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  1. /*
  2. * FFT/MDCT transform with Extended 3DNow! optimizations
  3. * Copyright (c) 2006 Zuxy MENG Jie, Loren Merritt
  4. * Based on fft_sse.c copyright (c) 2002 Fabrice Bellard.
  5. *
  6. * This library is free software; you can redistribute it and/or
  7. * modify it under the terms of the GNU Lesser General Public
  8. * License as published by the Free Software Foundation; either
  9. * version 2 of the License, or (at your option) any later version.
  10. *
  11. * This library is distributed in the hope that it will be useful,
  12. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  13. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  14. * Lesser General Public License for more details.
  15. *
  16. * You should have received a copy of the GNU Lesser General Public
  17. * License along with this library; if not, write to the Free Software
  18. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  19. */
  20. #include "../dsputil.h"
  21. static const int p1m1[2] __attribute__((aligned(8))) =
  22. { 0, 1 << 31 };
  23. static const int m1p1[2] __attribute__((aligned(8))) =
  24. { 1 << 31, 0 };
  25. void ff_fft_calc_3dn2(FFTContext *s, FFTComplex *z)
  26. {
  27. int ln = s->nbits;
  28. long i, j;
  29. long nblocks, nloops;
  30. FFTComplex *p, *cptr;
  31. asm volatile(
  32. /* FEMMS is not a must here but recommended by AMD */
  33. "femms \n\t"
  34. "movq %0, %%mm7 \n\t"
  35. ::"m"(*(s->inverse ? m1p1 : p1m1))
  36. );
  37. i = 8 << ln;
  38. asm volatile(
  39. "1: \n\t"
  40. "sub $32, %0 \n\t"
  41. "movq (%0,%1), %%mm0 \n\t"
  42. "movq 16(%0,%1), %%mm1 \n\t"
  43. "movq 8(%0,%1), %%mm2 \n\t"
  44. "movq 24(%0,%1), %%mm3 \n\t"
  45. "movq %%mm0, %%mm4 \n\t"
  46. "movq %%mm1, %%mm5 \n\t"
  47. "pfadd %%mm2, %%mm0 \n\t"
  48. "pfadd %%mm3, %%mm1 \n\t"
  49. "pfsub %%mm2, %%mm4 \n\t"
  50. "pfsub %%mm3, %%mm5 \n\t"
  51. "movq %%mm0, %%mm2 \n\t"
  52. "pswapd %%mm5, %%mm5 \n\t"
  53. "movq %%mm4, %%mm3 \n\t"
  54. "pxor %%mm7, %%mm5 \n\t"
  55. "pfadd %%mm1, %%mm0 \n\t"
  56. "pfadd %%mm5, %%mm4 \n\t"
  57. "pfsub %%mm1, %%mm2 \n\t"
  58. "pfsub %%mm5, %%mm3 \n\t"
  59. "movq %%mm0, (%0,%1) \n\t"
  60. "movq %%mm4, 8(%0,%1) \n\t"
  61. "movq %%mm2, 16(%0,%1) \n\t"
  62. "movq %%mm3, 24(%0,%1) \n\t"
  63. "jg 1b \n\t"
  64. :"+r"(i)
  65. :"r"(z)
  66. );
  67. /* pass 2 .. ln-1 */
  68. nblocks = 1 << (ln-3);
  69. nloops = 1 << 2;
  70. cptr = s->exptab1;
  71. do {
  72. p = z;
  73. j = nblocks;
  74. do {
  75. i = nloops*8;
  76. asm volatile(
  77. "1: \n\t"
  78. "sub $16, %0 \n\t"
  79. "movq (%1,%0), %%mm0 \n\t"
  80. "movq 8(%1,%0), %%mm1 \n\t"
  81. "movq (%2,%0), %%mm2 \n\t"
  82. "movq 8(%2,%0), %%mm3 \n\t"
  83. "movq (%3,%0,2), %%mm4 \n\t"
  84. "movq 8(%3,%0,2), %%mm5 \n\t"
  85. "pswapd %%mm4, %%mm6 \n\t" // no need for cptr[2] & cptr[3]
  86. "pswapd %%mm5, %%mm7 \n\t"
  87. "pfmul %%mm2, %%mm4 \n\t" // cre*re cim*im
  88. "pfmul %%mm3, %%mm5 \n\t"
  89. "pfmul %%mm2, %%mm6 \n\t" // cim*re cre*im
  90. "pfmul %%mm3, %%mm7 \n\t"
  91. "pfpnacc %%mm6, %%mm4 \n\t" // cre*re-cim*im cim*re+cre*im
  92. "pfpnacc %%mm7, %%mm5 \n\t"
  93. "movq %%mm0, %%mm2 \n\t"
