me_cmp.c 40 KB

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  1. /*
  2. * DSP utils
  3. * Copyright (c) 2000, 2001 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. #include <stddef.h>
  23. #include "libavutil/attributes.h"
  24. #include "libavutil/internal.h"
  25. #include "libavutil/mem_internal.h"
  26. #include "avcodec.h"
  27. #include "copy_block.h"
  28. #include "simple_idct.h"
  29. #include "me_cmp.h"
  30. #include "mpegvideoenc.h"
  31. #include "config.h"
  32. #include "config_components.h"
  33. /* (i - 256) * (i - 256) */
  34. const uint32_t ff_square_tab[512] = {
  35. 65536, 65025, 64516, 64009, 63504, 63001, 62500, 62001, 61504, 61009, 60516, 60025, 59536, 59049, 58564, 58081,
  36. 57600, 57121, 56644, 56169, 55696, 55225, 54756, 54289, 53824, 53361, 52900, 52441, 51984, 51529, 51076, 50625,
  37. 50176, 49729, 49284, 48841, 48400, 47961, 47524, 47089, 46656, 46225, 45796, 45369, 44944, 44521, 44100, 43681,
  38. 43264, 42849, 42436, 42025, 41616, 41209, 40804, 40401, 40000, 39601, 39204, 38809, 38416, 38025, 37636, 37249,
  39. 36864, 36481, 36100, 35721, 35344, 34969, 34596, 34225, 33856, 33489, 33124, 32761, 32400, 32041, 31684, 31329,
  40. 30976, 30625, 30276, 29929, 29584, 29241, 28900, 28561, 28224, 27889, 27556, 27225, 26896, 26569, 26244, 25921,
  41. 25600, 25281, 24964, 24649, 24336, 24025, 23716, 23409, 23104, 22801, 22500, 22201, 21904, 21609, 21316, 21025,
  42. 20736, 20449, 20164, 19881, 19600, 19321, 19044, 18769, 18496, 18225, 17956, 17689, 17424, 17161, 16900, 16641,
  43. 16384, 16129, 15876, 15625, 15376, 15129, 14884, 14641, 14400, 14161, 13924, 13689, 13456, 13225, 12996, 12769,
  44. 12544, 12321, 12100, 11881, 11664, 11449, 11236, 11025, 10816, 10609, 10404, 10201, 10000, 9801, 9604, 9409,
  45. 9216, 9025, 8836, 8649, 8464, 8281, 8100, 7921, 7744, 7569, 7396, 7225, 7056, 6889, 6724, 6561,
  46. 6400, 6241, 6084, 5929, 5776, 5625, 5476, 5329, 5184, 5041, 4900, 4761, 4624, 4489, 4356, 4225,
  47. 4096, 3969, 3844, 3721, 3600, 3481, 3364, 3249, 3136, 3025, 2916, 2809, 2704, 2601, 2500, 2401,
  48. 2304, 2209, 2116, 2025, 1936, 1849, 1764, 1681, 1600, 1521, 1444, 1369, 1296, 1225, 1156, 1089,
  49. 1024, 961, 900, 841, 784, 729, 676, 625, 576, 529, 484, 441, 400, 361, 324, 289,
  50. 256, 225, 196, 169, 144, 121, 100, 81, 64, 49, 36, 25, 16, 9, 4, 1,
  51. 0, 1, 4, 9, 16, 25, 36, 49, 64, 81, 100, 121, 144, 169, 196, 225,
  52. 256, 289, 324, 361, 400, 441, 484, 529, 576, 625, 676, 729, 784, 841, 900, 961,
  53. 1024, 1089, 1156, 1225, 1296, 1369, 1444, 1521, 1600, 1681, 1764, 1849, 1936, 2025, 2116, 2209,
  54. 2304, 2401, 2500, 2601, 2704, 2809, 2916, 3025, 3136, 3249, 3364, 3481, 3600, 3721, 3844, 3969,
  55. 4096, 4225, 4356, 4489, 4624, 4761, 4900, 5041, 5184, 5329, 5476, 5625, 5776, 5929, 6084, 6241,
  56. 6400, 6561, 6724, 6889, 7056, 7225, 7396, 7569, 7744, 7921, 8100, 8281, 8464, 8649, 8836, 9025,
  57. 9216, 9409, 9604, 9801, 10000, 10201, 10404, 10609, 10816, 11025, 11236, 11449, 11664, 11881, 12100, 12321,
  58. 12544, 12769, 12996, 13225, 13456, 13689, 13924, 14161, 14400, 14641, 14884, 15129, 15376, 15625, 15876, 16129,
  59. 16384, 16641, 16900, 17161, 17424, 17689, 17956, 18225, 18496, 18769, 19044, 19321, 19600, 19881, 20164, 20449,
  60. 20736, 21025, 21316, 21609, 21904, 22201, 22500, 22801, 23104, 23409, 23716, 24025, 24336, 24649, 24964, 25281,
  61. 25600, 25921, 26244, 26569, 26896, 27225, 27556, 27889, 28224, 28561, 28900, 29241, 29584, 29929, 30276, 30625,
  62. 30976, 31329, 31684, 32041, 32400, 32761, 33124, 33489, 33856, 34225, 34596, 34969, 35344, 35721, 36100, 36481,
  63. 36864, 37249, 37636, 38025, 38416, 38809, 39204, 39601, 40000, 40401, 40804, 41209, 41616, 42025, 42436, 42849,
  64. 43264, 43681, 44100, 44521, 44944, 45369, 45796, 46225, 46656, 47089, 47524, 47961, 48400, 48841, 49284, 49729,
  65. 50176, 50625, 51076, 51529, 51984, 52441, 52900, 53361, 53824, 54289, 54756, 55225, 55696, 56169, 56644, 57121,
  66. 57600, 58081, 58564, 59049, 59536, 60025, 60516, 61009, 61504, 62001, 62500, 63001, 63504, 64009, 64516, 65025,
  67. };
  68. static int sse4_c(MpegEncContext *v, const uint8_t *pix1, const uint8_t *pix2,
  69. ptrdiff_t stride, int h)
  70. {
  71. int s = 0, i;
  72. const uint32_t *sq = ff_square_tab + 256;
  73. for (i = 0; i < h; i++) {
  74. s += sq[pix1[0] - pix2[0]];
