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  1. /*
  2. * DSP utils
  3. * Copyright (c) 2000, 2001, 2002 Fabrice Bellard.
  4. * Copyright (c) 2002-2004 Michael Niedermayer <michaelni@gmx.at>
  5. *
  6. * This file is part of FFmpeg.
  7. *
  8. * FFmpeg is free software; you can redistribute it and/or
  9. * modify it under the terms of the GNU Lesser General Public
  10. * License as published by the Free Software Foundation; either
  11. * version 2.1 of the License, or (at your option) any later version.
  12. *
  13. * FFmpeg is distributed in the hope that it will be useful,
  14. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  16. * Lesser General Public License for more details.
  17. *
  18. * You should have received a copy of the GNU Lesser General Public
  19. * License along with FFmpeg; if not, write to the Free Software
  20. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  21. */
  22. /**
  23. * @file dsputil.h
  24. * DSP utils.
  25. * note, many functions in here may use MMX which trashes the FPU state, it is
  26. * absolutely necessary to call emms_c() between dsp & float/double code
  27. */
  28. #ifndef AVCODEC_DSPUTIL_H
  29. #define AVCODEC_DSPUTIL_H
  30. #include "avcodec.h"
  31. //#define DEBUG
  32. /* dct code */
  33. typedef short DCTELEM;
  34. typedef int DWTELEM;
  35. typedef short IDWTELEM;
  36. void fdct_ifast (DCTELEM *data);
  37. void fdct_ifast248 (DCTELEM *data);
  38. void ff_jpeg_fdct_islow (DCTELEM *data);
  39. void ff_fdct248_islow (DCTELEM *data);
  40. void j_rev_dct (DCTELEM *data);
  41. void j_rev_dct4 (DCTELEM *data);
  42. void j_rev_dct2 (DCTELEM *data);
  43. void j_rev_dct1 (DCTELEM *data);
  44. void ff_wmv2_idct_c(DCTELEM *data);
  45. void ff_fdct_mmx(DCTELEM *block);
  46. void ff_fdct_mmx2(DCTELEM *block);
  47. void ff_fdct_sse2(DCTELEM *block);
  48. void ff_h264_idct8_add_c(uint8_t *dst, DCTELEM *block, int stride);
  49. void ff_h264_idct_add_c(uint8_t *dst, DCTELEM *block, int stride);
  50. void ff_h264_idct8_dc_add_c(uint8_t *dst, DCTELEM *block, int stride);
  51. void ff_h264_idct_dc_add_c(uint8_t *dst, DCTELEM *block, int stride);
  52. void ff_h264_lowres_idct_add_c(uint8_t *dst, int stride, DCTELEM *block);
  53. void ff_h264_lowres_idct_put_c(uint8_t *dst, int stride, DCTELEM *block);
  54. void ff_h264_idct_add16_c(uint8_t *dst, const int *blockoffset, DCTELEM *block, int stride, const uint8_t nnzc[6*8]);
  55. void ff_h264_idct_add16intra_c(uint8_t *dst, const int *blockoffset, DCTELEM *block, int stride, const uint8_t nnzc[6*8]);
  56. void ff_h264_idct8_add4_c(uint8_t *dst, const int *blockoffset, DCTELEM *block, int stride, const uint8_t nnzc[6*8]);
  57. void ff_h264_idct_add8_c(uint8_t **dest, const int *blockoffset, DCTELEM *block, int stride, const uint8_t nnzc[6*8]);
  58. void ff_vector_fmul_add_add_c(float *dst, const float *src0, const float *src1,
  59. const float *src2, int src3, int blocksize, int step);
  60. void ff_vector_fmul_window_c(float *dst, const float *src0, const float *src1,
  61. const float *win, float add_bias, int len);
  62. void ff_float_to_int16_c(int16_t *dst, const float *src, long len);
  63. void ff_float_to_int16_interleave_c(int16_t *dst, const float **src, long len, int channels);
  64. /* encoding scans */
  65. extern const uint8_t ff_alternate_horizontal_scan[64];
  66. extern const uint8_t ff_alternate_vertical_scan[64];
  67. extern const uint8_t ff_zigzag_direct[64];
  68. extern const uint8_t ff_zigzag248_direct[64];
  69. /* pixel operations */
  70. #define MAX_NEG_CROP 1024
  71. /* temporary */
  72. extern uint32_t ff_squareTbl[512];
  73. extern uint8_t ff_cropTbl[256 + 2 * MAX_NEG_CROP];
  74. /* VP3 DSP functions */
  75. void ff_vp3_idct_c(DCTELEM *block/* align 16*/);
  76. void ff_vp3_idct_put_c(uint8_t *dest/*align 8*/, int line_size, DCTELEM *block/*align 16*/);
  77. void ff_vp3_idct_add_c(uint8_t *dest/*align 8*/, int line_size, DCTELEM *block/*align 16*/);
  78. void ff_vp3_v_loop_filter_c(uint8_t *src, int stride, int *bounding_values);
  79. void ff_vp3_h_loop_filter_c(uint8_t *src, int stride, int *bounding_values);
  80. /* 1/2^n downscaling functions from imgconvert.c */
  81. void ff_img_copy_plane(uint8_t *dst, int dst_wrap, const uint8_t *src, int src_wrap, int width, int height);
  82. void ff_shrink22(uint8_t *dst, int dst_wrap, const uint8_t *src, int src_wrap, int width, int height);
  83. void ff_shrink44(uint8_t *dst, int dst_wrap, const uint8_t *src, int src_wrap, int width, int height);
  84. void ff_shrink88(uint8_t *dst, int dst_wrap, const uint8_t *src, int src_wrap, int width, int height);
  85. void ff_gmc_c(uint8_t *dst, uint8_t *src, int stride, int h, int ox, int oy,
  86. int dxx, int dxy, int dyx, int dyy, int shift, int r, int width, int height);
  87. /* minimum alignment rules ;)
  88. If you notice errors in the align stuff, need more alignment for some ASM code
  89. for some CPU or need to use a function with less aligned data then send a mail
  90. to the ffmpeg-devel mailing list, ...
