];
  387. struct sc_hypervisor_wrapper *receiver_sc_w = &hypervisor.sched_ctx_w[receiver_sched_ctx];
  388. double start_time = starpu_timing_now();
  389. sender_sc_w->start_time = start_time;
  390. _set_elapsed_flops_per_sched_ctx(sender_sched_ctx, 0.0);
  391. receiver_sc_w->start_time = start_time;
  392. _set_elapsed_flops_per_sched_ctx(receiver_sched_ctx, 0.0);
  393. }
  394. /* actually move the workers: the cpus are moved, gpus are only shared */
  395. /* forbids another resize request before this one is take into account */
  396. void sc_hypervisor_move_workers(unsigned sender_sched_ctx, unsigned receiver_sched_ctx, int* workers_to_move, unsigned nworkers_to_move, unsigned now)
  397. {
  398. if(nworkers_to_move > 0 && hypervisor.resize[sender_sched_ctx])
  399. {
  400. _print_current_time();
  401. unsigned j;
  402. printf("resize ctx %d with %d workers", sender_sched_ctx, nworkers_to_move);
  403. for(j = 0; j < nworkers_to_move; j++)
  404. printf(" %d", workers_to_move[j]);
  405. printf("\n");
  406. starpu_trace_user_event(1);
  407. hypervisor.allow_remove[receiver_sched_ctx] = 0;
  408. starpu_sched_ctx_add_workers(workers_to_move, nworkers_to_move, receiver_sched_ctx);
  409. if(now)
  410. {
  411. unsigned j;
  412. printf("remove now from ctx %d:", sender_sched_ctx);
  413. for(j = 0; j < nworkers_to_move; j++)
  414. printf(" %d", workers_to_move[j]);
  415. printf("\n");
  416. starpu_sched_ctx_remove_workers(workers_to_move, nworkers_to_move, sender_sched_ctx);
  417. hypervisor.allow_remove[receiver_sched_ctx] = 1;
  418. _reset_resize_sample_info(sender_sched_ctx, receiver_sched_ctx);
  419. }
  420. else
  421. {
  422. int ret = starpu_pthread_mutex_trylock(&hypervisor.sched_ctx_w[sender_sched_ctx].mutex);
  423. if(ret != EBUSY)
  424. {
  425. hypervisor.sched_ctx_w[sender_sched_ctx].resize_ack.receiver_sched_ctx = receiver_sched_ctx;
  426. hypervisor.sched_ctx_w[sender_sched_ctx].resize_ack.moved_workers = (int*)malloc(nworkers_to_move * sizeof(int));
  427. hypervisor.sched_ctx_w[sender_sched_ctx].resize_ack.nmoved_workers = nworkers_to_move;
  428. hypervisor.sched_ctx_w[sender_sched_ctx].resize_ack.acked_workers = (int*)malloc(nworkers_to_move * sizeof(int));
  429. unsigned i;
  430. for(i = 0; i < nworkers_to_move; i++)
  431. {
  432. hypervisor.sched_ctx_w[sender_sched_ctx].current_idle_time[workers_to_move[i]] = 0.0;
  433. hypervisor.sched_ctx_w[sender_sched_ctx].resize_ack.moved_workers[i] = workers_to_move[i];
  434. hypervisor.sched_ctx_w[sender_sched_ctx].resize_ack.acked_workers[i] = 0;
  435. }
  436. hypervisor.resize[sender_sched_ctx] = 0;
  437. starpu_pthread_mutex_unlock(&hypervisor.sched_ctx_w[sender_sched_ctx].mutex);
  438. }
  439. }
  440. struct sc_hypervisor_policy_config *new_config = sc_hypervisor_get_config(receiver_sched_ctx);
  441. unsigned i;
  442. for(i = 0; i < nworkers_to_move; i++)
  443. new_config->max_idle[workers_to_move[i]] = new_config->max_idle[workers_to_move[i]] !=MAX_IDLE_TIME ? new_config->max_idle[workers_to_move[i]] : new_config->new_workers_max_idle;
  444. }
  445. return;
  446. }
