filters.c 13 KB

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  1. /* StarPU --- Runtime system for heterogeneous multicore architectures.
  2. *
  3. * Copyright (C) 2010-2012 Université de Bordeaux 1
  4. * Copyright (C) 2010 Mehdi Juhoor <mjuhoor@gmail.com>
  5. * Copyright (C) 2010, 2011, 2012 Centre National de la Recherche Scientifique
  6. * Copyright (C) 2012 INRIA
  7. *
  8. * StarPU is free software; you can redistribute it and/or modify
  9. * it under the terms of the GNU Lesser General Public License as published by
  10. * the Free Software Foundation; either version 2.1 of the License, or (at
  11. * your option) any later version.
  12. *
  13. * StarPU is distributed in the hope that it will be useful, but
  14. * WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.
  16. *
  17. * See the GNU Lesser General Public License in COPYING.LGPL for more details.
  18. */
  19. #include <datawizard/filters.h>
  20. #include <datawizard/footprint.h>
  21. static void starpu_data_create_children(starpu_data_handle_t handle, unsigned nchildren, struct starpu_data_filter *f);
  22. /*
  23. * This function applies a data filter on all the elements of a partition
  24. */
  25. static void map_filter(starpu_data_handle_t root_handle, struct starpu_data_filter *f)
  26. {
  27. /* we need to apply the data filter on all leaf of the tree */
  28. if (root_handle->nchildren == 0)
  29. {
  30. /* this is a leaf */
  31. starpu_data_partition(root_handle, f);
  32. }
  33. else
  34. {
  35. /* try to apply the data filter recursively */
  36. unsigned child;
  37. for (child = 0; child < root_handle->nchildren; child++)
  38. {
  39. map_filter(&root_handle->children[child], f);
  40. }
  41. }
  42. }
  43. void starpu_data_vmap_filters(starpu_data_handle_t root_handle, unsigned nfilters, va_list pa)
  44. {
  45. unsigned i;
  46. for (i = 0; i < nfilters; i++)
  47. {
  48. struct starpu_data_filter *next_filter;
  49. next_filter = va_arg(pa, struct starpu_data_filter *);
  50. STARPU_ASSERT(next_filter);
  51. map_filter(root_handle, next_filter);
  52. }
  53. }
  54. void starpu_data_map_filters(starpu_data_handle_t root_handle, unsigned nfilters, ...)
  55. {
  56. va_list pa;
  57. va_start(pa, nfilters);
  58. starpu_data_vmap_filters(root_handle, nfilters, pa);
  59. va_end(pa);
  60. }
  61. int starpu_data_get_nb_children(starpu_data_handle_t handle)
  62. {
  63. return handle->nchildren;
  64. }
  65. starpu_data_handle_t starpu_data_get_child(starpu_data_handle_t handle, unsigned i)
  66. {
  67. STARPU_ASSERT(i < handle->nchildren);
  68. return &handle->children[i];
  69. }
  70. /*
  71. * example starpu_data_get_sub_data(starpu_data_handle_t root_handle, 3, 42, 0, 1);
  72. */
  73. starpu_data_handle_t starpu_data_get_sub_data(starpu_data_handle_t root_handle, unsigned depth, ... )
  74. {
  75. va_list pa;
  76. va_start(pa, depth);
  77. starpu_data_handle_t handle = starpu_data_vget_sub_data(root_handle, depth, pa);
  78. va_end(pa);
  79. return handle;
  80. }
  81. starpu_data_handle_t starpu_data_vget_sub_data(starpu_data_handle_t root_handle, unsigned depth, va_list pa )
  82. {
  83. STARPU_ASSERT(root_handle);
  84. starpu_data_handle_t current_handle = root_handle;
  85. /* the variable number of argument must correlate the depth in the tree */
  86. unsigned i;
  87. for (i = 0; i < depth; i++)
  88. {
  89. unsigned next_child;
  90. next_child = va_arg(pa, unsigned);
  91. STARPU_ASSERT(next_child < current_handle->nchildren);
  92. current_handle = &current_handle->children[next_child];
  93. }
  94. return current_handle;
  95. }
  96. void starpu_data_partition(starpu_data_handle_t initial_handle, struct starpu_data_filter *f)
  97. {
  98. unsigned nparts;
  99. unsigned i;