  91. !warning These alignments might not match reality, (missing attribute((align))
  92. stuff somewhere possible).
  93. I (Michael) did not check them, these are just the alignments which I think
  94. could be reached easily ...
  95. !future video codecs might need functions with less strict alignment
  96. */
  97. /*
  98. void get_pixels_c(DCTELEM *block, const uint8_t *pixels, int line_size);
  99. void diff_pixels_c(DCTELEM *block, const uint8_t *s1, const uint8_t *s2, int stride);
  100. void put_pixels_clamped_c(const DCTELEM *block, uint8_t *pixels, int line_size);
  101. void add_pixels_clamped_c(const DCTELEM *block, uint8_t *pixels, int line_size);
  102. void clear_blocks_c(DCTELEM *blocks);
  103. */
  104. /* add and put pixel (decoding) */
  105. // blocksizes for op_pixels_func are 8x4,8x8 16x8 16x16
  106. //h for op_pixels_func is limited to {width/2, width} but never larger than 16 and never smaller then 4
  107. typedef void (*op_pixels_func)(uint8_t *block/*align width (8 or 16)*/, const uint8_t *pixels/*align 1*/, int line_size, int h);
  108. typedef void (*tpel_mc_func)(uint8_t *block/*align width (8 or 16)*/, const uint8_t *pixels/*align 1*/, int line_size, int w, int h);
  109. typedef void (*qpel_mc_func)(uint8_t *dst/*align width (8 or 16)*/, uint8_t *src/*align 1*/, int stride);
  110. typedef void (*h264_chroma_mc_func)(uint8_t *dst/*align 8*/, uint8_t *src/*align 1*/, int srcStride, int h, int x, int y);
  111. typedef void (*h264_weight_func)(uint8_t *block, int stride, int log2_denom, int weight, int offset);
  112. typedef void (*h264_biweight_func)(uint8_t *dst, uint8_t *src, int stride, int log2_denom, int weightd, int weights, int offset);
  113. #define DEF_OLD_QPEL(name)\
  114. void ff_put_ ## name (uint8_t *dst/*align width (8 or 16)*/, uint8_t *src/*align 1*/, int stride);\
  115. void ff_put_no_rnd_ ## name (uint8_t *dst/*align width (8 or 16)*/, uint8_t *src/*align 1*/, int stride);\
  116. void ff_avg_ ## name (uint8_t *dst/*align width (8 or 16)*/, uint8_t *src/*align 1*/, int stride);
  117. DEF_OLD_QPEL(qpel16_mc11_old_c)
  118. DEF_OLD_QPEL(qpel16_mc31_old_c)
  119. DEF_OLD_QPEL(qpel16_mc12_old_c)
  120. DEF_OLD_QPEL(qpel16_mc32_old_c)
  121. DEF_OLD_QPEL(qpel16_mc13_old_c)
  122. DEF_OLD_QPEL(qpel16_mc33_old_c)
  123. DEF_OLD_QPEL(qpel8_mc11_old_c)
  124. DEF_OLD_QPEL(qpel8_mc31_old_c)
  125. DEF_OLD_QPEL(qpel8_mc12_old_c)
  126. DEF_OLD_QPEL(qpel8_mc32_old_c)
  127. DEF_OLD_QPEL(qpel8_mc13_old_c)
  128. DEF_OLD_QPEL(qpel8_mc33_old_c)
  129. #define CALL_2X_PIXELS(a, b, n)\
  130. static void a(uint8_t *block, const uint8_t *pixels, int line_size, int h){\
  131. b(block , pixels , line_size, h);\
  132. b(block+n, pixels+n, line_size, h);\
  133. }
  134. /* motion estimation */
  135. // h is limited to {width/2, width, 2*width} but never larger than 16 and never smaller then 2
  136. // although currently h<4 is not used as functions with width <8 are neither used nor implemented
  137. typedef int (*me_cmp_func)(void /*MpegEncContext*/ *s, uint8_t *blk1/*align width (8 or 16)*/, uint8_t *blk2/*align 1*/, int line_size, int h)/* __attribute__ ((const))*/;
  138. // for snow slices
  139. typedef struct slice_buffer_s slice_buffer;
  140. /**
  141. * Scantable.
  142. */
  143. typedef struct ScanTable{
  144. const uint8_t *scantable;
  145. uint8_t permutated[64];
  146. uint8_t raster_end[64];
  147. #ifdef ARCH_POWERPC
  148. /** Used by dct_quantize_altivec to find last-non-zero */
  149. DECLARE_ALIGNED(16, uint8_t, inverse[64]);
  150. #endif
  151. } ScanTable;
  152. void ff_init_scantable(uint8_t *, ScanTable *st, const uint8_t *src_scantable);
  153. void ff_emulated_edge_mc(uint8_t *buf, uint8_t *src, int linesize,
  154. int block_w, int block_h,
  155. int src_x, int src_y, int w, int h);
  156. /**
  157. * DSPContext.
