stencil-blocks.c 9.8 KB

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  1. /* StarPU --- Runtime system for heterogeneous multicore architectures.
  2. *
  3. * Copyright (C) 2010-2011,2013-2017 Université de Bordeaux
  4. * Copyright (C) 2011,2013,2015-2017 CNRS
  5. * Copyright (C) 2013 Inria
  6. *
  7. * StarPU is free software; you can redistribute it and/or modify
  8. * it under the terms of the GNU Lesser General Public License as published by
  9. * the Free Software Foundation; either version 2.1 of the License, or (at
  10. * your option) any later version.
  11. *
  12. * StarPU is distributed in the hope that it will be useful, but
  13. * WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.
  15. *
  16. * See the GNU Lesser General Public License in COPYING.LGPL for more details.
  17. */
  18. #include "stencil.h"
  19. #include <math.h>
  20. /* Manage block and tags allocation */
  21. static struct block_description *blocks;
  22. static unsigned sizex, sizey, sizez;
  23. static unsigned nbz;
  24. static unsigned *block_sizes_z;
  25. /*
  26. * Tags for various codelet completion
  27. */
  28. /*
  29. * common tag format:
  30. */
  31. static starpu_tag_t tag_common(int z, int dir, int type)
  32. {
  33. return (((((starpu_tag_t)type) << 4) | ((dir+1)/2)) << 32)|(starpu_tag_t)z;
  34. }
  35. /* Completion of last update tasks */
  36. starpu_tag_t TAG_FINISH(int z)
  37. {
  38. z = (z + nbz)%nbz;
  39. starpu_tag_t tag = tag_common(z, 0, 1);
  40. return tag;
  41. }
  42. /* Completion of the save codelet for MPI send/recv */
  43. starpu_tag_t TAG_START(int z, int dir)
  44. {
  45. z = (z + nbz)%nbz;
  46. starpu_tag_t tag = tag_common(z, dir, 2);
  47. return tag;
  48. }
  49. /*
  50. * common MPI tag format:
  51. * iter is actually not needed for coherency, but it makes debugging easier
  52. */
  53. static int mpi_tag_common(int z, int iter, int dir, int buffer)
  54. {
  55. return (((((iter << 12)|z)<<4) | ((1+dir)/2))<<4)|buffer;
  56. }
  57. int MPI_TAG0(int z, int iter, int dir)
  58. {
  59. z = (z + nbz)%nbz;
  60. int tag = mpi_tag_common(z, iter, dir, 0);
  61. return tag;
  62. }
  63. int MPI_TAG1(int z, int iter, int dir)
  64. {
  65. z = (z + nbz)%nbz;
  66. int tag = mpi_tag_common(z, iter, dir, 1);
  67. return tag;
  68. }
  69. /*
  70. * Block descriptors
  71. */
  72. /* Compute the size of the different blocks */
  73. static void compute_block_sizes(void)
  74. {
  75. block_sizes_z = (unsigned *) malloc(nbz*sizeof(unsigned));
  76. STARPU_ASSERT(block_sizes_z);
  77. /* Perhaps the last chunk is smaller */
  78. unsigned default_block_size = (sizez+nbz-1)/nbz;
  79. unsigned remaining = sizez;
  80. unsigned b;
  81. for (b = 0; b < nbz; b++)
  82. {
  83. block_sizes_z[b] = MIN(default_block_size, remaining);
  84. remaining -= block_sizes_z[b];
  85. }
  86. STARPU_ASSERT(remaining == 0);
  87. }
  88. unsigned get_block_size(int bz)
  89. {
  90. return block_sizes_z[bz];
  91. }
  92. struct block_description *get_block_description(int z)
  93. {
  94. z = (z + nbz)%nbz;
  95. STARPU_ASSERT(&blocks[z]);
  96. return &blocks[z];
  97. }
  98. int get_block_mpi_node(int z)
  99. {
  100. z = (z + nbz)%nbz;
  101. return blocks[z].mpi_node;
  102. }
  103. void create_blocks_array(unsigned _sizex, unsigned _sizey, unsigned _sizez, unsigned _nbz)
  104. {
  105. /* Store the parameters */
  106. nbz = _nbz;
  107. sizex = _sizex;
  108. sizey = _sizey;
  109. sizez = _sizez;
  110. /* Create a grid of block descriptors */
  111. blocks = (struct block_description *) calloc(nbz, sizeof(struct block_description));
  112. STARPU_ASSERT(blocks);
  113. /* What is the size of the different blocks ? */
  114. compute_block_sizes();
  115. unsigned bz;
  116. for (bz = 0; bz < nbz; bz++)
  117. {
  118. struct block_description * block =
  119. get_block_description(bz);
