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  1. /*
  2. * RV40 decoder motion compensation functions
  3. * Copyright (c) 2008 Konstantin Shishkov
  4. *
  5. * This file is part of Libav.
  6. *
  7. * Libav is free software; you can redistribute it and/or
  8. * modify it under the terms of the GNU Lesser General Public
  9. * License as published by the Free Software Foundation; either
  10. * version 2.1 of the License, or (at your option) any later version.
  11. *
  12. * Libav is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  15. * Lesser General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU Lesser General Public
  18. * License along with Libav; if not, write to the Free Software
  19. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  20. */
  21. /**
  22. * @file
  23. * RV40 decoder motion compensation functions
  24. */
  25. #include "avcodec.h"
  26. #include "dsputil.h"
  27. #include "rv34dsp.h"
  28. #include "libavutil/common.h"
  29. #define RV40_LOWPASS(OPNAME, OP) \
  30. static av_unused void OPNAME ## rv40_qpel8_h_lowpass(uint8_t *dst, uint8_t *src, int dstStride, int srcStride,\
  31. const int h, const int C1, const int C2, const int SHIFT){\
  32. uint8_t *cm = ff_cropTbl + MAX_NEG_CROP;\
  33. int i;\
  34. for(i = 0; i < h; i++)\
  35. {\
  36. OP(dst[0], (src[-2] + src[ 3] - 5*(src[-1]+src[2]) + src[0]*C1 + src[1]*C2 + (1<<(SHIFT-1))) >> SHIFT);\
  37. OP(dst[1], (src[-1] + src[ 4] - 5*(src[ 0]+src[3]) + src[1]*C1 + src[2]*C2 + (1<<(SHIFT-1))) >> SHIFT);\
  38. OP(dst[2], (src[ 0] + src[ 5] - 5*(src[ 1]+src[4]) + src[2]*C1 + src[3]*C2 + (1<<(SHIFT-1))) >> SHIFT);\
  39. OP(dst[3], (src[ 1] + src[ 6] - 5*(src[ 2]+src[5]) + src[3]*C1 + src[4]*C2 + (1<<(SHIFT-1))) >> SHIFT);\
  40. OP(dst[4], (src[ 2] + src[ 7] - 5*(src[ 3]+src[6]) + src[4]*C1 + src[5]*C2 + (1<<(SHIFT-1))) >> SHIFT);\
  41. OP(dst[5], (src[ 3] + src[ 8] - 5*(src[ 4]+src[7]) + src[5]*C1 + src[6]*C2 + (1<<(SHIFT-1))) >> SHIFT);\
  42. OP(dst[6], (src[ 4] + src[ 9] - 5*(src[ 5]+src[8]) + src[6]*C1 + src[7]*C2 + (1<<(SHIFT-1))) >> SHIFT);\
  43. OP(dst[7], (src[ 5] + src[10] - 5*(src[ 6]+src[9]) + src[7]*C1 + src[8]*C2 + (1<<(SHIFT-1))) >> SHIFT);\
  44. dst += dstStride;\
  45. src += srcStride;\
  46. }\
  47. }\
  48. \
  49. static void OPNAME ## rv40_qpel8_v_lowpass(uint8_t *dst, uint8_t *src, int dstStride, int srcStride,\
  50. const int w, const int C1, const int C2, const int SHIFT){\
  51. uint8_t *cm = ff_cropTbl + MAX_NEG_CROP;\
  52. int i;\
  53. for(i = 0; i < w; i++)\
  54. {\
  55. const int srcB = src[-2*srcStride];\
  56. const int srcA = src[-1*srcStride];\
  57. const int src0 = src[0 *srcStride];\
  58. const int src1 = src[1 *srcStride];\
  59. const int src2 = src[2 *srcStride];\
  60. const int src3 = src[3 *srcStride];\
  61. const int src4 = src[4 *srcStride];\
  62. const int src5 = src[5 *srcStride];\
  63. const int src6 = src[6 *srcStride];\
  64. const int src7 = src[7 *srcStride];\
  65. const int src8 = src[8 *srcStride];\
  66. const int src9 = src[9 *srcStride];\
  67. const int src10 = src[10*srcStride];\
  68. OP(dst[0*dstStride], (srcB + src3 - 5*(srcA+src2) + src0*C1 + src1*C2 + (1<<(SHIFT-1))) >> SHIFT);\