  447. void sc_hypervisor_add_workers_to_sched_ctx(int* workers_to_add, unsigned nworkers_to_add, unsigned sched_ctx)
  448. {
  449. if(nworkers_to_add > 0 && hypervisor.resize[sched_ctx])
  450. {
  451. _print_current_time();
  452. unsigned j;
  453. printf("add to ctx %d:", sched_ctx);
  454. for(j = 0; j < nworkers_to_add; j++)
  455. printf(" %d", workers_to_add[j]);
  456. printf("\n");
  457. starpu_sched_ctx_add_workers(workers_to_add, nworkers_to_add, sched_ctx);
  458. struct sc_hypervisor_policy_config *new_config = sc_hypervisor_get_config(sched_ctx);
  459. unsigned i;
  460. for(i = 0; i < nworkers_to_add; i++)
  461. new_config->max_idle[workers_to_add[i]] = new_config->max_idle[workers_to_add[i]] != MAX_IDLE_TIME ? new_config->max_idle[workers_to_add[i]] : new_config->new_workers_max_idle;
  462. }
  463. return;
  464. }
  465. unsigned sc_hypervisor_can_resize(unsigned sched_ctx)
  466. {
  467. return hypervisor.resize[sched_ctx];
  468. }
  469. void sc_hypervisor_remove_workers_from_sched_ctx(int* workers_to_remove, unsigned nworkers_to_remove, unsigned sched_ctx, unsigned now)
  470. {
  471. if(nworkers_to_remove > 0 && hypervisor.resize[sched_ctx] && hypervisor.allow_remove[sched_ctx])
  472. {
  473. _print_current_time();
  474. unsigned nworkers = 0;
  475. int workers[nworkers_to_remove];
  476. if(now)
  477. {
  478. unsigned j;
  479. printf("remove explicitley now from ctx %d:", sched_ctx);
  480. for(j = 0; j < nworkers_to_remove; j++)
  481. printf(" %d", workers_to_remove[j]);
  482. printf("\n");
  483. starpu_sched_ctx_remove_workers(workers_to_remove, nworkers_to_remove, sched_ctx);
  484. }
  485. else
  486. {
  487. printf("try to remove from ctx %d: ", sched_ctx);
  488. unsigned j;
  489. for(j = 0; j < nworkers_to_remove; j++)
  490. printf(" %d", workers_to_remove[j]);
  491. printf("\n");
  492. int ret = starpu_pthread_mutex_trylock(&hypervisor.sched_ctx_w[sched_ctx].mutex);
  493. if(ret != EBUSY)
  494. {
  495. unsigned i;
  496. for(i = 0; i < nworkers_to_remove; i++)
  497. if(starpu_sched_ctx_contains_worker(workers_to_remove[i], sched_ctx))
  498. workers[nworkers++] = workers_to_remove[i];
  499. hypervisor.sched_ctx_w[sched_ctx].resize_ack.receiver_sched_ctx = -1;
  500. hypervisor.sched_ctx_w[sched_ctx].resize_ack.moved_workers = (int*)malloc(nworkers_to_remove * sizeof(int));
  501. hypervisor.sched_ctx_w[sched_ctx].resize_ack.nmoved_workers = (int)nworkers;
  502. hypervisor.sched_ctx_w[sched_ctx].resize_ack.acked_workers = (int*)malloc(nworkers_to_remove * sizeof(int));
  503. for(i = 0; i < nworkers; i++)
  504. {
  505. hypervisor.sched_ctx_w[sched_ctx].current_idle_time[workers[i]] = 0.0;
  506. hypervisor.sched_ctx_w[sched_ctx].resize_ack.moved_workers[i] = workers[i];
  507. hypervisor.sched_ctx_w[sched_ctx].resize_ack.acked_workers[i] = 0;
  508. }
  509. hypervisor.resize[sched_ctx] = 0;
  510. starpu_pthread_mutex_unlock(&hypervisor.sched_ctx_w[sched_ctx].mutex);
  511. }
  512. }
  513. }
  514. return;
  515. }
  516. static unsigned _ack_resize_completed(unsigned sched_ctx, int worker)
  517. {
  518. if(worker != -1 && !starpu_sched_ctx_contains_worker(worker, sched_ctx))
