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  1. /*
  2. * VC-1 and WMV3 decoder - DSP functions
  3. * Copyright (c) 2006 Konstantin Shishkov
  4. *
  5. * This file is part of FFmpeg.
  6. *
  7. * FFmpeg is free software; you can redistribute it and/or
  8. * modify it under the terms of the GNU Lesser General Public
  9. * License as published by the Free Software Foundation; either
  10. * version 2.1 of the License, or (at your option) any later version.
  11. *
  12. * FFmpeg is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  15. * Lesser General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU Lesser General Public
  18. * License along with FFmpeg; if not, write to the Free Software
  19. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  20. */
  21. /**
  22. * @file
  23. * VC-1 and WMV3 decoder
  24. *
  25. */
  26. #include "dsputil.h"
  27. /** Apply overlap transform to horizontal edge
  28. */
  29. static void vc1_v_overlap_c(uint8_t* src, int stride)
  30. {
  31. int i;
  32. int a, b, c, d;
  33. int d1, d2;
  34. int rnd = 1;
  35. for(i = 0; i < 8; i++) {
  36. a = src[-2*stride];
  37. b = src[-stride];
  38. c = src[0];
  39. d = src[stride];
  40. d1 = (a - d + 3 + rnd) >> 3;
  41. d2 = (a - d + b - c + 4 - rnd) >> 3;
  42. src[-2*stride] = a - d1;
  43. src[-stride] = av_clip_uint8(b - d2);
  44. src[0] = av_clip_uint8(c + d2);
  45. src[stride] = d + d1;
  46. src++;
  47. rnd = !rnd;
  48. }
  49. }
  50. /** Apply overlap transform to vertical edge
  51. */
  52. static void vc1_h_overlap_c(uint8_t* src, int stride)
  53. {
  54. int i;
  55. int a, b, c, d;
  56. int d1, d2;
  57. int rnd = 1;
  58. for(i = 0; i < 8; i++) {
  59. a = src[-2];
  60. b = src[-1];
  61. c = src[0];
  62. d = src[1];
  63. d1 = (a - d + 3 + rnd) >> 3;
  64. d2 = (a - d + b - c + 4 - rnd) >> 3;
  65. src[-2] = a - d1;
  66. src[-1] = av_clip_uint8(b - d2);
  67. src[0] = av_clip_uint8(c + d2);
  68. src[1] = d + d1;
  69. src += stride;
  70. rnd = !rnd;
  71. }
  72. }
  73. /**
  74. * VC-1 in-loop deblocking filter for one line
  75. * @param src source block type
  76. * @param stride block stride
  77. * @param pq block quantizer
  78. * @return whether other 3 pairs should be filtered or not
  79. * @see 8.6
  80. */
  81. static av_always_inline int vc1_filter_line(uint8_t* src, int stride, int pq){
  82. uint8_t *cm = ff_cropTbl + MAX_NEG_CROP;
  83. int a0 = (2*(src[-2*stride] - src[ 1*stride]) - 5*(src[-1*stride] - src[ 0*stride]) + 4) >> 3;
  84. int a0_sign = a0 >> 31; /* Store sign */
  85. a0 = (a0 ^ a0_sign) - a0_sign; /* a0 = FFABS(a0); */
  86. if(a0 < pq){