  75. s += sq[pix1[1] - pix2[1]];
  76. s += sq[pix1[2] - pix2[2]];
  77. s += sq[pix1[3] - pix2[3]];
  78. pix1 += stride;
  79. pix2 += stride;
  80. }
  81. return s;
  82. }
  83. static int sse8_c(MpegEncContext *v, const uint8_t *pix1, const uint8_t *pix2,
  84. ptrdiff_t stride, int h)
  85. {
  86. int s = 0, i;
  87. const uint32_t *sq = ff_square_tab + 256;
  88. for (i = 0; i < h; i++) {
  89. s += sq[pix1[0] - pix2[0]];
  90. s += sq[pix1[1] - pix2[1]];
  91. s += sq[pix1[2] - pix2[2]];
  92. s += sq[pix1[3] - pix2[3]];
  93. s += sq[pix1[4] - pix2[4]];
  94. s += sq[pix1[5] - pix2[5]];
  95. s += sq[pix1[6] - pix2[6]];
  96. s += sq[pix1[7] - pix2[7]];
  97. pix1 += stride;
  98. pix2 += stride;
  99. }
  100. return s;
  101. }
  102. static int sse16_c(MpegEncContext *v, const uint8_t *pix1, const uint8_t *pix2,
  103. ptrdiff_t stride, int h)
  104. {
  105. int s = 0, i;
  106. const uint32_t *sq = ff_square_tab + 256;
  107. for (i = 0; i < h; i++) {
  108. s += sq[pix1[0] - pix2[0]];
  109. s += sq[pix1[1] - pix2[1]];
  110. s += sq[pix1[2] - pix2[2]];
  111. s += sq[pix1[3] - pix2[3]];
  112. s += sq[pix1[4] - pix2[4]];
  113. s += sq[pix1[5] - pix2[5]];
  114. s += sq[pix1[6] - pix2[6]];
  115. s += sq[pix1[7] - pix2[7]];
  116. s += sq[pix1[8] - pix2[8]];
  117. s += sq[pix1[9] - pix2[9]];
  118. s += sq[pix1[10] - pix2[10]];
  119. s += sq[pix1[11] - pix2[11]];
  120. s += sq[pix1[12] - pix2[12]];
  121. s += sq[pix1[13] - pix2[13]];
  122. s += sq[pix1[14] - pix2[14]];
  123. s += sq[pix1[15] - pix2[15]];
  124. pix1 += stride;
  125. pix2 += stride;
  126. }
  127. return s;
  128. }
  129. static int sum_abs_dctelem_c(const int16_t *block)
  130. {
  131. int sum = 0, i;
  132. for (i = 0; i < 64; i++)
  133. sum += FFABS(block[i]);
  134. return sum;
  135. }
  136. #define avg2(a, b) (((a) + (b) + 1) >> 1)
  137. #define avg4(a, b, c, d) (((a) + (b) + (c) + (d) + 2) >> 2)
  138. static inline int pix_abs16_c(MpegEncContext *v, const uint8_t *pix1, const uint8_t *pix2,
  139. ptrdiff_t stride, int h)
  140. {
  141. int s = 0, i;
  142. for (i = 0; i < h; i++) {
  143. s += abs(pix1[0] - pix2[0]);
  144. s += abs(pix1[1] - pix2[1]);
  145. s += abs(pix1[2] - pix2[2]);
  146. s += abs(pix1[3] - pix2[3]);
  147. s += abs(pix1[4] - pix2[4]);
  148. s += abs(pix1[5] - pix2[5]);
  149. s += abs(pix1[6] - pix2[6]);
  150. s += abs(pix1[7] - pix2[7]);
  151. s += abs(pix1[8] - pix2[8]);
  152. s += abs(pix1[9] - pix2[9]);
  153. s += abs(pix1[10] - pix2[10]);
  154. s += abs(pix1[11] - pix2[11]);
  155. s += abs(pix1[12] - pix2[12]);
  156. s += abs(pix1[13] - pix2[13]);
  157. s += abs(pix1[14] - pix2[14]);
  158. s += abs(pix1[15] - pix2[15]);
  159. pix1 += stride;
  160. pix2 += stride;
  161. }
  162. return s;
  163. }
  164. static inline int pix_median_abs16_c(MpegEncContext *v, const uint8_t *pix1, const uint8_t *pix2,
  165. ptrdiff_t stride, int h)
  166. {
  167. int s = 0, i, j;
  168. #define V(x) (pix1[x] - pix2[x])
  169. s += abs(V(0));
  170. s += abs(V(1) - V(0));
  171. s += abs(V(2) - V(1));
  172. s += abs(V(3) - V(2));
  173. s += abs(V(4) - V(3));
  174. s += abs(V(5) - V(4));
  175. s += abs(V(6) - V(5));
  176. s += abs(V(7) - V(6));
  177. s += abs(V(8) - V(7));
  178. s += abs(V(9) - V(8));
  179. s += abs(V(10) - V(9));
  180. s += abs(V(11) - V(10));
  181. s += abs(V(12) - V(11));
  182. s += abs(V(13) - V(12));
  183. s += abs(V(14) - V(13));
  184. s += abs(V(15) - V(14));
  185. pix1 += stride;
  186. pix2 += stride;
  187. for (i = 1; i < h; i++) {
  188. s += abs(V(0) - V(-stride));
  189. for (j = 1; j < 16; j++)
  190. s += abs(V(j) - mid_pred(V(j-stride), V(j-1), V(j-stride) + V(j-1) - V(j-stride-1)));
  191. pix1 += stride;
  192. pix2 += stride;
  193. }
  194. #undef V
  195. return s;
  196. }
  197. static int pix_abs16_x2_c(MpegEncContext *v, const uint8_t *pix1, const uint8_t *pix2,
  198. ptrdiff_t stride, int h)
  199. {
  200. int s = 0, i;
  201. for (i = 0; i < h; i++) {
  202. s += abs(pix1[0] - avg2(pix2[0], pix2[1]));
  203. s += abs(pix1[1] - avg2(pix2[1], pix2[2]));
  204. s += abs(pix1[2] - avg2(pix2[2], pix2[3]));
  205. s += abs(pix1[3] - avg2(pix2[3], pix2[4]));
  206. s += abs(pix1[4] - avg2(pix2[4], pix2[5]));
  207. s += abs(pix1[5] - avg2(pix2[5], pix2[6]));
  208. s += abs(pix1[6] - avg2(pix2[6], pix2[7]));