  100. unsigned node;
  101. /* first take care to properly lock the data header */
  102. _starpu_spin_lock(&initial_handle->header_lock);
  103. /* there should not be mutiple filters applied on the same data */
  104. STARPU_ASSERT(initial_handle->nchildren == 0);
  105. /* how many parts ? */
  106. if (f->get_nchildren)
  107. nparts = f->get_nchildren(f, initial_handle);
  108. else
  109. nparts = f->nchildren;
  110. STARPU_ASSERT(nparts > 0);
  111. /* allocate the children */
  112. starpu_data_create_children(initial_handle, nparts, f);
  113. unsigned nworkers = starpu_worker_get_count();
  114. for (node = 0; node < STARPU_MAXNODES; node++)
  115. {
  116. if (initial_handle->per_node[node].state != STARPU_INVALID)
  117. break;
  118. }
  119. if (node == STARPU_MAXNODES) {
  120. /* This is lazy allocation, allocate it now in main RAM, so as
  121. * to have somewhere to gather pieces later */
  122. int ret = _starpu_allocate_memory_on_node(initial_handle, &initial_handle->per_node[0], 0);
  123. STARPU_ASSERT(!ret);
  124. }
  125. for (i = 0; i < nparts; i++)
  126. {
  127. starpu_data_handle_t child =
  128. starpu_data_get_child(initial_handle, i);
  129. STARPU_ASSERT(child);
  130. child->nchildren = 0;
  131. child->rank = initial_handle->rank;
  132. child->root_handle = initial_handle->root_handle;
  133. child->father_handle = initial_handle;
  134. child->sibling_index = i;
  135. child->depth = initial_handle->depth + 1;
  136. child->is_not_important = initial_handle->is_not_important;
  137. child->wt_mask = initial_handle->wt_mask;
  138. child->home_node = initial_handle->home_node;
  139. child->is_readonly = initial_handle->is_readonly;
  140. /* initialize the chunk lock */
  141. child->req_list = _starpu_data_requester_list_new();
  142. child->reduction_req_list = _starpu_data_requester_list_new();
  143. child->refcnt = 0;
  144. child->busy_count = 0;
  145. child->busy_waiting = 0;
  146. _STARPU_PTHREAD_MUTEX_INIT(&child->busy_mutex, NULL);
  147. _STARPU_PTHREAD_COND_INIT(&child->busy_cond, NULL);
  148. child->reduction_refcnt = 0;
  149. _starpu_spin_init(&child->header_lock);
  150. child->sequential_consistency = initial_handle->sequential_consistency;
  151. _STARPU_PTHREAD_MUTEX_INIT(&child->sequential_consistency_mutex, NULL);
  152. child->last_submitted_mode = STARPU_R;
  153. child->last_submitted_writer = NULL;
  154. child->last_submitted_readers = NULL;
  155. child->post_sync_tasks = NULL;
  156. child->post_sync_tasks_cnt = 0;
  157. /* The methods used for reduction are propagated to the
  158. * children. */
  159. child->redux_cl = initial_handle->redux_cl;
  160. child->init_cl = initial_handle->init_cl;
  161. #ifdef STARPU_USE_FXT
  162. child->last_submitted_ghost_writer_id_is_valid = 0;
  163. child->last_submitted_ghost_writer_id = 0;
  164. child->last_submitted_ghost_readers_id = NULL;
  165. #endif
  166. unsigned node;
  167. for (node = 0; node < STARPU_MAXNODES; node++)
  168. {
  169. struct _starpu_data_replicate *initial_replicate;
  170. struct _starpu_data_replicate *child_replicate;
  171. initial_replicate = &initial_handle->per_node[node];
  172. child_replicate = &child->per_node[node];
  173. child_replicate->state = initial_replicate->state;
  174. child_replicate->allocated = initial_replicate->allocated;
  175. child_replicate->automatically_allocated = initial_replicate->automatically_allocated;
  176. child_replicate->refcnt = 0;
  177. child_replicate->memory_node = node;
  178. child_replicate->relaxed_coherency = 0;
  179. /* update the interface */
  180. void *initial_interface = starpu_data_get_interface_on_node(initial_handle, node);
  181. void *child_interface = starpu_data_get_interface_on_node(child, node);
