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  1. /*
  2. * Copyright (c) 2013-2014 Mozilla Corporation
  3. * Copyright (c) 2017 Rostislav Pehlivanov <atomnuker@gmail.com>
  4. *
  5. * This file is part of FFmpeg.
  6. *
  7. * FFmpeg is free software; you can redistribute it and/or
  8. * modify it under the terms of the GNU Lesser General Public
  9. * License as published by the Free Software Foundation; either
  10. * version 2.1 of the License, or (at your option) any later version.
  11. *
  12. * FFmpeg is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  15. * Lesser General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU Lesser General Public
  18. * License along with FFmpeg; if not, write to the Free Software
  19. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  20. */
  21. /**
  22. * @file
  23. * Celt non-power of 2 iMDCT
  24. */
  25. #include <float.h>
  26. #include <math.h>
  27. #include <stddef.h>
  28. #include "config.h"
  29. #include "libavutil/attributes.h"
  30. #include "libavutil/common.h"
  31. #include "avfft.h"
  32. #include "mdct15.h"
  33. // complex c = a * b
  34. #define CMUL3(cre, cim, are, aim, bre, bim) \
  35. do { \
  36. cre = are * bre - aim * bim; \
  37. cim = are * bim + aim * bre; \
  38. } while (0)
  39. #define CMUL(c, a, b) CMUL3((c).re, (c).im, (a).re, (a).im, (b).re, (b).im)
  40. av_cold void ff_mdct15_uninit(MDCT15Context **ps)
  41. {
  42. MDCT15Context *s = *ps;
  43. if (!s)
  44. return;
  45. ff_fft_end(&s->ptwo_fft);
  46. av_freep(&s->pfa_prereindex);
  47. av_freep(&s->pfa_postreindex);
  48. av_freep(&s->twiddle_exptab);
  49. av_freep(&s->tmp);
  50. av_freep(ps);
  51. }
  52. static void mdct15(MDCT15Context *s, float *dst, const float *src, ptrdiff_t stride);
  53. static void imdct15_half(MDCT15Context *s, float *dst, const float *src,
  54. ptrdiff_t stride, float scale);
  55. static inline int init_pfa_reindex_tabs(MDCT15Context *s)
  56. {
  57. int i, j;
  58. const int b_ptwo = s->ptwo_fft.nbits; /* Bits for the power of two FFTs */
  59. const int l_ptwo = 1 << b_ptwo; /* Total length for the power of two FFTs */
  60. const int inv_1 = l_ptwo << ((4 - b_ptwo) & 3); /* (2^b_ptwo)^-1 mod 15 */
  61. const int inv_2 = 0xeeeeeeef & ((1U << b_ptwo) - 1); /* 15^-1 mod 2^b_ptwo */
  62. s->pfa_prereindex = av_malloc(15 * l_ptwo * sizeof(*s->pfa_prereindex));
  63. if (!s->pfa_prereindex)
  64. return 1;
  65. s->pfa_postreindex = av_malloc(15 * l_ptwo * sizeof(*s->pfa_postreindex));
  66. if (!s->pfa_postreindex)
  67. return 1;
  68. /* Pre/Post-reindex */
  69. for (i = 0; i < l_ptwo; i++) {
  70. for (j = 0; j < 15; j++) {
  71. const int q_pre = ((l_ptwo * j)/15 + i) >> b_ptwo;
  72. const int q_post = (((j*inv_1)/15) + (i*inv_2)) >> b_ptwo;