  87. int a1 = FFABS((2*(src[-4*stride] - src[-1*stride]) - 5*(src[-3*stride] - src[-2*stride]) + 4) >> 3);
  88. int a2 = FFABS((2*(src[ 0*stride] - src[ 3*stride]) - 5*(src[ 1*stride] - src[ 2*stride]) + 4) >> 3);
  89. if(a1 < a0 || a2 < a0){
  90. int clip = src[-1*stride] - src[ 0*stride];
  91. int clip_sign = clip >> 31;
  92. clip = ((clip ^ clip_sign) - clip_sign)>>1;
  93. if(clip){
  94. int a3 = FFMIN(a1, a2);
  95. int d = 5 * (a3 - a0);
  96. int d_sign = (d >> 31);
  97. d = ((d ^ d_sign) - d_sign) >> 3;
  98. d_sign ^= a0_sign;
  99. if( d_sign ^ clip_sign )
  100. d = 0;
  101. else{
  102. d = FFMIN(d, clip);
  103. d = (d ^ d_sign) - d_sign; /* Restore sign */
  104. src[-1*stride] = cm[src[-1*stride] - d];
  105. src[ 0*stride] = cm[src[ 0*stride] + d];
  106. }
  107. return 1;
  108. }
  109. }
  110. }
  111. return 0;
  112. }
  113. /**
  114. * VC-1 in-loop deblocking filter
  115. * @param src source block type
  116. * @param step distance between horizontally adjacent elements
  117. * @param stride distance between vertically adjacent elements
  118. * @param len edge length to filter (4 or 8 pixels)
  119. * @param pq block quantizer
  120. * @see 8.6
  121. */
  122. static inline void vc1_loop_filter(uint8_t* src, int step, int stride, int len, int pq)
  123. {
  124. int i;
  125. int filt3;
  126. for(i = 0; i < len; i += 4){
  127. filt3 = vc1_filter_line(src + 2*step, stride, pq);
  128. if(filt3){
  129. vc1_filter_line(src + 0*step, stride, pq);
  130. vc1_filter_line(src + 1*step, stride, pq);
  131. vc1_filter_line(src + 3*step, stride, pq);
  132. }
  133. src += step * 4;
  134. }
  135. }
  136. static void vc1_v_loop_filter4_c(uint8_t *src, int stride, int pq)
  137. {
  138. vc1_loop_filter(src, 1, stride, 4, pq);
  139. }
  140. static void vc1_h_loop_filter4_c(uint8_t *src, int stride, int pq)
  141. {
  142. vc1_loop_filter(src, stride, 1, 4, pq);
  143. }
  144. static void vc1_v_loop_filter8_c(uint8_t *src, int stride, int pq)
  145. {
  146. vc1_loop_filter(src, 1, stride, 8, pq);
  147. }
  148. static void vc1_h_loop_filter8_c(uint8_t *src, int stride, int pq)
  149. {
  150. vc1_loop_filter(src, stride, 1, 8, pq);
  151. }
  152. static void vc1_v_loop_filter16_c(uint8_t *src, int stride, int pq)
  153. {
  154. vc1_loop_filter(src, 1, stride, 16, pq);
  155. }
  156. static void vc1_h_loop_filter16_c(uint8_t *src, int stride, int pq)
  157. {
  158. vc1_loop_filter(src, stride, 1, 16, pq);
  159. }
  160. /** Do inverse transform on 8x8 block
  161. */
  162. static void vc1_inv_trans_8x8_dc_c(uint8_t *dest, int linesize, DCTELEM *block)
  163. {
  164. int i;
  165. int dc = block[0];
