starpu_sched_node.h 11 KB

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  1. /* StarPU --- Runtime system for heterogeneous multicore architectures.
  2. *
  3. * Copyright (C) 2013 Simon Archipoff
  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. #ifndef __STARPU_SCHED_NODE_H__
  17. #define __STARPU_SCHED_NODE_H__
  18. #include <starpu.h>
  19. #include <common/starpu_spinlock.h>
  20. #ifdef STARPU_HAVE_HWLOC
  21. #include <hwloc.h>
  22. #endif
  23. /* struct starpu_sched_node are scheduler modules, a scheduler is a tree-like
  24. * structure of them, some parts of scheduler can be shared by several contexes
  25. * to perform some local optimisations, so, for all nodes, a list of father is
  26. * defined indexed by sched_ctx_id
  27. *
  28. * they embed there specialised method in a pseudo object-style, so calls are like node->push_task(node,task)
  29. *
  30. */
  31. struct starpu_sched_node
  32. {
  33. /* node->push_task(node, task)
  34. * this function is called to push a task on node subtree, this can either
  35. * perform a recursive call on a child or store the task in the node, then
  36. * it will be returned by a further pop_task call
  37. *
  38. * the caller must ensure that node is able to execute task
  39. */
  40. int (*push_task)(struct starpu_sched_node *,
  41. struct starpu_task *);
  42. /* this function is called by workers to get a task on them fathers
  43. * this function should first return a localy stored task or perform
  44. * a recursive call on father
  45. *
  46. * a default implementation simply do a recursive call on father
  47. */
  48. struct starpu_task * (*pop_task)(struct starpu_sched_node *,
  49. unsigned sched_ctx_id);
  50. /* this function is an heuristic that compute load of subtree, basicaly
  51. * it compute
  52. * estimated_load(node) = sum(estimated_load(node_childs)) +
  53. * nb_local_tasks / average(relative_speedup(underlying_worker))
  54. */
  55. double (*estimated_load)(struct starpu_sched_node * node);
  56. double (*estimated_end)(struct starpu_sched_node * node);
  57. /* the numbers of node's childs
  58. */
  59. int nchilds;
  60. /* the vector of node's childs
  61. */
  62. struct starpu_sched_node ** childs;
  63. /* may be shared by several contexts
  64. * so we need several fathers
  65. */
  66. struct starpu_sched_node * fathers[STARPU_NMAX_SCHED_CTXS];
  67. /* the set of workers in the node's subtree
  68. */
  69. struct starpu_bitmap * workers;
  70. /* the workers available in context
  71. * this member is set with :
  72. * node->workers UNION tree->workers UNION
  73. * node->child[i]->workers_in_ctx iff exist x such as node->childs[i]->fathers[x] == node
  74. */
  75. struct starpu_bitmap * workers_in_ctx;
  76. /* node's private data, no restriction on use
  77. */
  78. void * data;
  79. void (*add_child)(struct starpu_sched_node * node, struct starpu_sched_node * child);
  80. void (*remove_child)(struct starpu_sched_node * node, struct starpu_sched_node * child);
  81. /* this function is called for each node when workers are added or removed from a context
  82. */
  83. void (*notify_change_workers)(struct starpu_sched_node * node);
  84. /* this function is called by starpu_sched_node_destroy just before freeing node
  85. */
  86. void (*deinit_data)(struct starpu_sched_node * node);
  87. /* is_homogeneous is 0 iff workers in the node's subtree are heterogeneous,
  88. * this field is set and updated automaticaly, you shouldn't write on it
  89. */
  90. int properties;
  91. #ifdef STARPU_HAVE_HWLOC
  92. /* in case of a hierarchical scheduler, this is set to the part of
  93. * topology that is binded to this node, eg: a numa node for a ws
  94. * node that would balance load between underlying sockets
  95. */
