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  1. /*
  2. * Copyright (c) 2019 Lynne <dev@lynne.ee>
  3. * Power of two FFT:
  4. * Copyright (c) 2008 Loren Merritt
  5. * Copyright (c) 2002 Fabrice Bellard
  6. * Partly based on libdjbfft by D. J. Bernstein
  7. *
  8. * This file is part of FFmpeg.
  9. *
  10. * FFmpeg is free software; you can redistribute it and/or
  11. * modify it under the terms of the GNU Lesser General Public
  12. * License as published by the Free Software Foundation; either
  13. * version 2.1 of the License, or (at your option) any later version.
  14. *
  15. * FFmpeg is distributed in the hope that it will be useful,
  16. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  17. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  18. * Lesser General Public License for more details.
  19. *
  20. * You should have received a copy of the GNU Lesser General Public
  21. * License along with FFmpeg; if not, write to the Free Software
  22. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  23. */
  24. /* All costabs for a type are defined here */
  25. COSTABLE(16);
  26. COSTABLE(32);
  27. COSTABLE(64);
  28. COSTABLE(128);
  29. COSTABLE(256);
  30. COSTABLE(512);
  31. COSTABLE(1024);
  32. COSTABLE(2048);
  33. COSTABLE(4096);
  34. COSTABLE(8192);
  35. COSTABLE(16384);
  36. COSTABLE(32768);
  37. COSTABLE(65536);
  38. COSTABLE(131072);
  39. DECLARE_ALIGNED(32, FFTComplex, TX_NAME(ff_cos_53))[4];
  40. static FFTSample * const cos_tabs[18] = {
  41. NULL,
  42. NULL,
  43. NULL,
  44. NULL,
  45. TX_NAME(ff_cos_16),
  46. TX_NAME(ff_cos_32),
  47. TX_NAME(ff_cos_64),
  48. TX_NAME(ff_cos_128),
  49. TX_NAME(ff_cos_256),
  50. TX_NAME(ff_cos_512),
  51. TX_NAME(ff_cos_1024),
  52. TX_NAME(ff_cos_2048),
  53. TX_NAME(ff_cos_4096),
  54. TX_NAME(ff_cos_8192),
  55. TX_NAME(ff_cos_16384),
  56. TX_NAME(ff_cos_32768),
  57. TX_NAME(ff_cos_65536),
  58. TX_NAME(ff_cos_131072),
  59. };
  60. static av_always_inline void init_cos_tabs_idx(int index)
  61. {
  62. int m = 1 << index;
  63. double freq = 2*M_PI/m;
  64. FFTSample *tab = cos_tabs[index];
  65. for(int i = 0; i <= m/4; i++)
  66. tab[i] = RESCALE(cos(i*freq));
  67. for(int i = 1; i < m/4; i++)
  68. tab[m/2 - i] = tab[i];
  69. }
  70. #define INIT_FF_COS_TABS_FUNC(index, size) \
  71. static av_cold void init_cos_tabs_ ## size (void) \
  72. { \
  73. init_cos_tabs_idx(index); \
  74. }
  75. INIT_FF_COS_TABS_FUNC(4, 16)
  76. INIT_FF_COS_TABS_FUNC(5, 32)
  77. INIT_FF_COS_TABS_FUNC(6, 64)
  78. INIT_FF_COS_TABS_FUNC(7, 128)