  69. OP(dst[1*dstStride], (srcA + src4 - 5*(src0+src3) + src1*C1 + src2*C2 + (1<<(SHIFT-1))) >> SHIFT);\
  70. OP(dst[2*dstStride], (src0 + src5 - 5*(src1+src4) + src2*C1 + src3*C2 + (1<<(SHIFT-1))) >> SHIFT);\
  71. OP(dst[3*dstStride], (src1 + src6 - 5*(src2+src5) + src3*C1 + src4*C2 + (1<<(SHIFT-1))) >> SHIFT);\
  72. OP(dst[4*dstStride], (src2 + src7 - 5*(src3+src6) + src4*C1 + src5*C2 + (1<<(SHIFT-1))) >> SHIFT);\
  73. OP(dst[5*dstStride], (src3 + src8 - 5*(src4+src7) + src5*C1 + src6*C2 + (1<<(SHIFT-1))) >> SHIFT);\
  74. OP(dst[6*dstStride], (src4 + src9 - 5*(src5+src8) + src6*C1 + src7*C2 + (1<<(SHIFT-1))) >> SHIFT);\
  75. OP(dst[7*dstStride], (src5 + src10 - 5*(src6+src9) + src7*C1 + src8*C2 + (1<<(SHIFT-1))) >> SHIFT);\
  76. dst++;\
  77. src++;\
  78. }\
  79. }\
  80. \
  81. static void OPNAME ## rv40_qpel16_v_lowpass(uint8_t *dst, uint8_t *src, int dstStride, int srcStride,\
  82. const int w, const int C1, const int C2, const int SHIFT){\
  83. OPNAME ## rv40_qpel8_v_lowpass(dst , src , dstStride, srcStride, 8, C1, C2, SHIFT);\
  84. OPNAME ## rv40_qpel8_v_lowpass(dst+8, src+8, dstStride, srcStride, 8, C1, C2, SHIFT);\
  85. src += 8*srcStride;\
  86. dst += 8*dstStride;\
  87. OPNAME ## rv40_qpel8_v_lowpass(dst , src , dstStride, srcStride, w-8, C1, C2, SHIFT);\
  88. OPNAME ## rv40_qpel8_v_lowpass(dst+8, src+8, dstStride, srcStride, w-8, C1, C2, SHIFT);\
  89. }\
  90. \
  91. static void OPNAME ## rv40_qpel16_h_lowpass(uint8_t *dst, uint8_t *src, int dstStride, int srcStride,\
  92. const int h, const int C1, const int C2, const int SHIFT){\
  93. OPNAME ## rv40_qpel8_h_lowpass(dst , src , dstStride, srcStride, 8, C1, C2, SHIFT);\
  94. OPNAME ## rv40_qpel8_h_lowpass(dst+8, src+8, dstStride, srcStride, 8, C1, C2, SHIFT);\
  95. src += 8*srcStride;\
  96. dst += 8*dstStride;\
  97. OPNAME ## rv40_qpel8_h_lowpass(dst , src , dstStride, srcStride, h-8, C1, C2, SHIFT);\
  98. OPNAME ## rv40_qpel8_h_lowpass(dst+8, src+8, dstStride, srcStride, h-8, C1, C2, SHIFT);\
  99. }\
  100. \
  101. #define RV40_MC(OPNAME, SIZE) \
  102. static void OPNAME ## rv40_qpel ## SIZE ## _mc10_c(uint8_t *dst, uint8_t *src, int stride){\
  103. OPNAME ## rv40_qpel ## SIZE ## _h_lowpass(dst, src, stride, stride, SIZE, 52, 20, 6);\
  104. }\
  105. \
  106. static void OPNAME ## rv40_qpel ## SIZE ## _mc30_c(uint8_t *dst, uint8_t *src, int stride){\
  107. OPNAME ## rv40_qpel ## SIZE ## _h_lowpass(dst, src, stride, stride, SIZE, 20, 52, 6);\
  108. }\
  109. \
  110. static void OPNAME ## rv40_qpel ## SIZE ## _mc01_c(uint8_t *dst, uint8_t *src, int stride){\
  111. OPNAME ## rv40_qpel ## SIZE ## _v_lowpass(dst, src, stride, stride, SIZE, 52, 20, 6);\
  112. }\
  113. \
  114. static void OPNAME ## rv40_qpel ## SIZE ## _mc11_c(uint8_t *dst, uint8_t *src, int stride){\
  115. uint8_t full[SIZE*(SIZE+5)];\
  116. uint8_t * const full_mid = full + SIZE*2;\
  117. put_rv40_qpel ## SIZE ## _h_lowpass(full, src - 2*stride, SIZE, stride, SIZE+5, 52, 20, 6);\
  118. OPNAME ## rv40_qpel ## SIZE ## _v_lowpass(dst, full_mid, stride, SIZE, SIZE, 52, 20, 6);\
  119. }\
  120. \