  519. return 0;
  520. struct sc_hypervisor_resize_ack *resize_ack = NULL;
  521. unsigned sender_sched_ctx = STARPU_NMAX_SCHED_CTXS;
  522. int i;
  523. for(i = 0; i < STARPU_NMAX_SCHED_CTXS; i++)
  524. {
  525. if(hypervisor.sched_ctxs[i] != STARPU_NMAX_SCHED_CTXS)
  526. {
  527. struct sc_hypervisor_wrapper *sc_w = &hypervisor.sched_ctx_w[hypervisor.sched_ctxs[i]];
  528. starpu_pthread_mutex_lock(&sc_w->mutex);
  529. unsigned only_remove = 0;
  530. if(sc_w->resize_ack.receiver_sched_ctx == -1 && hypervisor.sched_ctxs[i] != (int)sched_ctx &&
  531. sc_w->resize_ack.nmoved_workers > 0 && starpu_sched_ctx_contains_worker(worker, hypervisor.sched_ctxs[i]))
  532. {
  533. int j;
  534. for(j = 0; j < sc_w->resize_ack.nmoved_workers; j++)
  535. if(sc_w->resize_ack.moved_workers[j] == worker)
  536. {
  537. only_remove = 1;
  538. break;
  539. }
  540. }
  541. if(only_remove ||
  542. (sc_w->resize_ack.receiver_sched_ctx != -1 && sc_w->resize_ack.receiver_sched_ctx == (int)sched_ctx))
  543. {
  544. resize_ack = &sc_w->resize_ack;
  545. sender_sched_ctx = hypervisor.sched_ctxs[i];
  546. starpu_pthread_mutex_unlock(&sc_w->mutex);
  547. break;
  548. }
  549. starpu_pthread_mutex_unlock(&sc_w->mutex);
  550. }
  551. }
  552. /* if there is no ctx waiting for its ack return 1*/
  553. if(resize_ack == NULL)
  554. return 1;
  555. int ret = starpu_pthread_mutex_trylock(&hypervisor.sched_ctx_w[sender_sched_ctx].mutex);
  556. if(ret != EBUSY)
  557. {
  558. int *moved_workers = resize_ack->moved_workers;
  559. int nmoved_workers = resize_ack->nmoved_workers;
  560. int *acked_workers = resize_ack->acked_workers;
  561. if(worker != -1)
  562. {
  563. for(i = 0; i < nmoved_workers; i++)
  564. {
  565. int moved_worker = moved_workers[i];
  566. if(moved_worker == worker && acked_workers[i] == 0)
  567. {
  568. acked_workers[i] = 1;
  569. }
  570. }
  571. }
  572. int nacked_workers = 0;
  573. for(i = 0; i < nmoved_workers; i++)
  574. {
  575. nacked_workers += (acked_workers[i] == 1);
  576. }
  577. unsigned resize_completed = (nacked_workers == nmoved_workers);
  578. int receiver_sched_ctx = sched_ctx;
  579. if(resize_completed)
  580. {
  581. /* if the permission to resize is not allowed by the user don't do it
  582. whatever the application says */
  583. if(!((hypervisor.resize[sender_sched_ctx] == 0 || hypervisor.resize[receiver_sched_ctx] == 0) && imposed_resize))
  584. {
  585. /* int j; */
  586. /* printf("remove after ack from ctx %d:", sender_sched_ctx); */
  587. /* for(j = 0; j < nmoved_workers; j++) */
  588. /* printf(" %d", moved_workers[j]); */
  589. /* printf("\n"); */
  590. starpu_sched_ctx_remove_workers(moved_workers, nmoved_workers, sender_sched_ctx);
  591. _reset_resize_sample_info(sender_sched_ctx, receiver_sched_ctx);
  592. hypervisor.resize[sender_sched_ctx] = 1;
  593. hypervisor.allow_remove[receiver_sched_ctx] = 1;
  594. /* if the user allowed resizing leave the decisions to the application */
  595. if(imposed_resize) imposed_resize = 0;
  596. resize_ack->receiver_sched_ctx = -1;
  597. resize_ack->nmoved_workers = 0;