  79. INIT_FF_COS_TABS_FUNC(8, 256)
  80. INIT_FF_COS_TABS_FUNC(9, 512)
  81. INIT_FF_COS_TABS_FUNC(10, 1024)
  82. INIT_FF_COS_TABS_FUNC(11, 2048)
  83. INIT_FF_COS_TABS_FUNC(12, 4096)
  84. INIT_FF_COS_TABS_FUNC(13, 8192)
  85. INIT_FF_COS_TABS_FUNC(14, 16384)
  86. INIT_FF_COS_TABS_FUNC(15, 32768)
  87. INIT_FF_COS_TABS_FUNC(16, 65536)
  88. INIT_FF_COS_TABS_FUNC(17, 131072)
  89. static av_cold void ff_init_53_tabs(void)
  90. {
  91. TX_NAME(ff_cos_53)[0] = (FFTComplex){ RESCALE(cos(2 * M_PI / 12)), RESCALE(cos(2 * M_PI / 12)) };
  92. TX_NAME(ff_cos_53)[1] = (FFTComplex){ RESCALE(cos(2 * M_PI / 6)), RESCALE(cos(2 * M_PI / 6)) };
  93. TX_NAME(ff_cos_53)[2] = (FFTComplex){ RESCALE(cos(2 * M_PI / 5)), RESCALE(sin(2 * M_PI / 5)) };
  94. TX_NAME(ff_cos_53)[3] = (FFTComplex){ RESCALE(cos(2 * M_PI / 10)), RESCALE(sin(2 * M_PI / 10)) };
  95. }
  96. static CosTabsInitOnce cos_tabs_init_once[] = {
  97. { ff_init_53_tabs, AV_ONCE_INIT },
  98. { NULL },
  99. { NULL },
  100. { NULL },
  101. { init_cos_tabs_16, AV_ONCE_INIT },
  102. { init_cos_tabs_32, AV_ONCE_INIT },
  103. { init_cos_tabs_64, AV_ONCE_INIT },
  104. { init_cos_tabs_128, AV_ONCE_INIT },
  105. { init_cos_tabs_256, AV_ONCE_INIT },
  106. { init_cos_tabs_512, AV_ONCE_INIT },
  107. { init_cos_tabs_1024, AV_ONCE_INIT },
  108. { init_cos_tabs_2048, AV_ONCE_INIT },
  109. { init_cos_tabs_4096, AV_ONCE_INIT },
  110. { init_cos_tabs_8192, AV_ONCE_INIT },
  111. { init_cos_tabs_16384, AV_ONCE_INIT },
  112. { init_cos_tabs_32768, AV_ONCE_INIT },
  113. { init_cos_tabs_65536, AV_ONCE_INIT },
  114. { init_cos_tabs_131072, AV_ONCE_INIT },
  115. };
  116. static av_cold void init_cos_tabs(int index)
  117. {
  118. ff_thread_once(&cos_tabs_init_once[index].control,
  119. cos_tabs_init_once[index].func);
  120. }
  121. static av_always_inline void fft3(FFTComplex *out, FFTComplex *in,
  122. ptrdiff_t stride)
  123. {
  124. FFTComplex tmp[2];
  125. BF(tmp[0].re, tmp[1].im, in[1].im, in[2].im);
  126. BF(tmp[0].im, tmp[1].re, in[1].re, in[2].re);
  127. out[0*stride].re = in[0].re + tmp[1].re;
  128. out[0*stride].im = in[0].im + tmp[1].im;
  129. tmp[0].re = MUL(TX_NAME(ff_cos_53)[0].re, tmp[0].re);
  130. tmp[0].im = MUL(TX_NAME(ff_cos_53)[0].im, tmp[0].im);
  131. tmp[1].re = MUL(TX_NAME(ff_cos_53)[1].re, tmp[1].re);
  132. tmp[1].im = MUL(TX_NAME(ff_cos_53)[1].re, tmp[1].im);
  133. out[1*stride].re = in[0].re - tmp[1].re + tmp[0].re;
  134. out[1*stride].im = in[0].im - tmp[1].im - tmp[0].im;
  135. out[2*stride].re = in[0].re - tmp[1].re - tmp[0].re;
