add_vectors_interface.cpp 17 KB

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  1. /* StarPU --- Runtime system for heterogeneous multicore architectures.
  2. *
  3. * Copyright (C) 2009, 2010-2011, 2013-2015, 2017 Université de Bordeaux
  4. * Copyright (C) 2010, 2011, 2012, 2013, 2014, 2016 CNRS
  5. * Copyright (C) 2012, 2017 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. /*
  19. * This is a small example of a C++ program using STL and starpu. We here just
  20. * add two std::vector with duplicating vectors. StarPU achieves data
  21. * transfers between objects.
  22. */
  23. #include <cassert>
  24. #include <vector>
  25. #ifdef PRINT_OUTPUT
  26. #include <iostream>
  27. #endif
  28. #include <starpu.h>
  29. #define MY_TYPE char, my_allocator<char>
  30. /* create an allocator to put data on the correct NUMA node */
  31. template <class T>
  32. class my_allocator
  33. {
  34. public:
  35. typedef size_t size_type;
  36. typedef ptrdiff_t difference_type;
  37. typedef T* pointer;
  38. typedef const T* const_pointer;
  39. typedef T& reference;
  40. typedef const T& const_reference;
  41. typedef T value_type;
  42. my_allocator()
  43. {
  44. this->node = STARPU_MAIN_RAM;
  45. }
  46. my_allocator(const my_allocator& a)
  47. {
  48. node = a.get_node();
  49. }
  50. my_allocator(const unsigned node)
  51. {
  52. this->node = node;
  53. }
  54. pointer allocate(size_type n, const void * = 0)
  55. {
  56. T* t = (T*) starpu_malloc_on_node(this->node, n * sizeof(T));
  57. return t;
  58. }
  59. void deallocate(void* p, size_type n)
  60. {
  61. if (p)
  62. {
  63. starpu_free_on_node(this->node, (uintptr_t) p, n * sizeof(T));
  64. }
  65. }
  66. unsigned get_node() const
  67. {
  68. return node;
  69. }
  70. pointer address(reference x) const
  71. {
  72. return &x;
  73. }
  74. const_pointer address(const_reference x) const
  75. {
  76. return &x;
  77. }
  78. my_allocator<T>& operator=(const my_allocator&)
  79. {
  80. return *this;
  81. }
  82. void construct(pointer p, const T& val)
  83. {
  84. new ((T*) p) T(val);
  85. }
  86. void destroy(pointer p)
  87. {
  88. p->~T();
  89. }
  90. size_type max_size() const
  91. {
  92. return size_type(-1);
  93. }
  94. template <class U>
  95. struct rebind
  96. {
  97. typedef my_allocator<U> other;
  98. };
  99. template <class U>
  100. my_allocator(const my_allocator<U>&)
  101. {
  102. }
  103. template <class U>
  104. my_allocator& operator=(const my_allocator<U>&)
  105. {
  106. return *this;
  107. }
  108. private:
  109. unsigned node;
  110. };
  111. /*
  112. * Create a new interface to catch C++ vector and make appropriate data transfers
  113. */
  114. struct vector_cpp_interface
  115. {
  116. enum starpu_data_interface_id id;
  117. uintptr_t ptr;
  118. uintptr_t dev_handle;
  119. size_t offset;
  120. uint32_t nx;
  121. size_t elemsize;
  122. std::vector<MY_TYPE>* vec;
  123. uint32_t slice_base;
  124. };
  125. #define VECTOR_CPP_GET_VEC(interface) ({ (((struct vector_cpp_interface *)(interface))->vec); })
  126. static int vector_interface_copy_any_to_any(void *src_interface, unsigned src_node,
  127. void *dst_interface, unsigned dst_node, void *async_data);