  96. hwloc_obj_t obj;
  97. #endif
  98. };
  99. enum starpu_sched_node_properties
  100. {
  101. STARPU_SCHED_NODE_HOMOGENEOUS = (1<<0),
  102. STARPU_SCHED_NODE_SINGLE_MEMORY_NODE = (1<<1)
  103. };
  104. #define STARPU_SCHED_NODE_IS_HOMOGENEOUS(node) ((node)->properties & STARPU_SCHED_NODE_HOMOGENEOUS)
  105. #define STARPU_SCHED_NODE_IS_SINGLE_MEMORY_NODE(node) ((node)->properties & STARPU_SCHED_NODE_SINGLE_MEMORY_NODE)
  106. struct starpu_sched_tree
  107. {
  108. struct starpu_sched_node * root;
  109. struct starpu_bitmap * workers;
  110. unsigned sched_ctx_id;
  111. /* this lock is used to protect the scheduler,
  112. * it is taken in read mode pushing a task
  113. * and in write mode for adding or removing workers
  114. */
  115. starpu_pthread_mutex_t lock;
  116. };
  117. struct starpu_sched_node * starpu_sched_node_create(void);
  118. void starpu_sched_node_destroy(struct starpu_sched_node * node);
  119. void starpu_sched_node_set_father(struct starpu_sched_node *node, struct starpu_sched_node *father_node, unsigned sched_ctx_id);
  120. void starpu_sched_node_add_child(struct starpu_sched_node * node, struct starpu_sched_node * child);
  121. void starpu_sched_node_remove_child(struct starpu_sched_node * node, struct starpu_sched_node * child);
  122. int starpu_sched_node_can_execute_task(struct starpu_sched_node * node, struct starpu_task * task);
  123. int STARPU_WARN_UNUSED_RESULT starpu_sched_node_execute_preds(struct starpu_sched_node * node, struct starpu_task * task, double * length);
  124. double starpu_sched_node_transfer_length(struct starpu_sched_node * node, struct starpu_task * task);
  125. /* no public create function for workers because we dont want to have several node_worker for a single workerid */
  126. struct starpu_sched_node * starpu_sched_node_worker_get(int workerid);
  127. /* this function compare the available function of the node with the standard available for worker nodes*/
  128. int starpu_sched_node_is_worker(struct starpu_sched_node * node);
  129. int starpu_sched_node_is_simple_worker(struct starpu_sched_node * node);
  130. int starpu_sched_node_is_combined_worker(struct starpu_sched_node * node);
  131. int starpu_sched_node_worker_get_workerid(struct starpu_sched_node * worker_node);
  132. struct starpu_sched_node * starpu_sched_node_fifo_create(void * arg STARPU_ATTRIBUTE_UNUSED);
  133. int starpu_sched_node_is_fifo(struct starpu_sched_node * node);
  134. struct starpu_sched_node * starpu_sched_node_work_stealing_create(void * arg STARPU_ATTRIBUTE_UNUSED);
  135. int starpu_sched_node_is_work_stealing(struct starpu_sched_node * node);
  136. int starpu_sched_tree_work_stealing_push_task(struct starpu_task *task);
  137. struct starpu_sched_node * starpu_sched_node_random_create(void * arg STARPU_ATTRIBUTE_UNUSED);
  138. int starpu_sched_node_is_random(struct starpu_sched_node *);
  139. struct starpu_heft_data
  140. {
  141. double alpha;
  142. double beta;
  143. double gamma;
  144. double idle_power;
  145. struct starpu_sched_node * (*no_perf_model_node_create)(void * arg_no_perf_model);
  146. void * arg_no_perf_model;
  147. struct starpu_sched_node * (*calibrating_node_create)(void * arg_calibrating_node);
  148. void * arg_calibrating_node;
  149. };
  150. /* create a node with heft_data paremeters
  151. a copy the struct starpu_heft_data * given is performed during the init_data call
  152. the heft node doesnt do anything but pushing tasks on no_perf_model_node and calibrating_node
  153. */
  154. struct starpu_sched_node * starpu_sched_node_heft_create(struct starpu_heft_data * heft_data);
  155. int starpu_sched_node_is_heft(struct starpu_sched_node * node);
  156. /* this node select the best implementation for the first worker in context that can execute task.