  209. s += abs(pix1[7] - avg2(pix2[7], pix2[8]));
  210. s += abs(pix1[8] - avg2(pix2[8], pix2[9]));
  211. s += abs(pix1[9] - avg2(pix2[9], pix2[10]));
  212. s += abs(pix1[10] - avg2(pix2[10], pix2[11]));
  213. s += abs(pix1[11] - avg2(pix2[11], pix2[12]));
  214. s += abs(pix1[12] - avg2(pix2[12], pix2[13]));
  215. s += abs(pix1[13] - avg2(pix2[13], pix2[14]));
  216. s += abs(pix1[14] - avg2(pix2[14], pix2[15]));
  217. s += abs(pix1[15] - avg2(pix2[15], pix2[16]));
  218. pix1 += stride;
  219. pix2 += stride;
  220. }
  221. return s;
  222. }
  223. static int pix_abs16_y2_c(MpegEncContext *v, const uint8_t *pix1, const uint8_t *pix2,
  224. ptrdiff_t stride, int h)
  225. {
  226. int s = 0, i;
  227. const uint8_t *pix3 = pix2 + stride;
  228. for (i = 0; i < h; i++) {
  229. s += abs(pix1[0] - avg2(pix2[0], pix3[0]));
  230. s += abs(pix1[1] - avg2(pix2[1], pix3[1]));
  231. s += abs(pix1[2] - avg2(pix2[2], pix3[2]));
  232. s += abs(pix1[3] - avg2(pix2[3], pix3[3]));
  233. s += abs(pix1[4] - avg2(pix2[4], pix3[4]));
  234. s += abs(pix1[5] - avg2(pix2[5], pix3[5]));
  235. s += abs(pix1[6] - avg2(pix2[6], pix3[6]));
  236. s += abs(pix1[7] - avg2(pix2[7], pix3[7]));
  237. s += abs(pix1[8] - avg2(pix2[8], pix3[8]));
  238. s += abs(pix1[9] - avg2(pix2[9], pix3[9]));
  239. s += abs(pix1[10] - avg2(pix2[10], pix3[10]));
  240. s += abs(pix1[11] - avg2(pix2[11], pix3[11]));
  241. s += abs(pix1[12] - avg2(pix2[12], pix3[12]));
  242. s += abs(pix1[13] - avg2(pix2[13], pix3[13]));
  243. s += abs(pix1[14] - avg2(pix2[14], pix3[14]));
  244. s += abs(pix1[15] - avg2(pix2[15], pix3[15]));
  245. pix1 += stride;
  246. pix2 += stride;
  247. pix3 += stride;
  248. }
  249. return s;
  250. }
  251. static int pix_abs16_xy2_c(MpegEncContext *v, const uint8_t *pix1, const uint8_t *pix2,
  252. ptrdiff_t stride, int h)
  253. {
  254. int s = 0, i;
  255. const uint8_t *pix3 = pix2 + stride;
  256. for (i = 0; i < h; i++) {
  257. s += abs(pix1[0] - avg4(pix2[0], pix2[1], pix3[0], pix3[1]));
  258. s += abs(pix1[1] - avg4(pix2[1], pix2[2], pix3[1], pix3[2]));
  259. s += abs(pix1[2] - avg4(pix2[2], pix2[3], pix3[2], pix3[3]));
  260. s += abs(pix1[3] - avg4(pix2[3], pix2[4], pix3[3], pix3[4]));
  261. s += abs(pix1[4] - avg4(pix2[4], pix2[5], pix3[4], pix3[5]));
  262. s += abs(pix1[5] - avg4(pix2[5], pix2[6], pix3[5], pix3[6]));
  263. s += abs(pix1[6] - avg4(pix2[6], pix2[7], pix3[6], pix3[7]));
  264. s += abs(pix1[7] - avg4(pix2[7], pix2[8], pix3[7], pix3[8]));
  265. s += abs(pix1[8] - avg4(pix2[8], pix2[9], pix3[8], pix3[9]));
  266. s += abs(pix1[9] - avg4(pix2[9], pix2[10], pix3[9], pix3[10]));
  267. s += abs(pix1[10] - avg4(pix2[10], pix2[11], pix3[10], pix3[11]));
  268. s += abs(pix1[11] - avg4(pix2[11], pix2[12], pix3[11], pix3[12]));
  269. s += abs(pix1[12] - avg4(pix2[12], pix2[13], pix3[12], pix3[13]));
  270. s += abs(pix1[13] - avg4(pix2[13], pix2[14], pix3[13], pix3[14]));
  271. s += abs(pix1[14] - avg4(pix2[14], pix2[15], pix3[14], pix3[15]));
  272. s += abs(pix1[15] - avg4(pix2[15], pix2[16], pix3[15], pix3[16]));
  273. pix1 += stride;
  274. pix2 += stride;
  275. pix3 += stride;
  276. }
  277. return s;
  278. }
  279. static inline int pix_abs8_c(MpegEncContext *v, const uint8_t *pix1, const uint8_t *pix2,
  280. ptrdiff_t stride, int h)
  281. {
  282. int s = 0, i;
  283. for (i = 0; i < h; i++) {
  284. s += abs(pix1[0] - pix2[0]);
  285. s += abs(pix1[1] - pix2[1]);
  286. s += abs(pix1[2] - pix2[2]);
  287. s += abs(pix1[3] - pix2[3]);
  288. s += abs(pix1[4] - pix2[4]);
  289. s += abs(pix1[5] - pix2[5]);
  290. s += abs(pix1[6] - pix2[6]);
  291. s += abs(pix1[7] - pix2[7]);
  292. pix1 += stride;
  293. pix2 += stride;
  294. }
  295. return s;
  296. }
  297. static inline int pix_median_abs8_c(MpegEncContext *v, const uint8_t *pix1, const uint8_t *pix2,
  298. ptrdiff_t stride, int h)
  299. {
  300. int s = 0, i, j;
  301. #define V(x) (pix1[x] - pix2[x])
  302. s += abs(V(0));
  303. s += abs(V(1) - V(0));
  304. s += abs(V(2) - V(1));
  305. s += abs(V(3) - V(2));
  306. s += abs(V(4) - V(3));
  307. s += abs(V(5) - V(4));
  308. s += abs(V(6) - V(5));
  309. s += abs(V(7) - V(6));
  310. pix1 += stride;
  311. pix2 += stride;
  312. for (i = 1; i < h; i++) {
  313. s += abs(V(0) - V(-stride));
  314. for (j = 1; j < 8; j++)