  158. */
  159. typedef struct DSPContext {
  160. /* pixel ops : interface with DCT */
  161. void (*get_pixels)(DCTELEM *block/*align 16*/, const uint8_t *pixels/*align 8*/, int line_size);
  162. void (*diff_pixels)(DCTELEM *block/*align 16*/, const uint8_t *s1/*align 8*/, const uint8_t *s2/*align 8*/, int stride);
  163. void (*put_pixels_clamped)(const DCTELEM *block/*align 16*/, uint8_t *pixels/*align 8*/, int line_size);
  164. void (*put_signed_pixels_clamped)(const DCTELEM *block/*align 16*/, uint8_t *pixels/*align 8*/, int line_size);
  165. void (*add_pixels_clamped)(const DCTELEM *block/*align 16*/, uint8_t *pixels/*align 8*/, int line_size);
  166. void (*add_pixels8)(uint8_t *pixels, DCTELEM *block, int line_size);
  167. void (*add_pixels4)(uint8_t *pixels, DCTELEM *block, int line_size);
  168. int (*sum_abs_dctelem)(DCTELEM *block/*align 16*/);
  169. /**
  170. * translational global motion compensation.
  171. */
  172. void (*gmc1)(uint8_t *dst/*align 8*/, uint8_t *src/*align 1*/, int srcStride, int h, int x16, int y16, int rounder);
  173. /**
  174. * global motion compensation.
  175. */
  176. void (*gmc )(uint8_t *dst/*align 8*/, uint8_t *src/*align 1*/, int stride, int h, int ox, int oy,
  177. int dxx, int dxy, int dyx, int dyy, int shift, int r, int width, int height);
  178. void (*clear_block)(DCTELEM *block/*align 16*/);
  179. void (*clear_blocks)(DCTELEM *blocks/*align 16*/);
  180. int (*pix_sum)(uint8_t * pix, int line_size);
  181. int (*pix_norm1)(uint8_t * pix, int line_size);
  182. // 16x16 8x8 4x4 2x2 16x8 8x4 4x2 8x16 4x8 2x4
  183. me_cmp_func sad[5]; /* identical to pix_absAxA except additional void * */
  184. me_cmp_func sse[5];
  185. me_cmp_func hadamard8_diff[5];
  186. me_cmp_func dct_sad[5];
  187. me_cmp_func quant_psnr[5];
  188. me_cmp_func bit[5];
  189. me_cmp_func rd[5];
  190. me_cmp_func vsad[5];
  191. me_cmp_func vsse[5];
  192. me_cmp_func nsse[5];
  193. me_cmp_func w53[5];
  194. me_cmp_func w97[5];
  195. me_cmp_func dct_max[5];
  196. me_cmp_func dct264_sad[5];
  197. me_cmp_func me_pre_cmp[5];
  198. me_cmp_func me_cmp[5];
  199. me_cmp_func me_sub_cmp[5];
  200. me_cmp_func mb_cmp[5];
  201. me_cmp_func ildct_cmp[5]; //only width 16 used
  202. me_cmp_func frame_skip_cmp[5]; //only width 8 used
  203. int (*ssd_int8_vs_int16)(const int8_t *pix1, const int16_t *pix2,
  204. int size);
  205. /**
  206. * Halfpel motion compensation with rounding (a+b+1)>>1.
  207. * this is an array[4][4] of motion compensation functions for 4
  208. * horizontal blocksizes (8,16) and the 4 halfpel positions<br>
  209. * *pixels_tab[ 0->16xH 1->8xH ][ xhalfpel + 2*yhalfpel ]
  210. * @param block destination where the result is stored
  211. * @param pixels source
  212. * @param line_size number of bytes in a horizontal line of block
  213. * @param h height
  214. */
  215. op_pixels_func put_pixels_tab[4][4];
  216. /**
  217. * Halfpel motion compensation with rounding (a+b+1)>>1.
  218. * This is an array[4][4] of motion compensation functions for 4
  219. * horizontal blocksizes (8,16) and the 4 halfpel positions<br>
  220. * *pixels_tab[ 0->16xH 1->8xH ][ xhalfpel + 2*yhalfpel ]
  221. * @param block destination into which the result is averaged (a+b+1)>>1
  222. * @param pixels source
  223. * @param line_size number of bytes in a horizontal line of block
  224. * @param h height
  225. */
  226. op_pixels_func avg_pixels_tab[4][4];
  227. /**
  228. * Halfpel motion compensation with no rounding (a+b)>>1.
  229. * this is an array[2][4] of motion compensation functions for 2
  230. * horizontal blocksizes (8,16) and the 4 halfpel positions<br>
  231. * *pixels_tab[ 0->16xH 1->8xH ][ xhalfpel + 2*yhalfpel ]
  232. * @param block destination where the result is stored
  233. * @param pixels source
  234. * @param line_size number of bytes in a horizontal line of block
  235. * @param h height
  236. */
  237. op_pixels_func put_no_rnd_pixels_tab[4][4];
  238. /**
  239. * Halfpel motion compensation with no rounding (a+b)>>1.
  240. * this is an array[2][4] of motion compensation functions for 2
  241. * horizontal blocksizes (8,16) and the 4 halfpel positions<br>
  242. * *pixels_tab[ 0->16xH 1->8xH ][ xhalfpel + 2*yhalfpel ]
  243. * @param block destination into which the result is averaged (a+b)>>1
  244. * @param pixels source
  245. * @param line_size number of bytes in a horizontal line of block
  246. * @param h height
  247. */
  248. op_pixels_func avg_no_rnd_pixels_tab[4][4];
  249. void (*put_no_rnd_pixels_l2[2])(uint8_t *block/*align width (8 or 16)*/, const uint8_t *a/*align 1*/, const uint8_t *b/*align 1*/, int line_size, int h);
  250. /**
  251. * Thirdpel motion compensation with rounding (a+b+1)>>1.
