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gemmt.c 14 kB

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  1. /*********************************************************************/
  2. /* Copyright 2022, The OpenBLAS Project. */
  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. /*********************************************************************/
  34. #include <stdio.h>
  35. #include <stdlib.h>
  36. #include "common.h"
  37. #ifndef COMPLEX
  38. #define SMP_THRESHOLD_MIN 65536.0
  39. #ifdef XDOUBLE
  40. #define ERROR_NAME "QGEMMT "
  41. #elif defined(DOUBLE)
  42. #define ERROR_NAME "DGEMMT "
  43. #elif defined(BFLOAT16)
  44. #define ERROR_NAME "SBGEMMT "
  45. #else
  46. #define ERROR_NAME "SGEMMT "
  47. #endif
  48. #else
  49. #define SMP_THRESHOLD_MIN 8192.0
  50. #ifdef XDOUBLE
  51. #define ERROR_NAME "XGEMMT "
  52. #elif defined(DOUBLE)
  53. #define ERROR_NAME "ZGEMMT "
  54. #else
  55. #define ERROR_NAME "CGEMMT "
  56. #endif
  57. #endif
  58. #ifndef GEMM_MULTITHREAD_THRESHOLD
  59. #define GEMM_MULTITHREAD_THRESHOLD 4
  60. #endif
  61. #ifndef CBLAS
  62. void NAME(char *UPLO, char *TRANSA, char *TRANSB,
  63. blasint * M, blasint * K,
  64. FLOAT * Alpha,
  65. IFLOAT * a, blasint * ldA,
  66. IFLOAT * b, blasint * ldB, FLOAT * Beta, FLOAT * c, blasint * ldC)
  67. {
  68. blasint m, k;
  69. blasint lda, ldb, ldc;
  70. int transa, transb, uplo;
  71. blasint info;
  72. char transA, transB, Uplo;
  73. blasint nrowa, nrowb;
  74. #if defined(COMPLEX)
  75. blasint ncolb;
  76. #endif
  77. IFLOAT *buffer;
  78. IFLOAT *aa, *bb;
  79. FLOAT *cc;
  80. #if defined(COMPLEX)
  81. FLOAT alpha_r, alpha_i, beta_r, beta_i;
  82. #else
  83. FLOAT alpha, beta;
  84. #endif
  85. PRINT_DEBUG_NAME;
  86. m = *M;
  87. k = *K;
  88. #if defined(COMPLEX)
  89. FLOAT *alpha = Alpha;
  90. alpha_r = *(Alpha + 0);
  91. alpha_i = *(Alpha + 1);
  92. beta_r = *(Beta + 0);
  93. beta_i = *(Beta + 1);
  94. #else
  95. alpha = *Alpha;
  96. beta = *Beta;
  97. #endif
  98. lda = *ldA;
  99. ldb = *ldB;
  100. ldc = *ldC;
  101. transA = *TRANSA;
  102. transB = *TRANSB;
  103. Uplo = *UPLO;
  104. TOUPPER(transA);
  105. TOUPPER(transB);
  106. TOUPPER(Uplo);
  107. transa = -1;
  108. transb = -1;
  109. uplo = -1;
  110. if (transA == 'N')
  111. transa = 0;
  112. if (transA == 'T')
  113. transa = 1;
  114. #ifndef COMPLEX
  115. if (transA == 'R')
  116. transa = 0;
  117. if (transA == 'C')
  118. transa = 1;
  119. #else
  120. if (transA == 'R')
  121. transa = 2;
  122. if (transA == 'C')
  123. transa = 3;
  124. #endif
  125. if (transB == 'N')
  126. transb = 0;
  127. if (transB == 'T')
  128. transb = 1;
  129. #ifndef COMPLEX
  130. if (transB == 'R')
  131. transb = 0;
  132. if (transB == 'C')
  133. transb = 1;
  134. #else
  135. if (transB == 'R')
  136. transb = 2;
  137. if (transB == 'C')
  138. transb = 3;
  139. #endif
  140. if (Uplo == 'U')