  315. s += abs(V(j) - mid_pred(V(j-stride), V(j-1), V(j-stride) + V(j-1) - V(j-stride-1)));
  316. pix1 += stride;
  317. pix2 += stride;
  318. }
  319. #undef V
  320. return s;
  321. }
  322. static int pix_abs8_x2_c(MpegEncContext *v, const uint8_t *pix1, const uint8_t *pix2,
  323. ptrdiff_t stride, int h)
  324. {
  325. int s = 0, i;
  326. for (i = 0; i < h; i++) {
  327. s += abs(pix1[0] - avg2(pix2[0], pix2[1]));
  328. s += abs(pix1[1] - avg2(pix2[1], pix2[2]));
  329. s += abs(pix1[2] - avg2(pix2[2], pix2[3]));
  330. s += abs(pix1[3] - avg2(pix2[3], pix2[4]));
  331. s += abs(pix1[4] - avg2(pix2[4], pix2[5]));
  332. s += abs(pix1[5] - avg2(pix2[5], pix2[6]));
  333. s += abs(pix1[6] - avg2(pix2[6], pix2[7]));
  334. s += abs(pix1[7] - avg2(pix2[7], pix2[8]));
  335. pix1 += stride;
  336. pix2 += stride;
  337. }
  338. return s;
  339. }
  340. static int pix_abs8_y2_c(MpegEncContext *v, const uint8_t *pix1, const uint8_t *pix2,
  341. ptrdiff_t stride, int h)
  342. {
  343. int s = 0, i;
  344. const uint8_t *pix3 = pix2 + stride;
  345. for (i = 0; i < h; i++) {
  346. s += abs(pix1[0] - avg2(pix2[0], pix3[0]));
  347. s += abs(pix1[1] - avg2(pix2[1], pix3[1]));
  348. s += abs(pix1[2] - avg2(pix2[2], pix3[2]));
  349. s += abs(pix1[3] - avg2(pix2[3], pix3[3]));
  350. s += abs(pix1[4] - avg2(pix2[4], pix3[4]));
  351. s += abs(pix1[5] - avg2(pix2[5], pix3[5]));
  352. s += abs(pix1[6] - avg2(pix2[6], pix3[6]));
  353. s += abs(pix1[7] - avg2(pix2[7], pix3[7]));
  354. pix1 += stride;
  355. pix2 += stride;
  356. pix3 += stride;
  357. }
  358. return s;
  359. }
  360. static int pix_abs8_xy2_c(MpegEncContext *v, const uint8_t *pix1, const uint8_t *pix2,
  361. ptrdiff_t stride, int h)
  362. {
  363. int s = 0, i;
  364. const uint8_t *pix3 = pix2 + stride;
  365. for (i = 0; i < h; i++) {
  366. s += abs(pix1[0] - avg4(pix2[0], pix2[1], pix3[0], pix3[1]));
  367. s += abs(pix1[1] - avg4(pix2[1], pix2[2], pix3[1], pix3[2]));
  368. s += abs(pix1[2] - avg4(pix2[2], pix2[3], pix3[2], pix3[3]));
  369. s += abs(pix1[3] - avg4(pix2[3], pix2[4], pix3[3], pix3[4]));
  370. s += abs(pix1[4] - avg4(pix2[4], pix2[5], pix3[4], pix3[5]));
  371. s += abs(pix1[5] - avg4(pix2[5], pix2[6], pix3[5], pix3[6]));
  372. s += abs(pix1[6] - avg4(pix2[6], pix2[7], pix3[6], pix3[7]));
  373. s += abs(pix1[7] - avg4(pix2[7], pix2[8], pix3[7], pix3[8]));
  374. pix1 += stride;
  375. pix2 += stride;
  376. pix3 += stride;
  377. }
  378. return s;
  379. }
  380. static int nsse16_c(MpegEncContext *c, const uint8_t *s1, const uint8_t *s2,
  381. ptrdiff_t stride, int h)
  382. {
  383. int score1 = 0, score2 = 0, x, y;
  384. for (y = 0; y < h; y++) {
  385. for (x = 0; x < 16; x++)
  386. score1 += (s1[x] - s2[x]) * (s1[x] - s2[x]);
  387. if (y + 1 < h) {
  388. for (x = 0; x < 15; x++)
  389. score2 += FFABS(s1[x] - s1[x + stride] -
  390. s1[x + 1] + s1[x + stride + 1]) -
  391. FFABS(s2[x] - s2[x + stride] -
  392. s2[x + 1] + s2[x + stride + 1]);
  393. }
  394. s1 += stride;
  395. s2 += stride;
  396. }
  397. if (c)
  398. return score1 + FFABS(score2) * c->avctx->nsse_weight;
  399. else
  400. return score1 + FFABS(score2) * 8;
  401. }
  402. static int nsse8_c(MpegEncContext *c, const uint8_t *s1, const uint8_t *s2,
  403. ptrdiff_t stride, int h)
  404. {
  405. int score1 = 0, score2 = 0, x, y;
  406. for (y = 0; y < h; y++) {
  407. for (x = 0; x < 8; x++)
  408. score1 += (s1[x] - s2[x]) * (s1[x] - s2[x]);
  409. if (y + 1 < h) {
  410. for (x = 0; x < 7; x++)
  411. score2 += FFABS(s1[x] - s1[x + stride] -
  412. s1[x + 1] + s1[x + stride + 1]) -
  413. FFABS(s2[x] - s2[x + stride] -
  414. s2[x + 1] + s2[x + stride + 1]);
  415. }
  416. s1 += stride;
  417. s2 += stride;
  418. }
  419. if (c)
  420. return score1 + FFABS(score2) * c->avctx->nsse_weight;
  421. else
  422. return score1 + FFABS(score2) * 8;
  423. }
  424. static int zero_cmp(MpegEncContext *s, const uint8_t *a, const uint8_t *b,
  425. ptrdiff_t stride, int h)
  426. {
  427. return 0;
  428. }
  429. av_cold int ff_set_cmp(const MECmpContext *c, me_cmp_func *cmp, int type, int mpvenc)
  430. {
  431. #define ENTRY(CMP_FLAG, ARRAY, MPVENC_ONLY) \
  432. [FF_CMP_ ## CMP_FLAG] = { \
  433. .offset = offsetof(MECmpContext, ARRAY), \
  434. .mpv_only = MPVENC_ONLY, \
  435. .available = 1, \