  252. * this is an array[12] of motion compensation functions for the 9 thirdpe
  253. * positions<br>
  254. * *pixels_tab[ xthirdpel + 4*ythirdpel ]
  255. * @param block destination where the result is stored
  256. * @param pixels source
  257. * @param line_size number of bytes in a horizontal line of block
  258. * @param h height
  259. */
  260. tpel_mc_func put_tpel_pixels_tab[11]; //FIXME individual func ptr per width?
  261. tpel_mc_func avg_tpel_pixels_tab[11]; //FIXME individual func ptr per width?
  262. qpel_mc_func put_qpel_pixels_tab[2][16];
  263. qpel_mc_func avg_qpel_pixels_tab[2][16];
  264. qpel_mc_func put_no_rnd_qpel_pixels_tab[2][16];
  265. qpel_mc_func avg_no_rnd_qpel_pixels_tab[2][16];
  266. qpel_mc_func put_mspel_pixels_tab[8];
  267. /**
  268. * h264 Chroma MC
  269. */
  270. h264_chroma_mc_func put_h264_chroma_pixels_tab[3];
  271. /* This is really one func used in VC-1 decoding */
  272. h264_chroma_mc_func put_no_rnd_h264_chroma_pixels_tab[3];
  273. h264_chroma_mc_func avg_h264_chroma_pixels_tab[3];
  274. qpel_mc_func put_h264_qpel_pixels_tab[4][16];
  275. qpel_mc_func avg_h264_qpel_pixels_tab[4][16];
  276. qpel_mc_func put_2tap_qpel_pixels_tab[4][16];
  277. qpel_mc_func avg_2tap_qpel_pixels_tab[4][16];
  278. h264_weight_func weight_h264_pixels_tab[10];
  279. h264_biweight_func biweight_h264_pixels_tab[10];
  280. /* AVS specific */
  281. qpel_mc_func put_cavs_qpel_pixels_tab[2][16];
  282. qpel_mc_func avg_cavs_qpel_pixels_tab[2][16];
  283. void (*cavs_filter_lv)(uint8_t *pix, int stride, int alpha, int beta, int tc, int bs1, int bs2);
  284. void (*cavs_filter_lh)(uint8_t *pix, int stride, int alpha, int beta, int tc, int bs1, int bs2);
  285. void (*cavs_filter_cv)(uint8_t *pix, int stride, int alpha, int beta, int tc, int bs1, int bs2);
  286. void (*cavs_filter_ch)(uint8_t *pix, int stride, int alpha, int beta, int tc, int bs1, int bs2);
  287. void (*cavs_idct8_add)(uint8_t *dst, DCTELEM *block, int stride);
  288. me_cmp_func pix_abs[2][4];
  289. /* huffyuv specific */
  290. void (*add_bytes)(uint8_t *dst/*align 16*/, uint8_t *src/*align 16*/, int w);
  291. void (*add_bytes_l2)(uint8_t *dst/*align 16*/, uint8_t *src1/*align 16*/, uint8_t *src2/*align 16*/, int w);
  292. void (*diff_bytes)(uint8_t *dst/*align 16*/, uint8_t *src1/*align 16*/, uint8_t *src2/*align 1*/,int w);
  293. /**
  294. * subtract huffyuv's variant of median prediction
  295. * note, this might read from src1[-1], src2[-1]
  296. */
  297. void (*sub_hfyu_median_prediction)(uint8_t *dst, uint8_t *src1, uint8_t *src2, int w, int *left, int *left_top);
  298. /* this might write to dst[w] */
  299. void (*add_png_paeth_prediction)(uint8_t *dst, uint8_t *src, uint8_t *top, int w, int bpp);
  300. void (*bswap_buf)(uint32_t *dst, const uint32_t *src, int w);
  301. void (*h264_v_loop_filter_luma)(uint8_t *pix/*align 16*/, int stride, int alpha, int beta, int8_t *tc0);
  302. void (*h264_h_loop_filter_luma)(uint8_t *pix/*align 4 */, int stride, int alpha, int beta, int8_t *tc0);
  303. /* v/h_loop_filter_luma_intra: align 16 */
  304. void (*h264_v_loop_filter_luma_intra)(uint8_t *pix, int stride, int alpha, int beta);
  305. void (*h264_h_loop_filter_luma_intra)(uint8_t *pix, int stride, int alpha, int beta);
  306. void (*h264_v_loop_filter_chroma)(uint8_t *pix/*align 8*/, int stride, int alpha, int beta, int8_t *tc0);
  307. void (*h264_h_loop_filter_chroma)(uint8_t *pix/*align 4*/, int stride, int alpha, int beta, int8_t *tc0);
  308. void (*h264_v_loop_filter_chroma_intra)(uint8_t *pix/*align 8*/, int stride, int alpha, int beta);
  309. void (*h264_h_loop_filter_chroma_intra)(uint8_t *pix/*align 8*/, int stride, int alpha, int beta);
  310. // h264_loop_filter_strength: simd only. the C version is inlined in h264.c
  311. void (*h264_loop_filter_strength)(int16_t bS[2][4][4], uint8_t nnz[40], int8_t ref[2][40], int16_t mv[2][40][2],
  312. int bidir, int edges, int step, int mask_mv0, int mask_mv1, int field);
  313. void (*h263_v_loop_filter)(uint8_t *src, int stride, int qscale);
  314. void (*h263_h_loop_filter)(uint8_t *src, int stride, int qscale);
  315. void (*h261_loop_filter)(uint8_t *src, int stride);
  316. void (*x8_v_loop_filter)(uint8_t *src, int stride, int qscale);
  317. void (*x8_h_loop_filter)(uint8_t *src, int stride, int qscale);
  318. void (*vp3_v_loop_filter)(uint8_t *src, int stride, int *bounding_values);
  319. void (*vp3_h_loop_filter)(uint8_t *src, int stride, int *bounding_values);