  166. const uint8_t *cm;
  167. dc = (3 * dc + 1) >> 1;
  168. dc = (3 * dc + 16) >> 5;
  169. cm = ff_cropTbl + MAX_NEG_CROP + dc;
  170. for(i = 0; i < 8; i++){
  171. dest[0] = cm[dest[0]];
  172. dest[1] = cm[dest[1]];
  173. dest[2] = cm[dest[2]];
  174. dest[3] = cm[dest[3]];
  175. dest[4] = cm[dest[4]];
  176. dest[5] = cm[dest[5]];
  177. dest[6] = cm[dest[6]];
  178. dest[7] = cm[dest[7]];
  179. dest += linesize;
  180. }
  181. }
  182. static void vc1_inv_trans_8x8_c(DCTELEM block[64])
  183. {
  184. int i;
  185. register int t1,t2,t3,t4,t5,t6,t7,t8;
  186. DCTELEM *src, *dst;
  187. src = block;
  188. dst = block;
  189. for(i = 0; i < 8; i++){
  190. t1 = 12 * (src[0] + src[4]) + 4;
  191. t2 = 12 * (src[0] - src[4]) + 4;
  192. t3 = 16 * src[2] + 6 * src[6];
  193. t4 = 6 * src[2] - 16 * src[6];
  194. t5 = t1 + t3;
  195. t6 = t2 + t4;
  196. t7 = t2 - t4;
  197. t8 = t1 - t3;
  198. t1 = 16 * src[1] + 15 * src[3] + 9 * src[5] + 4 * src[7];
  199. t2 = 15 * src[1] - 4 * src[3] - 16 * src[5] - 9 * src[7];
  200. t3 = 9 * src[1] - 16 * src[3] + 4 * src[5] + 15 * src[7];
  201. t4 = 4 * src[1] - 9 * src[3] + 15 * src[5] - 16 * src[7];
  202. dst[0] = (t5 + t1) >> 3;
  203. dst[1] = (t6 + t2) >> 3;
  204. dst[2] = (t7 + t3) >> 3;
  205. dst[3] = (t8 + t4) >> 3;
  206. dst[4] = (t8 - t4) >> 3;
  207. dst[5] = (t7 - t3) >> 3;
  208. dst[6] = (t6 - t2) >> 3;
  209. dst[7] = (t5 - t1) >> 3;
  210. src += 8;
  211. dst += 8;
  212. }
  213. src = block;
  214. dst = block;
  215. for(i = 0; i < 8; i++){
  216. t1 = 12 * (src[ 0] + src[32]) + 64;
  217. t2 = 12 * (src[ 0] - src[32]) + 64;
  218. t3 = 16 * src[16] + 6 * src[48];
  219. t4 = 6 * src[16] - 16 * src[48];
  220. t5 = t1 + t3;
  221. t6 = t2 + t4;
  222. t7 = t2 - t4;
  223. t8 = t1 - t3;
  224. t1 = 16 * src[ 8] + 15 * src[24] + 9 * src[40] + 4 * src[56];
  225. t2 = 15 * src[ 8] - 4 * src[24] - 16 * src[40] - 9 * src[56];
  226. t3 = 9 * src[ 8] - 16 * src[24] + 4 * src[40] + 15 * src[56];
  227. t4 = 4 * src[ 8] - 9 * src[24] + 15 * src[40] - 16 * src[56];
  228. dst[ 0] = (t5 + t1) >> 7;
  229. dst[ 8] = (t6 + t2) >> 7;
  230. dst[16] = (t7 + t3) >> 7;
  231. dst[24] = (t8 + t4) >> 7;
  232. dst[32] = (t8 - t4 + 1) >> 7;
  233. dst[40] = (t7 - t3 + 1) >> 7;
  234. dst[48] = (t6 - t2 + 1) >> 7;
  235. dst[56] = (t5 - t1 + 1) >> 7;
  236. src++;
  237. dst++;
  238. }
  239. }
  240. /** Do inverse transform on 8x4 part of block
  241. */
  242. static void vc1_inv_trans_8x4_dc_c(uint8_t *dest, int linesize, DCTELEM *block)
  243. {
  244. int i;
  245. int dc = block[0];
  246. const uint8_t *cm;
  247. dc = ( 3 * dc + 1) >> 1;