  436. }
  437. static const struct {
  438. char available;
  439. char mpv_only;
  440. uint16_t offset;
  441. } cmp_func_list[] = {
  442. ENTRY(SAD, sad, 0),
  443. ENTRY(SSE, sse, 0),
  444. ENTRY(SATD, hadamard8_diff, 0),
  445. ENTRY(DCT, dct_sad, 1),
  446. ENTRY(PSNR, quant_psnr, 1),
  447. ENTRY(BIT, bit, 1),
  448. ENTRY(RD, rd, 1),
  449. ENTRY(VSAD, vsad, 0),
  450. ENTRY(VSSE, vsse, 0),
  451. ENTRY(NSSE, nsse, 0),
  452. #if CONFIG_SNOW_DECODER || CONFIG_SNOW_ENCODER
  453. ENTRY(W53, w53, 0),
  454. ENTRY(W97, w97, 0),
  455. #endif
  456. ENTRY(DCTMAX, dct_max, 1),
  457. #if CONFIG_GPL
  458. ENTRY(DCT264, dct264_sad, 1),
  459. #endif
  460. ENTRY(MEDIAN_SAD, median_sad, 0),
  461. };
  462. const me_cmp_func *me_cmp_func_array;
  463. type &= 0xFF;
  464. if (type == FF_CMP_ZERO) {
  465. for (int i = 0; i < 6; i++)
  466. cmp[i] = zero_cmp;
  467. return 0;
  468. }
  469. if (type > FF_ARRAY_ELEMS(cmp_func_list) ||
  470. !cmp_func_list[type].available ||
  471. !mpvenc && cmp_func_list[type].mpv_only) {
  472. av_log(NULL, AV_LOG_ERROR,
  473. "invalid cmp function selection\n");
  474. return AVERROR(EINVAL);
  475. }
  476. me_cmp_func_array = (const me_cmp_func*)(((const char*)c) + cmp_func_list[type].offset);
  477. for (int i = 0; i < 6; i++)
  478. cmp[i] = me_cmp_func_array[i];
  479. return 0;
  480. }
  481. #define BUTTERFLY2(o1, o2, i1, i2) \
  482. o1 = (i1) + (i2); \
  483. o2 = (i1) - (i2);
  484. #define BUTTERFLY1(x, y) \
  485. { \
  486. int a, b; \
  487. a = x; \
  488. b = y; \
  489. x = a + b; \
  490. y = a - b; \
  491. }
  492. #define BUTTERFLYA(x, y) (FFABS((x) + (y)) + FFABS((x) - (y)))
  493. static int hadamard8_diff8x8_c(MpegEncContext *s, const uint8_t *dst,
  494. const uint8_t *src, ptrdiff_t stride, int h)
  495. {
  496. int i, temp[64], sum = 0;
  497. for (i = 0; i < 8; i++) {
  498. // FIXME: try pointer walks
  499. BUTTERFLY2(temp[8 * i + 0], temp[8 * i + 1],
  500. src[stride * i + 0] - dst[stride * i + 0],
  501. src[stride * i + 1] - dst[stride * i + 1]);
  502. BUTTERFLY2(temp[8 * i + 2], temp[8 * i + 3],
  503. src[stride * i + 2] - dst[stride * i + 2],
  504. src[stride * i + 3] - dst[stride * i + 3]);
  505. BUTTERFLY2(temp[8 * i + 4], temp[8 * i + 5],
  506. src[stride * i + 4] - dst[stride * i + 4],
  507. src[stride * i + 5] - dst[stride * i + 5]);
  508. BUTTERFLY2(temp[8 * i + 6], temp[8 * i + 7],
  509. src[stride * i + 6] - dst[stride * i + 6],
  510. src[stride * i + 7] - dst[stride * i + 7]);
  511. BUTTERFLY1(temp[8 * i + 0], temp[8 * i + 2]);
  512. BUTTERFLY1(temp[8 * i + 1], temp[8 * i + 3]);
  513. BUTTERFLY1(temp[8 * i + 4], temp[8 * i + 6]);
  514. BUTTERFLY1(temp[8 * i + 5], temp[8 * i + 7]);
  515. BUTTERFLY1(temp[8 * i + 0], temp[8 * i + 4]);
  516. BUTTERFLY1(temp[8 * i + 1], temp[8 * i + 5]);
  517. BUTTERFLY1(temp[8 * i + 2], temp[8 * i + 6]);
  518. BUTTERFLY1(temp[8 * i + 3], temp[8 * i + 7]);
  519. }
  520. for (i = 0; i < 8; i++) {
  521. BUTTERFLY1(temp[8 * 0 + i], temp[8 * 1 + i]);
  522. BUTTERFLY1(temp[8 * 2 + i], temp[8 * 3 + i]);
  523. BUTTERFLY1(temp[8 * 4 + i], temp[8 * 5 + i]);
  524. BUTTERFLY1(temp[8 * 6 + i], temp[8 * 7 + i]);
  525. BUTTERFLY1(temp[8 * 0 + i], temp[8 * 2 + i]);
  526. BUTTERFLY1(temp[8 * 1 + i], temp[8 * 3 + i]);
  527. BUTTERFLY1(temp[8 * 4 + i], temp[8 * 6 + i]);
  528. BUTTERFLY1(temp[8 * 5 + i], temp[8 * 7 + i]);
  529. sum += BUTTERFLYA(temp[8 * 0 + i], temp[8 * 4 + i]) +
  530. BUTTERFLYA(temp[8 * 1 + i], temp[8 * 5 + i]) +
  531. BUTTERFLYA(temp[8 * 2 + i], temp[8 * 6 + i]) +
  532. BUTTERFLYA(temp[8 * 3 + i], temp[8 * 7 + i]);
  533. }
  534. return sum;
  535. }
  536. static int hadamard8_intra8x8_c(MpegEncContext *s, const uint8_t *src,
  537. const uint8_t *dummy, ptrdiff_t stride, int h)
  538. {
  539. int i, temp[64], sum = 0;
  540. for (i = 0; i < 8; i++) {
  541. // FIXME: try pointer walks
  542. BUTTERFLY2(temp[8 * i + 0], temp[8 * i + 1],
  543. src[stride * i + 0], src[stride * i + 1]);
  544. BUTTERFLY2(temp[8 * i + 2], temp[8 * i + 3],
  545. src[stride * i + 2], src[stride * i + 3]);
  546. BUTTERFLY2(temp[8 * i + 4], temp[8 * i + 5],
  547. src[stride * i + 4], src[stride * i + 5]);
  548. BUTTERFLY2(temp[8 * i + 6], temp[8 * i + 7],
  549. src[stride * i + 6], src[stride * i + 7]);
  550. BUTTERFLY1(temp[8 * i + 0], temp[8 * i + 2]);