  320. /* assume len is a multiple of 4, and arrays are 16-byte aligned */
  321. void (*vorbis_inverse_coupling)(float *mag, float *ang, int blocksize);
  322. void (*ac3_downmix)(float (*samples)[256], float (*matrix)[2], int out_ch, int in_ch, int len);
  323. /* no alignment needed */
  324. void (*flac_compute_autocorr)(const int32_t *data, int len, int lag, double *autoc);
  325. /* assume len is a multiple of 8, and arrays are 16-byte aligned */
  326. void (*vector_fmul)(float *dst, const float *src, int len);
  327. void (*vector_fmul_reverse)(float *dst, const float *src0, const float *src1, int len);
  328. /* assume len is a multiple of 8, and src arrays are 16-byte aligned */
  329. void (*vector_fmul_add_add)(float *dst, const float *src0, const float *src1, const float *src2, int src3, int len, int step);
  330. /* assume len is a multiple of 4, and arrays are 16-byte aligned */
  331. void (*vector_fmul_window)(float *dst, const float *src0, const float *src1, const float *win, float add_bias, int len);
  332. /* assume len is a multiple of 8, and arrays are 16-byte aligned */
  333. void (*int32_to_float_fmul_scalar)(float *dst, const int *src, float mul, int len);
  334. /* C version: convert floats from the range [384.0,386.0] to ints in [-32768,32767]
  335. * simd versions: convert floats from [-32768.0,32767.0] without rescaling and arrays are 16byte aligned */
  336. void (*float_to_int16)(int16_t *dst, const float *src, long len);
  337. void (*float_to_int16_interleave)(int16_t *dst, const float **src, long len, int channels);
  338. /* (I)DCT */
  339. void (*fdct)(DCTELEM *block/* align 16*/);
  340. void (*fdct248)(DCTELEM *block/* align 16*/);
  341. /* IDCT really*/
  342. void (*idct)(DCTELEM *block/* align 16*/);
  343. /**
  344. * block -> idct -> clip to unsigned 8 bit -> dest.
  345. * (-1392, 0, 0, ...) -> idct -> (-174, -174, ...) -> put -> (0, 0, ...)
  346. * @param line_size size in bytes of a horizontal line of dest
  347. */
  348. void (*idct_put)(uint8_t *dest/*align 8*/, int line_size, DCTELEM *block/*align 16*/);
  349. /**
  350. * block -> idct -> add dest -> clip to unsigned 8 bit -> dest.
  351. * @param line_size size in bytes of a horizontal line of dest
  352. */
  353. void (*idct_add)(uint8_t *dest/*align 8*/, int line_size, DCTELEM *block/*align 16*/);
  354. /**
  355. * idct input permutation.
  356. * several optimized IDCTs need a permutated input (relative to the normal order of the reference
  357. * IDCT)
  358. * this permutation must be performed before the idct_put/add, note, normally this can be merged
  359. * with the zigzag/alternate scan<br>
  360. * an example to avoid confusion:
  361. * - (->decode coeffs -> zigzag reorder -> dequant -> reference idct ->...)
  362. * - (x -> referece dct -> reference idct -> x)
  363. * - (x -> referece dct -> simple_mmx_perm = idct_permutation -> simple_idct_mmx -> x)
  364. * - (->decode coeffs -> zigzag reorder -> simple_mmx_perm -> dequant -> simple_idct_mmx ->...)
  365. */
  366. uint8_t idct_permutation[64];
  367. int idct_permutation_type;
  368. #define FF_NO_IDCT_PERM 1
  369. #define FF_LIBMPEG2_IDCT_PERM 2
  370. #define FF_SIMPLE_IDCT_PERM 3
  371. #define FF_TRANSPOSE_IDCT_PERM 4
  372. #define FF_PARTTRANS_IDCT_PERM 5
  373. #define FF_SSE2_IDCT_PERM 6
  374. int (*try_8x8basis)(int16_t rem[64], int16_t weight[64], int16_t basis[64], int scale);
  375. void (*add_8x8basis)(int16_t rem[64], int16_t basis[64], int scale);
  376. #define BASIS_SHIFT 16
  377. #define RECON_SHIFT 6
  378. void (*draw_edges)(uint8_t *buf, int wrap, int width, int height, int w);
  379. #define EDGE_WIDTH 16
  380. /* h264 functions */
  381. void (*h264_idct_add)(uint8_t *dst/*align 4*/, DCTELEM *block/*align 16*/, int stride);
  382. void (*h264_idct8_add)(uint8_t *dst/*align 8*/, DCTELEM *block/*align 16*/, int stride);
  383. void (*h264_idct_dc_add)(uint8_t *dst/*align 4*/, DCTELEM *block/*align 16*/, int stride);
  384. void (*h264_idct8_dc_add)(uint8_t *dst/*align 8*/, DCTELEM *block/*align 16*/, int stride);
  385. void (*h264_dct)(DCTELEM block[4][4]);
  386. void (*h264_idct_add16)(uint8_t *dst/*align 16*/, const int *blockoffset, DCTELEM *block/*align 16*/, int stride, const uint8_t nnzc[6*8]);
  387. void (*h264_idct8_add4)(uint8_t *dst/*align 16*/, const int *blockoffset, DCTELEM *block/*align 16*/, int stride, const uint8_t nnzc[6*8]);