  136. out[2*stride].im = in[0].im - tmp[1].im + tmp[0].im;
  137. }
  138. #define DECL_FFT5(NAME, D0, D1, D2, D3, D4) \
  139. static av_always_inline void NAME(FFTComplex *out, FFTComplex *in, \
  140. ptrdiff_t stride) \
  141. { \
  142. FFTComplex z0[4], t[6]; \
  143. \
  144. BF(t[1].im, t[0].re, in[1].re, in[4].re); \
  145. BF(t[1].re, t[0].im, in[1].im, in[4].im); \
  146. BF(t[3].im, t[2].re, in[2].re, in[3].re); \
  147. BF(t[3].re, t[2].im, in[2].im, in[3].im); \
  148. \
  149. out[D0*stride].re = in[0].re + t[0].re + t[2].re; \
  150. out[D0*stride].im = in[0].im + t[0].im + t[2].im; \
  151. \
  152. SMUL(t[4].re, t[0].re, TX_NAME(ff_cos_53)[2].re, TX_NAME(ff_cos_53)[3].re, t[2].re, t[0].re); \
  153. SMUL(t[4].im, t[0].im, TX_NAME(ff_cos_53)[2].re, TX_NAME(ff_cos_53)[3].re, t[2].im, t[0].im); \
  154. CMUL(t[5].re, t[1].re, TX_NAME(ff_cos_53)[2].im, TX_NAME(ff_cos_53)[3].im, t[3].re, t[1].re); \
  155. CMUL(t[5].im, t[1].im, TX_NAME(ff_cos_53)[2].im, TX_NAME(ff_cos_53)[3].im, t[3].im, t[1].im); \
  156. \
  157. BF(z0[0].re, z0[3].re, t[0].re, t[1].re); \
  158. BF(z0[0].im, z0[3].im, t[0].im, t[1].im); \
  159. BF(z0[2].re, z0[1].re, t[4].re, t[5].re); \
  160. BF(z0[2].im, z0[1].im, t[4].im, t[5].im); \
  161. \
  162. out[D1*stride].re = in[0].re + z0[3].re; \
  163. out[D1*stride].im = in[0].im + z0[0].im; \
  164. out[D2*stride].re = in[0].re + z0[2].re; \
  165. out[D2*stride].im = in[0].im + z0[1].im; \
  166. out[D3*stride].re = in[0].re + z0[1].re; \
  167. out[D3*stride].im = in[0].im + z0[2].im; \
  168. out[D4*stride].re = in[0].re + z0[0].re; \
  169. out[D4*stride].im = in[0].im + z0[3].im; \
  170. }
  171. DECL_FFT5(fft5, 0, 1, 2, 3, 4)
  172. DECL_FFT5(fft5_m1, 0, 6, 12, 3, 9)
  173. DECL_FFT5(fft5_m2, 10, 1, 7, 13, 4)
  174. DECL_FFT5(fft5_m3, 5, 11, 2, 8, 14)
  175. static av_always_inline void fft15(FFTComplex *out, FFTComplex *in,
  176. ptrdiff_t stride)
  177. {
  178. FFTComplex tmp[15];
  179. for (int i = 0; i < 5; i++)
  180. fft3(tmp + i, in + i*3, 5);
  181. fft5_m1(out, tmp + 0, stride);
  182. fft5_m2(out, tmp + 5, stride);
  183. fft5_m3(out, tmp + 10, stride);
  184. }
  185. #define BUTTERFLIES(a0,a1,a2,a3) {\
  186. BF(t3, t5, t5, t1);\
  187. BF(a2.re, a0.re, a0.re, t5);\
  188. BF(a3.im, a1.im, a1.im, t3);\
  189. BF(t4, t6, t2, t6);\
  190. BF(a3.re, a1.re, a1.re, t4);\
  191. BF(a2.im, a0.im, a0.im, t6);\
  192. }
  193. // force loading all the inputs before storing any.
  194. // this is slightly slower for small data, but avoids store->load aliasing
  195. // for addresses separated by large powers of 2.