  128. #if __cplusplus >= 201103L
  129. static const struct starpu_data_copy_methods vector_cpp_copy_data_methods_s =
  130. {
  131. .can_copy = NULL,
  132. .ram_to_ram = NULL,
  133. .ram_to_cuda = NULL,
  134. .ram_to_opencl = NULL,
  135. .ram_to_mic = NULL,
  136. .cuda_to_ram = NULL,
  137. .cuda_to_cuda = NULL,
  138. .cuda_to_opencl = NULL,
  139. .opencl_to_ram = NULL,
  140. .opencl_to_cuda = NULL,
  141. .opencl_to_opencl = NULL,
  142. .mic_to_ram = NULL,
  143. .scc_src_to_sink = NULL,
  144. .scc_sink_to_src = NULL,
  145. .scc_sink_to_sink = NULL,
  146. .ram_to_mpi_ms = NULL,
  147. .mpi_ms_to_ram = NULL,
  148. .mpi_ms_to_mpi_ms = NULL,
  149. .ram_to_cuda_async = NULL,
  150. .cuda_to_ram_async = NULL,
  151. .cuda_to_cuda_async = NULL,
  152. .ram_to_opencl_async = NULL,
  153. .opencl_to_ram_async = NULL,
  154. .opencl_to_opencl_async = NULL,
  155. .ram_to_mpi_ms_async = NULL,
  156. .mpi_ms_to_ram_async = NULL,
  157. .mpi_ms_to_mpi_ms_async = NULL,
  158. .ram_to_mic_async = NULL,
  159. .mic_to_ram_async = NULL,
  160. .any_to_any = vector_interface_copy_any_to_any,
  161. };
  162. #else
  163. static const struct starpu_data_copy_methods vector_cpp_copy_data_methods_s =
  164. {
  165. NULL,
  166. NULL,
  167. NULL,
  168. NULL,
  169. NULL,
  170. NULL,
  171. NULL,
  172. NULL,
  173. NULL,
  174. NULL,
  175. NULL,
  176. NULL,
  177. NULL,
  178. NULL,
  179. NULL,
  180. NULL,
  181. NULL,
  182. NULL,
  183. NULL,
  184. NULL,
  185. NULL,
  186. NULL,
  187. NULL,
  188. NULL,
  189. NULL,
  190. NULL,
  191. NULL,
  192. NULL,
  193. NULL,
  194. vector_interface_copy_any_to_any,
  195. };
  196. #endif
  197. static void register_vector_cpp_handle(starpu_data_handle_t handle, unsigned home_node, void *data_interface);
  198. static starpu_ssize_t allocate_vector_cpp_buffer_on_node(void *data_interface_, unsigned dst_node);
  199. static void *vector_cpp_handle_to_pointer(starpu_data_handle_t handle, unsigned node);
  200. static void free_vector_cpp_buffer_on_node(void *data_interface, unsigned node);
  201. static void free_vector_cpp_buffer_on_node(void *data_interface, unsigned node);
  202. static size_t vector_cpp_interface_get_size(starpu_data_handle_t handle);
  203. static uint32_t footprint_vector_cpp_interface_crc32(starpu_data_handle_t handle);
  204. static int vector_cpp_compare(void *data_interface_a, void *data_interface_b);
  205. static void display_vector_cpp_interface(starpu_data_handle_t handle, FILE *f);
  206. static int pack_vector_cpp_handle(starpu_data_handle_t handle, unsigned node, void **ptr, starpu_ssize_t *count);
  207. static int unpack_vector_cpp_handle(starpu_data_handle_t handle, unsigned node, void *ptr, size_t count);
  208. static starpu_ssize_t vector_cpp_describe(void *data_interface, char *buf, size_t size);
  209. #if __cplusplus >= 201103L
  210. static struct starpu_data_interface_ops interface_vector_cpp_ops =
  211. {
  212. .register_data_handle = register_vector_cpp_handle,
  213. .allocate_data_on_node = allocate_vector_cpp_buffer_on_node,
  214. .free_data_on_node = free_vector_cpp_buffer_on_node,
  215. .copy_methods = &vector_cpp_copy_data_methods_s,
