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zhemv_LM_vector.c 9.1 kB

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  1. /***************************************************************************
  2. Copyright (c) 2013, The OpenBLAS Project
  3. All rights reserved.
  4. Redistribution and use in source and binary forms, with or without
  5. modification, are permitted provided that the following conditions are
  6. met:
  7. 1. Redistributions of source code must retain the above copyright
  8. notice, this list of conditions and the following disclaimer.
  9. 2. Redistributions in binary form must reproduce the above copyright
  10. notice, this list of conditions and the following disclaimer in
  11. the documentation and/or other materials provided with the
  12. distribution.
  13. 3. Neither the name of the OpenBLAS project nor the names of
  14. its contributors may be used to endorse or promote products
  15. derived from this software without specific prior written permission.
  16. THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
  17. AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
  18. IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
  19. ARE DISCLAIMED. IN NO EVENT SHALL THE OPENBLAS PROJECT OR CONTRIBUTORS BE
  20. LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
  21. DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
  22. SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER
  23. CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
  24. OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE
  25. USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
  26. *****************************************************************************/
  27. #include "common.h"
  28. #if !defined(DOUBLE)
  29. #define RVV_EFLOAT RVV_E32
  30. #define RVV_M RVV_M4
  31. #define FLOAT_V_T float32xm4_t
  32. #define VLSEV_FLOAT vlsev_float32xm4
  33. #define VSSEV_FLOAT vssev_float32xm4
  34. #define VFREDSUM_FLOAT vfredsumvs_float32xm4
  35. #define VFMACCVV_FLOAT vfmaccvv_float32xm4
  36. #define VFMACCVF_FLOAT vfmaccvf_float32xm4
  37. #define VFMVVF_FLOAT vfmvvf_float32xm4
  38. #define VFMULVV_FLOAT vfmulvv_float32xm4
  39. #define VFNMSACVF_FLOAT vfnmsacvf_float32xm4
  40. #define VFNMSACVV_FLOAT vfnmsacvv_float32xm4
  41. #else
  42. #define RVV_EFLOAT RVV_E64
  43. #define RVV_M RVV_M4
  44. #define FLOAT_V_T float64xm4_t
  45. #define VLSEV_FLOAT vlsev_float64xm4
  46. #define VSSEV_FLOAT vssev_float64xm4
  47. #define VFREDSUM_FLOAT vfredsumvs_float64xm4
  48. #define VFMACCVV_FLOAT vfmaccvv_float64xm4
  49. #define VFMACCVF_FLOAT vfmaccvf_float64xm4
  50. #define VFMVVF_FLOAT vfmvvf_float64xm4
  51. #define VFMULVV_FLOAT vfmulvv_float64xm4
  52. #define VFNMSACVF_FLOAT vfnmsacvf_float64xm4
  53. #define VFNMSACVV_FLOAT vfnmsacvv_float64xm4
  54. #endif
  55. int CNAME(BLASLONG m, BLASLONG offset, FLOAT alpha_r, FLOAT alpha_i, FLOAT *a, BLASLONG lda, FLOAT *x, BLASLONG incx, FLOAT *y, BLASLONG incy, FLOAT *buffer){
  56. BLASLONG i, j, k;
  57. BLASLONG ix, iy, ia;
  58. BLASLONG jx, jy, ja;
  59. FLOAT temp_r1, temp_i1;
  60. FLOAT temp_r2, temp_i2;
  61. FLOAT *a_ptr = a;
  62. unsigned int gvl = 0;
  63. FLOAT_V_T va0, va1, vx0, vx1, vy0, vy1, vr0, vr1;
  64. BLASLONG stride_x, stride_y, stride_a, inc_xv, inc_yv, inc_av, len, lda2;
  65. BLASLONG inc_x2 = incx * 2;
  66. BLASLONG inc_y2 = incy * 2;
  67. stride_x = inc_x2 * sizeof(FLOAT);
  68. stride_y = inc_y2 * sizeof(FLOAT);
  69. stride_a = 2 * sizeof(FLOAT);
  70. lda2 = lda * 2;
  71. jx = 0;
  72. jy = 0;
  73. ja = 0;
  74. for(j = 0; j < offset; j++){
  75. temp_r1 = alpha_r * x[jx] - alpha_i * x[jx+1];;
  76. temp_i1 = alpha_r * x[jx+1] + alpha_i * x[jx];
  77. temp_r2 = 0;
  78. temp_i2 = 0;