  141. uplo = 0;
  142. if (Uplo == 'L')
  143. uplo = 1;
  144. if (transa & 1) nrowa = k;
  145. nrowb = k;
  146. #if defined(COMPLEX)
  147. ncolb = m;
  148. #endif
  149. if (transb & 1) {
  150. nrowb = m;
  151. #if defined(COMPLEX)
  152. ncolb = k;
  153. #endif
  154. }
  155. info = 0;
  156. if (ldc < MAX(1, m))
  157. info = 13;
  158. if (ldb < MAX(1, nrowb))
  159. info = 10;
  160. if (lda < MAX(1, nrowa))
  161. info = 8;
  162. if (k < 0)
  163. info = 5;
  164. if (m < 0)
  165. info = 4;
  166. if (transb < 0)
  167. info = 3;
  168. if (transa < 0)
  169. info = 2;
  170. if (uplo < 0)
  171. info = 1;
  172. if (info != 0) {
  173. BLASFUNC(xerbla) (ERROR_NAME, &info, sizeof(ERROR_NAME));
  174. return;
  175. }
  176. #else
  177. void CNAME(enum CBLAS_ORDER order, enum CBLAS_UPLO Uplo,
  178. enum CBLAS_TRANSPOSE TransA, enum CBLAS_TRANSPOSE TransB, blasint m,
  179. blasint k,
  180. #ifndef COMPLEX
  181. FLOAT alpha,
  182. IFLOAT * A, blasint LDA,
  183. IFLOAT * B, blasint LDB, FLOAT beta, FLOAT * c, blasint ldc)
  184. {
  185. #else
  186. void *valpha,
  187. void *va, blasint LDA,
  188. void *vb, blasint LDB, void *vbeta, void *vc, blasint ldc)
  189. {
  190. FLOAT *alpha = (FLOAT *) valpha;
  191. FLOAT *beta = (FLOAT *) vbeta;
  192. FLOAT *A = (FLOAT *) va;
  193. FLOAT *B = (FLOAT *) vb;
  194. FLOAT *c = (FLOAT *) vc;
  195. #endif
  196. FLOAT *aa, *bb, *cc;
  197. int transa, transb, uplo;
  198. blasint info;
  199. blasint lda, ldb;
  200. FLOAT *a, *b;
  201. #if defined(COMPLEX)
  202. blasint nrowb, ncolb;
  203. #endif
  204. XFLOAT *buffer;
  205. PRINT_DEBUG_CNAME;
  206. uplo = -1;
  207. transa = -1;
  208. transb = -1;
  209. info = 0;
  210. if (order == CblasColMajor) {
  211. if (Uplo == CblasUpper) uplo = 0;
  212. if (Uplo == CblasLower) uplo = 1;
  213. if (TransA == CblasNoTrans)
  214. transa = 0;
  215. if (TransA == CblasTrans)
  216. transa = 1;
  217. #ifndef COMPLEX
  218. if (TransA == CblasConjNoTrans)
  219. transa = 0;
  220. if (TransA == CblasConjTrans)
  221. transa = 1;
  222. #else
  223. if (TransA == CblasConjNoTrans)
  224. transa = 2;
  225. if (TransA == CblasConjTrans)
  226. transa = 3;
  227. #endif
  228. if (TransB == CblasNoTrans)
  229. transb = 0;
  230. if (TransB == CblasTrans)
  231. transb = 1;
  232. #ifndef COMPLEX
  233. if (TransB == CblasConjNoTrans)
  234. transb = 0;
  235. if (TransB == CblasConjTrans)
  236. transb = 1;
  237. #else
  238. if (TransB == CblasConjNoTrans)
  239. transb = 2;
  240. if (TransB == CblasConjTrans)
  241. transb = 3;
  242. #endif
  243. a = (void *)A;
  244. b = (void *)B;
  245. lda = LDA;
  246. ldb = LDB;
  247. info = -1;
  248. blasint nrowa;
  249. #if !defined(COMPLEX)
  250. blasint nrowb;
  251. #endif
  252. nrowa = m;
  253. if (transa & 1) nrowa = k;
  254. nrowb = k;
  255. #if defined(COMPLEX)
  256. ncolb = m;
  257. #endif
  258. if (transb & 1) {