  216. .handle_to_pointer = vector_cpp_handle_to_pointer,
  217. .get_size = vector_cpp_interface_get_size,
  218. .footprint = footprint_vector_cpp_interface_crc32,
  219. .compare = vector_cpp_compare,
  220. .display = display_vector_cpp_interface,
  221. .describe = vector_cpp_describe,
  222. .interfaceid = STARPU_UNKNOWN_INTERFACE_ID,
  223. .interface_size = sizeof(struct vector_cpp_interface),
  224. .is_multiformat = 0,
  225. .dontcache = 0,
  226. .get_mf_ops = NULL,
  227. .pack_data = pack_vector_cpp_handle,
  228. .unpack_data = unpack_vector_cpp_handle,
  229. .name = (char *) "VECTOR_CPP_INTERFACE"
  230. };
  231. #else
  232. static struct starpu_data_interface_ops interface_vector_cpp_ops =
  233. {
  234. register_vector_cpp_handle,
  235. allocate_vector_cpp_buffer_on_node,
  236. free_vector_cpp_buffer_on_node,
  237. &vector_cpp_copy_data_methods_s,
  238. vector_cpp_handle_to_pointer,
  239. vector_cpp_interface_get_size,
  240. footprint_vector_cpp_interface_crc32,
  241. vector_cpp_compare,
  242. display_vector_cpp_interface,
  243. vector_cpp_describe,
  244. STARPU_UNKNOWN_INTERFACE_ID,
  245. sizeof(struct vector_cpp_interface),
  246. 0,
  247. 0,
  248. NULL,
  249. pack_vector_cpp_handle,
  250. unpack_vector_cpp_handle,
  251. (char *) "VECTOR_CPP_INTERFACE"
  252. };
  253. #endif
  254. static void *vector_cpp_handle_to_pointer(starpu_data_handle_t handle, unsigned node)
  255. {
  256. STARPU_ASSERT(starpu_data_test_if_allocated_on_node(handle, node));
  257. struct vector_cpp_interface *vector_interface = (struct vector_cpp_interface *)
  258. starpu_data_get_interface_on_node(handle, node);
  259. return (void*) vector_interface->ptr;
  260. }
  261. static void register_vector_cpp_handle(starpu_data_handle_t handle, unsigned home_node, void *data_interface)
  262. {
  263. struct vector_cpp_interface *vector_interface = (struct vector_cpp_interface *) data_interface;
  264. unsigned node;
  265. for (node = 0; node < STARPU_MAXNODES; node++)
  266. {
  267. struct vector_cpp_interface *local_interface = (struct vector_cpp_interface *)
  268. starpu_data_get_interface_on_node(handle, node);
  269. if (node == home_node)
  270. {
  271. local_interface->ptr = vector_interface->ptr;
  272. local_interface->dev_handle = vector_interface->dev_handle;
  273. local_interface->offset = vector_interface->offset;
  274. local_interface->vec = vector_interface->vec;
  275. }
  276. else
  277. {
  278. local_interface->ptr = 0;
  279. local_interface->dev_handle = 0;
  280. local_interface->offset = 0;
  281. local_interface->vec = NULL;;
  282. }
  283. local_interface->id = vector_interface->id;
  284. local_interface->nx = vector_interface->nx;
  285. local_interface->elemsize = vector_interface->elemsize;
  286. local_interface->slice_base = vector_interface->slice_base;
  287. }
  288. }
  289. /* declare a new data with the vector interface */
  290. void vector_cpp_data_register(starpu_data_handle_t *handleptr, int home_node,
  291. std::vector<MY_TYPE>* vec, uint32_t nx, size_t elemsize)
  292. {
  293. #if __cplusplus >= 201103L
  294. struct vector_cpp_interface vector =
  295. {
  296. .id = STARPU_UNKNOWN_INTERFACE_ID,
  297. .ptr = (uintptr_t) &(*vec)[0],
