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symv_thread.c 8.3 kB

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  1. /*********************************************************************/
  2. /* Copyright 2009, 2010 The University of Texas at Austin. */
  3. /* All rights reserved. */
  4. /* */
  5. /* Redistribution and use in source and binary forms, with or */
  6. /* without modification, are permitted provided that the following */
  7. /* conditions are met: */
  8. /* */
  9. /* 1. Redistributions of source code must retain the above */
  10. /* copyright notice, this list of conditions and the following */
  11. /* disclaimer. */
  12. /* */
  13. /* 2. Redistributions in binary form must reproduce the above */
  14. /* copyright notice, this list of conditions and the following */
  15. /* disclaimer in the documentation and/or other materials */
  16. /* provided with the distribution. */
  17. /* */
  18. /* THIS SOFTWARE IS PROVIDED BY THE UNIVERSITY OF TEXAS AT */
  19. /* AUSTIN ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, */
  20. /* INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF */
  21. /* MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE */
  22. /* DISCLAIMED. IN NO EVENT SHALL THE UNIVERSITY OF TEXAS AT */
  23. /* AUSTIN OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, */
  24. /* INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES */
  25. /* (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE */
  26. /* GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR */
  27. /* BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF */
  28. /* LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT */
  29. /* (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT */
  30. /* OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE */
  31. /* POSSIBILITY OF SUCH DAMAGE. */
  32. /* */
  33. /* The views and conclusions contained in the software and */
  34. /* documentation are those of the authors and should not be */
  35. /* interpreted as representing official policies, either expressed */
  36. /* or implied, of The University of Texas at Austin. */
  37. /*********************************************************************/
  38. #include <stdio.h>
  39. #include <stdlib.h>
  40. #include "common.h"
  41. #include "symcopy.h"
  42. #if! defined(HEMV) && !defined(HEMVREV)
  43. #define MYSYMV_U SYMV_U
  44. #define MYSYMV_L SYMV_L
  45. #elif defined HEMV
  46. #define MYSYMV_U HEMV_U
  47. #define MYSYMV_L HEMV_L
  48. #else
  49. #define MYSYMV_U HEMV_V
  50. #define MYSYMV_L HEMV_M
  51. #endif
  52. static int symv_kernel(blas_arg_t *args, BLASLONG *range_m, BLASLONG *range_n, FLOAT *dummy1, FLOAT *buffer, BLASLONG pos){
  53. FLOAT *a, *x, *y;
  54. BLASLONG lda, incx;
  55. BLASLONG m_from, m_to;
  56. a = (FLOAT *)args -> a;
  57. x = (FLOAT *)args -> b;
  58. y = (FLOAT *)args -> c;
  59. lda = args -> lda;
  60. incx = args -> ldb;
  61. m_from = 0;
  62. m_to = args -> m;
  63. if (range_m) {
  64. m_from = *(range_m + 0);
  65. m_to = *(range_m + 1);
  66. }
  67. if (range_n) y += *range_n * COMPSIZE;
  68. #ifndef LOWER
  69. SCAL_K(m_to, 0, 0, ZERO,
  70. #ifdef COMPLEX
  71. ZERO,
  72. #endif
  73. y, 1, NULL, 0, NULL, 0);
  74. MYSYMV_U (m_to, m_to - m_from, ONE,
  75. #ifdef COMPLEX
  76. ZERO,
  77. #endif
  78. a, lda, x, incx, y, 1, buffer);
  79. #else
  80. SCAL_K(args -> m - m_from, 0, 0, ZERO,
  81. #ifdef COMPLEX
  82. ZERO,
  83. #endif
  84. y + m_from * COMPSIZE, 1, NULL, 0, NULL, 0);
  85. MYSYMV_L (args -> m - m_from, m_to - m_from, ONE,
  86. #ifdef COMPLEX
  87. ZERO,
  88. #endif
  89. a + m_from * (lda + 1) * COMPSIZE, lda, x + m_from * incx * COMPSIZE, incx, y + m_from * COMPSIZE, 1, buffer);
  90. #endif
  91. return 0;
  92. }
  93. #ifndef COMPLEX
  94. int CNAME(BLASLONG m, FLOAT alpha, FLOAT *a, BLASLONG lda, FLOAT *x, BLASLONG incx, FLOAT *y, BLASLONG incy, FLOAT *buffer, int nthreads){
  95. #else
  96. int CNAME(BLASLONG m, FLOAT *alpha, FLOAT *a, BLASLONG lda, FLOAT *x, BLASLONG incx, FLOAT *y, BLASLONG incy, FLOAT *buffer, int nthreads){
  97. #endif
  98. blas_arg_t args;
  99. blas_queue_t queue[MAX_CPU_NUMBER];
  100. BLASLONG range_m[MAX_CPU_NUMBER + 1];
  101. BLASLONG range_n[MAX_CPU_NUMBER];