  598. free(resize_ack->moved_workers);
  599. free(resize_ack->acked_workers);
  600. }
  601. starpu_pthread_mutex_unlock(&hypervisor.sched_ctx_w[sender_sched_ctx].mutex);
  602. return resize_completed;
  603. }
  604. starpu_pthread_mutex_unlock(&hypervisor.sched_ctx_w[sender_sched_ctx].mutex);
  605. }
  606. return 0;
  607. }
  608. /* Enqueue a resize request for 'sched_ctx', to be executed when the
  609. * 'task_tag' tasks of 'sched_ctx' complete. */
  610. void sc_hypervisor_resize(unsigned sched_ctx, int task_tag)
  611. {
  612. struct resize_request_entry *entry;
  613. entry = malloc(sizeof *entry);
  614. STARPU_ASSERT(entry != NULL);
  615. entry->sched_ctx = sched_ctx;
  616. entry->task_tag = task_tag;
  617. starpu_pthread_mutex_lock(&hypervisor.resize_mut[sched_ctx]);
  618. HASH_ADD_INT(hypervisor.resize_requests[sched_ctx], task_tag, entry);
  619. starpu_pthread_mutex_unlock(&hypervisor.resize_mut[sched_ctx]);
  620. }
  621. /* notifies the hypervisor that the worker is no longer idle and a new task was pushed on its queue */
  622. static void notify_idle_end(unsigned sched_ctx, int worker)
  623. {
  624. if(hypervisor.resize[sched_ctx])
  625. hypervisor.sched_ctx_w[sched_ctx].current_idle_time[worker] = 0.0;
  626. struct sc_hypervisor_wrapper *sc_w = &hypervisor.sched_ctx_w[sched_ctx];
  627. if(sc_w->idle_start_time[worker] != 0.0)
  628. {
  629. double end_time = starpu_timing_now();
  630. sc_w->idle_time[worker] += (end_time - sc_w->idle_start_time[worker]) / 1000000.0; /* in seconds */
  631. sc_w->idle_start_time[worker] = 0.0;
  632. }
  633. if(hypervisor.policy.handle_idle_end)
  634. hypervisor.policy.handle_idle_end(sched_ctx, worker);
  635. }
  636. /* notifies the hypervisor that the worker spent another cycle in idle time */
  637. static void notify_idle_cycle(unsigned sched_ctx, int worker, double idle_time)
  638. {
  639. if(hypervisor.resize[sched_ctx])
  640. {
  641. struct sc_hypervisor_wrapper *sc_w = &hypervisor.sched_ctx_w[sched_ctx];
  642. sc_w->current_idle_time[worker] += idle_time;
  643. if(sc_w->idle_start_time[worker] == 0.0)
  644. sc_w->idle_start_time[worker] = starpu_timing_now();
  645. if(hypervisor.policy.handle_idle_cycle)
  646. {
  647. hypervisor.policy.handle_idle_cycle(sched_ctx, worker);
  648. }
  649. }
  650. return;
  651. }
  652. /* notifies the hypervisor that a new task was pushed on the queue of the worker */
  653. static void notify_pushed_task(unsigned sched_ctx, int worker)
  654. {
  655. hypervisor.sched_ctx_w[sched_ctx].pushed_tasks[worker]++;
  656. if(hypervisor.sched_ctx_w[sched_ctx].total_flops != 0.0 && hypervisor.sched_ctx_w[sched_ctx].start_time == 0.0)
  657. hypervisor.sched_ctx_w[sched_ctx].start_time = starpu_timing_now();
  658. if(hypervisor.sched_ctx_w[sched_ctx].total_flops != 0.0 && hypervisor.sched_ctx_w[sched_ctx].real_start_time == 0.0)
  659. hypervisor.sched_ctx_w[sched_ctx].real_start_time = starpu_timing_now();
  660. int ntasks = get_ntasks(hypervisor.sched_ctx_w[sched_ctx].pushed_tasks);
  661. if((hypervisor.min_tasks == 0 || (!(hypervisor.resize[sched_ctx] == 0 && imposed_resize) && ntasks == hypervisor.min_tasks)) && hypervisor.check_min_tasks[sched_ctx])