  121. static void OPNAME ## rv40_qpel ## SIZE ## _mc21_c(uint8_t *dst, uint8_t *src, int stride){\
  122. uint8_t full[SIZE*(SIZE+5)];\
  123. uint8_t * const full_mid = full + SIZE*2;\
  124. put_rv40_qpel ## SIZE ## _h_lowpass(full, src - 2*stride, SIZE, stride, SIZE+5, 20, 20, 5);\
  125. OPNAME ## rv40_qpel ## SIZE ## _v_lowpass(dst, full_mid, stride, SIZE, SIZE, 52, 20, 6);\
  126. }\
  127. \
  128. static void OPNAME ## rv40_qpel ## SIZE ## _mc31_c(uint8_t *dst, uint8_t *src, int stride){\
  129. uint8_t full[SIZE*(SIZE+5)];\
  130. uint8_t * const full_mid = full + SIZE*2;\
  131. put_rv40_qpel ## SIZE ## _h_lowpass(full, src - 2*stride, SIZE, stride, SIZE+5, 20, 52, 6);\
  132. OPNAME ## rv40_qpel ## SIZE ## _v_lowpass(dst, full_mid, stride, SIZE, SIZE, 52, 20, 6);\
  133. }\
  134. \
  135. static void OPNAME ## rv40_qpel ## SIZE ## _mc12_c(uint8_t *dst, uint8_t *src, int stride){\
  136. uint8_t full[SIZE*(SIZE+5)];\
  137. uint8_t * const full_mid = full + SIZE*2;\
  138. put_rv40_qpel ## SIZE ## _h_lowpass(full, src - 2*stride, SIZE, stride, SIZE+5, 52, 20, 6);\
  139. OPNAME ## rv40_qpel ## SIZE ## _v_lowpass(dst, full_mid, stride, SIZE, SIZE, 20, 20, 5);\
  140. }\
  141. \
  142. static void OPNAME ## rv40_qpel ## SIZE ## _mc22_c(uint8_t *dst, uint8_t *src, int stride){\
  143. uint8_t full[SIZE*(SIZE+5)];\
  144. uint8_t * const full_mid = full + SIZE*2;\
  145. put_rv40_qpel ## SIZE ## _h_lowpass(full, src - 2*stride, SIZE, stride, SIZE+5, 20, 20, 5);\
  146. OPNAME ## rv40_qpel ## SIZE ## _v_lowpass(dst, full_mid, stride, SIZE, SIZE, 20, 20, 5);\
  147. }\
  148. \
  149. static void OPNAME ## rv40_qpel ## SIZE ## _mc32_c(uint8_t *dst, uint8_t *src, int stride){\
  150. uint8_t full[SIZE*(SIZE+5)];\
  151. uint8_t * const full_mid = full + SIZE*2;\
  152. put_rv40_qpel ## SIZE ## _h_lowpass(full, src - 2*stride, SIZE, stride, SIZE+5, 20, 52, 6);\
  153. OPNAME ## rv40_qpel ## SIZE ## _v_lowpass(dst, full_mid, stride, SIZE, SIZE, 20, 20, 5);\
  154. }\
  155. \
  156. static void OPNAME ## rv40_qpel ## SIZE ## _mc03_c(uint8_t *dst, uint8_t *src, int stride){\
  157. OPNAME ## rv40_qpel ## SIZE ## _v_lowpass(dst, src, stride, stride, SIZE, 20, 52, 6);\
  158. }\
  159. \
  160. static void OPNAME ## rv40_qpel ## SIZE ## _mc13_c(uint8_t *dst, uint8_t *src, int stride){\
  161. uint8_t full[SIZE*(SIZE+5)];\
  162. uint8_t * const full_mid = full + SIZE*2;\
  163. put_rv40_qpel ## SIZE ## _h_lowpass(full, src - 2*stride, SIZE, stride, SIZE+5, 52, 20, 6);\
  164. OPNAME ## rv40_qpel ## SIZE ## _v_lowpass(dst, full_mid, stride, SIZE, SIZE, 20, 52, 6);\
  165. }\
  166. \
  167. static void OPNAME ## rv40_qpel ## SIZE ## _mc23_c(uint8_t *dst, uint8_t *src, int stride){\
  168. uint8_t full[SIZE*(SIZE+5)];\
  169. uint8_t * const full_mid = full + SIZE*2;\
  170. put_rv40_qpel ## SIZE ## _h_lowpass(full, src - 2*stride, SIZE, stride, SIZE+5, 20, 20, 5);\
  171. OPNAME ## rv40_qpel ## SIZE ## _v_lowpass(dst, full_mid, stride, SIZE, SIZE, 20, 52, 6);\
  172. }\
  173. \
  174. #define op_avg(a, b) a = (((a)+cm[b]+1)>>1)
  175. #define op_put(a, b) a = cm[b]
  176. RV40_LOWPASS(put_ , op_put)
  177. RV40_LOWPASS(avg_ , op_avg)
  178. #undef op_avg
  179. #undef op_put