  551. BUTTERFLY1(temp[8 * i + 1], temp[8 * i + 3]);
  552. BUTTERFLY1(temp[8 * i + 4], temp[8 * i + 6]);
  553. BUTTERFLY1(temp[8 * i + 5], temp[8 * i + 7]);
  554. BUTTERFLY1(temp[8 * i + 0], temp[8 * i + 4]);
  555. BUTTERFLY1(temp[8 * i + 1], temp[8 * i + 5]);
  556. BUTTERFLY1(temp[8 * i + 2], temp[8 * i + 6]);
  557. BUTTERFLY1(temp[8 * i + 3], temp[8 * i + 7]);
  558. }
  559. for (i = 0; i < 8; i++) {
  560. BUTTERFLY1(temp[8 * 0 + i], temp[8 * 1 + i]);
  561. BUTTERFLY1(temp[8 * 2 + i], temp[8 * 3 + i]);
  562. BUTTERFLY1(temp[8 * 4 + i], temp[8 * 5 + i]);
  563. BUTTERFLY1(temp[8 * 6 + i], temp[8 * 7 + i]);
  564. BUTTERFLY1(temp[8 * 0 + i], temp[8 * 2 + i]);
  565. BUTTERFLY1(temp[8 * 1 + i], temp[8 * 3 + i]);
  566. BUTTERFLY1(temp[8 * 4 + i], temp[8 * 6 + i]);
  567. BUTTERFLY1(temp[8 * 5 + i], temp[8 * 7 + i]);
  568. sum +=
  569. BUTTERFLYA(temp[8 * 0 + i], temp[8 * 4 + i])
  570. + BUTTERFLYA(temp[8 * 1 + i], temp[8 * 5 + i])
  571. + BUTTERFLYA(temp[8 * 2 + i], temp[8 * 6 + i])
  572. + BUTTERFLYA(temp[8 * 3 + i], temp[8 * 7 + i]);
  573. }
  574. sum -= FFABS(temp[8 * 0] + temp[8 * 4]); // -mean
  575. return sum;
  576. }
  577. static int dct_sad8x8_c(MpegEncContext *s, const uint8_t *src1,
  578. const uint8_t *src2, ptrdiff_t stride, int h)
  579. {
  580. LOCAL_ALIGNED_16(int16_t, temp, [64]);
  581. s->pdsp.diff_pixels_unaligned(temp, src1, src2, stride);
  582. s->fdsp.fdct(temp);
  583. return s->mecc.sum_abs_dctelem(temp);
  584. }
  585. #if CONFIG_GPL
  586. #define DCT8_1D \
  587. { \
  588. const int s07 = SRC(0) + SRC(7); \
  589. const int s16 = SRC(1) + SRC(6); \
  590. const int s25 = SRC(2) + SRC(5); \
  591. const int s34 = SRC(3) + SRC(4); \
  592. const int a0 = s07 + s34; \
  593. const int a1 = s16 + s25; \
  594. const int a2 = s07 - s34; \
  595. const int a3 = s16 - s25; \
  596. const int d07 = SRC(0) - SRC(7); \
  597. const int d16 = SRC(1) - SRC(6); \
  598. const int d25 = SRC(2) - SRC(5); \
  599. const int d34 = SRC(3) - SRC(4); \
  600. const int a4 = d16 + d25 + (d07 + (d07 >> 1)); \
  601. const int a5 = d07 - d34 - (d25 + (d25 >> 1)); \
  602. const int a6 = d07 + d34 - (d16 + (d16 >> 1)); \
  603. const int a7 = d16 - d25 + (d34 + (d34 >> 1)); \
  604. DST(0, a0 + a1); \
  605. DST(1, a4 + (a7 >> 2)); \
  606. DST(2, a2 + (a3 >> 1)); \
  607. DST(3, a5 + (a6 >> 2)); \
  608. DST(4, a0 - a1); \
  609. DST(5, a6 - (a5 >> 2)); \
  610. DST(6, (a2 >> 1) - a3); \
  611. DST(7, (a4 >> 2) - a7); \
  612. }
  613. static int dct264_sad8x8_c(MpegEncContext *s, const uint8_t *src1,
  614. const uint8_t *src2, ptrdiff_t stride, int h)
  615. {
  616. int16_t dct[8][8];
  617. int i, sum = 0;
  618. s->pdsp.diff_pixels_unaligned(dct[0], src1, src2, stride);
  619. #define SRC(x) dct[i][x]
  620. #define DST(x, v) dct[i][x] = v
  621. for (i = 0; i < 8; i++)
  622. DCT8_1D
  623. #undef SRC
  624. #undef DST
  625. #define SRC(x) dct[x][i]
  626. #define DST(x, v) sum += FFABS(v)
  627. for (i = 0; i < 8; i++)
  628. DCT8_1D
  629. #undef SRC
  630. #undef DST
  631. return sum;
  632. }
  633. #endif
  634. static int dct_max8x8_c(MpegEncContext *s, const uint8_t *src1,
  635. const uint8_t *src2, ptrdiff_t stride, int h)
  636. {
  637. LOCAL_ALIGNED_16(int16_t, temp, [64]);
  638. int sum = 0, i;
  639. s->pdsp.diff_pixels_unaligned(temp, src1, src2, stride);
  640. s->fdsp.fdct(temp);
  641. for (i = 0; i < 64; i++)
  642. sum = FFMAX(sum, FFABS(temp[i]));
  643. return sum;
  644. }
  645. static int quant_psnr8x8_c(MpegEncContext *s, const uint8_t *src1,
  646. const uint8_t *src2, ptrdiff_t stride, int h)
  647. {
  648. LOCAL_ALIGNED_16(int16_t, temp, [64 * 2]);
  649. int16_t *const bak = temp + 64;
  650. int sum = 0, i;
  651. s->mb_intra = 0;
  652. s->pdsp.diff_pixels_unaligned(temp, src1, src2, stride);
  653. memcpy(bak, temp, 64 * sizeof(int16_t));
  654. s->block_last_index[0 /* FIXME */] =
  655. s->dct_quantize(s, temp, 0 /* FIXME */, s->qscale, &i);
  656. s->dct_unquantize_inter(s, temp, 0, s->qscale);
  657. ff_simple_idct_int16_8bit(temp); // FIXME
  658. for (i = 0; i < 64; i++)
  659. sum += (temp[i] - bak[i]) * (temp[i] - bak[i]);
  660. return sum;
  661. }
  662. static int rd8x8_c(MpegEncContext *s, const uint8_t *src1, const uint8_t *src2,
  663. ptrdiff_t stride, int h)
  664. {