  94. "movq %%mm1, %%mm3 \n\t"
  95. "pfadd %%mm4, %%mm0 \n\t"
  96. "pfadd %%mm5, %%mm1 \n\t"
  97. "pfsub %%mm4, %%mm2 \n\t"
  98. "pfsub %%mm5, %%mm3 \n\t"
  99. "movq %%mm0, (%1,%0) \n\t"
  100. "movq %%mm1, 8(%1,%0) \n\t"
  101. "movq %%mm2, (%2,%0) \n\t"
  102. "movq %%mm3, 8(%2,%0) \n\t"
  103. "jg 1b \n\t"
  104. :"+r"(i)
  105. :"r"(p), "r"(p + nloops), "r"(cptr)
  106. );
  107. p += nloops*2;
  108. } while (--j);
  109. cptr += nloops*2;
  110. nblocks >>= 1;
  111. nloops <<= 1;
  112. } while (nblocks != 0);
  113. asm volatile("femms");
  114. }
  115. void ff_imdct_calc_3dn2(MDCTContext *s, FFTSample *output,
  116. const FFTSample *input, FFTSample *tmp)
  117. {
  118. long k, n8, n4, n2, n;
  119. const uint16_t *revtab = s->fft.revtab;
  120. const FFTSample *tcos = s->tcos;
  121. const FFTSample *tsin = s->tsin;
  122. const FFTSample *in1, *in2;
  123. FFTComplex *z = (FFTComplex *)tmp;
  124. n = 1 << s->nbits;
  125. n2 = n >> 1;
  126. n4 = n >> 2;
  127. n8 = n >> 3;
  128. /* pre rotation */
  129. in1 = input;
  130. in2 = input + n2 - 1;
  131. for(k = 0; k < n4; k++) {
  132. // FIXME a single block is faster, but gcc 2.95 and 3.4.x on 32bit can't compile it
  133. asm volatile(
  134. "movd %0, %%mm0 \n\t"
  135. "movd %2, %%mm1 \n\t"
  136. "punpckldq %1, %%mm0 \n\t"
  137. "punpckldq %3, %%mm1 \n\t"
  138. "movq %%mm0, %%mm2 \n\t"
  139. "pfmul %%mm1, %%mm0 \n\t"
  140. "pswapd %%mm1, %%mm1 \n\t"
  141. "pfmul %%mm1, %%mm2 \n\t"
  142. "pfpnacc %%mm2, %%mm0 \n\t"
  143. ::"m"(in2[-2*k]), "m"(in1[2*k]),
  144. "m"(tcos[k]), "m"(tsin[k])
  145. );
  146. asm volatile(
  147. "movq %%mm0, %0 \n\t"
  148. :"=m"(z[revtab[k]])
  149. );
  150. }
  151. ff_fft_calc(&s->fft, z);
  152. /* post rotation + reordering */
  153. for(k = 0; k < n4; k++) {
  154. asm volatile(
  155. "movq %0, %%mm0 \n\t"
  156. "movd %1, %%mm1 \n\t"
  157. "punpckldq %2, %%mm1 \n\t"
  158. "movq %%mm0, %%mm2 \n\t"
  159. "pfmul %%mm1, %%mm0 \n\t"
  160. "pswapd %%mm1, %%mm1 \n\t"
  161. "pfmul %%mm1, %%mm2 \n\t"
  162. "pfpnacc %%mm2, %%mm0 \n\t"
  163. "movq %%mm0, %0 \n\t"
  164. :"+m"(z[k])
  165. :"m"(tcos[k]), "m"(tsin[k])
  166. );
  167. }
  168. k = n-8;
  169. asm volatile("movd %0, %%mm7" ::"r"(1<<31));
  170. asm volatile(
  171. "1: \n\t"
  172. "movq (%4,%0), %%mm0 \n\t" // z[n8+k]
  173. "neg %0 \n\t"
  174. "pswapd -8(%4,%0), %%mm1 \n\t" // z[n8-1-k]
  175. "movq %%mm0, %%mm2 \n\t"
  176. "pxor %%mm7, %%mm2 \n\t"
  177. "punpckldq %%mm1, %%mm2 \n\t"
  178. "pswapd %%mm2, %%mm3 \n\t"
  179. "punpckhdq %%mm1, %%mm0 \n\t"
  180. "pswapd %%mm0, %%mm4 \n\t"
  181. "pxor %%mm7, %%mm0 \n\t"
  182. "pxor %%mm7, %%mm4 \n\t"
  183. "movq %%mm3, -8(%3,%0) \n\t" // output[n-2-2*k] = { z[n8-1-k].im, -z[n8+k].re }
  184. "movq %%mm4, -8(%2,%0) \n\t" // output[n2-2-2*k]= { -z[n8-1-k].re, z[n8+k].im }
  185. "neg %0 \n\t"
  186. "movq %%mm0, (%1,%0) \n\t" // output[2*k] = { -z[n8+k].im, z[n8-1-k].re }
  187. "movq %%mm2, (%2,%0) \n\t" // output[n2+2*k] = { -z[n8+k].re, z[n8-1-k].im }
  188. "sub $8, %0 \n\t"
  189. "jge 1b \n\t"
  190. :"+r"(k)
  191. :"r"(output), "r"(output+n2), "r"(output+n), "r"(z+n8)
  192. :"memory"
  193. );
  194. asm volatile("femms");
  195. }