  388. void (*h264_idct_add8)(uint8_t **dst/*align 16*/, const int *blockoffset, DCTELEM *block/*align 16*/, int stride, const uint8_t nnzc[6*8]);
  389. void (*h264_idct_add16intra)(uint8_t *dst/*align 16*/, const int *blockoffset, DCTELEM *block/*align 16*/, int stride, const uint8_t nnzc[6*8]);
  390. /* snow wavelet */
  391. void (*vertical_compose97i)(IDWTELEM *b0, IDWTELEM *b1, IDWTELEM *b2, IDWTELEM *b3, IDWTELEM *b4, IDWTELEM *b5, int width);
  392. void (*horizontal_compose97i)(IDWTELEM *b, int width);
  393. void (*inner_add_yblock)(const uint8_t *obmc, const int obmc_stride, uint8_t * * block, int b_w, int b_h, int src_x, int src_y, int src_stride, slice_buffer * sb, int add, uint8_t * dst8);
  394. void (*prefetch)(void *mem, int stride, int h);
  395. void (*shrink[4])(uint8_t *dst, int dst_wrap, const uint8_t *src, int src_wrap, int width, int height);
  396. /* vc1 functions */
  397. void (*vc1_inv_trans_8x8)(DCTELEM *b);
  398. void (*vc1_inv_trans_8x4)(uint8_t *dest, int line_size, DCTELEM *block);
  399. void (*vc1_inv_trans_4x8)(uint8_t *dest, int line_size, DCTELEM *block);
  400. void (*vc1_inv_trans_4x4)(uint8_t *dest, int line_size, DCTELEM *block);
  401. void (*vc1_v_overlap)(uint8_t* src, int stride);
  402. void (*vc1_h_overlap)(uint8_t* src, int stride);
  403. /* put 8x8 block with bicubic interpolation and quarterpel precision
  404. * last argument is actually round value instead of height
  405. */
  406. op_pixels_func put_vc1_mspel_pixels_tab[16];
  407. /* intrax8 functions */
  408. void (*x8_spatial_compensation[12])(uint8_t *src , uint8_t *dst, int linesize);
  409. void (*x8_setup_spatial_compensation)(uint8_t *src, uint8_t *dst, int linesize,
  410. int * range, int * sum, int edges);
  411. /* ape functions */
  412. /**
  413. * Add contents of the second vector to the first one.
  414. * @param len length of vectors, should be multiple of 16
  415. */
  416. void (*add_int16)(int16_t *v1/*align 16*/, int16_t *v2, int len);
  417. /**
  418. * Add contents of the second vector to the first one.
  419. * @param len length of vectors, should be multiple of 16
  420. */
  421. void (*sub_int16)(int16_t *v1/*align 16*/, int16_t *v2, int len);
  422. /**
  423. * Calculate scalar product of two vectors.
  424. * @param len length of vectors, should be multiple of 16
  425. * @param shift number of bits to discard from product
  426. */
  427. int32_t (*scalarproduct_int16)(int16_t *v1, int16_t *v2/*align 16*/, int len, int shift);
  428. /* rv30 functions */
  429. qpel_mc_func put_rv30_tpel_pixels_tab[4][16];
  430. qpel_mc_func avg_rv30_tpel_pixels_tab[4][16];
  431. /* rv40 functions */
  432. qpel_mc_func put_rv40_qpel_pixels_tab[4][16];
  433. qpel_mc_func avg_rv40_qpel_pixels_tab[4][16];
  434. h264_chroma_mc_func put_rv40_chroma_pixels_tab[3];
  435. h264_chroma_mc_func avg_rv40_chroma_pixels_tab[3];
  436. } DSPContext;
  437. void dsputil_static_init(void);
  438. void dsputil_init(DSPContext* p, AVCodecContext *avctx);
  439. int ff_check_alignment(void);
  440. /**
  441. * permute block according to permuatation.
  442. * @param last last non zero element in scantable order
  443. */
  444. void ff_block_permute(DCTELEM *block, uint8_t *permutation, const uint8_t *scantable, int last);
  445. void ff_set_cmp(DSPContext* c, me_cmp_func *cmp, int type);
  446. #define BYTE_VEC32(c) ((c)*0x01010101UL)
  447. static inline uint32_t rnd_avg32(uint32_t a, uint32_t b)
  448. {
  449. return (a | b) - (((a ^ b) & ~BYTE_VEC32(0x01)) >> 1);
  450. }
  451. static inline uint32_t no_rnd_avg32(uint32_t a, uint32_t b)
  452. {
  453. return (a & b) + (((a ^ b) & ~BYTE_VEC32(0x01)) >> 1);
  454. }
  455. static inline int get_penalty_factor(int lambda, int lambda2, int type){
  456. switch(type&0xFF){
  457. default:
  458. case FF_CMP_SAD:
  459. return lambda>>FF_LAMBDA_SHIFT;
  460. case FF_CMP_DCT:
  461. return (3*lambda)>>(FF_LAMBDA_SHIFT+1);
  462. case FF_CMP_W53:
  463. return (4*lambda)>>(FF_LAMBDA_SHIFT);
  464. case FF_CMP_W97:
  465. return (2*lambda)>>(FF_LAMBDA_SHIFT);
  466. case FF_CMP_SATD:
  467. case FF_CMP_DCT264:
  468. return (2*lambda)>>FF_LAMBDA_SHIFT;
  469. case FF_CMP_RD:
  470. case FF_CMP_PSNR:
  471. case FF_CMP_SSE:
  472. case FF_CMP_NSSE:
  473. return lambda2>>FF_LAMBDA_SHIFT;
  474. case FF_CMP_BIT:
  475. return 1;
  476. }
  477. }
  478. /**
  479. * Empty mmx state.
  480. * this must be called between any dsp function and float/double code.