  665. const uint8_t *scantable = s->intra_scantable.permutated;
  666. LOCAL_ALIGNED_16(int16_t, temp, [64]);
  667. LOCAL_ALIGNED_16(uint8_t, lsrc1, [64]);
  668. LOCAL_ALIGNED_16(uint8_t, lsrc2, [64]);
  669. int i, last, run, bits, level, distortion, start_i;
  670. const int esc_length = s->ac_esc_length;
  671. uint8_t *length, *last_length;
  672. copy_block8(lsrc1, src1, 8, stride, 8);
  673. copy_block8(lsrc2, src2, 8, stride, 8);
  674. s->pdsp.diff_pixels(temp, lsrc1, lsrc2, 8);
  675. s->block_last_index[0 /* FIXME */] =
  676. last =
  677. s->dct_quantize(s, temp, 0 /* FIXME */, s->qscale, &i);
  678. bits = 0;
  679. if (s->mb_intra) {
  680. start_i = 1;
  681. length = s->intra_ac_vlc_length;
  682. last_length = s->intra_ac_vlc_last_length;
  683. bits += s->luma_dc_vlc_length[temp[0] + 256]; // FIXME: chroma
  684. } else {
  685. start_i = 0;
  686. length = s->inter_ac_vlc_length;
  687. last_length = s->inter_ac_vlc_last_length;
  688. }
  689. if (last >= start_i) {
  690. run = 0;
  691. for (i = start_i; i < last; i++) {
  692. int j = scantable[i];
  693. level = temp[j];
  694. if (level) {
  695. level += 64;
  696. if ((level & (~127)) == 0)
  697. bits += length[UNI_AC_ENC_INDEX(run, level)];
  698. else
  699. bits += esc_length;
  700. run = 0;
  701. } else
  702. run++;
  703. }
  704. i = scantable[last];
  705. level = temp[i] + 64;
  706. av_assert2(level - 64);
  707. if ((level & (~127)) == 0) {
  708. bits += last_length[UNI_AC_ENC_INDEX(run, level)];
  709. } else
  710. bits += esc_length;
  711. }
  712. if (last >= 0) {
  713. if (s->mb_intra)
  714. s->dct_unquantize_intra(s, temp, 0, s->qscale);
  715. else
  716. s->dct_unquantize_inter(s, temp, 0, s->qscale);
  717. }
  718. s->idsp.idct_add(lsrc2, 8, temp);
  719. distortion = s->mecc.sse[1](NULL, lsrc2, lsrc1, 8, 8);
  720. return distortion + ((bits * s->qscale * s->qscale * 109 + 64) >> 7);
  721. }
  722. static int bit8x8_c(MpegEncContext *s, const uint8_t *src1, const uint8_t *src2,
  723. ptrdiff_t stride, int h)
  724. {
  725. const uint8_t *scantable = s->intra_scantable.permutated;
  726. LOCAL_ALIGNED_16(int16_t, temp, [64]);
  727. int i, last, run, bits, level, start_i;
  728. const int esc_length = s->ac_esc_length;
  729. uint8_t *length, *last_length;
  730. s->pdsp.diff_pixels_unaligned(temp, src1, src2, stride);
  731. s->block_last_index[0 /* FIXME */] =
  732. last =
  733. s->dct_quantize(s, temp, 0 /* FIXME */, s->qscale, &i);
  734. bits = 0;
  735. if (s->mb_intra) {
  736. start_i = 1;
  737. length = s->intra_ac_vlc_length;
  738. last_length = s->intra_ac_vlc_last_length;
  739. bits += s->luma_dc_vlc_length[temp[0] + 256]; // FIXME: chroma
  740. } else {
  741. start_i = 0;
  742. length = s->inter_ac_vlc_length;
  743. last_length = s->inter_ac_vlc_last_length;
  744. }
  745. if (last >= start_i) {
  746. run = 0;
  747. for (i = start_i; i < last; i++) {
  748. int j = scantable[i];
  749. level = temp[j];
  750. if (level) {
  751. level += 64;
  752. if ((level & (~127)) == 0)
  753. bits += length[UNI_AC_ENC_INDEX(run, level)];
  754. else
  755. bits += esc_length;
  756. run = 0;
  757. } else
  758. run++;
  759. }
  760. i = scantable[last];
  761. level = temp[i] + 64;
  762. av_assert2(level - 64);
  763. if ((level & (~127)) == 0)
  764. bits += last_length[UNI_AC_ENC_INDEX(run, level)];
  765. else
  766. bits += esc_length;
  767. }
  768. return bits;
  769. }
  770. #define VSAD_INTRA(size) \
  771. static int vsad_intra ## size ## _c(MpegEncContext *c, \
  772. const uint8_t *s, const uint8_t *dummy, \
  773. ptrdiff_t stride, int h) \
  774. { \
  775. int score = 0, x, y; \
  776. \
  777. for (y = 1; y < h; y++) { \
  778. for (x = 0; x < size; x += 4) { \
  779. score += FFABS(s[x] - s[x + stride]) + \
  780. FFABS(s[x + 1] - s[x + stride + 1]) + \
  781. FFABS(s[x + 2] - s[x + 2 + stride]) + \
  782. FFABS(s[x + 3] - s[x + 3 + stride]); \
  783. } \
  784. s += stride; \
  785. } \
  786. \
  787. return score; \
  788. }
  789. VSAD_INTRA(8)
  790. VSAD_INTRA(16)
  791. #define VSAD(size) \
  792. static int vsad ## size ## _c(MpegEncContext *c, \
  793. const uint8_t *s1, const uint8_t *s2, \
  794. ptrdiff_t stride, int h) \
  795. { \
  796. int score = 0, x, y; \
  797. \
  798. for (y = 1; y < h; y++) { \
  799. for (x = 0; x < size; x++) \