  662. {
  663. hypervisor.resize[sched_ctx] = 1;
  664. if(imposed_resize) imposed_resize = 0;
  665. hypervisor.check_min_tasks[sched_ctx] = 0;
  666. }
  667. if(hypervisor.policy.handle_pushed_task)
  668. hypervisor.policy.handle_pushed_task(sched_ctx, worker);
  669. }
  670. /* notifies the hypervisor that a task was poped from the queue of the worker */
  671. static void notify_poped_task(unsigned sched_ctx, int worker, struct starpu_task *task, size_t data_size, uint32_t footprint)
  672. {
  673. hypervisor.sched_ctx_w[sched_ctx].poped_tasks[worker]++;
  674. hypervisor.sched_ctx_w[sched_ctx].elapsed_flops[worker] += task->flops;
  675. hypervisor.sched_ctx_w[sched_ctx].elapsed_data[worker] += data_size ;
  676. hypervisor.sched_ctx_w[sched_ctx].elapsed_tasks[worker]++ ;
  677. hypervisor.sched_ctx_w[sched_ctx].total_elapsed_flops[worker] += task->flops;
  678. hypervisor.sched_ctx_w[sched_ctx].remaining_flops -= task->flops; //sc_hypervisor_get_elapsed_flops_per_sched_ctx(&hypervisor.sched_ctx_w[sched_ctx]);
  679. if(hypervisor.resize[sched_ctx])
  680. {
  681. if(hypervisor.policy.handle_poped_task)
  682. hypervisor.policy.handle_poped_task(sched_ctx, worker, task, footprint);
  683. }
  684. _ack_resize_completed(sched_ctx, worker);
  685. if(hypervisor.sched_ctx_w[sched_ctx].poped_tasks[worker] % 200 == 0)
  686. _print_current_time();
  687. }
  688. /* notifies the hypervisor that a tagged task has just been executed */
  689. static void notify_post_exec_hook(unsigned sched_ctx, int task_tag)
  690. {
  691. STARPU_ASSERT(task_tag > 0);
  692. unsigned conf_sched_ctx;
  693. unsigned i;
  694. starpu_pthread_mutex_lock(&act_hypervisor_mutex);
  695. unsigned ns = hypervisor.nsched_ctxs;
  696. starpu_pthread_mutex_unlock(&act_hypervisor_mutex);
  697. for(i = 0; i < ns; i++)
  698. {
  699. struct configuration_entry *entry;
  700. conf_sched_ctx = hypervisor.sched_ctxs[i];
  701. starpu_pthread_mutex_lock(&hypervisor.conf_mut[conf_sched_ctx]);
  702. HASH_FIND_INT(hypervisor.configurations[conf_sched_ctx], &task_tag, entry);
  703. if (entry != NULL)
  704. {
  705. struct sc_hypervisor_policy_config *config = entry->configuration;
  706. sc_hypervisor_set_config(conf_sched_ctx, config);
  707. HASH_DEL(hypervisor.configurations[conf_sched_ctx], entry);
  708. free(config);
  709. }
  710. starpu_pthread_mutex_unlock(&hypervisor.conf_mut[conf_sched_ctx]);
  711. }
  712. if(hypervisor.resize[sched_ctx])
  713. {
  714. starpu_pthread_mutex_lock(&hypervisor.resize_mut[sched_ctx]);
  715. if(hypervisor.policy.handle_post_exec_hook)
  716. {
  717. /* Check whether 'task_tag' is in the 'resize_requests' set. */
  718. struct resize_request_entry *entry;
  719. HASH_FIND_INT(hypervisor.resize_requests[sched_ctx], &task_tag, entry);
  720. if (entry != NULL)
  721. {
  722. hypervisor.policy.handle_post_exec_hook(sched_ctx, task_tag);
  723. HASH_DEL(hypervisor.resize_requests[sched_ctx], entry);
  724. free(entry);
  725. }
  726. }
  727. starpu_pthread_mutex_unlock(&hypervisor.resize_mut[sched_ctx]);
  728. }