  180. RV40_MC(put_, 8)
  181. RV40_MC(put_, 16)
  182. RV40_MC(avg_, 8)
  183. RV40_MC(avg_, 16)
  184. static const int rv40_bias[4][4] = {
  185. { 0, 16, 32, 16 },
  186. { 32, 28, 32, 28 },
  187. { 0, 32, 16, 32 },
  188. { 32, 28, 32, 28 }
  189. };
  190. #define RV40_CHROMA_MC(OPNAME, OP)\
  191. static void OPNAME ## rv40_chroma_mc4_c(uint8_t *dst/*align 8*/, uint8_t *src/*align 1*/, int stride, int h, int x, int y){\
  192. const int A = (8-x) * (8-y);\
  193. const int B = ( x) * (8-y);\
  194. const int C = (8-x) * ( y);\
  195. const int D = ( x) * ( y);\
  196. int i;\
  197. int bias = rv40_bias[y>>1][x>>1];\
  198. \
  199. assert(x<8 && y<8 && x>=0 && y>=0);\
  200. \
  201. if(D){\
  202. for(i = 0; i < h; i++){\
  203. OP(dst[0], (A*src[0] + B*src[1] + C*src[stride+0] + D*src[stride+1] + bias));\
  204. OP(dst[1], (A*src[1] + B*src[2] + C*src[stride+1] + D*src[stride+2] + bias));\
  205. OP(dst[2], (A*src[2] + B*src[3] + C*src[stride+2] + D*src[stride+3] + bias));\
  206. OP(dst[3], (A*src[3] + B*src[4] + C*src[stride+3] + D*src[stride+4] + bias));\
  207. dst += stride;\
  208. src += stride;\
  209. }\
  210. }else{\
  211. const int E = B + C;\
  212. const int step = C ? stride : 1;\
  213. for(i = 0; i < h; i++){\
  214. OP(dst[0], (A*src[0] + E*src[step+0] + bias));\
  215. OP(dst[1], (A*src[1] + E*src[step+1] + bias));\
  216. OP(dst[2], (A*src[2] + E*src[step+2] + bias));\
  217. OP(dst[3], (A*src[3] + E*src[step+3] + bias));\
  218. dst += stride;\
  219. src += stride;\
  220. }\
  221. }\
  222. }\
  223. \
  224. static void OPNAME ## rv40_chroma_mc8_c(uint8_t *dst/*align 8*/, uint8_t *src/*align 1*/, int stride, int h, int x, int y){\
  225. const int A = (8-x) * (8-y);\
  226. const int B = ( x) * (8-y);\
  227. const int C = (8-x) * ( y);\
  228. const int D = ( x) * ( y);\
  229. int i;\
  230. int bias = rv40_bias[y>>1][x>>1];\
  231. \
  232. assert(x<8 && y<8 && x>=0 && y>=0);\
  233. \
  234. if(D){\
  235. for(i = 0; i < h; i++){\
  236. OP(dst[0], (A*src[0] + B*src[1] + C*src[stride+0] + D*src[stride+1] + bias));\
  237. OP(dst[1], (A*src[1] + B*src[2] + C*src[stride+1] + D*src[stride+2] + bias));\
  238. OP(dst[2], (A*src[2] + B*src[3] + C*src[stride+2] + D*src[stride+3] + bias));\
  239. OP(dst[3], (A*src[3] + B*src[4] + C*src[stride+3] + D*src[stride+4] + bias));\
  240. OP(dst[4], (A*src[4] + B*src[5] + C*src[stride+4] + D*src[stride+5] + bias));\
  241. OP(dst[5], (A*src[5] + B*src[6] + C*src[stride+5] + D*src[stride+6] + bias));\
  242. OP(dst[6], (A*src[6] + B*src[7] + C*src[stride+6] + D*src[stride+7] + bias));\
  243. OP(dst[7], (A*src[7] + B*src[8] + C*src[stride+7] + D*src[stride+8] + bias));\
  244. dst += stride;\
  245. src += stride;\
  246. }\
  247. }else{\
  248. const int E = B + C;\
  249. const int step = C ? stride : 1;\
  250. for(i = 0; i < h; i++){\
  251. OP(dst[0], (A*src[0] + E*src[step+0] + bias));\
  252. OP(dst[1], (A*src[1] + E*src[step+1] + bias));\
  253. OP(dst[2], (A*src[2] + E*src[step+2] + bias));\
  254. OP(dst[3], (A*src[3] + E*src[step+3] + bias));\
  255. OP(dst[4], (A*src[4] + E*src[step+4] + bias));\
  256. OP(dst[5], (A*src[5] + E*src[step+5] + bias));\