  196. #define BUTTERFLIES_BIG(a0,a1,a2,a3) {\
  197. FFTSample r0=a0.re, i0=a0.im, r1=a1.re, i1=a1.im;\
  198. BF(t3, t5, t5, t1);\
  199. BF(a2.re, a0.re, r0, t5);\
  200. BF(a3.im, a1.im, i1, t3);\
  201. BF(t4, t6, t2, t6);\
  202. BF(a3.re, a1.re, r1, t4);\
  203. BF(a2.im, a0.im, i0, t6);\
  204. }
  205. #define TRANSFORM(a0,a1,a2,a3,wre,wim) {\
  206. CMUL(t1, t2, a2.re, a2.im, wre, -wim);\
  207. CMUL(t5, t6, a3.re, a3.im, wre, wim);\
  208. BUTTERFLIES(a0,a1,a2,a3)\
  209. }
  210. #define TRANSFORM_ZERO(a0,a1,a2,a3) {\
  211. t1 = a2.re;\
  212. t2 = a2.im;\
  213. t5 = a3.re;\
  214. t6 = a3.im;\
  215. BUTTERFLIES(a0,a1,a2,a3)\
  216. }
  217. /* z[0...8n-1], w[1...2n-1] */
  218. #define PASS(name)\
  219. static void name(FFTComplex *z, const FFTSample *wre, unsigned int n)\
  220. {\
  221. FFTSample t1, t2, t3, t4, t5, t6;\
  222. int o1 = 2*n;\
  223. int o2 = 4*n;\
  224. int o3 = 6*n;\
  225. const FFTSample *wim = wre+o1;\
  226. n--;\
  227. \
  228. TRANSFORM_ZERO(z[0],z[o1],z[o2],z[o3]);\
  229. TRANSFORM(z[1],z[o1+1],z[o2+1],z[o3+1],wre[1],wim[-1]);\
  230. do {\
  231. z += 2;\
  232. wre += 2;\
  233. wim -= 2;\
  234. TRANSFORM(z[0],z[o1],z[o2],z[o3],wre[0],wim[0]);\
  235. TRANSFORM(z[1],z[o1+1],z[o2+1],z[o3+1],wre[1],wim[-1]);\
  236. } while(--n);\
  237. }
  238. PASS(pass)
  239. #undef BUTTERFLIES
  240. #define BUTTERFLIES BUTTERFLIES_BIG
  241. PASS(pass_big)
  242. #define DECL_FFT(n,n2,n4)\
  243. static void fft##n(FFTComplex *z)\
  244. {\
  245. fft##n2(z);\
  246. fft##n4(z+n4*2);\
  247. fft##n4(z+n4*3);\
  248. pass(z,TX_NAME(ff_cos_##n),n4/2);\
  249. }
  250. static void fft4(FFTComplex *z)
  251. {
  252. FFTSample t1, t2, t3, t4, t5, t6, t7, t8;
  253. BF(t3, t1, z[0].re, z[1].re);
  254. BF(t8, t6, z[3].re, z[2].re);
  255. BF(z[2].re, z[0].re, t1, t6);
  256. BF(t4, t2, z[0].im, z[1].im);
  257. BF(t7, t5, z[2].im, z[3].im);
  258. BF(z[3].im, z[1].im, t4, t8);
  259. BF(z[3].re, z[1].re, t3, t7);
  260. BF(z[2].im, z[0].im, t2, t5);
  261. }
  262. static void fft8(FFTComplex *z)
  263. {
  264. FFTSample t1, t2, t3, t4, t5, t6;
  265. fft4(z);
  266. BF(t1, z[5].re, z[4].re, -z[5].re);
  267. BF(t2, z[5].im, z[4].im, -z[5].im);
  268. BF(t5, z[7].re, z[6].re, -z[7].re);
  269. BF(t6, z[7].im, z[6].im, -z[7].im);
  270. BUTTERFLIES(z[0],z[2],z[4],z[6]);
  271. TRANSFORM(z[1],z[3],z[5],z[7],RESCALE(M_SQRT1_2),RESCALE(M_SQRT1_2));
  272. }
  273. static void fft16(FFTComplex *z)
  274. {
  275. FFTSample t1, t2, t3, t4, t5, t6;
  276. FFTSample cos_16_1 = TX_NAME(ff_cos_16)[1];