  248. dc = (17 * dc + 64) >> 7;
  249. cm = ff_cropTbl + MAX_NEG_CROP + dc;
  250. for(i = 0; i < 4; i++){
  251. dest[0] = cm[dest[0]];
  252. dest[1] = cm[dest[1]];
  253. dest[2] = cm[dest[2]];
  254. dest[3] = cm[dest[3]];
  255. dest[4] = cm[dest[4]];
  256. dest[5] = cm[dest[5]];
  257. dest[6] = cm[dest[6]];
  258. dest[7] = cm[dest[7]];
  259. dest += linesize;
  260. }
  261. }
  262. static void vc1_inv_trans_8x4_c(uint8_t *dest, int linesize, DCTELEM *block)
  263. {
  264. int i;
  265. register int t1,t2,t3,t4,t5,t6,t7,t8;
  266. DCTELEM *src, *dst;
  267. const uint8_t *cm = ff_cropTbl + MAX_NEG_CROP;
  268. src = block;
  269. dst = block;
  270. for(i = 0; i < 4; i++){
  271. t1 = 12 * (src[0] + src[4]) + 4;
  272. t2 = 12 * (src[0] - src[4]) + 4;
  273. t3 = 16 * src[2] + 6 * src[6];
  274. t4 = 6 * src[2] - 16 * src[6];
  275. t5 = t1 + t3;
  276. t6 = t2 + t4;
  277. t7 = t2 - t4;
  278. t8 = t1 - t3;
  279. t1 = 16 * src[1] + 15 * src[3] + 9 * src[5] + 4 * src[7];
  280. t2 = 15 * src[1] - 4 * src[3] - 16 * src[5] - 9 * src[7];
  281. t3 = 9 * src[1] - 16 * src[3] + 4 * src[5] + 15 * src[7];
  282. t4 = 4 * src[1] - 9 * src[3] + 15 * src[5] - 16 * src[7];
  283. dst[0] = (t5 + t1) >> 3;
  284. dst[1] = (t6 + t2) >> 3;
  285. dst[2] = (t7 + t3) >> 3;
  286. dst[3] = (t8 + t4) >> 3;
  287. dst[4] = (t8 - t4) >> 3;
  288. dst[5] = (t7 - t3) >> 3;
  289. dst[6] = (t6 - t2) >> 3;
  290. dst[7] = (t5 - t1) >> 3;
  291. src += 8;
  292. dst += 8;
  293. }
  294. src = block;
  295. for(i = 0; i < 8; i++){
  296. t1 = 17 * (src[ 0] + src[16]) + 64;
  297. t2 = 17 * (src[ 0] - src[16]) + 64;
  298. t3 = 22 * src[ 8] + 10 * src[24];
  299. t4 = 22 * src[24] - 10 * src[ 8];
  300. dest[0*linesize] = cm[dest[0*linesize] + ((t1 + t3) >> 7)];
  301. dest[1*linesize] = cm[dest[1*linesize] + ((t2 - t4) >> 7)];
  302. dest[2*linesize] = cm[dest[2*linesize] + ((t2 + t4) >> 7)];
  303. dest[3*linesize] = cm[dest[3*linesize] + ((t1 - t3) >> 7)];
  304. src ++;
  305. dest++;
  306. }
  307. }
  308. /** Do inverse transform on 4x8 parts of block
  309. */
  310. static void vc1_inv_trans_4x8_dc_c(uint8_t *dest, int linesize, DCTELEM *block)
  311. {
  312. int i;
  313. int dc = block[0];
  314. const uint8_t *cm;
  315. dc = (17 * dc + 4) >> 3;
  316. dc = (12 * dc + 64) >> 7;
  317. cm = ff_cropTbl + MAX_NEG_CROP + dc;
  318. for(i = 0; i < 8; i++){
  319. dest[0] = cm[dest[0]];
  320. dest[1] = cm[dest[1]];
  321. dest[2] = cm[dest[2]];
  322. dest[3] = cm[dest[3]];
  323. dest += linesize;
  324. }
  325. }
  326. static void vc1_inv_trans_4x8_c(uint8_t *dest, int linesize, DCTELEM *block)
  327. {
  328. int i;