  257. OP(dst[6], (A*src[6] + E*src[step+6] + bias));\
  258. OP(dst[7], (A*src[7] + E*src[step+7] + bias));\
  259. dst += stride;\
  260. src += stride;\
  261. }\
  262. }\
  263. }
  264. #define op_avg(a, b) a = (((a)+((b)>>6)+1)>>1)
  265. #define op_put(a, b) a = ((b)>>6)
  266. RV40_CHROMA_MC(put_, op_put)
  267. RV40_CHROMA_MC(avg_, op_avg)
  268. #define RV40_WEIGHT_FUNC(size) \
  269. static void rv40_weight_func_rnd_ ## size (uint8_t *dst, uint8_t *src1, uint8_t *src2, int w1, int w2, ptrdiff_t stride)\
  270. {\
  271. int i, j;\
  272. \
  273. for (j = 0; j < size; j++) {\
  274. for (i = 0; i < size; i++)\
  275. dst[i] = (((w2 * src1[i]) >> 9) + ((w1 * src2[i]) >> 9) + 0x10) >> 5;\
  276. src1 += stride;\
  277. src2 += stride;\
  278. dst += stride;\
  279. }\
  280. }\
  281. static void rv40_weight_func_nornd_ ## size (uint8_t *dst, uint8_t *src1, uint8_t *src2, int w1, int w2, ptrdiff_t stride)\
  282. {\
  283. int i, j;\
  284. \
  285. for (j = 0; j < size; j++) {\
  286. for (i = 0; i < size; i++)\
  287. dst[i] = (w2 * src1[i] + w1 * src2[i] + 0x10) >> 5;\
  288. src1 += stride;\
  289. src2 += stride;\
  290. dst += stride;\
  291. }\
  292. }
  293. RV40_WEIGHT_FUNC(16)
  294. RV40_WEIGHT_FUNC(8)
  295. /**
  296. * dither values for deblocking filter - left/top values
  297. */
  298. static const uint8_t rv40_dither_l[16] = {
  299. 0x40, 0x50, 0x20, 0x60, 0x30, 0x50, 0x40, 0x30,
  300. 0x50, 0x40, 0x50, 0x30, 0x60, 0x20, 0x50, 0x40
  301. };
  302. /**
  303. * dither values for deblocking filter - right/bottom values
  304. */
  305. static const uint8_t rv40_dither_r[16] = {
  306. 0x40, 0x30, 0x60, 0x20, 0x50, 0x30, 0x30, 0x40,
  307. 0x40, 0x40, 0x50, 0x30, 0x20, 0x60, 0x30, 0x40
  308. };
  309. #define CLIP_SYMM(a, b) av_clip(a, -(b), b)
  310. /**
  311. * weaker deblocking very similar to the one described in 4.4.2 of JVT-A003r1
  312. */
  313. static av_always_inline void rv40_weak_loop_filter(uint8_t *src,
  314. const int step,
  315. const ptrdiff_t stride,
  316. const int filter_p1,
  317. const int filter_q1,
  318. const int alpha,
  319. const int beta,
  320. const int lim_p0q0,
  321. const int lim_q1,
  322. const int lim_p1)
  323. {
  324. uint8_t *cm = ff_cropTbl + MAX_NEG_CROP;
  325. int i, t, u, diff;
  326. for (i = 0; i < 4; i++, src += stride) {
  327. int diff_p1p0 = src[-2*step] - src[-1*step];
  328. int diff_q1q0 = src[ 1*step] - src[ 0*step];
  329. int diff_p1p2 = src[-2*step] - src[-3*step];
  330. int diff_q1q2 = src[ 1*step] - src[ 2*step];
  331. t = src[0*step] - src[-1*step];
  332. if (!t)
  333. continue;
  334. u = (alpha * FFABS(t)) >> 7;
  335. if (u > 3 - (filter_p1 && filter_q1))
  336. continue;
  337. t <<= 2;
  338. if (filter_p1 && filter_q1)
  339. t += src[-2*step] - src[1*step];
  340. diff = CLIP_SYMM((t + 4) >> 3, lim_p0q0);
  341. src[-1*step] = cm[src[-1*step] + diff];
  342. src[ 0*step] = cm[src[ 0*step] - diff];
  343. if (filter_p1 && FFABS(diff_p1p2) <= beta) {
  344. t = (diff_p1p0 + diff_p1p2 - diff) >> 1;
  345. src[-2*step] = cm[src[-2*step] - CLIP_SYMM(t, lim_p1)];
  346. }
  347. if (filter_q1 && FFABS(diff_q1q2) <= beta) {