  298. .dev_handle = (uintptr_t) &(*vec)[0],
  299. .offset = 0,
  300. .nx = nx,
  301. .elemsize = elemsize,
  302. .vec = vec,
  303. .slice_base = 0
  304. };
  305. #else
  306. struct vector_cpp_interface vector =
  307. {
  308. STARPU_UNKNOWN_INTERFACE_ID,
  309. (uintptr_t) &(*vec)[0],
  310. (uintptr_t) &(*vec)[0],
  311. 0,
  312. nx,
  313. elemsize,
  314. vec,
  315. 0
  316. };
  317. #endif
  318. starpu_data_register(handleptr, home_node, &vector, &interface_vector_cpp_ops);
  319. }
  320. /* offer an access to the data parameters */
  321. uint32_t vector_cpp_get_nx(starpu_data_handle_t handle)
  322. {
  323. struct vector_cpp_interface *vector_interface = (struct vector_cpp_interface *)
  324. starpu_data_get_interface_on_node(handle, STARPU_MAIN_RAM);
  325. return vector_interface->nx;
  326. }
  327. static uint32_t footprint_vector_cpp_interface_crc32(starpu_data_handle_t handle)
  328. {
  329. return starpu_hash_crc32c_be(vector_cpp_get_nx(handle), 0);
  330. }
  331. static int vector_cpp_compare(void *data_interface_a, void *data_interface_b)
  332. {
  333. struct vector_cpp_interface *vector_a = (struct vector_cpp_interface *) data_interface_a;
  334. struct vector_cpp_interface *vector_b = (struct vector_cpp_interface *) data_interface_b;
  335. /* Two vectors are considered compatible if they have the same size */
  336. return ((vector_a->nx == vector_b->nx)
  337. && (vector_a->elemsize == vector_b->elemsize));
  338. }
  339. static void display_vector_cpp_interface(starpu_data_handle_t handle, FILE *f)
  340. {
  341. struct vector_cpp_interface *vector_interface = (struct vector_cpp_interface *)
  342. starpu_data_get_interface_on_node(handle, STARPU_MAIN_RAM);
  343. fprintf(f, "%u\t", vector_interface->nx);
  344. }
  345. static int pack_vector_cpp_handle(starpu_data_handle_t handle, unsigned node, void **ptr, starpu_ssize_t *count)
  346. {
  347. STARPU_ASSERT(starpu_data_test_if_allocated_on_node(handle, node));
  348. struct vector_cpp_interface *vector_interface = (struct vector_cpp_interface *)
  349. starpu_data_get_interface_on_node(handle, node);
  350. *count = vector_interface->nx*vector_interface->elemsize;
  351. if (ptr != NULL)
  352. {
  353. starpu_malloc_flags(ptr, *count, 0);
  354. memcpy(*ptr, (void*)vector_interface->ptr, vector_interface->elemsize*vector_interface->nx);
  355. }
  356. return 0;
  357. }
  358. static int unpack_vector_cpp_handle(starpu_data_handle_t handle, unsigned node, void *ptr, size_t count)
  359. {
  360. STARPU_ASSERT(starpu_data_test_if_allocated_on_node(handle, node));
  361. struct vector_cpp_interface *vector_interface = (struct vector_cpp_interface *)
  362. starpu_data_get_interface_on_node(handle, node);
  363. STARPU_ASSERT(count == vector_interface->elemsize * vector_interface->nx);
  364. memcpy((void*)vector_interface->ptr, ptr, count);
  365. return 0;
  366. }
  367. static size_t vector_cpp_interface_get_size(starpu_data_handle_t handle)
  368. {
  369. size_t size;
  370. struct vector_cpp_interface *vector_interface = (struct vector_cpp_interface *)
  371. starpu_data_get_interface_on_node(handle, STARPU_MAIN_RAM);
  372. size = vector_interface->nx*vector_interface->elemsize;