  329. register int t1,t2,t3,t4,t5,t6,t7,t8;
  330. DCTELEM *src, *dst;
  331. const uint8_t *cm = ff_cropTbl + MAX_NEG_CROP;
  332. src = block;
  333. dst = block;
  334. for(i = 0; i < 8; i++){
  335. t1 = 17 * (src[0] + src[2]) + 4;
  336. t2 = 17 * (src[0] - src[2]) + 4;
  337. t3 = 22 * src[1] + 10 * src[3];
  338. t4 = 22 * src[3] - 10 * src[1];
  339. dst[0] = (t1 + t3) >> 3;
  340. dst[1] = (t2 - t4) >> 3;
  341. dst[2] = (t2 + t4) >> 3;
  342. dst[3] = (t1 - t3) >> 3;
  343. src += 8;
  344. dst += 8;
  345. }
  346. src = block;
  347. for(i = 0; i < 4; i++){
  348. t1 = 12 * (src[ 0] + src[32]) + 64;
  349. t2 = 12 * (src[ 0] - src[32]) + 64;
  350. t3 = 16 * src[16] + 6 * src[48];
  351. t4 = 6 * src[16] - 16 * src[48];
  352. t5 = t1 + t3;
  353. t6 = t2 + t4;
  354. t7 = t2 - t4;
  355. t8 = t1 - t3;
  356. t1 = 16 * src[ 8] + 15 * src[24] + 9 * src[40] + 4 * src[56];
  357. t2 = 15 * src[ 8] - 4 * src[24] - 16 * src[40] - 9 * src[56];
  358. t3 = 9 * src[ 8] - 16 * src[24] + 4 * src[40] + 15 * src[56];
  359. t4 = 4 * src[ 8] - 9 * src[24] + 15 * src[40] - 16 * src[56];
  360. dest[0*linesize] = cm[dest[0*linesize] + ((t5 + t1) >> 7)];
  361. dest[1*linesize] = cm[dest[1*linesize] + ((t6 + t2) >> 7)];
  362. dest[2*linesize] = cm[dest[2*linesize] + ((t7 + t3) >> 7)];
  363. dest[3*linesize] = cm[dest[3*linesize] + ((t8 + t4) >> 7)];
  364. dest[4*linesize] = cm[dest[4*linesize] + ((t8 - t4 + 1) >> 7)];
  365. dest[5*linesize] = cm[dest[5*linesize] + ((t7 - t3 + 1) >> 7)];
  366. dest[6*linesize] = cm[dest[6*linesize] + ((t6 - t2 + 1) >> 7)];
  367. dest[7*linesize] = cm[dest[7*linesize] + ((t5 - t1 + 1) >> 7)];
  368. src ++;
  369. dest++;
  370. }
  371. }
  372. /** Do inverse transform on 4x4 part of block
  373. */
  374. static void vc1_inv_trans_4x4_dc_c(uint8_t *dest, int linesize, DCTELEM *block)
  375. {
  376. int i;
  377. int dc = block[0];
  378. const uint8_t *cm;
  379. dc = (17 * dc + 4) >> 3;
  380. dc = (17 * dc + 64) >> 7;
  381. cm = ff_cropTbl + MAX_NEG_CROP + dc;
  382. for(i = 0; i < 4; i++){
  383. dest[0] = cm[dest[0]];
  384. dest[1] = cm[dest[1]];
  385. dest[2] = cm[dest[2]];
  386. dest[3] = cm[dest[3]];
  387. dest += linesize;
  388. }
  389. }
  390. static void vc1_inv_trans_4x4_c(uint8_t *dest, int linesize, DCTELEM *block)
  391. {
  392. int i;
  393. register int t1,t2,t3,t4;
  394. DCTELEM *src, *dst;
  395. const uint8_t *cm = ff_cropTbl + MAX_NEG_CROP;
  396. src = block;
  397. dst = block;
  398. for(i = 0; i < 4; i++){
  399. t1 = 17 * (src[0] + src[2]) + 4;
  400. t2 = 17 * (src[0] - src[2]) + 4;
  401. t3 = 22 * src[1] + 10 * src[3];
  402. t4 = 22 * src[3] - 10 * src[1];