  348. t = (diff_q1q0 + diff_q1q2 + diff) >> 1;
  349. src[ 1*step] = cm[src[ 1*step] - CLIP_SYMM(t, lim_q1)];
  350. }
  351. }
  352. }
  353. static void rv40_h_weak_loop_filter(uint8_t *src, const ptrdiff_t stride,
  354. const int filter_p1, const int filter_q1,
  355. const int alpha, const int beta,
  356. const int lim_p0q0, const int lim_q1,
  357. const int lim_p1)
  358. {
  359. rv40_weak_loop_filter(src, stride, 1, filter_p1, filter_q1,
  360. alpha, beta, lim_p0q0, lim_q1, lim_p1);
  361. }
  362. static void rv40_v_weak_loop_filter(uint8_t *src, const ptrdiff_t stride,
  363. const int filter_p1, const int filter_q1,
  364. const int alpha, const int beta,
  365. const int lim_p0q0, const int lim_q1,
  366. const int lim_p1)
  367. {
  368. rv40_weak_loop_filter(src, 1, stride, filter_p1, filter_q1,
  369. alpha, beta, lim_p0q0, lim_q1, lim_p1);
  370. }
  371. static av_always_inline void rv40_strong_loop_filter(uint8_t *src,
  372. const int step,
  373. const ptrdiff_t stride,
  374. const int alpha,
  375. const int lims,
  376. const int dmode,
  377. const int chroma)
  378. {
  379. int i;
  380. for(i = 0; i < 4; i++, src += stride){
  381. int sflag, p0, q0, p1, q1;
  382. int t = src[0*step] - src[-1*step];
  383. if (!t)
  384. continue;
  385. sflag = (alpha * FFABS(t)) >> 7;
  386. if (sflag > 1)
  387. continue;
  388. p0 = (25*src[-3*step] + 26*src[-2*step] + 26*src[-1*step] +
  389. 26*src[ 0*step] + 25*src[ 1*step] +
  390. rv40_dither_l[dmode + i]) >> 7;
  391. q0 = (25*src[-2*step] + 26*src[-1*step] + 26*src[ 0*step] +
  392. 26*src[ 1*step] + 25*src[ 2*step] +
  393. rv40_dither_r[dmode + i]) >> 7;
  394. if (sflag) {
  395. p0 = av_clip(p0, src[-1*step] - lims, src[-1*step] + lims);
  396. q0 = av_clip(q0, src[ 0*step] - lims, src[ 0*step] + lims);
  397. }
  398. p1 = (25*src[-4*step] + 26*src[-3*step] + 26*src[-2*step] + 26*p0 +
  399. 25*src[ 0*step] + rv40_dither_l[dmode + i]) >> 7;
  400. q1 = (25*src[-1*step] + 26*q0 + 26*src[ 1*step] + 26*src[ 2*step] +
  401. 25*src[ 3*step] + rv40_dither_r[dmode + i]) >> 7;
  402. if (sflag) {
  403. p1 = av_clip(p1, src[-2*step] - lims, src[-2*step] + lims);
  404. q1 = av_clip(q1, src[ 1*step] - lims, src[ 1*step] + lims);
  405. }
  406. src[-2*step] = p1;
  407. src[-1*step] = p0;
  408. src[ 0*step] = q0;
  409. src[ 1*step] = q1;
  410. if(!chroma){
  411. src[-3*step] = (25*src[-1*step] + 26*src[-2*step] +
  412. 51*src[-3*step] + 26*src[-4*step] + 64) >> 7;
  413. src[ 2*step] = (25*src[ 0*step] + 26*src[ 1*step] +
  414. 51*src[ 2*step] + 26*src[ 3*step] + 64) >> 7;
  415. }
  416. }
  417. }
  418. static void rv40_h_strong_loop_filter(uint8_t *src, const ptrdiff_t stride,
  419. const int alpha, const int lims,
  420. const int dmode, const int chroma)
  421. {
  422. rv40_strong_loop_filter(src, stride, 1, alpha, lims, dmode, chroma);
  423. }
  424. static void rv40_v_strong_loop_filter(uint8_t *src, const ptrdiff_t stride,
  425. const int alpha, const int lims,
  426. const int dmode, const int chroma)
  427. {
  428. rv40_strong_loop_filter(src, 1, stride, alpha, lims, dmode, chroma);
  429. }
  430. static av_always_inline int rv40_loop_filter_strength(uint8_t *src,