  73. const int k_pre = 15*i + (j - q_pre*15)*(1 << b_ptwo);
  74. const int k_post = i*inv_2*15 + j*inv_1 - 15*q_post*l_ptwo;
  75. s->pfa_prereindex[i*15 + j] = k_pre;
  76. s->pfa_postreindex[k_post] = l_ptwo*j + i;
  77. }
  78. }
  79. return 0;
  80. }
  81. av_cold int ff_mdct15_init(MDCT15Context **ps, int inverse, int N, double scale)
  82. {
  83. MDCT15Context *s;
  84. double alpha, theta;
  85. int len2 = 15 * (1 << N);
  86. int len = 2 * len2;
  87. int i;
  88. /* Tested and verified to work on everything in between */
  89. if ((N < 2) || (N > 13))
  90. return AVERROR(EINVAL);
  91. s = av_mallocz(sizeof(*s));
  92. if (!s)
  93. return AVERROR(ENOMEM);
  94. s->fft_n = N - 1;
  95. s->len4 = len2 / 2;
  96. s->len2 = len2;
  97. s->inverse = inverse;
  98. s->mdct = mdct15;
  99. s->imdct_half = imdct15_half;
  100. if (ff_fft_init(&s->ptwo_fft, N - 1, s->inverse) < 0)
  101. goto fail;
  102. if (init_pfa_reindex_tabs(s))
  103. goto fail;
  104. s->tmp = av_malloc_array(len, 2 * sizeof(*s->tmp));
  105. if (!s->tmp)
  106. goto fail;
  107. s->twiddle_exptab = av_malloc_array(s->len4, sizeof(*s->twiddle_exptab));
  108. if (!s->twiddle_exptab)
  109. goto fail;
  110. theta = 0.125f + (scale < 0 ? s->len4 : 0);
  111. scale = sqrt(fabs(scale));
  112. for (i = 0; i < s->len4; i++) {
  113. alpha = 2 * M_PI * (i + theta) / len;
  114. s->twiddle_exptab[i].re = cos(alpha) * scale;
  115. s->twiddle_exptab[i].im = sin(alpha) * scale;
  116. }
  117. /* 15-point FFT exptab */
  118. for (i = 0; i < 19; i++) {
  119. if (i < 15) {
  120. double theta = (2.0f * M_PI * i) / 15.0f;
  121. if (!s->inverse)
  122. theta *= -1;
  123. s->exptab[i].re = cos(theta);
  124. s->exptab[i].im = sin(theta);
  125. } else { /* Wrap around to simplify fft15 */
  126. s->exptab[i] = s->exptab[i - 15];
  127. }
  128. }
  129. /* 5-point FFT exptab */
  130. s->exptab[19].re = cos(2.0f * M_PI / 5.0f);
  131. s->exptab[19].im = sin(2.0f * M_PI / 5.0f);
  132. s->exptab[20].re = cos(1.0f * M_PI / 5.0f);
  133. s->exptab[20].im = sin(1.0f * M_PI / 5.0f);
  134. /* Invert the phase for an inverse transform, do nothing for a forward transform */
  135. if (s->inverse) {
  136. s->exptab[19].im *= -1;
  137. s->exptab[20].im *= -1;
  138. }
  139. *ps = s;
  140. return 0;
  141. fail:
  142. ff_mdct15_uninit(&s);
  143. return AVERROR(ENOMEM);
  144. }
  145. /* Stride is hardcoded to 3 */
  146. static inline void fft5(const FFTComplex exptab[2], FFTComplex *out,
  147. const FFTComplex *in)
  148. {
  149. FFTComplex z0[4], t[6];
  150. t[0].re = in[3].re + in[12].re;
  151. t[0].im = in[3].im + in[12].im;
  152. t[1].im = in[3].re - in[12].re;
  153. t[1].re = in[3].im - in[12].im;
  154. t[2].re = in[6].re + in[ 9].re;