  277. FFTSample cos_16_3 = TX_NAME(ff_cos_16)[3];
  278. fft8(z);
  279. fft4(z+8);
  280. fft4(z+12);
  281. TRANSFORM_ZERO(z[0],z[4],z[8],z[12]);
  282. TRANSFORM(z[2],z[6],z[10],z[14],RESCALE(M_SQRT1_2),RESCALE(M_SQRT1_2));
  283. TRANSFORM(z[1],z[5],z[9],z[13],cos_16_1,cos_16_3);
  284. TRANSFORM(z[3],z[7],z[11],z[15],cos_16_3,cos_16_1);
  285. }
  286. DECL_FFT(32,16,8)
  287. DECL_FFT(64,32,16)
  288. DECL_FFT(128,64,32)
  289. DECL_FFT(256,128,64)
  290. DECL_FFT(512,256,128)
  291. #define pass pass_big
  292. DECL_FFT(1024,512,256)
  293. DECL_FFT(2048,1024,512)
  294. DECL_FFT(4096,2048,1024)
  295. DECL_FFT(8192,4096,2048)
  296. DECL_FFT(16384,8192,4096)
  297. DECL_FFT(32768,16384,8192)
  298. DECL_FFT(65536,32768,16384)
  299. DECL_FFT(131072,65536,32768)
  300. static void (* const fft_dispatch[])(FFTComplex*) = {
  301. fft4, fft8, fft16, fft32, fft64, fft128, fft256, fft512, fft1024,
  302. fft2048, fft4096, fft8192, fft16384, fft32768, fft65536, fft131072
  303. };
  304. #define DECL_COMP_FFT(N) \
  305. static void compound_fft_##N##xM(AVTXContext *s, void *_out, \
  306. void *_in, ptrdiff_t stride) \
  307. { \
  308. const int m = s->m, *in_map = s->pfatab, *out_map = in_map + N*m; \
  309. FFTComplex *in = _in; \
  310. FFTComplex *out = _out; \
  311. FFTComplex fft##N##in[N]; \
  312. void (*fftp)(FFTComplex *z) = fft_dispatch[av_log2(m) - 2]; \
  313. \
  314. for (int i = 0; i < m; i++) { \
  315. for (int j = 0; j < N; j++) \
  316. fft##N##in[j] = in[in_map[i*N + j]]; \
  317. fft##N(s->tmp + s->revtab[i], fft##N##in, m); \
  318. } \
  319. \
  320. for (int i = 0; i < N; i++) \
  321. fftp(s->tmp + m*i); \
  322. \
  323. for (int i = 0; i < N*m; i++) \
  324. out[i] = s->tmp[out_map[i]]; \
  325. }
  326. DECL_COMP_FFT(3)
  327. DECL_COMP_FFT(5)
  328. DECL_COMP_FFT(15)
  329. static void monolithic_fft(AVTXContext *s, void *_out, void *_in,
  330. ptrdiff_t stride)
  331. {
  332. FFTComplex *in = _in;
  333. FFTComplex *out = _out;
  334. int m = s->m, mb = av_log2(m) - 2;
  335. for (int i = 0; i < m; i++)
  336. out[s->revtab[i]] = in[i];
  337. fft_dispatch[mb](out);
  338. }
  339. #define DECL_COMP_IMDCT(N) \
  340. static void compound_imdct_##N##xM(AVTXContext *s, void *_dst, void *_src, \
  341. ptrdiff_t stride) \
  342. { \
  343. FFTComplex fft##N##in[N]; \
  344. FFTComplex *z = _dst, *exp = s->exptab; \
  345. const int m = s->m, len8 = N*m >> 1; \
  346. const int *in_map = s->pfatab, *out_map = in_map + N*m; \
  347. const FFTSample *src = _src, *in1, *in2; \
  348. void (*fftp)(FFTComplex *) = fft_dispatch[av_log2(m) - 2]; \