  431. int step, ptrdiff_t stride,
  432. int beta, int beta2,
  433. int edge,
  434. int *p1, int *q1)
  435. {
  436. int sum_p1p0 = 0, sum_q1q0 = 0, sum_p1p2 = 0, sum_q1q2 = 0;
  437. int strong0 = 0, strong1 = 0;
  438. uint8_t *ptr;
  439. int i;
  440. for (i = 0, ptr = src; i < 4; i++, ptr += stride) {
  441. sum_p1p0 += ptr[-2*step] - ptr[-1*step];
  442. sum_q1q0 += ptr[ 1*step] - ptr[ 0*step];
  443. }
  444. *p1 = FFABS(sum_p1p0) < (beta << 2);
  445. *q1 = FFABS(sum_q1q0) < (beta << 2);
  446. if(!*p1 && !*q1)
  447. return 0;
  448. if (!edge)
  449. return 0;
  450. for (i = 0, ptr = src; i < 4; i++, ptr += stride) {
  451. sum_p1p2 += ptr[-2*step] - ptr[-3*step];
  452. sum_q1q2 += ptr[ 1*step] - ptr[ 2*step];
  453. }
  454. strong0 = *p1 && (FFABS(sum_p1p2) < beta2);
  455. strong1 = *q1 && (FFABS(sum_q1q2) < beta2);
  456. return strong0 && strong1;
  457. }
  458. static int rv40_h_loop_filter_strength(uint8_t *src, ptrdiff_t stride,
  459. int beta, int beta2, int edge,
  460. int *p1, int *q1)
  461. {
  462. return rv40_loop_filter_strength(src, stride, 1, beta, beta2, edge, p1, q1);
  463. }
  464. static int rv40_v_loop_filter_strength(uint8_t *src, ptrdiff_t stride,
  465. int beta, int beta2, int edge,
  466. int *p1, int *q1)
  467. {
  468. return rv40_loop_filter_strength(src, 1, stride, beta, beta2, edge, p1, q1);
  469. }
  470. av_cold void ff_rv40dsp_init(RV34DSPContext *c, DSPContext* dsp) {
  471. ff_rv34dsp_init(c, dsp);
  472. c->put_pixels_tab[0][ 0] = dsp->put_h264_qpel_pixels_tab[0][0];
  473. c->put_pixels_tab[0][ 1] = put_rv40_qpel16_mc10_c;
  474. c->put_pixels_tab[0][ 2] = dsp->put_h264_qpel_pixels_tab[0][2];
  475. c->put_pixels_tab[0][ 3] = put_rv40_qpel16_mc30_c;
  476. c->put_pixels_tab[0][ 4] = put_rv40_qpel16_mc01_c;
  477. c->put_pixels_tab[0][ 5] = put_rv40_qpel16_mc11_c;
  478. c->put_pixels_tab[0][ 6] = put_rv40_qpel16_mc21_c;
  479. c->put_pixels_tab[0][ 7] = put_rv40_qpel16_mc31_c;
  480. c->put_pixels_tab[0][ 8] = dsp->put_h264_qpel_pixels_tab[0][8];
  481. c->put_pixels_tab[0][ 9] = put_rv40_qpel16_mc12_c;
  482. c->put_pixels_tab[0][10] = put_rv40_qpel16_mc22_c;
  483. c->put_pixels_tab[0][11] = put_rv40_qpel16_mc32_c;
  484. c->put_pixels_tab[0][12] = put_rv40_qpel16_mc03_c;
  485. c->put_pixels_tab[0][13] = put_rv40_qpel16_mc13_c;
  486. c->put_pixels_tab[0][14] = put_rv40_qpel16_mc23_c;
  487. c->put_pixels_tab[0][15] = ff_put_rv40_qpel16_mc33_c;
  488. c->avg_pixels_tab[0][ 0] = dsp->avg_h264_qpel_pixels_tab[0][0];
  489. c->avg_pixels_tab[0][ 1] = avg_rv40_qpel16_mc10_c;
  490. c->avg_pixels_tab[0][ 2] = dsp->avg_h264_qpel_pixels_tab[0][2];
  491. c->avg_pixels_tab[0][ 3] = avg_rv40_qpel16_mc30_c;
  492. c->avg_pixels_tab[0][ 4] = avg_rv40_qpel16_mc01_c;
  493. c->avg_pixels_tab[0][ 5] = avg_rv40_qpel16_mc11_c;
  494. c->avg_pixels_tab[0][ 6] = avg_rv40_qpel16_mc21_c;
  495. c->avg_pixels_tab[0][ 7] = avg_rv40_qpel16_mc31_c;
  496. c->avg_pixels_tab[0][ 8] = dsp->avg_h264_qpel_pixels_tab[0][8];
  497. c->avg_pixels_tab[0][ 9] = avg_rv40_qpel16_mc12_c;
  498. c->avg_pixels_tab[0][10] = avg_rv40_qpel16_mc22_c;
  499. c->avg_pixels_tab[0][11] = avg_rv40_qpel16_mc32_c;