  182. f->filter_func(initial_interface, child_interface, f, i, nparts);
  183. }
  184. unsigned worker;
  185. for (worker = 0; worker < nworkers; worker++)
  186. {
  187. struct _starpu_data_replicate *child_replicate;
  188. child_replicate = &child->per_worker[worker];
  189. child_replicate->state = STARPU_INVALID;
  190. child_replicate->allocated = 0;
  191. child_replicate->automatically_allocated = 0;
  192. child_replicate->refcnt = 0;
  193. child_replicate->memory_node = starpu_worker_get_memory_node(worker);
  194. for (node = 0; node < STARPU_MAXNODES; node++)
  195. {
  196. child_replicate->requested[node] = 0;
  197. child_replicate->request[node] = NULL;
  198. }
  199. child_replicate->relaxed_coherency = 1;
  200. child_replicate->initialized = 0;
  201. /* duplicate the content of the interface on node 0 */
  202. memcpy(child_replicate->data_interface, child->per_node[0].data_interface, child->ops->interface_size);
  203. }
  204. /* We compute the size and the footprint of the child once and
  205. * store it in the handle */
  206. child->data_size = child->ops->get_size(child);
  207. child->footprint = _starpu_compute_data_footprint(child);
  208. void *ptr;
  209. ptr = starpu_handle_to_pointer(child, 0);
  210. if (ptr != NULL)
  211. {
  212. _starpu_data_register_ram_pointer(child, ptr);
  213. }
  214. }
  215. /* now let the header */
  216. _starpu_spin_unlock(&initial_handle->header_lock);
  217. }
  218. static
  219. void _starpu_empty_codelet_function(void *buffers[], void *args)
  220. {
  221. (void) buffers; // unused;
  222. (void) args; // unused;
  223. }
  224. void starpu_data_unpartition(starpu_data_handle_t root_handle, uint32_t gathering_node)
  225. {
  226. unsigned child;
  227. unsigned node;
  228. _starpu_spin_lock(&root_handle->header_lock);
  229. /* first take all the children lock (in order !) */
  230. for (child = 0; child < root_handle->nchildren; child++)
  231. {
  232. struct _starpu_data_state *child_handle = &root_handle->children[child];
  233. /* make sure the intermediate children is unpartitionned as well */
  234. if (child_handle->nchildren > 0)
  235. starpu_data_unpartition(child_handle, gathering_node);
  236. /* If this is a multiformat handle, we must convert the data now */
  237. #ifdef STARPU_DEVEL
  238. #warning TODO: _starpu_fetch_data_on_node should be doing it
  239. #endif
  240. if (_starpu_data_is_multiformat_handle(child_handle) &&
  241. starpu_node_get_kind(child_handle->mf_node) != STARPU_CPU_RAM)
  242. {
  243. struct starpu_codelet cl =
  244. {
  245. .where = STARPU_CPU,
  246. .cpu_funcs = { _starpu_empty_codelet_function, NULL },
  247. .modes = { STARPU_RW },
  248. .nbuffers = 1
  249. };
  250. struct starpu_task *task = starpu_task_create();
  251. task->handles[0] = child_handle;
  252. task->cl = &cl;
  253. task->synchronous = 1;
  254. if (starpu_task_submit(task) != 0)
  255. _STARPU_ERROR("Could not submit the conversion task while unpartitionning\n");
  256. }
  257. int ret;
  258. ret = _starpu_fetch_data_on_node(child_handle, &child_handle->per_node[gathering_node], STARPU_R, 0, NULL, NULL);
  259. /* for now we pretend that the RAM is almost unlimited and that gathering
  260. * data should be possible from the node that does the unpartionning ... we
  261. * don't want to have the programming deal with memory shortage at that time,
  262. * really */
  263. STARPU_ASSERT(ret == 0);
  264. _starpu_spin_lock(&child_handle->header_lock);
  265. _starpu_data_free_interfaces(&root_handle->children[child]);
  266. _starpu_data_requester_list_delete(child_handle->req_list);
  267. _starpu_data_requester_list_delete(child_handle->reduction_req_list);
  268. }
  269. /* the gathering_node should now have a valid copy of all the children.