  403. dst[0] = (t1 + t3) >> 3;
  404. dst[1] = (t2 - t4) >> 3;
  405. dst[2] = (t2 + t4) >> 3;
  406. dst[3] = (t1 - t3) >> 3;
  407. src += 8;
  408. dst += 8;
  409. }
  410. src = block;
  411. for(i = 0; i < 4; i++){
  412. t1 = 17 * (src[ 0] + src[16]) + 64;
  413. t2 = 17 * (src[ 0] - src[16]) + 64;
  414. t3 = 22 * src[ 8] + 10 * src[24];
  415. t4 = 22 * src[24] - 10 * src[ 8];
  416. dest[0*linesize] = cm[dest[0*linesize] + ((t1 + t3) >> 7)];
  417. dest[1*linesize] = cm[dest[1*linesize] + ((t2 - t4) >> 7)];
  418. dest[2*linesize] = cm[dest[2*linesize] + ((t2 + t4) >> 7)];
  419. dest[3*linesize] = cm[dest[3*linesize] + ((t1 - t3) >> 7)];
  420. src ++;
  421. dest++;
  422. }
  423. }
  424. /* motion compensation functions */
  425. /** Filter in case of 2 filters */
  426. #define VC1_MSPEL_FILTER_16B(DIR, TYPE) \
  427. static av_always_inline int vc1_mspel_ ## DIR ## _filter_16bits(const TYPE *src, int stride, int mode) \
  428. { \
  429. switch(mode){ \
  430. case 0: /* no shift - should not occur */ \
  431. return 0; \
  432. case 1: /* 1/4 shift */ \
  433. return -4*src[-stride] + 53*src[0] + 18*src[stride] - 3*src[stride*2]; \
  434. case 2: /* 1/2 shift */ \
  435. return -src[-stride] + 9*src[0] + 9*src[stride] - src[stride*2]; \
  436. case 3: /* 3/4 shift */ \
  437. return -3*src[-stride] + 18*src[0] + 53*src[stride] - 4*src[stride*2]; \
  438. } \
  439. return 0; /* should not occur */ \
  440. }
  441. VC1_MSPEL_FILTER_16B(ver, uint8_t);
  442. VC1_MSPEL_FILTER_16B(hor, int16_t);
  443. /** Filter used to interpolate fractional pel values
  444. */
  445. static av_always_inline int vc1_mspel_filter(const uint8_t *src, int stride, int mode, int r)
  446. {
  447. switch(mode){
  448. case 0: //no shift
  449. return src[0];
  450. case 1: // 1/4 shift
  451. return (-4*src[-stride] + 53*src[0] + 18*src[stride] - 3*src[stride*2] + 32 - r) >> 6;
  452. case 2: // 1/2 shift
  453. return (-src[-stride] + 9*src[0] + 9*src[stride] - src[stride*2] + 8 - r) >> 4;
  454. case 3: // 3/4 shift
  455. return (-3*src[-stride] + 18*src[0] + 53*src[stride] - 4*src[stride*2] + 32 - r) >> 6;
  456. }
  457. return 0; //should not occur
  458. }
  459. /** Function used to do motion compensation with bicubic interpolation
  460. */
  461. #define VC1_MSPEL_MC(OP, OPNAME)\
  462. static void OPNAME ## vc1_mspel_mc(uint8_t *dst, const uint8_t *src, int stride, int hmode, int vmode, int rnd)\
  463. {\
  464. int i, j;\
  465. \
  466. if (vmode) { /* Horizontal filter to apply */\
  467. int r;\
  468. \
  469. if (hmode) { /* Vertical filter to apply, output to tmp */\
  470. static const int shift_value[] = { 0, 5, 1, 5 };\