  120. /* Which block is it ? */
  121. block->bz = bz;
  122. /* For simplicity, we store which are the neighbours blocks */
  123. block->boundary_blocks[B] = get_block_description((bz-1+nbz)%nbz);
  124. block->boundary_blocks[T] = get_block_description((bz+1)%nbz);
  125. }
  126. }
  127. void free_blocks_array()
  128. {
  129. free(blocks);
  130. free(block_sizes_z);
  131. }
  132. /*
  133. * Initialization of the blocks
  134. */
  135. void assign_blocks_to_workers(int rank)
  136. {
  137. unsigned bz;
  138. /* NB: perhaps we could count a GPU as multiple workers */
  139. /* how many workers are there ? */
  140. /*unsigned nworkers = starpu_worker_get_count();*/
  141. /* how many blocks are on that MPI node ? */
  142. unsigned nblocks = 0;
  143. for (bz = 0; bz < nbz; bz++)
  144. {
  145. struct block_description *block =
  146. get_block_description(bz);
  147. if (block->mpi_node == rank)
  148. nblocks++;
  149. }
  150. /* how many blocks per worker ? */
  151. /*unsigned nblocks_per_worker = (nblocks + nworkers - 1)/nworkers;*/
  152. /* we now attribute up to nblocks_per_worker blocks per workers */
  153. unsigned attributed = 0;
  154. for (bz = 0; bz < nbz; bz++)
  155. {
  156. struct block_description *block =
  157. get_block_description(bz);
  158. if (block->mpi_node == rank)
  159. {
  160. unsigned workerid;
  161. /* Manage initial block distribution between CPU and GPU */
  162. #if 0
  163. #if 1
  164. /* GPUs then CPUs */
  165. if (attributed < 3*18)
  166. workerid = attributed / 18;
  167. else
  168. workerid = 3+ (attributed - 3*18) / 2;
  169. #else
  170. /* GPUs interleaved with CPUs */
  171. if ((attributed % 20) <= 1)
  172. workerid = 3 + attributed / 20;
  173. else if (attributed < 60)
  174. workerid = attributed / 20;
  175. else
  176. workerid = (attributed - 60)/2 + 6;
  177. #endif
  178. #else
  179. /* Only GPUS */
  180. workerid = (attributed / 21) % 3;
  181. #endif
  182. /*= attributed/nblocks_per_worker;*/
  183. block->preferred_worker = workerid;
  184. attributed++;
  185. }
  186. }
  187. }
  188. void assign_blocks_to_mpi_nodes(int world_size)
  189. {
  190. unsigned nzblocks_per_process = (nbz + world_size - 1) / world_size;
  191. unsigned bz;
  192. for (bz = 0; bz < nbz; bz++)
  193. {
  194. struct block_description *block =
  195. get_block_description(bz);
  196. block->mpi_node = bz / nzblocks_per_process;
  197. }
  198. }
  199. static size_t allocated = 0;
  200. static void allocate_block_on_node(starpu_data_handle_t *handleptr, unsigned bz, TYPE **ptr, unsigned nx, unsigned ny, unsigned nz)
  201. {
  202. int ret;
  203. size_t block_size = nx*ny*nz*sizeof(TYPE);
  204. /* Allocate memory */
  205. #if 1
  206. ret = starpu_malloc_flags((void **)ptr, block_size, STARPU_MALLOC_PINNED|STARPU_MALLOC_SIMULATION_FOLDED);
  207. STARPU_ASSERT(ret == 0);
  208. #else
  209. *ptr = malloc(block_size);
  210. STARPU_ASSERT(*ptr);
  211. #endif
  212. allocated += block_size;
  213. #ifndef STARPU_SIMGRID
  214. /* Fill the blocks with 0 */
  215. memset(*ptr, 0, block_size);
  216. #endif
  217. /* Register it to StarPU */
  218. starpu_block_data_register(handleptr, STARPU_MAIN_RAM, (uintptr_t)*ptr, nx, nx*ny, nx, ny, nz, sizeof(TYPE));
  219. starpu_data_set_coordinates(*handleptr, 1, bz);
  220. }
  221. static void free_block_on_node(starpu_data_handle_t handleptr, unsigned nx, unsigned ny, unsigned nz)
  222. {
  223. void *ptr = (void *) starpu_block_get_local_ptr(handleptr);
  224. size_t block_size = nx*ny*nz*sizeof(TYPE);
  225. starpu_data_unregister(handleptr);
  226. starpu_free_flags(ptr, block_size, STARPU_MALLOC_PINNED|STARPU_MALLOC_SIMULATION_FOLDED);
  227. }
  228. void display_memory_consumption(int rank)
  229. {
  230. FPRINTF(stderr, "%lu B of memory were allocated on node %d\n", (unsigned long) allocated, rank);