  157. * and fill task->predicted and task->predicted_transfer
  158. * cannot have several childs if push_task is called
  159. */
  160. struct starpu_sched_node * starpu_sched_node_best_implementation_create(void * arg STARPU_ATTRIBUTE_UNUSED);
  161. /*create an empty tree
  162. */
  163. struct starpu_sched_tree * starpu_sched_tree_create(unsigned sched_ctx_id);
  164. void starpu_sched_tree_destroy(struct starpu_sched_tree * tree);
  165. /* destroy node and all his child
  166. * except if they are shared between several contexts
  167. */
  168. void starpu_sched_node_destroy_rec(struct starpu_sched_node * node, unsigned sched_ctx_id);
  169. /* update all the node->workers member recursively
  170. */
  171. void starpu_sched_tree_update_workers(struct starpu_sched_tree * t);
  172. /* idem for workers_in_ctx
  173. */
  174. void starpu_sched_tree_update_workers_in_ctx(struct starpu_sched_tree * t);
  175. /* wake up underlaying workers of node
  176. */
  177. void starpu_sched_node_available(struct starpu_sched_node * node);
  178. int starpu_sched_tree_push_task(struct starpu_task * task);
  179. struct starpu_task * starpu_sched_tree_pop_task(unsigned sched_ctx_id);
  180. void starpu_sched_tree_add_workers(unsigned sched_ctx_id, int *workerids, unsigned nworkers);
  181. void starpu_sched_tree_remove_workers(unsigned sched_ctx_id, int *workerids, unsigned nworkers);
  182. void starpu_sched_node_worker_pre_exec_hook(struct starpu_task * task);
  183. void starpu_sched_node_worker_post_exec_hook(struct starpu_task * task);
  184. struct starpu_bitmap * starpu_bitmap_create(void);
  185. void starpu_bitmap_destroy(struct starpu_bitmap *);
  186. void starpu_bitmap_set(struct starpu_bitmap *, int);
  187. void starpu_bitmap_unset(struct starpu_bitmap *, int);
  188. void starpu_bitmap_unset_all(struct starpu_bitmap *);
  189. int starpu_bitmap_get(struct starpu_bitmap *, int);
  190. /* basicaly compute starpu_bitmap_unset_all(a) ; a = b & c; */
  191. void starpu_bitmap_unset_and(struct starpu_bitmap * a, struct starpu_bitmap * b, struct starpu_bitmap * c);
  192. /* this is basically compute a |= b;*/
  193. void starpu_bitmap_or(struct starpu_bitmap * a,
  194. struct starpu_bitmap * b);
  195. //return 1 iff e set in b1 AND e set in b2
  196. int starpu_bitmap_and_get(struct starpu_bitmap * b1,
  197. struct starpu_bitmap * b2,
  198. int e);
  199. int starpu_bitmap_cardinal(struct starpu_bitmap *);
  200. //return the index of first bit, -1 if none
  201. int starpu_bitmap_first(struct starpu_bitmap *);
  202. int starpu_bitmap_last(struct starpu_bitmap *);
  203. //return the index of bit right after e, -1 if none
  204. int starpu_bitmap_next(struct starpu_bitmap *, int e);
  205. struct starpu_sched_node_composed_recipe;
  206. /* create empty recipe */
  207. struct starpu_sched_node_composed_recipe * starpu_sched_node_create_recipe(void);
  208. struct starpu_sched_node_composed_recipe * starpu_sched_node_create_recipe_singleton(struct starpu_sched_node *(*create_node)(void * arg), void * arg);
  209. /* add a function creation node to recipe */
  210. void starpu_sched_recipe_add_node(struct starpu_sched_node_composed_recipe * recipe, struct starpu_sched_node *(*create_node)(void * arg), void * arg);
  211. void starpu_destroy_composed_sched_node_recipe(struct starpu_sched_node_composed_recipe *);
  212. struct starpu_sched_node * starpu_sched_node_composed_node_create(struct starpu_sched_node_composed_recipe * recipe);
  213. #ifdef STARPU_HAVE_HWLOC
  214. /* null pointer mean to ignore a level L of hierarchy, then nodes of levels > L become childs of level L - 1 */
  215. struct starpu_sched_specs
  216. {
  217. /* hw_loc_machine_composed_sched_node must be set as its the root of the topology */
  218. struct starpu_sched_node_composed_recipe * hwloc_machine_composed_sched_node;
  219. struct starpu_sched_node_composed_recipe * hwloc_node_composed_sched_node;
  220. struct starpu_sched_node_composed_recipe * hwloc_socket_composed_sched_node;
  221. struct starpu_sched_node_composed_recipe * hwloc_cache_composed_sched_node;
  222. /* this member should return a new allocated starpu_sched_node_composed_recipe or NULL
  223. * the starpu_sched_node_composed_recipe_t must not include the worker node
  224. */
  225. struct starpu_sched_node_composed_recipe * (*worker_composed_sched_node)(enum starpu_worker_archtype archtype);
  226. /* this flag indicate if heterogenous workers should be brothers or cousins,
  227. * as example, if a gpu and a cpu should share or not there numa node
  228. */
  229. int mix_heterogeneous_workers;
  230. };
  231. struct starpu_sched_tree * starpu_sched_node_make_scheduler(unsigned sched_ctx_id, struct starpu_sched_specs);
  232. #endif /* STARPU_HAVE_HWLOC */
  233. #endif