  155. t[2].im = in[6].im + in[ 9].im;
  156. t[3].im = in[6].re - in[ 9].re;
  157. t[3].re = in[6].im - in[ 9].im;
  158. out[0].re = in[0].re + in[3].re + in[6].re + in[9].re + in[12].re;
  159. out[0].im = in[0].im + in[3].im + in[6].im + in[9].im + in[12].im;
  160. t[4].re = exptab[0].re * t[2].re - exptab[1].re * t[0].re;
  161. t[4].im = exptab[0].re * t[2].im - exptab[1].re * t[0].im;
  162. t[0].re = exptab[0].re * t[0].re - exptab[1].re * t[2].re;
  163. t[0].im = exptab[0].re * t[0].im - exptab[1].re * t[2].im;
  164. t[5].re = exptab[0].im * t[3].re - exptab[1].im * t[1].re;
  165. t[5].im = exptab[0].im * t[3].im - exptab[1].im * t[1].im;
  166. t[1].re = exptab[0].im * t[1].re + exptab[1].im * t[3].re;
  167. t[1].im = exptab[0].im * t[1].im + exptab[1].im * t[3].im;
  168. z0[0].re = t[0].re - t[1].re;
  169. z0[0].im = t[0].im - t[1].im;
  170. z0[1].re = t[4].re + t[5].re;
  171. z0[1].im = t[4].im + t[5].im;
  172. z0[2].re = t[4].re - t[5].re;
  173. z0[2].im = t[4].im - t[5].im;
  174. z0[3].re = t[0].re + t[1].re;
  175. z0[3].im = t[0].im + t[1].im;
  176. out[1].re = in[0].re + z0[3].re;
  177. out[1].im = in[0].im + z0[0].im;
  178. out[2].re = in[0].re + z0[2].re;
  179. out[2].im = in[0].im + z0[1].im;
  180. out[3].re = in[0].re + z0[1].re;
  181. out[3].im = in[0].im + z0[2].im;
  182. out[4].re = in[0].re + z0[0].re;
  183. out[4].im = in[0].im + z0[3].im;
  184. }
  185. static void fft15(const FFTComplex exptab[22], FFTComplex *out, const FFTComplex *in, size_t stride)
  186. {
  187. int k;
  188. FFTComplex tmp1[5], tmp2[5], tmp3[5];
  189. fft5(exptab + 19, tmp1, in + 0);
  190. fft5(exptab + 19, tmp2, in + 1);
  191. fft5(exptab + 19, tmp3, in + 2);
  192. for (k = 0; k < 5; k++) {
  193. FFTComplex t[2];
  194. CMUL(t[0], tmp2[k], exptab[k]);
  195. CMUL(t[1], tmp3[k], exptab[2 * k]);
  196. out[stride*k].re = tmp1[k].re + t[0].re + t[1].re;
  197. out[stride*k].im = tmp1[k].im + t[0].im + t[1].im;
  198. CMUL(t[0], tmp2[k], exptab[k + 5]);
  199. CMUL(t[1], tmp3[k], exptab[2 * (k + 5)]);
  200. out[stride*(k + 5)].re = tmp1[k].re + t[0].re + t[1].re;
  201. out[stride*(k + 5)].im = tmp1[k].im + t[0].im + t[1].im;
  202. CMUL(t[0], tmp2[k], exptab[k + 10]);
  203. CMUL(t[1], tmp3[k], exptab[2 * k + 5]);
  204. out[stride*(k + 10)].re = tmp1[k].re + t[0].re + t[1].re;
  205. out[stride*(k + 10)].im = tmp1[k].im + t[0].im + t[1].im;
  206. }
  207. }
  208. static void mdct15(MDCT15Context *s, float *dst, const float *src, ptrdiff_t stride)
  209. {
  210. int i, j;
  211. const int len4 = s->len4, len3 = len4 * 3, len8 = len4 >> 1;
  212. const int l_ptwo = 1 << s->ptwo_fft.nbits;
  213. FFTComplex fft15in[15];
  214. /* Folding and pre-reindexing */
  215. for (i = 0; i < l_ptwo; i++) {
  216. for (j = 0; j < 15; j++) {