  259. nrowb = m;
  260. #if defined(COMPLEX)
  261. ncolb = k;
  262. #endif
  263. }
  264. if (ldc < MAX(1, m))
  265. info = 13;
  266. if (ldb < MAX(1, nrowb))
  267. info = 10;
  268. if (lda < MAX(1, nrowa))
  269. info = 8;
  270. if (k < 0)
  271. info = 5;
  272. if (m < 0)
  273. info = 4;
  274. if (transb < 0)
  275. info = 3;
  276. if (transa < 0)
  277. info = 2;
  278. if (uplo < 0)
  279. info = 1;
  280. }
  281. if (order == CblasRowMajor) {
  282. a = (void *)B;
  283. b = (void *)A;
  284. lda = LDB;
  285. ldb = LDA;
  286. if (Uplo == CblasUpper) uplo = 0;
  287. if (Uplo == CblasLower) uplo = 1;
  288. if (TransB == CblasNoTrans)
  289. transa = 0;
  290. if (TransB == CblasTrans)
  291. transa = 1;
  292. #ifndef COMPLEX
  293. if (TransB == CblasConjNoTrans)
  294. transa = 0;
  295. if (TransB == CblasConjTrans)
  296. transa = 1;
  297. #else
  298. if (TransB == CblasConjNoTrans)
  299. transa = 2;
  300. if (TransB == CblasConjTrans)
  301. transa = 3;
  302. #endif
  303. if (TransA == CblasNoTrans)
  304. transb = 0;
  305. if (TransA == CblasTrans)
  306. transb = 1;
  307. #ifndef COMPLEX
  308. if (TransA == CblasConjNoTrans)
  309. transb = 0;
  310. if (TransA == CblasConjTrans)
  311. transb = 1;
  312. #else
  313. if (TransA == CblasConjNoTrans)
  314. transb = 2;
  315. if (TransA == CblasConjTrans)
  316. transb = 3;
  317. #endif
  318. info = -1;
  319. blasint ncola;
  320. #if !defined(COMPLEX)
  321. blasint ncolb;
  322. #endif
  323. ncola = m;
  324. if (transa & 1) ncola = k;
  325. ncolb = k;
  326. #if defined(COMPLEX)
  327. nrowb = m;
  328. #endif
  329. if (transb & 1) {
  330. #if defined(COMPLEX)
  331. nrowb = k;
  332. #endif
  333. ncolb = m;
  334. }
  335. if (ldc < MAX(1,m))
  336. info = 13;
  337. if (ldb < MAX(1, ncolb))
  338. info = 8;
  339. if (lda < MAX(1, ncola))
  340. info = 10;
  341. if (k < 0)
  342. info = 5;
  343. if (m < 0)
  344. info = 4;
  345. if (transb < 0)
  346. info = 2;
  347. if (transa < 0)
  348. info = 3;
  349. if (uplo < 0)
  350. info = 1;
  351. }
  352. if (info >= 0) {
  353. BLASFUNC(xerbla) (ERROR_NAME, &info, sizeof(ERROR_NAME));
  354. return;
  355. }
  356. #if defined(COMPLEX)
  357. FLOAT alpha_r = *(alpha + 0);
  358. FLOAT alpha_i = *(alpha + 1);
  359. FLOAT beta_r = *(beta + 0);
  360. FLOAT beta_i = *(beta + 1);
  361. #endif
  362. #endif
  363. int buffer_size;
  364. blasint l;
  365. blasint i, j;
  366. #ifdef SMP
  367. int nthreads;
  368. #endif
  369. #if defined(COMPLEX)
  370. #ifdef SMP
  371. static int (*gemv_thread[]) (BLASLONG, BLASLONG, FLOAT *, FLOAT *,
  372. BLASLONG, FLOAT *, BLASLONG, FLOAT *,
  373. BLASLONG, FLOAT *, int) = {
  374. #ifdef XDOUBLE
  375. xgemv_thread_n, xgemv_thread_t, xgemv_thread_r, xgemv_thread_c,
  376. xgemv_thread_o, xgemv_thread_u, xgemv_thread_s,
  377. xgemv_thread_d,
  378. #elif defined DOUBLE
  379. zgemv_thread_n, zgemv_thread_t, zgemv_thread_r, zgemv_thread_c,