  373. return size;
  374. }
  375. size_t vector_cpp_get_elemsize(starpu_data_handle_t handle)
  376. {
  377. struct vector_cpp_interface *vector_interface = (struct vector_cpp_interface *)
  378. starpu_data_get_interface_on_node(handle, STARPU_MAIN_RAM);
  379. return vector_interface->elemsize;
  380. }
  381. /* memory allocation/deallocation primitives for the vector interface */
  382. /* returns the size of the allocated area */
  383. static starpu_ssize_t allocate_vector_cpp_buffer_on_node(void *data_interface_, unsigned dst_node)
  384. {
  385. struct vector_cpp_interface *vector_interface = (struct vector_cpp_interface *) data_interface_;
  386. uint32_t nx = vector_interface->nx;
  387. size_t elemsize = vector_interface->elemsize;
  388. starpu_ssize_t allocated_memory;
  389. const my_allocator<char> allocator(dst_node);
  390. std::vector<MY_TYPE> * vec = new std::vector<MY_TYPE>(nx, 0, allocator);
  391. vector_interface->vec = vec;
  392. if (!vector_interface->vec)
  393. return -ENOMEM;
  394. allocated_memory = nx*elemsize;
  395. /* update the data properly in consequence */
  396. vector_interface->ptr = (uintptr_t) &((*vec)[0]);
  397. vector_interface->dev_handle = (uintptr_t) &((*vec)[0]);
  398. vector_interface->offset = 0;
  399. return allocated_memory;
  400. }
  401. static void free_vector_cpp_buffer_on_node(void *data_interface, unsigned node)
  402. {
  403. struct vector_cpp_interface *vector_interface = (struct vector_cpp_interface *) data_interface;
  404. uint32_t nx = vector_interface->nx;
  405. size_t elemsize = vector_interface->elemsize;
  406. delete vector_interface->vec;
  407. }
  408. static int vector_interface_copy_any_to_any(void *src_interface, unsigned src_node,
  409. void *dst_interface, unsigned dst_node, void *async_data)
  410. {
  411. struct vector_cpp_interface *src_vector = (struct vector_cpp_interface *) src_interface;
  412. struct vector_cpp_interface *dst_vector = (struct vector_cpp_interface *) dst_interface;
  413. int ret;
  414. ret = starpu_interface_copy(src_vector->dev_handle, src_vector->offset, src_node,
  415. dst_vector->dev_handle, dst_vector->offset, dst_node,
  416. src_vector->nx*src_vector->elemsize, async_data);
  417. return ret;
  418. }
  419. static starpu_ssize_t vector_cpp_describe(void *data_interface, char *buf, size_t size)
  420. {
  421. struct vector_cpp_interface *vector = (struct vector_cpp_interface *) data_interface;
  422. return snprintf(buf, size, "V%ux%u",
  423. (unsigned) vector->nx,
  424. (unsigned) vector->elemsize);
  425. }
  426. /*
  427. * End of interface
  428. */
  429. /* Kernel using STL objects */
  430. void cpu_kernel_add_vectors(void *buffers[], void *cl_arg)
  431. {
  432. std::vector<MY_TYPE>* vec_A = VECTOR_CPP_GET_VEC(buffers[0]);
  433. std::vector<MY_TYPE>* vec_B = VECTOR_CPP_GET_VEC(buffers[1]);
  434. std::vector<MY_TYPE>* vec_C = VECTOR_CPP_GET_VEC(buffers[2]);
  435. // all the std::vector have to have the same size
  436. assert(vec_A->size() == vec_B->size() && vec_B->size() == vec_C->size());
  437. // performs the vector addition (vec_C[] = vec_A[] + vec_B[])
  438. for (size_t i = 0; i < vec_C->size(); i++)