  471. int shift = (shift_value[hmode]+shift_value[vmode])>>1;\
  472. int16_t tmp[11*8], *tptr = tmp;\
  473. \
  474. r = (1<<(shift-1)) + rnd-1;\
  475. \
  476. src -= 1;\
  477. for(j = 0; j < 8; j++) {\
  478. for(i = 0; i < 11; i++)\
  479. tptr[i] = (vc1_mspel_ver_filter_16bits(src + i, stride, vmode)+r)>>shift;\
  480. src += stride;\
  481. tptr += 11;\
  482. }\
  483. \
  484. r = 64-rnd;\
  485. tptr = tmp+1;\
  486. for(j = 0; j < 8; j++) {\
  487. for(i = 0; i < 8; i++)\
  488. OP(dst[i], (vc1_mspel_hor_filter_16bits(tptr + i, 1, hmode)+r)>>7);\
  489. dst += stride;\
  490. tptr += 11;\
  491. }\
  492. \
  493. return;\
  494. }\
  495. else { /* No horizontal filter, output 8 lines to dst */\
  496. r = 1-rnd;\
  497. \
  498. for(j = 0; j < 8; j++) {\
  499. for(i = 0; i < 8; i++)\
  500. OP(dst[i], vc1_mspel_filter(src + i, stride, vmode, r));\
  501. src += stride;\
  502. dst += stride;\
  503. }\
  504. return;\
  505. }\
  506. }\
  507. \
  508. /* Horizontal mode with no vertical mode */\
  509. for(j = 0; j < 8; j++) {\
  510. for(i = 0; i < 8; i++)\
  511. OP(dst[i], vc1_mspel_filter(src + i, 1, hmode, rnd));\
  512. dst += stride;\
  513. src += stride;\
  514. }\
  515. }
  516. #define op_put(a, b) a = av_clip_uint8(b)
  517. #define op_avg(a, b) a = (a + av_clip_uint8(b) + 1) >> 1
  518. VC1_MSPEL_MC(op_put, put_)
  519. VC1_MSPEL_MC(op_avg, avg_)
  520. /* pixel functions - really are entry points to vc1_mspel_mc */
  521. #define PUT_VC1_MSPEL(a, b)\
  522. static void put_vc1_mspel_mc ## a ## b ##_c(uint8_t *dst, const uint8_t *src, int stride, int rnd) { \
  523. put_vc1_mspel_mc(dst, src, stride, a, b, rnd); \
  524. }\
  525. static void avg_vc1_mspel_mc ## a ## b ##_c(uint8_t *dst, const uint8_t *src, int stride, int rnd) { \
  526. avg_vc1_mspel_mc(dst, src, stride, a, b, rnd); \
  527. }
  528. PUT_VC1_MSPEL(1, 0)
  529. PUT_VC1_MSPEL(2, 0)
  530. PUT_VC1_MSPEL(3, 0)
  531. PUT_VC1_MSPEL(0, 1)
  532. PUT_VC1_MSPEL(1, 1)
  533. PUT_VC1_MSPEL(2, 1)
  534. PUT_VC1_MSPEL(3, 1)
  535. PUT_VC1_MSPEL(0, 2)
  536. PUT_VC1_MSPEL(1, 2)
  537. PUT_VC1_MSPEL(2, 2)
  538. PUT_VC1_MSPEL(3, 2)
  539. PUT_VC1_MSPEL(0, 3)
  540. PUT_VC1_MSPEL(1, 3)
  541. PUT_VC1_MSPEL(2, 3)
  542. PUT_VC1_MSPEL(3, 3)
  543. av_cold void ff_vc1dsp_init(DSPContext* dsp, AVCodecContext *avctx) {
  544. dsp->vc1_inv_trans_8x8 = vc1_inv_trans_8x8_c;
  545. dsp->vc1_inv_trans_4x8 = vc1_inv_trans_4x8_c;
  546. dsp->vc1_inv_trans_8x4 = vc1_inv_trans_8x4_c;
  547. dsp->vc1_inv_trans_4x4 = vc1_inv_trans_4x4_c;
  548. dsp->vc1_inv_trans_8x8_dc = vc1_inv_trans_8x8_dc_c;