  349. \
  350. stride /= sizeof(*src); /* To convert it from bytes */ \
  351. in1 = src; \
  352. in2 = src + ((N*m*2) - 1) * stride; \
  353. \
  354. for (int i = 0; i < m; i++) { \
  355. for (int j = 0; j < N; j++) { \
  356. const int k = in_map[i*N + j]; \
  357. FFTComplex tmp = { in2[-k*stride], in1[k*stride] }; \
  358. CMUL3(fft##N##in[j], tmp, exp[k >> 1]); \
  359. } \
  360. fft##N(s->tmp + s->revtab[i], fft##N##in, m); \
  361. } \
  362. \
  363. for (int i = 0; i < N; i++) \
  364. fftp(s->tmp + m*i); \
  365. \
  366. for (int i = 0; i < len8; i++) { \
  367. const int i0 = len8 + i, i1 = len8 - i - 1; \
  368. const int s0 = out_map[i0], s1 = out_map[i1]; \
  369. FFTComplex src1 = { s->tmp[s1].im, s->tmp[s1].re }; \
  370. FFTComplex src0 = { s->tmp[s0].im, s->tmp[s0].re }; \
  371. \
  372. CMUL(z[i1].re, z[i0].im, src1.re, src1.im, exp[i1].im, exp[i1].re); \
  373. CMUL(z[i0].re, z[i1].im, src0.re, src0.im, exp[i0].im, exp[i0].re); \
  374. } \
  375. }
  376. DECL_COMP_IMDCT(3)
  377. DECL_COMP_IMDCT(5)
  378. DECL_COMP_IMDCT(15)
  379. #define DECL_COMP_MDCT(N) \
  380. static void compound_mdct_##N##xM(AVTXContext *s, void *_dst, void *_src, \
  381. ptrdiff_t stride) \
  382. { \
  383. FFTSample *src = _src, *dst = _dst; \
  384. FFTComplex *exp = s->exptab, tmp, fft##N##in[N]; \
  385. const int m = s->m, len4 = N*m, len3 = len4 * 3, len8 = len4 >> 1; \
  386. const int *in_map = s->pfatab, *out_map = in_map + N*m; \
  387. void (*fftp)(FFTComplex *) = fft_dispatch[av_log2(m) - 2]; \
  388. \
  389. stride /= sizeof(*dst); \
  390. \
  391. for (int i = 0; i < m; i++) { /* Folding and pre-reindexing */ \
  392. for (int j = 0; j < N; j++) { \
  393. const int k = in_map[i*N + j]; \
  394. if (k < len4) { \
  395. tmp.re = FOLD(-src[ len4 + k], src[1*len4 - 1 - k]); \
  396. tmp.im = FOLD(-src[ len3 + k], -src[1*len3 - 1 - k]); \
  397. } else { \
  398. tmp.re = FOLD(-src[ len4 + k], -src[5*len4 - 1 - k]); \
  399. tmp.im = FOLD( src[-len4 + k], -src[1*len3 - 1 - k]); \
  400. } \
  401. CMUL(fft##N##in[j].im, fft##N##in[j].re, tmp.re, tmp.im, \
  402. exp[k >> 1].re, exp[k >> 1].im); \
  403. } \
  404. fft##N(s->tmp + s->revtab[i], fft##N##in, m); \
  405. } \
  406. \
  407. for (int i = 0; i < N; i++) \
  408. fftp(s->tmp + m*i); \
  409. \
  410. for (int i = 0; i < len8; i++) { \
  411. const int i0 = len8 + i, i1 = len8 - i - 1; \
  412. const int s0 = out_map[i0], s1 = out_map[i1]; \
  413. FFTComplex src1 = { s->tmp[s1].re, s->tmp[s1].im }; \