  439. (*vec_C)[i] = (*vec_A)[i] + (*vec_B)[i];
  440. }
  441. #define VEC_SIZE 1024
  442. int main(int argc, char **argv)
  443. {
  444. struct starpu_conf conf;
  445. starpu_conf_init(&conf);
  446. conf.nmic = 0;
  447. conf.nscc = 0;
  448. conf.nmpi_ms = 0;
  449. // initialize StarPU with default configuration
  450. int ret = starpu_init(&conf);
  451. if (ret == -ENODEV)
  452. return 77;
  453. STARPU_CHECK_RETURN_VALUE(ret, "starpu_init");
  454. /* Test data transfers between NUMA nodes if available */
  455. unsigned last_numa_node = starpu_memory_nodes_get_numa_count() - 1;
  456. const my_allocator<char> allocator_main_ram(STARPU_MAIN_RAM);
  457. const my_allocator<char> allocator_last_numa(last_numa_node);
  458. std::vector<MY_TYPE> vec_A(VEC_SIZE, 2, allocator_main_ram); // all the vector is initialized to 2
  459. std::vector<MY_TYPE> vec_B(VEC_SIZE, 3, allocator_main_ram); // all the vector is initialized to 3
  460. std::vector<MY_TYPE> vec_C(VEC_SIZE, 0, allocator_last_numa); // all the vector is initialized to 0
  461. // StarPU data registering
  462. starpu_data_handle_t spu_vec_A;
  463. starpu_data_handle_t spu_vec_B;
  464. starpu_data_handle_t spu_vec_C;
  465. // give the data of the vector to StarPU (C array)
  466. vector_cpp_data_register(&spu_vec_A, STARPU_MAIN_RAM, &vec_A, vec_A.size(), sizeof(char));
  467. vector_cpp_data_register(&spu_vec_B, STARPU_MAIN_RAM, &vec_B, vec_B.size(), sizeof(char));
  468. vector_cpp_data_register(&spu_vec_C, last_numa_node, &vec_C, vec_C.size(), sizeof(char));
  469. // create the StarPU codelet
  470. starpu_codelet cl;
  471. starpu_codelet_init(&cl);
  472. cl.cpu_funcs [0] = cpu_kernel_add_vectors;
  473. cl.cpu_funcs_name[0] = "cpu_kernel_add_vectors";
  474. cl.nbuffers = 3;
  475. cl.modes [0] = STARPU_R;
  476. cl.modes [1] = STARPU_R;
  477. cl.modes [2] = STARPU_W;
  478. cl.name = "add_vectors";
  479. // submit a new StarPU task to execute
  480. ret = starpu_task_insert(&cl,
  481. STARPU_R, spu_vec_A,
  482. STARPU_R, spu_vec_B,
  483. STARPU_W, spu_vec_C,
  484. 0);
  485. if (ret == -ENODEV)
  486. {
  487. // StarPU data unregistering
  488. starpu_data_unregister(spu_vec_C);
  489. starpu_data_unregister(spu_vec_B);
  490. starpu_data_unregister(spu_vec_A);
  491. // terminate StarPU, no task can be submitted after
  492. starpu_shutdown();
  493. return 77;
  494. }
  495. STARPU_CHECK_RETURN_VALUE(ret, "task_submit::add_vectors");
  496. // wait the task
  497. starpu_task_wait_for_all();
  498. // StarPU data unregistering
  499. starpu_data_unregister(spu_vec_C);
  500. starpu_data_unregister(spu_vec_B);
  501. starpu_data_unregister(spu_vec_A);
  502. // terminate StarPU, no task can be submitted after
  503. starpu_shutdown();
  504. // check results
  505. bool fail = false;
  506. int i = 0;
  507. while (!fail && i < VEC_SIZE)
  508. fail = vec_C[i++] != 5;
  509. if (fail)
  510. {
  511. #ifdef PRINT_OUTPUT
  512. std::cout << "Example failed..." << std::endl;
  513. #endif
  514. return EXIT_FAILURE;
  515. }
  516. else
  517. {
  518. #ifdef PRINT_OUTPUT
  519. std::cout << "Example successfully passed!" << std::endl;
  520. #endif
  521. return EXIT_SUCCESS;
  522. }
  523. }