  79. y[jy] += temp_r1 * a_ptr[ja];
  80. y[jy+1] += temp_i1 * a_ptr[ja];
  81. ix = jx + inc_x2;
  82. iy = jy + inc_y2;
  83. ia = ja + 2;
  84. i = j + 1;
  85. len = m - i;
  86. if(len > 0){
  87. gvl = vsetvli(len, RVV_EFLOAT, RVV_M);
  88. inc_xv = incx * gvl * 2;
  89. inc_yv = incy * gvl * 2;
  90. inc_av = gvl * 2;
  91. vr0 = VFMVVF_FLOAT(0, gvl);
  92. vr1 = VFMVVF_FLOAT(0, gvl);
  93. for(k = 0; k < len / gvl; k++){
  94. va0 = VLSEV_FLOAT(&a_ptr[ia], stride_a, gvl);
  95. va1 = VLSEV_FLOAT(&a_ptr[ia+1], stride_a, gvl);
  96. vy0 = VLSEV_FLOAT(&y[iy], stride_y, gvl);
  97. vy1 = VLSEV_FLOAT(&y[iy+1], stride_y, gvl);
  98. #ifndef HEMVREV
  99. vy0 = VFMACCVF_FLOAT(vy0, temp_r1, va0, gvl);
  100. vy0 = VFNMSACVF_FLOAT(vy0, temp_i1, va1, gvl);
  101. vy1 = VFMACCVF_FLOAT(vy1, temp_r1, va1, gvl);
  102. vy1 = VFMACCVF_FLOAT(vy1, temp_i1, va0, gvl);
  103. #else
  104. vy0 = VFMACCVF_FLOAT(vy0, temp_r1, va0, gvl);
  105. vy0 = VFMACCVF_FLOAT(vy0, temp_i1, va1, gvl);
  106. vy1 = VFNMSACVF_FLOAT(vy1, temp_r1, va1, gvl);
  107. vy1 = VFMACCVF_FLOAT(vy1, temp_i1, va0, gvl);
  108. #endif
  109. VSSEV_FLOAT(&y[iy], stride_y, vy0, gvl);
  110. VSSEV_FLOAT(&y[iy+1], stride_y, vy1, gvl);
  111. vx0 = VLSEV_FLOAT(&x[ix], stride_x, gvl);
  112. vx1 = VLSEV_FLOAT(&x[ix+1], stride_x, gvl);
  113. #ifndef HEMVREV
  114. vr0 = VFMACCVV_FLOAT(vr0, vx0, va0, gvl);
  115. vr0 = VFMACCVV_FLOAT(vr0, vx1, va1, gvl);
  116. vr1 = VFMACCVV_FLOAT(vr1, vx1, va0, gvl);
  117. vr1 = VFNMSACVV_FLOAT(vr1, vx0, va1, gvl);
  118. #else
  119. vr0 = VFMACCVV_FLOAT(vr0, vx0, va0, gvl);
  120. vr0 = VFNMSACVV_FLOAT(vr0, vx1, va1, gvl);
  121. vr1 = VFMACCVV_FLOAT(vr1, vx1, va0, gvl);
  122. vr1 = VFMACCVV_FLOAT(vr1, vx0, va1, gvl);
  123. #endif
  124. i += gvl;
  125. ix += inc_xv;
  126. iy += inc_yv;
  127. ia += inc_av;
  128. }
  129. va0 = VFMVVF_FLOAT(0, gvl);
  130. vx0 = VFREDSUM_FLOAT(vr0, va0, gvl);
  131. temp_r2 = vx0[0];
  132. vx1 = VFREDSUM_FLOAT(vr1, va0, gvl);
  133. temp_i2 = vx1[0];
  134. if(i < m){
  135. gvl = vsetvli(m-i, RVV_EFLOAT, RVV_M);
  136. va0 = VLSEV_FLOAT(&a_ptr[ia], stride_a, gvl);
  137. va1 = VLSEV_FLOAT(&a_ptr[ia+1], stride_a, gvl);
  138. vy0 = VLSEV_FLOAT(&y[iy], stride_y, gvl);
  139. vy1 = VLSEV_FLOAT(&y[iy+1], stride_y, gvl);
  140. #ifndef HEMVREV
  141. vy0 = VFMACCVF_FLOAT(vy0, temp_r1, va0, gvl);
  142. vy0 = VFNMSACVF_FLOAT(vy0, temp_i1, va1, gvl);
  143. vy1 = VFMACCVF_FLOAT(vy1, temp_r1, va1, gvl);
  144. vy1 = VFMACCVF_FLOAT(vy1, temp_i1, va0, gvl);
  145. #else
  146. vy0 = VFMACCVF_FLOAT(vy0, temp_r1, va0, gvl);
  147. vy0 = VFMACCVF_FLOAT(vy0, temp_i1, va1, gvl);
  148. vy1 = VFNMSACVF_FLOAT(vy1, temp_r1, va1, gvl);
  149. vy1 = VFMACCVF_FLOAT(vy1, temp_i1, va0, gvl);
  150. #endif
  151. VSSEV_FLOAT(&y[iy], stride_y, vy0, gvl);
  152. VSSEV_FLOAT(&y[iy+1], stride_y, vy1, gvl);
  153. vx0 = VLSEV_FLOAT(&x[ix], stride_x, gvl);
  154. vx1 = VLSEV_FLOAT(&x[ix+1], stride_x, gvl);
  155. #ifndef HEMVREV
  156. vr0 = VFMULVV_FLOAT(vx0, va0, gvl);
  157. vr0 = VFMACCVV_FLOAT(vr0, vx1, va1, gvl);
  158. vr1 = VFMULVV_FLOAT(vx1, va0, gvl);
  159. vr1 = VFNMSACVV_FLOAT(vr1, vx0, va1, gvl);
  160. #else
  161. vr0 = VFMULVV_FLOAT(vx0, va0, gvl);
  162. vr0 = VFNMSACVV_FLOAT(vr0, vx1, va1, gvl);
  163. vr1 = VFMULVV_FLOAT(vx1, va0, gvl);
  164. vr1 = VFMACCVV_FLOAT(vr1, vx0, va1, gvl);
  165. #endif
  166. va0 = VFMVVF_FLOAT(0, gvl);
  167. vx0 = VFREDSUM_FLOAT(vr0, va0, gvl);
  168. temp_r2 += vx0[0];
  169. vx1 = VFREDSUM_FLOAT(vr1, va0, gvl);
  170. temp_i2 += vx1[0];
  171. }
  172. }
  173. y[jy] += alpha_r * temp_r2 - alpha_i * temp_i2;
  174. y[jy+1] += alpha_r * temp_i2 + alpha_i * temp_r2;
  175. jx += inc_x2;
  176. jy += inc_y2;
  177. ja += 2;
  178. a_ptr += lda2;
  179. }
  180. return(0);
  181. }