  380. zgemv_thread_o, zgemv_thread_u, zgemv_thread_s,
  381. zgemv_thread_d,
  382. #else
  383. cgemv_thread_n, cgemv_thread_t, cgemv_thread_r, cgemv_thread_c,
  384. cgemv_thread_o, cgemv_thread_u, cgemv_thread_s,
  385. cgemv_thread_d,
  386. #endif
  387. };
  388. #endif
  389. int (*gemv[]) (BLASLONG, BLASLONG, BLASLONG, FLOAT, FLOAT, FLOAT *,
  390. BLASLONG, FLOAT *, BLASLONG, FLOAT *, BLASLONG,
  391. FLOAT *) = {
  392. GEMV_N, GEMV_T, GEMV_R, GEMV_C, GEMV_O, GEMV_U, GEMV_S, GEMV_D,};
  393. #else
  394. #ifdef SMP
  395. static int (*gemv_thread[]) (BLASLONG, BLASLONG, FLOAT, FLOAT *,
  396. BLASLONG, FLOAT *, BLASLONG, FLOAT *,
  397. BLASLONG, FLOAT *, int) = {
  398. #ifdef XDOUBLE
  399. qgemv_thread_n, qgemv_thread_t,
  400. #elif defined DOUBLE
  401. dgemv_thread_n, dgemv_thread_t,
  402. #else
  403. sgemv_thread_n, sgemv_thread_t,
  404. #endif
  405. };
  406. #endif
  407. int (*gemv[]) (BLASLONG, BLASLONG, BLASLONG, FLOAT, FLOAT *, BLASLONG,
  408. FLOAT *, BLASLONG, FLOAT *, BLASLONG, FLOAT *) = {
  409. GEMV_N, GEMV_T,};
  410. #endif
  411. if (m == 0)
  412. return;
  413. IDEBUG_START;
  414. #if defined(COMPLEX)
  415. if (transb > 1){
  416. #ifndef CBLAS
  417. IMATCOPY_K_CNC(nrowb, ncolb, (FLOAT)(1.0), (FLOAT)(0.0), b, ldb);
  418. #else
  419. if (order == CblasColMajor)
  420. IMATCOPY_K_CNC(nrowb, ncolb, (FLOAT)(1.0), (FLOAT)(0.0), b, ldb);
  421. if (order == CblasRowMajor)
  422. IMATCOPY_K_RNC(nrowb, ncolb, (FLOAT)(1.0), (FLOAT)(0.0), b, ldb);
  423. #endif
  424. }
  425. #endif
  426. const blasint incb = ((transb & 1) == 0) ? 1 : ldb;
  427. if (uplo == 1) {
  428. for (i = 0; i < m; i++) {
  429. j = m - i;
  430. l = j;
  431. #if defined(COMPLEX)
  432. aa = a + i * 2;
  433. bb = b + i * ldb * 2;
  434. if (transa & 1) {
  435. aa = a + lda * i * 2;
  436. }
  437. if (transb & 1)
  438. bb = b + i * 2;
  439. cc = c + i * 2 * ldc + i * 2;
  440. #else
  441. aa = a + i;
  442. bb = b + i * ldb;
  443. if (transa & 1) {
  444. aa = a + lda * i;
  445. }
  446. if (transb & 1)
  447. bb = b + i;
  448. cc = c + i * ldc + i;
  449. #endif
  450. #if defined(COMPLEX)
  451. if (beta_r != ONE || beta_i != ZERO)
  452. SCAL_K(l, 0, 0, beta_r, beta_i, cc, 1, NULL, 0,
  453. NULL, 0);
  454. if (alpha_r == ZERO && alpha_i == ZERO)
  455. continue;
  456. #else
  457. if (beta != ONE)
  458. SCAL_K(l, 0, 0, beta, cc, 1, NULL, 0, NULL, 0);
  459. if (alpha == ZERO)
  460. continue;
  461. #endif
  462. IDEBUG_START;
  463. buffer_size = j + k + 128 / sizeof(FLOAT);
  464. #ifdef WINDOWS_ABI
  465. buffer_size += 160 / sizeof(FLOAT);
  466. #endif
  467. // for alignment
  468. buffer_size = (buffer_size + 3) & ~3;
  469. STACK_ALLOC(buffer_size, IFLOAT, buffer);
  470. #ifdef SMP
  471. if (1L * j * k < 2304L * GEMM_MULTITHREAD_THRESHOLD)
  472. nthreads = 1;
  473. else
  474. nthreads = num_cpu_avail(2);
  475. if (nthreads == 1) {