  414. FFTComplex src0 = { s->tmp[s0].re, s->tmp[s0].im }; \
  415. \
  416. CMUL(dst[2*i1*stride + stride], dst[2*i0*stride], src0.re, src0.im, \
  417. exp[i0].im, exp[i0].re); \
  418. CMUL(dst[2*i0*stride + stride], dst[2*i1*stride], src1.re, src1.im, \
  419. exp[i1].im, exp[i1].re); \
  420. } \
  421. }
  422. DECL_COMP_MDCT(3)
  423. DECL_COMP_MDCT(5)
  424. DECL_COMP_MDCT(15)
  425. static void monolithic_imdct(AVTXContext *s, void *_dst, void *_src,
  426. ptrdiff_t stride)
  427. {
  428. FFTComplex *z = _dst, *exp = s->exptab;
  429. const int m = s->m, len8 = m >> 1;
  430. const FFTSample *src = _src, *in1, *in2;
  431. void (*fftp)(FFTComplex *) = fft_dispatch[av_log2(m) - 2];
  432. stride /= sizeof(*src);
  433. in1 = src;
  434. in2 = src + ((m*2) - 1) * stride;
  435. for (int i = 0; i < m; i++) {
  436. FFTComplex tmp = { in2[-2*i*stride], in1[2*i*stride] };
  437. CMUL3(z[s->revtab[i]], tmp, exp[i]);
  438. }
  439. fftp(z);
  440. for (int i = 0; i < len8; i++) {
  441. const int i0 = len8 + i, i1 = len8 - i - 1;
  442. FFTComplex src1 = { z[i1].im, z[i1].re };
  443. FFTComplex src0 = { z[i0].im, z[i0].re };
  444. CMUL(z[i1].re, z[i0].im, src1.re, src1.im, exp[i1].im, exp[i1].re);
  445. CMUL(z[i0].re, z[i1].im, src0.re, src0.im, exp[i0].im, exp[i0].re);
  446. }
  447. }
  448. static void monolithic_mdct(AVTXContext *s, void *_dst, void *_src,
  449. ptrdiff_t stride)
  450. {
  451. FFTSample *src = _src, *dst = _dst;
  452. FFTComplex *exp = s->exptab, tmp, *z = _dst;
  453. const int m = s->m, len4 = m, len3 = len4 * 3, len8 = len4 >> 1;
  454. void (*fftp)(FFTComplex *) = fft_dispatch[av_log2(m) - 2];
  455. stride /= sizeof(*dst);
  456. for (int i = 0; i < m; i++) { /* Folding and pre-reindexing */
  457. const int k = 2*i;
  458. if (k < len4) {
  459. tmp.re = FOLD(-src[ len4 + k], src[1*len4 - 1 - k]);
  460. tmp.im = FOLD(-src[ len3 + k], -src[1*len3 - 1 - k]);
  461. } else {
  462. tmp.re = FOLD(-src[ len4 + k], -src[5*len4 - 1 - k]);
  463. tmp.im = FOLD( src[-len4 + k], -src[1*len3 - 1 - k]);
  464. }
  465. CMUL(z[s->revtab[i]].im, z[s->revtab[i]].re, tmp.re, tmp.im,
  466. exp[i].re, exp[i].im);
  467. }
  468. fftp(z);
  469. for (int i = 0; i < len8; i++) {
  470. const int i0 = len8 + i, i1 = len8 - i - 1;
  471. FFTComplex src1 = { z[i1].re, z[i1].im };
  472. FFTComplex src0 = { z[i0].re, z[i0].im };
  473. CMUL(dst[2*i1*stride + stride], dst[2*i0*stride], src0.re, src0.im,
  474. exp[i0].im, exp[i0].re);
  475. CMUL(dst[2*i0*stride + stride], dst[2*i1*stride], src1.re, src1.im,
  476. exp[i1].im, exp[i1].re);