  481. * for example sin(); dsp->idct_put(); emms_c(); cos()
  482. */
  483. #define emms_c()
  484. /* should be defined by architectures supporting
  485. one or more MultiMedia extension */
  486. int mm_support(void);
  487. void dsputil_init_alpha(DSPContext* c, AVCodecContext *avctx);
  488. void dsputil_init_arm(DSPContext* c, AVCodecContext *avctx);
  489. void dsputil_init_bfin(DSPContext* c, AVCodecContext *avctx);
  490. void dsputil_init_mlib(DSPContext* c, AVCodecContext *avctx);
  491. void dsputil_init_mmi(DSPContext* c, AVCodecContext *avctx);
  492. void dsputil_init_mmx(DSPContext* c, AVCodecContext *avctx);
  493. void dsputil_init_ppc(DSPContext* c, AVCodecContext *avctx);
  494. void dsputil_init_sh4(DSPContext* c, AVCodecContext *avctx);
  495. void dsputil_init_vis(DSPContext* c, AVCodecContext *avctx);
  496. #define DECLARE_ALIGNED_16(t, v) DECLARE_ALIGNED(16, t, v)
  497. #if defined(HAVE_MMX)
  498. #undef emms_c
  499. extern int mm_flags;
  500. void add_pixels_clamped_mmx(const DCTELEM *block, uint8_t *pixels, int line_size);
  501. void put_pixels_clamped_mmx(const DCTELEM *block, uint8_t *pixels, int line_size);
  502. void put_signed_pixels_clamped_mmx(const DCTELEM *block, uint8_t *pixels, int line_size);
  503. static inline void emms(void)
  504. {
  505. __asm__ volatile ("emms;":::"memory");
  506. }
  507. #define emms_c() \
  508. {\
  509. if (mm_flags & FF_MM_MMX)\
  510. emms();\
  511. }
  512. void dsputil_init_pix_mmx(DSPContext* c, AVCodecContext *avctx);
  513. #elif defined(ARCH_ARM)
  514. extern int mm_flags;
  515. #ifdef HAVE_NEON
  516. # define DECLARE_ALIGNED_8(t, v) DECLARE_ALIGNED(16, t, v)
  517. # define STRIDE_ALIGN 16
  518. #endif
  519. #elif defined(ARCH_POWERPC)
  520. extern int mm_flags;
  521. #define DECLARE_ALIGNED_8(t, v) DECLARE_ALIGNED(16, t, v)
  522. #define STRIDE_ALIGN 16
  523. #elif defined(HAVE_MMI)
  524. #define DECLARE_ALIGNED_8(t, v) DECLARE_ALIGNED(16, t, v)
  525. #define STRIDE_ALIGN 16
  526. #else
  527. #define mm_flags 0
  528. #define mm_support() 0
  529. #endif
  530. #ifndef DECLARE_ALIGNED_8
  531. # define DECLARE_ALIGNED_8(t, v) DECLARE_ALIGNED(8, t, v)
  532. #endif
  533. #ifndef STRIDE_ALIGN
  534. # define STRIDE_ALIGN 8
  535. #endif
  536. /* PSNR */
  537. void get_psnr(uint8_t *orig_image[3], uint8_t *coded_image[3],
  538. int orig_linesize[3], int coded_linesize,
  539. AVCodecContext *avctx);
  540. /* FFT computation */
  541. /* NOTE: soon integer code will be added, so you must use the
  542. FFTSample type */
  543. typedef float FFTSample;
  544. struct MDCTContext;
  545. typedef struct FFTComplex {
  546. FFTSample re, im;
  547. } FFTComplex;
  548. typedef struct FFTContext {
  549. int nbits;
  550. int inverse;
  551. uint16_t *revtab;
  552. FFTComplex *exptab;
  553. FFTComplex *exptab1; /* only used by SSE code */
  554. FFTComplex *tmp_buf;
  555. void (*fft_permute)(struct FFTContext *s, FFTComplex *z);
  556. void (*fft_calc)(struct FFTContext *s, FFTComplex *z);
  557. void (*imdct_calc)(struct MDCTContext *s, FFTSample *output, const FFTSample *input);
  558. void (*imdct_half)(struct MDCTContext *s, FFTSample *output, const FFTSample *input);
  559. } FFTContext;
  560. int ff_fft_init(FFTContext *s, int nbits, int inverse);
  561. void ff_fft_permute_c(FFTContext *s, FFTComplex *z);
  562. void ff_fft_permute_sse(FFTContext *s, FFTComplex *z);
  563. void ff_fft_calc_c(FFTContext *s, FFTComplex *z);
  564. void ff_fft_calc_sse(FFTContext *s, FFTComplex *z);
  565. void ff_fft_calc_3dn(FFTContext *s, FFTComplex *z);
  566. void ff_fft_calc_3dn2(FFTContext *s, FFTComplex *z);
  567. void ff_fft_calc_altivec(FFTContext *s, FFTComplex *z);
  568. static inline void ff_fft_permute(FFTContext *s, FFTComplex *z)
  569. {
  570. s->fft_permute(s, z);
  571. }
  572. static inline void ff_fft_calc(FFTContext *s, FFTComplex *z)
  573. {
  574. s->fft_calc(s, z);
  575. }
  576. void ff_fft_end(FFTContext *s);
  577. /* MDCT computation */
  578. typedef struct MDCTContext {
  579. int n; /* size of MDCT (i.e. number of input data * 2) */
  580. int nbits; /* n = 2^nbits */
  581. /* pre/post rotation tables */
  582. FFTSample *tcos;
  583. FFTSample *tsin;
  584. FFTContext fft;
  585. } MDCTContext;
  586. static inline void ff_imdct_calc(MDCTContext *s, FFTSample *output, const FFTSample *input)
  587. {
  588. s->fft.imdct_calc(s, output, input);
  589. }
  590. static inline void ff_imdct_half(MDCTContext *s, FFTSample *output, const FFTSample *input)
  591. {
  592. s->fft.imdct_half(s, output, input);
  593. }
  594. /**
  595. * Generate a Kaiser-Bessel Derived Window.