  729. return;
  730. }
  731. static void notify_submitted_job(struct starpu_task *task, uint32_t footprint)
  732. {
  733. starpu_pthread_mutex_lock(&act_hypervisor_mutex);
  734. hypervisor.sched_ctx_w[task->sched_ctx].submitted_flops += task->flops;
  735. starpu_pthread_mutex_unlock(&act_hypervisor_mutex);
  736. if(hypervisor.policy.handle_submitted_job && !type_of_tasks_known)
  737. hypervisor.policy.handle_submitted_job(task->cl, task->sched_ctx, footprint);
  738. }
  739. void sc_hypervisor_set_type_of_task(struct starpu_codelet *cl, unsigned sched_ctx, uint32_t footprint)
  740. {
  741. type_of_tasks_known = 1;
  742. if(hypervisor.policy.handle_submitted_job)
  743. hypervisor.policy.handle_submitted_job(cl, sched_ctx, footprint);
  744. }
  745. static void notify_delete_context(unsigned sched_ctx)
  746. {
  747. _print_current_time();
  748. sc_hypervisor_unregister_ctx(sched_ctx);
  749. }
  750. void sc_hypervisor_size_ctxs(int *sched_ctxs, int nsched_ctxs, int *workers, int nworkers)
  751. {
  752. starpu_pthread_mutex_lock(&act_hypervisor_mutex);
  753. unsigned curr_nsched_ctxs = sched_ctxs == NULL ? hypervisor.nsched_ctxs : nsched_ctxs;
  754. int *curr_sched_ctxs = sched_ctxs == NULL ? hypervisor.sched_ctxs : sched_ctxs;
  755. starpu_pthread_mutex_unlock(&act_hypervisor_mutex);
  756. unsigned s;
  757. for(s = 0; s < curr_nsched_ctxs; s++)
  758. hypervisor.resize[curr_sched_ctxs[s]] = 1;
  759. if(hypervisor.policy.size_ctxs)
  760. hypervisor.policy.size_ctxs(curr_sched_ctxs, curr_nsched_ctxs, workers, nworkers);
  761. }
  762. struct sc_hypervisor_wrapper* sc_hypervisor_get_wrapper(unsigned sched_ctx)
  763. {
  764. return &hypervisor.sched_ctx_w[sched_ctx];
  765. }
  766. int* sc_hypervisor_get_sched_ctxs()
  767. {
  768. return hypervisor.sched_ctxs;
  769. }
  770. int sc_hypervisor_get_nsched_ctxs()
  771. {
  772. int ns;
  773. ns = hypervisor.nsched_ctxs;
  774. return ns;
  775. }
  776. void sc_hypervisor_save_size_req(int *sched_ctxs, int nsched_ctxs, int *workers, int nworkers)
  777. {
  778. hypervisor.sr = (struct size_request*)malloc(sizeof(struct size_request));
  779. hypervisor.sr->sched_ctxs = sched_ctxs;
  780. hypervisor.sr->nsched_ctxs = nsched_ctxs;
  781. hypervisor.sr->workers = workers;
  782. hypervisor.sr->nworkers = nworkers;
  783. }
  784. unsigned sc_hypervisor_get_size_req(int **sched_ctxs, int* nsched_ctxs, int **workers, int *nworkers)
  785. {
  786. if(hypervisor.sr != NULL)
  787. {
  788. *sched_ctxs = hypervisor.sr->sched_ctxs;
  789. *nsched_ctxs = hypervisor.sr->nsched_ctxs;
  790. *workers = hypervisor.sr->workers;
  791. *nworkers = hypervisor.sr->nworkers;
  792. return 1;
  793. }
  794. return 0;
  795. }
  796. void sc_hypervisor_free_size_req(void)
  797. {
  798. if(hypervisor.sr != NULL)
  799. {
  800. free(hypervisor.sr);
  801. hypervisor.sr = NULL;
  802. }
  803. }
  804. double _get_optimal_v(unsigned sched_ctx)
  805. {
  806. return hypervisor.optimal_v[sched_ctx];
  807. }
  808. void _set_optimal_v(unsigned sched_ctx, double optimal_v)
  809. {
  810. hypervisor.optimal_v[sched_ctx] = optimal_v;
  811. }