  231. }
  232. void allocate_memory_on_node(int rank)
  233. {
  234. unsigned bz;
  235. for (bz = 0; bz < nbz; bz++)
  236. {
  237. struct block_description *block = get_block_description(bz);
  238. int node = block->mpi_node;
  239. /* Main blocks */
  240. if (node == rank)
  241. {
  242. unsigned size_bz = block_sizes_z[bz];
  243. allocate_block_on_node(&block->layers_handle[0], bz, &block->layers[0],
  244. (sizex + 2*K), (sizey + 2*K), (size_bz + 2*K));
  245. #ifndef STARPU_SIMGRID
  246. #ifdef LIFE
  247. unsigned x, y, z;
  248. unsigned sum = 0;
  249. for (x = 0; x < sizex; x++)
  250. for (y = 0; y < sizey; y++)
  251. for (z = 0; z < size_bz; z++)
  252. /* Just random data */
  253. sum += block->layers[0][(K+x)+(K+y)*(sizex + 2*K)+(K+z)*(sizex+2*K)*(sizey+2*K)] = (int)((x/7.+y/13.+(bz*size_bz + z)/17.) * 10.) % 2;
  254. /* printf("block %d starts with %d/%d alive\n", bz, sum, sizex*sizey*size_bz);*/
  255. #endif
  256. #endif
  257. allocate_block_on_node(&block->layers_handle[1], bz, &block->layers[1],
  258. (sizex + 2*K), (sizey + 2*K), (size_bz + 2*K));
  259. }
  260. /* Boundary blocks : Top */
  261. int top_node = block->boundary_blocks[T]->mpi_node;
  262. if ((node == rank) || (top_node == rank))
  263. {
  264. allocate_block_on_node(&block->boundaries_handle[T][0], bz, &block->boundaries[T][0],
  265. (sizex + 2*K), (sizey + 2*K), K);
  266. allocate_block_on_node(&block->boundaries_handle[T][1], bz, &block->boundaries[T][1],
  267. (sizex + 2*K), (sizey + 2*K), K);
  268. }
  269. /* Boundary blocks : Bottom */
  270. int bottom_node = block->boundary_blocks[B]->mpi_node;
  271. if ((node == rank) || (bottom_node == rank))
  272. {
  273. allocate_block_on_node(&block->boundaries_handle[B][0], bz, &block->boundaries[B][0],
  274. (sizex + 2*K), (sizey + 2*K), K);
  275. allocate_block_on_node(&block->boundaries_handle[B][1], bz, &block->boundaries[B][1],
  276. (sizex + 2*K), (sizey + 2*K), K);
  277. }
  278. }
  279. }
  280. void free_memory_on_node(int rank)
  281. {
  282. unsigned bz;
  283. for (bz = 0; bz < nbz; bz++)
  284. {
  285. struct block_description *block = get_block_description(bz);
  286. int node = block->mpi_node;
  287. /* Main blocks */
  288. if (node == rank)
  289. {
  290. free_block_on_node(block->layers_handle[0], (sizex + 2*K), (sizey + 2*K), K);
  291. free_block_on_node(block->layers_handle[1], (sizex + 2*K), (sizey + 2*K), K);
  292. }
  293. /* Boundary blocks : Top */
  294. int top_node = block->boundary_blocks[T]->mpi_node;
  295. if ((node == rank) || (top_node == rank))
  296. {
  297. free_block_on_node(block->boundaries_handle[T][0], (sizex + 2*K), (sizey + 2*K), K);
  298. free_block_on_node(block->boundaries_handle[T][1], (sizex + 2*K), (sizey + 2*K), K);
  299. }
  300. /* Boundary blocks : Bottom */
  301. int bottom_node = block->boundary_blocks[B]->mpi_node;
  302. if ((node == rank) || (bottom_node == rank))
  303. {
  304. free_block_on_node(block->boundaries_handle[B][0], (sizex + 2*K), (sizey + 2*K), K);
  305. free_block_on_node(block->boundaries_handle[B][1], (sizex + 2*K), (sizey + 2*K), K);
  306. }
  307. }
  308. }
  309. /* check how many cells are alive */
  310. void check(int rank)
  311. {
  312. unsigned bz;
  313. for (bz = 0; bz < nbz; bz++)
  314. {
  315. struct block_description *block = get_block_description(bz);
  316. int node = block->mpi_node;
  317. /* Main blocks */
  318. if (node == rank)
  319. {
  320. #ifdef LIFE
  321. unsigned size_bz = block_sizes_z[bz];
  322. unsigned x, y, z;
  323. unsigned sum = 0;
  324. for (x = 0; x < sizex; x++)
  325. for (y = 0; y < sizey; y++)
  326. for (z = 0; z < size_bz; z++)
  327. sum += block->layers[0][(K+x)+(K+y)*(sizex + 2*K)+(K+z)*(sizex+2*K)*(sizey+2*K)];
  328. printf("block %u got %u/%u alive\n", bz, sum, sizex*sizey*size_bz);
  329. #endif
  330. }
  331. }
  332. }