  596. * @param window pointer to half window
  597. * @param alpha determines window shape
  598. * @param n size of half window
  599. */
  600. void ff_kbd_window_init(float *window, float alpha, int n);
  601. /**
  602. * Generate a sine window.
  603. * @param window pointer to half window
  604. * @param n size of half window
  605. */
  606. void ff_sine_window_init(float *window, int n);
  607. extern float ff_sine_128 [ 128];
  608. extern float ff_sine_256 [ 256];
  609. extern float ff_sine_512 [ 512];
  610. extern float ff_sine_1024[1024];
  611. extern float ff_sine_2048[2048];
  612. extern float *ff_sine_windows[5];
  613. int ff_mdct_init(MDCTContext *s, int nbits, int inverse);
  614. void ff_imdct_calc_c(MDCTContext *s, FFTSample *output, const FFTSample *input);
  615. void ff_imdct_half_c(MDCTContext *s, FFTSample *output, const FFTSample *input);
  616. void ff_imdct_calc_3dn(MDCTContext *s, FFTSample *output, const FFTSample *input);
  617. void ff_imdct_half_3dn(MDCTContext *s, FFTSample *output, const FFTSample *input);
  618. void ff_imdct_calc_3dn2(MDCTContext *s, FFTSample *output, const FFTSample *input);
  619. void ff_imdct_half_3dn2(MDCTContext *s, FFTSample *output, const FFTSample *input);
  620. void ff_imdct_calc_sse(MDCTContext *s, FFTSample *output, const FFTSample *input);
  621. void ff_imdct_half_sse(MDCTContext *s, FFTSample *output, const FFTSample *input);
  622. void ff_mdct_calc(MDCTContext *s, FFTSample *out, const FFTSample *input);
  623. void ff_mdct_end(MDCTContext *s);
  624. #define WRAPPER8_16(name8, name16)\
  625. static int name16(void /*MpegEncContext*/ *s, uint8_t *dst, uint8_t *src, int stride, int h){\
  626. return name8(s, dst , src , stride, h)\
  627. +name8(s, dst+8 , src+8 , stride, h);\
  628. }
  629. #define WRAPPER8_16_SQ(name8, name16)\
  630. static int name16(void /*MpegEncContext*/ *s, uint8_t *dst, uint8_t *src, int stride, int h){\
  631. int score=0;\
  632. score +=name8(s, dst , src , stride, 8);\
  633. score +=name8(s, dst+8 , src+8 , stride, 8);\
  634. if(h==16){\
  635. dst += 8*stride;\
  636. src += 8*stride;\
  637. score +=name8(s, dst , src , stride, 8);\
  638. score +=name8(s, dst+8 , src+8 , stride, 8);\
  639. }\
  640. return score;\
  641. }
  642. static inline void copy_block2(uint8_t *dst, uint8_t *src, int dstStride, int srcStride, int h)
  643. {
  644. int i;
  645. for(i=0; i<h; i++)
  646. {
  647. AV_WN16(dst , AV_RN16(src ));
  648. dst+=dstStride;
  649. src+=srcStride;
  650. }
  651. }
  652. static inline void copy_block4(uint8_t *dst, uint8_t *src, int dstStride, int srcStride, int h)
  653. {
  654. int i;
  655. for(i=0; i<h; i++)
  656. {
  657. AV_WN32(dst , AV_RN32(src ));
  658. dst+=dstStride;
  659. src+=srcStride;
  660. }
  661. }
  662. static inline void copy_block8(uint8_t *dst, uint8_t *src, int dstStride, int srcStride, int h)
  663. {
  664. int i;
  665. for(i=0; i<h; i++)
  666. {
  667. AV_WN32(dst , AV_RN32(src ));
  668. AV_WN32(dst+4 , AV_RN32(src+4 ));
  669. dst+=dstStride;
  670. src+=srcStride;
  671. }
  672. }
  673. static inline void copy_block9(uint8_t *dst, uint8_t *src, int dstStride, int srcStride, int h)
  674. {
  675. int i;
  676. for(i=0; i<h; i++)
  677. {
  678. AV_WN32(dst , AV_RN32(src ));
  679. AV_WN32(dst+4 , AV_RN32(src+4 ));
  680. dst[8]= src[8];
  681. dst+=dstStride;
  682. src+=srcStride;
  683. }
  684. }
  685. static inline void copy_block16(uint8_t *dst, uint8_t *src, int dstStride, int srcStride, int h)
  686. {
  687. int i;
  688. for(i=0; i<h; i++)
  689. {
  690. AV_WN32(dst , AV_RN32(src ));
  691. AV_WN32(dst+4 , AV_RN32(src+4 ));
  692. AV_WN32(dst+8 , AV_RN32(src+8 ));
  693. AV_WN32(dst+12, AV_RN32(src+12));
  694. dst+=dstStride;
  695. src+=srcStride;
  696. }
  697. }
  698. static inline void copy_block17(uint8_t *dst, uint8_t *src, int dstStride, int srcStride, int h)
  699. {
  700. int i;
  701. for(i=0; i<h; i++)
  702. {
  703. AV_WN32(dst , AV_RN32(src ));
  704. AV_WN32(dst+4 , AV_RN32(src+4 ));
  705. AV_WN32(dst+8 , AV_RN32(src+8 ));
  706. AV_WN32(dst+12, AV_RN32(src+12));
  707. dst[16]= src[16];
  708. dst+=dstStride;
  709. src+=srcStride;
  710. }
  711. }
  712. #endif /* AVCODEC_DSPUTIL_H */