  476. #endif
  477. #if defined(COMPLEX)
  478. if (!(transa & 1))
  479. (gemv[(int)transa]) (j, k, 0, alpha_r, alpha_i,
  480. aa, lda, bb, incb, cc, 1,
  481. buffer);
  482. else
  483. (gemv[(int)transa]) (k, j, 0, alpha_r, alpha_i,
  484. aa, lda, bb, incb, cc, 1,
  485. buffer);
  486. #else
  487. if (!(transa & 1))
  488. (gemv[(int)transa]) (j, k, 0, alpha, aa, lda,
  489. bb, incb, cc, 1, buffer);
  490. else
  491. (gemv[(int)transa]) (k, j, 0, alpha, aa, lda,
  492. bb, incb, cc, 1, buffer);
  493. #endif
  494. #ifdef SMP
  495. } else {
  496. if (!(transa & 1))
  497. (gemv_thread[(int)transa]) (j, k, alpha, aa,
  498. lda, bb, incb, cc,
  499. 1, buffer,
  500. nthreads);
  501. else
  502. (gemv_thread[(int)transa]) (k, j, alpha, aa,
  503. lda, bb, incb, cc,
  504. 1, buffer,
  505. nthreads);
  506. }
  507. #endif
  508. STACK_FREE(buffer);
  509. }
  510. } else {
  511. for (i = 0; i < m; i++) {
  512. j = i + 1;
  513. l = j;
  514. #if defined COMPLEX
  515. bb = b + i * ldb * 2;
  516. if (transb & 1) {
  517. bb = b + i * 2;
  518. }
  519. cc = c + i * 2 * ldc;
  520. #else
  521. bb = b + i * ldb;
  522. if (transb & 1) {
  523. bb = b + i;
  524. }
  525. cc = c + i * ldc;
  526. #endif
  527. #if defined(COMPLEX)
  528. if (beta_r != ONE || beta_i != ZERO)
  529. SCAL_K(l, 0, 0, beta_r, beta_i, cc, 1, NULL, 0,
  530. NULL, 0);
  531. if (alpha_r == ZERO && alpha_i == ZERO)
  532. continue;
  533. #else
  534. if (beta != ONE)
  535. SCAL_K(l, 0, 0, beta, cc, 1, NULL, 0, NULL, 0);
  536. if (alpha == ZERO)
  537. continue;
  538. #endif
  539. IDEBUG_START;
  540. buffer_size = j + k + 128 / sizeof(FLOAT);
  541. #ifdef WINDOWS_ABI
  542. buffer_size += 160 / sizeof(FLOAT);
  543. #endif
  544. // for alignment
  545. buffer_size = (buffer_size + 3) & ~3;
  546. STACK_ALLOC(buffer_size, IFLOAT, buffer);
  547. #ifdef SMP
  548. if (1L * j * k < 2304L * GEMM_MULTITHREAD_THRESHOLD)
  549. nthreads = 1;
  550. else
  551. nthreads = num_cpu_avail(2);
  552. if (nthreads == 1) {
  553. #endif
  554. #if defined(COMPLEX)
  555. if (!(transa & 1))
  556. (gemv[(int)transa]) (j, k, 0, alpha_r, alpha_i,
  557. a, lda, bb, incb, cc, 1,
  558. buffer);
  559. else
  560. (gemv[(int)transa]) (k, j, 0, alpha_r, alpha_i,
  561. a, lda, bb, incb, cc, 1,
  562. buffer);
  563. #else
  564. if (!(transa & 1))
  565. (gemv[(int)transa]) (j, k, 0, alpha, a, lda, bb,
  566. incb, cc, 1, buffer);
  567. else
  568. (gemv[(int)transa]) (k, j, 0, alpha, a, lda, bb,
  569. incb, cc, 1, buffer);
  570. #endif
  571. #ifdef SMP
  572. } else {
  573. if (!(transa & 1))
  574. (gemv_thread[(int)transa]) (j, k, alpha, a, lda,
  575. bb, incb, cc, 1,
  576. buffer, nthreads);
  577. else
  578. (gemv_thread[(int)transa]) (k, j, alpha, a, lda,
  579. bb, incb, cc, 1,
  580. buffer, nthreads);
  581. }
  582. #endif
  583. STACK_FREE(buffer);
  584. }
  585. }
  586. IDEBUG_END;
  587. return;
  588. }