  500. c->avg_pixels_tab[0][12] = avg_rv40_qpel16_mc03_c;
  501. c->avg_pixels_tab[0][13] = avg_rv40_qpel16_mc13_c;
  502. c->avg_pixels_tab[0][14] = avg_rv40_qpel16_mc23_c;
  503. c->avg_pixels_tab[0][15] = ff_avg_rv40_qpel16_mc33_c;
  504. c->put_pixels_tab[1][ 0] = dsp->put_h264_qpel_pixels_tab[1][0];
  505. c->put_pixels_tab[1][ 1] = put_rv40_qpel8_mc10_c;
  506. c->put_pixels_tab[1][ 2] = dsp->put_h264_qpel_pixels_tab[1][2];
  507. c->put_pixels_tab[1][ 3] = put_rv40_qpel8_mc30_c;
  508. c->put_pixels_tab[1][ 4] = put_rv40_qpel8_mc01_c;
  509. c->put_pixels_tab[1][ 5] = put_rv40_qpel8_mc11_c;
  510. c->put_pixels_tab[1][ 6] = put_rv40_qpel8_mc21_c;
  511. c->put_pixels_tab[1][ 7] = put_rv40_qpel8_mc31_c;
  512. c->put_pixels_tab[1][ 8] = dsp->put_h264_qpel_pixels_tab[1][8];
  513. c->put_pixels_tab[1][ 9] = put_rv40_qpel8_mc12_c;
  514. c->put_pixels_tab[1][10] = put_rv40_qpel8_mc22_c;
  515. c->put_pixels_tab[1][11] = put_rv40_qpel8_mc32_c;
  516. c->put_pixels_tab[1][12] = put_rv40_qpel8_mc03_c;
  517. c->put_pixels_tab[1][13] = put_rv40_qpel8_mc13_c;
  518. c->put_pixels_tab[1][14] = put_rv40_qpel8_mc23_c;
  519. c->put_pixels_tab[1][15] = ff_put_rv40_qpel8_mc33_c;
  520. c->avg_pixels_tab[1][ 0] = dsp->avg_h264_qpel_pixels_tab[1][0];
  521. c->avg_pixels_tab[1][ 1] = avg_rv40_qpel8_mc10_c;
  522. c->avg_pixels_tab[1][ 2] = dsp->avg_h264_qpel_pixels_tab[1][2];
  523. c->avg_pixels_tab[1][ 3] = avg_rv40_qpel8_mc30_c;
  524. c->avg_pixels_tab[1][ 4] = avg_rv40_qpel8_mc01_c;
  525. c->avg_pixels_tab[1][ 5] = avg_rv40_qpel8_mc11_c;
  526. c->avg_pixels_tab[1][ 6] = avg_rv40_qpel8_mc21_c;
  527. c->avg_pixels_tab[1][ 7] = avg_rv40_qpel8_mc31_c;
  528. c->avg_pixels_tab[1][ 8] = dsp->avg_h264_qpel_pixels_tab[1][8];
  529. c->avg_pixels_tab[1][ 9] = avg_rv40_qpel8_mc12_c;
  530. c->avg_pixels_tab[1][10] = avg_rv40_qpel8_mc22_c;
  531. c->avg_pixels_tab[1][11] = avg_rv40_qpel8_mc32_c;
  532. c->avg_pixels_tab[1][12] = avg_rv40_qpel8_mc03_c;
  533. c->avg_pixels_tab[1][13] = avg_rv40_qpel8_mc13_c;
  534. c->avg_pixels_tab[1][14] = avg_rv40_qpel8_mc23_c;
  535. c->avg_pixels_tab[1][15] = ff_avg_rv40_qpel8_mc33_c;
  536. c->put_chroma_pixels_tab[0] = put_rv40_chroma_mc8_c;
  537. c->put_chroma_pixels_tab[1] = put_rv40_chroma_mc4_c;
  538. c->avg_chroma_pixels_tab[0] = avg_rv40_chroma_mc8_c;
  539. c->avg_chroma_pixels_tab[1] = avg_rv40_chroma_mc4_c;
  540. c->rv40_weight_pixels_tab[0][0] = rv40_weight_func_rnd_16;
  541. c->rv40_weight_pixels_tab[0][1] = rv40_weight_func_rnd_8;
  542. c->rv40_weight_pixels_tab[1][0] = rv40_weight_func_nornd_16;
  543. c->rv40_weight_pixels_tab[1][1] = rv40_weight_func_nornd_8;
  544. c->rv40_weak_loop_filter[0] = rv40_h_weak_loop_filter;
  545. c->rv40_weak_loop_filter[1] = rv40_v_weak_loop_filter;
  546. c->rv40_strong_loop_filter[0] = rv40_h_strong_loop_filter;
  547. c->rv40_strong_loop_filter[1] = rv40_v_strong_loop_filter;
  548. c->rv40_loop_filter_strength[0] = rv40_h_loop_filter_strength;
  549. c->rv40_loop_filter_strength[1] = rv40_v_loop_filter_strength;
  550. if (ARCH_X86)
  551. ff_rv40dsp_init_x86(c, dsp);
  552. if (ARCH_ARM)
  553. ff_rv40dsp_init_arm(c, dsp);
  554. }