  549. dsp->vc1_inv_trans_4x8_dc = vc1_inv_trans_4x8_dc_c;
  550. dsp->vc1_inv_trans_8x4_dc = vc1_inv_trans_8x4_dc_c;
  551. dsp->vc1_inv_trans_4x4_dc = vc1_inv_trans_4x4_dc_c;
  552. dsp->vc1_h_overlap = vc1_h_overlap_c;
  553. dsp->vc1_v_overlap = vc1_v_overlap_c;
  554. dsp->vc1_v_loop_filter4 = vc1_v_loop_filter4_c;
  555. dsp->vc1_h_loop_filter4 = vc1_h_loop_filter4_c;
  556. dsp->vc1_v_loop_filter8 = vc1_v_loop_filter8_c;
  557. dsp->vc1_h_loop_filter8 = vc1_h_loop_filter8_c;
  558. dsp->vc1_v_loop_filter16 = vc1_v_loop_filter16_c;
  559. dsp->vc1_h_loop_filter16 = vc1_h_loop_filter16_c;
  560. dsp->put_vc1_mspel_pixels_tab[ 0] = ff_put_vc1_mspel_mc00_c;
  561. dsp->put_vc1_mspel_pixels_tab[ 1] = put_vc1_mspel_mc10_c;
  562. dsp->put_vc1_mspel_pixels_tab[ 2] = put_vc1_mspel_mc20_c;
  563. dsp->put_vc1_mspel_pixels_tab[ 3] = put_vc1_mspel_mc30_c;
  564. dsp->put_vc1_mspel_pixels_tab[ 4] = put_vc1_mspel_mc01_c;
  565. dsp->put_vc1_mspel_pixels_tab[ 5] = put_vc1_mspel_mc11_c;
  566. dsp->put_vc1_mspel_pixels_tab[ 6] = put_vc1_mspel_mc21_c;
  567. dsp->put_vc1_mspel_pixels_tab[ 7] = put_vc1_mspel_mc31_c;
  568. dsp->put_vc1_mspel_pixels_tab[ 8] = put_vc1_mspel_mc02_c;
  569. dsp->put_vc1_mspel_pixels_tab[ 9] = put_vc1_mspel_mc12_c;
  570. dsp->put_vc1_mspel_pixels_tab[10] = put_vc1_mspel_mc22_c;
  571. dsp->put_vc1_mspel_pixels_tab[11] = put_vc1_mspel_mc32_c;
  572. dsp->put_vc1_mspel_pixels_tab[12] = put_vc1_mspel_mc03_c;
  573. dsp->put_vc1_mspel_pixels_tab[13] = put_vc1_mspel_mc13_c;
  574. dsp->put_vc1_mspel_pixels_tab[14] = put_vc1_mspel_mc23_c;
  575. dsp->put_vc1_mspel_pixels_tab[15] = put_vc1_mspel_mc33_c;
  576. dsp->avg_vc1_mspel_pixels_tab[ 0] = ff_avg_vc1_mspel_mc00_c;
  577. dsp->avg_vc1_mspel_pixels_tab[ 1] = avg_vc1_mspel_mc10_c;
  578. dsp->avg_vc1_mspel_pixels_tab[ 2] = avg_vc1_mspel_mc20_c;
  579. dsp->avg_vc1_mspel_pixels_tab[ 3] = avg_vc1_mspel_mc30_c;
  580. dsp->avg_vc1_mspel_pixels_tab[ 4] = avg_vc1_mspel_mc01_c;
  581. dsp->avg_vc1_mspel_pixels_tab[ 5] = avg_vc1_mspel_mc11_c;
  582. dsp->avg_vc1_mspel_pixels_tab[ 6] = avg_vc1_mspel_mc21_c;
  583. dsp->avg_vc1_mspel_pixels_tab[ 7] = avg_vc1_mspel_mc31_c;
  584. dsp->avg_vc1_mspel_pixels_tab[ 8] = avg_vc1_mspel_mc02_c;
  585. dsp->avg_vc1_mspel_pixels_tab[ 9] = avg_vc1_mspel_mc12_c;
  586. dsp->avg_vc1_mspel_pixels_tab[10] = avg_vc1_mspel_mc22_c;
  587. dsp->avg_vc1_mspel_pixels_tab[11] = avg_vc1_mspel_mc32_c;
  588. dsp->avg_vc1_mspel_pixels_tab[12] = avg_vc1_mspel_mc03_c;
  589. dsp->avg_vc1_mspel_pixels_tab[13] = avg_vc1_mspel_mc13_c;
  590. dsp->avg_vc1_mspel_pixels_tab[14] = avg_vc1_mspel_mc23_c;
  591. dsp->avg_vc1_mspel_pixels_tab[15] = avg_vc1_mspel_mc33_c;
  592. }