  270. * For all nodes, if the node had all copies and none was locally
  271. * allocated then the data is still valid there, else, it's invalidated
  272. * for the gathering node, if we have some locally allocated data, we
  273. * copy all the children (XXX this should not happen so we just do not
  274. * do anything since this is transparent ?) */
  275. unsigned still_valid[STARPU_MAXNODES];
  276. /* we do 2 passes : the first pass determines wether the data is still
  277. * valid or not, the second pass is needed to choose between STARPU_SHARED and
  278. * STARPU_OWNER */
  279. unsigned nvalids = 0;
  280. /* still valid ? */
  281. for (node = 0; node < STARPU_MAXNODES; node++)
  282. {
  283. /* until an issue is found the data is assumed to be valid */
  284. unsigned isvalid = 1;
  285. for (child = 0; child < root_handle->nchildren; child++)
  286. {
  287. struct _starpu_data_replicate *local = &root_handle->children[child].per_node[node];
  288. if (local->state == STARPU_INVALID)
  289. {
  290. /* One of the bits is missing */
  291. isvalid = 0;
  292. }
  293. if (local->allocated && local->automatically_allocated)
  294. /* free the child data copy in a lazy fashion */
  295. _starpu_request_mem_chunk_removal(&root_handle->children[child], node);
  296. }
  297. if (!root_handle->per_node[node].allocated)
  298. /* Even if we have all the bits, if we don't have the
  299. * whole data, it's not valid */
  300. isvalid = 0;
  301. if (!isvalid && root_handle->per_node[node].allocated && root_handle->per_node[node].automatically_allocated)
  302. /* free the data copy in a lazy fashion */
  303. _starpu_request_mem_chunk_removal(root_handle, node);
  304. /* if there was no invalid copy, the node still has a valid copy */
  305. still_valid[node] = isvalid;
  306. if (isvalid)
  307. nvalids++;
  308. }
  309. /* either shared or owned */
  310. STARPU_ASSERT(nvalids > 0);
  311. enum _starpu_cache_state newstate = (nvalids == 1)?STARPU_OWNER:STARPU_SHARED;
  312. for (node = 0; node < STARPU_MAXNODES; node++)
  313. {
  314. root_handle->per_node[node].state =
  315. still_valid[node]?newstate:STARPU_INVALID;
  316. }
  317. /* there is no child anymore */
  318. free(root_handle->children);
  319. root_handle->children = NULL;
  320. root_handle->nchildren = 0;
  321. /* now the parent may be used again so we release the lock */
  322. _starpu_spin_unlock(&root_handle->header_lock);
  323. }
  324. /* each child may have his own interface type */
  325. static void starpu_data_create_children(starpu_data_handle_t handle, unsigned nchildren, struct starpu_data_filter *f)
  326. {
  327. handle->children = (struct _starpu_data_state *) calloc(nchildren, sizeof(struct _starpu_data_state));
  328. STARPU_ASSERT(handle->children);
  329. unsigned node;
  330. unsigned worker;
  331. unsigned child;
  332. unsigned nworkers = starpu_worker_get_count();
  333. for (child = 0; child < nchildren; child++)
  334. {
  335. starpu_data_handle_t handle_child = &handle->children[child];
  336. struct starpu_data_interface_ops *ops;
  337. /* what's this child's interface ? */
  338. if (f->get_child_ops)
  339. ops = f->get_child_ops(f, child);
  340. else
  341. ops = handle->ops;
  342. handle_child->ops = ops;
  343. size_t interfacesize = ops->interface_size;
  344. for (node = 0; node < STARPU_MAXNODES; node++)
  345. {
  346. /* relaxed_coherency = 0 */
  347. handle_child->per_node[node].handle = handle_child;
  348. handle_child->per_node[node].data_interface = calloc(1, interfacesize);
  349. STARPU_ASSERT(handle_child->per_node[node].data_interface);
  350. }
  351. for (worker = 0; worker < nworkers; worker++)
  352. {
  353. handle_child->per_worker[worker].handle = handle_child;
  354. handle_child->per_worker[worker].data_interface = calloc(1, interfacesize);
  355. STARPU_ASSERT(handle_child->per_worker[worker].data_interface);
  356. }
  357. handle_child->mf_node = handle->mf_node;
  358. }
  359. /* this handle now has children */
  360. handle->nchildren = nchildren;
  361. }