  102. BLASLONG width, i, num_cpu;
  103. double dnum;
  104. int mask = 3;
  105. #ifdef SMP
  106. #ifndef COMPLEX
  107. #ifdef XDOUBLE
  108. int mode = BLAS_XDOUBLE | BLAS_REAL;
  109. #elif defined(DOUBLE)
  110. int mode = BLAS_DOUBLE | BLAS_REAL;
  111. #else
  112. int mode = BLAS_SINGLE | BLAS_REAL;
  113. #endif
  114. #else
  115. #ifdef XDOUBLE
  116. int mode = BLAS_XDOUBLE | BLAS_COMPLEX;
  117. #elif defined(DOUBLE)
  118. int mode = BLAS_DOUBLE | BLAS_COMPLEX;
  119. #else
  120. int mode = BLAS_SINGLE | BLAS_COMPLEX;
  121. #endif
  122. #endif
  123. #endif
  124. args.m = m;
  125. args.a = (void *)a;
  126. args.b = (void *)x;
  127. args.c = (void *)buffer;
  128. args.lda = lda;
  129. args.ldb = incx;
  130. args.ldc = incy;
  131. dnum = (double)m * (double)m / (double)nthreads;
  132. num_cpu = 0;
  133. #ifndef LOWER
  134. range_m[0] = 0;
  135. i = 0;
  136. while (i < m){
  137. if (nthreads - num_cpu > 1) {
  138. double di = (double)i;
  139. width = ((BLASLONG)(sqrt(di * di + dnum) - di) + mask) & ~mask;
  140. if (width < 4) width = 4;
  141. if (width > m - i) width = m - i;
  142. } else {
  143. width = m - i;
  144. }
  145. range_m[num_cpu + 1] = range_m[num_cpu] + width;
  146. range_n[num_cpu] = num_cpu * (((m + 15) & ~15) + 16);
  147. if (range_n[num_cpu] > m * num_cpu) range_n[num_cpu] = m * num_cpu;
  148. queue[MAX_CPU_NUMBER - num_cpu - 1].mode = mode;
  149. queue[MAX_CPU_NUMBER - num_cpu - 1].routine = symv_kernel;
  150. queue[MAX_CPU_NUMBER - num_cpu - 1].args = &args;
  151. queue[MAX_CPU_NUMBER - num_cpu - 1].range_m = &range_m[num_cpu];
  152. queue[MAX_CPU_NUMBER - num_cpu - 1].range_n = &range_n[num_cpu];
  153. queue[MAX_CPU_NUMBER - num_cpu - 1].sa = NULL;
  154. queue[MAX_CPU_NUMBER - num_cpu - 1].sb = NULL;
  155. queue[MAX_CPU_NUMBER - num_cpu - 1].next = &queue[MAX_CPU_NUMBER - num_cpu];
  156. num_cpu ++;
  157. i += width;
  158. }
  159. if (num_cpu) {
  160. queue[MAX_CPU_NUMBER - num_cpu].sa = NULL;
  161. queue[MAX_CPU_NUMBER - num_cpu].sb = buffer + num_cpu * (((m + 255) & ~255) + 16) * COMPSIZE;
  162. queue[MAX_CPU_NUMBER - 1].next = NULL;
  163. exec_blas(num_cpu, &queue[MAX_CPU_NUMBER - num_cpu]);
  164. }
  165. #else
  166. range_m[0] = 0;
  167. i = 0;
  168. while (i < m){
  169. if (nthreads - num_cpu > 1) {
  170. double di = (double)(m - i);
  171. if (di * di - dnum > 0) {
  172. width = ((BLASLONG)(-sqrt(di * di - dnum) + di) + mask) & ~mask;
  173. } else {
  174. width = m - i;
  175. }
  176. if (width < 4) width = 4;
  177. if (width > m - i) width = m - i;
  178. } else {
  179. width = m - i;
  180. }
  181. range_m[num_cpu + 1] = range_m[num_cpu] + width;
  182. range_n[num_cpu] = num_cpu * (((m + 15) & ~15) + 16);
  183. if (range_n[num_cpu] > m * num_cpu) range_n[num_cpu] = m * num_cpu;
  184. queue[num_cpu].mode = mode;
  185. queue[num_cpu].routine = symv_kernel;
  186. queue[num_cpu].args = &args;
  187. queue[num_cpu].range_m = &range_m[num_cpu];
  188. queue[num_cpu].range_n = &range_n[num_cpu];
  189. queue[num_cpu].sa = NULL;
  190. queue[num_cpu].sb = NULL;
  191. queue[num_cpu].next = &queue[num_cpu + 1];
  192. num_cpu ++;
  193. i += width;
  194. }
  195. if (num_cpu) {
  196. queue[0].sa = NULL;
  197. queue[0].sb = buffer + num_cpu * (((m + 255) & ~255) + 16) * COMPSIZE;
  198. queue[num_cpu - 1].next = NULL;
  199. exec_blas(num_cpu, queue);
  200. }
  201. #endif
  202. #ifndef LOWER
  203. for (i = 0; i < num_cpu - 1; i ++) {
  204. AXPYU_K(range_m[i + 1], 0, 0, ONE,
  205. #ifdef COMPLEX
  206. ZERO,
  207. #endif
  208. buffer + range_n[i] * COMPSIZE, 1, buffer + range_n[num_cpu - 1] * COMPSIZE, 1, NULL, 0);
  209. }
  210. AXPYU_K(m, 0, 0,
  211. #ifndef COMPLEX
  212. alpha,
  213. #else
  214. alpha[0], alpha[1],
  215. #endif
  216. buffer + range_n[num_cpu - 1] * COMPSIZE, 1, y, incy, NULL, 0);
  217. #else
  218. for (i = 1; i < num_cpu; i ++) {
  219. AXPYU_K(m - range_m[i], 0, 0, ONE,
  220. #ifdef COMPLEX
  221. ZERO,
  222. #endif
  223. buffer + (range_n[i] + range_m[i]) * COMPSIZE, 1, buffer + range_m[i] * COMPSIZE, 1, NULL, 0);
  224. }
  225. AXPYU_K(m, 0, 0,
  226. #ifndef COMPLEX
  227. alpha,
  228. #else
  229. alpha[0], alpha[1],
  230. #endif
  231. buffer, 1, y, incy, NULL, 0);
  232. #endif
  233. return 0;
  234. }