  477. }
  478. }
  479. static int gen_mdct_exptab(AVTXContext *s, int len4, double scale)
  480. {
  481. const double theta = (scale < 0 ? len4 : 0) + 1.0/8.0;
  482. if (!(s->exptab = av_malloc_array(len4, sizeof(*s->exptab))))
  483. return AVERROR(ENOMEM);
  484. scale = sqrt(fabs(scale));
  485. for (int i = 0; i < len4; i++) {
  486. const double alpha = M_PI_2 * (i + theta) / len4;
  487. s->exptab[i].re = RESCALE(cos(alpha) * scale);
  488. s->exptab[i].im = RESCALE(sin(alpha) * scale);
  489. }
  490. return 0;
  491. }
  492. int TX_NAME(ff_tx_init_mdct_fft)(AVTXContext *s, av_tx_fn *tx,
  493. enum AVTXType type, int inv, int len,
  494. const void *scale, uint64_t flags)
  495. {
  496. const int is_mdct = ff_tx_type_is_mdct(type);
  497. int err, n = 1, m = 1, max_ptwo = 1 << (FF_ARRAY_ELEMS(fft_dispatch) + 1);
  498. if (is_mdct)
  499. len >>= 1;
  500. #define CHECK_FACTOR(DST, FACTOR, SRC) \
  501. if (DST == 1 && !(SRC % FACTOR)) { \
  502. DST = FACTOR; \
  503. SRC /= FACTOR; \
  504. }
  505. CHECK_FACTOR(n, 15, len)
  506. CHECK_FACTOR(n, 5, len)
  507. CHECK_FACTOR(n, 3, len)
  508. #undef CHECK_FACTOR
  509. /* len must be a power of two now */
  510. if (!(len & (len - 1)) && len >= 4 && len <= max_ptwo) {
  511. m = len;
  512. len = 1;
  513. }
  514. s->n = n;
  515. s->m = m;
  516. s->inv = inv;
  517. s->type = type;
  518. /* Filter out direct 3, 5 and 15 transforms, too niche */
  519. if (len > 1 || m == 1) {
  520. av_log(NULL, AV_LOG_ERROR, "Unsupported transform size: n = %i, "
  521. "m = %i, residual = %i!\n", n, m, len);
  522. return AVERROR(EINVAL);
  523. } else if (n > 1 && m > 1) { /* 2D transform case */
  524. if ((err = ff_tx_gen_compound_mapping(s)))
  525. return err;
  526. if (!(s->tmp = av_malloc(n*m*sizeof(*s->tmp))))
  527. return AVERROR(ENOMEM);
  528. *tx = n == 3 ? compound_fft_3xM :
  529. n == 5 ? compound_fft_5xM :
  530. compound_fft_15xM;
  531. if (is_mdct)
  532. *tx = n == 3 ? inv ? compound_imdct_3xM : compound_mdct_3xM :
  533. n == 5 ? inv ? compound_imdct_5xM : compound_mdct_5xM :
  534. inv ? compound_imdct_15xM : compound_mdct_15xM;
  535. } else { /* Direct transform case */
  536. *tx = monolithic_fft;
  537. if (is_mdct)
  538. *tx = inv ? monolithic_imdct : monolithic_mdct;
  539. }
  540. if (n != 1)
  541. init_cos_tabs(0);
  542. if (m != 1) {
  543. ff_tx_gen_ptwo_revtab(s);
  544. for (int i = 4; i <= av_log2(m); i++)
  545. init_cos_tabs(i);
  546. }
  547. if (is_mdct)
  548. return gen_mdct_exptab(s, n*m, *((SCALE_TYPE *)scale));
  549. return 0;
  550. }