  217. float re, im;
  218. const int k = s->pfa_prereindex[i*15 + j];
  219. if (k < len8) {
  220. re = -src[2*k+len3] - src[len3-1-2*k];
  221. im = -src[len4+2*k] + src[len4-1-2*k];
  222. } else {
  223. re = src[2*k-len4] - src[1*len3-1-2*k];
  224. im = -src[2*k+len4] - src[5*len4-1-2*k];
  225. }
  226. CMUL3(fft15in[j].re, fft15in[j].im, re, im, s->twiddle_exptab[k].re, -s->twiddle_exptab[k].im);
  227. }
  228. fft15(s->exptab, s->tmp + s->ptwo_fft.revtab[i], fft15in, l_ptwo);
  229. }
  230. /* Then a 15xN FFT (where N is a power of two) */
  231. for (i = 0; i < 15; i++)
  232. s->ptwo_fft.fft_calc(&s->ptwo_fft, s->tmp + l_ptwo*i);
  233. /* Reindex again, apply twiddles and output */
  234. for (i = 0; i < len8; i++) {
  235. float re0, im0, re1, im1;
  236. const int i0 = len8 + i, i1 = len8 - i - 1;
  237. const int s0 = s->pfa_postreindex[i0], s1 = s->pfa_postreindex[i1];
  238. CMUL3(im1, re0, s->tmp[s1].re, s->tmp[s1].im, s->twiddle_exptab[i1].im, s->twiddle_exptab[i1].re);
  239. CMUL3(im0, re1, s->tmp[s0].re, s->tmp[s0].im, s->twiddle_exptab[i0].im, s->twiddle_exptab[i0].re);
  240. dst[2*i1*stride ] = re0;
  241. dst[2*i1*stride + stride] = im0;
  242. dst[2*i0*stride ] = re1;
  243. dst[2*i0*stride + stride] = im1;
  244. }
  245. }
  246. static void imdct15_half(MDCT15Context *s, float *dst, const float *src,
  247. ptrdiff_t stride, float scale)
  248. {
  249. FFTComplex fft15in[15];
  250. FFTComplex *z = (FFTComplex *)dst;
  251. int i, j, len8 = s->len4 >> 1, l_ptwo = 1 << s->ptwo_fft.nbits;
  252. const float *in1 = src, *in2 = src + (s->len2 - 1) * stride;
  253. /* Reindex input, putting it into a buffer and doing an Nx15 FFT */
  254. for (i = 0; i < l_ptwo; i++) {
  255. for (j = 0; j < 15; j++) {
  256. const int k = s->pfa_prereindex[i*15 + j];
  257. FFTComplex tmp = { *(in2 - 2*k*stride), *(in1 + 2*k*stride) };
  258. CMUL(fft15in[j], tmp, s->twiddle_exptab[k]);
  259. }
  260. fft15(s->exptab, s->tmp + s->ptwo_fft.revtab[i], fft15in, l_ptwo);
  261. }
  262. /* Then a 15xN FFT (where N is a power of two) */
  263. for (i = 0; i < 15; i++)
  264. s->ptwo_fft.fft_calc(&s->ptwo_fft, s->tmp + l_ptwo*i);
  265. /* Reindex again, apply twiddles and output */
  266. for (i = 0; i < len8; i++) {
  267. float re0, im0, re1, im1;
  268. const int i0 = len8 + i, i1 = len8 - i - 1;
  269. const int s0 = s->pfa_postreindex[i0], s1 = s->pfa_postreindex[i1];
  270. CMUL3(re0, im1, s->tmp[s1].im, s->tmp[s1].re, s->twiddle_exptab[i1].im, s->twiddle_exptab[i1].re);
  271. CMUL3(re1, im0, s->tmp[s0].im, s->tmp[s0].re, s->twiddle_exptab[i0].im, s->twiddle_exptab[i0].re);
  272. z[i1].re = scale * re0;
  273. z[i1].im = scale * im0;
  274. z[i0].re = scale * re1;
  275. z[i0].im = scale * im1;
  276. }
  277. }