  800. score += FFABS(s1[x] - s2[x] - s1[x + stride] + s2[x + stride]); \
  801. s1 += stride; \
  802. s2 += stride; \
  803. } \
  804. \
  805. return score; \
  806. }
  807. VSAD(8)
  808. VSAD(16)
  809. #define SQ(a) ((a) * (a))
  810. #define VSSE_INTRA(size) \
  811. static int vsse_intra ## size ## _c(MpegEncContext *c, \
  812. const uint8_t *s, const uint8_t *dummy, \
  813. ptrdiff_t stride, int h) \
  814. { \
  815. int score = 0, x, y; \
  816. \
  817. for (y = 1; y < h; y++) { \
  818. for (x = 0; x < size; x += 4) { \
  819. score += SQ(s[x] - s[x + stride]) + \
  820. SQ(s[x + 1] - s[x + stride + 1]) + \
  821. SQ(s[x + 2] - s[x + stride + 2]) + \
  822. SQ(s[x + 3] - s[x + stride + 3]); \
  823. } \
  824. s += stride; \
  825. } \
  826. \
  827. return score; \
  828. }
  829. VSSE_INTRA(8)
  830. VSSE_INTRA(16)
  831. #define VSSE(size) \
  832. static int vsse ## size ## _c(MpegEncContext *c, const uint8_t *s1, const uint8_t *s2, \
  833. ptrdiff_t stride, int h) \
  834. { \
  835. int score = 0, x, y; \
  836. \
  837. for (y = 1; y < h; y++) { \
  838. for (x = 0; x < size; x++) \
  839. score += SQ(s1[x] - s2[x] - s1[x + stride] + s2[x + stride]); \
  840. s1 += stride; \
  841. s2 += stride; \
  842. } \
  843. \
  844. return score; \
  845. }
  846. VSSE(8)
  847. VSSE(16)
  848. #define WRAPPER8_16_SQ(name8, name16) \
  849. static int name16(MpegEncContext *s, const uint8_t *dst, const uint8_t *src, \
  850. ptrdiff_t stride, int h) \
  851. { \
  852. int score = 0; \
  853. \
  854. score += name8(s, dst, src, stride, 8); \
  855. score += name8(s, dst + 8, src + 8, stride, 8); \
  856. if (h == 16) { \
  857. dst += 8 * stride; \
  858. src += 8 * stride; \
  859. score += name8(s, dst, src, stride, 8); \
  860. score += name8(s, dst + 8, src + 8, stride, 8); \
  861. } \
  862. return score; \
  863. }
  864. WRAPPER8_16_SQ(hadamard8_diff8x8_c, hadamard8_diff16_c)
  865. WRAPPER8_16_SQ(hadamard8_intra8x8_c, hadamard8_intra16_c)
  866. WRAPPER8_16_SQ(dct_sad8x8_c, dct_sad16_c)
  867. #if CONFIG_GPL
  868. WRAPPER8_16_SQ(dct264_sad8x8_c, dct264_sad16_c)
  869. #endif
  870. WRAPPER8_16_SQ(dct_max8x8_c, dct_max16_c)
  871. WRAPPER8_16_SQ(quant_psnr8x8_c, quant_psnr16_c)
  872. WRAPPER8_16_SQ(rd8x8_c, rd16_c)
  873. WRAPPER8_16_SQ(bit8x8_c, bit16_c)
  874. av_cold void ff_me_cmp_init(MECmpContext *c, AVCodecContext *avctx)
  875. {
  876. memset(c, 0, sizeof(*c));
  877. c->sum_abs_dctelem = sum_abs_dctelem_c;
  878. /* TODO [0] 16 [1] 8 */
  879. c->pix_abs[0][0] = pix_abs16_c;
  880. c->pix_abs[0][1] = pix_abs16_x2_c;
  881. c->pix_abs[0][2] = pix_abs16_y2_c;
  882. c->pix_abs[0][3] = pix_abs16_xy2_c;
  883. c->pix_abs[1][0] = pix_abs8_c;
  884. c->pix_abs[1][1] = pix_abs8_x2_c;
  885. c->pix_abs[1][2] = pix_abs8_y2_c;
  886. c->pix_abs[1][3] = pix_abs8_xy2_c;
  887. #define SET_CMP_FUNC(name) \
  888. c->name[0] = name ## 16_c; \
  889. c->name[1] = name ## 8x8_c;
  890. SET_CMP_FUNC(hadamard8_diff)
  891. c->hadamard8_diff[4] = hadamard8_intra16_c;
  892. c->hadamard8_diff[5] = hadamard8_intra8x8_c;
  893. SET_CMP_FUNC(dct_sad)
  894. SET_CMP_FUNC(dct_max)
  895. #if CONFIG_GPL
  896. SET_CMP_FUNC(dct264_sad)
  897. #endif
  898. c->sad[0] = pix_abs16_c;
  899. c->sad[1] = pix_abs8_c;
  900. c->sse[0] = sse16_c;
  901. c->sse[1] = sse8_c;
  902. c->sse[2] = sse4_c;
  903. SET_CMP_FUNC(quant_psnr)
  904. SET_CMP_FUNC(rd)
  905. SET_CMP_FUNC(bit)
  906. c->vsad[0] = vsad16_c;
  907. c->vsad[1] = vsad8_c;
  908. c->vsad[4] = vsad_intra16_c;
  909. c->vsad[5] = vsad_intra8_c;
  910. c->vsse[0] = vsse16_c;
  911. c->vsse[1] = vsse8_c;
  912. c->vsse[4] = vsse_intra16_c;
  913. c->vsse[5] = vsse_intra8_c;
  914. c->nsse[0] = nsse16_c;
  915. c->nsse[1] = nsse8_c;
  916. #if CONFIG_SNOW_DECODER || CONFIG_SNOW_ENCODER
  917. ff_dsputil_init_dwt(c);
  918. #endif
  919. c->median_sad[0] = pix_median_abs16_c;
  920. c->median_sad[1] = pix_median_abs8_c;
  921. #if ARCH_AARCH64
  922. ff_me_cmp_init_aarch64(c, avctx);
  923. #elif ARCH_ARM
  924. ff_me_cmp_init_arm(c, avctx);
  925. #elif ARCH_PPC
  926. ff_me_cmp_init_ppc(c, avctx);
  927. #elif ARCH_RISCV
  928. ff_me_cmp_init_riscv(c, avctx);
  929. #elif ARCH_X86
  930. ff_me_cmp_init_x86(c, avctx);
  931. #elif ARCH_MIPS
  932. ff_me_cmp_init_mips(c, avctx);
  933. #endif
  934. }